Room-temperature growth of a carbon nanofiber on the tip of conical carbon protrusions

被引:61
|
作者
Tanemura, M
Okita, T
Yamauchi, H
Tanemura, S
Morishima, R
机构
[1] Nagoya Inst Technol, Grad Sch Engn, Dept Environm Technol, Showa Ku, Nagoya, Aichi 4668555, Japan
[2] Toyota Motor Co Ltd, Higashifuji Tech Ctr, Shizuoka 4101193, Japan
关键词
D O I
10.1063/1.1745109
中图分类号
O59 [应用物理学];
学科分类号
摘要
Glassy carbon was Ar+-ion bombarded with a simultaneous Mo supply under ultrahigh vacuum conditions using a microprotrusion fabrication system that consists of a differentially pumped ion gun and a seed-material supply source. Conical protrusions were formed by sputtering with a seed supply, and carbon nanofibers (CNFs) grew on the tips even at room temperature. The length of CNFs reached up to similar to10 mum, and their diameter was almost uniform (50 nm) in the growth direction. The short CNFs aligned in the ion beam direction, whereas the long ones were non-aligned. The CNF growth on a glassy carbon surface was ascribed to the enhanced surface texturing and to the massive redeposition of C atoms onto cones, both of which are specific to the oblique ion bombardment: The former would lead to an increase in the number of possible nucleation sites for the CNF growth, and the C atoms arising from the latter process would migrate toward the conical tips, thus forming CNFs. (C) 2004 American Institute of Physics.
引用
收藏
页码:3831 / 3833
页数:3
相关论文
共 50 条
  • [21] Conical structure of carbon nanotube tip
    Lordi, V
    Ma, SXC
    Yao, N
    [J]. ELECTRON MICROSCOPY 1998, VOL 3: MATERIALS SCIENCE 2, 1998, : 117 - 118
  • [22] Room-temperature transistor based on a single carbon nanotube
    Tans, SJ
    Verschueren, ARM
    Dekker, C
    [J]. NATURE, 1998, 393 (6680) : 49 - 52
  • [23] CHANGES IN MECHANICAL PROPERTIES OF CARBON MARTENSITE AT ROOM-TEMPERATURE
    ANDREYEV, YG
    SHTREMEL, MA
    KIDIN, IN
    [J]. PHYSICS OF METALS AND METALLOGRAPHY-USSR, 1972, 31 (05): : 194 - &
  • [24] Room-temperature negative differential conductance in carbon nanotubes
    Li, JQ
    Zhang, Q
    [J]. CARBON, 2005, 43 (03) : 667 - 670
  • [25] Room-temperature ferromagnetism in carbon-doped ZnO
    Pan, H.
    Yi, J. B.
    Shen, L.
    Wu, R. Q.
    Yang, J. H.
    Lin, J. Y.
    Feng, Y. P.
    Ding, J.
    Van, L. H.
    Yin, J. H.
    [J]. PHYSICAL REVIEW LETTERS, 2007, 99 (12)
  • [26] RESTRICTED ROTATION ABOUT CARBON-CARBON SINGLE BONDS AT ROOM-TEMPERATURE
    HOWELLS, D
    WARREN, S
    [J]. TETRAHEDRON LETTERS, 1973, (09) : 675 - 678
  • [27] Room-Temperature Production of Ethylene from Carbon Dioxide
    Ogura, Kotaro
    [J]. ENERGY TECHNOLOGY PERSPECTIVES: CONSERVATION, CARBON DIOXIDE REDUCTION AND PRODUCTION FROM ALTERNATIVE SOURCES, 2009, : 25 - 38
  • [28] Possible room-temperature ferromagnetism in hydrogenated carbon nanotubes
    Friedman, Adam L.
    Chun, Hyunkyung
    Jung, Yung Joon
    Heiman, Don
    Glaser, Evan R.
    Menon, Latika
    [J]. PHYSICAL REVIEW B, 2010, 81 (11):
  • [29] Stable and sensitive amino-functionalized graphene/polyaniline nanofiber composites for room-temperature carbon dioxide sensing
    Abdali, Hanan
    Heli, Bentolhoda
    Ajji, Abdellah
    [J]. RSC ADVANCES, 2019, 9 (70) : 41240 - 41247
  • [30] Interface engineering of a 3D carbon nanofiber/iron oxide scaffold for room-temperature ethanol sensing
    Xu, Chengcheng
    Du, Xiaosong
    Huang, Wenjun
    Long, Yin
    Wang, Yang
    [J]. SENSORS AND ACTUATORS B-CHEMICAL, 2024, 419