Kilin | Photoinduced Processes at Surfaces and in Nanomaterials | Buch | 978-0-8412-3094-1 | www.sack.de

Buch, Englisch, 296 Seiten, Format (B × H): 158 mm x 231 mm, Gewicht: 616 g

Reihe: ACS Symposium Series

Kilin

Photoinduced Processes at Surfaces and in Nanomaterials


Erscheinungsjahr 2016
ISBN: 978-0-8412-3094-1
Verlag: American Chemical Society

Buch, Englisch, 296 Seiten, Format (B × H): 158 mm x 231 mm, Gewicht: 616 g

Reihe: ACS Symposium Series

ISBN: 978-0-8412-3094-1
Verlag: American Chemical Society


This ACS Book presents studies of photoinduced processes in nanomaterials that fall into the category of basic research contributing to solar energy conversion. The team of editors and chapter authors focus on photophysical and photochemical processes at surfaces of semiconductor nanostructures that are related to photovoltaic and photocatalytic applications with a broader focus on time-resolved spectroscopic monitoring of related processes in photoactive materials.

The book reports short, up-to-date reviews, recent experimental data, and computational results that all contribute to an atomistic description of electronic dynamics and charge transfer induced by optical excitations and lattice vibrations.

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Autoren/Hrsg.


Weitere Infos & Material


Dmitri Kilin is an assistant professor of computational chemistry at USD (University of South Dakota). Dr. Kilin has over ten years' experience in modeling of excited state dynamics in photoactive nanomaterials. Kilin completed his undergraduate (1994) and Masters degrees (1996) in Physics from Belarus State University (Minsk, Belarus) and received a doctoral degree from the Chemnitz University of Technology (Chemnitz, Germany) in 2000. After subsequent postdoctoral
internships at the University of Oregon, University of Washington, and University of Florida, he joined the Department of Chemistry at the University of South Dakota as faculty. His current research interests are focused on modeling the photo-induced dynamic processes of charge transfer, nonradiative
charge carrier relaxation, and surface reactions at catalytic sites and interfaces of metal and semiconductor nanomaterials for photovoltaic and photocatalytic solar energy conversion.



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