化学
催化作用
过氧化氢
废水
环境化学
环境修复
吸附
污水处理
无机化学
光催化
制氢
污染物
单线态氧
质子化
蒽醌
水处理
双酚A
亚硫酸盐
烟气
地下水修复
电子供体
光化学
饮用水净化
有机质
胺气处理
作者
Yanan Zhang,Yansong Liu,Bowen Zhao,Ruixin Wang,Chang He,Hongyu Liu,Di Sun,Xiaoyu Jin,Shengda Liu,Shuang Liang,Feng Zhang,Zhenhao Zhao,Zhongping Li,Mingxin Huo,Dandan Zhou,Jingjing Jiang,Shuangshi Dong
标识
DOI:10.1021/acs.est.6c06314
摘要
Abstract Photosynthetic hydrogen peroxide (H2O2) production from organic wastewater offers a sustainable alternative to the energy-intensive anthraquinone process, yet it is severely hindered by rapid quenching of reactive precursors by concentrated salts in hypersaline organic wastewater. Inspired by biological metabolic shunts, we propose a catalytic shunt strategy that spatially and functionally separates salts and organic contaminants through dynamic modulation of the catalyst electronic structure. Using an unsaturated Cr single-atom model catalyst, chloride ions (Cl–) are preferentially adsorbed onto active sites to enhance electron enrichment, while organic contaminants serve as proton donors. This system achieves a H2O2 production rate of 1.81 mM g–1 h–1, 172.3-fold higher than that of a representative photocatalytic system in pure water, and complete degradation of bisphenol A within 15 min, without external reagents. Mechanistic studies reveal that Cl– adsorption weakens *OOH binding to promote a two-electron oxygen reduction pathway, while contaminant protonation facilitates interfacial proton-coupled electron transfer. Life cycle assessment demonstrates substantially lower environmental burdens across 17 impact categories and a levelized H2O2 cost of $70.6 per ton, well below the commercial price ($140 per ton). This catalytic shunt paradigm transforms waste into a resource, enabling carbon-minimal, decentralized H2O2 production and sustainable remediation of hypersaline organic wastewater.
科研通智能强力驱动
Strongly Powered by AbleSci AI