Advancing Ion Separation: Covalent-Organic-Framework Membranes for Sustainable Energy and Water Applications.

IF 16.4 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY Accounts of Chemical Research Pub Date : 2024-07-01 DOI:10.1021/acs.accounts.4c00268
Weipeng Xian, Di Wu, Zhuozhi Lai, Sai Wang, Qi Sun
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Abstract

ConspectusMembranes are pivotal in a myriad of energy production processes and modern separation techniques. They are essential in devices for energy generation, facilities for extracting energy elements, and plants for wastewater treatment, each of which hinges on effective ion separation. While biological ion channels show exceptional permeability and selectivity, designing synthetic membranes with defined pore architecture and chemistry on the (sub)nanometer scale has been challenging. Consequently, a typical trade-off emerges: highly permeable membranes often sacrifice selectivity and vice versa. To tackle this dilemma, a comprehensive understanding and modeling of synthetic membranes across various scales is imperative. This lays the foundation for establishing design criteria for advanced membrane materials. Key attributes for such materials encompass appropriately sized pores, a narrow pore size distribution, and finely tuned interactions between desired permeants and the membrane. The advent of covalent-organic-framework (COF) membranes offers promising solutions to the challenges faced by conventional membranes in selective ion separation within the water-energy nexus. COFs are molecular Legos, facilitating the precise integration of small organic structs into extended, porous, crystalline architectures through covalent linkage. This unique molecular architecture allows for precise control over pore sizes, shapes, and distributions within the membrane. Additionally, COFs offer the flexibility to modify their pore spaces with distinct functionalities. This adaptability not only enhances their permeability but also facilitates tailored interactions with specific ions. As a result, COF membranes are positioned as prime candidates to achieve both superior permeability and selectivity in ion separation processes.In this Account, we delineate our endeavors aimed at leveraging the distinctive attributes of COFs to augment ion separation processes, tackling fundamental inquiries while identifying avenues for further exploration. Our strategies for fabricating COF membranes with enhanced ion selectivity encompass the following: (1) crafting (sub)nanoscale ion channels to enhance permselectivity, thereby amplifying energy production; (2) implementing a multivariate (MTV) synthesis method to control charge density within nanochannels, optimizing ion transport efficiency; (3) modifying the pore environment within confined mass transfer channels to establish distinct pathways for ion transport. For each strategy, we expound on its chemical foundations and offer illustrative examples that underscore fundamental principles. Our efforts have culminated in the creation of groundbreaking membrane materials that surpass traditional counterparts, propelling advancements in sustainable energy conversion, waste heat utilization, energy element extraction, and pollutant removal. These innovations are poised to redefine energy systems and industrial wastewater management practices. In conclusion, we outline future research directions and highlight key challenges that need addressing to enhance the ion/molecular recognition capabilities and practical applications of COF membranes. Looking forward, we anticipate ongoing advancements in functionalization and fabrication techniques, leading to enhanced selectivity and permeability, ultimately rivaling the capabilities of biological membranes.

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推进离子分离:用于可持续能源和水应用的共价-有机框架膜。
Conspectus 膜在无数能源生产过程和现代分离技术中起着举足轻重的作用。它们在能源生产设备、能源元素提取设施和废水处理设备中都是必不可少的,而每种设备都取决于有效的离子分离。虽然生物离子通道显示出卓越的渗透性和选择性,但在纳米(亚)尺度上设计具有确定孔结构和化学性质的合成膜一直是一项挑战。因此,出现了一个典型的权衡问题:高渗透性膜通常会牺牲选择性,反之亦然。要解决这一难题,就必须全面了解各种尺度的合成膜并对其进行建模。这为建立先进膜材料的设计标准奠定了基础。此类材料的关键属性包括孔径大小适当、孔径分布窄以及所需渗透物与膜之间的相互作用经过微调。共价-有机框架(COF)膜的出现为解决传统膜在水-能源关系中选择性离子分离所面临的挑战提供了前景广阔的解决方案。COF 是分子乐高积木,可通过共价连接将小型有机结构精确整合到扩展的多孔晶体结构中。这种独特的分子结构可以精确控制膜内孔隙的大小、形状和分布。此外,COF 还能灵活地改变其具有独特功能的孔隙空间。这种适应性不仅增强了它们的渗透性,还有利于与特定离子进行量身定制的相互作用。因此,COF 膜被定位为在离子分离过程中实现卓越渗透性和选择性的主要候选材料。在本报告中,我们阐述了旨在利用 COF 的独特属性来增强离子分离过程的努力,在解决基本问题的同时确定了进一步探索的途径。我们制造具有增强离子选择性的 COF 膜的策略包括以下几个方面:(1) 制作(亚)纳米级离子通道,以增强过选择性,从而放大能量产生;(2) 采用多元(MTV)合成方法控制纳米通道内的电荷密度,优化离子传输效率;(3) 改变封闭传质通道内的孔隙环境,以建立独特的离子传输路径。对于每种策略,我们都阐述了其化学基础,并提供了强调基本原理的示例。我们的努力最终创造出了超越传统膜材料的突破性膜材料,推动了可持续能源转换、废热利用、能源元素提取和污染物去除领域的进步。这些创新有望重新定义能源系统和工业废水管理实践。最后,我们概述了未来的研究方向,并强调了需要解决的关键挑战,以增强 COF 膜的离子/分子识别能力和实际应用。展望未来,我们预计功能化和制造技术将不断进步,从而提高选择性和渗透性,最终与生物膜的能力相媲美。
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来源期刊
Accounts of Chemical Research
Accounts of Chemical Research 化学-化学综合
CiteScore
31.40
自引率
1.10%
发文量
312
审稿时长
2 months
期刊介绍: Accounts of Chemical Research presents short, concise and critical articles offering easy-to-read overviews of basic research and applications in all areas of chemistry and biochemistry. These short reviews focus on research from the author’s own laboratory and are designed to teach the reader about a research project. In addition, Accounts of Chemical Research publishes commentaries that give an informed opinion on a current research problem. Special Issues online are devoted to a single topic of unusual activity and significance. Accounts of Chemical Research replaces the traditional article abstract with an article "Conspectus." These entries synopsize the research affording the reader a closer look at the content and significance of an article. Through this provision of a more detailed description of the article contents, the Conspectus enhances the article's discoverability by search engines and the exposure for the research.
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