Friday, June 18, 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: 4 new records this week (4 in this e-mail)
Organization ID: 3b97d1bbc1878baed0ab183d8b03130b
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Title:
Molecular Simulation at Solid-Liquid Interface

Authors:
Yasuoka, K; Koishi, T; Mima, T; Arai, N

Author Full Names:
Yasuoka, Kenji; Koishi, Takahiro; Mima, Toshiki; Arai, Noriyoshi

Source:
JOURNAL OF JAPANESE SOCIETY OF TRIBOLOGISTS 55 (4): 236-241 Sp. Iss. SI 2010

Language:
Japanese

Document Type:
Article

Author Keywords:
molecular dynamics simulation; solid/liquid interface; confined fluid; water droplet; liquid crystal; surfactant; self-assembly

KeyWords Plus:
CARBON NANOTUBES; DYNAMICS; SURFACE; TRANSITION

Reprint Address:
Yasuoka, K, Keio Univ, Dept Mech Engn, Fac Sci & Technol, Kohoku Ku, 14-1 Hiyoshi,3 Chome, Yokohama, Kanagawa 2238522, Japan.

Research Institution addresses:
[Yasuoka, Kenji] Keio Univ, Dept Mech Engn, Fac Sci & Technol, Kohoku Ku, Yokohama, Kanagawa 2238522, Japan; [Koishi, Takahiro] Univ Fukui, Fac Engn, Dept Appl Phys, Fukui 9108507, Japan; [Mima, Toshiki] AIST Tsukuba, Res Inst Computat Sci, Tsukuba, Ibaraki 3088568, Japan; [Arai, Noriyoshi] Univ Electrocommun, Fac Electrocommun, Dept Mech Engn & Intelligent Syst, Chofu, Tokyo 1828585, Japan

E-mail Address:
yasuoka@mech.keio.ac.jp

Cited References:
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PERSSON F, 2007, NANOTECHNOLOGY, V18, ARTN 246301.

Cited Reference Count:
17

Times Cited:
0

Publisher:
JAPAN SOC TRIBOLOGISTS; KIKAI SHINKO KAIKAN NO 407-2 5-8 SHIBA-KOEN 3-CHOME MINATO-KU, TOKYO, 105, JAPAN

Subject Category:
Engineering, Mechanical

ISSN:
0915-1168

IDS Number:
606DS

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Title:
Pressure-driven electrokinetic slip-flow in planar microchannels

Authors:
Jamaati, J; Niazmand, H; Renksizbulut, M

Author Full Names:
Jamaati, J.; Niazmand, H.; Renksizbulut, M.

Source:
INTERNATIONAL JOURNAL OF THERMAL SCIENCES 49 (7): 1165-1174 JUL 2010

Language:
English

Document Type:
Article

Author Keywords:
Electrokinetic flow; Poisson-Boltzmann equation; Slip-flow; Microchannel

KeyWords Plus:
POISSON-BOLTZMANN EQUATION; DOUBLE-LAYER OVERLAP; NANOFLUIDIC CHANNELS; ENERGY-CONVERSION; HYDROPHOBIC MICROCHANNELS; CARBON NANOTUBES; ELECTROOSMOSIS; NANOCHANNELS; COEFFICIENT; TRANSPORT

Abstract:
This paper presents an analytical solution for pressure-driven electrokinetic flows in planar microchannels with velocity slip at the walls. The Navier-Stokes equations for an incompressible viscous fluid have been solved along with the Poisson-Boltzmann equation for the electric double layer. Analytical expressions for the velocity profile, average electrical conductivity, and induced voltage are presented without invoking the Debye-Huckel approximation. It is known that an increase in the zeta-potential leads to an increase in the flow-induced voltage: however, it is demonstrated that the induced voltage reaches a maximum value at a certain zeta-potential depending on the slip coefficient and the Debye-Huckel parameter, while decreasing rapidly at higher zeta-potentials. The present parametric study indicates that liquid slip at the walls can increase the maximum induced voltage very significantly. (C) 2010 Elsevier Masson SAS. All rights reserved.

Reprint Address:
Renksizbulut, M, Univ Waterloo, Mech & Mechatron Engn Dept, Waterloo, ON N2L 3G1, Canada.

Research Institution addresses:
[Renksizbulut, M.] Univ Waterloo, Mech & Mechatron Engn Dept, Waterloo, ON N2L 3G1, Canada; [Jamaati, J.; Niazmand, H.] Ferdowsi Univ Mashhad, Dept Mech Engn, Mashhad, Iran

E-mail Address:
metin@uwaterloo.ca

Cited References:
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Cited Reference Count:
35

Times Cited:
0

Publisher:
ELSEVIER FRANCE-EDITIONS SCIENTIFIQUES MEDICALES ELSEVIER; 23 RUE LINOIS, 75724 PARIS, FRANCE

Subject Category:
Thermodynamics; Engineering, Mechanical

ISSN:
1290-0729

DOI:
10.1016/j.ijthermalsci.2010.01.008

IDS Number:
603UM

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Title:
A Continuum Model of the Van der Waals Interface for Determining the Critical Diameter of Nanopumps and its Application to Analysis of the Vibration and Stability of Nanopump Systems

Authors:
Kuang, YD; Shi, SQ; Chan, PKL; Chen, CY

Author Full Names:
Kuang, Y. D.; Shi, S. Q.; Chan, P. K. L.; Chen, C. Y.

Source:
INTERNATIONAL JOURNAL OF NONLINEAR SCIENCES AND NUMERICAL SIMULATION 11 (2): 121-133 FEB 2010

Language:
English

Document Type:
Article

Author Keywords:
Carbon nanotubes; Critical diameter; Nanoscale effects; Vibration and stability

KeyWords Plus:
WALLED CARBON NANOTUBES; WAVE-PROPAGATION; FLUID; WATER; SINGLE; FLOW; TRANSPORT; INSTABILITY; MECHANICS; DYNAMICS

Abstract:
Carbon nanotubes make ideal nanopumps for the transport of fluid. To analyze the vibration and stability of nanopump systems with inner fluid effectively, it is necessary to incorporate nanoscale effects into continuum-based simulations. This paper first proposes a continuum model for the van der Waals (vdW) interface between a single-wall carbon nanotube (SWCNT) and incompressible inner fluid to determine the critical tube diameter above which continuum fluid mechanics may be reasonably applied to that inner fluid. Then, with overall consideration of the scale effects, including the nonlocal effects of the carbon nanotube, the surface tension of the inner fluid and the vdW interface, an improved Euler beam/plug fluid model is developed to investigate the vibration and stability of the nanopump system. The two models are both validated by comparing with molecular dynamic simulations. The results show that the critical diameter for water flow is about 1.8 nm. Nanopump stabili!
ty is noticeably enhanced by the surface tension of the inner fluid for a high slenderness ratio. Both coaxial vibration frequency and stability decline as the system temperature is increased. Moreover, the proposed models predict that the transverse vibration of the inner fluid inside a nearly rigid SWCNT occurs due to the existence of the vdW interface gap and the negligible bending rigidity of the fluid.

Reprint Address:
Shi, SQ, Hong Kong Polytech Univ, Dept Mech Engn, Kowloon, Hong Kong, Peoples R China.

Research Institution addresses:
[Kuang, Y. D.; Shi, S. Q.; Chan, P. K. L.] Hong Kong Polytech Univ, Dept Mech Engn, Kowloon, Hong Kong, Peoples R China; [Kuang, Y. D.; Chen, C. Y.] Huazhong Univ Sci & Technol, Sch Civil Engn & Mech, Wuhan 430074, Hubei, Peoples R China

E-mail Address:
mmsqshi@polyu.edu.hk

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Cited Reference Count:
46

Times Cited:
0

Publisher:
FREUND PUBLISHING HOUSE LTD; PO BOX 35010, TEL AVIV 61350, ISRAEL

Subject Category:
Engineering, Multidisciplinary; Mathematics, Applied; Mechanics; Physics, Mathematical

ISSN:
1565-1339

IDS Number:
603UA

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Title:
MOLECULAR DYNAMICS STUDY OF THE SPECIMEN SIZE AND IMPERFECTION EFFECTS ON THE FAILURE RESPONSES OF MULTI-NANOBAR STRUCTURES

Authors:
Shen, LM; Chen, Z

Author Full Names:
Shen, Luming; Chen, Zhen

Source:
INTERNATIONAL JOURNAL FOR MULTISCALE COMPUTATIONAL ENGINEERING 8 (2): 181-194 2010

Language:
English

Document Type:
Article

Author Keywords:
molecular dynamics; hierarchical structures; softening; vacancy; crack; nanobar

KeyWords Plus:
EMBEDDED-ATOM METHOD; HIERARCHICAL STRUCTURES; FCC METALS; STRESS; MECHANICS; CONDUCTIVITY; NANOWIRES; ADHESIVE; SYSTEM; GECKO

Abstract:
Based on the recent analytical and numerical studies of the size effect on the structural failure response of bar members in parallel arrangement at the macroscopic level, molecular dynamics simulations are performed to investigate the effects of size, imperfection, and number of nanobars on the failure mechanism of nanoscale hierarchical structures with one-dimensional members arranged in parallel. It appears that at the nanoscale the possibility of being in the stable softening regime increases with the decrease of nanobar length, and the energy dissipation associated with the postlimit softening regime increases with the increase of the number of nanobars in the system, regardless of imperfection types. The results obtained at the nanoscale not only match well the analytical and numerical predictions at the macroscopic level, but also provide more insight into the effects of imperfections on the postlimit structural response.

Reprint Address:
Shen, LM, Univ Sydney, Sch Civil Engn, Sydney, NSW 2006, Australia.

Research Institution addresses:
[Shen, Luming] Univ Sydney, Sch Civil Engn, Sydney, NSW 2006, Australia; [Chen, Zhen] Univ Missouri, Dept Civil & Environm Engn, Columbia, MO 65211 USA; [Chen, Zhen] Dalian Univ Technol, Dept Engn Mech, State Key Lab Struct Anal Ind Equipment, Dalian 116024, Peoples R China

E-mail Address:
L.Shen@usyd.edu.au

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Cited Reference Count:
40

Times Cited:
0

Publisher:
BEGELL HOUSE INC; 50 CROSS HIGHWAY, REDDING, CT 06896 USA

Subject Category:
Engineering, Multidisciplinary; Mathematics, Interdisciplinary Applications

ISSN:
1543-1649

IDS Number:
606TA

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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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PT J
*Record 1 of 3.
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AU Wan, RZ
Fang, HP
AF Wan, Rongzheng
Fang, Haiping
TI Water transportation across narrow channel of nanometer dimension
SO SOLID STATE COMMUNICATIONS
LA English
DT Article
DE Nanochannel; Single-file water; Molecule dynamics simulations
ID CARBON NANOTUBE MEMBRANES; MOLECULAR-DYNAMICS; GATING MECHANISM; H+
CONDUCTION; FREE-ENERGY; PROTEIN; PROTON; MICROFLUIDICS; AQUAPORIN-1;
RECOGNITION
AB Since the discovery of the carbon nanotube and aquaporin, the study of
the transportation of water across nanochannels has become one of the
hot subjects. When the radius of a nanochannel is only about one
nanometer or a little larger, water confined in those nanoscale
channels usually exhibits dynamics different from those in bulk system,
such as the wet-dry transition due to the confinement, concerted
hydrogen-bond orientations and flipping, concerted motion of water
molecules, and strong interactions with external charges. Those
dynamics correlate with the unique behavior of the water transportation
across the channels, such as the extra-high permeability, excellent
on-off gating behavior with response to the external mechanical and
electrical signals and noises, enhancement by structure outside the
channel, directional transportation driven by charges close to a
channel or electric field. In this article, we review some of the
recent progress on the study of the water molecules inside those narrow
nanochannels. (C) 2010 Elsevier Ltd. All rights reserved.
C1 [Wan, Rongzheng; Fang, Haiping] Chinese Acad Sci, Shanghai Inst Appl Phys, Shanghai 201800, Peoples R China.
RP Fang, HP, Chinese Acad Sci, Shanghai Inst Appl Phys, POB 800-204,
Shanghai 201800, Peoples R China.
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NR 104
TC 0
PU PERGAMON-ELSEVIER SCIENCE LTD; THE BOULEVARD, LANGFORD LANE,
KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 0038-1098
DI 10.1016/j.ssc.2010.01.016
PD JUN
VL 150
IS 21-22
SI Sp. Iss. SI
BP 968
EP 975
SC Physics, Condensed Matter
GA 603IL
UT ISI:000278202000002
ER

PT J
*Record 2 of 3.
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*Order Full Text [ ]
AU Jamaati, J
Niazmand, H
Renksizbulut, M
AF Jamaati, J.
Niazmand, H.
Renksizbulut, M.
TI Pressure-driven electrokinetic slip-flow in planar microchannels
SO INTERNATIONAL JOURNAL OF THERMAL SCIENCES
LA English
DT Article
DE Electrokinetic flow; Poisson-Boltzmann equation; Slip-flow; Microchannel
ID POISSON-BOLTZMANN EQUATION; DOUBLE-LAYER OVERLAP; NANOFLUIDIC CHANNELS;
ENERGY-CONVERSION; HYDROPHOBIC MICROCHANNELS; CARBON NANOTUBES;
ELECTROOSMOSIS; NANOCHANNELS; COEFFICIENT; TRANSPORT
AB This paper presents an analytical solution for pressure-driven
electrokinetic flows in planar microchannels with velocity slip at the
walls. The Navier-Stokes equations for an incompressible viscous fluid
have been solved along with the Poisson-Boltzmann equation for the
electric double layer. Analytical expressions for the velocity profile,
average electrical conductivity, and induced voltage are presented
without invoking the Debye-Huckel approximation. It is known that an
increase in the zeta-potential leads to an increase in the flow-induced
voltage: however, it is demonstrated that the induced voltage reaches a
maximum value at a certain zeta-potential depending on the slip
coefficient and the Debye-Huckel parameter, while decreasing rapidly at
higher zeta-potentials. The present parametric study indicates that
liquid slip at the walls can increase the maximum induced voltage very
significantly. (C) 2010 Elsevier Masson SAS. All rights reserved.
C1 [Renksizbulut, M.] Univ Waterloo, Mech & Mechatron Engn Dept, Waterloo, ON N2L 3G1, Canada.
[Jamaati, J.; Niazmand, H.] Ferdowsi Univ Mashhad, Dept Mech Engn, Mashhad, Iran.
RP Renksizbulut, M, Univ Waterloo, Mech & Mechatron Engn Dept, Waterloo,
ON N2L 3G1, Canada.
EM metin@uwaterloo.ca
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NR 35
TC 0
PU ELSEVIER FRANCE-EDITIONS SCIENTIFIQUES MEDICALES ELSEVIER; 23 RUE
LINOIS, 75724 PARIS, FRANCE
SN 1290-0729
DI 10.1016/j.ijthermalsci.2010.01.008
PD JUL
VL 49
IS 7
BP 1165
EP 1174
SC Thermodynamics; Engineering, Mechanical
GA 603UM
UT ISI:000278233600011
ER

PT J
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AU Kuang, YD
Shi, SQ
Chan, PKL
Chen, CY
AF Kuang, Y. D.
Shi, S. Q.
Chan, P. K. L.
Chen, C. Y.
TI A Continuum Model of the Van der Waals Interface for Determining the
Critical Diameter of Nanopumps and its Application to Analysis of the
Vibration and Stability of Nanopump Systems
SO INTERNATIONAL JOURNAL OF NONLINEAR SCIENCES AND NUMERICAL SIMULATION
LA English
DT Article
DE Carbon nanotubes; Critical diameter; Nanoscale effects; Vibration and
stability
ID WALLED CARBON NANOTUBES; WAVE-PROPAGATION; FLUID; WATER; SINGLE; FLOW;
TRANSPORT; INSTABILITY; MECHANICS; DYNAMICS
AB Carbon nanotubes make ideal nanopumps for the transport of fluid. To
analyze the vibration and stability of nanopump systems with inner
fluid effectively, it is necessary to incorporate nanoscale effects
into continuum-based simulations. This paper first proposes a continuum
model for the van der Waals (vdW) interface between a single-wall
carbon nanotube (SWCNT) and incompressible inner fluid to determine the
critical tube diameter above which continuum fluid mechanics may be
reasonably applied to that inner fluid. Then, with overall
consideration of the scale effects, including the nonlocal effects of
the carbon nanotube, the surface tension of the inner fluid and the vdW
interface, an improved Euler beam/plug fluid model is developed to
investigate the vibration and stability of the nanopump system. The two
models are both validated by comparing with molecular dynamic
simulations. The results show that the critical diameter for water flow
is about 1.8 nm. Nanopump stability is noticeably enhanced by the
surface tension of the inner fluid for a high slenderness ratio. Both
coaxial vibration frequency and stability decline as the system
temperature is increased. Moreover, the proposed models predict that
the transverse vibration of the inner fluid inside a nearly rigid SWCNT
occurs due to the existence of the vdW interface gap and the negligible
bending rigidity of the fluid.
C1 [Kuang, Y. D.; Shi, S. Q.; Chan, P. K. L.] Hong Kong Polytech Univ, Dept Mech Engn, Kowloon, Hong Kong, Peoples R China.
[Kuang, Y. D.; Chen, C. Y.] Huazhong Univ Sci & Technol, Sch Civil Engn & Mech, Wuhan 430074, Hubei, Peoples R China.
RP Shi, SQ, Hong Kong Polytech Univ, Dept Mech Engn, Kowloon, Hong Kong,
Peoples R China.
EM mmsqshi@polyu.edu.hk
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Friday, June 11, 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
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Title:
Experimental Observation of Single-File Water Filling of Thin Single-Wall Carbon Nanotubes Down to Chiral Index (5,3)

Authors:
Cambre, S; Schoeters, B; Luyckx, S; Goovaerts, E; Wenseleers, W

Author Full Names:
Cambre, Sofie; Schoeters, Bob; Luyckx, Sten; Goovaerts, Etienne; Wenseleers, Wim

Source:
PHYSICAL REVIEW LETTERS 104 (20): Art. No. 207401 MAY 21 2010

Language:
English

Document Type:
Article

KeyWords Plus:
DENSITY DIFFERENTIATION; ICE-NANOTUBES; TRANSPORT; NANOFLUIDICS; TRANSITION; ADSORPTION; NANOSCALE; DIFFUSION; CHANNELS; NMR

Abstract:
Single-file transport of water into carbon nanotubes is experimentally demonstrated for the first time through the splitting of the radial breathing mode (RBM) vibration in Raman spectra of bile salt solubilized tubes when both empty (closed) and water-filled (open-ended) tubes are present. D2O filling is observed for a wide range of diameters, d, down to very thin tubes [e.g., (5,3) tube, d = 0.548 nm] for which only a single water molecule fits in the cross section of the internal nanotube channel. The shift in RBM frequency upon filling is found to display a very complex dependence on nanotube diameter and chirality, in support of a different yet well-defined ordering and orientation of water molecules at room temperature. Large shifts of the electronic transitions are also observed.

Reprint Address:
Cambre, S, Univ Antwerp, Dept Phys, Campus Drie Eiken,Univ Pl 1, B-2610 Antwerp, Belgium.

Research Institution addresses:
[Cambre, Sofie; Schoeters, Bob; Luyckx, Sten; Goovaerts, Etienne; Wenseleers, Wim] Univ Antwerp, Dept Phys, B-2610 Antwerp, Belgium

E-mail Address:
Wim.Wenseleers@ua.ac.be

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Cited Reference Count:
51

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.104.207401

IDS Number:
599WX

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

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Title:
Liquid-Vapor Oscillations of Water Nanoconfined between Hydrophobic Disks: Thermodynamics and Kinetics

Authors:
Xu, LM; Molinero, V

Author Full Names:
Xu, Limei; Molinero, Valeria

Source:
JOURNAL OF PHYSICAL CHEMISTRY B 114 (21): 7320-7328 JUN 3 2010

Language:
English

Document Type:
Article

KeyWords Plus:
CARBON NANOTUBES; CONFINED WATER; BILAYER ICE; DEWETTING TRANSITION; COMPUTER-SIMULATION; FINITE SYSTEMS; DYNAMICS; PHASES; NANOPORES; FORCE

Abstract:
We use extensive molecular dynamics simulations with the monatomic model of water (mW) to characterize the thermodynamics and kinetics of the liquid vapor (wetting drying) equilibrium of water confined between nanoscopic hydrophobic plates. The transition in confined water is first-order-like, with two well-defined states (wet and dry) separated by a free energy barrier, Different from its bulk counterpart, the confined system oscillates between liquid and vapor: the two phases coexist in time but not in space. Also different from the phase behavior in bulk, there is a finite range of the thermodynamic variables (e.g., temperature or separation between the plates) for which the liquid and vapor state coexist M dynamical equilibrium. We determine the range of temperatures and plate separations for which reversible oscillations can be observed between a stable and metastable phase, compute the time scales of the phase transition along the equilibrium coexistence line, and inve!
stigate the pathway for drying along simple collective coordinates that describe the opening of a vapor bubble. The results of the simulations are compared with a simple capillary model for the thermodynamics and transition state theory for the kinetics of phase oscillations.

Reprint Address:
Molinero, V, Univ Utah, Dept Chem, 315 South 1400 East, Salt Lake City, UT 84112 USA.

Research Institution addresses:
[Molinero, Valeria] Univ Utah, Dept Chem, Salt Lake City, UT 84112 USA; Tohoku Univ, WPI Adv Inst Mat Res, Sendai, Miyagi 9808577, Japan

E-mail Address:
Valeria.Molinero@utah.edu

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Cited Reference Count:
55

Times Cited:
0

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

Subject Category:
Chemistry, Physical

ISSN:
1520-6106

DOI:
10.1021/jp102443m

IDS Number:
600RH

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

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Title:
Recent developments in reverse osmosis desalination membranes

Authors:
Li, D; Wang, HT

Author Full Names:
Li, Dan; Wang, Huanting

Source:
JOURNAL OF MATERIALS CHEMISTRY 20 (22): 4551-4566 2010

Language:
English

Document Type:
Article

KeyWords Plus:
FILM COMPOSITE MEMBRANES; MFI ZEOLITE MEMBRANES; POLYELECTROLYTE MULTILAYER MEMBRANES; CARBON NANOTUBE MEMBRANES; CELLULOSE-ACETATE MEMBRANES; SELECTIVE ION-TRANSPORT; ETHER SULFONE KETONE); BY-LAYER ASSEMBLIES; SURFACE MODIFICATION; ULTRAFILTRATION MEMBRANES

Abstract:
Reverse osmosis (RO) desalination is one of the main technologies for producing fresh water from seawater and other saline water sources. The membrane properties greatly affect the water productivity and energy costs in the reverse osmosis desalinatin processes. Recent years have seen significant research efforts devoted to developing high-performance RO membranes. This article reviews recent activities in the development of RO membranes with improved flux and salt rejection, chlorine tolerance, fouling resistance and thermal stability. In particular, this review mainly focuses on the modification of current polymeric membrane materials, and synthesis and separation performance of new polymer membranes, inorganic membranes and mixed matrix membranes.

Reprint Address:
Wang, HT, Monash Univ, Dept Chem Engn, Clayton, Vic 3800, Australia.

Research Institution addresses:
[Li, Dan; Wang, Huanting] Monash Univ, Dept Chem Engn, Clayton, Vic 3800, Australia

E-mail Address:
haunting.wang@eng.monash.edu.au

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187

Times Cited:
0

Publisher:
ROYAL SOC CHEMISTRY; THOMAS GRAHAM HOUSE, SCIENCE PARK, MILTON RD, CAMBRIDGE CB4 0WF, CAMBS, ENGLAND

Subject Category:
Chemistry, Physical; Materials Science, Multidisciplinary

ISSN:
0959-9428

DOI:
10.1039/b924553g

IDS Number:
601GJ

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Title:
Water Transport through Ultrathin Graphene

Authors:
Suk, ME; Aluru, NR

Author Full Names:
Suk, Myung E.; Aluru, N. R.

Source:
JOURNAL OF PHYSICAL CHEMISTRY LETTERS 1 (10): 1590-1594 MAY 20 2010

Language:
English

Document Type:
Article

KeyWords Plus:
CARBON NANOTUBE MEMBRANES; MOLECULAR-DYNAMICS; CHANNEL; SEPARATION; NANOPORES; PORES; SIZE; FLOW

Abstract:
Graphene can be considered as an ideal membrane since its thickness is only one carbon diameter In this study, using molecular dynamics simulations, we investigate water transport through a porous graphene membrane and compare the results with water transport,through thin (less than 10 nm in thickness/length) carbon nanotube (CNT) mernbranes. For smaller diameter pores, where a single file water structure is obtained, CNT membranes provide higher water flux compared to graphene membranes. For larger diameter pores, where the water structure is not single-file, graphene membranes provide higher water flux compared to CNT membranes. Furthermore, in thin CNT membranes, the water flux did not vary significantly with the thickness of the membrane. We explain the results through a detailed analysis considering pressure distribution, velocity profiles, and potential of mean force. This work opens up opportunities for graphene-based membranes in molecular sieving, water filtration, !
fuel cells, and so forth.

Reprint Address:
Aluru, NR, Univ Illinois Urbana Champaign, Beckman Inst Adv Sci & Technol, Dept Mech Sci & Engn, Urbana, IL 61801 USA.

Research Institution addresses:
[Suk, Myung E.; Aluru, N. R.] Univ Illinois Urbana Champaign, Beckman Inst Adv Sci & Technol, Dept Mech Sci & Engn, Urbana, IL 61801 USA

E-mail Address:
aluru@illinois.edu

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38

Times Cited:
0

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

ISSN:
1948-7185

DOI:
10.1021/jz100240r

IDS Number:
600HP

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ISI Web of Knowledge Alert - Zhao, Y

ISI Web of Knowledge Citation Alert

Cited Article: Zhao, Y. Individual water-filled single-walled carbon nanotubes as hydroelectric power converters
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:
Experimental Observation of Single-File Water Filling of Thin Single-Wall Carbon Nanotubes Down to Chiral Index (5,3)

Authors:
Cambre, S; Schoeters, B; Luyckx, S; Goovaerts, E; Wenseleers, W

Author Full Names:
Cambre, Sofie; Schoeters, Bob; Luyckx, Sten; Goovaerts, Etienne; Wenseleers, Wim

Source:
PHYSICAL REVIEW LETTERS 104 (20): Art. No. 207401 MAY 21 2010

Language:
English

Document Type:
Article

KeyWords Plus:
DENSITY DIFFERENTIATION; ICE-NANOTUBES; TRANSPORT; NANOFLUIDICS; TRANSITION; ADSORPTION; NANOSCALE; DIFFUSION; CHANNELS; NMR

Abstract:
Single-file transport of water into carbon nanotubes is experimentally demonstrated for the first time through the splitting of the radial breathing mode (RBM) vibration in Raman spectra of bile salt solubilized tubes when both empty (closed) and water-filled (open-ended) tubes are present. D2O filling is observed for a wide range of diameters, d, down to very thin tubes [e.g., (5,3) tube, d = 0.548 nm] for which only a single water molecule fits in the cross section of the internal nanotube channel. The shift in RBM frequency upon filling is found to display a very complex dependence on nanotube diameter and chirality, in support of a different yet well-defined ordering and orientation of water molecules at room temperature. Large shifts of the electronic transitions are also observed.

Reprint Address:
Cambre, S, Univ Antwerp, Dept Phys, Campus Drie Eiken,Univ Pl 1, B-2610 Antwerp, Belgium.

Research Institution addresses:
[Cambre, Sofie; Schoeters, Bob; Luyckx, Sten; Goovaerts, Etienne; Wenseleers, Wim] Univ Antwerp, Dept Phys, B-2610 Antwerp, Belgium

E-mail Address:
Wim.Wenseleers@ua.ac.be

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Cited Reference Count:
51

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.104.207401

IDS Number:
599WX

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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: 2 new records this week (2 in this e-mail)
Organization ID: 3b97d1bbc1878baed0ab183d8b03130b
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Title:
High Sensitivity Carbon Nanotubes Flow-Rate Sensors and Their Performance Improvement by Coating

Authors:
Yang, X; Zhou, ZY; Wang, DQ; Liu, XL

Author Full Names:
Yang, Xing; Zhou, Zhaoying; Wang, Dingqu; Liu, Xiaoli

Source:
SENSORS 10 (5): 4898-4906 MAY 2010

Language:
English

Document Type:
Article

Author Keywords:
flow-rate sensor; carbon nanotube; hysterisis error; coating

Abstract:
A new type of hot-wire flow-rate sensor (HWFS) with a sensing element made of a macro-sized carbon nanotube (CNT) strand is presented in this study. An effective way to improve repeatability of the CNT flow-rate sensor by coating a layer of Al2O3 on the CNT surface is proposed. Experimental results show that due to the large surface-to-volume ratio and thin coated Al2O3 layer, the CNT flow-rate sensor has higher sensitivity and faster response than a conventional platinum (Pt) HWFS. It is also demonstrated that the covered CNT flow-rate sensor has better repeatability than its bare counterpart due to insulation from the surrounding environment. The proposed CNT flow-rate sensor shows application potential for high-sensitivity measurement of flow rate.

Reprint Address:
Yang, X, Tsinghua Univ, Dept Precis Instruments & Mechanol, MEMS Lab, Beijing 100084, Peoples R China.

Research Institution addresses:
[Yang, Xing; Zhou, Zhaoying; Wang, Dingqu; Liu, Xiaoli] Tsinghua Univ, Dept Precis Instruments & Mechanol, MEMS Lab, Beijing 100084, Peoples R China; [Yang, Xing; Zhou, Zhaoying; Wang, Dingqu; Liu, Xiaoli] Tsinghua Univ, State Key Lab Precis Measurement Technol & Instru, Beijing 100084, Peoples R China

E-mail Address:
yangxing@tsinghua.edu.cn; zhouzy@tsinghua.edu.cn; wangdq@tsinghua.edu.cn; liuxiaoli09@163.com

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Cited Reference Count:
23

Times Cited:
0

Publisher:
MOLECULAR DIVERSITY PRESERVATION INTERNATIONAL-MDPI; KANDERERSTRASSE 25, CH-4057 BASEL, SWITZERLAND

Subject Category:
Chemistry, Analytical; Electrochemistry; Instruments & Instrumentation

ISSN:
1424-8220

DOI:
10.3390/s100504898

IDS Number:
601YV

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Title:
Synthesis of Vertically Aligned Carbon Nanotube Arrays by Injection Method in CVD

Authors:
Padya, B; Prabhakar, KVP; Jain, PK

Author Full Names:
Padya, Balaji; Prabhakar, K. V. P.; Jain, P. K.

Source:
JOURNAL OF NANOSCIENCE AND NANOTECHNOLOGY 10 (8): 4960-4966 AUG 2010

Language:
English

Document Type:
Article

Author Keywords:
Carbon Nanotubes; Arrays; Chemical Vapor Deposition (CVD); Injection Method; Scanning Electron Microscopy (SEM)

KeyWords Plus:
FIELD-EMISSION; ELECTRONIC-STRUCTURE; GRAPHENE TUBULES; BUNDLES; GROWTH; INTEGRATION; PYROLYSIS; SENSORS

Abstract:
The well aligned multiwalled carbon nanotube arrays were synthesized by injecting the acetonitrile-ferrocene solution at regular intervals of time. The carbon nanotube arrays were deposited on quartz substrate which is placed at the centre of the CVD reactor in quartz tube. The injection method in chemical vapor deposition allows-excellent control of the catalyst to carbon ratio which facilitates the better growth of aligned carbon nanotubes. The effect of various reaction parameters such as growth temperature, catalyst concentration, gas flow rate, growth time and substrate surface on growth of carbon nanotubes have been studied. It was observed that the diameter of carbon nanotubes increases with increase in catalyst concentration and temperature of the synthesis. The SEM analysis reveals that the average growth rate of carbon nanotube film synthesis was about 1.1 mu m/min when the synthesis time was one hour.

Reprint Address:
Jain, PK, Int Adv Res Ctr Powder Met & New Mat ARCI, Ctr Carbon Mat, Hyderabad 500005, Andhra Pradesh, India.

Research Institution addresses:
[Padya, Balaji; Prabhakar, K. V. P.; Jain, P. K.] Int Adv Res Ctr Powder Met & New Mat ARCI, Ctr Carbon Mat, Hyderabad 500005, Andhra Pradesh, India

Cited References:
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Cited Reference Count:
37

Times Cited:
0

Publisher:
AMER SCIENTIFIC PUBLISHERS; 25650 NORTH LEWIS WAY, STEVENSON RANCH, CA 91381-1439 USA

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

ISSN:
1533-4880

DOI:
10.1166/jnn.2010.2427

IDS Number:
601JV

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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:
A novel fluid-wall heat transfer model for molecular dynamics simulations

Authors:
Maroo, SC; Chung, JN

Author Full Names:
Maroo, Shalabh C.; Chung, J. N.

Source:
JOURNAL OF NANOPARTICLE RESEARCH 12 (5): 1913-1924 JUN 2010

Language:
English

Document Type:
Article

Author Keywords:
Molecular dynamics; Heat equation; Nanochannel; Argon; Platinum; Numerical simulation

KeyWords Plus:
SOLID-SURFACES; INTERFACE WETTABILITY; BOUNDARY-CONDITION; FLOW; ROUGHNESS

Abstract:
The 'fluid-wall thermal equilibrium model', to numerically simulate heating/cooling of fluid atoms by wall atoms, is used to compare molecular dynamics simulation results to the analytical solution of 1-D heat equation. Liquid argon atoms are placed between two platinum walls and simultaneous heating and cooling is simulated at the walls. Temperature gradient in liquid argon is evaluated and the results are found to match well with the analytical solution showing the physical soundness of the proposed model. Additional simulations are done where liquid argon atoms are heated by both the walls for two different channel heights and it is shown that in such cases, heat transfer occurs at a faster rate than predicted by heat equation with decreasing channel heights.

Reprint Address:
Maroo, SC, Univ Florida, Dept Mech & Aerosp Engn, Gainesville, FL 32611 USA.

Research Institution addresses:
[Maroo, Shalabh C.; Chung, J. N.] Univ Florida, Dept Mech & Aerosp Engn, Gainesville, FL 32611 USA

E-mail Address:
shalabh@ufl.edu

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Cited Reference Count:
22

Times Cited:
0

Publisher:
SPRINGER; VAN GODEWIJCKSTRAAT 30, 3311 GZ DORDRECHT, NETHERLANDS

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

ISSN:
1388-0764

DOI:
10.1007/s11051-009-9755-2

IDS Number:
600AX

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