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Orchestrated Multi-Physics Field-Engineering Toward Valorized C2+ Chemicals from CO2/CH4

Authors: Jinhe Li; Wei Ren; Banghu Wei; Yuan Teng; Weikang Wang; Lele Wang; Qinqin Liu

DOI: 10.1007/s40843-025-3775-3Status: Verified Translated Edition
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Key Findings in This Report

• • Photothermal catalysis achieves 100% CO selectivity in CO2 reduction via dual-plasmon resonance, demonstrating complete suppression of competing H2 evolution under infrared irradiation (Ref. 94). • • Photoelectrocatalytic partial oxidation of methane on BiVO4 with oxygen vacancy-induced defect dipoles yields selective oxygenates, with defect engineering enabling precise control of charge carrier dynamics (Ref. 95). • • Rotating magnetic field-induced electromotive force boosts photocatalytic CO2 reduction rates, with Lorentz force promoting charge separation and enhancing reaction kinetics (Ref. 96). • • Selective light-driven methane oxidation to ethanol on tailored photocatalysts achieves high product selectivity, with C–C coupling facilitated by spin-state manipulation and field-assisted charge transfer (Ref. 97).