Utilize este identificador para referenciar este registo: https://hdl.handle.net/1822/43860

TítuloImpact of D₂O/H₂O solvent exchange on the emission of HgTe and CdTe quantum dots: Polaron and energy transfer effects
Autor(es)Wen, Qiannan
Kershaw, Stephen V.
Kalytchuk, Sergii
Zhovtiuk, Olga
Reckmeier, Claas
Vasilevskiy, Mikhail
Rogach, Andrey L.
Palavras-chaveIR quantum dots
Energy transfer mechanisms,
Exciton-polaron interactions
Ligand and solvent vibrational modes
Recombination rate effects
Isotopic solvent effects
Data9-Mar-2016
EditoraAmerican Chemical Society
RevistaACS Nano
CitaçãoWen, Q., Kershaw, S. V., Kalytchuk, S., Zhovtiuk, O., Reckmeier, C., Vasileyskiy, M. I., & Rogach, A. L. (2016). Impact of D2O/H2O Solvent Exchange on the Emission of HgTe and CdTe Quantum Dots: Polaron and Energy Transfer Effects. Acs Nano, 10(4), 4301-4311. doi: 10.1021/acsnano.5b07852
Resumo(s)We have studied light emission kinetics and analyzed carrier recombination channels in HgTe quantum dots that were initially grown in H2O. When the solvent is replaced by D2O, the nonradiative recombination rate changes highlight the role of the vibrational degrees of freedom in the medium surrounding the dots, including both solvent and ligands. The contributing energy loss mechanisms have been evaluated by developing quantitative models for the nonradiative recombination via (i) polaron states formed by strong coupling of ligand vibration modes to a surface trap state (nonresonant channel) and (ii) resonant energy transfer to vibration modes in the solvent. We conclude that channel (i) is more important than (ii) for HgTe dots in either solution. When some of these modes are removed from the relevant spectral range by the H2O to D2O replacement, the polaron effect becomes weaker and the nonradiative lifetime increases. Comparisons with CdTe quantum dots (QDs) served as a reference where the resonant energy loss (ii) a priori was not a factor, also confirmed by our experiments. The solvent exchange (H2O to D2O), however, is found to slightly increase the overall quantum yield of CdTe samples, probably by increasing the fraction of bright dots in the ensemble. The fundamental study reported here can serve as the foundation for the design and optimization principles of narrow bandgap quantum dots aimed at applications in long wavelength colloidal materials forinfrared light emitting diodes and photodetectors.
TipoArtigo
URIhttps://hdl.handle.net/1822/43860
DOI10.1021/acsnano.5b07852
ISSN1938-0851
Versão da editorapubs.acs.org/journal/
Arbitragem científicayes
AcessoAcesso aberto
Aparece nas coleções:CDF - CEP - Artigos/Papers (with refereeing)

Ficheiros deste registo:
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ACS NANO accepted manuscript.pdfACS NANO accepted manuscript688,22 kBAdobe PDFVer/Abrir
Supplementary Material_v5.pdfSupplementary Material462,66 kBAdobe PDFVer/Abrir

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