ABSTRACT The photocatalytic reduction of CO 2 to CH 4 is essential for carbon neutrality but remains challenging due to the high stability of CO 2 and the complex multi‑electron pathway, typically leading to CO as the dominant product with low CH 4 selectivity. Herein, a bifunctional Ag‑loaded, Cu‑doped Ag 2 S (ACAS) hollow‑sphere cocatalyst is fabricated on ZnIn 2 S 4 (ZIS) nanoflowers via a self‑templated ion‑exchange strategy. Under simulated sunlight, ACAS/ZIS achieves an outstanding CH 4 evolution rate of 145.2 µmol·g −1 ·h −1 with 100% selectivity. This performance stems from a unique “light‑electricity‑heat” synergy: the intrinsic dipole field in ZIS drives directional electron migration to ACAS, while the full‑spectrum absorption of ACAS induces a localized photothermal effect that supplies energy for C─O bond cleavage. In‐situ spectroscopy and theoretical calculations reveal that Cu sites dominate CO 2 adsorption and lower the energy barrier for *COOH formation. Concurrently, in‐situ generated metallic Ag nanoparticles cooperate with Cu sites to create a dual‑active‑site interface, activating *CO and dramatically reducing the rate‑determining barrier for its hydrogenation to *CHO. This work establishes a catalyst design paradigm that integrates localized photothermal heating with atomically engineered bifunctional sites to drive the highly selective deep reduction of CO 2 to CH 4 .
Xiaochan et al. (Thu,) studied this question.
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