Friday, March 5, 2010

ISI Web of Knowledge Alert - Zhou, X

ISI Web of Knowledge Citation Alert

Cited Article: Zhou, X. Equilibrium and kinetics: Water confined in carbon nanotubes as one-dimensional lattice gas
Alert Expires: 09 NOV 2010
Number of Citing Articles: 1 new records this week (1 in this e-mail)
Organization ID: 3b97d1bbc1878baed0ab183d8b03130b
========================================================================
Note: Instructions on how to purchase the full text of an article and Help Desk Contact information are at the end of the e-mail.
========================================================================

*Record 1 of 1.
*View Full Record: http://gateway.isiknowledge.com/gateway/Gateway.cgi?GWVersion=2&SrcAuth=Alerting&SrcApp=Alerting&DestApp=WOS&DestLinkType=FullRecord;KeyUT=000274635800051
*Order Full Text [ ]

Title:
Single-File Diffusion of Water Inside Narrow Carbon Nanorings

Authors:
Mukherjee, B; Maiti, PK; Dasgupta, C; Sood, AK

Author Full Names:
Mukherjee, Biswaroop; Maiti, Prabal K.; Dasgupta, Chandan; Sood, A. K.

Source:
ACS NANO 4 (2): 985-991 FEB 2010

Language:
English

Document Type:
Article

Author Keywords:
water; carbon; nanotube; nanoring; single-file diffusion; hydrophobicity; transport; hydrogen bond

KeyWords Plus:
ONE-DIMENSIONAL DIFFUSION; LONG-TIME LIMIT; NANOTUBES; CHANNEL; EQUILIBRIUM; CONFINEMENT; BOUNDARIES; PARTICLES; KINETICS; LATTICE

Abstract:
We use atomistic molecular dynamics (MD) simulations to study the diffusion of water molecules confined inside narrow (6,6) carbon nanorings. The water molecules form two oppositely polarized chains. It is shown that the effective interaction between these two chains is repulsive in nature. The computed mean-squared displacement (MSD) clearly shows a scaling with time <Delta theta(2)(t)> similar to t(1/2), which is consistent with single-file diffusion (SFD). The time up to which the water molecules undergo SFD is shown to be the lifetime of the water molecules inside these chains. Simulations of "uncharged" water molecules inside the nanoring show the formation of several water chains and yield SFD. These observations conclusively prove that the diffusion is Fickian when there is a single chain of water and SFD is observed only when two or more chains are present.

Reprint Address:
Mukherjee, B, Indian Inst Sci, Dept Phys, Ctr Condensed Matter Theory, Bangalore 560012, Karnataka, India.

Research Institution addresses:
[Mukherjee, Biswaroop; Maiti, Prabal K.; Dasgupta, Chandan] Indian Inst Sci, Dept Phys, Ctr Condensed Matter Theory, Bangalore 560012, Karnataka, India; [Dasgupta, Chandan] Jawaharlal Nehru Ctr Adv Sci Res, Condensed Matter Theory Unit, Bangalore 560064, Karnataka, India

E-mail Address:
biswa@physics.iisc.ernet.in

Cited References:
AGRE P, 2004, ANGEW CHEM INT EDIT, V43, P4278, DOI 10.1002/anie.200460804.
ALEXANDER S, 1978, PHYS REV B, V18, P2011.
BEREZHKOVSKII A, 2002, PHYS REV LETT, UNSP 89064503(1)-064503(4).
CASE DA, 1999, AMBER 7.
FEDDERS PA, 1978, PHYS REV B, V17, P40.
HAHN K, 1996, PHYS REV LETT, V76, P2762.
HAHN K, 1998, J PHYS CHEM B, V102, P5766.
HARRIS TE, 1965, J APPL PROBAB, V2, P323.
HUMMER G, 2001, NATURE, V414, P188.
JESPEN D, 1965, J MATH PHYS, V6, P405.
JOBIC H, 1997, J PHYS CHEM B, V101, P5834.
JORGENSEN WL, 1983, J CHEM PHYS, V79, P926.
KARGER J, 1992, PHYS REV A, V45, P4173.
KARGER J, 1993, PHYS REV E, V47, P1427.
KOLLMANN M, 2003, PHYS REV LETT, UNSP 90180602(1)-180602(4).
KUKLA V, 1996, SCIENCE, V272, P702.
LEE KH, 2005, NANO LETT, V5, P793, DOI 10.1021/nl0502219.
LEVITT DG, 1973, PHYS REV A, V8, P3050.
LIN B, 2005, PHYS REV LETT, UNSP 94216001(1)-216001(4).
LIN BH, 2002, EUROPHYS LETT, V57, P724.
LIU J, 1997, NATURE, V385, P780.
LUTZ C, 2004, PHYS REV LETT, UNSP 93026001(1)-026011(4).
MAIBAUM L, 2003, J PHYS CHEM B, V107, P1189, DOI 10.1021/jp0267196.
MAJUMDER SR, 2006, J CHEM PHYS, UNSP 125201103(1)-201103(4).
MAJUMDER SR, 2007, J CHEM PHYS, UNSP 127054706(1)-054706(5).
MAO ZG, 2000, J PHYS CHEM B, V104, P4618.
MARTEL R, 1999, J PHYS CHEM B, V103, P7551.
MARTEL R, 1999, NATURE, V398, P299.
MASHL RJ, 2003, NANO LETT, V3, P589, DOI 10.1021/nl0340226.
MUKHERJEE B, 2007, J CHEM PHYS, UNSP 126124704(1)-124704(8).
MURATA K, 2000, NATURE, V407, P599.
NELSON PH, 1999, J CHEM PHYS, V110, P9235.
PRESTON GM, 1991, P NATL ACAD SCI USA, V88, P11110.
RASAIAH JC, 2008, ANNU REV PHYS CHEM, V59, P713, DOI 10.1146/annurev.physchem.59.032607.093815.
RICHARDS PM, 1977, PHYS REV B, V16, P1393.
SCHURING A, 2005, J PHYS CHEM B, V109, P16711, DOI 10.1021/jp052314k.
STRIOLO A, 2006, NANO LETT, V6, P633, DOI 10.1021/nl052254u.
VANBEIJEREN H, 1983, PHYS REV B, V28, P5711.
VASENKOV S, 2006, LANGMUIR, V22, P5728, DOI 10.1021/la060378w.
WAGHE A, 2002, J CHEM PHYS, V117, P10789, DOI 10.1063/1.1519861.
WEI QH, 2000, SCIENCE, V287, P625.
ZEIDEL ML, 1992, BIOCHEMISTRY-US, V31, P7436.
ZHOU X, 2004, J CHEM PHYS, V121, P7996, DOI 10.1063/1.1799971.

Cited Reference Count:
43

Times Cited:
0

Publisher:
AMER CHEMICAL SOC; 1155 16TH ST, NW, WASHINGTON, DC 20036 USA

Subject Category:
Chemistry, Multidisciplinary; Nanoscience & Nanotechnology; Materials Science, Multidisciplinary

ISSN:
1936-0851

DOI:
10.1021/nn900858a

IDS Number:
556ZI

========================================================================
*Order Full Text*
All Customers
--------------
Please contact your library administrator, or person(s) responsible for
document delivery, to find out more about your organization's policy for
obtaining the full text of the above articles. If your organization does
not have a current document delivery provider, your administrator can
contact ISI Document Solution at service@isidoc.com, or call 800-603-4367
or 734-459-8565.

IDS Customers
--------------
IDS customers can purchase the full text of an article (having page number,
volume, and issue information) by returning this ENTIRE message as a Reply
to Sender or Forward to orders@isidoc.com. Mark your choices with an X in
the "Order Full Text: []" brackets for each item. For example, [X].

Please enter your account number here:

========================================================================
*Help Desk Contact Information*
If you have any questions, please visit the Thomson Scientific Technical Support Contact Information Web page:
http://www.thomsonscientific.com/support/techsupport
========================================================================

ISI Web of Knowledge Alert - Hummer, G

ISI Web of Knowledge Citation Alert

Cited Article: Hummer, G. Water conduction through the hydrophobic channel of a carbon nanotube
Alert Expires: 09 NOV 2010
Number of Citing Articles: 4 new records this week (4 in this e-mail)
Organization ID: 3b97d1bbc1878baed0ab183d8b03130b
========================================================================
Note: Instructions on how to purchase the full text of an article and Help Desk Contact information are at the end of the e-mail.
========================================================================

*Record 1 of 4.
*View Full Record: http://gateway.isiknowledge.com/gateway/Gateway.cgi?GWVersion=2&SrcAuth=Alerting&SrcApp=Alerting&DestApp=WOS&DestLinkType=FullRecord;KeyUT=000274578700008
*Order Full Text [ ]

Title:
Retardation of Liquid Indium Flow in Indium Oxide Nanotubes

Authors:
Kumar, M; Singh, VN; Mehta, BR; Singh, JP

Author Full Names:
Kumar, Mukesh; Singh, Vidya N.; Mehta, Bodh R.; Singh, Jitendra P.

Source:
JOURNAL OF PHYSICAL CHEMISTRY C 114 (7): 2891-2895 FEB 25 2010

Language:
English

Document Type:
Article

KeyWords Plus:
CARBON NANOTUBES; FLUID-FLOW; TEMPERATURE; NANOTHERMOMETER; SOLUBILITY; TRANSPORT; METALS; WATER

Abstract:
High-resolution transmission electron microscopy and energy-dispersive X-ray analysis carried out oil indium oxide nanotubes grown by a chemical vapor deposition technique show the presence of indium metal segments along the indium oxide (IO) nanotube axis having one end closed. A real-time HRTEM video In continuous mode imaging has been carried Out to study the directional now of liquid indium. Electron-beam-induced heating results in the increase ill indium vapor pressure and desorption of gases at the closed end of the IO nanotubes. This buildup of differential pressure between open and closed columns leads to the now of indium away from the closed end of the IO nanotube. Interestingly, the indium flow rate was observed to decrease from 2.8 to 0.3 nm/s with a corresponding decrease in the nanotubes' diameter from 138 to 38 nm. This Study indicates that the wetting properties of the liquid-host nanotube interface critically decides the fluid dynamics at nanoscale, and depe!
nding upon the interfacial properties, enhancement or retardation of flow call be observed oil the reduction of the nanotube diameter.

Reprint Address:
Mehta, BR, Indian Inst Technol Delhi, Dept Phys, New Delhi 110016, India.

Research Institution addresses:
[Kumar, Mukesh; Singh, Vidya N.; Mehta, Bodh R.; Singh, Jitendra P.] Indian Inst Technol Delhi, Dept Phys, New Delhi 110016, India

E-mail Address:
brmehta@physics.iitd.ac.in; jpsingh@physics.iitd.ac.in

Cited References:
BURNS MA, 1998, SCIENCE, V282, P484.
CHEN PC, 2009, APPL PHYS LETT, V94, ARTN 043113.
CHEN X, 2008, NANO LETT, V8, P2988, DOI 10.1021/nl802046b.
CHOPRA KL, 1983, THIN SOLID FILMS, V102, P1.
DONG LX, 2007, NANO LETT, V7, P58, DOI 10.1021/nl061980+.
DU N, 2007, ADV MATER, V19, P1641, DOI 10.1002/adma.200602128.
EBBESEN TW, 1994, ANNU REV MATER SCI, V24, P235.
GAO YH, 2002, NATURE, V415, P599.
GOGOTSI Y, 2001, APPL PHYS LETT, V79, P1021.
GOLDBEG D, 2005, CHEM PHYS LETT, V409, P75.
GONG NW, 2008, APPL PHYS LETT, V92, ARTN 073101.
HOLT JK, 2006, SCIENCE, V312, P1034, DOI 10.1126/science.1126298.
HONG MH, 2000, APPL PHYS LETT, V77, P2604.
HU JQ, 2008, ACS NANO, V2, P107, DOI 10.1021/nn700285d.
HUMMER G, 2001, NATURE, V414, P188.
KIM YT, 2004, APPL PHYS LETT, V87, UNSP 234106.
KONO S, 1999, SURF SCI, V420, P200.
KOREN HW, 1970, REV SCI INSTRUM, V41, P468.
KUMAR M, 2009, APPL PHYS LETT, V95, ARTN 013102.
KUMAR M, 2009, NANOTECHNOLOGY, V20, ARTN 235608.
LI C, 2004, APPL PHYS LETT, V84, P1949, DOI 10.1063/1.1667615.
LI YB, 2003, ADV MATER, V15, P581.
LI YB, 2003, APPL PHYS LETT, V83, P999, DOI 10.1063/1.1597422.
LIDE DR, 1990, HDB CHEM PHYS.
LIU M, 1994, SCANNING, V16, P1.
MAJUMDER M, 2005, NATURE, V438, P44, DOI 10.1038/43844a.
MANI RC, 2003, NANO LETT, V3, P671, DOI 10.1021/nl034125o.
MATTIA D, 2008, MICROFLUID NANOFLUID, V5, P289, DOI 10.1007/s10404-008-0293-5.
OTSUKA S, 1984, METALL TRANS B, V15, P329.
REGAN BC, 2004, NATURE, V428, P924, DOI 10.1038/nature02496.
ROSSI MP, 2004, NANO LETT, V4, P989, DOI 10.1021/nl049688u.
SHPILRAIN EE, 2002, HIGH TEMP+, V40, P825.
SVENSSON K, 2004, PHYS REV LETT, V93, ARTN 145901.
TANG LQ, 2008, CHEM ENG J, V139, P642, DOI 10.1016/j.cej.2008.01.027.
TUZUN RE, 1996, NANOTECHNOLOGY, V7, P241.
UGARTE D, 1996, SCIENCE, V274, P1897.
WAN Q, 2006, NANO LETT, V6, P2909, DOI 10.1021/nl062213d.
WANG B, 2006, NANOTECHNOLOGY, V17, P5916, DOI 10.1088/0957-4484/17/24/003.
WHITBY M, 2008, NANO LETT, V8, P2632, DOI 10.1021/nl080705f.
ZHONG M, 2008, APPL PHYS LETT, V92, ARTN 093118.

Cited Reference Count:
40

Times Cited:
0

Publisher:
AMER CHEMICAL SOC; 1155 16TH ST, NW, WASHINGTON, DC 20036 USA

Subject Category:
Chemistry, Physical; Nanoscience & Nanotechnology; Materials Science, Multidisciplinary

ISSN:
1932-7447

DOI:
10.1021/jp910252f

IDS Number:
556GQ

========================================================================

*Record 2 of 4.
*View Full Record: http://gateway.isiknowledge.com/gateway/Gateway.cgi?GWVersion=2&SrcAuth=Alerting&SrcApp=Alerting&DestApp=WOS&DestLinkType=FullRecord;KeyUT=000274615600001
*Order Full Text [ ]

Title:
Carbon Nanotubes Anchored to Silicon for Device Fabrication

Authors:
Constantopoulos, KT; Shearer, CJ; Ellis, AV; Voelcker, NH; Shapter, JC

Author Full Names:
Constantopoulos, Kristina T.; Shearer, Cameron J.; Ellis, Amanda V.; Voelcker, Nicolas H.; Shapter, Joseph C.

Source:
ADVANCED MATERIALS 22 (5): 557-571 FEB 2 2010

Language:
English

Document Type:
Review

KeyWords Plus:
CHEMICAL-VAPOR-DEPOSITION; FAST MASS-TRANSPORT; FIELD-EMISSION; POLY(SILYL ESTER)S; MEMBRANE EQUILIBRIA; RAMAN-SPECTROSCOPY; NANOFIBER ARRAYS; MAMMALIAN-CELLS; POROUS SILICON; SINGLE

Abstract:
This report highlights recent progress in the fabrication of vertically aligned carbon nanotubes (VA-CNTs) on silicon-based materials. Research into these nanostructured composite materials is spurred by the importance of silicon as a basis for most current devices and the disruptive properties of CNTs. Various CNT attachments methods of covalent and adsorptive nature are critically compared. Selected examples of device applications where the VA-CNT on silicon assemblies are showing particular promise are discussed. These applications include field emitters, filtration membranes, dry adhesives, sensors and scaffolds for biointerfaces.

Reprint Address:
Shapter, JC, Flinders Univ S Australia, Sch Chem Phys & Earth Sci, GPO Box 2100, Bedford Pk, SA 5042, Australia.

Research Institution addresses:
[Constantopoulos, Kristina T.; Shearer, Cameron J.; Ellis, Amanda V.; Voelcker, Nicolas H.; Shapter, Joseph C.] Flinders Univ S Australia, Sch Chem Phys & Earth Sci, Bedford Pk, SA 5042, Australia

E-mail Address:
joe.shapter@flinders.edu.au

Cited References:
ALLEN BL, 2008, NANO LETT, V8, P3899, DOI 10.1021/nl802315h.
ANDERSON RC, 1993, J ELECTROCHEM SOC, V140, P1393.
AUTUMN K, 2000, NATURE, V405, P681.
BAUGHMAN RH, 2002, SCIENCE, V297, P787.
BECKER M, 1949, PHYS REV, V76, P1531.
BENJACOB E, 2008, J MATER CHEM, V18, P5181, DOI 10.1039/b805878b.
BONARD JM, 1998, APPL PHYS LETT, V73, P918.
BONARD JM, 2002, CARBON, V40, P1715.
BOWER C, 2000, APPL PHYS LETT, V77, P830.
BURIAK JM, 2002, CHEM REV, V102, P1271.
CAI D, 2005, NAT METHODS, V2, P449, DOI 10.1038/NMETH761.
CANHAM L, 1997, PROPERTIES POROUS SI.
CARDENAS JF, 2007, CHEM PHYS LETT, V442, P409, DOI 10.1016/j.cplett.2007.06.030.
CAZACU M, 2006, J ORGANOMET CHEM, V691, P3700, DOI 10.1016/j.jorganchem.2006.05.026.
CHAKRABARTI S, 2008, J PHYS CHEM C, V112, P8136, DOI 10.1021/jp802059t.
CHAMSSEDINE F, 2008, CARBON, V46, P957, DOI 10.1016/j.carbon.2008.03.001.
CHAUFER B, 1996, DESALINATION, V104, P37.
CHEN G, 2002, J NANOSCI NANOTECHNO, V2, P621, DOI 10.1166/jnn.2002.143.
CHEN GH, 2008, NANOTECHNOLOGY, V19, ARTN 415703.
CHEN LF, 2008, J NANOMATER, ARTN 783981.
CHEN X, 2007, P NATL ACAD SCI USA, V104, P8218, DOI 10.1073/pnas.0700567104.
CHENG Y, 2003, CR PHYS, V4, P1021, DOI 10.1016/S1631-0705(03)00103-8.
CHHOWALLA M, 2001, APPL PHYS LETT, V79, P2079.
CHOI KH, 2000, SURF SCI, V462, P195.
CONSTANTOPOULOS KT, 2008, P SPIE.
COOPER SM, 2004, NANO LETT, V4, P377, DOI 10.1021/nl0350682.
CORREADUARTE MA, 2004, NANO LETT, V4, P2233, DOI 10.1021/nl048574f.
CRAIGHEAD HG, 1998, BIOMED MICRODEVICES, V1, P49.
CURRAN SA, 2004, J CHEM PHYS, V120, P4886, DOI 10.1063/1.1644109.
CURRAN SA, 2006, J MATER RES, V21, P1071, DOI 10.1557/JMR.2006.0129.
DAI HJ, 2001, TOP APPL PHYS, V80, P29.
DERVISHI E, 2009, PARTICUL SCI TECHNOL, V27, P107, DOI 10.1080/02726350902775962.
DONNAN FG, 1924, CHEM REV, V1, P73.
DONNAN FG, 1995, J MEMBRANE SCI, V100, P45.
DYKE CA, 2003, NANO LETT, V3, P1215, DOI 10.1021/nl034537x.
ELLIS AV, 2005, CHEM PHYS LETT, V412, P449, DOI 10.1016/j.cplett.2005.07.052.
ELLIS AV, 2006, J CHEM PHYS, V125, ARTN 121103.
ELLIS AV, 2007, CHEM LETT, P36.
ENDO M, 1993, J PHYS CHEM SOLIDS, V54, P1841.
FABRE B, 2008, LANGMUIR, V24, P6595, DOI 10.1021/la800358w.
FAN SS, 1999, SCIENCE, V283, P512.
FAN SS, 2000, PHYSICA E, V8, P179.
FLATT AK, 2005, J AM CHEM SOC, V127, P8918, DOI 10.1021/ja051269r.
FORNASIERO F, 2008, P NATL ACAD SCI USA, V105, P17250, DOI 10.1073/pnas.0710437105.
GABAY T, 2005, PHYSICA A, V350, P611, DOI 10.1016/j.physa.2004.11.007.
GIANNONA S, 2007, J NANOSCI NANOTECHNO, V7, P1679, DOI 10.1166/jnn.2007.454.
GRAUPNER R, 2007, J RAMAN SPECTROSC, V38, P673, DOI 10.1002/jrs.1694.
HARRISON BS, 2007, BIOMATERIALS, V28, P344, DOI 10.1016/j.biomaterials.2006.07.044.
HART AJ, 2007, INT J NANOMANUF, V1, P701.
HATA K, 2004, SCIENCE, V306, P1362.
HAVEL BS, 2007, CARBON, V45, P2551.
HAYASHI T, 2002, NANO LETTERS, V2, P491.
HE JL, 2006, NAT MATER, V5, P63, DOI 10.1038/nmat1526.
HIGASHI GS, 1990, APPL PHYS LETT, V56, P656.
HINDS BJ, 2004, SCIENCE, V303, P62, DOI 10.1126/science.1092048.
HOLT JK, 2004, NANO LETT, V4, P2245, DOI 10.1021/nl048876h.
HOLT JK, 2006, SCIENCE, V312, P1034, DOI 10.1126/science.1126298.
HOMMA Y, 2005, J ELECTRON MICROS S1, V54, I3, DOI 10.1093/jmicro/dfi013.
HUANG XJ, 2007, LANGMUIR, V23, P991, DOI 10.1021/la0631441.
HUMMER G, 2001, NATURE, V414, P188.
IM J, 2006, J PHYS CHEM B, V110, P12839, DOI 10.1021/jp062146b.
IZAK T, 2008, J PHYS C SER, V100, UNSP 072008.
JENSEN KL, 1999, PHYS PLASMAS 2, V6, P2241.
JIANG J, 2005, PHYS REV B, V71, ARTN 045417.
JISHI RA, 1993, CHEM PHYS LETT, V209, P77.
JOSELEVICH E, 2008, TOP APPL PHYS, V111, P101.
KALRA A, 2003, P NATL ACAD SCI USA, V100, P10175.
KAM NWS, 2004, J AM CHEM SOC, V126, P6850, DOI 10.1021/ja0486059.
KAMEYAMA A, 1999, MACROMOLECULES, V32, P1407.
KAMINSKA K, 2007, NANOTECHNOLOGY, V18, ARTN 165707.
KHABASHESKU VN, 2002, ACCOUNTS CHEM RES, V35, P1087, DOI 10.1021/ar020146y.
KIM UJ, 2005, J AM CHEM SOC, V127, P15437, DOI 10.1021/ja052951o.
KIM UJ, 2005, PHYS REV LETT, V95, ARTN 157402.
KIMBALL DB, 2002, ANGEW CHEM INT EDIT, V41, P3338.
KOGA K, 2001, NATURE, V412, P802.
KOLESNIKOV AI, 2004, PHYS REV LETT, V93, ARTN 035503.
KRUPKE R, 2002, NANO LETT, V2, P1161, DOI 10.1021/nl025679e.
LACERDA L, 2007, NANO TODAY, V2, P38.
LI YM, 2001, J PHYS CHEM B, V105, P11424.
LIU C, 2005, J PHYS D APPL PHYS, V38, R231, DOI 10.1088/0022-3727/38/14/R01.
LIU J, 1999, CHEM PHYS LETT, V303, P125.
LIU XM, 2009, CARBON, V47, P500, DOI 10.1016/j.carbon.2008.10.033.
LIU ZF, 2000, LANGMUIR, V16, P3569.
LOBO AO, 2008, MAT SCI ENG C-BIO S, V28, P532, DOI 10.1016/j.msec.2007.04.016.
LU FS, 2009, ADV MATER, V21, P139, DOI 10.1002/adma.200801491.
MAJOR RC, 2006, PHYS REV LETT, V96, ARTN 177803.
MAJUMDER M, 2005, NATURE, V438, P44, DOI 10.1038/43844a.
MAJUMDER M, 2007, LANGMUIR, V23, P8624, DOI 10.1021/la700686k.
MAJUMDER M, 2008, J MEMBRANE SCI, V316, P89, DOI 10.1016/j.memsci.2007.09.068.
MANN D, 2006, CARBON NANOTUBES PRO, P19.
MARTINEZ J, 2005, NANOTECHNOLOGY, V16, P2493, DOI 10.1088/0957-4484/16/11/004.
MARUYAMA S, 2002, CHEM PHYS LETT, V360, P229.
MAWHINNEY DB, 2000, J AM CHEM SOC, V122, P2383.
MCKNIGHT TE, 2003, NANOTECHNOLOGY, V14, P551.
MCKNIGHT TE, 2004, NANO LETT, V4, P1213, DOI 10.1021/nl049504b.
MEYYAPPAN M, 2003, PLASMA SOURCES SCI T, V12, P205.
MISRA A, 2006, DIAM RELAT MATER, V15, P385, DOI 10.1016/j.diamond.2005.08.013.
MURAMATSU H, 2005, CHEM COMMUN 0421, P2002, DOI 10.1039/b416393a.
NAN XL, 2002, J COLLOID INTERF SCI, V245, P311.
NEWTON TA, 1999, SURF SCI, V430, P67.
NGUYENVU TDB, 2006, SMALL, V2, P89, DOI 10.1002/smll.200500175.
NOBUAKI N, 1993, APPL PHYS LETT, V62, P1429.
OCONNELL MJ, 2002, SCIENCE, V297, P593.
PARK JH, 2005, J VAC SCI TECHNOL B, V23, P749, DOI 10.1116/1.1851535.
PASTERNACK RM, 2008, LANGMUIR, V24, P12963, DOI 10.1021/la8024827.
PIETRASS T, 2006, J NANOSCI NANOTECHNO, V6, P135, DOI 10.1166/jnn.2006.058.
PLANK NOV, 2004, MICROELECTRON ENG, V73, P578, DOI 10.1016/j.mee.2004.02.088.
POH ZH, 2009, MATER LETT, V63, P757, DOI 10.1016/j.matlet.2008.12.043.
POLICICCHIO A, 2008, J PHYS C SER, V100, UNSP 052093.
PULIKKATHARA MX, 2008, CHEM MATER, V20, P2685, DOI 10.1021/cm7035037.
QU L, 2007, ADV MATER, V19, P3844, DOI 10.1002/adma.200700023.
QU LT, 2008, NANO LETT, V8, P2682, DOI 10.1021/nl800967n.
QU LT, 2008, SCIENCE, V322, P238, DOI 10.1126/science.1159503.
RANA S, 2009, J REINF PLAST COMP, V28, P461.
REN ZF, 1998, SCIENCE, V282, P1105.
RINZLER AG, 1995, SCIENCE, V269, P1550.
SATISHKUMAR BC, 1996, J PHYS B-AT MOL OPT, V29, P4925.
SAUVAJOL JL, 2006, LECT NOTE PHYS, V677, P277.
SCHAEP J, 1998, SEP PURIF TECHNOL, V14, P155.
SCHMELTZER JM, 2005, CHEM NANOMATERIALS, V1.
SEELABOYINA R, 2008, NANOTECHNOLOGY, V19, ARTN 065605.
SETHI S, 2008, NANO LETT, V8, P822, DOI 10.1021/nl0727765.
SGOBBA V, 2009, CHEM SOC REV, V38, P165, DOI 10.1039/b802652c.
SHEARER CJ, 2008, J MATER CHEM, V18, P5753, DOI 10.1039/b811546j.
SHEARER CJ, 2008, P SPIE SMART MAT 5 N, V7267.
SINGH R, 2005, J AM CHEM SOC, V127, P4388, DOI 10.1021/ja0441561.
SMART SK, 2006, CARBON, V44, P1034, DOI 10.1016/j.carbon.2005.10.011.
SONOGASHIRA K, 1975, TETRAHEDRON LETT, V16, P4467.
STEIN A, 2009, ADV MATER, V21, P265, DOI 10.1002/adma.200801492.
STEPHENS RD, 1963, J ORG CHEM, V28, P3313.
STEVENS JL, 2003, NANO LETT, V3, P331, DOI 10.1021/nl025944w.
STEWART MP, 2000, ADV MATER, V12, P859.
STEWART MP, 2004, J AM CHEM SOC, V126, P370.
STUART BH, 2004, INFRARED SPECTROSCOP.
SUDALAI A, 2000, ORG LETT, V2, P3213, DOI 10.1021/ol006407q.
TANG J, 2005, NANO LETT, V5, P11, DOI 10.1021/nl048803y.
TEO KBK, 2001, APPL PHYS LETT, V79, P1534.
TIAN Y, 2006, P NATL ACAD SCI USA, V103, P19320, DOI 10.1073/pnas.0608841103.
TING JM, 2009, NANOTECHNOLOGY, V20, ARTN 025608.
TUNE DD, CARBON UNPUB.
TUZLAKOGLU K, 2005, J MATER SCI-MATER M, V16, P1099, DOI 10.1007/s10856-005-4713-8.
VAJTAI R, 2007, TOP APPL PHYS, V109, P188.
VANDERWAL RL, 2001, CARBON, V39, P2277.
VEREB G, 2003, P NATL ACAD SCI USA, V100, P8053, DOI 10.1073/pnas.1332550100.
VERWEIJ H, 2007, SMALL, V3, P1996, DOI 10.1002/smll.200700368.
WAGHE A, 2002, J CHEM PHYS, V117, P10789, DOI 10.1063/1.1519861.
WALTHER JH, 2001, J PHYS CHEM B, V105, P9980.
WANG M, 1998, MACROMOLECULES, V31, P7606.
WANG M, 1999, J POLYM SCI POL CHEM, V37, P3606.
WANG QH, 1998, APPL PHYS LETT, V72, P2912.
WANG ZK, 2007, NANO LETT, V7, P697, DOI 10.1021/nl062853g.
WEI BQ, 2002, NATURE, V416, P495.
WIRTH CT, 2008, DIAM RELAT MATER, V17, P1518, DOI 10.1016/j.diamond.2007.11.019.
WONG SS, 1998, NATURE, V394, P52.
WORLEKNIRSCH JM, 2006, NANO LETT, V6, P1261, DOI 10.1021/nl060177c.
YAMADA T, 2006, NAT NANOTECHNOL, V1, P131, DOI 10.1038/nnano.2006.95.
YANG CM, 2006, PHYS REV B, V73, ARTN 075419.
YAQIONG X, 2006, APPL PHYS LETT, V89, UNSP 123116.
YU J, 2008, FULLER NANOTUB CAR N, V16, P18, DOI 10.1080/15363830701779299.
YU JX, 2006, SOFT MATTER, V2, P1081, DOI 10.1039/b611016a.
YU JX, 2007, PHYS CHEM CHEM PHYS, V9, P510, DOI 10.1039/b615096a.
YU JX, 2008, J AM CHEM SOC, V130, P8788, DOI 10.1021/ja801142k.
YUE GZ, 2002, APPL PHYS LETT, V81, P355.
YUN YH, 2006, J PHYS CHEM B, V110, P23920, DOI 10.1021/jp057171g.
ZANGI R, 2003, J CHEM PHYS, V119, P1694, DOI 10.1063/1.1580101.
ZANGI R, 2003, PHYS REV LETT, V91, ARTN 025502.
ZENG LL, 2008, J NANOSCI NANOTECHNO, V8, P1545, DOI 10.1166/jnn.2008.400.
ZHANG GY, 2005, P NATL ACAD SCI USA, V102, P16141, DOI 10.1073/pnas.0507064102.
ZHANG L, 2007, J PHYS CHEM C, V111, P11240, DOI 10.1021/jp0729011.
ZHANG NY, 2002, SMART MATER STRUCT, V11, P962.
ZHANG X, 2005, SENSOR ACTUAT B-CHEM, V106, P843, DOI 10.1016/j.snb.2004.10.039.
ZHENG G, 2007, NANO LETT, V7, P1622, DOI 10.1021/nl070585w.
ZHU W, 1999, APPL PHYS LETT, V75, P873.

Cited Reference Count:
173

Times Cited:
0

Publisher:
WILEY-V C H VERLAG GMBH; PO BOX 10 11 61, D-69451 WEINHEIM, GERMANY

Subject Category:
Chemistry, Multidisciplinary; Chemistry, Physical; Nanoscience & Nanotechnology; Materials Science, Multidisciplinary; Physics, Applied; Physics, Condensed Matter

ISSN:
0935-9648

DOI:
10.1002/adma.200900945

IDS Number:
556TP

========================================================================

*Record 3 of 4.
*View Full Record: http://gateway.isiknowledge.com/gateway/Gateway.cgi?GWVersion=2&SrcAuth=Alerting&SrcApp=Alerting&DestApp=WOS&DestLinkType=FullRecord;KeyUT=000274635800024
*Order Full Text [ ]

Title:
Role of Surfactants in Carbon Nanotubes Density Gradient Separation

Authors:
Carvalho, EJF; dos Santos, MC

Author Full Names:
Carvalho, Elton J. F.; dos Santos, Maria Cristina

Source:
ACS NANO 4 (2): 765-770 FEB 2010

Language:
English

Document Type:
Article

Author Keywords:
molecular dynamics; carbon nanotube density; surfactants

KeyWords Plus:
WATER; DYNAMICS; SIMULATIONS; AMPHIPHILES

Abstract:
Several strategies aimed at sorting single-walled carbon nanotubes (SWNT) by diameter and/or electronic structure have been developed in recent years. A nondestructive sorting method was recently proposed in which nanotube bundles are dispersed in water-surfactant solutions and submitted to ultracentrifugation in a density gradient. By this method, SWNTs of different diameters are distributed according to their densities along the centrifuge tube. A mixture of two anionic amphiphiles, namely sodium dodecylsulfate (SIDS) and sodium cholate (SC), presented the best performance in discriminating nanotubes by diameter. We present molecular dynamics studies of the water-surfactant-SWNT system. The simulations revealed one aspect of the discriminating power of surfactants: they can actually be attracted toward the interior of the nanotube cage. The binding energies of SDS and SC on the outer nanotube surface are very similar and depend weakly on diameter. The binding inside the tu!
bes, on the contrary, is strongly diameter dependent: SDS fits best inside tubes with diameters ranging from 8 to 9 angstrom, while SC is best accommodated in larger tubes, with diameters in the range 10.5-12 angstrom. The dynamics at room temperature showed that, as the amphiphile moves to the hollow cage, water molecules are dragged together, thereby promoting the nanotube filling. The resulting densities of filled SWNT are in agreement with measured densities.

Reprint Address:
dos Santos, MC, Univ Sao Paulo, Inst Fis, Dept Fis Mat & Mecan, BR-05315970 Sao Paulo, Brazil.

Research Institution addresses:
[Carvalho, Elton J. F.; dos Santos, Maria Cristina] Univ Sao Paulo, Inst Fis, Dept Fis Mat & Mecan, BR-05315970 Sao Paulo, Brazil

E-mail Address:
mcsantos@if.usp.br

Cited References:
*ACC INC, 2005, CERIUS2 VERS 4 10.
ARAI N, 2008, J AM CHEM SOC, V130, P7916, DOI 10.1021/ja7108739.
ARNOLD MS, 2006, NAT NANOTECHNOL, V1, P60, DOI 10.1038/nnano.2006.52.
ARNOLD MS, 2008, ACS NANO, V2, P2291, DOI 10.1021/nn800512t.
DAUBEROSGUTHORP.P, 1988, PROTEINS, V4, P31.
FRIDDLE RW, 2007, NAT NANOTECHNOL, V2, P692, DOI 10.1038/nnano.2007.334.
GUILLOT B, 2002, J MOL LIQ, V101, P219.
HEADGORDON T, 2002, CHEM REV, V102, P2561.
HENNRICH F, 2007, PHYS STATUS SOLIDI B, V244, P3896, DOI 10.1002/pssb.200776104.
HERSAM MC, 2008, NAT NANOTECHNOL, V3, P387, DOI 10.1038/nnano.2008.135.
HOBZA P, 1997, J COMPUT CHEM, V18, P1136.
HOOVER WG, 1985, PHYS REV A, V31, P1695.
HUMMER G, 2001, NATURE, V414, P188.
KE PC, 2007, PHYS CHEM CHEM PHYS, V9, P439, DOI 10.1039/b611142d.
KOGA K, 2001, NATURE, V412, P802.
MALLIK AB, 2003, CRYST GROWTH DES, V3, P467, DOI 10.1021/cg030005i.
NAIR N, 2008, LANGMUIR, V24, P1790, DOI 10.1021/la702516u.
OKAZAKI T, 2005, NANO LETT, V5, P2618, DOI 10.1021/nl051888y.
RAPPE AK, 1991, J PHYS CHEM-US, V95, P3358.
RINZLER AG, 2006, NAT NANOTECHNOL, V1, P17, DOI 10.1038/nnano.2006.76.
TUMMALA NR, 2009, ACS NANO, V3, P595, DOI 10.1021/nn8007756.
TUMMALA NR, 2009, PHYS REV E, V80, UNSP 0214081-10.
WENSELEERS W, 2007, ADV MATER, V19, P2274, DOI 10.1002/adma.200700773.
ZHANG XR, 2008, J PHYS CHEM C, V112, P2943, DOI 10.1021/jp710840b.

Cited Reference Count:
24

Times Cited:
0

Publisher:
AMER CHEMICAL SOC; 1155 16TH ST, NW, WASHINGTON, DC 20036 USA

Subject Category:
Chemistry, Multidisciplinary; Nanoscience & Nanotechnology; Materials Science, Multidisciplinary

ISSN:
1936-0851

DOI:
10.1021/nn901350s

IDS Number:
556ZI

========================================================================

*Record 4 of 4.
*View Full Record: http://gateway.isiknowledge.com/gateway/Gateway.cgi?GWVersion=2&SrcAuth=Alerting&SrcApp=Alerting&DestApp=WOS&DestLinkType=FullRecord;KeyUT=000274635800051
*Order Full Text [ ]

Title:
Single-File Diffusion of Water Inside Narrow Carbon Nanorings

Authors:
Mukherjee, B; Maiti, PK; Dasgupta, C; Sood, AK

Author Full Names:
Mukherjee, Biswaroop; Maiti, Prabal K.; Dasgupta, Chandan; Sood, A. K.

Source:
ACS NANO 4 (2): 985-991 FEB 2010

Language:
English

Document Type:
Article

Author Keywords:
water; carbon; nanotube; nanoring; single-file diffusion; hydrophobicity; transport; hydrogen bond

KeyWords Plus:
ONE-DIMENSIONAL DIFFUSION; LONG-TIME LIMIT; NANOTUBES; CHANNEL; EQUILIBRIUM; CONFINEMENT; BOUNDARIES; PARTICLES; KINETICS; LATTICE

Abstract:
We use atomistic molecular dynamics (MD) simulations to study the diffusion of water molecules confined inside narrow (6,6) carbon nanorings. The water molecules form two oppositely polarized chains. It is shown that the effective interaction between these two chains is repulsive in nature. The computed mean-squared displacement (MSD) clearly shows a scaling with time <Delta theta(2)(t)> similar to t(1/2), which is consistent with single-file diffusion (SFD). The time up to which the water molecules undergo SFD is shown to be the lifetime of the water molecules inside these chains. Simulations of "uncharged" water molecules inside the nanoring show the formation of several water chains and yield SFD. These observations conclusively prove that the diffusion is Fickian when there is a single chain of water and SFD is observed only when two or more chains are present.

Reprint Address:
Mukherjee, B, Indian Inst Sci, Dept Phys, Ctr Condensed Matter Theory, Bangalore 560012, Karnataka, India.

Research Institution addresses:
[Mukherjee, Biswaroop; Maiti, Prabal K.; Dasgupta, Chandan] Indian Inst Sci, Dept Phys, Ctr Condensed Matter Theory, Bangalore 560012, Karnataka, India; [Dasgupta, Chandan] Jawaharlal Nehru Ctr Adv Sci Res, Condensed Matter Theory Unit, Bangalore 560064, Karnataka, India

E-mail Address:
biswa@physics.iisc.ernet.in

Cited References:
AGRE P, 2004, ANGEW CHEM INT EDIT, V43, P4278, DOI 10.1002/anie.200460804.
ALEXANDER S, 1978, PHYS REV B, V18, P2011.
BEREZHKOVSKII A, 2002, PHYS REV LETT, UNSP 89064503(1)-064503(4).
CASE DA, 1999, AMBER 7.
FEDDERS PA, 1978, PHYS REV B, V17, P40.
HAHN K, 1996, PHYS REV LETT, V76, P2762.
HAHN K, 1998, J PHYS CHEM B, V102, P5766.
HARRIS TE, 1965, J APPL PROBAB, V2, P323.
HUMMER G, 2001, NATURE, V414, P188.
JESPEN D, 1965, J MATH PHYS, V6, P405.
JOBIC H, 1997, J PHYS CHEM B, V101, P5834.
JORGENSEN WL, 1983, J CHEM PHYS, V79, P926.
KARGER J, 1992, PHYS REV A, V45, P4173.
KARGER J, 1993, PHYS REV E, V47, P1427.
KOLLMANN M, 2003, PHYS REV LETT, UNSP 90180602(1)-180602(4).
KUKLA V, 1996, SCIENCE, V272, P702.
LEE KH, 2005, NANO LETT, V5, P793, DOI 10.1021/nl0502219.
LEVITT DG, 1973, PHYS REV A, V8, P3050.
LIN B, 2005, PHYS REV LETT, UNSP 94216001(1)-216001(4).
LIN BH, 2002, EUROPHYS LETT, V57, P724.
LIU J, 1997, NATURE, V385, P780.
LUTZ C, 2004, PHYS REV LETT, UNSP 93026001(1)-026011(4).
MAIBAUM L, 2003, J PHYS CHEM B, V107, P1189, DOI 10.1021/jp0267196.
MAJUMDER SR, 2006, J CHEM PHYS, UNSP 125201103(1)-201103(4).
MAJUMDER SR, 2007, J CHEM PHYS, UNSP 127054706(1)-054706(5).
MAO ZG, 2000, J PHYS CHEM B, V104, P4618.
MARTEL R, 1999, J PHYS CHEM B, V103, P7551.
MARTEL R, 1999, NATURE, V398, P299.
MASHL RJ, 2003, NANO LETT, V3, P589, DOI 10.1021/nl0340226.
MUKHERJEE B, 2007, J CHEM PHYS, UNSP 126124704(1)-124704(8).
MURATA K, 2000, NATURE, V407, P599.
NELSON PH, 1999, J CHEM PHYS, V110, P9235.
PRESTON GM, 1991, P NATL ACAD SCI USA, V88, P11110.
RASAIAH JC, 2008, ANNU REV PHYS CHEM, V59, P713, DOI 10.1146/annurev.physchem.59.032607.093815.
RICHARDS PM, 1977, PHYS REV B, V16, P1393.
SCHURING A, 2005, J PHYS CHEM B, V109, P16711, DOI 10.1021/jp052314k.
STRIOLO A, 2006, NANO LETT, V6, P633, DOI 10.1021/nl052254u.
VANBEIJEREN H, 1983, PHYS REV B, V28, P5711.
VASENKOV S, 2006, LANGMUIR, V22, P5728, DOI 10.1021/la060378w.
WAGHE A, 2002, J CHEM PHYS, V117, P10789, DOI 10.1063/1.1519861.
WEI QH, 2000, SCIENCE, V287, P625.
ZEIDEL ML, 1992, BIOCHEMISTRY-US, V31, P7436.
ZHOU X, 2004, J CHEM PHYS, V121, P7996, DOI 10.1063/1.1799971.

Cited Reference Count:
43

Times Cited:
0

Publisher:
AMER CHEMICAL SOC; 1155 16TH ST, NW, WASHINGTON, DC 20036 USA

Subject Category:
Chemistry, Multidisciplinary; Nanoscience & Nanotechnology; Materials Science, Multidisciplinary

ISSN:
1936-0851

DOI:
10.1021/nn900858a

IDS Number:
556ZI

========================================================================
*Order Full Text*
All Customers
--------------
Please contact your library administrator, or person(s) responsible for
document delivery, to find out more about your organization's policy for
obtaining the full text of the above articles. If your organization does
not have a current document delivery provider, your administrator can
contact ISI Document Solution at service@isidoc.com, or call 800-603-4367
or 734-459-8565.

IDS Customers
--------------
IDS customers can purchase the full text of an article (having page number,
volume, and issue information) by returning this ENTIRE message as a Reply
to Sender or Forward to orders@isidoc.com. Mark your choices with an X in
the "Order Full Text: []" brackets for each item. For example, [X].

Please enter your account number here:

========================================================================
*Help Desk Contact Information*
If you have any questions, please visit the Thomson Scientific Technical Support Contact Information Web page:
http://www.thomsonscientific.com/support/techsupport
========================================================================

Thursday, March 4, 2010

ISI Web of Knowledge Alert - Majumder M

ISI Web of Knowledge Citation Alert

Cited Article: Majumder M. Nanoscale hydrodynamics - Enhanced flow in carbon nanotubes
Alert Expires: 09 NOV 2010
Number of Citing Articles: 3 new records this week (3 in this e-mail)
Organization ID: 3b97d1bbc1878baed0ab183d8b03130b
========================================================================
Note: Instructions on how to purchase the full text of an article and Help Desk Contact information are at the end of the e-mail.
========================================================================

*Record 1 of 3.
*View Full Record: http://gateway.isiknowledge.com/gateway/Gateway.cgi?GWVersion=2&SrcAuth=Alerting&SrcApp=Alerting&DestApp=WOS&DestLinkType=FullRecord;KeyUT=000274578700008
*Order Full Text [ ]

Title:
Retardation of Liquid Indium Flow in Indium Oxide Nanotubes

Authors:
Kumar, M; Singh, VN; Mehta, BR; Singh, JP

Author Full Names:
Kumar, Mukesh; Singh, Vidya N.; Mehta, Bodh R.; Singh, Jitendra P.

Source:
JOURNAL OF PHYSICAL CHEMISTRY C 114 (7): 2891-2895 FEB 25 2010

Language:
English

Document Type:
Article

KeyWords Plus:
CARBON NANOTUBES; FLUID-FLOW; TEMPERATURE; NANOTHERMOMETER; SOLUBILITY; TRANSPORT; METALS; WATER

Abstract:
High-resolution transmission electron microscopy and energy-dispersive X-ray analysis carried out oil indium oxide nanotubes grown by a chemical vapor deposition technique show the presence of indium metal segments along the indium oxide (IO) nanotube axis having one end closed. A real-time HRTEM video In continuous mode imaging has been carried Out to study the directional now of liquid indium. Electron-beam-induced heating results in the increase ill indium vapor pressure and desorption of gases at the closed end of the IO nanotubes. This buildup of differential pressure between open and closed columns leads to the now of indium away from the closed end of the IO nanotube. Interestingly, the indium flow rate was observed to decrease from 2.8 to 0.3 nm/s with a corresponding decrease in the nanotubes' diameter from 138 to 38 nm. This Study indicates that the wetting properties of the liquid-host nanotube interface critically decides the fluid dynamics at nanoscale, and depe!
nding upon the interfacial properties, enhancement or retardation of flow call be observed oil the reduction of the nanotube diameter.

Reprint Address:
Mehta, BR, Indian Inst Technol Delhi, Dept Phys, New Delhi 110016, India.

Research Institution addresses:
[Kumar, Mukesh; Singh, Vidya N.; Mehta, Bodh R.; Singh, Jitendra P.] Indian Inst Technol Delhi, Dept Phys, New Delhi 110016, India

E-mail Address:
brmehta@physics.iitd.ac.in; jpsingh@physics.iitd.ac.in

Cited References:
BURNS MA, 1998, SCIENCE, V282, P484.
CHEN PC, 2009, APPL PHYS LETT, V94, ARTN 043113.
CHEN X, 2008, NANO LETT, V8, P2988, DOI 10.1021/nl802046b.
CHOPRA KL, 1983, THIN SOLID FILMS, V102, P1.
DONG LX, 2007, NANO LETT, V7, P58, DOI 10.1021/nl061980+.
DU N, 2007, ADV MATER, V19, P1641, DOI 10.1002/adma.200602128.
EBBESEN TW, 1994, ANNU REV MATER SCI, V24, P235.
GAO YH, 2002, NATURE, V415, P599.
GOGOTSI Y, 2001, APPL PHYS LETT, V79, P1021.
GOLDBEG D, 2005, CHEM PHYS LETT, V409, P75.
GONG NW, 2008, APPL PHYS LETT, V92, ARTN 073101.
HOLT JK, 2006, SCIENCE, V312, P1034, DOI 10.1126/science.1126298.
HONG MH, 2000, APPL PHYS LETT, V77, P2604.
HU JQ, 2008, ACS NANO, V2, P107, DOI 10.1021/nn700285d.
HUMMER G, 2001, NATURE, V414, P188.
KIM YT, 2004, APPL PHYS LETT, V87, UNSP 234106.
KONO S, 1999, SURF SCI, V420, P200.
KOREN HW, 1970, REV SCI INSTRUM, V41, P468.
KUMAR M, 2009, APPL PHYS LETT, V95, ARTN 013102.
KUMAR M, 2009, NANOTECHNOLOGY, V20, ARTN 235608.
LI C, 2004, APPL PHYS LETT, V84, P1949, DOI 10.1063/1.1667615.
LI YB, 2003, ADV MATER, V15, P581.
LI YB, 2003, APPL PHYS LETT, V83, P999, DOI 10.1063/1.1597422.
LIDE DR, 1990, HDB CHEM PHYS.
LIU M, 1994, SCANNING, V16, P1.
MAJUMDER M, 2005, NATURE, V438, P44, DOI 10.1038/43844a.
MANI RC, 2003, NANO LETT, V3, P671, DOI 10.1021/nl034125o.
MATTIA D, 2008, MICROFLUID NANOFLUID, V5, P289, DOI 10.1007/s10404-008-0293-5.
OTSUKA S, 1984, METALL TRANS B, V15, P329.
REGAN BC, 2004, NATURE, V428, P924, DOI 10.1038/nature02496.
ROSSI MP, 2004, NANO LETT, V4, P989, DOI 10.1021/nl049688u.
SHPILRAIN EE, 2002, HIGH TEMP+, V40, P825.
SVENSSON K, 2004, PHYS REV LETT, V93, ARTN 145901.
TANG LQ, 2008, CHEM ENG J, V139, P642, DOI 10.1016/j.cej.2008.01.027.
TUZUN RE, 1996, NANOTECHNOLOGY, V7, P241.
UGARTE D, 1996, SCIENCE, V274, P1897.
WAN Q, 2006, NANO LETT, V6, P2909, DOI 10.1021/nl062213d.
WANG B, 2006, NANOTECHNOLOGY, V17, P5916, DOI 10.1088/0957-4484/17/24/003.
WHITBY M, 2008, NANO LETT, V8, P2632, DOI 10.1021/nl080705f.
ZHONG M, 2008, APPL PHYS LETT, V92, ARTN 093118.

Cited Reference Count:
40

Times Cited:
0

Publisher:
AMER CHEMICAL SOC; 1155 16TH ST, NW, WASHINGTON, DC 20036 USA

Subject Category:
Chemistry, Physical; Nanoscience & Nanotechnology; Materials Science, Multidisciplinary

ISSN:
1932-7447

DOI:
10.1021/jp910252f

IDS Number:
556GQ

========================================================================

*Record 2 of 3.
*View Full Record: http://gateway.isiknowledge.com/gateway/Gateway.cgi?GWVersion=2&SrcAuth=Alerting&SrcApp=Alerting&DestApp=WOS&DestLinkType=FullRecord;KeyUT=000274615600001
*Order Full Text [ ]

Title:
Carbon Nanotubes Anchored to Silicon for Device Fabrication

Authors:
Constantopoulos, KT; Shearer, CJ; Ellis, AV; Voelcker, NH; Shapter, JC

Author Full Names:
Constantopoulos, Kristina T.; Shearer, Cameron J.; Ellis, Amanda V.; Voelcker, Nicolas H.; Shapter, Joseph C.

Source:
ADVANCED MATERIALS 22 (5): 557-571 FEB 2 2010

Language:
English

Document Type:
Review

KeyWords Plus:
CHEMICAL-VAPOR-DEPOSITION; FAST MASS-TRANSPORT; FIELD-EMISSION; POLY(SILYL ESTER)S; MEMBRANE EQUILIBRIA; RAMAN-SPECTROSCOPY; NANOFIBER ARRAYS; MAMMALIAN-CELLS; POROUS SILICON; SINGLE

Abstract:
This report highlights recent progress in the fabrication of vertically aligned carbon nanotubes (VA-CNTs) on silicon-based materials. Research into these nanostructured composite materials is spurred by the importance of silicon as a basis for most current devices and the disruptive properties of CNTs. Various CNT attachments methods of covalent and adsorptive nature are critically compared. Selected examples of device applications where the VA-CNT on silicon assemblies are showing particular promise are discussed. These applications include field emitters, filtration membranes, dry adhesives, sensors and scaffolds for biointerfaces.

Reprint Address:
Shapter, JC, Flinders Univ S Australia, Sch Chem Phys & Earth Sci, GPO Box 2100, Bedford Pk, SA 5042, Australia.

Research Institution addresses:
[Constantopoulos, Kristina T.; Shearer, Cameron J.; Ellis, Amanda V.; Voelcker, Nicolas H.; Shapter, Joseph C.] Flinders Univ S Australia, Sch Chem Phys & Earth Sci, Bedford Pk, SA 5042, Australia

E-mail Address:
joe.shapter@flinders.edu.au

Cited References:
ALLEN BL, 2008, NANO LETT, V8, P3899, DOI 10.1021/nl802315h.
ANDERSON RC, 1993, J ELECTROCHEM SOC, V140, P1393.
AUTUMN K, 2000, NATURE, V405, P681.
BAUGHMAN RH, 2002, SCIENCE, V297, P787.
BECKER M, 1949, PHYS REV, V76, P1531.
BENJACOB E, 2008, J MATER CHEM, V18, P5181, DOI 10.1039/b805878b.
BONARD JM, 1998, APPL PHYS LETT, V73, P918.
BONARD JM, 2002, CARBON, V40, P1715.
BOWER C, 2000, APPL PHYS LETT, V77, P830.
BURIAK JM, 2002, CHEM REV, V102, P1271.
CAI D, 2005, NAT METHODS, V2, P449, DOI 10.1038/NMETH761.
CANHAM L, 1997, PROPERTIES POROUS SI.
CARDENAS JF, 2007, CHEM PHYS LETT, V442, P409, DOI 10.1016/j.cplett.2007.06.030.
CAZACU M, 2006, J ORGANOMET CHEM, V691, P3700, DOI 10.1016/j.jorganchem.2006.05.026.
CHAKRABARTI S, 2008, J PHYS CHEM C, V112, P8136, DOI 10.1021/jp802059t.
CHAMSSEDINE F, 2008, CARBON, V46, P957, DOI 10.1016/j.carbon.2008.03.001.
CHAUFER B, 1996, DESALINATION, V104, P37.
CHEN G, 2002, J NANOSCI NANOTECHNO, V2, P621, DOI 10.1166/jnn.2002.143.
CHEN GH, 2008, NANOTECHNOLOGY, V19, ARTN 415703.
CHEN LF, 2008, J NANOMATER, ARTN 783981.
CHEN X, 2007, P NATL ACAD SCI USA, V104, P8218, DOI 10.1073/pnas.0700567104.
CHENG Y, 2003, CR PHYS, V4, P1021, DOI 10.1016/S1631-0705(03)00103-8.
CHHOWALLA M, 2001, APPL PHYS LETT, V79, P2079.
CHOI KH, 2000, SURF SCI, V462, P195.
CONSTANTOPOULOS KT, 2008, P SPIE.
COOPER SM, 2004, NANO LETT, V4, P377, DOI 10.1021/nl0350682.
CORREADUARTE MA, 2004, NANO LETT, V4, P2233, DOI 10.1021/nl048574f.
CRAIGHEAD HG, 1998, BIOMED MICRODEVICES, V1, P49.
CURRAN SA, 2004, J CHEM PHYS, V120, P4886, DOI 10.1063/1.1644109.
CURRAN SA, 2006, J MATER RES, V21, P1071, DOI 10.1557/JMR.2006.0129.
DAI HJ, 2001, TOP APPL PHYS, V80, P29.
DERVISHI E, 2009, PARTICUL SCI TECHNOL, V27, P107, DOI 10.1080/02726350902775962.
DONNAN FG, 1924, CHEM REV, V1, P73.
DONNAN FG, 1995, J MEMBRANE SCI, V100, P45.
DYKE CA, 2003, NANO LETT, V3, P1215, DOI 10.1021/nl034537x.
ELLIS AV, 2005, CHEM PHYS LETT, V412, P449, DOI 10.1016/j.cplett.2005.07.052.
ELLIS AV, 2006, J CHEM PHYS, V125, ARTN 121103.
ELLIS AV, 2007, CHEM LETT, P36.
ENDO M, 1993, J PHYS CHEM SOLIDS, V54, P1841.
FABRE B, 2008, LANGMUIR, V24, P6595, DOI 10.1021/la800358w.
FAN SS, 1999, SCIENCE, V283, P512.
FAN SS, 2000, PHYSICA E, V8, P179.
FLATT AK, 2005, J AM CHEM SOC, V127, P8918, DOI 10.1021/ja051269r.
FORNASIERO F, 2008, P NATL ACAD SCI USA, V105, P17250, DOI 10.1073/pnas.0710437105.
GABAY T, 2005, PHYSICA A, V350, P611, DOI 10.1016/j.physa.2004.11.007.
GIANNONA S, 2007, J NANOSCI NANOTECHNO, V7, P1679, DOI 10.1166/jnn.2007.454.
GRAUPNER R, 2007, J RAMAN SPECTROSC, V38, P673, DOI 10.1002/jrs.1694.
HARRISON BS, 2007, BIOMATERIALS, V28, P344, DOI 10.1016/j.biomaterials.2006.07.044.
HART AJ, 2007, INT J NANOMANUF, V1, P701.
HATA K, 2004, SCIENCE, V306, P1362.
HAVEL BS, 2007, CARBON, V45, P2551.
HAYASHI T, 2002, NANO LETTERS, V2, P491.
HE JL, 2006, NAT MATER, V5, P63, DOI 10.1038/nmat1526.
HIGASHI GS, 1990, APPL PHYS LETT, V56, P656.
HINDS BJ, 2004, SCIENCE, V303, P62, DOI 10.1126/science.1092048.
HOLT JK, 2004, NANO LETT, V4, P2245, DOI 10.1021/nl048876h.
HOLT JK, 2006, SCIENCE, V312, P1034, DOI 10.1126/science.1126298.
HOMMA Y, 2005, J ELECTRON MICROS S1, V54, I3, DOI 10.1093/jmicro/dfi013.
HUANG XJ, 2007, LANGMUIR, V23, P991, DOI 10.1021/la0631441.
HUMMER G, 2001, NATURE, V414, P188.
IM J, 2006, J PHYS CHEM B, V110, P12839, DOI 10.1021/jp062146b.
IZAK T, 2008, J PHYS C SER, V100, UNSP 072008.
JENSEN KL, 1999, PHYS PLASMAS 2, V6, P2241.
JIANG J, 2005, PHYS REV B, V71, ARTN 045417.
JISHI RA, 1993, CHEM PHYS LETT, V209, P77.
JOSELEVICH E, 2008, TOP APPL PHYS, V111, P101.
KALRA A, 2003, P NATL ACAD SCI USA, V100, P10175.
KAM NWS, 2004, J AM CHEM SOC, V126, P6850, DOI 10.1021/ja0486059.
KAMEYAMA A, 1999, MACROMOLECULES, V32, P1407.
KAMINSKA K, 2007, NANOTECHNOLOGY, V18, ARTN 165707.
KHABASHESKU VN, 2002, ACCOUNTS CHEM RES, V35, P1087, DOI 10.1021/ar020146y.
KIM UJ, 2005, J AM CHEM SOC, V127, P15437, DOI 10.1021/ja052951o.
KIM UJ, 2005, PHYS REV LETT, V95, ARTN 157402.
KIMBALL DB, 2002, ANGEW CHEM INT EDIT, V41, P3338.
KOGA K, 2001, NATURE, V412, P802.
KOLESNIKOV AI, 2004, PHYS REV LETT, V93, ARTN 035503.
KRUPKE R, 2002, NANO LETT, V2, P1161, DOI 10.1021/nl025679e.
LACERDA L, 2007, NANO TODAY, V2, P38.
LI YM, 2001, J PHYS CHEM B, V105, P11424.
LIU C, 2005, J PHYS D APPL PHYS, V38, R231, DOI 10.1088/0022-3727/38/14/R01.
LIU J, 1999, CHEM PHYS LETT, V303, P125.
LIU XM, 2009, CARBON, V47, P500, DOI 10.1016/j.carbon.2008.10.033.
LIU ZF, 2000, LANGMUIR, V16, P3569.
LOBO AO, 2008, MAT SCI ENG C-BIO S, V28, P532, DOI 10.1016/j.msec.2007.04.016.
LU FS, 2009, ADV MATER, V21, P139, DOI 10.1002/adma.200801491.
MAJOR RC, 2006, PHYS REV LETT, V96, ARTN 177803.
MAJUMDER M, 2005, NATURE, V438, P44, DOI 10.1038/43844a.
MAJUMDER M, 2007, LANGMUIR, V23, P8624, DOI 10.1021/la700686k.
MAJUMDER M, 2008, J MEMBRANE SCI, V316, P89, DOI 10.1016/j.memsci.2007.09.068.
MANN D, 2006, CARBON NANOTUBES PRO, P19.
MARTINEZ J, 2005, NANOTECHNOLOGY, V16, P2493, DOI 10.1088/0957-4484/16/11/004.
MARUYAMA S, 2002, CHEM PHYS LETT, V360, P229.
MAWHINNEY DB, 2000, J AM CHEM SOC, V122, P2383.
MCKNIGHT TE, 2003, NANOTECHNOLOGY, V14, P551.
MCKNIGHT TE, 2004, NANO LETT, V4, P1213, DOI 10.1021/nl049504b.
MEYYAPPAN M, 2003, PLASMA SOURCES SCI T, V12, P205.
MISRA A, 2006, DIAM RELAT MATER, V15, P385, DOI 10.1016/j.diamond.2005.08.013.
MURAMATSU H, 2005, CHEM COMMUN 0421, P2002, DOI 10.1039/b416393a.
NAN XL, 2002, J COLLOID INTERF SCI, V245, P311.
NEWTON TA, 1999, SURF SCI, V430, P67.
NGUYENVU TDB, 2006, SMALL, V2, P89, DOI 10.1002/smll.200500175.
NOBUAKI N, 1993, APPL PHYS LETT, V62, P1429.
OCONNELL MJ, 2002, SCIENCE, V297, P593.
PARK JH, 2005, J VAC SCI TECHNOL B, V23, P749, DOI 10.1116/1.1851535.
PASTERNACK RM, 2008, LANGMUIR, V24, P12963, DOI 10.1021/la8024827.
PIETRASS T, 2006, J NANOSCI NANOTECHNO, V6, P135, DOI 10.1166/jnn.2006.058.
PLANK NOV, 2004, MICROELECTRON ENG, V73, P578, DOI 10.1016/j.mee.2004.02.088.
POH ZH, 2009, MATER LETT, V63, P757, DOI 10.1016/j.matlet.2008.12.043.
POLICICCHIO A, 2008, J PHYS C SER, V100, UNSP 052093.
PULIKKATHARA MX, 2008, CHEM MATER, V20, P2685, DOI 10.1021/cm7035037.
QU L, 2007, ADV MATER, V19, P3844, DOI 10.1002/adma.200700023.
QU LT, 2008, NANO LETT, V8, P2682, DOI 10.1021/nl800967n.
QU LT, 2008, SCIENCE, V322, P238, DOI 10.1126/science.1159503.
RANA S, 2009, J REINF PLAST COMP, V28, P461.
REN ZF, 1998, SCIENCE, V282, P1105.
RINZLER AG, 1995, SCIENCE, V269, P1550.
SATISHKUMAR BC, 1996, J PHYS B-AT MOL OPT, V29, P4925.
SAUVAJOL JL, 2006, LECT NOTE PHYS, V677, P277.
SCHAEP J, 1998, SEP PURIF TECHNOL, V14, P155.
SCHMELTZER JM, 2005, CHEM NANOMATERIALS, V1.
SEELABOYINA R, 2008, NANOTECHNOLOGY, V19, ARTN 065605.
SETHI S, 2008, NANO LETT, V8, P822, DOI 10.1021/nl0727765.
SGOBBA V, 2009, CHEM SOC REV, V38, P165, DOI 10.1039/b802652c.
SHEARER CJ, 2008, J MATER CHEM, V18, P5753, DOI 10.1039/b811546j.
SHEARER CJ, 2008, P SPIE SMART MAT 5 N, V7267.
SINGH R, 2005, J AM CHEM SOC, V127, P4388, DOI 10.1021/ja0441561.
SMART SK, 2006, CARBON, V44, P1034, DOI 10.1016/j.carbon.2005.10.011.
SONOGASHIRA K, 1975, TETRAHEDRON LETT, V16, P4467.
STEIN A, 2009, ADV MATER, V21, P265, DOI 10.1002/adma.200801492.
STEPHENS RD, 1963, J ORG CHEM, V28, P3313.
STEVENS JL, 2003, NANO LETT, V3, P331, DOI 10.1021/nl025944w.
STEWART MP, 2000, ADV MATER, V12, P859.
STEWART MP, 2004, J AM CHEM SOC, V126, P370.
STUART BH, 2004, INFRARED SPECTROSCOP.
SUDALAI A, 2000, ORG LETT, V2, P3213, DOI 10.1021/ol006407q.
TANG J, 2005, NANO LETT, V5, P11, DOI 10.1021/nl048803y.
TEO KBK, 2001, APPL PHYS LETT, V79, P1534.
TIAN Y, 2006, P NATL ACAD SCI USA, V103, P19320, DOI 10.1073/pnas.0608841103.
TING JM, 2009, NANOTECHNOLOGY, V20, ARTN 025608.
TUNE DD, CARBON UNPUB.
TUZLAKOGLU K, 2005, J MATER SCI-MATER M, V16, P1099, DOI 10.1007/s10856-005-4713-8.
VAJTAI R, 2007, TOP APPL PHYS, V109, P188.
VANDERWAL RL, 2001, CARBON, V39, P2277.
VEREB G, 2003, P NATL ACAD SCI USA, V100, P8053, DOI 10.1073/pnas.1332550100.
VERWEIJ H, 2007, SMALL, V3, P1996, DOI 10.1002/smll.200700368.
WAGHE A, 2002, J CHEM PHYS, V117, P10789, DOI 10.1063/1.1519861.
WALTHER JH, 2001, J PHYS CHEM B, V105, P9980.
WANG M, 1998, MACROMOLECULES, V31, P7606.
WANG M, 1999, J POLYM SCI POL CHEM, V37, P3606.
WANG QH, 1998, APPL PHYS LETT, V72, P2912.
WANG ZK, 2007, NANO LETT, V7, P697, DOI 10.1021/nl062853g.
WEI BQ, 2002, NATURE, V416, P495.
WIRTH CT, 2008, DIAM RELAT MATER, V17, P1518, DOI 10.1016/j.diamond.2007.11.019.
WONG SS, 1998, NATURE, V394, P52.
WORLEKNIRSCH JM, 2006, NANO LETT, V6, P1261, DOI 10.1021/nl060177c.
YAMADA T, 2006, NAT NANOTECHNOL, V1, P131, DOI 10.1038/nnano.2006.95.
YANG CM, 2006, PHYS REV B, V73, ARTN 075419.
YAQIONG X, 2006, APPL PHYS LETT, V89, UNSP 123116.
YU J, 2008, FULLER NANOTUB CAR N, V16, P18, DOI 10.1080/15363830701779299.
YU JX, 2006, SOFT MATTER, V2, P1081, DOI 10.1039/b611016a.
YU JX, 2007, PHYS CHEM CHEM PHYS, V9, P510, DOI 10.1039/b615096a.
YU JX, 2008, J AM CHEM SOC, V130, P8788, DOI 10.1021/ja801142k.
YUE GZ, 2002, APPL PHYS LETT, V81, P355.
YUN YH, 2006, J PHYS CHEM B, V110, P23920, DOI 10.1021/jp057171g.
ZANGI R, 2003, J CHEM PHYS, V119, P1694, DOI 10.1063/1.1580101.
ZANGI R, 2003, PHYS REV LETT, V91, ARTN 025502.
ZENG LL, 2008, J NANOSCI NANOTECHNO, V8, P1545, DOI 10.1166/jnn.2008.400.
ZHANG GY, 2005, P NATL ACAD SCI USA, V102, P16141, DOI 10.1073/pnas.0507064102.
ZHANG L, 2007, J PHYS CHEM C, V111, P11240, DOI 10.1021/jp0729011.
ZHANG NY, 2002, SMART MATER STRUCT, V11, P962.
ZHANG X, 2005, SENSOR ACTUAT B-CHEM, V106, P843, DOI 10.1016/j.snb.2004.10.039.
ZHENG G, 2007, NANO LETT, V7, P1622, DOI 10.1021/nl070585w.
ZHU W, 1999, APPL PHYS LETT, V75, P873.

Cited Reference Count:
173

Times Cited:
0

Publisher:
WILEY-V C H VERLAG GMBH; PO BOX 10 11 61, D-69451 WEINHEIM, GERMANY

Subject Category:
Chemistry, Multidisciplinary; Chemistry, Physical; Nanoscience & Nanotechnology; Materials Science, Multidisciplinary; Physics, Applied; Physics, Condensed Matter

ISSN:
0935-9648

DOI:
10.1002/adma.200900945

IDS Number:
556TP

========================================================================

*Record 3 of 3.
*View Full Record: http://gateway.isiknowledge.com/gateway/Gateway.cgi?GWVersion=2&SrcAuth=Alerting&SrcApp=Alerting&DestApp=WOS&DestLinkType=FullRecord;KeyUT=000274635800069
*Order Full Text [ ]

Title:
Dry Contact Transfer Printing of Aligned Carbon Nanotube Patterns and Characterization of Their Optical Properties for Diameter Distribution and Alignment

Authors:
Pint, CL; Xu, YQ; Moghazy, S; Cherukuri, T; Alvarez, NT; Haroz, EH; Mahzooni, S; Doorn, SK; Kono, J; Pasquali, M; Hauge, RH

Author Full Names:
Pint, Cary L.; Xu, Ya-Qiong; Moghazy, Sharief; Cherukuri, Tonya; Alvarez, Noe T.; Haroz, Erik H.; Mahzooni, Salma; Doorn, Stephen K.; Kono, Junichiro; Pasquali, Matteo; Hauge, Robert H.

Source:
ACS NANO 4 (2): 1131-1145 FEB 2010

Language:
English

Document Type:
Article

Author Keywords:
carbon nanotubes; carpets; optical absorption; Raman spectroscopy

KeyWords Plus:
RAMAN-SPECTROSCOPY; GROWTH; FILMS; SPECTRA; CATALYST; CARPETS; ARRAYS; FLUORESCENCE; TRANSISTORS; SELECTIVITY

Abstract:
A scalable and facile approach Is demonstrated where as-grown patterns of well-aligned structures composed of single-walled carbon nanotubes (SWNT) synthesized via water-assisted chemical vapor deposition (CVD) can be transferred, or printed, to any host surface in a single dry, room-temperature step using the growth substrate as a stamp. We demonstrate compatibility of this process with multiple transfers for large-scale device and specifically tailored pattern fabrication. Utilizing this transfer approach, anisotropic optical properties of the SWNT films are probed via polarized absorption, Raman, and photoluminescence spectroscopies. Using a simple model to describe optical transitions in the large SWNT species present in the aligned samples, polarized absorption data are demonstrated as an effective tool for accurate assignment of the diameter distribution from broad absorption features located in the infrared. This can be performed on either well-aligned samples or unal!
igned doped samples, allowing simple and rapid feedback of the SWNT diameter distribution that can be challenging and time-consuming to obtain in other optical methods. Furthermore, we discuss challenges in accurately characterizing alignment in structures of long versus short carbon nanotubes through optical techniques, where SWNT length makes a difference in the information obtained in such measurements. This work provides new insight to the efficient transfer and optical properties of an emerging class of long, large diameter SWNT species typically produced in the CVD process.

Reprint Address:
Hauge, RH, Rice Univ, Dept Chem, Houston, TX 77005 USA.

Research Institution addresses:
[Cherukuri, Tonya; Alvarez, Noe T.; Pasquali, Matteo; Hauge, Robert H.] Rice Univ, Dept Chem, Houston, TX 77005 USA; [Pint, Cary L.; Haroz, Erik H.] Rice Univ, Dept Phys & Astron, Houston, TX 77005 USA; [Kono, Junichiro] Rice Univ, Dept Elect & Comp Engn, Houston, TX 77005 USA; [Pasquali, Matteo] Rice Univ, Dept Chem & Biomol Engn, Houston, TX 77005 USA; [Pint, Cary L.; Moghazy, Sharief; Cherukuri, Tonya; Alvarez, Noe T.; Haroz, Erik H.; Mahzooni, Salma; Kono, Junichiro; Hauge, Robert H.] Rice Univ, Richard E Smalley Inst Nanoscale Sci & Technol, Houston, TX 77005 USA; [Xu, Ya-Qiong] Vanderbilt Univ, Dept Elect Engn & Comp Sci, Nashville, TN 37235 USA; [Xu, Ya-Qiong] Vanderbilt Univ, Dept Phys & Astron, Nashville, TN 37235 USA; [Doorn, Stephen K.] Los Alamos Natl Lab, Div Chem, Los Alamos, NM 87545 USA

E-mail Address:
hauge@rice.edu

Cited References:
AKIMA N, 2006, ADV MATER, V18, P1166, DOI 10.1002/adma.200502505.
AMAMA PB, 2009, NANO LETT, V9, P44, DOI 10.1021/nl801876h.
ARAUJO PT, 2008, PHYS REV B, V77, ARTN 241403.
BACHILO SM, 2002, SCIENCE, V298, P2361, DOI 10.1126/science.1078727.
CAPAZ RB, 2006, PHYS REV B, V74, ARTN 121401.
CAPAZ RB, 2007, PHYS STATUS SOLIDI B, V244, P4016, DOI 10.1002/pssb.200776200.
CHANG JC, 2003, BIOMATERIALS, V24, P2863, DOI 10.1016/S0142-9612(03)00116-9.
CHEN J, 1998, SCIENCE, V282, P95.
DOOM SK, 2008, PHYS REV B, V78, UNSP 165408.
DRESSELHAUS MS, 2005, PHYS REP, V409, P47, DOI 10.1016/j.physrep.2004.10.006.
DUESBERG GS, 2000, PHYS REV LETT, V85, P5436.
DUKOVIC G, 2005, NANO LETT, V5, P2314, DOI 10.1021/nl058122.
EINARSSON E, 2007, J PHYS CHEM C, V111, P17861, DOI 10.1021/jp071328i.
FAGAN JA, 2007, J AM CHEM SOC, V129, P10607, DOI 10.1021/ja073115c.
FAGAN JA, 2007, PHYS REV LETT, V98, ARTN 147402.
FISCHER JE, 2003, J APPL PHYS, V93, P2157, DOI 10.1063/1.1536733.
FUTABA DN, 2005, PHYS REV LETT, V95, ARTN 056104.
GE L, 2007, P NATL ACAD SCI USA, V104, P10792.
GRUNEIS A, 2004, CHEM PHYS LETT, V387, P301, DOI 10.1016/j.cplett.2004.02.034.
HATA K, 2004, SCIENCE, V306, P1362.
HU H, 2003, J PHYS CHEM B, V107, P13838, DOI 10.1021/jp035719i.
HUR SH, 2004, APPL PHYS LETT, V85, P5730, DOI 10.1063/1.1829774.
HWANG J, 2000, PHYS REV B, V62, UNSP R13310.
IM J, 2009, APPL PHYS LETT, V94, ARTN 053109.
ISHIKAWA FN, 2009, ACS NANO, V3, P73, DOI 10.1021/nn800434d.
ITKIS ME, 2002, NANO LETTERS, V2, P155.
ITKIS ME, 2003, NANO LETT, V3, P309, DOI 10.1021/nl025926e.
JORIO A, 2003, PHYS REV LETT, V90, ARTN 107403.
JORIO A, 2005, PHYS REV B, V71, ARTN 075401.
KANE CL, 2003, PHYS REV LETT, V90, ARTN 207401.
KANE CL, 2004, PHYS REV LETT, V93, ARTN 197402.
KANG SJ, 2007, NANO LETT, V7, P3343, DOI 10.1021/nl071596s.
KAZAOUI S, 1999, PHYS REV B, V60, P13339.
KILINA S, 2008, P NATL ACAD SCI USA, V105, P6797, DOI 10.1073/pnas.0711646105.
KOCABAS C, 2009, NANO LETT, V9, P1937, DOI 10.1021/nl9001074.
KUMAR A, 2006, APPL PHYS LETT, V89, ARTN 163120.
LEFEBVRE J, 2008, NANO LETT, V8, P1890, DOI 10.1021/nl080518h.
LIU P, 2009, ADV MATER, DOI 10.1002/ADMA.200900473.
MAJUMDER M, 2005, NATURE, V438, P44, DOI 10.1038/43844a.
MARUYAMA S, 2005, CHEM PHYS LETT, V403, P320, DOI 10.1016/j.cplett.2005.01.031.
MAULTZSCH J, 2005, PHYS REV B, V72, ARTN 241402.
MEITL MA, 2004, NANO LETT, V4, P1643, DOI 10.1021/nl0491935.
MENARD E, 2005, APPL PHYS LETT, V86, ARTN 093507.
MUKAI K, 2009, ADV MATER, V21, P1582, DOI 10.1002/adma.200802817.
MURAKAMI Y, 2004, CHEM PHYS LETT, V385, P298, DOI 10.1016/j.cplett.2003.12.095.
MURAKAMI Y, 2005, CARBON, V43, P2664, DOI 10.1016/j.carbon.2005.05.036.
MURAKAMI Y, 2005, PHYS REV B, V71, ARTN 085403.
MURAKAMI Y, 2005, PHYS REV LETT, V94, ARTN 087402.
NIYOGI S, 2002, ACCOUNTS CHEM RES, V35, P1105, DOI 10.1021/ar010155r.
OCONNELL MJ, 2002, SCIENCE, V297, P593.
OCONNELL MJ, 2004, PHYS REV B, V69, ARTN 235415.
OCONNELL MJ, 2005, NAT MATER, V4, P412, DOI 10.1038/nmat1367.
ODOM TW, 2000, J PHYS CHEM B, V104, P2794.
PEREBEINOS V, 2004, PHYS REV LETT, V92, ARTN 257402.
PINT CL, 2008, ACS NANO, V2, P1871, DOI 10.1021/nn8003718.
PINT CL, 2008, J PHYS CHEM C, V112, P14041, DOI 10.1021/jpS025539.
PINT CL, 2008, NANO LETT, V8, P1879, DOI 10.1021/nl0804295.
PINT CL, 2009, ACS NANO, V3, P1897, DOI 10.1021/nn900225h.
PINT CL, 2009, APPL PHYS LETT, V94, ARTN 182107.
PINT CL, 2009, CHEM MATER, V21, P1550, DOI 10.1021/cm8031626.
PINT CL, 2009, J PHYS CHEM C, V113, P4125, DOI 10.1021/jp8070585.
PINT CL, 2009, NANO RES, V2, P526, DOI 10.1007/s12274-009-9050-7.
QU LT, 2008, NANO LETT, V8, P2682, DOI 10.1021/nl800967n.
REN L, UNPUB.
REN L, 2009, NANO LETT, V9, P2610, DOI 10.1021/nl900815s.
SETHI S, 2008, NANO LETT, V8, P822, DOI 10.1021/nl0727765.
SUN YG, 2004, NANO LETT, V4, P1953, DOI 10.1021/nl048835l.
TAWFICK S, 2009, SMALL, V94, P2467.
TSYBOULSKI DA, 2005, NANO LETT, V5, P975, DOI 10.1021/nl050366f.
UGAWA A, 1999, PHYS REV B, V60, UNSP R11305.
UGAWA A, 2001, CURR APPL PHYS, V1, P45.
WANG H, 2006, APPL PHYS LETT, V88, ARTN 213111.
WANG T, 2007, APPL PHYS LETT, V97, UNSP 093123.
WEISMAN RB, 2003, NANO LETT, V3, P1235, DOI 10.1021/nl034428i.
XIAO L, 2008, NANO LETT, V8, P4539, DOI 10.1021/nl802750z.
XU YQ, 2006, J AM CHEM SOC, V128, P6560, DOI 10.1021/ja060944+.
ZHANG L, 2008, NANO LETT, V8, P2564, DOI 10.1021/nl8012727.
ZHANG Q, 2009, ADV MATER, V27, P2876.
ZHAO B, 2009, ACS NANO, V3, P108, DOI 10.1021/nn800648a.
ZHOU YX, 2006, APPL PHYS LETT, V88, ARTN 123109.
ZHU YW, 2008, NANOTECHNOLOGY, V19, ARTN 325304.

Cited Reference Count:
81

Times Cited:
0

Publisher:
AMER CHEMICAL SOC; 1155 16TH ST, NW, WASHINGTON, DC 20036 USA

Subject Category:
Chemistry, Multidisciplinary; Nanoscience & Nanotechnology; Materials Science, Multidisciplinary

ISSN:
1936-0851

DOI:
10.1021/nn9013356

IDS Number:
556ZI

========================================================================
*Order Full Text*
All Customers
--------------
Please contact your library administrator, or person(s) responsible for
document delivery, to find out more about your organization's policy for
obtaining the full text of the above articles. If your organization does
not have a current document delivery provider, your administrator can
contact ISI Document Solution at service@isidoc.com, or call 800-603-4367
or 734-459-8565.

IDS Customers
--------------
IDS customers can purchase the full text of an article (having page number,
volume, and issue information) by returning this ENTIRE message as a Reply
to Sender or Forward to orders@isidoc.com. Mark your choices with an X in
the "Order Full Text: []" brackets for each item. For example, [X].

Please enter your account number here:

========================================================================
*Help Desk Contact Information*
If you have any questions, please visit the Thomson Scientific Technical Support Contact Information Web page:
http://www.thomsonscientific.com/support/techsupport
========================================================================

ISI Web of Knowledge Alert - Holt JK

ISI Web of Knowledge Citation Alert

Cited Article: Holt JK. Fast mass transport through sub-2-nanometer carbon nanotubes
Alert Expires: 09 NOV 2010
Number of Citing Articles: 3 new records this week (3 in this e-mail)
Organization ID: 3b97d1bbc1878baed0ab183d8b03130b
========================================================================
Note: Instructions on how to purchase the full text of an article, import the records into an
ISI ResearchSoft product, and Help Desk Contact information are at the end of the e-mail.
========================================================================

FN ISI Export Format
VR 1.0

PT J
*Record 1 of 3.
L5 <http://gateway.isiknowledge.com/gateway/Gateway.cgi?GWVersion=2&SrcAuth=Alerting&SrcApp=Alerting&DestApp=WOS&DestLinkType=FullRecord;UT=000274578700008>
*Order Full Text [ ]
AU Kumar, M
Singh, VN
Mehta, BR
Singh, JP
AF Kumar, Mukesh
Singh, Vidya N.
Mehta, Bodh R.
Singh, Jitendra P.
TI Retardation of Liquid Indium Flow in Indium Oxide Nanotubes
SO JOURNAL OF PHYSICAL CHEMISTRY C
LA English
DT Article
ID CARBON NANOTUBES; FLUID-FLOW; TEMPERATURE; NANOTHERMOMETER; SOLUBILITY;
TRANSPORT; METALS; WATER
AB High-resolution transmission electron microscopy and energy-dispersive
X-ray analysis carried out oil indium oxide nanotubes grown by a
chemical vapor deposition technique show the presence of indium metal
segments along the indium oxide (IO) nanotube axis having one end
closed. A real-time HRTEM video In continuous mode imaging has been
carried Out to study the directional now of liquid indium.
Electron-beam-induced heating results in the increase ill indium vapor
pressure and desorption of gases at the closed end of the IO nanotubes.
This buildup of differential pressure between open and closed columns
leads to the now of indium away from the closed end of the IO nanotube.
Interestingly, the indium flow rate was observed to decrease from 2.8
to 0.3 nm/s with a corresponding decrease in the nanotubes' diameter
from 138 to 38 nm. This Study indicates that the wetting properties of
the liquid-host nanotube interface critically decides the fluid
dynamics at nanoscale, and depending upon the interfacial properties,
enhancement or retardation of flow call be observed oil the reduction
of the nanotube diameter.
C1 [Kumar, Mukesh; Singh, Vidya N.; Mehta, Bodh R.; Singh, Jitendra P.] Indian Inst Technol Delhi, Dept Phys, New Delhi 110016, India.
RP Mehta, BR, Indian Inst Technol Delhi, Dept Phys, New Delhi 110016,
India.
EM brmehta@physics.iitd.ac.in
jpsingh@physics.iitd.ac.in
CR BURNS MA, 1998, SCIENCE, V282, P484
CHEN PC, 2009, APPL PHYS LETT, V94, ARTN 043113
CHEN X, 2008, NANO LETT, V8, P2988, DOI 10.1021/nl802046b
CHOPRA KL, 1983, THIN SOLID FILMS, V102, P1
DONG LX, 2007, NANO LETT, V7, P58, DOI 10.1021/nl061980+
DU N, 2007, ADV MATER, V19, P1641, DOI 10.1002/adma.200602128
EBBESEN TW, 1994, ANNU REV MATER SCI, V24, P235
GAO YH, 2002, NATURE, V415, P599
GOGOTSI Y, 2001, APPL PHYS LETT, V79, P1021
GOLDBEG D, 2005, CHEM PHYS LETT, V409, P75
GONG NW, 2008, APPL PHYS LETT, V92, ARTN 073101
HOLT JK, 2006, SCIENCE, V312, P1034, DOI 10.1126/science.1126298
HONG MH, 2000, APPL PHYS LETT, V77, P2604
HU JQ, 2008, ACS NANO, V2, P107, DOI 10.1021/nn700285d
HUMMER G, 2001, NATURE, V414, P188
KIM YT, 2004, APPL PHYS LETT, V87, UNSP 234106
KONO S, 1999, SURF SCI, V420, P200
KOREN HW, 1970, REV SCI INSTRUM, V41, P468
KUMAR M, 2009, APPL PHYS LETT, V95, ARTN 013102
KUMAR M, 2009, NANOTECHNOLOGY, V20, ARTN 235608
LI C, 2004, APPL PHYS LETT, V84, P1949, DOI 10.1063/1.1667615
LI YB, 2003, ADV MATER, V15, P581
LI YB, 2003, APPL PHYS LETT, V83, P999, DOI 10.1063/1.1597422
LIDE DR, 1990, HDB CHEM PHYS
LIU M, 1994, SCANNING, V16, P1
MAJUMDER M, 2005, NATURE, V438, P44, DOI 10.1038/43844a
MANI RC, 2003, NANO LETT, V3, P671, DOI 10.1021/nl034125o
MATTIA D, 2008, MICROFLUID NANOFLUID, V5, P289, DOI
10.1007/s10404-008-0293-5
OTSUKA S, 1984, METALL TRANS B, V15, P329
REGAN BC, 2004, NATURE, V428, P924, DOI 10.1038/nature02496
ROSSI MP, 2004, NANO LETT, V4, P989, DOI 10.1021/nl049688u
SHPILRAIN EE, 2002, HIGH TEMP+, V40, P825
SVENSSON K, 2004, PHYS REV LETT, V93, ARTN 145901
TANG LQ, 2008, CHEM ENG J, V139, P642, DOI 10.1016/j.cej.2008.01.027
TUZUN RE, 1996, NANOTECHNOLOGY, V7, P241
UGARTE D, 1996, SCIENCE, V274, P1897
WAN Q, 2006, NANO LETT, V6, P2909, DOI 10.1021/nl062213d
WANG B, 2006, NANOTECHNOLOGY, V17, P5916, DOI
10.1088/0957-4484/17/24/003
WHITBY M, 2008, NANO LETT, V8, P2632, DOI 10.1021/nl080705f
ZHONG M, 2008, APPL PHYS LETT, V92, ARTN 093118
NR 40
TC 0
PU AMER CHEMICAL SOC; 1155 16TH ST, NW, WASHINGTON, DC 20036 USA
SN 1932-7447
DI 10.1021/jp910252f
PD FEB 25
VL 114
IS 7
BP 2891
EP 2895
SC Chemistry, Physical; Nanoscience & Nanotechnology; Materials Science,
Multidisciplinary
GA 556GQ
UT ISI:000274578700008
ER

PT J
*Record 2 of 3.
L5 <http://gateway.isiknowledge.com/gateway/Gateway.cgi?GWVersion=2&SrcAuth=Alerting&SrcApp=Alerting&DestApp=WOS&DestLinkType=FullRecord;UT=000274615600001>
*Order Full Text [ ]
AU Constantopoulos, KT
Shearer, CJ
Ellis, AV
Voelcker, NH
Shapter, JC
AF Constantopoulos, Kristina T.
Shearer, Cameron J.
Ellis, Amanda V.
Voelcker, Nicolas H.
Shapter, Joseph C.
TI Carbon Nanotubes Anchored to Silicon for Device Fabrication
SO ADVANCED MATERIALS
LA English
DT Review
ID CHEMICAL-VAPOR-DEPOSITION; FAST MASS-TRANSPORT; FIELD-EMISSION;
POLY(SILYL ESTER)S; MEMBRANE EQUILIBRIA; RAMAN-SPECTROSCOPY; NANOFIBER
ARRAYS; MAMMALIAN-CELLS; POROUS SILICON; SINGLE
AB This report highlights recent progress in the fabrication of vertically
aligned carbon nanotubes (VA-CNTs) on silicon-based materials. Research
into these nanostructured composite materials is spurred by the
importance of silicon as a basis for most current devices and the
disruptive properties of CNTs. Various CNT attachments methods of
covalent and adsorptive nature are critically compared. Selected
examples of device applications where the VA-CNT on silicon assemblies
are showing particular promise are discussed. These applications
include field emitters, filtration membranes, dry adhesives, sensors
and scaffolds for biointerfaces.
C1 [Constantopoulos, Kristina T.; Shearer, Cameron J.; Ellis, Amanda V.; Voelcker, Nicolas H.; Shapter, Joseph C.] Flinders Univ S Australia, Sch Chem Phys & Earth Sci, Bedford Pk, SA 5042, Australia.
RP Shapter, JC, Flinders Univ S Australia, Sch Chem Phys & Earth Sci, GPO
Box 2100, Bedford Pk, SA 5042, Australia.
EM joe.shapter@flinders.edu.au
CR ALLEN BL, 2008, NANO LETT, V8, P3899, DOI 10.1021/nl802315h
ANDERSON RC, 1993, J ELECTROCHEM SOC, V140, P1393
AUTUMN K, 2000, NATURE, V405, P681
BAUGHMAN RH, 2002, SCIENCE, V297, P787
BECKER M, 1949, PHYS REV, V76, P1531
BENJACOB E, 2008, J MATER CHEM, V18, P5181, DOI 10.1039/b805878b
BONARD JM, 1998, APPL PHYS LETT, V73, P918
BONARD JM, 2002, CARBON, V40, P1715
BOWER C, 2000, APPL PHYS LETT, V77, P830
BURIAK JM, 2002, CHEM REV, V102, P1271
CAI D, 2005, NAT METHODS, V2, P449, DOI 10.1038/NMETH761
CANHAM L, 1997, PROPERTIES POROUS SI
CARDENAS JF, 2007, CHEM PHYS LETT, V442, P409, DOI
10.1016/j.cplett.2007.06.030
CAZACU M, 2006, J ORGANOMET CHEM, V691, P3700, DOI
10.1016/j.jorganchem.2006.05.026
CHAKRABARTI S, 2008, J PHYS CHEM C, V112, P8136, DOI 10.1021/jp802059t
CHAMSSEDINE F, 2008, CARBON, V46, P957, DOI 10.1016/j.carbon.2008.03.001
CHAUFER B, 1996, DESALINATION, V104, P37
CHEN G, 2002, J NANOSCI NANOTECHNO, V2, P621, DOI 10.1166/jnn.2002.143
CHEN GH, 2008, NANOTECHNOLOGY, V19, ARTN 415703
CHEN LF, 2008, J NANOMATER, ARTN 783981
CHEN X, 2007, P NATL ACAD SCI USA, V104, P8218, DOI
10.1073/pnas.0700567104
CHENG Y, 2003, CR PHYS, V4, P1021, DOI 10.1016/S1631-0705(03)00103-8
CHHOWALLA M, 2001, APPL PHYS LETT, V79, P2079
CHOI KH, 2000, SURF SCI, V462, P195
CONSTANTOPOULOS KT, 2008, P SPIE
COOPER SM, 2004, NANO LETT, V4, P377, DOI 10.1021/nl0350682
CORREADUARTE MA, 2004, NANO LETT, V4, P2233, DOI 10.1021/nl048574f
CRAIGHEAD HG, 1998, BIOMED MICRODEVICES, V1, P49
CURRAN SA, 2004, J CHEM PHYS, V120, P4886, DOI 10.1063/1.1644109
CURRAN SA, 2006, J MATER RES, V21, P1071, DOI 10.1557/JMR.2006.0129
DAI HJ, 2001, TOP APPL PHYS, V80, P29
DERVISHI E, 2009, PARTICUL SCI TECHNOL, V27, P107, DOI
10.1080/02726350902775962
DONNAN FG, 1924, CHEM REV, V1, P73
DONNAN FG, 1995, J MEMBRANE SCI, V100, P45
DYKE CA, 2003, NANO LETT, V3, P1215, DOI 10.1021/nl034537x
ELLIS AV, 2005, CHEM PHYS LETT, V412, P449, DOI
10.1016/j.cplett.2005.07.052
ELLIS AV, 2006, J CHEM PHYS, V125, ARTN 121103
ELLIS AV, 2007, CHEM LETT, P36
ENDO M, 1993, J PHYS CHEM SOLIDS, V54, P1841
FABRE B, 2008, LANGMUIR, V24, P6595, DOI 10.1021/la800358w
FAN SS, 1999, SCIENCE, V283, P512
FAN SS, 2000, PHYSICA E, V8, P179
FLATT AK, 2005, J AM CHEM SOC, V127, P8918, DOI 10.1021/ja051269r
FORNASIERO F, 2008, P NATL ACAD SCI USA, V105, P17250, DOI
10.1073/pnas.0710437105
GABAY T, 2005, PHYSICA A, V350, P611, DOI 10.1016/j.physa.2004.11.007
GIANNONA S, 2007, J NANOSCI NANOTECHNO, V7, P1679, DOI
10.1166/jnn.2007.454
GRAUPNER R, 2007, J RAMAN SPECTROSC, V38, P673, DOI 10.1002/jrs.1694
HARRISON BS, 2007, BIOMATERIALS, V28, P344, DOI
10.1016/j.biomaterials.2006.07.044
HART AJ, 2007, INT J NANOMANUF, V1, P701
HATA K, 2004, SCIENCE, V306, P1362
HAVEL BS, 2007, CARBON, V45, P2551
HAYASHI T, 2002, NANO LETTERS, V2, P491
HE JL, 2006, NAT MATER, V5, P63, DOI 10.1038/nmat1526
HIGASHI GS, 1990, APPL PHYS LETT, V56, P656
HINDS BJ, 2004, SCIENCE, V303, P62, DOI 10.1126/science.1092048
HOLT JK, 2004, NANO LETT, V4, P2245, DOI 10.1021/nl048876h
HOLT JK, 2006, SCIENCE, V312, P1034, DOI 10.1126/science.1126298
HOMMA Y, 2005, J ELECTRON MICROS S1, V54, I3, DOI 10.1093/jmicro/dfi013
HUANG XJ, 2007, LANGMUIR, V23, P991, DOI 10.1021/la0631441
HUMMER G, 2001, NATURE, V414, P188
IM J, 2006, J PHYS CHEM B, V110, P12839, DOI 10.1021/jp062146b
IZAK T, 2008, J PHYS C SER, V100, UNSP 072008
JENSEN KL, 1999, PHYS PLASMAS 2, V6, P2241
JIANG J, 2005, PHYS REV B, V71, ARTN 045417
JISHI RA, 1993, CHEM PHYS LETT, V209, P77
JOSELEVICH E, 2008, TOP APPL PHYS, V111, P101
KALRA A, 2003, P NATL ACAD SCI USA, V100, P10175
KAM NWS, 2004, J AM CHEM SOC, V126, P6850, DOI 10.1021/ja0486059
KAMEYAMA A, 1999, MACROMOLECULES, V32, P1407
KAMINSKA K, 2007, NANOTECHNOLOGY, V18, ARTN 165707
KHABASHESKU VN, 2002, ACCOUNTS CHEM RES, V35, P1087, DOI
10.1021/ar020146y
KIM UJ, 2005, J AM CHEM SOC, V127, P15437, DOI 10.1021/ja052951o
KIM UJ, 2005, PHYS REV LETT, V95, ARTN 157402
KIMBALL DB, 2002, ANGEW CHEM INT EDIT, V41, P3338
KOGA K, 2001, NATURE, V412, P802
KOLESNIKOV AI, 2004, PHYS REV LETT, V93, ARTN 035503
KRUPKE R, 2002, NANO LETT, V2, P1161, DOI 10.1021/nl025679e
LACERDA L, 2007, NANO TODAY, V2, P38
LI YM, 2001, J PHYS CHEM B, V105, P11424
LIU C, 2005, J PHYS D APPL PHYS, V38, R231, DOI
10.1088/0022-3727/38/14/R01
LIU J, 1999, CHEM PHYS LETT, V303, P125
LIU XM, 2009, CARBON, V47, P500, DOI 10.1016/j.carbon.2008.10.033
LIU ZF, 2000, LANGMUIR, V16, P3569
LOBO AO, 2008, MAT SCI ENG C-BIO S, V28, P532, DOI
10.1016/j.msec.2007.04.016
LU FS, 2009, ADV MATER, V21, P139, DOI 10.1002/adma.200801491
MAJOR RC, 2006, PHYS REV LETT, V96, ARTN 177803
MAJUMDER M, 2005, NATURE, V438, P44, DOI 10.1038/43844a
MAJUMDER M, 2007, LANGMUIR, V23, P8624, DOI 10.1021/la700686k
MAJUMDER M, 2008, J MEMBRANE SCI, V316, P89, DOI
10.1016/j.memsci.2007.09.068
MANN D, 2006, CARBON NANOTUBES PRO, P19
MARTINEZ J, 2005, NANOTECHNOLOGY, V16, P2493, DOI
10.1088/0957-4484/16/11/004
MARUYAMA S, 2002, CHEM PHYS LETT, V360, P229
MAWHINNEY DB, 2000, J AM CHEM SOC, V122, P2383
MCKNIGHT TE, 2003, NANOTECHNOLOGY, V14, P551
MCKNIGHT TE, 2004, NANO LETT, V4, P1213, DOI 10.1021/nl049504b
MEYYAPPAN M, 2003, PLASMA SOURCES SCI T, V12, P205
MISRA A, 2006, DIAM RELAT MATER, V15, P385, DOI
10.1016/j.diamond.2005.08.013
MURAMATSU H, 2005, CHEM COMMUN 0421, P2002, DOI 10.1039/b416393a
NAN XL, 2002, J COLLOID INTERF SCI, V245, P311
NEWTON TA, 1999, SURF SCI, V430, P67
NGUYENVU TDB, 2006, SMALL, V2, P89, DOI 10.1002/smll.200500175
NOBUAKI N, 1993, APPL PHYS LETT, V62, P1429
OCONNELL MJ, 2002, SCIENCE, V297, P593
PARK JH, 2005, J VAC SCI TECHNOL B, V23, P749, DOI 10.1116/1.1851535
PASTERNACK RM, 2008, LANGMUIR, V24, P12963, DOI 10.1021/la8024827
PIETRASS T, 2006, J NANOSCI NANOTECHNO, V6, P135, DOI
10.1166/jnn.2006.058
PLANK NOV, 2004, MICROELECTRON ENG, V73, P578, DOI
10.1016/j.mee.2004.02.088
POH ZH, 2009, MATER LETT, V63, P757, DOI 10.1016/j.matlet.2008.12.043
POLICICCHIO A, 2008, J PHYS C SER, V100, UNSP 052093
PULIKKATHARA MX, 2008, CHEM MATER, V20, P2685, DOI 10.1021/cm7035037
QU L, 2007, ADV MATER, V19, P3844, DOI 10.1002/adma.200700023
QU LT, 2008, NANO LETT, V8, P2682, DOI 10.1021/nl800967n
QU LT, 2008, SCIENCE, V322, P238, DOI 10.1126/science.1159503
RANA S, 2009, J REINF PLAST COMP, V28, P461
REN ZF, 1998, SCIENCE, V282, P1105
RINZLER AG, 1995, SCIENCE, V269, P1550
SATISHKUMAR BC, 1996, J PHYS B-AT MOL OPT, V29, P4925
SAUVAJOL JL, 2006, LECT NOTE PHYS, V677, P277
SCHAEP J, 1998, SEP PURIF TECHNOL, V14, P155
SCHMELTZER JM, 2005, CHEM NANOMATERIALS, V1
SEELABOYINA R, 2008, NANOTECHNOLOGY, V19, ARTN 065605
SETHI S, 2008, NANO LETT, V8, P822, DOI 10.1021/nl0727765
SGOBBA V, 2009, CHEM SOC REV, V38, P165, DOI 10.1039/b802652c
SHEARER CJ, 2008, J MATER CHEM, V18, P5753, DOI 10.1039/b811546j
SHEARER CJ, 2008, P SPIE SMART MAT 5 N, V7267
SINGH R, 2005, J AM CHEM SOC, V127, P4388, DOI 10.1021/ja0441561
SMART SK, 2006, CARBON, V44, P1034, DOI 10.1016/j.carbon.2005.10.011
SONOGASHIRA K, 1975, TETRAHEDRON LETT, V16, P4467
STEIN A, 2009, ADV MATER, V21, P265, DOI 10.1002/adma.200801492
STEPHENS RD, 1963, J ORG CHEM, V28, P3313
STEVENS JL, 2003, NANO LETT, V3, P331, DOI 10.1021/nl025944w
STEWART MP, 2000, ADV MATER, V12, P859
STEWART MP, 2004, J AM CHEM SOC, V126, P370
STUART BH, 2004, INFRARED SPECTROSCOP
SUDALAI A, 2000, ORG LETT, V2, P3213, DOI 10.1021/ol006407q
TANG J, 2005, NANO LETT, V5, P11, DOI 10.1021/nl048803y
TEO KBK, 2001, APPL PHYS LETT, V79, P1534
TIAN Y, 2006, P NATL ACAD SCI USA, V103, P19320, DOI
10.1073/pnas.0608841103
TING JM, 2009, NANOTECHNOLOGY, V20, ARTN 025608
TUNE DD, CARBON UNPUB
TUZLAKOGLU K, 2005, J MATER SCI-MATER M, V16, P1099, DOI
10.1007/s10856-005-4713-8
VAJTAI R, 2007, TOP APPL PHYS, V109, P188
VANDERWAL RL, 2001, CARBON, V39, P2277
VEREB G, 2003, P NATL ACAD SCI USA, V100, P8053, DOI
10.1073/pnas.1332550100
VERWEIJ H, 2007, SMALL, V3, P1996, DOI 10.1002/smll.200700368
WAGHE A, 2002, J CHEM PHYS, V117, P10789, DOI 10.1063/1.1519861
WALTHER JH, 2001, J PHYS CHEM B, V105, P9980
WANG M, 1998, MACROMOLECULES, V31, P7606
WANG M, 1999, J POLYM SCI POL CHEM, V37, P3606
WANG QH, 1998, APPL PHYS LETT, V72, P2912
WANG ZK, 2007, NANO LETT, V7, P697, DOI 10.1021/nl062853g
WEI BQ, 2002, NATURE, V416, P495
WIRTH CT, 2008, DIAM RELAT MATER, V17, P1518, DOI
10.1016/j.diamond.2007.11.019
WONG SS, 1998, NATURE, V394, P52
WORLEKNIRSCH JM, 2006, NANO LETT, V6, P1261, DOI 10.1021/nl060177c
YAMADA T, 2006, NAT NANOTECHNOL, V1, P131, DOI 10.1038/nnano.2006.95
YANG CM, 2006, PHYS REV B, V73, ARTN 075419
YAQIONG X, 2006, APPL PHYS LETT, V89, UNSP 123116
YU J, 2008, FULLER NANOTUB CAR N, V16, P18, DOI
10.1080/15363830701779299
YU JX, 2006, SOFT MATTER, V2, P1081, DOI 10.1039/b611016a
YU JX, 2007, PHYS CHEM CHEM PHYS, V9, P510, DOI 10.1039/b615096a
YU JX, 2008, J AM CHEM SOC, V130, P8788, DOI 10.1021/ja801142k
YUE GZ, 2002, APPL PHYS LETT, V81, P355
YUN YH, 2006, J PHYS CHEM B, V110, P23920, DOI 10.1021/jp057171g
ZANGI R, 2003, J CHEM PHYS, V119, P1694, DOI 10.1063/1.1580101
ZANGI R, 2003, PHYS REV LETT, V91, ARTN 025502
ZENG LL, 2008, J NANOSCI NANOTECHNO, V8, P1545, DOI 10.1166/jnn.2008.400
ZHANG GY, 2005, P NATL ACAD SCI USA, V102, P16141, DOI
10.1073/pnas.0507064102
ZHANG L, 2007, J PHYS CHEM C, V111, P11240, DOI 10.1021/jp0729011
ZHANG NY, 2002, SMART MATER STRUCT, V11, P962
ZHANG X, 2005, SENSOR ACTUAT B-CHEM, V106, P843, DOI
10.1016/j.snb.2004.10.039
ZHENG G, 2007, NANO LETT, V7, P1622, DOI 10.1021/nl070585w
ZHU W, 1999, APPL PHYS LETT, V75, P873
NR 173
TC 0
PU WILEY-V C H VERLAG GMBH; PO BOX 10 11 61, D-69451 WEINHEIM, GERMANY
SN 0935-9648
DI 10.1002/adma.200900945
PD FEB 2
VL 22
IS 5
BP 557
EP 571
SC Chemistry, Multidisciplinary; Chemistry, Physical; Nanoscience &
Nanotechnology; Materials Science, Multidisciplinary; Physics, Applied;
Physics, Condensed Matter
GA 556TP
UT ISI:000274615600001
ER

PT J
*Record 3 of 3.
L5 <http://gateway.isiknowledge.com/gateway/Gateway.cgi?GWVersion=2&SrcAuth=Alerting&SrcApp=Alerting&DestApp=WOS&DestLinkType=FullRecord;UT=000274615600010>
*Order Full Text [ ]
AU Gui, XC
Wei, JQ
Wang, KL
Cao, AY
Zhu, HW
Jia, Y
Shu, QK
Wu, DH
AF Gui, Xuchun
Wei, Jinquan
Wang, Kunlin
Cao, Anyuan
Zhu, Hongwei
Jia, Yi
Shu, Qinke
Wu, Dehai
TI Carbon Nanotube Sponges
SO ADVANCED MATERIALS
LA English
DT Article
ID ORGANIC-CHEMICALS; SILICA AEROGELS; ADSORPTION; MEMBRANES; FILMS;
WATER; TRANSPARENT; TECHNOLOGY; DENSITY; FILTERS
AB Carbon nanotube sponges are synthesized by chemical vapor deposition,
in which nanotubes are self-assembled into a three-dimensionally
interconnected framework. The sponges are very light, highly porous,
hydrophobic in pristine form, and can be elastically and reversibly
deformed into any shape. The sponges can float on water surfaces and
absorb large-area spreading oil films (see images), suggesting
promising environmental applications.
C1 [Gui, Xuchun; Wei, Jinquan; Wang, Kunlin; Zhu, Hongwei; Jia, Yi; Shu, Qinke; Wu, Dehai] Tsinghua Univ, Dept Mech Engn, Minist Educ, Key Lab Adv Mat Proc Technol, Beijing 100084, Peoples R China.
[Cao, Anyuan] Peking Univ, Coll Engn, Dept Adv Mat & Nanotechnol, Beijing 100871, Peoples R China.
RP Wu, DH, Tsinghua Univ, Dept Mech Engn, Minist Educ, Key Lab Adv Mat
Proc Technol, Beijing 100084, Peoples R China.
EM wdh-dme@tsinghua.edu.cn
CR ALIEV AE, 2009, SCIENCE, V323, P1575, DOI 10.1126/science.1168312
ANDREWS R, 1999, CHEM PHYS LETT, V303, P467
BRYNING MB, 2007, ADV MATER, V19, P661, DOI 10.1002/adma.200601748
CAO AY, 2005, SCIENCE, V310, P1307, DOI 10.1126/science.1118957
CAPADONA LA, 2006, POLYMER, V47, P5754, DOI
10.1016/j.polymer.2006.05.073
CHEN W, 2007, ENVIRON SCI TECHNOL, V41, P8295, DOI 10.1021/es071230h
DAS RN, 2009, NANO LETT, V9, P677, DOI 10.1021/nl803168s
ENDO M, 2005, NATURE, V433, P476, DOI 10.1038/433476a
FUTABA DN, 2006, NAT MATER, V5, P987, DOI 10.1038/nmat1782
HATA K, 2004, SCIENCE, V306, P1362
HAYAMIZU Y, 2008, NAT NANOTECHNOL, V3, P289, DOI 10.1038/nnano.2008.98
HINDS BJ, 2004, SCIENCE, V303, P62, DOI 10.1126/science.1092048
HOLT JK, 2006, SCIENCE, V312, P1034, DOI 10.1126/science.1126298
LAU KKS, 2003, NANO LETT, V3, P1701, DOI 10.1021/nl034704t
LEVENTIS N, 2002, NANO LETT, V2, P957, DOI 10.1021/nl025690e
LI XS, 2007, SMALL, V3, P595, DOI 10.1002/smll.200600652
LONG RQ, 2001, J AM CHEM SOC, V123, P2058
MAUTER MS, 2008, ENVIRON SCI TECHNOL, V42, P5843, DOI 10.1021/es8006904
PAN B, 2008, ENVIRON SCI TECHNOL, V42, P9005, DOI 10.1021/es801777n
PENG XJ, 2003, CHEM PHYS LETT, V376, P154, DOI
10.1016/S0009-2614(03)00960-6
QU LT, 2008, SCIENCE, V322, P238, DOI 10.1126/science.1159503
SHANNON MA, 2008, NATURE, V452, P301, DOI 10.1038/nature06599
SRIVASTAVA A, 2004, NAT MATER, V3, P610, DOI 10.1038/nmat1192
TRANCIK JE, 2008, NANO LETT, V8, P982, DOI 10.1021/nl071945i
YU M, 2009, NANO LETT, V9, P225, DOI 10.1021/nl802816h
YUAN JK, 2008, NAT NANOTECHNOL, V3, P332, DOI 10.1038/nnano.2008.136
ZHANG M, 2004, SCIENCE, V306, P1358
ZHANG M, 2005, SCIENCE, V309, P1215, DOI 10.1126/science.1115311
NR 28
TC 0
PU WILEY-V C H VERLAG GMBH; PO BOX 10 11 61, D-69451 WEINHEIM, GERMANY
SN 0935-9648
DI 10.1002/adma.200902986
PD FEB 2
VL 22
IS 5
BP 617
EP +
SC Chemistry, Multidisciplinary; Chemistry, Physical; Nanoscience &
Nanotechnology; Materials Science, Multidisciplinary; Physics, Applied;
Physics, Condensed Matter
GA 556TP
UT ISI:000274615600010
ER

EF

========================================================================
*Order Full Text*
All Customers
--------------
Please contact your library administrator, or person(s) responsible for
document delivery, to find out more about your organization's policy for
obtaining the full text of the above articles. If your organization does
not have a current document delivery provider, your administrator can
contact ISI Document Solution at service@isidoc.com, or call 800-603-4367
or 734-459-8565.

IDS Customers
--------------
IDS customers can purchase the full text of an article (having page number,
volume, and issue information) by returning this ENTIRE message as a Reply
to Sender or Forward to orders@isidoc.com. Mark your choices with an X in
the "Order Full Text: []" brackets for each item. For example, [X].

Please enter your account number here:

========================================================================
*Import Records into an ISI ResearchSoft product*
1) Save the email as a text file. If your e-mail software removed extra line breaks, restore them before saving.
2) From within an ISI ResearchSoft product, import the text file using the ISI-CE filter.
========================================================================
*Help Desk Contact Information*
If you have any questions, please visit the Thomson Scientific Technical Support Contact Information Web page:
http://www.thomsonscientific.com/support/techsupport
========================================================================

Thursday, February 25, 2010

ISI Web of Knowledge Alert - Hummer, G

ISI Web of Knowledge Citation Alert

Cited Article: Hummer, G. Water conduction through the hydrophobic channel of a carbon nanotube
Alert Expires: 09 NOV 2010
Number of Citing Articles: 2 new records this week (2 in this e-mail)
Organization ID: 3b97d1bbc1878baed0ab183d8b03130b
========================================================================
Note: Instructions on how to purchase the full text of an article and Help Desk Contact information are at the end of the e-mail.
========================================================================

*Record 1 of 2.
*View Full Record: http://gateway.isiknowledge.com/gateway/Gateway.cgi?GWVersion=2&SrcAuth=Alerting&SrcApp=Alerting&DestApp=WOS&DestLinkType=FullRecord;KeyUT=000274516400023
*Order Full Text [ ]

Title:
Dynamics of water at the nanoscale hydrophobic confinement

Authors:
Choudhury, N

Author Full Names:
Choudhury, Niharendu

Source:
JOURNAL OF CHEMICAL PHYSICS 132 (6): Art. No. 064505 FEB 14 2010

Language:
English

Document Type:
Article

Author Keywords:
hydrophobicity; molecular dynamics method; organic compounds; surface dynamics; surface segregation; translational states; water

KeyWords Plus:
PROTEIN-SOLVENT INTERFACE; MOLECULAR-DYNAMICS; DEWETTING TRANSITION; LENGTH SCALES; HYDRATION; SIMULATION; SURFACE; SOLVATION; DIFFUSION; COLLAPSE

Abstract:
We investigate the effect of solute surface topology created by considering various intermolecular separations of the hydrophobic, paraffinlike plates on the dynamics of water confined between two such plates. The solute plates are made up of 5 n-C18H38 molecules arranged in parallel in such a way that all the carbon atoms of the paraffin molecule are lying on the same plane. Results are obtained from extensive molecular dynamics simulations of aqueous solutions of paraffinlike plates in the isothermal-isobaric ensemble. A strong dependence of the translational as well as vibrational dynamics of the confined water molecules on surface topology (intermolecular distance within the paraffinlike plate) has been observed. Analysis of mean squared displacement reveals anomalous nonlinear behavior of the water molecules in the nanoconfined environment.

Reprint Address:
Choudhury, N, Bhabha Atom Res Ctr, Chem Grp, Theoret Chem Sect, Bombay 400085, Maharashtra, India.

Research Institution addresses:
Bhabha Atom Res Ctr, Chem Grp, Theoret Chem Sect, Bombay 400085, Maharashtra, India

E-mail Address:
nihcho@barc.gov.in

Cited References:
ALLEN P, 1987, COMPUTER SIMULATION.
ASHBAUGH HS, 2001, J AM CHEM SOC, V123, P10721, DOI 10.1021/ja016324k.
ASHBAUGH HS, 2006, REV MOD PHYS, V78, P159, DOI 10.1103/RevModPhys.78.159.
BAGCHI B, 2005, CHEM REV, V105, P3197, DOI 10.1021/cr020661+.
BALL P, 2008, CHEM REV, V108, P74, DOI 10.1021/cr068037a.
BALL P, 2008, CHEMPHYSCHEM, V9, P2677, DOI 10.1002/cphc.200800515.
BALUCANI U, 1996, J PHYS-CONDENS MAT, V8, P6139.
BELLISSENTFUNEL MC, 1996, FARADAY DISCUSS, V103, P281.
BENJAMIN I, 1992, J CHEM PHYS, V97, P1432.
BERARD DR, 1993, J CHEM PHYS, V98, P7236.
BERENDSEN HJC, 1987, J PHYS CHEM-US, V91, P6269.
BIZZARRI AR, 2002, J PHYS CHEM B, V106, P6617.
CASTRILLON SRV, 2009, J PHYS CHEM B, V113, P7973, DOI 10.1021/jp9025392.
CHANDLER D, 2005, NATURE, V437, P640, DOI 10.1038/nature04162.
CHOUDHURY N, 2005, J AM CHEM SOC, V127, P3556, DOI 10.1021/ja0441817.
CHOUDHURY N, 2005, J PHYS CHEM B, V109, P6422, DOI 10.1021/jp045439i.
CHOUDHURY N, 2007, J AM CHEM SOC, V129, P4847, DOI 10.1021/ja069242a.
CHOUDHURY N, 2007, J PHYS CHEM B, V111, P10474, DOI 10.1021/jp073571n.
CHOUDHURY N, 2007, J PHYS CHEM C, V111, P2565, DOI 10.1021/jp066883j.
CHOUDHURY N, 2008, J PHYS CHEM B, V112, P6296, DOI 10.1021/jp801852v.
CHOUDHURY N, 2009, J CHEM PHYS, V131, ARTN 014507.
CHOWDHARY J, 2008, J PHYS CHEM B, V112, P6259, DOI 10.1021/jp0769025.
DANISOV VP, 1996, FARADAY DISCUSS, V103, P227.
DELLERUE S, 2000, CHEM PHYS, V258, P315.
DENISOV VP, 1996, NAT STRUCT BIOL, V3, P505.
DENISOV VP, 1999, NAT STRUCT BIOL, V6, P253.
HUA L, 2007, J PHYS CHEM B, V111, P9069, DOI 10.1021/jp0707923.
HUANG X, 2003, P NATL ACAD SCI USA, V100, P11953, DOI 10.1073/pnas.1934837100.
HUMMER G, 2001, NATURE, V414, P188.
HUMPHREY W, 1996, J MOL GRAPHICS, V14, P33.
JORGENSEN WL, 1984, J AM CHEM SOC, V106, P6638.
KAUZMANN W, 1959, ADV PROTEIN CHEM, V14, P1.
KOISHI T, 2004, PHYS REV LETT, V93, ARTN 185701.
LIU P, 2004, J PHYS CHEM B, V108, P6595, DOI 10.1021/jp0375057.
LIU P, 2005, NATURE, V437, P159, DOI 10.1038/nature03926.
LOUNNAS V, 1994, BIOPHYS J, V66, P601.
LUM K, 1999, J PHYS CHEM B, V103, P4570.
MAKAROV V, 2002, ACCOUNTS CHEM RES, V35, P376.
NANDI N, 2000, CHEM REV, V100, P2013.
PAL SK, 2002, J PHYS CHEM B, V106, P12376, DOI 10.1021/jp0213506.
POLNASZEK CF, 1984, J AM CHEM SOC, V106, P428.
PRATT LR, 2002, CHEM REV, V102, P2671, DOI 10.1021/cr000692+.
RASAIAH JC, 2008, ANNU REV PHYS CHEM, V59, P713, DOI 10.1146/annurev.physchem.59.032607.093815.
SCHULTZ CP, 2000, NAT STRUCT BIOL, V7, P7.
SETTLES M, 1996, FARADAY DISCUSS, V103, P269.
STILLINGER FH, 1971, J CHEM PHYS, V55, P3449.
TANFORD C, 1973, HYDROPHOBIC EFFECT F.
TROULLIER A, 2000, NAT STRUCT BIOL, V7, P78.
WAGHE A, 2002, J CHEM PHYS, V117, P10789, DOI 10.1063/1.1519861.
WALLQVIST A, 1995, J PHYS CHEM-US, V99, P2893.
WERNET P, 2004, SCIENCE, V304, P995, DOI 10.1126/science.1096205.
ZHOU RH, 2004, SCIENCE, V305, P1605.
ZICHI DA, 1986, J CHEM PHYS, V84, P2814.
ZUBAVICUS Y, 2004, SCIENCE, V304, P974.

Cited Reference Count:
54

Times Cited:
0

Publisher:
AMER INST PHYSICS; CIRCULATION & FULFILLMENT DIV, 2 HUNTINGTON QUADRANGLE, STE 1 N O 1, MELVILLE, NY 11747-4501 USA

Subject Category:
Physics, Atomic, Molecular & Chemical

ISSN:
0021-9606

DOI:
10.1063/1.3319504

IDS Number:
555MR

========================================================================

*Record 2 of 2.
*View Full Record: http://gateway.isiknowledge.com/gateway/Gateway.cgi?GWVersion=2&SrcAuth=Alerting&SrcApp=Alerting&DestApp=WOS&DestLinkType=FullRecord;KeyUT=000274432400003
*Order Full Text [ ]

Title:
Distributions of extreme contributions to binding energies of molecules in liquids

Authors:
Chempath, S; Pratt, LR; Paulaitis, ME

Author Full Names:
Chempath, Shaji; Pratt, Lawrence R.; Paulaitis, Michael E.

Source:
CHEMICAL PHYSICS LETTERS 487 (1-3): 24-27 FEB 25 2010

Language:
English

Document Type:
Article

KeyWords Plus:
WATER; DENSITY

Abstract:
Strong intermolecular interactions in liquids are characterized by determining the distributions of maximum and minimum molecular contributions to the energies binding a molecule to a liquid. Extreme-value concepts help in understanding the shapes of these distributions, and therefore provides insight into molecular mechanisms of solvation behavior. The Gumbel distribution works satisfactorily for the maximum (least favorable) contribution. The minimum (most favorable) contribution conforms to another extreme-value distribution, a Weibull distribution. Simulation data for models of CF4(aq), Nd(CH3)(4)(+) (aq), and H2O (liquid water) support the view that distributions of extreme values exhibit significant commonality for different molecules in liquid water. (C) 2010 Elsevier B.V. All rights reserved.

Reprint Address:
Pratt, LR, Tulane Univ, Dept Chem & Biomol Engn, New Orleans, LA 70118 USA.

Research Institution addresses:
[Pratt, Lawrence R.] Tulane Univ, Dept Chem & Biomol Engn, New Orleans, LA 70118 USA; [Chempath, Shaji] Los Alamos Natl Lab, Div Theoret, Los Alamos, NM 87545 USA; [Paulaitis, Michael E.] Ohio State Univ, Dept Chem & Biomol Engn, Columbus, OH 43210 USA

E-mail Address:
shaji.chempath@gmail.com; lpratt@tulane.edu; paulaitis.1@osu.edu

Cited References:
ASTHAGIRI D, 2007, J AM CHEM SOC, V129, UNSP 101330.
ASTHAGIRI D, 2008, J CHEM PHYS, V128, ARTN 244512.
ASTHAGIRI D, 2010, CHEM PHYS LETT, V485, P1, DOI 10.1016/j.cplett.2009.12.013.
BERENDSEN HJC, 1987, J PHYS CHEM-US, V91, P6269.
BRAMWELL ST, 2000, PHYS REV LETT, V84, P3744.
CASTILLO E, 2005, EXTREME VALUE RELATE.
CHEMPATH S, 2009, J CHEM PHYS, V130, ARTN 054113.
CHEMPATH S, 2009, J PHYS CHEM B, V113, P4147, DOI 10.1021/jp806858z.
EISENBERG D, 1969, STRUCTURE PROPERTIES, CH5.
FENNELL CJ, 2006, J CHEM PHYS, V124, ARTN 234104.
GUMBEL EJ, 1958, STAT EXTREMES.
GUPTA A, 2003, MOL SIMULAT, V29, P29, DOI 10.1080/0892702031000065719.
HUMMER G, 2001, NATURE, V414, P188.
MAHONEY MW, 2000, J CHEM PHYS, V112, P8910.
MORROW TI, 2004, FLUID PHASE EQUILIBR, V217, P97, DOI 10.1016/j.fluid.2003.08.020.
NANDA H, 2005, J CHEM PHYS, V122, ARTN 134110.
PALIWAL A, 2006, J CHEM PHYS, P124.
PASCHEK D, 2004, J CHEM PHYS, V120, P6674, DOI 10.1063/1.1652015.
PRATT LR, 2006, FREE ENERGY CALCULAT, P323.
SHAH JK, 2007, J CHEM PHYS, V127, ARTN 144508.

Cited Reference Count:
20

Times Cited:
0

Publisher:
ELSEVIER SCIENCE BV; PO BOX 211, 1000 AE AMSTERDAM, NETHERLANDS

Subject Category:
Chemistry, Physical; Physics, Atomic, Molecular & Chemical

ISSN:
0009-2614

DOI:
10.1016/j.cplett.2010.01.023

IDS Number:
554JX

========================================================================
*Order Full Text*
All Customers
--------------
Please contact your library administrator, or person(s) responsible for
document delivery, to find out more about your organization's policy for
obtaining the full text of the above articles. If your organization does
not have a current document delivery provider, your administrator can
contact ISI Document Solution at service@isidoc.com, or call 800-603-4367
or 734-459-8565.

IDS Customers
--------------
IDS customers can purchase the full text of an article (having page number,
volume, and issue information) by returning this ENTIRE message as a Reply
to Sender or Forward to orders@isidoc.com. Mark your choices with an X in
the "Order Full Text: []" brackets for each item. For example, [X].

Please enter your account number here:

========================================================================
*Help Desk Contact Information*
If you have any questions, please visit the Thomson Scientific Technical Support Contact Information Web page:
http://www.thomsonscientific.com/support/techsupport
========================================================================