Thursday, April 1, 2010

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:
Surface-Energy Generator of Single-Walled Carbon Nanotubes and Usage in a Self-Powered System

Authors:
Liu, Z; Zheng, KH; Hu, LJ; Liu, J; Qiu, CY; Zhou, HQ; Huang, HB; Yang, HF; Li, M; Gu, CZ; Xie, SS; Qiao, LJ; Sun, LF

Author Full Names:
Liu, Zheng; Zheng, Kaihong; Hu, Lijun; Liu, Ji; Qiu, Caiyu; Zhou, Haiqing; Huang, Haibo; Yang, Haifang; Li, Meng; Gu, Changzhi; Xie, Sishen; Qiao, Lijie; Sun, Lianfeng

Source:
ADVANCED MATERIALS 22 (9): 999-+ MAR 5 2010

Language:
English

Document Type:
Article

KeyWords Plus:
SILICON NANOWIRES; LIQUIDS; SCIENCE; DRIVEN; FLOW; HYDRODYNAMICS; PERFORMANCE; FILMS

Abstract:
A surface-energy generator (SEC) using single-walled carbon nanotubes is demonstrated to harvest the surface energy of ethanol. The SEC can drive thermistors in a self-powered system. The performance can be significantly enhanced by the Marangoni effect. These SEGs show the advantages of a smaller inner resistance, no moving parts, and no need for the application of an obvious external force.

Reprint Address:
Sun, LF, Natl Ctr Nanosci & Technol, 8 Zhongguancun 1st N St, Beijing 100190, Peoples R China.

Research Institution addresses:
[Liu, Zheng; Zheng, Kaihong; Hu, Lijun; Liu, Ji; Qiu, Caiyu; Zhou, Haiqing; Huang, Haibo; Sun, Lianfeng] Natl Ctr Nanosci & Technol, Beijing 100190, Peoples R China; [Yang, Haifang; Gu, Changzhi; Xie, Sishen] Chinese Acad Sci, Inst Phys, Beijing 100190, Peoples R China; [Li, Meng; Qiao, Lijie] Univ Sci & Technol Beijing, Ctr Corros & Protect, Key Lab Environm Fracture MOE, Beijing 100083, Peoples R China; [Liu, Zheng; Zheng, Kaihong; Hu, Lijun; Liu, Ji; Qiu, Caiyu; Zhou, Haiqing; Huang, Haibo] Chinese Acad Sci, Grad Sch, Beijing 100049, Peoples R China

E-mail Address:
slf@nanoctr.cn

Cited References:
BURNS MA, 1996, P NATL ACAD SCI USA, V93, P5556.
CAI Y, 2008, J AM CHEM SOC, V130, P6076, DOI 10.1021/ja801438u.
CAZABAT AM, 1990, NATURE, V346, P824.
CHAUDHURY MK, 1992, SCIENCE, V256, P1539.
DANIEL S, 2001, SCIENCE, V291, P633.
DEHEER WA, 1993, REV MOD PHYS, V65, P611.
DIEBOLD U, 2003, SURF SCI REP, V48, P53.
GALLARDO BS, 1999, SCIENCE, V283, P57.
GHOSH S, 2003, SCIENCE, V299, P1042, DOI 10.1126/science.1079080.
GOLDSMITH BR, 2007, SCIENCE, V315, P77, DOI 10.1126/science.1135303.
GRUNZE M, 1999, SCIENCE, V283, P41.
HAMMER B, 2000, ADV CATAL, V45, P71.
HOCHBAUM AI, 2008, NATURE, V451, P163, DOI 10.1038/nature06381.
HOLT JK, 2006, SCIENCE, V312, P1034, DOI 10.1126/science.1126298.
HU DL, 2003, NATURE, V424, P663, DOI 10.1038/nature01793.
HU DL, 2005, NATURE, V437, P733, DOI 10.1038/nature03995.
ICHIMURA K, 2000, SCIENCE, V288, P1624.
KRAL P, 2001, PHYS REV LETT, V86, P131.
LIU GT, 2008, NANO LETT, V8, P1071, DOI 10.1021/nl073007o.
LIU GT, 2009, NANO LETT, V9, P239, DOI 10.1021/nl802827m.
LIU J, 2008, NANO LETT, V8, P328, DOI 10.1021/nl0728470.
MA WJ, 2007, NANO LETT, V7, P2307, DOI 10.1021/nl070915c.
MAJUMDER M, 2005, NATURE, V438, P44, DOI 10.1038/43844a.
QIN Y, 2009, NATURE, V457, P340, DOI 10.1038/nature07628.
SCHREIBER F, 2000, PROG SURF SCI, V65, P151.
SCRIVEN LE, 1960, NATURE, V187, P186.
TIAN BZ, 2007, NATURE, V449, P885, DOI 10.1038/nature06181.
TOMALIA DA, 1990, ANGEW CHEM INT EDIT, V29, P138.
WANG ZL, 2006, SCIENCE, V312, P242, DOI 10.1126/science.1124005.
ZHAO YC, 2008, ADV MATER, V20, P1772, DOI 10.1002/adma.200702956.

Cited Reference Count:
30

Times Cited:
0

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

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

ISSN:
0935-9648

DOI:
10.1002/adma.200902153

IDS Number:
570LM

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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: 3 new records this week (3 in this e-mail)
Organization ID: 3b97d1bbc1878baed0ab183d8b03130b
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Title:
Preparation, characterization and electrical conductivity studies of MWCNT/ZnO nanoparticles hybrid

Authors:
Sameera, I; Bhatia, R; Prasad, V

Author Full Names:
Sameera, I.; Bhatia, Ravi; Prasad, V.

Source:
PHYSICA B-CONDENSED MATTER 405 (7): 1709-1714 APR 1 2010

Language:
English

Document Type:
Article

Author Keywords:
Multiwall carbon nanotubes; Zinc oxide nanoparticles; Electron microscopy; X-ray electron photoelectron spectroscopy; Electrical conduction

KeyWords Plus:
MULTIWALLED CARBON NANOTUBES; RANGE-HOPPING CONDUCTION; ELECTRONIC-PROPERTIES

Abstract:
Multiwall carbon nanotubes (MWCNTs) were decorated with crystalline zinc oxide nanoparticles (ZnO NPs) by wet chemical route to form MWCNT/ZnO NPs hybrid. The hybrid sample was characterized by scanning and transmission electron microscopy, X-ray diffraction and X-ray photoelectron spectroscopy. Electrical conductivity of the hybrid can be tuned by varying the ZnO NPs content in the hybrid. In order to investigate the effect of nanoparticles loading on the conduction of MWCNTs network, electrical conductivity studies have been carried out in the wide temperature range 1.5-300K. The electrical conductivity of the hybrid below 100K is explained with the combination of variable range hopping conduction and thermal fluctuation induced tunnelling model. (C) 2009 Elsevier B.V. All rights reserved.

Reprint Address:
Sameera, I, Indian Inst Sci, Dept Phys, Bangalore 560012, Karnataka, India.

Research Institution addresses:
[Sameera, I.; Bhatia, Ravi; Prasad, V.] Indian Inst Sci, Dept Phys, Bangalore 560012, Karnataka, India

E-mail Address:
sameeraivaturi@gmail.com

Cited References:
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ANDO T, 2005, J PHYS SOC JPN, V74, P777, DOI 10.1143/JPSJ.74.777.
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DRESSELHAUS MS, 2001, CARBON NANOTUBES SYN.
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LIN CC, 2009, NANOTECHNOLOGY, V20, ARTN 105703.
LIN Y, 2004, J MATER CHEM, V14, P527, DOI 10.1039/b314481j.
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SHENG P, 1980, PHYS REV B, V21, P2180.
SHI SL, 2007, J APPL PHYS, V101, ARTN 023708.
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TANS SJ, 1998, NATURE, V393, P49.
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WONG SS, 1998, NATURE, V394, P52.
YAN XB, 2008, CARBON, V46, P753, DOI 10.1016/j.carbon.2008.01.027.
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ZHU YW, 2006, ADV MATER, V18, P587, DOI 10.1002/adma.200501918.

Cited Reference Count:
32

Times Cited:
0

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

Subject Category:
Physics, Condensed Matter

ISSN:
0921-4526

DOI:
10.1016/j.physb.2009.12.074

IDS Number:
570TF

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

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Title:
Fabrication of single-walled carbon nanotube three-dimensional networks inside the pores of a porous silicon structure

Authors:
Lee, TJ; Seo, J; Lee, H; Lee, JW; Yi, W

Author Full Names:
Lee, Tae Jae; Seo, Jungeun; Lee, Haiwon; Lee, Jung Woo; Yi, Whikun

Source:
CARBON 48 (5): 1473-1479 APR 2010

Language:
English

Document Type:
Article

KeyWords Plus:
OZONE TREATMENT; GROWTH; INTEGRATION; FILTER

Abstract:
Single-walled carbon nanotube (SWCNT) three-dimensional (3-D) networks were first fabricated in the pores of a porous silicon substrate using thermal decomposition Of C2H2 at 800 degrees C Catalyst nanoparticles were uniformly distributed on the inner wall surfaces of the pores using a dipping method combined with ultrasonication SWCNTs were synthesized along the inner wall surface of the pores, and spanned it The suspended SWCNTs inside the pores formed 3-D networks in the results of the chaotic overgrowth of SWCNTs in a confined space under thermal vibration, and van der Waals interactions between SWCNTs (C) 2009 Elsevier Ltd All rights reserved.

Reprint Address:
Lee, H, Hanyang Univ, Dept Chem, Seoul 133791, South Korea.

Research Institution addresses:
[Seo, Jungeun; Lee, Haiwon; Lee, Jung Woo; Yi, Whikun] Hanyang Univ, Dept Chem, Seoul 133791, South Korea; [Lee, Tae Jae; Lee, Haiwon] Hanyang Univ, Inst Nano Sci & Technol, Seoul 133791, South Korea

Cited References:
ABRAMS ZR, 2007, NANO LETT, V7, P2666, DOI 10.1021/nl071058f.
AN YH, 2006, MOL CELL TOXICOL, V2, P279.
BLOW N, 2009, NAT METHODS, V6, P683, DOI 10.1038/nmeth0909-683.
BRADYESTEVEZ AS, 2008, SMALL, V4, P481, DOI 10.1002/smll.200700863.
CANTORO M, 2006, NANO LETT, V6, P1107, DOI 10.1021/nl060068y.
CASSELL AM, 1999, J AM CHEM SOC, V121, P7975.
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DAI HJ, 2002, ACCOUNTS CHEM RES, V35, P1035, DOI 10.1021/ar0101640.
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FRANKLIN NR, 2002, APPL PHYS LETT, V81, P913.
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SAUVAJOL JL, 2002, CARBON, V40, P1697.
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Cited Reference Count:
32

Times Cited:
0

Publisher:
PERGAMON-ELSEVIER SCIENCE LTD; THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND

Subject Category:
Chemistry, Physical; Materials Science, Multidisciplinary

ISSN:
0008-6223

DOI:
10.1016/j.carbon.2009.12.042

IDS Number:
569XL

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Title:
Surface-Energy Generator of Single-Walled Carbon Nanotubes and Usage in a Self-Powered System

Authors:
Liu, Z; Zheng, KH; Hu, LJ; Liu, J; Qiu, CY; Zhou, HQ; Huang, HB; Yang, HF; Li, M; Gu, CZ; Xie, SS; Qiao, LJ; Sun, LF

Author Full Names:
Liu, Zheng; Zheng, Kaihong; Hu, Lijun; Liu, Ji; Qiu, Caiyu; Zhou, Haiqing; Huang, Haibo; Yang, Haifang; Li, Meng; Gu, Changzhi; Xie, Sishen; Qiao, Lijie; Sun, Lianfeng

Source:
ADVANCED MATERIALS 22 (9): 999-+ MAR 5 2010

Language:
English

Document Type:
Article

KeyWords Plus:
SILICON NANOWIRES; LIQUIDS; SCIENCE; DRIVEN; FLOW; HYDRODYNAMICS; PERFORMANCE; FILMS

Abstract:
A surface-energy generator (SEC) using single-walled carbon nanotubes is demonstrated to harvest the surface energy of ethanol. The SEC can drive thermistors in a self-powered system. The performance can be significantly enhanced by the Marangoni effect. These SEGs show the advantages of a smaller inner resistance, no moving parts, and no need for the application of an obvious external force.

Reprint Address:
Sun, LF, Natl Ctr Nanosci & Technol, 8 Zhongguancun 1st N St, Beijing 100190, Peoples R China.

Research Institution addresses:
[Liu, Zheng; Zheng, Kaihong; Hu, Lijun; Liu, Ji; Qiu, Caiyu; Zhou, Haiqing; Huang, Haibo; Sun, Lianfeng] Natl Ctr Nanosci & Technol, Beijing 100190, Peoples R China; [Yang, Haifang; Gu, Changzhi; Xie, Sishen] Chinese Acad Sci, Inst Phys, Beijing 100190, Peoples R China; [Li, Meng; Qiao, Lijie] Univ Sci & Technol Beijing, Ctr Corros & Protect, Key Lab Environm Fracture MOE, Beijing 100083, Peoples R China; [Liu, Zheng; Zheng, Kaihong; Hu, Lijun; Liu, Ji; Qiu, Caiyu; Zhou, Haiqing; Huang, Haibo] Chinese Acad Sci, Grad Sch, Beijing 100049, Peoples R China

E-mail Address:
slf@nanoctr.cn

Cited References:
BURNS MA, 1996, P NATL ACAD SCI USA, V93, P5556.
CAI Y, 2008, J AM CHEM SOC, V130, P6076, DOI 10.1021/ja801438u.
CAZABAT AM, 1990, NATURE, V346, P824.
CHAUDHURY MK, 1992, SCIENCE, V256, P1539.
DANIEL S, 2001, SCIENCE, V291, P633.
DEHEER WA, 1993, REV MOD PHYS, V65, P611.
DIEBOLD U, 2003, SURF SCI REP, V48, P53.
GALLARDO BS, 1999, SCIENCE, V283, P57.
GHOSH S, 2003, SCIENCE, V299, P1042, DOI 10.1126/science.1079080.
GOLDSMITH BR, 2007, SCIENCE, V315, P77, DOI 10.1126/science.1135303.
GRUNZE M, 1999, SCIENCE, V283, P41.
HAMMER B, 2000, ADV CATAL, V45, P71.
HOCHBAUM AI, 2008, NATURE, V451, P163, DOI 10.1038/nature06381.
HOLT JK, 2006, SCIENCE, V312, P1034, DOI 10.1126/science.1126298.
HU DL, 2003, NATURE, V424, P663, DOI 10.1038/nature01793.
HU DL, 2005, NATURE, V437, P733, DOI 10.1038/nature03995.
ICHIMURA K, 2000, SCIENCE, V288, P1624.
KRAL P, 2001, PHYS REV LETT, V86, P131.
LIU GT, 2008, NANO LETT, V8, P1071, DOI 10.1021/nl073007o.
LIU GT, 2009, NANO LETT, V9, P239, DOI 10.1021/nl802827m.
LIU J, 2008, NANO LETT, V8, P328, DOI 10.1021/nl0728470.
MA WJ, 2007, NANO LETT, V7, P2307, DOI 10.1021/nl070915c.
MAJUMDER M, 2005, NATURE, V438, P44, DOI 10.1038/43844a.
QIN Y, 2009, NATURE, V457, P340, DOI 10.1038/nature07628.
SCHREIBER F, 2000, PROG SURF SCI, V65, P151.
SCRIVEN LE, 1960, NATURE, V187, P186.
TIAN BZ, 2007, NATURE, V449, P885, DOI 10.1038/nature06181.
TOMALIA DA, 1990, ANGEW CHEM INT EDIT, V29, P138.
WANG ZL, 2006, SCIENCE, V312, P242, DOI 10.1126/science.1124005.
ZHAO YC, 2008, ADV MATER, V20, P1772, DOI 10.1002/adma.200702956.

Cited Reference Count:
30

Times Cited:
0

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

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

ISSN:
0935-9648

DOI:
10.1002/adma.200902153

IDS Number:
570LM

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or 734-459-8565.

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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: 09 NOV 2010
Number of Citing Articles: 2 new records this week (2 in this e-mail)
Organization ID: 3b97d1bbc1878baed0ab183d8b03130b
========================================================================
Note: Instructions on how to purchase the full text of an article and Help Desk Contact information are at the end of the e-mail.
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Title:
Assessment of nanotube structures under a moving nanoparticle using nonlocal beam theories

Authors:
Kiani, K; Mehri, B

Author Full Names:
Kiani, Keivan; Mehri, Bahman

Source:
JOURNAL OF SOUND AND VIBRATION 329 (11): 2241-2264 MAY 24 2010

Language:
English

Document Type:
Article

KeyWords Plus:
WALLED CARBON NANOTUBES; WAVE-PROPAGATION; CONTINUUM-MECHANICS; MOLECULAR MOTOR; ELASTIC MEDIUM; DRIVEN; MASS; VIBRATION; SURFACE; MODELS

Abstract:
Dynamic analysis of nanotube structures under excitation of a moving nanoparticle is carried out using nonlocal continuum theory of Eringen. To this end, the nanotube structure is modeled by an equivalent continuum structure (ECS) according to the nonlocal Euler-Bernoulli, Timoshenko and higher order beam theories. The non-dimensional equations of motion of the nonlocal beams acted upon by a moving nanoparticle are then established. Analytical solutions of the problem are presented for simply supported boundary conditions. The explicit expressions of the critical velocities of the nonlocal beams are derived. Furthermore, the capabilities of various nonlocal beam models in predicting the dynamic deflection of the ECS are examined through various numerical simulations. The role of the scale effect parameter, the slenderness ratio of the ECS and velocity of the moving nanoparticle on the time history of deflection as well as the dynamic amplitude factor of the nonlocal beams ar!
e scrutinized in some detail. The results show the importance of using nonlocal shear deformable beam theories, particularly for very stocky nanotube structures acted upon by a moving nanoparticle with low velocity. (C) 2010 Elsevier Ltd. All rights reserved.

Reprint Address:
Kiani, K, Sharif Univ Technol, Dept Civil Engn, Azadi Ave,POB 11365-9313, Tehran, Iran.

Research Institution addresses:
[Kiani, Keivan] Sharif Univ Technol, Dept Civil Engn, Tehran, Iran; [Mehri, Bahman] Sharif Univ Technol, Dept Math Sci, Tehran, Iran

E-mail Address:
k_kiani@civil.sharif.edu; mehri@sharif.edu

Cited References:
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Cited Reference Count:
43

Times Cited:
0

Publisher:
ACADEMIC PRESS LTD- ELSEVIER SCIENCE LTD; 24-28 OVAL RD, LONDON NW1 7DX, ENGLAND

Subject Category:
Acoustics; Engineering, Mechanical; Mechanics

ISSN:
0022-460X

DOI:
10.1016/j.jsv.2009.12.017

IDS Number:
569FR

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

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Title:
Nanoimmiscibility: Selective Absorption of Liquid Methanol-Water Mixtures in Carbon Nanotubes

Authors:
Liu, Y; Consta, S; Goddard, WA

Author Full Names:
Liu, Yi; Consta, Styliani; Goddard, William A., III

Source:
JOURNAL OF NANOSCIENCE AND NANOTECHNOLOGY 10 (6): 3834-3843 Sp. Iss. SI JUN 2010

Language:
English

Document Type:
Article

Author Keywords:
Carbon Nanotube; Selective Absorption; Water; Methanol; Liquid Mixture; Miscibility

KeyWords Plus:
PHASE EXTRACTION ADSORBENT; SEPARATION; ENERGETICS; CLUSTERS

Abstract:
Despite the continuing research interests in CNT-liquid systems, the microscopic structure and transport behavior of liquid mixtures in carbon nanotubes (CNTs) remain poorly understood. Methanol and water liquids are completely miscible across the entire range of concentration; however, recent research reveals that they are immiscible at a molecular level. In this work, we carried out classical molecular dynamics to study the molecular distribution, structure ordering, clustering and transport behavior of liquid methanol-water mixtures within CNT confinement. We found that CNTs preferentially absorbed methanol over water molecule even though the latter has a smaller molecular size, indicating that chemical effect such as molecular hydrophilicity plays a crucial role in the molecular absorption of CNTs. Due to the selective absorption of CNTs, methanol aqueous solution changes from microscopically immiscible to macroscopically immiscible at nanoscale. This nanoscale immiscibi!
lity may be utilized in various applications of CNTs including direct methanol fuel cells, nanosensors, molecular sieves, nanofluidic chips, and capsules for drug delivery.

Reprint Address:
Liu, Y, CALTECH, Mat & Proc Simulat Ctr M C 139 74, 1200 E Calif Blvd, Pasadena, CA 91125 USA.

Research Institution addresses:
[Liu, Yi; Goddard, William A., III] CALTECH, Mat & Proc Simulat Ctr M C 139 74, Pasadena, CA 91125 USA; [Consta, Styliani] Univ Western Ontario, Dept Chem, London, ON N6A 5B7, Canada

Cited References:
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Cited Reference Count:
24

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.2010.1999

IDS Number:
569UC

========================================================================
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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: 2 new records this week (2 in this e-mail)
Organization ID: 3b97d1bbc1878baed0ab183d8b03130b
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Title:
On the squeeze flow between two rigid spheres with partially wetted surfaces

Authors:
Li, WL

Author Full Names:
Li, W-L

Source:
PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART J-JOURNAL OF ENGINEERING TRIBOLOGY 224 (J2): 195-201 2010

Language:
English

Document Type:
Article

Author Keywords:
non-Newtonian fluid; Navier slip; power law model

KeyWords Plus:
SLIP BOUNDARY-CONDITION; FLUID-SOLID INTERFACE; LIQUID; VISCOSITY; MODEL

Abstract:
The effects of flow rheology and wall slip on the isothermal squeeze film flow between two spherical hydrophobic Surfaces are derived analytically. The non-Newtonian power-law model as well as the Navier-slip boundary conditions is considered in the partially wetted bearings. The squeeze flow and the viscous forces between two rigid spheres are discussed for various combinations of flow index, squeeze velocity, minimum film thickness, and slip lengths.

Reprint Address:
Li, WL, Natl Cheng Kung Univ, Inst Nanotechnol & Microsyst Engn, Ctr Micro Nano Sci & Technol, 1 Univ Rd, Tainan 701, Taiwan.

Research Institution addresses:
Natl Cheng Kung Univ, Inst Nanotechnol & Microsyst Engn, Ctr Micro Nano Sci & Technol, Tainan 701, Taiwan

E-mail Address:
wlli@mail.ncku.edu.tw

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Cited Reference Count:
32

Times Cited:
0

Publisher:
PROFESSIONAL ENGINEERING PUBLISHING LTD; 1 BIRDCAGE WALK, WESTMINISTER SW1H 9JJ, ENGLAND

Subject Category:
Engineering, Mechanical

ISSN:
1350-6501

DOI:
10.1243/13506501JET612

IDS Number:
570CV

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

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Title:
A continuum approach to reproduce molecular-scale slip behaviour

Authors:
Hsu, HY; Patankar, NA

Author Full Names:
Hsu, H. -Y.; Patankar, N. A.

Source:
JOURNAL OF FLUID MECHANICS 645: 59-80 FEB 25 2010

Language:
English

Document Type:
Article

KeyWords Plus:
CARBON NANOTUBES; INHOMOGENEOUS FLUIDS; BOUNDARY-CONDITION; KINETIC-THEORY; FLOW; SURFACES; LIQUID; ROUGH; SIMULATIONS; INTERFACES

Abstract:
In this work we explore if it is possible to reproduce molecular-scale slip behaviour by using continuum equations. To that end it is noted that molecular-scale slip is affected by three factors: (1) near the wall, the fluid experiences a potential because of the wall; (ii) the fluid density responds to that potential, and hence, fluid compressibility is relevant; and (iii) the fluid call lose momentum to the wall. To incorporate these features we simulate shear flow of a compressible fluid between two walls in the presence of a potential. Compressibility effect is found to be important only in the near-wall region. The slip length is calculated from the mean velocity profile. The slip-length h-versus-shear-rate trend is similar to that in molecular dynamic calculations. First, there is a constant value of the slip length at low shear rates. Then, the slip length increases beyond a critical shear rate. Lastly, the slip length reaches another constant value if the wall moment!
um loss parameter is non-zero. The scaling for the critical shear rate emerges from our results. The value of the slip length increases if the wall potential is less corrugated and if the momentum loss to the wall is low. All understanding of the overall force balance during various slip modes emerges from the governing equations.

Reprint Address:
Patankar, NA, Northwestern Univ, Dept Mech Engn, 2145 Sheridan Rd, Evanston, IL 60208 USA.

Research Institution addresses:
[Hsu, H. -Y.; Patankar, N. A.] Northwestern Univ, Dept Mech Engn, Evanston, IL 60208 USA

E-mail Address:
n-patankar@northwestern.edu

Cited References:
BAZANT MZ, 2008, J FLUID MECH, V613, P125, DOI 10.1017/S002211200800356X.
BHUSHAN B, 2000, HDB MODERN TRIBOLOGY.
BOCQUET L, 2007, SOFT MATTER, V3, P685, DOI 10.1039/b616490k.
CHOI CH, 2003, PHYS FLUIDS, V15, P2897, DOI 10.1063/1.1605425.
DIN XD, 1997, PHYS FLUIDS, V9, P3915.
EINZEL D, 1990, PHYS REV LETT, V64, P2269.
GAO JP, 2000, TRIBOL LETT, V9, P3.
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HONIG CDF, 2007, PHYS REV LETT, V98, ARTN 028305.
LICHTER S, 2004, PHYS REV LETT, V93, ARTN 086001.
LICHTER S, 2007, PHYS REV LETT, V98, ARTN 226001.
MAJUMDER M, 2005, NATURE, V438, P44, DOI 10.1038/43844a.
MARTINI A, 2006, TRIBOL LETT, V21, P217, DOI 10.1007/s11249-006-9023-x.
MARTINI A, 2008, J FLUID MECH, V600, P257, DOI 10.1017/S0022112008000475.
MARTINI A, 2008, PHYS REV LETT, V100, ARTN 206001.
MIKSIS MJ, 1994, J FLUID MECH, V273, P125.
PIT R, 2000, PHYS REV LETT, V85, P980.
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PRIEZJEV NV, 2006, J FLUID MECH, V554, P25, DOI 10.1017/S0022112006009086.
PRIEZJEV NV, 2007, J CHEM PHYS, V127, ARTN 144708.
PRIEZJEV NV, 2007, PHYS REV E 1, V75, ARTN 051605.
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ZHU YX, 2001, PHYS REV LETT, V87, ARTN 096105.

Cited Reference Count:
35

Times Cited:
0

Publisher:
CAMBRIDGE UNIV PRESS; 32 AVENUE OF THE AMERICAS, NEW YORK, NY 10013-2473 USA

Subject Category:
Mechanics; Physics, Fluids & Plasmas

ISSN:
0022-1120

DOI:
10.1017/S0022112009992540

IDS Number:
570LF

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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: 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.
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*Order Full Text [ ]
AU Hsu, HY
Patankar, NA
AF Hsu, H. -Y.
Patankar, N. A.
TI A continuum approach to reproduce molecular-scale slip behaviour
SO JOURNAL OF FLUID MECHANICS
LA English
DT Article
ID CARBON NANOTUBES; INHOMOGENEOUS FLUIDS; BOUNDARY-CONDITION;
KINETIC-THEORY; FLOW; SURFACES; LIQUID; ROUGH; SIMULATIONS; INTERFACES
AB In this work we explore if it is possible to reproduce molecular-scale
slip behaviour by using continuum equations. To that end it is noted
that molecular-scale slip is affected by three factors: (1) near the
wall, the fluid experiences a potential because of the wall; (ii) the
fluid density responds to that potential, and hence, fluid
compressibility is relevant; and (iii) the fluid call lose momentum to
the wall. To incorporate these features we simulate shear flow of a
compressible fluid between two walls in the presence of a potential.
Compressibility effect is found to be important only in the near-wall
region. The slip length is calculated from the mean velocity profile.
The slip-length h-versus-shear-rate trend is similar to that in
molecular dynamic calculations. First, there is a constant value of the
slip length at low shear rates. Then, the slip length increases beyond
a critical shear rate. Lastly, the slip length reaches another constant
value if the wall momentum loss parameter is non-zero. The scaling for
the critical shear rate emerges from our results. The value of the slip
length increases if the wall potential is less corrugated and if the
momentum loss to the wall is low. All understanding of the overall
force balance during various slip modes emerges from the governing
equations.
C1 [Hsu, H. -Y.; Patankar, N. A.] Northwestern Univ, Dept Mech Engn, Evanston, IL 60208 USA.
RP Patankar, NA, Northwestern Univ, Dept Mech Engn, 2145 Sheridan Rd,
Evanston, IL 60208 USA.
EM n-patankar@northwestern.edu
CR BAZANT MZ, 2008, J FLUID MECH, V613, P125, DOI 10.1017/S002211200800356X
BHUSHAN B, 2000, HDB MODERN TRIBOLOGY
BOCQUET L, 2007, SOFT MATTER, V3, P685, DOI 10.1039/b616490k
CHOI CH, 2003, PHYS FLUIDS, V15, P2897, DOI 10.1063/1.1605425
DIN XD, 1997, PHYS FLUIDS, V9, P3915
EINZEL D, 1990, PHYS REV LETT, V64, P2269
GAO JP, 2000, TRIBOL LETT, V9, P3
GUO ZL, 2005, PHYS REV E 2, V71, ARTN 035301
GUO ZL, 2005, PHYS REV E 2, V72, ARTN 036301
HOLT JK, 2006, SCIENCE, V312, P1034, DOI 10.1126/science.1126298
HONIG CDF, 2007, PHYS REV LETT, V98, ARTN 028305
LICHTER S, 2004, PHYS REV LETT, V93, ARTN 086001
LICHTER S, 2007, PHYS REV LETT, V98, ARTN 226001
MAJUMDER M, 2005, NATURE, V438, P44, DOI 10.1038/43844a
MARTINI A, 2006, TRIBOL LETT, V21, P217, DOI 10.1007/s11249-006-9023-x
MARTINI A, 2008, J FLUID MECH, V600, P257, DOI 10.1017/S0022112008000475
MARTINI A, 2008, PHYS REV LETT, V100, ARTN 206001
MIKSIS MJ, 1994, J FLUID MECH, V273, P125
PIT R, 2000, PHYS REV LETT, V85, P980
POZHAR LA, 1991, J CHEM PHYS, V94, P1367
POZHAR LA, 1993, J CHEM PHYS, V99, P8970
PRIEZJEV NV, 2004, PHYS REV LETT, V92, ARTN 018302
PRIEZJEV NV, 2005, PHYS REV E 1, V71, ARTN 041608
PRIEZJEV NV, 2006, J FLUID MECH, V554, P25, DOI
10.1017/S0022112006009086
PRIEZJEV NV, 2007, J CHEM PHYS, V127, ARTN 144708
PRIEZJEV NV, 2007, PHYS REV E 1, V75, ARTN 051605
RAGHUNATHAN AV, 2007, J CHEM PHYS, V127, ARTN 174701
SHOLL DS, 2006, SCIENCE, V312, P1003, DOI 10.1126/science.1127261
STEELE WA, 1973, SURF SCI, V36, P317
THOMPSON PA, 1997, NATURE, V389, P360
TRETHEWAY DC, 2002, PHYS FLUIDS, V14, P9
URBAKH M, 2004, NATURE, V430, P525, DOI 10.1038/nature02750
VANDERLICK TK, 1989, J CHEM PHYS, V90, P2422
WANG CY, 2003, PHYS FLUIDS, V15, P1114, DOI 10.1063/1.1560925
ZHU YX, 2001, PHYS REV LETT, V87, ARTN 096105
NR 35
TC 0
PU CAMBRIDGE UNIV PRESS; 32 AVENUE OF THE AMERICAS, NEW YORK, NY
10013-2473 USA
SN 0022-1120
DI 10.1017/S0022112009992540
PD FEB 25
VL 645
BP 59
EP 80
SC Mechanics; Physics, Fluids & Plasmas
GA 570LF
UT ISI:000275678600003
ER

PT J
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AU Liu, Z
Zheng, KH
Hu, LJ
Liu, J
Qiu, CY
Zhou, HQ
Huang, HB
Yang, HF
Li, M
Gu, CZ
Xie, SS
Qiao, LJ
Sun, LF
AF Liu, Zheng
Zheng, Kaihong
Hu, Lijun
Liu, Ji
Qiu, Caiyu
Zhou, Haiqing
Huang, Haibo
Yang, Haifang
Li, Meng
Gu, Changzhi
Xie, Sishen
Qiao, Lijie
Sun, Lianfeng
TI Surface-Energy Generator of Single-Walled Carbon Nanotubes and Usage in
a Self-Powered System
SO ADVANCED MATERIALS
LA English
DT Article
ID SILICON NANOWIRES; LIQUIDS; SCIENCE; DRIVEN; FLOW; HYDRODYNAMICS;
PERFORMANCE; FILMS
AB A surface-energy generator (SEC) using single-walled carbon nanotubes
is demonstrated to harvest the surface energy of ethanol. The SEC can
drive thermistors in a self-powered system. The performance can be
significantly enhanced by the Marangoni effect. These SEGs show the
advantages of a smaller inner resistance, no moving parts, and no need
for the application of an obvious external force.
C1 [Liu, Zheng; Zheng, Kaihong; Hu, Lijun; Liu, Ji; Qiu, Caiyu; Zhou, Haiqing; Huang, Haibo; Sun, Lianfeng] Natl Ctr Nanosci & Technol, Beijing 100190, Peoples R China.
[Yang, Haifang; Gu, Changzhi; Xie, Sishen] Chinese Acad Sci, Inst Phys, Beijing 100190, Peoples R China.
[Li, Meng; Qiao, Lijie] Univ Sci & Technol Beijing, Ctr Corros & Protect, Key Lab Environm Fracture MOE, Beijing 100083, Peoples R China.
[Liu, Zheng; Zheng, Kaihong; Hu, Lijun; Liu, Ji; Qiu, Caiyu; Zhou, Haiqing; Huang, Haibo] Chinese Acad Sci, Grad Sch, Beijing 100049, Peoples R China.
RP Sun, LF, Natl Ctr Nanosci & Technol, 8 Zhongguancun 1st N St, Beijing
100190, Peoples R China.
EM slf@nanoctr.cn
CR BURNS MA, 1996, P NATL ACAD SCI USA, V93, P5556
CAI Y, 2008, J AM CHEM SOC, V130, P6076, DOI 10.1021/ja801438u
CAZABAT AM, 1990, NATURE, V346, P824
CHAUDHURY MK, 1992, SCIENCE, V256, P1539
DANIEL S, 2001, SCIENCE, V291, P633
DEHEER WA, 1993, REV MOD PHYS, V65, P611
DIEBOLD U, 2003, SURF SCI REP, V48, P53
GALLARDO BS, 1999, SCIENCE, V283, P57
GHOSH S, 2003, SCIENCE, V299, P1042, DOI 10.1126/science.1079080
GOLDSMITH BR, 2007, SCIENCE, V315, P77, DOI 10.1126/science.1135303
GRUNZE M, 1999, SCIENCE, V283, P41
HAMMER B, 2000, ADV CATAL, V45, P71
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HU DL, 2003, NATURE, V424, P663, DOI 10.1038/nature01793
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LIU GT, 2009, NANO LETT, V9, P239, DOI 10.1021/nl802827m
LIU J, 2008, NANO LETT, V8, P328, DOI 10.1021/nl0728470
MA WJ, 2007, NANO LETT, V7, P2307, DOI 10.1021/nl070915c
MAJUMDER M, 2005, NATURE, V438, P44, DOI 10.1038/43844a
QIN Y, 2009, NATURE, V457, P340, DOI 10.1038/nature07628
SCHREIBER F, 2000, PROG SURF SCI, V65, P151
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ZHAO YC, 2008, ADV MATER, V20, P1772, DOI 10.1002/adma.200702956
NR 30
TC 0
PU WILEY-V C H VERLAG GMBH; PO BOX 10 11 61, D-69451 WEINHEIM, GERMANY
SN 0935-9648
DI 10.1002/adma.200902153
PD MAR 5
VL 22
IS 9
BP 999
EP +
SC Chemistry, Multidisciplinary; Chemistry, Physical; Nanoscience &
Nanotechnology; Materials Science, Multidisciplinary; Physics, Applied;
Physics, Condensed Matter
GA 570LM
UT ISI:000275679600014
ER

EF

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ISI Web of Knowledge Alert - Lichter S

ISI Web of Knowledge Citation Alert

Cited Article: Lichter S. Mechanisms for liquid slip 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 continuum approach to reproduce molecular-scale slip behaviour

Authors:
Hsu, HY; Patankar, NA

Author Full Names:
Hsu, H. -Y.; Patankar, N. A.

Source:
JOURNAL OF FLUID MECHANICS 645: 59-80 FEB 25 2010

Language:
English

Document Type:
Article

KeyWords Plus:
CARBON NANOTUBES; INHOMOGENEOUS FLUIDS; BOUNDARY-CONDITION; KINETIC-THEORY; FLOW; SURFACES; LIQUID; ROUGH; SIMULATIONS; INTERFACES

Abstract:
In this work we explore if it is possible to reproduce molecular-scale slip behaviour by using continuum equations. To that end it is noted that molecular-scale slip is affected by three factors: (1) near the wall, the fluid experiences a potential because of the wall; (ii) the fluid density responds to that potential, and hence, fluid compressibility is relevant; and (iii) the fluid call lose momentum to the wall. To incorporate these features we simulate shear flow of a compressible fluid between two walls in the presence of a potential. Compressibility effect is found to be important only in the near-wall region. The slip length is calculated from the mean velocity profile. The slip-length h-versus-shear-rate trend is similar to that in molecular dynamic calculations. First, there is a constant value of the slip length at low shear rates. Then, the slip length increases beyond a critical shear rate. Lastly, the slip length reaches another constant value if the wall moment!
um loss parameter is non-zero. The scaling for the critical shear rate emerges from our results. The value of the slip length increases if the wall potential is less corrugated and if the momentum loss to the wall is low. All understanding of the overall force balance during various slip modes emerges from the governing equations.

Reprint Address:
Patankar, NA, Northwestern Univ, Dept Mech Engn, 2145 Sheridan Rd, Evanston, IL 60208 USA.

Research Institution addresses:
[Hsu, H. -Y.; Patankar, N. A.] Northwestern Univ, Dept Mech Engn, Evanston, IL 60208 USA

E-mail Address:
n-patankar@northwestern.edu

Cited References:
BAZANT MZ, 2008, J FLUID MECH, V613, P125, DOI 10.1017/S002211200800356X.
BHUSHAN B, 2000, HDB MODERN TRIBOLOGY.
BOCQUET L, 2007, SOFT MATTER, V3, P685, DOI 10.1039/b616490k.
CHOI CH, 2003, PHYS FLUIDS, V15, P2897, DOI 10.1063/1.1605425.
DIN XD, 1997, PHYS FLUIDS, V9, P3915.
EINZEL D, 1990, PHYS REV LETT, V64, P2269.
GAO JP, 2000, TRIBOL LETT, V9, P3.
GUO ZL, 2005, PHYS REV E 2, V71, ARTN 035301.
GUO ZL, 2005, PHYS REV E 2, V72, ARTN 036301.
HOLT JK, 2006, SCIENCE, V312, P1034, DOI 10.1126/science.1126298.
HONIG CDF, 2007, PHYS REV LETT, V98, ARTN 028305.
LICHTER S, 2004, PHYS REV LETT, V93, ARTN 086001.
LICHTER S, 2007, PHYS REV LETT, V98, ARTN 226001.
MAJUMDER M, 2005, NATURE, V438, P44, DOI 10.1038/43844a.
MARTINI A, 2006, TRIBOL LETT, V21, P217, DOI 10.1007/s11249-006-9023-x.
MARTINI A, 2008, J FLUID MECH, V600, P257, DOI 10.1017/S0022112008000475.
MARTINI A, 2008, PHYS REV LETT, V100, ARTN 206001.
MIKSIS MJ, 1994, J FLUID MECH, V273, P125.
PIT R, 2000, PHYS REV LETT, V85, P980.
POZHAR LA, 1991, J CHEM PHYS, V94, P1367.
POZHAR LA, 1993, J CHEM PHYS, V99, P8970.
PRIEZJEV NV, 2004, PHYS REV LETT, V92, ARTN 018302.
PRIEZJEV NV, 2005, PHYS REV E 1, V71, ARTN 041608.
PRIEZJEV NV, 2006, J FLUID MECH, V554, P25, DOI 10.1017/S0022112006009086.
PRIEZJEV NV, 2007, J CHEM PHYS, V127, ARTN 144708.
PRIEZJEV NV, 2007, PHYS REV E 1, V75, ARTN 051605.
RAGHUNATHAN AV, 2007, J CHEM PHYS, V127, ARTN 174701.
SHOLL DS, 2006, SCIENCE, V312, P1003, DOI 10.1126/science.1127261.
STEELE WA, 1973, SURF SCI, V36, P317.
THOMPSON PA, 1997, NATURE, V389, P360.
TRETHEWAY DC, 2002, PHYS FLUIDS, V14, P9.
URBAKH M, 2004, NATURE, V430, P525, DOI 10.1038/nature02750.
VANDERLICK TK, 1989, J CHEM PHYS, V90, P2422.
WANG CY, 2003, PHYS FLUIDS, V15, P1114, DOI 10.1063/1.1560925.
ZHU YX, 2001, PHYS REV LETT, V87, ARTN 096105.

Cited Reference Count:
35

Times Cited:
0

Publisher:
CAMBRIDGE UNIV PRESS; 32 AVENUE OF THE AMERICAS, NEW YORK, NY 10013-2473 USA

Subject Category:
Mechanics; Physics, Fluids & Plasmas

ISSN:
0022-1120

DOI:
10.1017/S0022112009992540

IDS Number:
570LF

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contact ISI Document Solution at service@isidoc.com, or call 800-603-4367
or 734-459-8565.

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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: 3 new records this week (3 in this e-mail)
Organization ID: 3b97d1bbc1878baed0ab183d8b03130b
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Title:
Assessment of nanotube structures under a moving nanoparticle using nonlocal beam theories

Authors:
Kiani, K; Mehri, B

Author Full Names:
Kiani, Keivan; Mehri, Bahman

Source:
JOURNAL OF SOUND AND VIBRATION 329 (11): 2241-2264 MAY 24 2010

Language:
English

Document Type:
Article

KeyWords Plus:
WALLED CARBON NANOTUBES; WAVE-PROPAGATION; CONTINUUM-MECHANICS; MOLECULAR MOTOR; ELASTIC MEDIUM; DRIVEN; MASS; VIBRATION; SURFACE; MODELS

Abstract:
Dynamic analysis of nanotube structures under excitation of a moving nanoparticle is carried out using nonlocal continuum theory of Eringen. To this end, the nanotube structure is modeled by an equivalent continuum structure (ECS) according to the nonlocal Euler-Bernoulli, Timoshenko and higher order beam theories. The non-dimensional equations of motion of the nonlocal beams acted upon by a moving nanoparticle are then established. Analytical solutions of the problem are presented for simply supported boundary conditions. The explicit expressions of the critical velocities of the nonlocal beams are derived. Furthermore, the capabilities of various nonlocal beam models in predicting the dynamic deflection of the ECS are examined through various numerical simulations. The role of the scale effect parameter, the slenderness ratio of the ECS and velocity of the moving nanoparticle on the time history of deflection as well as the dynamic amplitude factor of the nonlocal beams ar!
e scrutinized in some detail. The results show the importance of using nonlocal shear deformable beam theories, particularly for very stocky nanotube structures acted upon by a moving nanoparticle with low velocity. (C) 2010 Elsevier Ltd. All rights reserved.

Reprint Address:
Kiani, K, Sharif Univ Technol, Dept Civil Engn, Azadi Ave,POB 11365-9313, Tehran, Iran.

Research Institution addresses:
[Kiani, Keivan] Sharif Univ Technol, Dept Civil Engn, Tehran, Iran; [Mehri, Bahman] Sharif Univ Technol, Dept Math Sci, Tehran, Iran

E-mail Address:
k_kiani@civil.sharif.edu; mehri@sharif.edu

Cited References:
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ERINGEN AC, 1983, J APPL PHYS, V54, P4703.
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HU YG, 2008, J MECH PHYS SOLIDS, V56, P3475, DOI 10.1016/j.jmps.2008.08.010.
HUMMER G, 2001, NATURE, V414, P188.
KIANI K, 2009, J SOUND VIB, V320, P632, DOI 10.1016/j.jsv.2008.08.010.
LEE HL, 2009, PHYSICA E, V41, P529, DOI 10.1016/j.physe.2008.10.002.
MAHAN GD, 2002, PHYS REV B, V65, ARTN 235402.
MAJUMDER M, 2005, NATURE, V438, P44, DOI 10.1038/43844a.
MURMU T, 2009, PHYSICA E, V41, P1232, DOI 10.1016/j.physe.2009.02.004.
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REDDY JN, 1997, MECH LAMINATED COMPO.
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SHIRAI Y, 2006, J AM CHEM SOC, V128, P4854, DOI 10.1021/ja058514r.
SUDAK LJ, 2003, J APPL PHYS, V94, P7281, DOI 10.1063/1.1625437.
TIMOSHENKO S, 1955, VIBRATION PROBLEMS E.
VANDELDEN RA, 2003, ORG BIOMOL CHEM, V1, P33, DOI 10.1039/b209378b.
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WANG L, 2009, PHYSICA E, V41, P1835, DOI 10.1016/j.physe.2009.07.011.
WANG LF, 2005, PHYS REV B, V71, ARTN 195412.
WANG Q, 2006, PHYS LETT A, V357, P130, DOI 10.1016/j.physleta.2006.04.026.
WANG Q, 2007, NANOTECHNOLOGY, V18, ARTN 075702.
WANG Q, 2007, PHYS LETT A, V363, P236, DOI 10.1016/j.physleta.2006.10.093.
WANG Q, 2008, ADV THEOR APPL MECH, V1, P1.
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ZHANG H, 2007, ULTRASONICS, V47, P82, DOI 10.1016/j.ultras.2007.08.001.

Cited Reference Count:
43

Times Cited:
0

Publisher:
ACADEMIC PRESS LTD- ELSEVIER SCIENCE LTD; 24-28 OVAL RD, LONDON NW1 7DX, ENGLAND

Subject Category:
Acoustics; Engineering, Mechanical; Mechanics

ISSN:
0022-460X

DOI:
10.1016/j.jsv.2009.12.017

IDS Number:
569FR

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

*Record 2 of 3.
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Title:
A continuum approach to reproduce molecular-scale slip behaviour

Authors:
Hsu, HY; Patankar, NA

Author Full Names:
Hsu, H. -Y.; Patankar, N. A.

Source:
JOURNAL OF FLUID MECHANICS 645: 59-80 FEB 25 2010

Language:
English

Document Type:
Article

KeyWords Plus:
CARBON NANOTUBES; INHOMOGENEOUS FLUIDS; BOUNDARY-CONDITION; KINETIC-THEORY; FLOW; SURFACES; LIQUID; ROUGH; SIMULATIONS; INTERFACES

Abstract:
In this work we explore if it is possible to reproduce molecular-scale slip behaviour by using continuum equations. To that end it is noted that molecular-scale slip is affected by three factors: (1) near the wall, the fluid experiences a potential because of the wall; (ii) the fluid density responds to that potential, and hence, fluid compressibility is relevant; and (iii) the fluid call lose momentum to the wall. To incorporate these features we simulate shear flow of a compressible fluid between two walls in the presence of a potential. Compressibility effect is found to be important only in the near-wall region. The slip length is calculated from the mean velocity profile. The slip-length h-versus-shear-rate trend is similar to that in molecular dynamic calculations. First, there is a constant value of the slip length at low shear rates. Then, the slip length increases beyond a critical shear rate. Lastly, the slip length reaches another constant value if the wall moment!
um loss parameter is non-zero. The scaling for the critical shear rate emerges from our results. The value of the slip length increases if the wall potential is less corrugated and if the momentum loss to the wall is low. All understanding of the overall force balance during various slip modes emerges from the governing equations.

Reprint Address:
Patankar, NA, Northwestern Univ, Dept Mech Engn, 2145 Sheridan Rd, Evanston, IL 60208 USA.

Research Institution addresses:
[Hsu, H. -Y.; Patankar, N. A.] Northwestern Univ, Dept Mech Engn, Evanston, IL 60208 USA

E-mail Address:
n-patankar@northwestern.edu

Cited References:
BAZANT MZ, 2008, J FLUID MECH, V613, P125, DOI 10.1017/S002211200800356X.
BHUSHAN B, 2000, HDB MODERN TRIBOLOGY.
BOCQUET L, 2007, SOFT MATTER, V3, P685, DOI 10.1039/b616490k.
CHOI CH, 2003, PHYS FLUIDS, V15, P2897, DOI 10.1063/1.1605425.
DIN XD, 1997, PHYS FLUIDS, V9, P3915.
EINZEL D, 1990, PHYS REV LETT, V64, P2269.
GAO JP, 2000, TRIBOL LETT, V9, P3.
GUO ZL, 2005, PHYS REV E 2, V71, ARTN 035301.
GUO ZL, 2005, PHYS REV E 2, V72, ARTN 036301.
HOLT JK, 2006, SCIENCE, V312, P1034, DOI 10.1126/science.1126298.
HONIG CDF, 2007, PHYS REV LETT, V98, ARTN 028305.
LICHTER S, 2004, PHYS REV LETT, V93, ARTN 086001.
LICHTER S, 2007, PHYS REV LETT, V98, ARTN 226001.
MAJUMDER M, 2005, NATURE, V438, P44, DOI 10.1038/43844a.
MARTINI A, 2006, TRIBOL LETT, V21, P217, DOI 10.1007/s11249-006-9023-x.
MARTINI A, 2008, J FLUID MECH, V600, P257, DOI 10.1017/S0022112008000475.
MARTINI A, 2008, PHYS REV LETT, V100, ARTN 206001.
MIKSIS MJ, 1994, J FLUID MECH, V273, P125.
PIT R, 2000, PHYS REV LETT, V85, P980.
POZHAR LA, 1991, J CHEM PHYS, V94, P1367.
POZHAR LA, 1993, J CHEM PHYS, V99, P8970.
PRIEZJEV NV, 2004, PHYS REV LETT, V92, ARTN 018302.
PRIEZJEV NV, 2005, PHYS REV E 1, V71, ARTN 041608.
PRIEZJEV NV, 2006, J FLUID MECH, V554, P25, DOI 10.1017/S0022112006009086.
PRIEZJEV NV, 2007, J CHEM PHYS, V127, ARTN 144708.
PRIEZJEV NV, 2007, PHYS REV E 1, V75, ARTN 051605.
RAGHUNATHAN AV, 2007, J CHEM PHYS, V127, ARTN 174701.
SHOLL DS, 2006, SCIENCE, V312, P1003, DOI 10.1126/science.1127261.
STEELE WA, 1973, SURF SCI, V36, P317.
THOMPSON PA, 1997, NATURE, V389, P360.
TRETHEWAY DC, 2002, PHYS FLUIDS, V14, P9.
URBAKH M, 2004, NATURE, V430, P525, DOI 10.1038/nature02750.
VANDERLICK TK, 1989, J CHEM PHYS, V90, P2422.
WANG CY, 2003, PHYS FLUIDS, V15, P1114, DOI 10.1063/1.1560925.
ZHU YX, 2001, PHYS REV LETT, V87, ARTN 096105.

Cited Reference Count:
35

Times Cited:
0

Publisher:
CAMBRIDGE UNIV PRESS; 32 AVENUE OF THE AMERICAS, NEW YORK, NY 10013-2473 USA

Subject Category:
Mechanics; Physics, Fluids & Plasmas

ISSN:
0022-1120

DOI:
10.1017/S0022112009992540

IDS Number:
570LF

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

*Record 3 of 3.
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Title:
Surface-Energy Generator of Single-Walled Carbon Nanotubes and Usage in a Self-Powered System

Authors:
Liu, Z; Zheng, KH; Hu, LJ; Liu, J; Qiu, CY; Zhou, HQ; Huang, HB; Yang, HF; Li, M; Gu, CZ; Xie, SS; Qiao, LJ; Sun, LF

Author Full Names:
Liu, Zheng; Zheng, Kaihong; Hu, Lijun; Liu, Ji; Qiu, Caiyu; Zhou, Haiqing; Huang, Haibo; Yang, Haifang; Li, Meng; Gu, Changzhi; Xie, Sishen; Qiao, Lijie; Sun, Lianfeng

Source:
ADVANCED MATERIALS 22 (9): 999-+ MAR 5 2010

Language:
English

Document Type:
Article

KeyWords Plus:
SILICON NANOWIRES; LIQUIDS; SCIENCE; DRIVEN; FLOW; HYDRODYNAMICS; PERFORMANCE; FILMS

Abstract:
A surface-energy generator (SEC) using single-walled carbon nanotubes is demonstrated to harvest the surface energy of ethanol. The SEC can drive thermistors in a self-powered system. The performance can be significantly enhanced by the Marangoni effect. These SEGs show the advantages of a smaller inner resistance, no moving parts, and no need for the application of an obvious external force.

Reprint Address:
Sun, LF, Natl Ctr Nanosci & Technol, 8 Zhongguancun 1st N St, Beijing 100190, Peoples R China.

Research Institution addresses:
[Liu, Zheng; Zheng, Kaihong; Hu, Lijun; Liu, Ji; Qiu, Caiyu; Zhou, Haiqing; Huang, Haibo; Sun, Lianfeng] Natl Ctr Nanosci & Technol, Beijing 100190, Peoples R China; [Yang, Haifang; Gu, Changzhi; Xie, Sishen] Chinese Acad Sci, Inst Phys, Beijing 100190, Peoples R China; [Li, Meng; Qiao, Lijie] Univ Sci & Technol Beijing, Ctr Corros & Protect, Key Lab Environm Fracture MOE, Beijing 100083, Peoples R China; [Liu, Zheng; Zheng, Kaihong; Hu, Lijun; Liu, Ji; Qiu, Caiyu; Zhou, Haiqing; Huang, Haibo] Chinese Acad Sci, Grad Sch, Beijing 100049, Peoples R China

E-mail Address:
slf@nanoctr.cn

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Cited Reference Count:
30

Times Cited:
0

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

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

ISSN:
0935-9648

DOI:
10.1002/adma.200902153

IDS Number:
570LM

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