The role of ligands in determining the exciton relaxation dynamics in semiconductor quantum dots.
Annu Rev Phys Chem
; 65: 317-39, 2014.
Article
en En
| MEDLINE
| ID: mdl-24364916
This article reviews the mechanisms through which molecules adsorbed to the surfaces of semiconductor nanocrystals, quantum dots (QDs), influence the pathways for and dynamics of intra- and interband exciton relaxation in these nanostructures. In many cases, the surface chemistry of the QDs determines the competition between Auger relaxation and electronic-to-vibrational energy transfer in the intraband cooling of hot carriers, and between electron or hole-trapping processes and radiative recombination in relaxation of band-edge excitons. The latter competition determines the photoluminescence quantum yield of the nanocrystals, which is predictable through a set of mostly phenomenological models that link the surface coverage of ligands with specific chemical properties to the rate constants for nonradiative exciton decay.
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01-internacional
Banco de datos:
MEDLINE
Asunto principal:
Semiconductores
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Puntos Cuánticos
Tipo de estudio:
Prognostic_studies
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Qualitative_research
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En
Revista:
Annu Rev Phys Chem
Año:
2014
Tipo del documento:
Article