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Energetically efficient electrochemically tunable affinity separation using multicomponent polymeric nanostructures for water treatment

机译:使用多组分聚合物纳米结构进行水处理的高效高效的电化学可调亲和分离

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摘要

We describe a water treatment strategy, electrochemically tunable affinity separation (ETAS), which, unlike other previously developed electrochemical processes, targets uncharged organic pollutants in water. Key to achieving ETAS resides in the development of multicomponent polymeric nanostructures that simultaneously exhibit the following characteristics: an oxidation-state dependent affinity towards neutral organics, high porosity for sufficient adsorption capacity, and high conductivity to permit electrical manipulation. A prototype ETAS adsorbent composed of nanostructured binary polymeric surfaces that can undergo an electrically-induced hydrophilic–hydrophobic transition can provide programmable control of capture and release of neutral organics in a cyclic fashion. A quantitative energetic analysis of ETAS offers insights into the tradeoff between energy cost and separation extent through manipulation of electrical swing conditions. We also introduce a generalizable materials design approach to improve the separation degree and energetic efficiency simultaneously, and identify the critical factors responsible for such enhancement via redox electrode simulations and theoretical calculations of electron transfer kinetics. The effect of operation mode and multistage configuration on ETAS performance is examined, highlighting the practicality of ETAS and providing useful guidelines for its operation at large scale. The ETAS approach is energetically efficient, environmentally friendly, broadly applicable to a wide range of organic contaminants of various molecular structures, hydrophobicity and functionality, and opens up new avenues for addressing the urgent, global challenge of water purification and wastewater management.
机译:我们描述了一种水处理策略,即电化学可调亲和分离(ETAS),与其他先前开发的电化学过程不同,该策略以水中的不带电荷有机污染物为目标。实现ETAS的关键在于多组分聚合物纳米结构的开发,该结构同时具有以下特征:对中性有机物的氧化态依赖性亲和力,高孔隙率以提供足够的吸附能力以及高电导率以允许电操纵。由纳米结构的二元聚合物表面组成的原型ETAS吸附剂可以经历电诱导的亲水-疏水转变,可以以循环方式提供对中性有机物的捕获和释放的可编程控制。 ETAS的定量能量分析可通过操纵电动摆动条件,深入了解能源成本与分离程度之间的折衷。我们还介绍了一种可推广使用的材料设计方法,以同时提高分离度和能量效率,并通过氧化还原电极模拟和电子转移动力学的理论计算来确定造成这种增强的关键因素。研究了操作模式和多阶段配置对ETAS性能的影响,突出了ETAS的实用性,并为大规模操作提供了有用的指导。 ETAS方法节能高效,环保,广泛适用于各种分子结构,疏水性和功能性的有机污染物,为解决水净化和废水管理的紧急全球挑战开辟了新途径。

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  • 来源
    《Energy & environmental science》 |2018年第10期|2954-2963|共10页
  • 作者单位

    Department of Chemical Engineering, Massachusetts Institute of Technology;

    Department of Chemical Engineering, Massachusetts Institute of Technology;

    Department of Chemical Engineering, Massachusetts Institute of Technology;

    Department of Chemical Engineering, Massachusetts Institute of Technology;

    Department of Chemical Engineering, Massachusetts Institute of Technology;

    Department of Chemical Engineering, Massachusetts Institute of Technology;

    Department of Chemical Engineering, Massachusetts Institute of Technology;

    Department of Chemical Engineering, Massachusetts Institute of Technology;

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