光电阴极
材料科学
氧还原反应
还原(数学)
异质结
氧还原
光电子学
对偶(语法数字)
氧气
工程物理
纳米技术
电极
电化学
电子
几何学
数学
化学
有机化学
物理化学
艺术
工程类
文学类
物理
量子力学
作者
Ming Li,Kun Wang,Tongxin Tang,Yi Wang,Shuqin Song,Shihe Yang
标识
DOI:10.1002/aenm.202503503
摘要
Abstract The oxygen reduction reaction (ORR), as a pivotal cathodic process in energy conversion devices, suffers from intrinsically sluggish kinetics, which severely limits device performance. Integrating solar energy through photoelectrochemical (PEC) systems presents a promising strategy to overcome this limitation by enhancing ORR kinetics. Herein, a novel non‐noble metal photocathode (CuO/WO 3 /pTTh) is developed with optimized band alignment via dual heterojunction engineering. The design effectively suppresses electron‐hole recombination, enhances photovoltage generation, and significantly improves electrode stability. Owing to efficient charge transfer and accumulation at the outer layer, the optimized system achieves an exceptional ORR onset potential of 1.05 V vs. RHE (reversible hydrogen electrode) and catalytic efficiency (∼100%) under minimal applied bias. When integrated into a Zn‐air battery, this photoelectrocatalytic configuration delivers a high open‐circuit voltage of 1.5 V, surpassing conventional electrocatalytic systems. Moreover, the CuO/WO 3 /pTTh photocathode enables a higher discharge voltage in the solar‐assist ing Zn‐air battery than most reported systems. This work not only demonstrates the potential of dual heterojunction engineering in CuO‐based photocathodes for solar‐enhancing ORR but also provides fundamental insights for designing next‐generation PEC devices and photo‐assisting energy storage technologies.
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