Coupling carbon dioxide reduction with water oxidation in nanoscale photocatalytic assemblies
Author:
Affiliation:
1. Molecular Biophysics and Integrated Bioimaging Division
2. Lawrence Berkeley National Laboratory
3. University of California
4. Berkeley
5. USA
Abstract
Closing the photosynthetic cycle on the nanometer scale under membrane separation of the half reactions for developing scalable artificial photosystems.
Publisher
Royal Society of Chemistry (RSC)
Subject
General Chemistry
Link
http://pubs.rsc.org/en/content/articlepdf/2016/CS/C6CS00062B
Reference206 articles.
1. Robust production of purified H2in a stable, self-regulating, and continuously operating solar fuel generator
2. Resistance and polarization losses in aqueous buffer–membrane electrolytes for water-splitting photoelectrochemical cells
3. Photochemical CO2 Splitting by Metal-to-Metal Charge-Transfer Excitation in Mesoporous ZrCu(I)-MCM-41 Silicate Sieve
4. Anchored Metal-to-Metal Charge-Transfer Chromophores in a Mesoporous Silicate Sieve for Visible-Light Activation of Titanium Centers
5. Triblock Copolymer Syntheses of Mesoporous Silica with Periodic 50 to 300 Angstrom Pores
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