Electronic transport in carbon nanotubes:: From individual nanotubes to thin and thick networks

被引:211
作者
Skakalova, V.
Kaiser, A. B.
Woo, Y. -S.
Roth, S.
机构
[1] Max Planck Inst Solid State Res, D-70569 Stuttgart, Germany
[2] Victoria Univ Wellington, MacDiarmid Inst Adv Mat & Nanotechnol, SCPS, Wellington, New Zealand
关键词
D O I
10.1103/PhysRevB.74.085403
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
We measure and compare the electronic transport properties of individual multiwall carbon nanotubes (MWNTs) and individual single-wall carbon nanotubes (SWNTs), and SWNT networks of varying thickness. The thinnest SWNT networks, like the individual semiconducting SWNTs, show nonlinear current-voltage (I-V) characteristics at low temperatures with a current that can be modulated by a gate-source voltage. The overall temperature dependence of conductance in the transparent networks changes systematically as the thickness of the network increases and is consistent with hopping conduction. On the other hand, the thickest SWNT networks (freestanding film) show more metallic behavior: their I-V characteristics are linear with no gate-voltage effect, and a large fraction of their conductivity is retained at very low temperatures, consistent with tunneling through thin barriers separating metallic regions. We make a comparison with individual MWNTs, which in some cases show even greater retention of conductance at very low temperatures, but (unlike the thickest SWNT networks) no changeover to metallic temperature dependence at higher temperatures. The temperature dependence of conductance in individual MWNTs is consistent with a model involving conduction in the two outer shells.
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页数:10
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[1]   Transparent and flexible carbon nanotube transistors [J].
Artukovic, E ;
Kaempgen, M ;
Hecht, DS ;
Roth, S ;
GrUner, G .
NANO LETTERS, 2005, 5 (04) :757-760
[2]   Aharonov-Bohm oscillations in carbon nanotubes [J].
Bachtold, A ;
Strunk, C ;
Salvetat, JP ;
Bonard, JM ;
Forró, L ;
Nussbaumer, T ;
Schönenberger, C .
NATURE, 1999, 397 (6721) :673-675
[3]   Electronic properties of single-walled carbon nanotube networks [J].
Bekyarova, E ;
Itkis, ME ;
Cabrera, N ;
Zhao, B ;
Yu, AP ;
Gao, JB ;
Haddon, RC .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2005, 127 (16) :5990-5995
[4]   Luttinger-liquid behaviour in carbon nanotubes [J].
Bockrath, M ;
Cobden, DH ;
Lu, J ;
Rinzler, AG ;
Smalley, RE ;
Balents, L ;
McEuen, PL .
NATURE, 1999, 397 (6720) :598-601
[5]   Single-electron transport in ropes of carbon nanotubes [J].
Bockrath, M ;
Cobden, DH ;
McEuen, PL ;
Chopra, NG ;
Zettl, A ;
Thess, A ;
Smalley, RE .
SCIENCE, 1997, 275 (5308) :1922-1925
[6]   Determination of the intershell conductance in multiwalled carbon nanotubes -: art. no. 176806 [J].
Bourlon, B ;
Miko, C ;
Forró, L ;
Glattli, DC ;
Bachtold, A .
PHYSICAL REVIEW LETTERS, 2004, 93 (17) :176806-1
[7]   THEORY OF THE ELECTRIC RESISTIVITY OF POLYCRYSTALLINE GRAPHITE [J].
BOWEN, D .
PHYSICAL REVIEW, 1949, 76 (12) :1878-1878
[8]   Chemisorption of acetone on carbon nanotubes [J].
Chakrapani, N ;
Zhang, YMM ;
Nayak, SK ;
Moore, JA ;
Carroll, DL ;
Choi, YY ;
Ajayan, PM .
JOURNAL OF PHYSICAL CHEMISTRY B, 2003, 107 (35) :9308-9311
[9]   The variation with temperature of the electrical resistance of carbon and graphite between 0 degrees C. and 900 degrees C. [J].
Collier, LJ ;
Stiles, WS ;
Taylor, WGA .
PROCEEDINGS OF THE PHYSICAL SOCIETY, 1939, 51 :147-152
[10]  
Dresselhaus M. S., 1996, SCI FULLERENES CARBO