4.8 Article

Doping and Quantum Confinement Effects in Single Si Nanocrystals Observed by Scanning Tunneling Spectroscopy

Journal

NANO LETTERS
Volume 13, Issue 6, Pages 2516-2521

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/nl400570p

Keywords

Silicon nanocrystals; quantum confinement; scanning-tunneling-spectroscopy; surface-doping; photoluminescence

Funding

  1. Israel Science Foundation
  2. Harry de Jur Chair in Applied Science
  3. Enrique Berman Chair in Solar Energy Research
  4. Natural Sciences and Engineering Research Council of Canada (NSERC)
  5. Canada Foundation for Innovation (CFI)
  6. Alberta Science and Research Investment Program (ASRIP)
  7. NSERC CGSD program
  8. Killiam Foundation

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We have applied scanning tunneling spectroscopy in studies of the electronic level structure of surface-functionalized colloidal Si nanocrystals (Si-NCs) as a function of their size for various capping ligands. The energy gaps extracted from the tunneling spectra increase with decreasing NC size, manifesting the effect of quantum confinement. This is consistent with the blueshift revealed by photoluminescence (PL) from dodecene functionalized Si-NCs. The tunneling spectra measured on NCs functionalized with NH4Br or allylamine show band-edge shifts toward higher energies, akin to p-type doping. This behavior can be accounted for by the combined contributions of the ligands' dipole moments and charge transfer between a Si-NC and its surface groups. Concomitantly, size-independent PL spectra, which cannot be associated with NC band gap variations, were observed for the latter Si-NCs.

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