A Z‐Scheme Heterojunctional Photocatalyst Engineered with Spatially Separated Dual Redox Sites for Selective CO2 Reduction with Water: Insight by In Situ µs‐Transient Absorption Spectra

Author:

Sun Ling1,Zhang Ziqing1,Bian Ji1,Bai Fuquan2,Su Hengwei2,Li Zhijun1,Xie Jijia3,Xu Rongping1,Sun Jianhui1,Bai Linlu1,Chen Cailing4,Han Yu4,Tang Junwang35,Jing Liqiang1ORCID

Affiliation:

1. Key Laboratory of Functional Inorganic Materials Chemistry (Ministry of Education) School of Chemistry and Materials Science International Joint Research Center and Lab for Catalytic Technology Heilongjiang University Harbin 150080 P. R. China

2. International Joint Research Laboratory of Nano‐Micro Architecture Chemistry Institute of Theoretical Chemistry Jilin University Changchun 130021 P. R. China

3. Department of Chemical Engineering University College London Torrington Place London WC1E 7JE UK

4. Advanced Membranes and Porous Materials Center Physical Science and Engineering Division King Abdullah University of Science and Technology (KAUST) Thuwal 23955–6900 Saudi Arabia

5. Industrial catalysis center Department of Chemical Engineering Tsinghua University Beijing 100084 P. R. China

Abstract

AbstractSolar‐driven CO2 reduction by water with a Z‐scheme heterojunction affords an avenue to access energy storage and to alleviate greenhouse gas (GHG) emissions, yet the separation of charge carriers and the integrative regulation of water oxidation and CO2 activation sites remain challenging. Here, a BiVO4/g‐C3N4 (BVO/CN) Z‐scheme heterojunction as such a prototype is constructed by spatially separated dual sites with CoOx clusters and imidazolium ionic liquids (IL) toward CO2 photoreduction. The optimized CoOx‐BVO/CN‐IL delivers an ≈80‐fold CO production rate without H2 evolution compared with urea‐C3N4 counterpart, together with nearly stoichiometric O2 gas produced. Experimental results and DFT calculations unveil the cascade Z‐scheme charge transfer and subsequently the prominent redox co‐catalysis by CoOx and IL for holes‐H2O oxidation and electrons‐CO2 reduction, respectively. Moreover, in situ µs‐transient absorption spectra clearly show the function of each cocatalyst and quantitatively reveal that the resulting CoOx‐BVO/CN‐IL reaches up to the electron transfer efficiency of 36.4% for CO2 reduction, far beyond those for BVO/CN (4.0%) and urea‐CN (0.8%), underlining an exceptional synergy of dual reaction sites engineering. This work provides deep insights and guidelines for the rational design of highly efficient Z‐scheme heterojunctions with precise redox catalytic sites toward solar fuel production.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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