过氧化氢
光催化
催化作用
化学
产量(工程)
氧气
制氢
纳米尺度
析氧
氧化还原
化学工程
量子产额
纳米技术
可持续生产
氧还原
沸石
材料科学
氢
还原(数学)
分解水
生产(经济)
反应条件
光化学
降级(电信)
组合化学
量子效率
作者
Xiaoshan Zheng,Zhenhua Pan,Junie Jhon M. Vequizo,Rito Yanagi,Junsheng He,Akikra Yamakata,Baoliang Chen,Chiheng Chu
标识
DOI:10.1038/s41467-025-66977-1
摘要
Solar-driven H2O2 production is a promising sustainable technology, yet its efficiency is hindered by a fundamental conflict. While the oxygen reduction reaction requires a high O2 concentration, this very condition suppresses the water oxidation half-reaction. This trade-off is intrinsic to conventional photocatalysts, where both reaction centers are integrated on a single nanoparticle. Here we present a nano-assembly strategy that addresses this trade-off. We use a faceted photocatalyst to spatially segregate the sites for water oxidation and oxygen reduction. The reduction sites are selectively functionalized with zeolite nanovessels as O2 traps. This design enhances the local O2 concentration where needed, without suppressing the competing oxidation reaction. The optimized system exhibits a 3.1-fold increase in H2O2 production, achieving a solar-to-chemical efficiency of 1.05% and an apparent quantum yield of 15.9% at 420 nm. Successful operation in an outdoor panel reactor demonstrates the approach's scalability. This study underscores the role of local mass regulation in enhancing H2O2 generation and provides a strategic framework for designing photocatalytic systems.
科研通智能强力驱动
Strongly Powered by AbleSci AI