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      Quantum confined electron-phonon interaction in silicon nanocrystals.

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          Abstract

          We study the micro-Raman spectra of colloidal silicon nanocrystals as a function of size, excitation wavelength, and excitation intensity. We find that the longitudinal optical (LO) phonon spectrum is asymmetrically broadened toward the low energy side and exhibits a dip or antiresonance on the high-energy side, both characteristics of a Fano line shape. The broadening depends on both nanocrystal size and Raman excitation wavelength. We propose that the Fano line shape results from interference of the optical phonon response with a continuum of electronic states that become populated by intraband photoexcitation of carriers. The asymmetry exhibits progressive enhancement with decreasing particle size and with increasing excitation energy for a given particle size. We compare our observations with those reported for p- and n-doped bulk Si, where Fano interference has also been observed, but we find opposite wavelength dependence of the asymmetry for the bulk and nanocrystalline Si. Our results have important implications for potentially controlling carrier energy relaxation channels in strongly confined Si nanocrystals.

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          Author and article information

          Journal
          Nano Lett.
          Nano letters
          1530-6992
          1530-6984
          Mar 11 2015
          : 15
          : 3
          Affiliations
          [1 ] Chemistry & Nanoscience Center, National Renewable Energy Laboratory , Golden, Colorado 80401, United States.
          Article
          10.1021/nl503671n
          25626139
          fa3c4e8a-780e-45ee-8929-42d451848635
          History

          Electron−phonon coupling,Fano-interference,Raman spectroscopy,carrier energy relaxation,silicon nanocrystals

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