Reversible Strain-Induced Electron-Hole Recombination in Silicon Nanowires Observed with Femtosecond Pump-Probe Microscopy

Abstract

Strain-induced changes to the electronic structure of nanoscale materials provide a promising avenue for expanding the optoelectronic functionality of semiconductor nanostructures in device applications. Here we use pump probe microscopy with femtosecond temporal resolution and submicron spatial resolution to characterize charge carrier recombination and transport dynamics in silicon nanowires (NWs) locally strained by bending deformation. The electron hole recombination rate increases with strain for values above a threshold of tilde 1% and, in highly strained (tilde 5%) regions of the NW, increases 6-fold. The changes in recombination rate are independent of NW diameter and reversible upon reduction of the applied strain, indicating the effect originates from alterations to the NW bulk electronic structure rather than introduction of defects. The results highlight the strong relationship between strain, electronic structure, and charge carrier dynamics in low-dimensional semiconductor systems, and we anticipate the results will assist the development of strain-enabled optoelectronic devices with indirect-bandgap materials such as silicon.

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Document Details

Document Type
Technical Report
Publication Date
Jan 01, 2014
Accession Number
ADA616567

Entities

People

  • Christopher W. Pinion
  • Erik M. Grumstrup
  • James F. Cahoon John M.
  • James K. Parker
  • Michelle M. Gabriel

Organizations

  • University of North Carolina at Chapel Hill

Tags

Communities of Interest

  • Advanced Electronics

DTIC Thesaurus Topics

  • Band Gaps
  • Band Structures
  • Charge Carriers
  • Crystal Lattices
  • Dynamics
  • Electron Mobility
  • Electronic Mail
  • Electrons
  • Energy Bands
  • Materials
  • Measurement
  • Microscopes
  • Microscopy
  • Mobility
  • Nanowires
  • North Carolina
  • Transport Properties

Fields of Study

  • Materials science

Readers

  • Quantum Dot Semiconductor Device Photonics and Graphene Optoelectronic Materials and THz Physics.
  • Thin Film Deposition Science.

Technology Areas

  • Microelectronics