Photoelectrocatalysis: Principles, nanoemitter applications and routes to bio-inspired systems

dc.contributor.author

Lewerenz, HJ

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Heine, C

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Skorupska, K

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Szabo, N

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Hannappel, T

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Vo-Dinh, T

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Campbell, SA

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Klemm, HW

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Muñoz, AG

dc.date.accessioned

2011-06-21T17:27:12Z

dc.date.issued

2010-06-11

dc.description.abstract

An overview on processes that are relevant in light-induced fuel generation, such as water photoelectrolysis or carbon dioxide reduction, is given. Considered processes encompass the photophysics of light absorption, excitation energy transfer to catalytically active sites and interfacial reactions at the catalyst/solution phase boundary. The two major routes envisaged for realization of photoelectrocatalytic systems, e.g. bio-inspired single photon catalysis and multiple photon inorganic or hybrid tandem cells, are outlined. For development of efficient tandem cell structures that are based on non-oxidic semiconductors, stabilization strategies are presented. Physical surface passivation is described using the recently introduced nanoemitter concept which is also applicable in photovoltaic (solid state or electrochemical) solar cells and first results with p-Si and p-InP thin films are presented. Solar-to-hydrogen efficiencies reach 12.1% for homoepitaxial InP thin films covered with Rh nanoislands. In the pursuit to develop biologically inspired systems, enzyme adsorption onto electrochemically nanostructured silicon surfaces is presented and tapping mode atomic force microscopy images of heterodimeric enzymes are shown. An outlook towards future envisaged systems is given. © 2010 The Royal Society of Chemistry.

dc.description.version

Version of Record

dc.identifier.eissn

1754-5706

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1754-5692

dc.identifier.uri

https://hdl.handle.net/10161/4115

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en_US

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Royal Society of Chemistry (RSC)

dc.relation.ispartof

Energy and Environmental Science

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10.1039/b915922n

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Energy & Environmental Science

dc.title

Photoelectrocatalysis: Principles, nanoemitter applications and routes to bio-inspired systems

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dc.type

Journal article

duke.date.pubdate

2010-6-0

duke.description.issue

6

duke.description.volume

3

pubs.begin-page

748

pubs.end-page

760

pubs.issue

6

pubs.organisational-group

Biomedical Engineering

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Chemistry

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Duke

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Duke Cancer Institute

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Institutes and Centers

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Pratt School of Engineering

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School of Medicine

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Trinity College of Arts & Sciences

pubs.publication-status

Published

pubs.volume

3

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