Issue 22, 2022

Coupling of the water-splitting mechanism and doping-mixture method to design a novel Cr-perovskite for rapid and efficient solar thermochemical H2 production

Abstract

Solar thermochemical water-splitting (STWS) via a two-step redox reaction is a promising H2 production technique, but the quantity and performance limitations of perovskite materials motivate the discovery of novel high-performance candidates. Through oxygen vacancy-driven water-splitting mechanism analysis and doping-mixture modification, a Cr-perovskite is designed for STWS cycling. The maximum H2 yield is 449.8 μmol g−1 and the average H2 production rate is 4.5 μmol g−1 min−1, indicating that the excellent comprehensive performance exceeds that of previous study reports. Besides, the designed material shows a stable H2 yield among ten cycles with 0.06% yield loss. Mechanism-supported STWS material design and modification is a desirable route to search for potential materials with promising thermochemical H2 production capacity.

Graphical abstract: Coupling of the water-splitting mechanism and doping-mixture method to design a novel Cr-perovskite for rapid and efficient solar thermochemical H2 production

Supplementary files

Article information

Article type
Research Article
Submitted
10 Jun 2022
Accepted
18 Aug 2022
First published
18 Aug 2022

Inorg. Chem. Front., 2022,9, 5714-5724

Coupling of the water-splitting mechanism and doping-mixture method to design a novel Cr-perovskite for rapid and efficient solar thermochemical H2 production

J. Cong, T. Ma, Z. Chang, J. S. Akhatov, M. Fu and X. Li, Inorg. Chem. Front., 2022, 9, 5714 DOI: 10.1039/D2QI01235A

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