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水凝胶及水凝胶衍生材料在能源和水资源可持续发展中的应用

Hydrogels and Hydrogel-Derived Materials for Energy and Water Sustainability.

机构信息

Materials Science and Engineering Program, Texas Materials Institute, The University of Texas at Austin, Austin, Texas 78712, United States.

出版信息

Chem Rev. 2020 Aug 12;120(15):7642-7707. doi: 10.1021/acs.chemrev.0c00345. Epub 2020 Jul 8.

Abstract

Energy and water are of fundamental importance for our modern society, and advanced technologies on sustainable energy storage and conversion as well as water resource management are in the focus of intensive research worldwide. Beyond their traditional biological applications, hydrogels are emerging as an appealing materials platform for energy- and water-related applications owing to their attractive and tailorable physiochemical properties. In this review, we highlight the highly tunable synthesis of various hydrogels, involving key synthetic elements such as monomer/polymer building blocks, cross-linkers, and functional additives, and discuss how hydrogels can be employed as precursors and templates for architecting three-dimensional frameworks of electrochemically active materials. We then present an in-depth discussion of the structure-property relationships of hydrogel materials based on fundamental gelation chemistry, ultimately targeting properties such as enhanced ionic/electronic conductivities, mechanical strength, flexibility, stimuli-responsiveness, and desirable swelling behavior. The unique interconnected porous structures of hydrogels enable fast charge/mass transport while offering large surface areas, and the polymer-water interactions can be regulated to achieve desirable water retention, absorption, and evaporation within hydrogels. Such structure-derived properties are also intimately coordinated to realize multifunctionality and stability for different target devices. The plethora of stimulating examples is expounded with a focus on batteries, supercapacitors, electrocatalysts, solar water purification, and atmospheric water harvesting, which showcase the unprecedented technological potential enabled by hydrogels and hydrogel-derived materials. Finally, we study the challenges and potential ways of tackling them to reveal the underlying mechanisms and transform the current development of hydrogel materials into sustainable energy and water technologies.

摘要

能源和水对我们的现代社会至关重要,全球范围内正在集中研究可持续能源存储和转换以及水资源管理方面的先进技术。水凝胶由于其吸引人的可调节物理化学性质,除了其传统的生物学应用之外,作为与能源和水相关应用的有吸引力的材料平台也正在兴起。在这篇综述中,我们强调了各种水凝胶的高度可调合成,涉及单体/聚合物构建块、交联剂和功能添加剂等关键合成元素,并讨论了水凝胶如何用作电化学活性材料的三维框架结构的前体和模板。然后,我们根据基础凝胶化学深入讨论了水凝胶材料的结构-性能关系,最终目标是提高离子/电子电导率、机械强度、柔韧性、刺激响应性和理想的溶胀行为等特性。水凝胶的独特互穿多孔结构可实现快速的电荷/质量传输,同时提供大的表面积,并且可以调节聚合物-水相互作用以在水凝胶内实现理想的保水、吸收和蒸发。这种结构衍生的特性也紧密协调,以实现不同目标设备的多功能性和稳定性。我们详细阐述了大量刺激的例子,重点是电池、超级电容器、电催化剂、太阳能水净化和大气水收集,展示了水凝胶和水凝胶衍生材料所带来的前所未有的技术潜力。最后,我们研究了挑战和潜在的解决方法,以揭示潜在机制,并将水凝胶材料的当前发展转化为可持续的能源和水技术。

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