钝化
碱度
电化学
流出物
资源回收
石灰
废水
环境科学
溶解
材料科学
阳极
污水处理
磷酸盐
阴极保护
降水
废物管理
杀生物剂
环境修复
可再生能源
碳纤维
可再生资源
环境工程
作者
Zhengshuo Zhan,Jingwen Lv,Jiyao Liu,W Li,Chongxuan Liu,Yang Lei
标识
DOI:10.1038/s41467-025-67911-1
摘要
Lime-based precipitation, though widely adopted for wastewater phosphorus (P) removal, suffers from surface passivation. The passivation layer inhibits Ca2+ release, forcing excessive dosing while yielding low-quality sludge and effluent with elevated hardness and pH. Limestone, despite its economic and environmental benefits, exhibits limited efficacy under fluctuating alkalinity. Here, we develop a limestone-integrated electrochemical system that spatially decouples the dissolution and precipitation reactions. By strategically positioning limestone at the acidic anode, we ensure sustained Ca2+ release without passivation, while cathodic alkalinity enables efficient P recovery (85.7%). The system produces high-purity products (15.2 wt% P) at low energy consumption (14.8 kWh kg P–1) and delivers superior effluent quality. Beyond its robustness and capacity flexibility over long-term operation, the electrochemical strategy reduces overall costs by 73.2% and carbon emissions by 29.1%, positioning it as a cost-effective and sustainable alternative to traditional lime-based wastewater treatment with remarkable passivation resistance and resource recovery efficiency. A spatially decoupled electrochemical strategy bypasses lime passivation and delivers efficient, cost-effective, and low-carbon phosphorus recovery from wastewater, unlocking progressive water resource recovery and industrial decarbonization.
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