Growth temperature effect on a self-assembled SiC nanostructure

被引:0
|
作者
Matsumoto, T. [1 ]
Kiuchi, M. [1 ]
Sugimoto, S. [2 ]
Goto, S. [2 ]
机构
[1] Spec. Div. for Green Life Technology, Natl. Inst. Adv. Indust. Sci./T., 1-8-31 Midorigaoka, Ikeda, Osaka 563-8577, Japan
[2] Sci./Technol. Ctr. Atoms, M./I.C., Graduate School of Engineering, Osaka University, 2-1 Yamada-oka, Suita, Osaka 565-0871, Japan
基金
日本学术振兴会;
关键词
Atomic force microscopy - Crystal structure - Epitaxial growth - Ion beams - Low energy electron diffraction - Nanostructured materials - Nanotechnology - Organometallics - Scanning electron microscopy - Self assembly - Sensitivity analysis;
D O I
10.1016/j.tsf.2004.06.009
中图分类号
学科分类号
摘要
Self-assembled nanostructure fabrication technology holds much potential to further the interests of nanoscience and nanotechnology. Using a low-energy mass-selected ion beam deposition system, we fabricated self-assembled silicon carbide (SiC) nanotiles. Methylsilicenium ions (SiCH3+) used as single precursors were generated from dimethylsilane (SiH 2(CH3)2). Low-energy SiCH3 + ions (100 eV) were deposited on a Si(100) substrate at 500-600 °C. The characteristics of the self-assembled SiC nanotiles were analyzed by reflection high-energy electron diffraction (RHEED), a scanning electron microscope (SEM) and an atomic force microscope (AFM). The self-assembled SiC nanostructure displayed the properties of a zinc-blende structure (3C-SiC) and heteroepitaxial growth. The shape of the self-assembled SiC nanotiles was rectangular with an edge length of 150-200 nm and a height of 10-30 nm. Optimum temperature was found to be 600 °C due to the sensitivity of crystal quality and shape of the self-assembled SiC nanotiles to growth temperature. © 2004 Elsevier B.V. All rights reserved.
引用
收藏
页码:211 / 214
相关论文
共 50 条
  • [1] Growth temperature effect on a self-assembled SiC nanostructure
    Matsumoto, T
    Kiuchi, M
    Sugimoto, S
    Goto, S
    THIN SOLID FILMS, 2004, 464 : 211 - 214
  • [2] Self-assembled nanostructure of Au nanoparticles on a self-assembled monolayer
    Wakamatsu, S
    Nakada, J
    Fujii, S
    Akiba, U
    Fujihira, M
    ULTRAMICROSCOPY, 2005, 105 (1-4) : 26 - 31
  • [3] Effect of Reaction Temperature on Growth of Organosilane Self-Assembled Monolayers
    Lee, Sunhyung
    Ishizaki, Takahiro
    Saito, Nagahiro
    Takai, Osamu
    JAPANESE JOURNAL OF APPLIED PHYSICS, 2008, 47 (08) : 6442 - 6447
  • [4] Effect of reaction temperature on growth of organosilane self-assembled monolayers
    Lee, Sunhyung
    Ishizaki, Takahiro
    Saito, Nagahiro
    Takai, Osamu
    Japanese Journal of Applied Physics, Part 1: Regular Papers and Short Notes and Review Papers, 2008, 47 (8 PART 1): : 6442 - 6447
  • [5] ''Coulomb staircase'' at room temperature in a self-assembled molecular nanostructure
    Andres, RP
    Bein, T
    Dorogi, M
    Feng, S
    Henderson, JI
    Kubiak, CP
    Mahoney, W
    Osifchin, RG
    Reifenberger, R
    SCIENCE, 1996, 272 (5266) : 1323 - 1325
  • [6] Growth of self-assembled copper nanostructure on conducting polymer by electrodeposition
    Sarkar, DK
    Zhou, XJ
    Tannous, A
    Louie, M
    Leung, KT
    SOLID STATE COMMUNICATIONS, 2003, 125 (7-8) : 365 - 368
  • [7] Self-assembled silicon nanostructure growth by electron beam annealing
    Johnson, S
    Markwitz, A
    Rudolphi, M
    Baumann, H
    Kuo, PY
    Blaikie, R
    Smart Materials III, 2005, 5648 : 294 - 300
  • [8] Evolution of Self-assembled Nanostructure in Glass
    Shimotsuma, Y.
    Asai, T.
    Miura, K.
    Hirao, K.
    Kazansky, P. G.
    JOURNAL OF LASER MICRO NANOENGINEERING, 2012, 7 (03): : 339 - 344
  • [9] Electrochemically self-assembled nanostructure arrays
    Stefanita, CG
    Pramanik, S
    Banerjee, A
    Sievert, M
    Baski, AA
    Bandyopadhyay, S
    JOURNAL OF CRYSTAL GROWTH, 2004, 268 (3-4) : 342 - 345
  • [10] Self-assembled peptides: from nanostructure to bioactivity
    Hamley, Ian W.
    INTERFACE FOCUS, 2017, 7 (06)