首页|Fabrication of size-controlled hierarchical ZnS@ZnIn2S4 heterostructured cages for enhanced gas-phase CO2 photoreduction

Fabrication of size-controlled hierarchical ZnS@ZnIn2S4 heterostructured cages for enhanced gas-phase CO2 photoreduction

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Designing and constructing advanced heterojunction architectures are desirable for boosting CO2 photoreduction performance of semiconductor photocatalysts. Herein, we have prepared hierarchical ZnS@ZnIn2S4 core-shell cages with controlled particle sizes using sequential synthesis of Zeolitic imidazolate (ZIF-8) polyhedrons, ZnS cages, and ZnIn2S4 nanosheets on the ZnS polyhedron cages. ZIF-8 polyhedrons are firstly synthesized by a liquid-phase approach. The subsequent sulfidation of the ZIF-8 polyhedrons results in the formation of ZnS polyhedron cages, which act as substrates for fabricating ZnS@ZnIn2S4 core-shell cages by growing ZnIn2S4 nanosheets. The size of ZnS cages can be tuned to optimize CO2 photoreduction performance of hierarchical ZnS@ZnIn2S4 core-shell cages. The synergy of the unique hierarchical core-shell cage-like structure and heterojunction composition endows the hybrid catalyst high incident light utilization, abundant active sites, and effective separation of photoexcited charge carriers. Benefiting from these advantages, the optimized hierarchical ZnS@ZnIn2S4 core-shell cages exhibit enhanced performance for CO2 photoreduction with the CO yield of 87.43 mu mol h(-1) g(-1) and 84.3% selectivity, which are much superior to those of single ZnIn2S4 or ZnS. Upon Au decoration, the CO2 photoreduction performance of ZnS@ZnIn2S4 core-shell cages is further enhanced because of the Schottky junctions and surface plasmon resonance effect. (C) 2021 Elsevier Inc. All rights reserved.

ZnSZnIn2S4Heterostructured cagesPhotocatalysisCO2 photoreductionCORE-SHELL NANOPARTICLESDODECAHEDRAL CAGESFACILE SYNTHESISPHOTOCATALYSTSREDUCTIONHETEROJUNCTIONPERFORMANCENANOSHEETSWATER

Chen, Yajie、Du, Lizhi、Wang, Qi、Liu, Xiu、Li, Longge、Tian, Guohui、Zhao, Yumeng

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Heilongjiang Univ

2022

Journal of Colloid and Interface Science

Journal of Colloid and Interface Science

EISCI
ISSN:0021-9797
年,卷(期):2022.605
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