4.8 Article

Bridging electrocatalyst and cocatalyst studies for solar hydrogen production via water splitting

期刊

CHEMICAL SCIENCE
卷 13, 期 10, 页码 2824-2840

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/d1sc06015e

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资金

  1. Artiticial Photosynthesis Project of the New Energy and Industrial Technology Development Organization (NEDO) of Japan
  2. Japan Society for the Promotion of Science (JSPS) KAKENHI [JP19H0563]
  3. Challenging Research (Exploratory) [JP20K21236]

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Solar-driven water-splitting is a promising technology for sustainable energy generation. Hybridizing photocatalysts or photoelectrodes with cocatalysts can enhance efficiency, however, careful consideration is needed due to critical factors with highly-active electrocatalysts. This article summarizes recent advances in electrocatalyst materials and strategies for designing advanced cocatalysts.
Solar-driven water-splitting has been considered as a promising technology for large-scale generation of sustainable energy for succeeding generations. Recent intensive efforts have led to the discovery of advanced multi-element-compound water-splitting electrocatalysts with very small overpotentials in anticipation of their application to solar cell-assisted water electrolysis. Although photocatalytic and photoelectrochemical water-splitting systems are more attractive approaches for scaling up without much technical complexity and high investment costs, improving their efficiencies remains a huge challenge. Hybridizing photocatalysts or photoelectrodes with cocatalysts has been an effective scheme to enhance their overall solar energy conversion efficiencies. However, direct integration of highly-active electrocatalysts as cocatalysts introduces critical factors that require careful consideration. These additional requirements limit the design principle for cocatalysts compared with electrocatalysts, decelerating development of cocatalyst materials. This perspective first summarizes the recent advances in electrocatalyst materials and the effective strategies to assemble cocatalyst/photoactive semiconductor composites, and further discusses the core principles and tools that hold the key in designing advanced cocatalysts and generating a deeper understanding on how to further push the limits of water-splitting efficiency.

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