Issue 5, 2012

Long-distance energy transfer photosensitizers arising in hybrid nanoparticles leading to fluorescence emission and singlet oxygen luminescence quenching

Abstract

This paper presents energy transfer occurring in small organically modified core–shell nanoparticles (core lanthanide oxide, shell polysiloxane) (diameter < 10 nm) conjugated with photosensitizers designed for photodynamic therapy applications. These nanoparticles covalently encapsulate a photosensitizing PDT drug in different concentrations. Stable dispersions of the nanoparticles were prepared and the photophysical properties of the photosensitizers were studied and compared to those of the photosensitizers in solution. Increasing the photosensitizer concentration in the nanoparticles was not found to cause any changes in the absorption properties while fluorescence and singlet oxygen quantum yields decreased. As a possible explanation, we have suggested that both long distance energy transfer such as FRET and self-quenching could occur into the nanoparticles. A simple “trend” model of this kind of energy transfer complies with results of experiments on steady state fluorescence and singlet oxygen luminescence.

Graphical abstract: Long-distance energy transfer photosensitizers arising in hybrid nanoparticles leading to fluorescence emission and singlet oxygen luminescence quenching

Article information

Article type
Paper
Submitted
30 Sep 2011
Accepted
25 Jan 2012
First published
24 Feb 2012

Photochem. Photobiol. Sci., 2012,11, 803-811

Long-distance energy transfer photosensitizers arising in hybrid nanoparticles leading to fluorescence emission and singlet oxygen luminescence quenching

A. Sève, P. Couleaud, F. Lux, O. Tillement, P. Arnoux, J. André and C. Frochot, Photochem. Photobiol. Sci., 2012, 11, 803 DOI: 10.1039/C2PP05324A

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