Friday, October 22, 2010

ISI Web of Knowledge Alert - Ghosh, S

ISI Web of Knowledge Citation Alert

Cited Article: Ghosh, S. Carbon nanotube flow sensors
Alert Expires: 09 NOV 2010
Number of Citing Articles: 1 new records this week (1 in this e-mail)
Organization ID: 3b97d1bbc1878baed0ab183d8b03130b
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Title:
Elastic Response of Carbon Nanotube Forests to Aerodynamic Stresses

Authors:
Battiato, I; Bandaru, PR; Tartakovsky, DM

Author Full Names:
Battiato, Ilenia; Bandaru, Prabhakar R.; Tartakovsky, Daniel M.

Source:
PHYSICAL REVIEW LETTERS 105 (14): Art. No. 144504 OCT 1 2010

Language:
English

Document Type:
Article

KeyWords Plus:
FLOW

Abstract:
The ability to determine static and (hydro) dynamic properties of carbon nanotubes (CNTs) is crucial for many applications. While their static properties (e.g., solubility and wettability) are fairly well understood, their mechanical responses (e.g., deflection under shear) to ambient fluid flow are to a large extent unknown. We analyze the elastic response of single-walled CNT forests, attached to the bottom wall of a channel, to the aerodynamic loading exerted by both laminar and turbulent flows. Our analysis yields analytical expressions for velocity distributions, the drag coefficient, and bending profiles of individual CNTs. This enables us to determine flexural rigidity of CNTs in wind-tunnel experiments. The model predictions agree with laboratory experiments for a large range of channel velocities.

Reprint Address:
Battiato, I, Univ Calif San Diego, La Jolla, CA 92093 USA.

Research Institution addresses:
[Battiato, Ilenia; Bandaru, Prabhakar R.; Tartakovsky, Daniel M.] Univ Calif San Diego, La Jolla, CA 92093 USA

E-mail Address:
dmt@ucsd.edu

Cited References:
BAUGHMAN RH, 2002, SCIENCE, V297, P787.
BEER FP, 2006, MECH MAT.
DECK CP, 2009, J APPL PHYS, V106, P74304, ARTN 074304.
FALVO MR, 1997, NATURE, V389, P582.
FORD AN, 2006, IND ENG CHEM RES, V45, P1797, DOI 10.1021/ie050932h.
GHOSH S, 2003, SCIENCE, V299, P1042, DOI 10.1126/science.1079080.
HAPPEL J, 1959, AICHE J, V5, P174.
HUANG JY, 2006, NATURE, V439, P281, DOI 10.1038/439281a.
JOSEPH P, 2006, PHYS REV LETT, V97, ARTN 156104.
KIM P, 1999, SCIENCE, V286, P2148.
PONCHARAL P, 1999, SCIENCE, V283, P1513.
POPE SB, 2000, TURBULENT FLOWS.
TREACY MMJ, 1996, NATURE, V381, P678.
VALDESPARADA FJ, 2007, PHYSICA A, V385, P69, DOI 10.1016/j.physa.2007.06.012.
WALTHER JH, 2004, PHYS REV E 1, V69, ARTN 062201.
WEINBAUM S, 2003, P NATL ACAD SCI USA, V100, P7988, DOI 10.1073/pnas.1332808100.
WILSON M, 2009, PHYS TODAY, V62, P16.

Cited Reference Count:
17

Times Cited:
0

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

Subject Category:
Physics, Multidisciplinary

ISSN:
0031-9007

DOI:
10.1103/PhysRevLett.105.144504

IDS Number:
656UF

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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 AUG 2011
Number of Citing Articles: 1 new records this week (1 in this e-mail)
Organization ID: 3b97d1bbc1878baed0ab183d8b03130b
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Title:
Nanofiltration of Electrolyte Solutions by Sub-2nm Carbon Nanotube Membranes

Authors:
Fornasiero, F; Park, HG; Holt, JK; Stadermann, M; Kim, S; Bin In, J; Grigoropoulos, CP; Noy, A; Bakajin, O

Author Full Names:
Fornasiero, Francesco; Park, Hyung Gyu; Holt, Jason K.; Stadermann, Michael; Kim, Sangil; Bin In, Jung; Grigoropoulos, Costas P.; Noy, Aleksandr; Bakajin, Olgica

Source:
CLEAN TECHNOLOGY 2008: BIO ENERGY, RENEWABLES, GREEN BUILDING, SMART GRID, STORAGE, AND WATER : 380-383 2008

Language:
English

Document Type:
Proceedings Paper

Author Keywords:
carbon nanotube; membrane; ion exclusion; fast flow

KeyWords Plus:
WATER; TRANSPORT; GROWTH

Abstract:
Both MD simulations and experimental studies have shown that liquid and gas flow through carbon nanotubes with nanometer size diameter is exceptionally fast. For applications in separation technology, selectivity is required together with fast flow. In this work, we use pressure-driven filtration experiments to study ion exclusion in silicon nitride/sub-2-nm CNT composite membranes as a function of solution ionic strength, pH, and ion valence. We show that carbon nanotube membranes exhibit significant ion exclusion at low salt concentration. Our results support a rejection mechanism dominated by electrostatic interactions between fixed membrane charges and mobile ions, while steric and hydrodynamic effects appear to be less important. Comparison with commercial nanofiltration membranes for water softening reveals that our carbon nanotube membranes provides far superior water fluxes for similar ion rejection capabilities.

Reprint Address:
Fornasiero, F, LLNL, Biosci & Biotechnol Div, CMELS, Livermore, CA 94550 USA.

Research Institution addresses:
[Fornasiero, Francesco; Park, Hyung Gyu; Holt, Jason K.; Stadermann, Michael; Noy, Aleksandr; Bakajin, Olgica] LLNL, Biosci & Biotechnol Div, CMELS, Livermore, CA 94550 USA

Cited References:
CHEUNG CL, 2002, J PHYS CHEM B, V106, P2429.
FORNASIERO F, 2008, PNAS IN PRESS.
FRANKLIN NR, 2002, APPL PHYS LETT, V81, P913.
FUTABA DN, 2006, NAT MATER, V5, P987, DOI 10.1038/nmat1782.
HOLT JK, 2006, SCIENCE, V312, P1034, DOI 10.1126/science.1126298.
HUMMER G, 2001, NATURE, V414, P188.
JOSEPH S, 2008, NANO LETT, V8, P452, DOI 10.1021/nl072385q.
KALRA A, 2003, P NATL ACAD SCI USA, V100, P10175.
KOLESNIKOV AI, 2004, PHYS REV LETT, V93, ARTN 035503.
LOISEAU A, 2006, LECT NOTE PHYS, V677, P49.
MAJUMDER M, 2005, NATURE, V438, P44, DOI 10.1038/43844a.
MAMONTOV E, 2006, J CHEM PHYS, V124, ARTN 194703.
MANIWA Y, 2007, NAT MATER, V6, P135, DOI 10.1038/nmat1823.
NAGUIB N, 2004, NANO LETT, V4, P2237, DOI 10.1021/nl0484907.
NOY A, 2007, NANO TODAY, V2, P22.
PURETZKY AA, 2005, APPL PHYS A-MATER, V81, P223, DOI 10.1007/s00339-005-3256-7.
YAMADA T, 2006, NAT NANOTECHNOL, V1, P131, DOI 10.1038/nnano.2006.95.

Cited Reference Count:
17

Times Cited:
0

Publisher:
CRC PRESS-TAYLOR & FRANCIS GROUP; 6000 BROKEN SOUND PARKWAY NW, STE 300, BOCA RATON, FL 33487-2742 USA

IDS Number:
BRC37

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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
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FN ISI Export Format
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PT J
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AU Guo, SH
Zhu, BE
Ou, XD
Pan, ZY
Wang, YX
AF Guo, S. H.
Zhu, B. E.
Ou, X. D.
Pan, Z. Y.
Wang, Y. X.
TI Deformation of gold-filled single-walled carbon nanotubes under axial
compression
SO CARBON
LA English
DT Article
ID METAL NANOWIRES; DEPOSITION; TUBES
AB Molecular dynamics simulations were used to investigate the deformation
behavior of gold-filled single-walled carbon nanotubes under axial
compression. The simulation results show that the buckling strength of
Au-filled carbon nanotubes is increased compared with that of a hollow
tube, and is similar to the effect of filling with gases or fullerenes.
The interactions between filling elements and the carbon wall help
restrain the collapse of the tube. With Au-filling, the filled tube
experiences an elastic-inelastic transition, somewhat like the behavior
of metals, which is different from the cases when it is filled with
gases or fullerenes, particularly for low filling density. Analysis of
the transition using the potential energy map showed that several Au
atoms began to slide before the strain reached the critical value. This
is more obvious in the stress concentration zone, where the original Au
bonds are first broken and then are re-formed with new neighbors. (C)
2010 Elsevier Ltd. All rights reserved.
C1 [Wang, Y. X.] Fudan Univ, Inst Modern Phys, Dept Nucl Sci & Technol, Shanghai 200433, Peoples R China.
Fudan Univ, Appl Ion Beam Phys Lab, Key Lab, Minist Educ, Shanghai 200433, Peoples R China.
RP Wang, YX, Fudan Univ, Inst Modern Phys, Dept Nucl Sci & Technol,
Shanghai 200433, Peoples R China.
EM yxwang@fudan.edu.cn
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NR 29
TC 0
PU PERGAMON-ELSEVIER SCIENCE LTD; THE BOULEVARD, LANGFORD LANE,
KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 0008-6223
DI 10.1016/j.carbon.2010.07.023
PD NOV
VL 48
IS 14
BP 4129
EP 4135
SC Chemistry, Physical; Materials Science, Multidisciplinary
GA 656ZR
UT ISI:000282380300020
ER

PT B
*Record 2 of 3.
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AU Fornasiero, F
Park, HG
Holt, JK
Stadermann, M
Kim, S
Bin In, J
Grigoropoulos, CP
Noy, A
Bakajin, O
AF Fornasiero, Francesco
Park, Hyung Gyu
Holt, Jason K.
Stadermann, Michael
Kim, Sangil
Bin In, Jung
Grigoropoulos, Costas P.
Noy, Aleksandr
Bakajin, Olgica
TI Nanofiltration of Electrolyte Solutions by Sub-2nm Carbon Nanotube
Membranes
SO CLEAN TECHNOLOGY 2008: BIO ENERGY, RENEWABLES, GREEN BUILDING, SMART
GRID, STORAGE, AND WATER
LA English
DT Proceedings Paper
DE carbon nanotube; membrane; ion exclusion; fast flow
ID WATER; TRANSPORT; GROWTH
AB Both MD simulations and experimental studies have shown that liquid and
gas flow through carbon nanotubes with nanometer size diameter is
exceptionally fast. For applications in separation technology,
selectivity is required together with fast flow. In this work, we use
pressure-driven filtration experiments to study ion exclusion in
silicon nitride/sub-2-nm CNT composite membranes as a function of
solution ionic strength, pH, and ion valence. We show that carbon
nanotube membranes exhibit significant ion exclusion at low salt
concentration. Our results support a rejection mechanism dominated by
electrostatic interactions between fixed membrane charges and mobile
ions, while steric and hydrodynamic effects appear to be less
important. Comparison with commercial nanofiltration membranes for
water softening reveals that our carbon nanotube membranes provides far
superior water fluxes for similar ion rejection capabilities.
C1 [Fornasiero, Francesco; Park, Hyung Gyu; Holt, Jason K.; Stadermann, Michael; Noy, Aleksandr; Bakajin, Olgica] LLNL, Biosci & Biotechnol Div, CMELS, Livermore, CA 94550 USA.
RP Fornasiero, F, LLNL, Biosci & Biotechnol Div, CMELS, Livermore, CA
94550 USA.
CR CHEUNG CL, 2002, J PHYS CHEM B, V106, P2429
FORNASIERO F, 2008, PNAS IN PRESS
FRANKLIN NR, 2002, APPL PHYS LETT, V81, P913
FUTABA DN, 2006, NAT MATER, V5, P987, DOI 10.1038/nmat1782
HOLT JK, 2006, SCIENCE, V312, P1034, DOI 10.1126/science.1126298
HUMMER G, 2001, NATURE, V414, P188
JOSEPH S, 2008, NANO LETT, V8, P452, DOI 10.1021/nl072385q
KALRA A, 2003, P NATL ACAD SCI USA, V100, P10175
KOLESNIKOV AI, 2004, PHYS REV LETT, V93, ARTN 035503
LOISEAU A, 2006, LECT NOTE PHYS, V677, P49
MAJUMDER M, 2005, NATURE, V438, P44, DOI 10.1038/43844a
MAMONTOV E, 2006, J CHEM PHYS, V124, ARTN 194703
MANIWA Y, 2007, NAT MATER, V6, P135, DOI 10.1038/nmat1823
NAGUIB N, 2004, NANO LETT, V4, P2237, DOI 10.1021/nl0484907
NOY A, 2007, NANO TODAY, V2, P22
PURETZKY AA, 2005, APPL PHYS A-MATER, V81, P223, DOI
10.1007/s00339-005-3256-7
YAMADA T, 2006, NAT NANOTECHNOL, V1, P131, DOI 10.1038/nnano.2006.95
NR 17
TC 0
PU CRC PRESS-TAYLOR & FRANCIS GROUP; 6000 BROKEN SOUND PARKWAY NW, STE
300, BOCA RATON, FL 33487-2742 USA
BP 380
EP 383
GA BRC37
UT ISI:000282341400100
ER

PT B
*Record 3 of 3.
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*Order Full Text [ ]
AU Glosli, JN
Caspersen, KJ
Gunnels, JA
Richards, DF
Rudd, RE
Streitz, FH
AF Glosli, J. N.
Caspersen, K. J.
Gunnels, J. A.
Richards, D. F.
Rudd, R. E.
Streitz, F. H.
TI Extending Stability Beyond CPU Millennium A Micron-Scale Atomistic
Simulation of Kelvin-Helmholtz Instability
SO 2007 ACM/IEEE SC07 CONFERENCE
LA English
DT Proceedings Paper
ID EMBEDDED-ATOM METHOD; STRATIFIED COMPRESSIBLE FLOWS; TRANSITION-METALS;
BILLOWS; ALGORITHMS; BREAKDOWN; EVOLUTION; DYNAMICS; SYSTEMS; MODEL
AB We report the computational advances that have enabled the first
micron-scale simulation of a Kelvin-Helmholtz (KH) instability using
molecular dynamics (MD). The advances are in three key areas' for
massively parallel computation such as on BlueGene/L (BG/L): fault
tolerance, application kernel optimization, and highly efficient
parallel I/O. In particular, we have developed novel capabilities for
handling hardware parity errors and improving the speed of inter-atomic
force calculations, while achieving near optimal I/O speeds on BG/L,
allowing us to achieve excellent scalability and improve overall
application performance. As a result we have successfully conducted a
2-billion atom KH simulation amounting to 2.8 CPU-millennia of run
time, including a single, continuous simulation run in excess of 1.5
CPU-millennia. We have also conducted 9-billion and 62.5-billion atom
KH simulations. The current optimized ddcMD code is benchmarked at
115.1 TFlop/s in our scaling study and 103.9 TFlop/s in a sustained
science run, with additional improvements ongoing. These improvements
enabled us to run the first MD simulations of micron-scale systems
developing the KH instability.
C1 [Glosli, J. N.; Caspersen, K. J.; Richards, D. F.; Rudd, R. E.; Streitz, F. H.] Lawrence Livermore Natl Lab, Livermore, CA USA.
RP Glosli, JN, Lawrence Livermore Natl Lab, Livermore, CA USA.
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NR 38
TC 0
PU IEEE; 345 E 47TH ST, NEW YORK, NY 10017 USA
BP 86
EP 96
GA BRD03
UT ISI:000282385500009
ER

EF

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contact ISI Document Solution at service@isidoc.com, or call 800-603-4367
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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: 09 NOV 2010
Number of Citing Articles: 1 new records this week (1 in this e-mail)
Organization ID: 3b97d1bbc1878baed0ab183d8b03130b
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*Order Full Text [ ]

Title:
Nanofiltration of Electrolyte Solutions by Sub-2nm Carbon Nanotube Membranes

Authors:
Fornasiero, F; Park, HG; Holt, JK; Stadermann, M; Kim, S; Bin In, J; Grigoropoulos, CP; Noy, A; Bakajin, O

Author Full Names:
Fornasiero, Francesco; Park, Hyung Gyu; Holt, Jason K.; Stadermann, Michael; Kim, Sangil; Bin In, Jung; Grigoropoulos, Costas P.; Noy, Aleksandr; Bakajin, Olgica

Source:
CLEAN TECHNOLOGY 2008: BIO ENERGY, RENEWABLES, GREEN BUILDING, SMART GRID, STORAGE, AND WATER : 380-383 2008

Language:
English

Document Type:
Proceedings Paper

Author Keywords:
carbon nanotube; membrane; ion exclusion; fast flow

KeyWords Plus:
WATER; TRANSPORT; GROWTH

Abstract:
Both MD simulations and experimental studies have shown that liquid and gas flow through carbon nanotubes with nanometer size diameter is exceptionally fast. For applications in separation technology, selectivity is required together with fast flow. In this work, we use pressure-driven filtration experiments to study ion exclusion in silicon nitride/sub-2-nm CNT composite membranes as a function of solution ionic strength, pH, and ion valence. We show that carbon nanotube membranes exhibit significant ion exclusion at low salt concentration. Our results support a rejection mechanism dominated by electrostatic interactions between fixed membrane charges and mobile ions, while steric and hydrodynamic effects appear to be less important. Comparison with commercial nanofiltration membranes for water softening reveals that our carbon nanotube membranes provides far superior water fluxes for similar ion rejection capabilities.

Reprint Address:
Fornasiero, F, LLNL, Biosci & Biotechnol Div, CMELS, Livermore, CA 94550 USA.

Research Institution addresses:
[Fornasiero, Francesco; Park, Hyung Gyu; Holt, Jason K.; Stadermann, Michael; Noy, Aleksandr; Bakajin, Olgica] LLNL, Biosci & Biotechnol Div, CMELS, Livermore, CA 94550 USA

Cited References:
CHEUNG CL, 2002, J PHYS CHEM B, V106, P2429.
FORNASIERO F, 2008, PNAS IN PRESS.
FRANKLIN NR, 2002, APPL PHYS LETT, V81, P913.
FUTABA DN, 2006, NAT MATER, V5, P987, DOI 10.1038/nmat1782.
HOLT JK, 2006, SCIENCE, V312, P1034, DOI 10.1126/science.1126298.
HUMMER G, 2001, NATURE, V414, P188.
JOSEPH S, 2008, NANO LETT, V8, P452, DOI 10.1021/nl072385q.
KALRA A, 2003, P NATL ACAD SCI USA, V100, P10175.
KOLESNIKOV AI, 2004, PHYS REV LETT, V93, ARTN 035503.
LOISEAU A, 2006, LECT NOTE PHYS, V677, P49.
MAJUMDER M, 2005, NATURE, V438, P44, DOI 10.1038/43844a.
MAMONTOV E, 2006, J CHEM PHYS, V124, ARTN 194703.
MANIWA Y, 2007, NAT MATER, V6, P135, DOI 10.1038/nmat1823.
NAGUIB N, 2004, NANO LETT, V4, P2237, DOI 10.1021/nl0484907.
NOY A, 2007, NANO TODAY, V2, P22.
PURETZKY AA, 2005, APPL PHYS A-MATER, V81, P223, DOI 10.1007/s00339-005-3256-7.
YAMADA T, 2006, NAT NANOTECHNOL, V1, P131, DOI 10.1038/nnano.2006.95.

Cited Reference Count:
17

Times Cited:
0

Publisher:
CRC PRESS-TAYLOR & FRANCIS GROUP; 6000 BROKEN SOUND PARKWAY NW, STE 300, BOCA RATON, FL 33487-2742 USA

IDS Number:
BRC37

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Friday, October 15, 2010

ISI Web of Knowledge Alert - Song, X

ISI Web of Knowledge Citation Alert

Cited Article: Song, X. A comparative study on poiseuille flow of simple fluids through cylindrical and slit-like nanochannels
Alert Expires: 09 NOV 2010
Number of Citing Articles: 1 new records this week (1 in this e-mail)
Organization ID: 3b97d1bbc1878baed0ab183d8b03130b
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Title:
NUMERICAL SIMULATION OF FLUID TRANSPORT IN A SINGLE MICRO-NANO PORE OF POROUS MEMBRANE

Authors:
Chu, Y; Lu, JF; Lu, WQ

Author Full Names:
Chu, Yang; Lu, Junfeng; Lu, Wen-Qiang

Source:
HT2009: PROCEEDINGS OF THE ASME SUMMER HEAT TRANSFER CONFERENCE 2009, VOL 2 : 823-831 2009

Language:
English

Document Type:
Proceedings Paper

KeyWords Plus:
MOLECULAR-DYNAMICS; FLOW; SPH

Abstract:
In this paper, Smoothed Particle Hydrodynamics (SPH) and Molecular Dynamics (MD) methods are used to respectively simulate the flow and mass transfer phenomena inside a pore at microns scale, and then at nanons scale. The trans-membrane filtration velocities acquired using SPH method are in good agreement with the results calculated by simplified K-K equation when the pore's diameter of the membrane is between 1 mu m and 200 mu m. The simulation accuracy is also discussed in the paper. However, the MD numerical results reveal that the micro-scale effect dominates and could not be neglected near the wall surface inside a nano sized pore. In this size, slip boundary appears at the wall surfaces. This situation is different from the flow in macro-scale that the velocity at the wall could be considered as zero. The MD numerical results also reveal the variational nature of the viscosity with the applied body force. Finally, we find that the ultra-filtration velocity acquired by M
D simulation is different from the results estimated from the simplified K-K equation in nano-scale.

Reprint Address:
Lu, WQ, Chinese Acad Sci, Grad Univ, Coll Phys Sci, Beijing 100049, Peoples R China.

Research Institution addresses:
[Chu, Yang; Lu, Wen-Qiang] Chinese Acad Sci, Grad Univ, Coll Phys Sci, Beijing 100049, Peoples R China

E-mail Address:
luwq@gucas.ac.cn

Cited References:
ALLEN MP, 1987, COMPUTER SIMULATION.
JIANG FM, 2007, COMPUT PHYS COMMUN, V176, P471, DOI 10.1016/j.cpc.2006.12.003.
LIU GR, 2003, SMOOTHED PARTICLE HY.
LU JF, 2008, CHINESE SCI BULL, V53, P3402, DOI 10.1007/s11434-008-0472-5.
LU WQ, 2008, ENG ANAL BOUND ELEM, V32, P282, DOI 10.1016/j.enganabound.2007.10.006.
MORRIS JP, 1997, J COMPUT PHYS, V136, P214.
SONG X, 2008, INT J HEAT MASS TRAN, V51, P1770, DOI 10.1016/j.ijheatmasstransfer.2007.07.019.
TENENBAUM A, 1982, PHYS REV A, V25, P2778.
XU JL, 2004, HEAT MASS TRANSFER, V40, P859, DOI 10.1007/s00231-003-0483-3.

Cited Reference Count:
9

Times Cited:
0

Publisher:
AMER SOC MECHANICAL ENGINEERS; THREE PARK AVENUE, NEW YORK, NY 10016-5990 USA

IDS Number:
BQY66

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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 AUG 2011
Number of Citing Articles: 3 new records this week (3 in this e-mail)
Organization ID: 3b97d1bbc1878baed0ab183d8b03130b
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Title:
Microfluidic Transport and Micro-scale Flow Physics: An Overview

Authors:
Chakraborty, D; Chakraborty, S

Author Full Names:
Chakraborty, Debapriya; Chakraborty, Suman

Source:
MICROFLUIDICS AND MICROFABRICATION : 1-85 2010

Language:
English

Document Type:
Proceedings Paper

Author Keywords:
Interfacial slip; slip length; Kundsen number; Reynolds number; capillary number; Bond number; continuum hypothesis; hydrophobic; interaction; nanobubble; friction factor; continuity equation; momentum; equation; Stokes hypothesis Navier Stokes equation; laminar flow; fully; developed flow; surface tension driven flow; contact angle; Young Laplace; equation; capillary filling; Marangoni effect; electrocapillary; continuous; electrowetting electrowetting on dielectric (EWOD); Young Lippman equation; optofluidics; rotational microfluidics (lab on a CD); electrokinetics; electrical; double layer (EDL); electroosmosis; streaming current; streaming potential; Poisson equation Poisson Boltzmann equation; steric effect; AC electroosmosis; electrophoresis; dielectrophoresis; electrothermal effect; electro-magnetohydrodynamics (EMHD); acoustic streaming; droplet based microfluidics

KeyWords Plus:
ELECTRIC DOUBLE-LAYER; HEAT-TRANSFER; LIQUID FLOW; ELECTROLYTE-SOLUTION; DRIVEN FLOW; FLUID-FLOW; MICROCHANNELS; WATER; DROPLET; WALL

Abstract:
In this article, we delineate some of the distinctive and demarcating fundamental aspects of microscale fluid flows as compared to their macroscale counterparts, and illustrate the utilization of these principles towards exploiting new functionalities in devices and systems of emerging importance. In particular, we emphasize on some of the important flow actuation mechanisms (pressure-driven, surface tension-driven, centrifugal, electrokinetic, magnetohydrodynamic, optical, and acoustic) in microfluidics and their implications, and outline the fundamental physical and mathematical principles that govern their implementations in practice.

Reprint Address:
Chakraborty, S, Indian Inst Technol, Dept Mech Engn, Kharagpur 721302, W Bengal, India.

Research Institution addresses:
[Chakraborty, Debapriya; Chakraborty, Suman] Indian Inst Technol, Dept Mech Engn, Kharagpur 721302, W Bengal, India

E-mail Address:
debapriya.chakraborty@gmail.com; suman@mech.iitkgp.ernet.in

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Cited Reference Count:
85

Times Cited:
0

Publisher:
SPRINGER; 233 SPRING STREET, NEW YORK, NY 10013, UNITED STATES

DOI:
10.1007/978-1-4419-1543-6_1

IDS Number:
BRA46

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Title:
Synthetic Chloride-Selective Carbon Nanotubes Examined by Using Molecular and Stochastic Dynamics

Authors:
Hilder, TA; Gordon, D; Chung, SH

Author Full Names:
Hilder, Tamsyn A.; Gordon, Dan; Chung, Shin-Ho

Source:
BIOPHYSICAL JOURNAL 99 (6): 1734-1742 SEP 22 2010

Language:
English

Document Type:
Article

KeyWords Plus:
BORON-NITRIDE NANOTUBES; BROWNIAN DYNAMICS; WATER TRANSPORT; FORCE-FIELDS; CHANNELS; SIMULATIONS; PERMEATION; CHEMISTRY; MEMBRANE; SEPARATION

Abstract:
Synthetic channels, such as nanotubes, offer the possibility of ion-selective nanoscale pores which can broadly mimic the functions of various biological ion channels, and may one day be used as antimicrobial agents, or for treatment of cystic fibrosis. We have designed a carbon nanotube that is selectively permeable to anions. The virtual nanotubes are constructed from a hexagonal array of carbon atoms (graphene) rolled up to form a tubular structure, with an effective radius of 4.53 angstrom and length of 34 angstrom. The pore ends are terminated with polar carbonyl groups. The nanotube thus formed is embedded in a lipid bilayer and a reservoir containing ionic solutions is added at each end of the pore. The conductance properties of these synthetic channels are then examined with molecular and stochastic dynamics simulations. Profiles of the potential of mean force at 0 mM reveal that a cation moving across the pore encounters an insurmountable free energy barrier of simil
ar to 25 kT in height. In contrast, for anions, there are two energy wells of similar to 12 kT near each end of the tube, separated by a central free energy barrier of 4 kT. The conductance of the pore, with symmetrical 500 mM solutions in the reservoirs, is 72 pS at 100 mV. The current saturates with an increasing ionic concentration, obeying a Michaelis-Menten relationship. The pore is normally occupied by two ions, and the rate-limiting step in conduction is the time taken for the resident ion near the exit gate to move out of the energy well.

Reprint Address:
Hilder, TA, Australian Natl Univ, Res Sch Biol, Canberra, ACT, Australia.

Research Institution addresses:
[Hilder, Tamsyn A.; Gordon, Dan; Chung, Shin-Ho] Australian Natl Univ, Res Sch Biol, Canberra, ACT, Australia

E-mail Address:
tamsyn.hilder@anu.edu.au

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Cited Reference Count:
58

Times Cited:
0

Publisher:
CELL PRESS; 600 TECHNOLOGY SQUARE, 5TH FLOOR, CAMBRIDGE, MA 02139 USA

Subject Category:
Biophysics

ISSN:
0006-3495

DOI:
10.1016/j.bpj.2010.06.034

IDS Number:
654UY

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Title:
Water Chains in Hydrophobic Crystal Channels: Nanoporous Materials as Supramolecular Analogues of Carbon Nanotubes

Authors:
Natarajan, R; Charmant, JPH; Orpen, AG; Davis, AP

Author Full Names:
Natarajan, Ramalingam; Charmant, Jonathan P. H.; Orpen, A. Guy; Davis, Anthony P.

Source:
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION 49 (30): 5125-5129 2010

Language:
English

Document Type:
Article

Author Keywords:
crystal engineering; hydrogen bonding; hydrophobic effect; supramolecular chemistry; water chains

KeyWords Plus:
TRANSPORT; MEMBRANES

Reprint Address:
Davis, AP, Univ Bristol, Sch Chem, Cantocks Close, Bristol BS8 1TS, Avon, England.

Research Institution addresses:
[Natarajan, Ramalingam; Charmant, Jonathan P. H.; Orpen, A. Guy; Davis, Anthony P.] Univ Bristol, Sch Chem, Bristol BS8 1TS, Avon, England

E-mail Address:
anthony.davis@bristol.ac.uk

Cited References:
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Cited Reference Count:
19

Times Cited:
0

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

Subject Category:
Chemistry, Multidisciplinary

ISSN:
1433-7851

DOI:
10.1002/anie.201002418

IDS Number:
632NT

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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: 09 NOV 2010
Number of Citing Articles: 1 new records this week (1 in this e-mail)
Organization ID: 3b97d1bbc1878baed0ab183d8b03130b
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Title:
Microfluidic Transport and Micro-scale Flow Physics: An Overview

Authors:
Chakraborty, D; Chakraborty, S

Author Full Names:
Chakraborty, Debapriya; Chakraborty, Suman

Source:
MICROFLUIDICS AND MICROFABRICATION : 1-85 2010

Language:
English

Document Type:
Proceedings Paper

Author Keywords:
Interfacial slip; slip length; Kundsen number; Reynolds number; capillary number; Bond number; continuum hypothesis; hydrophobic; interaction; nanobubble; friction factor; continuity equation; momentum; equation; Stokes hypothesis Navier Stokes equation; laminar flow; fully; developed flow; surface tension driven flow; contact angle; Young Laplace; equation; capillary filling; Marangoni effect; electrocapillary; continuous; electrowetting electrowetting on dielectric (EWOD); Young Lippman equation; optofluidics; rotational microfluidics (lab on a CD); electrokinetics; electrical; double layer (EDL); electroosmosis; streaming current; streaming potential; Poisson equation Poisson Boltzmann equation; steric effect; AC electroosmosis; electrophoresis; dielectrophoresis; electrothermal effect; electro-magnetohydrodynamics (EMHD); acoustic streaming; droplet based microfluidics

KeyWords Plus:
ELECTRIC DOUBLE-LAYER; HEAT-TRANSFER; LIQUID FLOW; ELECTROLYTE-SOLUTION; DRIVEN FLOW; FLUID-FLOW; MICROCHANNELS; WATER; DROPLET; WALL

Abstract:
In this article, we delineate some of the distinctive and demarcating fundamental aspects of microscale fluid flows as compared to their macroscale counterparts, and illustrate the utilization of these principles towards exploiting new functionalities in devices and systems of emerging importance. In particular, we emphasize on some of the important flow actuation mechanisms (pressure-driven, surface tension-driven, centrifugal, electrokinetic, magnetohydrodynamic, optical, and acoustic) in microfluidics and their implications, and outline the fundamental physical and mathematical principles that govern their implementations in practice.

Reprint Address:
Chakraborty, S, Indian Inst Technol, Dept Mech Engn, Kharagpur 721302, W Bengal, India.

Research Institution addresses:
[Chakraborty, Debapriya; Chakraborty, Suman] Indian Inst Technol, Dept Mech Engn, Kharagpur 721302, W Bengal, India

E-mail Address:
debapriya.chakraborty@gmail.com; suman@mech.iitkgp.ernet.in

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Cited Reference Count:
85

Times Cited:
0

Publisher:
SPRINGER; 233 SPRING STREET, NEW YORK, NY 10013, UNITED STATES

DOI:
10.1007/978-1-4419-1543-6_1

IDS Number:
BRA46

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