设计具有特定结合位点的膜,实现选择性离子分离

Camille Violet, Akash Ball, Mohammad Heiranian, Luis Francisco Villalobos, Junwei Zhang, Betul Uralcan, Heather Kulik, Amir Haji-Akbari, Menachem Elimelech
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引用次数: 0

摘要

资源回收、中水回用和能源存储技术非常需要一种能够分离大小和电荷相近的离子的新型膜。这些分离要求膜纳米通道同时具有盎司尺度的封闭性和离子选择性结合位点。传统的膜材料设计采用连续、体积平均的特性,无法考虑离子与结合位点之间离散的化学作用。在本视角中,我们介绍了超选择性膜的设计框架,描述了如何选择离子特异性结合位点并将其纳入膜纳米通道。我们首先讨论了离子、官能团和溶剂的化学特征如何影响离子结合能。然后,我们描述了结合能在纳米通道选择性离子传输中的作用,并讨论了位点间距的关键重要性。随后,我们从用于药物发现的机器学习方法中汲取灵感,提出了一种类似的方法来识别具有最佳离子结合亲和力的功能基团。最后,我们概述了在共价有机框架、金属有机框架、二维材料和聚合物等常见纳米结构材料中加入离子特异性结合位点的合成方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Designing membranes with specific binding sites for selective ion separations

Designing membranes with specific binding sites for selective ion separations

Designing membranes with specific binding sites for selective ion separations
A new class of membranes that can separate ions of similar size and charge is highly desired for resource recovery, water reuse and energy storage technologies. These separations require membrane nanochannels with simultaneous ångström-scale confinement and ion-selective binding sites. Conventional membrane material design uses continuous, volume-averaged properties that cannot account for discrete chemical interactions between ions and binding sites. In this Perspective, we present a design framework for ultraselective membranes by describing how to select and incorporate ion-specific binding sites into membrane nanochannels. We begin by discussing how the chemical features of ions, functional groups and solvents impact ion-binding energy. We then describe the role of binding energy in selective ion transport through nanochannels and discuss the critical importance of intersite spacing. Subsequently, we draw inspiration from machine learning methods used for drug discovery and suggest a similar approach to identify functional groups with optimal ion-binding affinity. We conclude by outlining synthetic methods to incorporate ion-specific binding sites into prevalent nanostructured materials such as covalent organic frameworks, metal–organic frameworks, two-dimensional materials and polymers. This Perspective proposes a way to design membranes to separate ions of similar size and charge with a view to their use in resource recovery, water reuse and energy storage technologies.
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