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Impact of exciton fine structure on the energy transfer in magic-sized (CdSe)13 clusters

  • Jan Bieniek
  • , Woonhyuk Baek
  • , Severin Lorenz
  • , Franziska Muckel
  • , Rachel Fainblat
  • , Taeghwan Hyeon
  • , Gerd Bacher*
  • *Corresponding author for this work
  • University of Duisburg-Essen
  • Seoul National University
  • Korea Basic Science Institute

Research output: Contribution to journalJournal articlepeer-review

Abstract

Magic-sized (CdSe)13 clusters (MSCs) represent a material class at the boundary between molecules and quantum dots that exhibit a pronounced and well separated excitonic fine structure. The characteristic photoluminescence is composed of exciton bandgap emission and a spectrally broad mid-gap emission related to surface defects. Here, we report on a thermally activated energy transfer from fine-structure split exciton states to surface states by using temperature dependent photoluminescence excitation spectroscopy. We demonstrate that the broad mid-gap emission can be suppressed by a targeted Mn-doping of the MSC leading to the characteristic orange luminescence of the 4T16A1 Mn2+ transition. The energy transfer to the Mn2+ states is found to be significantly different than the transfer to the surface defect states, as the activation of the dopant emission requires a spin-conserving charge carrier transfer that only dark excitons can provide. (Figure presented.)

Original languageEnglish
Pages (from-to)10669-10676
Number of pages8
JournalNano Research
Volume17
Issue number12
DOIs
StatePublished - 2024.12

Keywords

  • Mn-doping
  • energy transfer
  • excitonic fine structure
  • magic-sized cluster
  • surface defects

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