Tuning plasmon transitions and their applications in organic photochemistry

Author:

Scaiano Juan C.1,Netto-Ferreira José C.1,Alarcon Emilio1,Billone Paul1,Alejo Carlos J. Bueno1,Crites Charles-Oneil L.1,Decan Matthew1,Fasciani Chiara1,González-Béjar María1,Hallett-Tapley Geniece1,Grenier Michel1,McGilvray Katherine L.1,Pacioni Natalia L.1,Pardoe Andrea1,René-Boisneuf Laetitia1,Schwartz-Narbonne Rachel1,Silvero M. Jazmín1,Stamplecoskie Kevin G.1,Wee Tse-Luen1

Affiliation:

1. 1Department of Chemistry, Centre for Catalysis Research and Innovation, University of Ottawa, Ottawa, Ontario K1N 6N5, Canada

Abstract

The ketone-photoinduced formation of Au, Ag, and Cu nanoparticles from their corresponding ions in solution has been carried out using benzoin photoinitiators. Ketones are good photosensitizers for nanoparticle synthesis not because of the energy they can absorb or deliver, but rather because of the reducing free radicals they can generate. Efficient photochemical nanoparticle generation thus requires a careful selection of substrates and experimental conditions such that free radical generation occurs with high quantum efficiency, where metal ion precursors do not inhibit radical formation. A key consideration to achieve nanoparticle synthesis with short exposure times is to minimize excited-state quenching by metal ions. Applications of nanostructures in catalysis require control of the nanoparticle characteristics, such as dimension, morphology, and surface properties. Part of this article describes the strategies to modify photochemically prepared particles. Finally, we illustrate some of the nanoparticle applications that interest us, with some emphasis on plasmon-mediated processes.

Publisher

Walter de Gruyter GmbH

Subject

General Chemical Engineering,General Chemistry

Reference52 articles.

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2. Chemical Approach to Nanomaterials of Chemistry;Ozin;Royal Society,2005

3. jp;Stamplecoskie;Anis Phys Chem,1403

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