Probabilities for dopant pair-state formation in a nanocrystal: Simulations and theory

J. F. Suyver, R. Meester, J. J. Kelly, and A. Meijerink
Phys. Rev. B 64, 235408 – Published 16 November 2001; Erratum Phys. Rev. B 66, 079901 (2002)
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Abstract

For certain dopants, luminescence measurements allow one to distinguish between single-ion and pair-state dopant emission in a (semiconductor) host. In a bulk crystal the concentration of each of these dopant states can be calculated from the dopant fraction present in the material and is found to correlate with luminescence measurements. However, for a nanocrystalline host lattice, these concentrations cannot be calculated due to the difference in coordination numbers for ions at the surface (a substantial fraction in nanocrystals) and in the bulk. Here simulations of dopant pair-state distributions are presented for a zinc-blende nanocrystal. The probability of finding at least one pair state in the nanocrystal and the percentage of dopants forming part of a pair state were calculated on the basis of a statistical average of 1×105 simulations for the same crystal size and dopant concentration. Furthermore, the distribution of nanocrystal lattice positions over the surface and the bulk of the crystal are computed from the simulations and found to agree well with a first-order theory. Finally, a closed-form approximation of the probabilities (valid in any crystal lattice) and a rigorous upper bound for the error in the approximation are discussed.

  • Received 8 January 2001

DOI:https://doi.org/10.1103/PhysRevB.64.235408

©2001 American Physical Society

Erratum

Authors & Affiliations

J. F. Suyver1,*, R. Meester2, J. J. Kelly1, and A. Meijerink1

  • 1Debye Institute, Physics and Chemistry of Condensed Matter, Utrecht University, P.O. Box 80.000, 3508 TA Utrecht, The Netherlands
  • 2Division of Mathematics and Computer Science, Free University of Amsterdam, De Boelelaan 1081a, 1081 HV Amsterdam, The Netherlands

  • *Corresponding author. FAX: +31 - 30 - 253 2403. Electronic address: j.f.suyver@phys.uu.nl

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Vol. 64, Iss. 23 — 15 December 2001

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