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In-situ construction of BiOBr/UiO-66(Zr/Ce) S-scheme heterojunction for efficient selective photocatalytic CO2 reduction to CO

Mengting Shen, Ling Wang, Man Zhou, Liwei Lin, Li Han, Yanan Wang, Song Xu, Zhongyu Li

2025Fuel5 citationsDOIOpen Access PDF

Abstract

Photocatalytic CO 2 reduction has significant potential in driving carbon fuel conversion. However, the majority of photocatalysts face challenges such as limited product selectivity, poor catalytic behavior, and bad cycle stability. In this paper, an in situ solvothermal method is proposed to synthesize BiOBr/UiO-66(Zr/Ce) composites. During this process, bimetallic UiO-66(Zr/Ce) is modified onto BiOBr , leading to a notable enhancement in the efficiency of photocatalytic CO 2 reduction. Under simulated solar conditions, the optimized 10-BiOBr/UiO-66(Zr/Ce) showed a CO yield of 94.89 μmol·g −1 ·h −1 with an 82.89 % selectivity. Notably, the electron consumption rate (R electron ) of 228.98 μmol·g −1 ·h −1 exceeded that of BiOBr and UiO-66 (Zr/Ce) by factors of 10.2 and 10.4, respectively. Meanwhile, the 10-BiOBr/UiO-66(Zr/Ce) composite demonstrated excellent stability over multiple catalytic cycles. The superior performance of the BiOBr/UiO-66(Zr/Ce) heterojunction stems from its close interfacial contact, which promotes interfacial electron transfer and space charge separation. In addition, the common mechanism of Ce 4+ /Ce 3+ redox cycling and S-scheme heterojunction greatly maintains the strong redox capacity of the photogenerated carriers . This study demonstrates its great potential in photocatalytic CO 2 reduction and provides a new strategy for designing stable and efficient catalysts.

Topics & Concepts

In situPhotocatalysisHeterojunctionReduction (mathematics)Materials scienceChemical engineeringScheme (mathematics)NanotechnologyOptoelectronicsChemistryCatalysisMathematicsOrganic chemistryEngineeringMathematical analysisGeometryAdvanced Photocatalysis TechniquesCatalytic Processes in Materials ScienceCO2 Reduction Techniques and Catalysts