磷酸盐
膜
化学
化学工程
渗透
降水
纳米颗粒
资源回收
膜转运
纳米技术
磷
离子运输机
电化学
离子
材料科学
结晶
作者
Lei Xia,Yangbo Qiu,Qingzhi Liu,Mengjiao Guan,Xi Zhang,Raf Dewil,Jin Shang,Yan Zhao,Bart Van der Bruggen,Chuyang Y. Tang
摘要
ABSTRACT Efficient phosphate recovery from phosphate‐containing wastewater presents a dual opportunity to mitigate environmental pollution and secure nutrient supply for agriculture. Among many recovery methods, electro‐membrane crystallization (e‐MC) is a promising strategy for sustainable phosphate recovery, yet the low phosphate throughput of conventional electro‐driven membranes constrains its efficacy. Here, we propose an ion carrier‐to‐carrier hopping transport principle and introduce a nanostructured electro‐driven carrier‐conducting membrane (e‐CCM) engineered with monodispersed electro‐ferrihydrite nanoparticles as a built‐in phosphate carrier. This membrane architecture establishes a coordination environment where ≡FeOH acts as transient phosphate binding sites, and the applied electric field promotes directional phosphate migration, thereby accelerating phosphate permeation. Operated at 5 mA cm −2 , the resulting e‐CCM membrane achieves a phosphate permeation rate of 0.92 mol m −2 h −1 and a recovery rate of 98.8%, outperforming state‐of‐the‐art ion exchange membranes. We further demonstrate scalability by integrating the e‐CCM membrane in e‐MC for processing simulated urine, achieving 93.6% phosphate recovery and the precipitation of high‐purity struvite. This work pioneers a hypothesis of carrier‐conducting construction that synergizes membrane electrochemical transport with chemical affinity, establishing a scalable and energy‐efficient pathway to close the phosphorus loop and advance circular resource economies.
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