• DocumentCode
    3541186
  • Title

    Controlled Ge nanowires growth on patterned Au catalyst substrate

  • Author

    Li, C.B. ; Usami, K. ; Mizuta, H. ; Oda, S.

  • Author_Institution
    Quantum Nanoelectron. Res. Center, Tokyo Inst. of Technol., Tokyo, Japan
  • fYear
    2008
  • fDate
    15-16 June 2008
  • Firstpage
    1
  • Lastpage
    2
  • Abstract
    One-dimensional semiconductor nanostructures have attracted much attention because of their potential applications in the design of novel electronic, photonic, and sensing devices. Due to their high mobility of electrons and holes, Ge nanowires are particularly attractive for high-speed field-effect transistors. Moreover, Ge nanowires are potentially useful for building quantum bits because of a long decoherence time due to a predominance of spin-zero nuclei and the advantage of a large excitonic Bohr radius (24.3 nm) which allows the quantum confinement to be observed for relatively large structures and at high temperatures. To realize these applications on a large scale, one of the key challenges is to develop a convenient and parallel method to align bottom-up nanowires into complex patterns or structures. Recently, a "pick and place" method is most widely used for integrating nanowires. However, these processes lack control in precision, repeatability, and easily induce contamination and defects in the wires. It is expected to selectively grow nanowires directly onto desired areas of the substrate and in situ fabricate the nanowire devices. In the VLS (vapor-liquid-solid) CVD process, gold catalysts initiate and guide the growth of nanowires. Hence, precise control the location of nanowires relies on the capability to control the location of Au clusters. In this paper, we demonstrate the well location-controllable Ge nanowires on SiO2 substrate by combining top-down and bottom-up methods.
  • Keywords
    catalysts; chemical vapour deposition; elemental semiconductors; germanium; gold; nanofabrication; nanowires; semiconductor growth; semiconductor quantum wires; 1D semiconductor nanostructures; Au-SiO2; Ge; bottom-up method; controlled Ge nanowires growth; excitonic Bohr radius; gold catalysts; long decoherence time; patterned Au catalyst substrate; pick-and-place method; quantum bits; quantum confinement; spin-zero nuclei; top-down method; vapor-liquid-solid CVD process; Buildings; Charge carrier processes; Electron mobility; FETs; Gold; Nanowires; Potential well; Semiconductor nanostructures; Substrates; Temperature;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Silicon Nanoelectronics Workshop, 2008. SNW 2008. IEEE
  • Conference_Location
    Honolulu, HI
  • Print_ISBN
    978-1-4244-2071-1
  • Type

    conf

  • DOI
    10.1109/SNW.2008.5418417
  • Filename
    5418417