Friday, July 17, 2009

ISI Web of Knowledge Alert - Thompson, P

ISI Web of Knowledge Citation Alert
Cited Article:   Thompson, P. A general boundary condition for liquid flow at solid surfaces
Alert Expires:   21 OCT 2009
Number of Citing Articles:   1 new records this week (1 in this e-mail)
Organization ID:   3b97d1bbc1878baed0ab183d8b03130b

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Title: An atomistic-continuum hybrid simulation of fluid flows over superhydrophobic surfaces
Authors: Li, Q; He, GW
Author Full Names: Li, Qiang; He, Guo-Wei
Source: BIOMICROFLUIDICS 3 (2): Art. No. 022409 APR-JUN 2009
Language: English
Document Type: Proceedings Paper
Author Keywords: Couette flow; flow simulation; molecular dynamics method; Navier-Stokes equations
KeyWords Plus: BOUNDARY-CONDITIONS; MOLECULAR-DYNAMICS; SHEAR-FLOW; SOLID INTERFACE; SLIP LENGTH; LIQUID; MICROCHANNELS; VELOCIMETRY; ROUGHNESS; FRICTION
Abstract: Recent experiments have found that slip length could be as large as on the order of 1 mu m for fluid flows over superhydrophobic surfaces. Superhydrophobic surfaces can be achieved by patterning roughness on hydrophobic surfaces. In the present paper, an atomistic-continuum hybrid approach is developed to simulate the Couette flows over superhydrophobic surfaces, in which a molecular dynamics simulation is used in a small region near the superhydrophobic surface where the continuum assumption is not valid and the Navier-Stokes equations are used in a large region for bulk flows where the continuum assumption does hold. These two descriptions are coupled using the dynamic coupling model in the overlap region to ensure momentum continuity. The hybrid simulation predicts a superhydrophobic state with large slip lengths, which cannot be obtained by molecular dynamics simulation alone.
Reprint Address: He, GW, Chinese Acad Sci, Inst Mech, LNM, Beijing 100080, Peoples R China.
Research Institution addresses: [Li, Qiang; He, Guo-Wei] Chinese Acad Sci, Inst Mech, LNM, Beijing 100080, Peoples R China
E-mail Address: hgw@lnm.imech.ac.cn
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Cited Reference Count: 45
Times Cited: 1
Publisher: AMER INST PHYSICS; CIRCULATION & FULFILLMENT DIV, 2 HUNTINGTON QUADRANGLE, STE 1 N O 1, MELVILLE, NY 11747-4501 USA
Subject Category: Biophysics; Nanoscience & Nanotechnology; Physics, Fluids & Plasmas
ISSN: 1932-1058
DOI: 10.1063/1.3137674
IDS Number: 465PW

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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: 18 OCT 2009
Number of Citing Articles: 4 new records this week (4 in this e-mail)
Organization ID: 3b97d1bbc1878baed0ab183d8b03130b
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Title:
Capillary rise of water in hydrophilic nanopores

Authors:
Gruener, S; Hofmann, T; Wallacher, D; Kityk, AV; Huber, P

Author Full Names:
Gruener, Simon; Hofmann, Tommy; Wallacher, Dirk; Kityk, Andriy V.; Huber, Patrick

Source:
PHYSICAL REVIEW E 79 (6): Art. No. 067301 Part 2 JUN 2009

Language:
English

Document Type:
Article

Author Keywords:
boundary layers; capillarity; capillary waves; flow through porous media; hydrophilicity; nanofluidics; nanoporous materials; silicon compounds; sorption; water

KeyWords Plus:
VYCOR GLASS; NEGATIVE PRESSURES; CARBON NANOTUBES; POROUS VYCOR; DYNAMICS; FLOW; NANOSCALE; LIQUIDS; NANOFLUIDICS; ADSORPTION

Abstract:
We report on the capillary rise of water in three-dimensional networks of hydrophilic silica pores with 3.5 nm and 5 nm mean radii, respectively (porous Vycor monoliths). We find classical square root of time Lucas-Washburn laws for the imbibition dynamics over the entire capillary rise times of up to 16 h investigated. Provided we assume two preadsorbed strongly bound layers of water molecules resting at the silica walls, which corresponds to a negative velocity slip length of -0.5 nm for water flow in silica nanopores, we can describe the filling process by a retained fluidity and capillarity of water in the pore center. This anticipated partitioning in two dynamic components reflects the structural-thermodynamic partitioning in strongly silica bound water layers and capillary condensed water in the pore center which is documented by sorption isotherm measurements.

Reprint Address:
Gruener, S, Univ Saarland, Fac Phys & Mechatron Engn, D-66041 Saarbrucken, Germany.

Research Institution addresses:
[Gruener, Simon; Hofmann, Tommy; Huber, Patrick] Univ Saarland, Fac Phys & Mechatron Engn, D-66041 Saarbrucken, Germany; [Wallacher, Dirk] Helmholtz Ctr Mat & Energy, D-14109 Berlin, Germany; [Kityk, Andriy V.] Czestochowa Univ Technol, Inst Comp Sci, PL-42220 Czestochowa, Poland

E-mail Address:
s.gruener@mx.uni-saarland.de; p.huber@physik.uni-saarland.de

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Cited Reference Count:
58

Times Cited:
0

Publisher:
AMER PHYSICAL SOC; ONE PHYSICS ELLIPSE, COLLEGE PK, MD 20740-3844 USA

Subject Category:
Physics, Fluids & Plasmas; Physics, Mathematical

ISSN:
1539-3755

DOI:
10.1103/PhysRevE.79.067301

IDS Number:
466XP

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

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Title:
Transport properties and induced voltage in the structure of water-filled single-walled boron-nitrogen nanotubes

Authors:
Yuan, QZ; Zhao, YP

Author Full Names:
Yuan, Quanzi; Zhao, Ya-Pu

Source:
BIOMICROFLUIDICS 3 (2): Art. No. 022411 APR-JUN 2009

Language:
English

Document Type:
Proceedings Paper

Author Keywords:
boron compounds; density functional theory; diffusion; III-V semiconductors; molecular dynamics method; nanofluidics; pipe flow; semiconductor nanotubes; wide band gap semiconductors

KeyWords Plus:
CARBON NANOTUBES; MOLECULAR-DYNAMICS; NITRIDE NANOTUBES; CHANNEL; FLOW; LIQUIDS

Abstract:
Density functional theory/molecular dynamics simulations were employed to give insights into the mechanism of voltage generation based on a water-filled single-walled boron-nitrogen nanotube (SWBNNT). Our calculations showed that (1) the transport properties of confined water in a SWBNNT are different from those of bulk water in view of configuration, the diffusion coefficient, the dipole orientation, and the density distribution, and (2) a voltage difference of several millivolts would generate between the two ends of a SWBNNT due to interactions between the water dipole chains and charge carriers in the tube. Therefore, this structure of a water-filled SWBNNT can be a promising candidate for a synthetic nanoscale power cell as well as a practical nanopower harvesting device.

Reprint Address:
Zhao, YP, Chinese Acad Sci, Inst Mech, State Key Lab Nonlinear Mech LNM, Beijing 100190, Peoples R China.

Research Institution addresses:
[Yuan, Quanzi; Zhao, Ya-Pu] Chinese Acad Sci, Inst Mech, State Key Lab Nonlinear Mech LNM, Beijing 100190, Peoples R China

E-mail Address:
yzhao@imech.ac.cn

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Cited Reference Count:
28

Times Cited:
1

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

Subject Category:
Biophysics; Nanoscience & Nanotechnology; Physics, Fluids & Plasmas

ISSN:
1932-1058

DOI:
10.1063/1.3158618

IDS Number:
465PW

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Title:
Condensation process of alcohol molecules on mesoporous silica MCM-41 and SBA-15 and fumed silica: a spin-probe ESR study

Authors:
Okazaki, M; Seelan, S; Toriyama, K

Author Full Names:
Okazaki, M.; Seelan, S.; Toriyama, K.

Source:
APPLIED MAGNETIC RESONANCE 35 (3): 363-378 APR 2009

Language:
English

Document Type:
Proceedings Paper

KeyWords Plus:
LIQUID-PHASE PHOTOREACTION; CARBON NANOTUBES; DIFFUSION; FLOW; NANOCHANNEL; MECHANISM; DYNAMICS; NMR

Abstract:
A few alcoholic solutions of di-tert-butyl nitroxide (DTBN), a spin probe, at a high concentration were condensed on several silica materials, such as MCM-41, two types of SBA-15, and fumed silica, at various amounts in vacuum. At a very low solution dose the electron spin resonance (ESR) spectrum is that of an immobilized nitroxide radical. With increasing solution dose, the spectrum is gradually sharpened and a well-separated three-line spectrum is observed at the dose that is estimated to fill the surface with a monomolecular layer. Thus, the DTBN molecule can make rapid tumbling motion on this solvent layer. With a further increase in the solution dose the ESR spectrum is modified in different ways from system to system: the line width increases approximately linearly with respect to the solution dose for the SBA-15 and fumed silica systems, but it remains almost constant for the MCM-41 system until the solution dose exceeds the total volume of a nanochannel. The line wi!
dth increase with respect to the solution dose is small for the SBA-15 system but large for the fumed silica system. These results have been interpreted geometrically with the structures of these silica materials and a condensation model for the alcohols on these surfaces. In relation to the present results, a model of the collective molecular flow of the alcohol solutions through the nanochannel of MCM-41 is given.

Reprint Address:
Okazaki, M, Natl Inst Adv Ind Sci & Technol, Res Inst Instrumentat Frontier, Moriyama Ku, 2266-98 Shimoshidami, Nagoya, Aichi 4638560, Japan.

Research Institution addresses:
[Okazaki, M.] Natl Inst Adv Ind Sci & Technol, Res Inst Instrumentat Frontier, Moriyama Ku, Nagoya, Aichi 4638560, Japan

E-mail Address:
masa-okazaki@aist.go.jp

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Cited Reference Count:
26

Times Cited:
0

Publisher:
SPRINGER WIEN; SACHSENPLATZ 4-6, PO BOX 89, A-1201 WIEN, AUSTRIA

Subject Category:
Physics, Atomic, Molecular & Chemical; Spectroscopy

ISSN:
0937-9347

DOI:
10.1007/s00723-009-0168-2

IDS Number:
466NM

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Title:
Self-Diffusion of Water and Simple Alcohols in Single-Walled Aluminosilicate Nanotubes

Authors:
Zang, J; Konduri, S; Nair, S; Sholl, DS

Author Full Names:
Zang, Ji; Konduri, Suchitra; Nair, Sankar; Sholl, David S.

Source:
ACS NANO 3 (6): 1548-1556 JUN 2009

Language:
English

Document Type:
Article

Author Keywords:
inorganic nanotubes; aluminosilicate; self-diffusion; water; methanol; ethanol

KeyWords Plus:
MIXED-OXIDE NANOTUBES; FAST MASS-TRANSPORT; CARBON NANOTUBE; IMOGOLITE NANOTUBES; CORRELATED FLIGHTS; MEMBRANES; MODELS; NANOPARTICLES; RESISTANCES; DIMENSIONS

Abstract:
Understanding transport phenomena of fluids through nanotubes (NTs) is of great interest in order to enable potential application of NTs as separation devices, encapsulation media for molecule storage and delivery, and sensors. Single-walled metal oxide NTs are interesting materials because they present a well-defined solid-state structure, precisely tunable diameter and length, as well as a hydrophilic and functionalizable interior for tuning transport and adsorption selectivity. Here, we study the transport properties of hydrogen-bonding liquids (water, methanol, and ethanol) through a single-walled aluminosilicate NT to investigate the influence of liquid-surface and liquid-liquid interactions and the effects of competitive transport of different chemical species using molecular dynamics (MD) simulations. The self-diffusivities (D-s) for all the three species decrease with increasing loading and are comparable to bulk liquid diffusivities at low molecular loadings. We sho!
w that the hydrogen-bond network associated with water makes its diffusion behavior different from methanol and ethanol. Mixtures of water and methanol show segregation in the NT, with water located closer to the tube wall and the alcohol molecules localized near the center of the NT. D, values of water in an analogous aluminogermanate NT are larger than those in the aluminosilicate NT due to a larger pore diameter.

Reprint Address:
Sholl, DS, Georgia Inst Technol, Sch Chem & Biomol Engn, 311 Ferst Dr NW, Atlanta, GA 30332 USA.

Research Institution addresses:
[Zang, Ji; Konduri, Suchitra; Nair, Sankar; Sholl, David S.] Georgia Inst Technol, Sch Chem & Biomol Engn, Atlanta, GA 30332 USA

E-mail Address:
david.sholl@chbe.gatech.edu

Cited References:
ACKERMAN WC, 1993, LANGMUIR, V9, P1051.
CHEN B, 2001, J PHYS CHEM B, V105, P3093.
CYGAN RT, 2004, J PHYS CHEM B, V108, P1255, DOI 10.1021/jp0363287.
GORDILLO MC, 2000, CHEM PHYS LETT, V329, P341.
GUIMARAES L, 2007, ACS NANO, V1, P362, DOI 10.1021/nn700184k.
HINDS BJ, 2004, SCIENCE, V303, P62, DOI 10.1126/science.1092048.
HOLT JK, 2006, SCIENCE, V312, P1034, DOI 10.1126/science.1126298.
HUMMER G, 2001, NATURE, V414, P188.
IMAMURA S, 1996, J CATAL, V160, P137.
JEFFREY G, 1997, INTRO HYDROGEN BONDI, R7.
KALRA A, 2003, P NATL ACAD SCI USA, V100, P10175.
KONDURI S, 2006, PHYS REV B, V74, ARTN 033401.
KONDURI S, 2007, ACS NANO, V1, P393, DOI 10.1021/nn700104e.
KONDURI S, 2008, J PHYS CHEM C, V112, P15367, DOI 10.1021/jp8025144.
LIU YC, 2008, PHYS REV B, V77, ARTN 125438.
MAJUMDER M, 2005, NATURE, V438, P44, DOI 10.1038/43844a.
MAMONTOV E, 2006, J CHEM PHYS, V124, UNSP 194703-194706.
MARZAN LL, 1994, COLLOID SURFACE A, V90, P95.
MUKHERJEE S, 2005, CHEM MATER, V17, P4900, DOI 10.1021/cm0505852.
MUKHERJEE S, 2007, J AM CHEM SOC, V129, P6820, DOI 10.1021/ja070124c.
NEWSOME DA, 2005, J PHYS CHEM B, V109, P7237, DOI 10.1021/jp044247k.
NEWSOME DA, 2006, NANO LETT, V6, P2150, DOI 10.1021/nl061181r.
NOY A, 2007, NANO TODAY, V2, P22.
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SHOLL DS, 1997, PHYS REV E B, V55, P7753.
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SMITH W, 1996, DL POLY IS PACKAGE M.
STRIOLO A, 2006, NANO LETT, V6, P633, DOI 10.1021/nl052254u.
STRIOLO A, 2007, NONOTECHNOLOGY, V18, UNSP 475704-475710.
TAMURA K, 2002, J PHYS CHEM B, V106, P271.
VERWEIJ H, 2007, SMALL, V3, P1996, DOI 10.1002/smll.200700368.
WON CY, 2006, J CHEM PHYS, V125, UNSP 114701-114709.
WON CY, 2007, J AM CHEM SOC, V129, P2748, DOI 10.1021/ja0687318.
YAMAMOTO K, 2007, POLYM J, V39, P1, DOI 10.1295/polymj.PJ2006128.

Cited Reference Count:
37

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/nn9001837

IDS Number:
464UP

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Cited Article: Holt JK. Fast mass transport through sub-2-nanometer carbon nanotubes
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*Record 1 of 4.
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*Order Full Text [ ]
AU Gruener, S
Hofmann, T
Wallacher, D
Kityk, AV
Huber, P
AF Gruener, Simon
Hofmann, Tommy
Wallacher, Dirk
Kityk, Andriy V.
Huber, Patrick
TI Capillary rise of water in hydrophilic nanopores
SO PHYSICAL REVIEW E
LA English
DT Article
DE boundary layers; capillarity; capillary waves; flow through porous
media; hydrophilicity; nanofluidics; nanoporous materials; silicon
compounds; sorption; water
ID VYCOR GLASS; NEGATIVE PRESSURES; CARBON NANOTUBES; POROUS VYCOR;
DYNAMICS; FLOW; NANOSCALE; LIQUIDS; NANOFLUIDICS; ADSORPTION
AB We report on the capillary rise of water in three-dimensional networks
of hydrophilic silica pores with 3.5 nm and 5 nm mean radii,
respectively (porous Vycor monoliths). We find classical square root of
time Lucas-Washburn laws for the imbibition dynamics over the entire
capillary rise times of up to 16 h investigated. Provided we assume two
preadsorbed strongly bound layers of water molecules resting at the
silica walls, which corresponds to a negative velocity slip length of
-0.5 nm for water flow in silica nanopores, we can describe the filling
process by a retained fluidity and capillarity of water in the pore
center. This anticipated partitioning in two dynamic components
reflects the structural-thermodynamic partitioning in strongly silica
bound water layers and capillary condensed water in the pore center
which is documented by sorption isotherm measurements.
C1 [Gruener, Simon; Hofmann, Tommy; Huber, Patrick] Univ Saarland, Fac Phys & Mechatron Engn, D-66041 Saarbrucken, Germany.
[Wallacher, Dirk] Helmholtz Ctr Mat & Energy, D-14109 Berlin, Germany.
[Kityk, Andriy V.] Czestochowa Univ Technol, Inst Comp Sci, PL-42220 Czestochowa, Poland.
RP Gruener, S, Univ Saarland, Fac Phys & Mechatron Engn, D-66041
Saarbrucken, Germany.
EM s.gruener@mx.uni-saarland.de
p.huber@physik.uni-saarland.de
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NR 58
TC 0
PU AMER PHYSICAL SOC; ONE PHYSICS ELLIPSE, COLLEGE PK, MD 20740-3844 USA
SN 1539-3755
DI 10.1103/PhysRevE.79.067301
PD JUN
VL 79
IS 6
PN Part 2
AR 067301
SC Physics, Fluids & Plasmas; Physics, Mathematical
GA 466XP
UT ISI:000267698900086
ER

PT J
*Record 2 of 4.
L5 <http://gateway.isiknowledge.com/gateway/Gateway.cgi?GWVersion=2&SrcAuth=Alerting&SrcApp=Alerting&DestApp=WOS&DestLinkType=FullRecord;UT=000267668900002>
*Order Full Text [ ]
AU Okazaki, M
Seelan, S
Toriyama, K
AF Okazaki, M.
Seelan, S.
Toriyama, K.
TI Condensation process of alcohol molecules on mesoporous silica MCM-41
and SBA-15 and fumed silica: a spin-probe ESR study
SO APPLIED MAGNETIC RESONANCE
LA English
DT Proceedings Paper
ID LIQUID-PHASE PHOTOREACTION; CARBON NANOTUBES; DIFFUSION; FLOW;
NANOCHANNEL; MECHANISM; DYNAMICS; NMR
AB A few alcoholic solutions of di-tert-butyl nitroxide (DTBN), a spin
probe, at a high concentration were condensed on several silica
materials, such as MCM-41, two types of SBA-15, and fumed silica, at
various amounts in vacuum. At a very low solution dose the electron
spin resonance (ESR) spectrum is that of an immobilized nitroxide
radical. With increasing solution dose, the spectrum is gradually
sharpened and a well-separated three-line spectrum is observed at the
dose that is estimated to fill the surface with a monomolecular layer.
Thus, the DTBN molecule can make rapid tumbling motion on this solvent
layer. With a further increase in the solution dose the ESR spectrum is
modified in different ways from system to system: the line width
increases approximately linearly with respect to the solution dose for
the SBA-15 and fumed silica systems, but it remains almost constant for
the MCM-41 system until the solution dose exceeds the total volume of a
nanochannel. The line width increase with respect to the solution dose
is small for the SBA-15 system but large for the fumed silica system.
These results have been interpreted geometrically with the structures
of these silica materials and a condensation model for the alcohols on
these surfaces. In relation to the present results, a model of the
collective molecular flow of the alcohol solutions through the
nanochannel of MCM-41 is given.
C1 [Okazaki, M.] Natl Inst Adv Ind Sci & Technol, Res Inst Instrumentat Frontier, Moriyama Ku, Nagoya, Aichi 4638560, Japan.
RP Okazaki, M, Natl Inst Adv Ind Sci & Technol, Res Inst Instrumentat
Frontier, Moriyama Ku, 2266-98 Shimoshidami, Nagoya, Aichi 4638560,
Japan.
EM masa-okazaki@aist.go.jp
CR ANANDAN S, 2005, MICROPOR MESOPOR MAT, V87, P77, DOI
10.1016/j.micromeso.2005.07.036
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KONISHI Y, 2001, J PHYS CHEM B, V105, P9101
KRESGE CT, 1992, NATURE, V359, P710
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MAJUMDER M, 2005, NATURE, V438, P44, DOI 10.1038/43844a
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NR 26
TC 0
PU SPRINGER WIEN; SACHSENPLATZ 4-6, PO BOX 89, A-1201 WIEN, AUSTRIA
SN 0937-9347
DI 10.1007/s00723-009-0168-2
PD APR
VL 35
IS 3
BP 363
EP 378
SC Physics, Atomic, Molecular & Chemical; Spectroscopy
GA 466NM
UT ISI:000267668900002
ER

PT J
*Record 3 of 4.
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*Order Full Text [ ]
AU Zang, J
Konduri, S
Nair, S
Sholl, DS
AF Zang, Ji
Konduri, Suchitra
Nair, Sankar
Sholl, David S.
TI Self-Diffusion of Water and Simple Alcohols in Single-Walled
Aluminosilicate Nanotubes
SO ACS NANO
LA English
DT Article
DE inorganic nanotubes; aluminosilicate; self-diffusion; water; methanol;
ethanol
ID MIXED-OXIDE NANOTUBES; FAST MASS-TRANSPORT; CARBON NANOTUBE; IMOGOLITE
NANOTUBES; CORRELATED FLIGHTS; MEMBRANES; MODELS; NANOPARTICLES;
RESISTANCES; DIMENSIONS
AB Understanding transport phenomena of fluids through nanotubes (NTs) is
of great interest in order to enable potential application of NTs as
separation devices, encapsulation media for molecule storage and
delivery, and sensors. Single-walled metal oxide NTs are interesting
materials because they present a well-defined solid-state structure,
precisely tunable diameter and length, as well as a hydrophilic and
functionalizable interior for tuning transport and adsorption
selectivity. Here, we study the transport properties of
hydrogen-bonding liquids (water, methanol, and ethanol) through a
single-walled aluminosilicate NT to investigate the influence of
liquid-surface and liquid-liquid interactions and the effects of
competitive transport of different chemical species using molecular
dynamics (MD) simulations. The self-diffusivities (D-s) for all the
three species decrease with increasing loading and are comparable to
bulk liquid diffusivities at low molecular loadings. We show that the
hydrogen-bond network associated with water makes its diffusion
behavior different from methanol and ethanol. Mixtures of water and
methanol show segregation in the NT, with water located closer to the
tube wall and the alcohol molecules localized near the center of the
NT. D, values of water in an analogous aluminogermanate NT are larger
than those in the aluminosilicate NT due to a larger pore diameter.
C1 [Zang, Ji; Konduri, Suchitra; Nair, Sankar; Sholl, David S.] Georgia Inst Technol, Sch Chem & Biomol Engn, Atlanta, GA 30332 USA.
RP Sholl, DS, Georgia Inst Technol, Sch Chem & Biomol Engn, 311 Ferst Dr
NW, Atlanta, GA 30332 USA.
EM david.sholl@chbe.gatech.edu
CR ACKERMAN WC, 1993, LANGMUIR, V9, P1051
CHEN B, 2001, J PHYS CHEM B, V105, P3093
CYGAN RT, 2004, J PHYS CHEM B, V108, P1255, DOI 10.1021/jp0363287
GORDILLO MC, 2000, CHEM PHYS LETT, V329, P341
GUIMARAES L, 2007, ACS NANO, V1, P362, DOI 10.1021/nn700184k
HINDS BJ, 2004, SCIENCE, V303, P62, DOI 10.1126/science.1092048
HOLT JK, 2006, SCIENCE, V312, P1034, DOI 10.1126/science.1126298
HUMMER G, 2001, NATURE, V414, P188
IMAMURA S, 1996, J CATAL, V160, P137
JEFFREY G, 1997, INTRO HYDROGEN BONDI, R7
KALRA A, 2003, P NATL ACAD SCI USA, V100, P10175
KONDURI S, 2006, PHYS REV B, V74, ARTN 033401
KONDURI S, 2007, ACS NANO, V1, P393, DOI 10.1021/nn700104e
KONDURI S, 2008, J PHYS CHEM C, V112, P15367, DOI 10.1021/jp8025144
LIU YC, 2008, PHYS REV B, V77, ARTN 125438
MAJUMDER M, 2005, NATURE, V438, P44, DOI 10.1038/43844a
MAMONTOV E, 2006, J CHEM PHYS, V124, UNSP 194703-194706
MARZAN LL, 1994, COLLOID SURFACE A, V90, P95
MUKHERJEE S, 2005, CHEM MATER, V17, P4900, DOI 10.1021/cm0505852
MUKHERJEE S, 2007, J AM CHEM SOC, V129, P6820, DOI 10.1021/ja070124c
NEWSOME DA, 2005, J PHYS CHEM B, V109, P7237, DOI 10.1021/jp044247k
NEWSOME DA, 2006, NANO LETT, V6, P2150, DOI 10.1021/nl061181r
NOY A, 2007, NANO TODAY, V2, P22
OHASHI F, 2004, J MATER SCI, V39, P1799
PAOLI H, 2002, MICROPOR MESOPOR MAT, V55, P147
POHL PI, 1996, LANGMUIR, V12, P4463
SHOLL DS, 1994, PHYSICA D, V71, P168
SHOLL DS, 1997, PHYS REV E B, V55, P7753
SKOULIDAS AI, 2002, PHYS REV LETT, V89, ARTN 185901
SMITH W, 1996, DL POLY IS PACKAGE M
STRIOLO A, 2006, NANO LETT, V6, P633, DOI 10.1021/nl052254u
STRIOLO A, 2007, NONOTECHNOLOGY, V18, UNSP 475704-475710
TAMURA K, 2002, J PHYS CHEM B, V106, P271
VERWEIJ H, 2007, SMALL, V3, P1996, DOI 10.1002/smll.200700368
WON CY, 2006, J CHEM PHYS, V125, UNSP 114701-114709
WON CY, 2007, J AM CHEM SOC, V129, P2748, DOI 10.1021/ja0687318
YAMAMOTO K, 2007, POLYM J, V39, P1, DOI 10.1295/polymj.PJ2006128
NR 37
TC 0
PU AMER CHEMICAL SOC; 1155 16TH ST, NW, WASHINGTON, DC 20036 USA
SN 1936-0851
DI 10.1021/nn9001837
PD JUN
VL 3
IS 6
BP 1548
EP 1556
SC Chemistry, Multidisciplinary; Nanoscience & Nanotechnology; Materials
Science, Multidisciplinary
GA 464UP
UT ISI:000267533600032
ER

PT J
*Record 4 of 4.
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*Order Full Text [ ]
AU Nuxoll, EE
Hillmyer, MA
Wang, RF
Leighton, C
Siegel, RA
AF Nuxoll, Eric E.
Hillmyer, Marc A.
Wang, Ruifang
Leighton, C.
Siegel, Ronald A.
TI Composite Block Polymer-Microfabricated Silicon Nanoporous Membrane
SO ACS APPLIED MATERIALS & INTERFACES
LA English
DT Article
DE microelectromechanical system; nanoporous; membrane; block polymer;
size selectivity
ID POLYLACTIDE DIBLOCK COPOLYMERS; THIN-FILMS; FILTRATION MEMBRANES;
TRIBLOCK COPOLYMERS; TRANSPORT; POLYSTYRENE; ARRAYS
AB Block polymers offer an attractive route to densely packed,
monodisperse nanoscale pores. However, their fragility as thin films
complicates their use as membranes. By integrating a block polymer film
with a thin (100 mu m) silicon substrate, we have developed a composite
membrane providing both nanoscale size exclusion and fast transport of
small molecules. Here we describe the fabrication of this membrane,
evaluate its mechanical integrity, and demonstrate its transport
properties for model solutes of large and small molecular weight. The
ability to block large molecules without hindering smaller ones,
coupled with the potential for surface modification of the polymer and
the microelectromechanical system style of support, makes this
composite membrane an attractive candidate for interfacing implantable
sensing and drug-delivery devices with biological hosts.
C1 [Nuxoll, Eric E.; Siegel, Ronald A.] Univ Minnesota, Dept Pharmaceut, Minneapolis, MN 55455 USA.
[Hillmyer, Marc A.] Univ Minnesota, Dept Chem, Minneapolis, MN 55455 USA.
[Wang, Ruifang; Leighton, C.] Univ Minnesota, Dept Chem Engn & Mat Sci, Minneapolis, MN 55455 USA.
[Siegel, Ronald A.] Univ Minnesota, Dept Biomed Engn, Minneapolis, MN 55455 USA.
RP Siegel, RA, Univ Minnesota, Dept Pharmaceut, 9-177 Weaver Densford
Hall,308 Harvard St SE, Minneapolis, MN 55455 USA.
EM siege017@umn.edu
CR BAILEY TS, 2006, MACROMOLECULES, V39, P8772, DOI 10.1021/ma061892b
BANG J, 2006, J AM CHEM SOC, V128, P7622, DOI 10.1021/ja0608141
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BLACK CT, 2007, IBM J RES DEV, V51, P605
CAVICCHI KA, 2007, MACROMOLECULES, V40, P1181, DOI 10.1021/ma061163w
COONEY DT, 2006, CRYSTALLOGR REV, V12, P13
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10.1016/j.addr.2003.11.006
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HAWKER CJ, 2005, MRS BULL, V30, P952
HILLMYER MA, 2005, ADV POLYM SCI, V190, P137, DOI 10.1007/12_002
HINDS BJ, 2004, SCIENCE, V303, P62, DOI 10.1126/science.1092048
HOLT JK, 2006, SCIENCE, V312, P1034, DOI 10.1126/science.1126298
JIRAGE KB, 1997, SCIENCE, V278, P655
KIM SH, 2004, ADV MATER, V16, P226, DOI 10.1002/adma.200304906
KUBO T, 2007, APPL PHYS LETT, V90, P33113
KUBO T, 2008, APPL PHYS LETT, V93, ARTN 133112
LEE SB, 2001, CHEM MATER, V13, P3236
LEONI L, 2002, BIOMED MICRODEVICES, V4, P131
LI YX, 2009, ANAL CHEM, V81, P851, DOI 10.1021/ac802201w
LIU GJ, 1999, ANGEW CHEM INT EDIT, V38, P835
LIU GJ, 1999, CHEM MATER, V11, P2233
LOPEZ CA, 2006, BIOMATERIALS, V27, P3075, DOI
10.1016/j.biomaterials.2005.12.017
MAO H, 2006, THESIS U MINNESOTA M
MAO HM, 2005, MACROMOLECULES, V38, P4038, DOI 10.1021/ma050008z
MARTIN CR, 1994, SCIENCE, V266, P1961
OLAYOVALLES R, 2005, MACROMOLECULES, V38, P10101, DOI 10.1021/ma0509006
PARK C, 2001, APPL PHYS LETT, V79, P848
PHILLIP WA, 2006, J MEMBRANE SCI, V286, P144, DOI
10.1016/j.memsci.2006.09.028
SHIN K, 2002, NANO LETT, V2, P933, DOI 10.1021/nl0256560
SINGH S, 2007, NANO LETT, V7, P2676, DOI 10.1021/nl071061z
STRIEMER CC, 2007, NATURE, V445, P749, DOI 10.1038/nature05532
WOLFRUM B, 2006, NANO LETT, V6, P453, DOI 10.1021/nl052370x
XIANG HQ, 2004, MACROMOLECULES, V37, P5358, DOI 10.1021/ma049888s
XU T, 2005, MACROMOLECULES, V38, P10788, DOI 10.1021/ma050221c
YAMAGUCHI A, 2004, NAT MATER, V3, P337, DOI 10.1038/nmat1107
YANG SY, 2006, ADV MATER, V18, P709, DOI 10.1002/adma.200501500
YANG SY, 2008, ADV FUNCT MATER, V18, P1371, DOI 10.1002/adfm.200700832
NR 38
TC 0
PU AMER CHEMICAL SOC; 1155 16TH ST, NW, WASHINGTON, DC 20036 USA
SN 1944-8244
DI 10.1021/am900013v
PD APR
VL 1
IS 4
BP 888
EP 893
GA 464VM
UT ISI:000267536100021
ER

EF

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Friday, July 10, 2009

ISI Web of Knowledge Alert - Ghosh, S

ISI Web of Knowledge Citation Alert

Cited Article: Ghosh, S. Carbon nanotube flow sensors
Alert Expires: 22 OCT 2009
Number of Citing Articles: 1 new records this week (1 in this e-mail)
Organization ID: 3b97d1bbc1878baed0ab183d8b03130b
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Title:
Movement-induced voltage properties of stable graphite nanoplatelet suspensions

Authors:
Wei, T; Fan, ZJ; Zheng, C; Yao, CZ; Li, WF

Author Full Names:
Wei, Tong; Fan, Zhuangjun; Zheng, Chao; Yao, Chengzhao; Li, Weifang

Source:
MATERIALS LETTERS 63 (18-19): 1608-1610 JUL 31 2009

Language:
English

Document Type:
Article

Author Keywords:
Graphite nanoplatelet suspension; Nanomaterials; Electrical properties; Voltage generation

Abstract:
Stable and uniform dispersion of graphite nanoplatelets (GNPs, the diameter of 5-10 mu m) in organic solvent had been prepared. The dispersion of GNPs is improved remarkably with the assistance of dispersant and resin. The voltage generation for the movement of graphite nanoplatelets is observed in organic liquid. An induced voltage of similar to 90 mV has been generated, which is roughly three times higher than the voltage generation reported with multi-walled carbon nanotubes. The voltage generation increases linearly with increase of area and decrease of distance between two electrodes. Voltage generation mechanism may come from electrostatic interactions of the fluid species with the delocalized Pi electrons of the graphite from thermal excitation with the hot phonons produced by the friction of the moving liquid. Our work highlights the device potential for graphite nanoplatelets as sensitive flow sensors and for energy conversion. (C) 2009 Elsevier B.V. All rights rese!
rved.

Reprint Address:
Fan, ZJ, Harbin Engn Univ, Key Lab Superlight Mat & Surface Technol, Minist Educ, Sch Chem Engn & Mat Sci, Harbin 150001, Heilongjiang, Peoples R China.

Research Institution addresses:
[Wei, Tong; Fan, Zhuangjun; Zheng, Chao] Harbin Engn Univ, Key Lab Superlight Mat & Surface Technol, Minist Educ, Sch Chem Engn & Mat Sci, Harbin 150001, Heilongjiang, Peoples R China; [Yao, Chengzhao; Li, Weifang] Aerosp Res Inst Mat & Proc Technol, Natl Key Lab Adv Funct Composites Mat, Beijing 100076, Peoples R China

E-mail Address:
fanzhj666@163.com

Cited References:
CHEN GH, 2001, POLYM ENG SCI, V41, P2148.
GHOSH S, 2003, SCIENCE, V299, P1042, DOI 10.1126/science.1079080.
KING JA, 1999, POLYM COMPOSITE, V20, P643.
LI J, 2007, COMPOS SCI TECHNOL, V67, P2114, DOI 10.1016/j.compscitech.2006.11.010.
LIU JW, 2007, J APPL PHYS, V101, UNSP 064312-1.
NOVOSELOV KS, 2004, SCIENCE, V306, P666.
STANKOVICH S, 2006, SCIENCE, V422, P282.

Cited Reference Count:
7

Times Cited:
0

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

Subject Category:
Materials Science, Multidisciplinary; Physics, Applied

ISSN:
0167-577X

DOI:
10.1016/j.matlet.2009.04.028

IDS Number:
461NE

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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: 22 OCT 2009
Number of Citing Articles: 1 new records this week (1 in this e-mail)
Organization ID: 3b97d1bbc1878baed0ab183d8b03130b
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Title:
Analysis of nonlinear vibrations of double-walled carbon nanotubes conveying fluid

Authors:
Kuang, YD; He, XQ; Chen, CY; Li, GQ

Author Full Names:
Kuang, Y. D.; He, X. Q.; Chen, C. Y.; Li, G. Q.

Source:
COMPUTATIONAL MATERIALS SCIENCE 45 (4): 875-880 JUN 2009

Language:
English

Document Type:
Article

Author Keywords:
Carbon nanotubes; Nonlinear vibration; Amplitude-frequency properties

KeyWords Plus:
INSTABILITY; FLOW

Abstract:
This paper investigates the effect of the geometric nonlinearity and the nonlinearity of van der Waals (vdW) force on the transverse vibration of the double-walled carbon nanotubes conveying fluid and the interaction between two types of nonlinearities. By using the Hamilton's principle, the nonlinear governing equations of the double-walled carbon nanotubes conveying fluid are deduced. The effects of two types of nonlinearities on the coaxial and noncoaxial vibrations of the double-walled carbon nanotubes conveying fluid are discussed in numerical examples. The results show that the effect of geometric nonlinearity on the amplitude-frequency properties can be neglected if two types of nonlinearities are simultaneously considered. Compared with the uncoupling, the coupling between the longitudinal and transverse vibrations has little effect on the amplitude-frequency properties with considering two types of nonlinearities simultaneously. However, the coupling has significant!
effect on the amplitude-frequency properties with only considering the geometric nonlinearity. (C) 2009 Elsevier B.V. All rights reserved.

Reprint Address:
He, XQ, City Univ Hong Kong, Dept Bldg & Construct, Tat Chee Ave, Kowloon, Hong Kong, Peoples R China.

Research Institution addresses:
[Kuang, Y. D.; He, X. Q.] City Univ Hong Kong, Dept Bldg & Construct, Kowloon, Hong Kong, Peoples R China; [Kuang, Y. D.; Chen, C. Y.; Li, G. Q.] Huazhong Univ Sci & Technol, Sch Civil Engn & Mech, Wuhan 430074, Hubei, Peoples R China

E-mail Address:
bcxqhe@cityu.edu.hk

Cited References:
GADD GE, 1997, SCIENCE, V277, P933.
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HANASAKI I, 2006, NANOTECHNOLOGY, V17, P2794, DOI 10.1088/0957-4484/17/11/012.
HE XQ, 2008, ARCH APPL MECH, V78, P637, DOI 10.1007/s00419-007-0184-3.
HUMMER G, 2001, NATURE, V414, P188.
LEE HL, 2008, J APPL PHYS, V103, ARTN 024302.
LIU YZ, 2001, NONLINEAR VIBRATION.
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MAO ZG, 2000, J PHYS CHEM B, V104, P4618.
NATSUKI T, 2007, J APPL PHYS, V101, ARTN 034319.
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WANG L, 2008, COMP MATER SCI, V43, P399.
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WANG L, 2008, PHYSICA E, V40, P3179, DOI 10.1016/j.physe.2008.05.009.
XU KY, 2006, J APPL PHYS, V99, ARTN 064303.
YAN Y, 2009, APPL MATH MODEL, V33, P1430, DOI 10.1016/j.apm.2008.02.010.
YAN Y, 2009, J SOUND VIB, V319, P1003, DOI 10.1016/j.jsv.2008.07.001.
YOON J, 2006, INT J SOLIDS STRUCT, V43, P3337, DOI 10.1016/j.ijsolstr.2005.04.039.

Cited Reference Count:
21

Times Cited:
0

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

Subject Category:
Materials Science, Multidisciplinary

ISSN:
0927-0256

DOI:
10.1016/j.commatsci.2008.12.007

IDS Number:
460JE

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ISI Web of Knowledge Alert - Thompson, P

ISI Web of Knowledge Citation Alert
Cited Article:   Thompson, P. A general boundary condition for liquid flow at solid surfaces
Alert Expires:   21 OCT 2009
Number of Citing Articles:   1 new records this week (1 in this e-mail)
Organization ID:   3b97d1bbc1878baed0ab183d8b03130b

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Title: Hydrokinetic simulations of nanoscopic precursor films in rough channels
Authors: Chibbaro, S; Biferale, L; Binder, K; Dimitrov, D; Diotallevi, F; Milchev, A; Succi, S
Author Full Names: Chibbaro, S.; Biferale, L.; Binder, K.; Dimitrov, D.; Diotallevi, F.; Milchev, A.; Succi, S.
Source: JOURNAL OF STATISTICAL MECHANICS-THEORY AND EXPERIMENT : Art. No. P06007 JUN 2009
Language: English
Document Type: Article
Author Keywords: microfluidics and nanofluidics (theory); lattice Boltzmann methods; molecular dynamics
KeyWords Plus: DISSIPATIVE PARTICLE DYNAMICS; LIQUID FLOW; CAPILLARY; MICROCHANNELS; SURFACES; FRICTION
Abstract: We report on simulations of capillary filling of highly wetting fluids in nanochannels with and without obstacles. We use atomistic (molecular dynamics) and hydrokinetic (lattice Boltzmann; LB) approaches which indicate clear evidence of the formation of thin precursor films, moving ahead of the main capillary front. The dynamics of the precursor films is found to obey a square-root law like that obeyed by the main capillary front, z(2)(t) alpha t, although with a larger prefactor, which we find to take the same value for the different geometries (2D-3D) under inspection. The two methods show a quantitative agreement which indicates that the formation and propagation of thin precursors can be handled at a mesoscopic/hydrokinetic level. This can be considered as a validation of the LB method and opens the possibility of using hydrokinetic methods to explore space-time scales and complex geometries of direct experimental relevance. Then, the LB approach is used to study the fl! uid behaviour in a nanochannel when the precursor film encounters a square obstacle. A complete parametric analysis is performed which suggests that thin-film precursors may have an important influence on the efficiency of nanochannel-coating strategies.
Reprint Address: Chibbaro, S, Univ Tor Vergata, Dept Mech Engn, Via Politecn 1, I-00133 Rome, Italy.
Research Institution addresses: [Chibbaro, S.] Univ Tor Vergata, Dept Mech Engn, I-00133 Rome, Italy; [Biferale, L.] Univ Tor Vergata, Dipartimento Fis, I-00133 Rome, Italy; [Biferale, L.] Univ Tor Vergata, Ist Nazl Fis Nucl, I-00133 Rome, Italy; [Binder, K.; Milchev, A.] Johannes Gutenberg Univ Mainz, Inst Phys, D-55099 Mainz, Germany; [Dimitrov, D.] Univ Food Technol, Plovdiv 4000, Bulgaria; [Diotallevi, F.; Succi, S.] CNR, Ist Applicaz Calcolo, I-00161 Rome, Italy
E-mail Address: sergio.chibbaro@gmail.com; biferale@roma2.infn.it; Kurt.Binder@uni-mainz.de; dimitro@uni-mainz.de; f.diotallevi@iac.cnr.it; milchev@mail.uni-mainz.de; succi@iac.cnr.it
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Cited Reference Count: 51
Times Cited: 0
Publisher: IOP PUBLISHING LTD; DIRAC HOUSE, TEMPLE BACK, BRISTOL BS1 6BE, ENGLAND
Subject Category: Mechanics; Physics, Mathematical
ISSN: 1742-5468
DOI: 10.1088/1742-5468/2009/06/P06007
IDS Number: 459UZ

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Thursday, July 9, 2009

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: 18 OCT 2009
Number of Citing Articles: 2 new records this week (2 in this e-mail)
Organization ID: 3b97d1bbc1878baed0ab183d8b03130b
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FN ISI Export Format
VR 1.0

PT J
*Record 1 of 2.
L5 <http://gateway.isiknowledge.com/gateway/Gateway.cgi?GWVersion=2&SrcAuth=Alerting&SrcApp=Alerting&DestApp=WOS&DestLinkType=FullRecord;UT=000267131500011>
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AU Peng, XS
Jin, J
Nakamura, Y
Ohno, T
Ichinose, I
AF Peng, Xinsheng
Jin, Jian
Nakamura, Yoshimichi
Ohno, Takahisa
Ichinose, Izumi
TI Ultrafast permeation of water through protein-based membranes
SO NATURE NANOTECHNOLOGY
LA English
DT Article
ID COPPER HYDROXIDE NANOSTRANDS; CARBON NANOTUBE MEMBRANES; FAST
MASS-TRANSPORT; ULTRAFILTRATION MEMBRANES; NANOFILTRATION MEMBRANES;
SEPARATION; MODEL
AB Pressure-driven filtration by porous membranes is widely used in the
production of drinking water from ground and surface water(1-3).
Permeation theory predicts that filtration rate is proportional to the
pressure difference across the filtration membrane and inversely
proportional to the thickness of the membrane(4). However, these
membranes need to be able to withstand high water fluxes and pressures,
which means that the active separation layers in commercial filtration
systems typically have a thickness of a few tens to several hundreds of
nanometres(5). Filtration performance might be improved by the use of
ultrathin porous silicon membranes(6) or carbon nanotubes immobilized
in silicon nitride(7) or polymer films(8,9), but these structures are
difficult to fabricate. Here, we report a new type of filtration
membrane made of crosslinked proteins that are mechanically robust and
contain channels with diameters of less than 2.2 nm. We find that a
60-nm-thick membrane can concentrate aqueous dyes from fluxes up to
9,000 l h(-1) m(-2) bar(-1), which is similar to 1,000 times higher
than the fluxes that can be withstood by commercial filtration
membranes with similar rejection properties(1,10,11). Based on these
results and molecular dynamics simulations, we propose that
protein-surrounded channels with effective lengths of less than 5.8 nm
can separate dye molecules while allowing the ultrafast permeation of
water at applied pressures of less than 1 bar.
C1 [Peng, Xinsheng; Jin, Jian; Ichinose, Izumi] Natl Inst Mat Sci, Organ Nanomat Ctr, Tsukuba, Ibaraki 3050044, Japan.
[Nakamura, Yoshimichi; Ohno, Takahisa] Natl Inst Mat Sci, Computat Mat Sci Ctr, Tsukuba, Ibaraki 3050047, Japan.
[Ohno, Takahisa; Ichinose, Izumi] JST, CREST, Chiyoda Ku, Tokyo 1020075, Japan.
RP Ichinose, I, Natl Inst Mat Sci, Organ Nanomat Ctr, 1-1 Namiki, Tsukuba,
Ibaraki 3050044, Japan.
EM ICHINOSE.lzumi@nims.go.jp
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NR 28
TC 1
PU NATURE PUBLISHING GROUP; MACMILLAN BUILDING, 4 CRINAN ST, LONDON N1
9XW, ENGLAND
SN 1748-3387
DI 10.1038/NNANO.2009.90
PD JUN
VL 4
IS 6
BP 353
EP 357
SC Nanoscience & Nanotechnology; Materials Science, Multidisciplinary
GA 459TA
UT ISI:000267131500011
ER

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AU Ji, QM
Acharya, S
Hill, JP
Vinu, A
Yoon, SB
Yu, JS
Sakamoto, K
Ariga, K
AF Ji, Qingmin
Acharya, Somobrata
Hill, Jonathan P.
Vinu, Ajayan
Yoon, Suk Bon
Yu, Jong-Sung
Sakamoto, Kazutami
Ariga, Katsuhiko
TI Hierarchic Nanostructure for Auto-Modulation of Material Release:
Mesoporous Nanocompartment Films
SO ADVANCED FUNCTIONAL MATERIALS
LA English
DT Article
ID CONTROLLED DRUG-RELEASE; POLYELECTROLYTE MULTILAYER FILMS; RESPONSIVE
CONTROLLED-RELEASE; POROUS-GLASS PLATE; SUPRAMOLECULAR NANOVALVE;
CORE/MESOPOROUS SHELL; SILICA NANOPARTICLES; PERMEATION CONTROL;
TRIGGERED RELEASE; GUEST MOLECULES
AB The preparation of mesoporous nanocompartment films composed of both
hollow silica capsules and silica particles by using layer-by-layer
(LbL) adsorption is described. The resultant nanocompartment films
exhibit stepwise release, of encapsulated water molecules without
application of external stimuli. The hollow hierarchic pore structure
of the silica capsules, including their internal void and mesoporous
walls, is a key factor for the regulation and stepwise release of
water, and is probably caused by the non- equilibrated concurrent
evaporation of material from the mesopore and capillary penetration
into the mesopores. The number of release steps and rate of release can
be tuned by variation of several parameters including water content,
ambient temperature, layer multiplicity, and co-adduct particle size.
Application of the mesoporous nanocompartment films for the release of
substances, including therapeutic agents and fragrances, indicates that
the stepwise material release can be applied for a wide range of liquid
substances. The films should lead to a novel-material release system
useful even for biomedical applications capable of controlled and
sustained delivery of drug molecules.
C1 [Ji, Qingmin; Acharya, Somobrata; Hill, Jonathan P.; Vinu, Ajayan; Ariga, Katsuhiko] Natl Inst Mat Sci, World Premier Int Res Ctr Mat Nanoarchitecton, Tsukuba, Ibaraki 3050044, Japan.
[Yoon, Suk Bon; Yu, Jong-Sung] Korea Univ, Dept Adv Mat Chem, Jochiwon 339700, Chungnam, South Korea.
[Sakamoto, Kazutami] Tokyo Univ Sci, Chiba 2788510, Japan.
RP Ji, QM, Natl Inst Mat Sci, World Premier Int Res Ctr Mat
Nanoarchitecton, 1-1 Namiki, Tsukuba, Ibaraki 3050044, Japan.
EM jsyu212@korea.ac.kr
ARIGA.Katsuhiko@nims.go.jp
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NR 89
TC 0
PU WILEY-V C H VERLAG GMBH; PO BOX 10 11 61, D-69451 WEINHEIM, GERMANY
SN 1616-301X
DI 10.1002/adfm.200801762
PD JUN 9
VL 19
IS 11
BP 1792
EP 1799
SC Chemistry, Multidisciplinary; Chemistry, Physical; Nanoscience &
Nanotechnology; Materials Science, Multidisciplinary; Physics, Applied;
Physics, Condensed Matter
GA 461XA
UT ISI:000267305500015
ER

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