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High Throughput Discovery of Solar Fuels Photoanodes in the CuO–V 2 O 5 System
Author(s) -
Zhou Lan,
Yan Qimin,
Shinde Aniketa,
Guevarra Dan,
Newhouse Paul F.,
BecerraStasiewicz Natalie,
Chatman Shawn M.,
Haber Joel A.,
Neaton Jeffrey B.,
Gregoire John M.
Publication year - 2015
Publication title -
advanced energy materials
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 10.08
H-Index - 220
eISSN - 1614-6840
pISSN - 1614-6832
DOI - 10.1002/aenm.201500968
Subject(s) - materials science , oxidizing agent , solar fuel , band gap , water splitting , photoelectrochemistry , chemical engineering , solar energy , photoelectrochemical cell , x ray photoelectron spectroscopy , electrolyte , nanotechnology , electrochemistry , catalysis , optoelectronics , electrode , chemistry , photocatalysis , engineering , ecology , biochemistry , organic chemistry , biology
Solar photoelectrochemical generation of fuel is a promising energy technology yet the lack of an efficient, robust photoanode remains a primary materials challenge in the development and deployment of solar fuels generators. Metal oxides comprise the most promising class of photoanode materials, but no known material meets the demanding requirements of low band gap energy, photoelectrocatalysis of the oxygen evolution reaction (OER), and stability under highly oxidizing conditions. Here, the identification of new photoelectroactive materials is reported through a strategic combination of combinatorial materials synthesis, high‐throughput photoelectrochemistry, optical spectroscopy, and detailed electronic structure calculations. Four photoelectrocatalyst phases, α ‐Cu 2 V 2 O 7 , β ‐Cu 2 V 2 O 7, γ ‐Cu 3 V 2 O 8 , and Cu 11 V 6 O 26 , are reported with band gap energy at or below 2 eV. The photoelectrochemical properties and 30 min stability of these copper vanadate phases are demonstrated in three different aqueous electrolytes (pH 7, pH 9, and pH 13), with select combinations of phase and electrolyte exhibiting unprecedented photoelectrocatalytic stability for metal oxides with sub‐2 eV band gap. Through integration of experimental and theoretical techniques, new structure‐property relationships are determined and establish CuO–V 2 O 5 as the most prominent composition system for OER photoelectrocatalysts, providing crucial information for materials genomes initiatives and paving the way for continued development of solar fuels photoanodes.