海水
钙钛矿(结构)
光合作用
化学工程
材料科学
化学
催化作用
析氧
无机化学
二氧化碳
作者
Genping Meng,Shuai Wei,Ning Li,Yuhui Yin,Bin Dong,Shihao Sun,Guowen Hu,Hao Wang,Baodui Wang
标识
DOI:10.1038/s41467-026-70503-2
摘要
Lead halide perovskites are promising for artificial photosynthesis but suffer from aqueous instability. Here, we stabilize CsPbI3 quantum dots within a hydrophobic chlorine-functionalized covalent organic framework through multisite atomic-chlorine passivation, forms dual Cl-Pb coordination and Cl-I halogen bonding at the interface. This suppresses ionic migration while creating a gas-solid-liquid triphase interface for enhanced O2 diffusion. The resulting S-scheme heterojunction spatially separates carriers to concurrently drive two-electron oxygen reduction and water oxidation for H2O2 synthesis without sacrificial agents. The system achieves production rates of 20.37 mmol h−1 g−1 in seawater, with a solar-to-chemical conversion efficiency of 1.38%, and operates stably for 20 h. Importantly, natural sunlight tests yield 11.7 mmol L−1 H2O2 in 10 h. Mechanistic studies confirm synergistic interfacial charge transfer and dual-reaction pathways via both oxygen reduction and water oxidation. This work demonstrates an approach for robust perovskite-based photocatalysts toward solar-driven chemical synthesis from seawater. Lead halide perovskites are promising for artificial photosynthesis but are unstable in seawater. Here, the authors report multisite atomic-chlorine passivation to stabilize CsPbI3 quantum dots in a hydrophobic covalent organic framework, enabling efficient H2O2 photosynthesis directly from seawater.
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