Energy transfer with semiconductor nanocrystals

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

202 Scopus Citations
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Author(s)

Detail(s)

Original languageEnglish
Pages (from-to)1208-1221
Journal / PublicationJournal of Materials Chemistry
Volume19
Issue number9
Publication statusPublished - 2009
Externally publishedYes

Abstract

Förster (or fluorescence) resonant energy transfer (FRET) is a powerful spectroscopic technique to study interactions, conformational and distance changes, in hybrid nanosystems. Semiconductor nanocrystals, also known as colloidal quantum dots, are highly efficient fluorophores with a strong band-gap luminescence tuneable by size as a result of the quantum confinement effect. Starting from a short summary on the FRET formalism and on the basic properties of semiconductor nanocrystals, this Feature Article provides an overview of the major classes of hybrid FRET systems with semiconductor nanocrystals as at least one component. Systems under consideration include thin solid films containing differently sized semiconductor nanocrystals, solution-based complexes of differently sized semiconductor nanocrystals, nanocrystal-based bioconjugates, and hybrid structures of semiconductor and gold nanoparticles. We focus in particular on the directional energy transfer in layer-by-layer assembled multilayers of differently sized CdTe semiconductor nanocrystals and on the energy transfer from individual rod-like semiconductor CdSe/CdS nanoantennae to single dye molecules, which can be efficiently controlled by external electric fields leading to the realisation of the FRET optical switch. © 2009 The Royal Society of Chemistry.

Citation Format(s)

Energy transfer with semiconductor nanocrystals. / Rogach, Andrey L.; Klar, Thomas A.; Lupton, John M. et al.
In: Journal of Materials Chemistry, Vol. 19, No. 9, 2009, p. 1208-1221.

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review