Growth mechanisms of carbon nanotubes using controlled production in ultrahigh vacuum

被引:13
作者
Hövel, H [1 ]
Bödecker, M [1 ]
Grimm, B [1 ]
Rettig, C [1 ]
机构
[1] Univ Dortmund, D-44221 Dortmund, Germany
关键词
D O I
10.1063/1.1483375
中图分类号
O59 [应用物理学];
学科分类号
摘要
We present a method for the preparation of single walled carbon nanotubes (SWNTs) on a highly oriented pyrolytic graphite (HOPG) surface in ultrahigh vacuum (UHV), for which the preparation parameters for the production of metal clusters, fixed to nanometer sized pits on the surface, and the subsequent deposition of carbon can be controlled separately. Using cobalt as the cluster metal we carried out a comprehensive study concerning the influence of the substrate temperature (up to 900 degreesC) and the effective film thickness for the carbon evaporation. With scanning tunneling microscopy in UHV at room temperature and at T=77 K we observed single, separated SWNTs of about 50 nm length, which frequently were angled or branched and included junctions between sections of different tube diameters. With a statistical evaluation of tube diameters, tube lengths, and cluster heights, we obtained new insights into the growth mechanisms. An increase of tube diameters with increasing substrate temperature and a strong catalytic activity of cobalt clusters with sizes below 4 nm is in agreement with experimental results for the gas phase growth and recent calculations for several growth mechanisms. At T=77 K the atomic structures of the SWNT were imaged together with atomic resolution on the HOPG substrate. The presence of branched SWNTs and the observed alignment of the lattice structure of the SWNT and the HOPG both indicate that the tube growth in our case probably takes place at the moving end of the SWNT and not at the fixed clusters, different from recent experiments using chemical vapor deposition for nanotube growth on substrates. (C) 2002 American Institute of Physics.
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页码:771 / 777
页数:7
相关论文
共 42 条
[1]   ADSORPTION AND DESORPTION KINETICS OF CU AND AU ON (0001) GRAPHITE [J].
ARTHUR, JR ;
CHO, AY .
SURFACE SCIENCE, 1973, 36 (02) :641-660
[2]   Effect of the growth temperature on the diameter distribution and chirality of single-wall carbon nanotubes [J].
Bandow, S ;
Asaka, S ;
Saito, Y ;
Rao, AM ;
Grigorian, L ;
Richter, E ;
Eklund, PC .
PHYSICAL REVIEW LETTERS, 1998, 80 (17) :3779-3782
[3]   COBALT-CATALYZED GROWTH OF CARBON NANOTUBES WITH SINGLE-ATOMIC-LAYERWALLS [J].
BETHUNE, DS ;
KIANG, CH ;
DEVRIES, MS ;
GORMAN, G ;
SAVOY, R ;
VAZQUEZ, J ;
BEYERS, R .
NATURE, 1993, 363 (6430) :605-607
[4]   Atomic scale sliding and rolling of carbon nanotubes [J].
Buldum, A ;
Lu, JP .
PHYSICAL REVIEW LETTERS, 1999, 83 (24) :5050-5053
[5]   SCANNING TUNNELING MICROSCOPY STUDIES OF CARBON OXYGEN REACTIONS ON HIGHLY ORIENTED PYROLYTIC-GRAPHITE [J].
CHANG, HP ;
BARD, AJ .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1991, 113 (15) :5588-5596
[6]   Gearlike rolling motion mediated by commensurate contact: Carbon nanotubes on HOPG [J].
Falvo, MR ;
Steele, J ;
Taylor, RM ;
Superfine, R .
PHYSICAL REVIEW B, 2000, 62 (16) :10665-10667
[7]   VAPOR-CONDENSATION GENERATION AND STM ANALYSIS OF FULLERENE TUBES [J].
GE, MH ;
SATTLER, K .
SCIENCE, 1993, 260 (5107) :515-518
[8]   Observation and modeling of single-wall carbon nanotube bend junctions [J].
Han, J ;
Anantram, MP ;
Jaffe, RL ;
Kong, J ;
Dai, H .
PHYSICAL REVIEW B, 1998, 57 (23) :14983-14989
[9]   Deformation of carbon nanotubes by surface van der Waals forces [J].
Hertel, T ;
Walkup, RE ;
Avouris, P .
PHYSICAL REVIEW B, 1998, 58 (20) :13870-13873
[10]   Controlled cluster condensation into preformed nanometer-sized pits [J].
Hovel, H ;
Becker, T ;
Bettac, A ;
Reihl, B ;
Tschudy, M ;
Williams, EJ .
JOURNAL OF APPLIED PHYSICS, 1997, 81 (01) :154-158