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Tunable electrical properties of silicon nanowires via surface-ambient chemistry

  • G. D. Yuan
  • , Y. B. Zhou
  • , C. S. Guo
  • , W. J. Zhang
  • , Y. B. Tang
  • , Y. Q. Li
  • , Z. H. Chen
  • , Z. B. He
  • , X. J. Zhang
  • , P. F. Wang
  • , I. Bello
  • , R. Q. Zhang
  • , C. S. Lee
  • , S. T. Lee
  • City University of Hong Kong
  • CAS - Technical Institute of Physics and Chemistry
  • Soochow University

科研成果: 期刊稿件文章同行评审

摘要

P-Type surface conductivity is a uniquely important property of hydrogen-terminated diamond surfaces. In this work, we report similar surface-dominated electrical properties in silicon nanowires (SiNWs). Significantly, we demonstrate tunable and reversible transition of p +-p-i-n-n+ conductance in nominally intrinsic SiNWs via changing surface conditions, in sharp contrast to the only p-type conduction observed on diamond surfaces. On the basis of Si band energies and the electrochemical potentials of the ambient (pH value)-determined adsorbed aqueous layer, we propose an electron-transfer-dominated surface doping model, which can satisfactorily explain both diamond and silicon surface conductivity. The totality of our observations suggests that nanomaterials can be described as a core-shell structure due to their large surface-to-volume ratio. Consequently, controlling the surface or shell in the core-shell model represents a universal way to tune the properties of nanostructures, such as via surface-transfer doping, and is crucial for the development of nanostructure-based devices.

源语言英语
页(从-至)3045-3052
页数8
期刊ACS Nano
4
6
DOI
出版状态已出版 - 22 6月 2010
已对外发布

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