• DocumentCode
    552371
  • Title

    NeoSilicon based nanoelectromechanical information devices

  • Author

    Oda, Shunri

  • Author_Institution
    Quantum Nanoelectron. Res. Center, Tokyo Inst. of Technol., Tokyo, Japan
  • fYear
    2011
  • fDate
    16-18 June 2011
  • Firstpage
    23
  • Lastpage
    26
  • Abstract
    NeoSilicon is a novel functional material consisted of ensemble of nanocrystalline Si quantum dots with controlled dot size and inter-dot distance. Bandgap of NeoSilicon can be controlled by dot size due to the quantum size effect and transport properties are controlled by inter-dot distance due to the tunneling effect. A variety of new applications, such as ballistic electron surface emitting display, high-efficiency light-emitting devices and photovoltaic devices is expected. MOS and NEM hybrid devices are promising for logic, memory and sensing applications, since new functions with ultralow power consumption are expected. Further scaling of NEM devices may provide novel functions based on unique phonon dispersion characteristics in nm-scale. Precise control of charge states in the multiple-coupled quantum dots is essential for spin based quantum information processing. In this talk, I will introduce fabrication of highly integrated nanocrystalline Si dots with uniform size, non-volatile NEM memory devices with a bistable floating gate, NEM-SET hybrid transistors, and unique transport processes in multiple-coupled quantum dot systems.
  • Keywords
    elemental semiconductors; nanofabrication; nanostructured materials; optical information processing; random-access storage; semiconductor quantum dots; silicon; NEM-SET hybrid transistors; NeoSilicon; ballistic electron surface emitting display; bistable floating gate; charge states precise control; high-efficiency light-emitting devices; logic applications; memory applications; multiple-coupled quantum dot systems; multiple-coupled quantum dots; nanocrystalline quantum dots; nanoelectromechanical information devices; non-volatile NEM memory devices; phonon dispersion; photovoltaic devices; sensing applications; spin based quantum information processing; tunneling effect; ultralow power consumption; Logic gates; Nanoscale devices; Nonvolatile memory; Phonons; Plasmas; Quantum dots; Silicon; NEMS; Silicon nanocrystals; non-volatile memory; quantum information devices;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Mixed Design of Integrated Circuits and Systems (MIXDES), 2011 Proceedings of the 18th International Conference
  • Conference_Location
    Gliwice
  • Print_ISBN
    978-1-4577-0304-1
  • Type

    conf

  • Filename
    6016024