4.8 Article

Explaining the Unusual Photoluminescence of Semiconductor Nanocrystals Doped via Cation Exchange

Journal

NANO LETTERS
Volume 19, Issue 7, Pages 4797-4803

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.nanolett.9b02284

Keywords

semiconductor nanouystals; aliovalent doping; cation exchange; electrostatic force microscopy; nanocrystal charge; symmetry breaking

Funding

  1. National Science Foundation (NSF) [CHE-1609365]
  2. PARADIM Materials Innovation Platform [DMR-1539918]
  3. NSF MRSEC program [DMR-1719875]
  4. NSF GRFP [DGE-1144153]
  5. U.S. Office of Naval Research through the U.S. Naval Research Laboratory's core research program
  6. NSF [EAR-1545637]

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Aliovalent doping of CdSe nanocrystals (NCs) via cation exchange processes has resulted in interesting and novel observations for the optical and electronic properties of the NCs. However, despite over a decade of study, these observations have largely gone unexplained, partially due to an inability to precisely characterize the physical properties of the doped NCs. Here, electrostatic force microscopy was used to determine the static charge on individual, cation-doped CdSe NCs in order to investigate their net charge as a function of added cations. While the NC charge was relatively insensitive to the relative amount of doped cation per NC, there was a remarkable and unexpected correlation between the average NC charge and PL intensity, for all dopant cations introduced. We conclude that the changes in PL intensity, as tracked also by changes in NC charge, are likely a consequence of changes in the NC radiative rate caused by symmetry breaking of the electronic states of the nominally spherical NC due to the Coulombic potential introduced by ionized cations.

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