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◆ EcoEnergy2026-02-23· Radical

Boosting Water Vapor‐Assisted Methane Photooxidation Over S‐Scheme MIL‐125‐NH <sub>2</sub> (Ti)/WO <sub>3</sub> Heterojunction Photocatalysts

Jia‐Min Cao, Jing Ren, Ya‐Ting Zheng, Yanan Wang, Yanan Wang, Ye Wang, Ye Wang, Wen‐Wen Dong, Jun Zhao, Dong‐Sheng LI, Zhi‐Ming Zhang

原始摘要(英文原文)· Original abstract
ABSTRACT The photocatalytic conversion of methane (CH 4 ) into value‐added oxygenates without overoxidation under mild conditions remains a significant challenge in heterogeneous catalysis. Here, we rationally designed a series of S‐scheme MIL‐125‐NH 2 (Ti)/WO 3 ‐x (MW‐x) heterostructures via electrostatic self‐assembly for efficient CH 4 photooxidation. The direct S‐scheme charge transfer mechanism at the MIL‐125‐NH 2 (Ti)/WO 3 interface enhances spatial separation of photogenerated electron‐hole pairs, thereby optimizing redox efficiency. The WO 3 nanosheets, with their strong oxidative capacity, promote in situ H 2 O 2 generation from water, whereas the Ti 3+ /Ti 4+ redox centers in MIL‐125‐NH 2 (Ti) catalyze H 2 O 2 decomposition into hydroxyl radicals (·OH). These ·OH species efficiently activate the C–H bonds of adsorbed CH 4 , yielding methyl radicals (·CH 3 ). The concurrent generation and coupling of ·OH and ·CH 3 radicals drive selective formation of C 1 oxygenates. Notably, the optimized MW‐3 catalyst exhibits exceptional performance, achieving a total C 1 oxygenate yield of 502.17 μmol·g cat −1 under ambient conditions, surpassing most reported photocatalysts for CH 4 conversion.
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Boosting Water Vapor‐Assisted Methane Photooxidation Over S‐Scheme MIL‐125‐NH <sub>2</sub> (Ti)/WO <sub>3</sub> Heterojunction Photocatalysts — 科研速览 Science Skim