乙烯
选择性
化学
卤化
键裂
钴
环境修复
氢
惰性
脱氯作用
组合化学
催化作用
光化学
化学工程
氢键
氧化还原
劈理(地质)
纳米技术
有机化学
环境友好型
地下水修复
电子传输链
电子供体
氯化溶剂
材料科学
工作(物理)
惰性气体
作者
Li Gong,Ke Pan,Zekun Zhao,Yuqing Zhang,Yang Wang,Yang Mu
标识
DOI:10.1021/acs.est.5c15884
摘要
The reductive transformation of persistent halogenated alkanes, such as 1,2-dichloroethane (1,2-DCA), presents a long-standing challenge. Achieving rapid cleavage of the inert C–Cl bond of 1,2-DCA requires forceful electron transfer, but this often accelerates competing hydrogen evolution and ethylene overhydrogenation, undermining the electron efficiency, product selectivity, and long-term stability. Here, we report a mechanochemically engineered zero-valent iron (ZVI) functionalized with electron-localized O–CoN 4 sites that reconciles this conflict of interest, using cobalt tetramethoxyphenylporphyrin as the Co precursor. This architecture maximizes the utilization of Co atoms, resulting in a Co-normalized dechlorination rate 2 to 40 times superior to those of reported benchmarked ZVIs. Spectroscopic and computational analyses reveal that electron accumulation at the Co center reduces the C–Cl bond cleavage barrier while creating proton-limited microenvironments that suppress hydrogen evolution and stabilize ethylene against further reduction. Consequently, the material achieves a 144-fold improvement in electron efficiency and a 65-fold enhancement in ethylene selectivity compared to pristine ZVI. Crucially, the system maintained activity and selectivity under continuous-flow operation and 100 day aging in real groundwater, consistently reducing 1,2-DCA below regulatory thresholds. This work provides a mechanochemically engineered strategy for the selective dehalogenation of halogenated alkanes, advancing sustainable remediation of halogenated pollutants.
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