催化作用
材料科学
聚合
化学工程
饮用水净化
吸附
磁选
亚稳态
水处理
流动化学
废水
选择性
乙二醇
人体净化
工作(物理)
多相催化
污染物
纳米技术
分子
齿合度
污水处理
控制重构
分解水
过渡金属
无机化学
体积流量
作者
H Liu,Jingru Wang,M W Huang,Ai-Yong Zhang,Wei Wang,Lian‐Lian Liu,Yuan Min,Jie‐Jie Chen
摘要
ABSTRACT Polymerization‐based wastewater treatment can couple decontamination with resource recovery at low energy input by transforming dilute organics into separable products. However, it requires selective oxidant activation, and iron, although abundant and industrially relevant, often forms metastable over‐oxidizing adducts that suppress polymerization selectivity. Here, we design and synthesize a distance‐tailored iron single‐atom catalyst (Fe‐SAC) featuring a coupled Fe 1 ‐Fe 2 pair that enables sequential generation of reactive Fe(IV)═O species from peroxymonosulfate. Theory and experiments reveal that formation of the first Fe 1 (IV)═O triggers a spin‐state transition of the adjacent Fe 2 site to a high‐spin configuration, while the finely tuned Fe 1 ─Fe 2 separation geometrically matches the O─O bond in the oxidant. This spin reconfiguration strengthens Fe─O covalency and promotes a superexchange‐assisted pathway, leading to chain formation of Fe 2 (IV)═O through bidentate axial bonding and site‐to‐site electronic coupling. In a continuous‐flow reactor, the scalable Fe‐SAC increases polymerization selectivity from 29.9% to 73.3% and boosts electron utilization from 156.8% to 443.8%. Life‐cycle and techno‐economic analyses further indicate ∼88% and ∼79% reductions in environmental impacts for catalyst synthesis and operation, respectively, together with an estimated ∼90% decrease in pollutant removal cost. This work establishes a design principle to unlock selective Fe(IV)═O chemistry for low‐chemical, polymerization‐based water purification with engineering viability.
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