Materials Design and Assessment of Redox‐Mediated Flow Cell Systems for Enhanced Energy Storage and Conversion

IF 26.8 1区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Zhiyu Wang, Yan Jing, Qing Wang
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Abstract

The transition toward sustainable energy systems necessitates innovations that overcome the limitations of conventional electrochemical systems. Redox‐mediated flow cell systems emerge as a transformative paradigm by decoupling energy storage, conversion, and chemical processes from traditional electrode‐bound reactions. These systems employ soluble redox mediators to shuttle electrons between electrodes and spatially separated reactive phases (solid, liquid, or gas), thereby enabling unprecedented operational flexibility and scalability. This standpoint underscores the adaptability of redox‐mediated electrified systems across a range of applications, encompassing high‐energy‐density redox targeting‐based flow batteries, fuel cells, electrified CO2 capture, sustainable chemical synthesis, waste recycling, etc. The rational design of redox‐active materials is central to their success, with precise alignment of redox potentials, enhanced electron‐transfer kinetics, and robust stability underpinning performance. The challenges of new materials development, system durability, and cost‐effectiveness can be addressed through advances in experimental measurement, computational modeling, operando characterization, and interdisciplinary collaboration. Moving forward, the integration of redox‐mediated technologies with renewable energy systems and industrial processes is predicted to transform energy and chemical landscapes. The integration of laboratory innovations with real‐world deployment facilitates a pathway to decarbonization, resource efficiency, and the circular economy. This perspective emphasizes the pivotal functions of redox‐mediated architectures in fostering a robust, electrified future, where the convergence of energy storage, environmental stewardship, and sustainable chemical production is pivotal in addressing global challenges.
用于增强能量储存和转换的氧化还原介导的流动电池系统的材料设计和评估
向可持续能源系统的过渡需要创新,克服传统电化学系统的局限性。氧化还原介导的液流电池系统通过将能量存储、转化和化学过程从传统的电极结合反应中分离出来,成为一种变革范例。这些系统采用可溶性氧化还原介质在电极和空间分离的反应相(固体、液体或气体)之间穿梭电子,从而实现了前所未有的操作灵活性和可扩展性。这一观点强调了氧化还原介导的电气化系统在一系列应用中的适应性,包括高能量密度氧化还原靶向液流电池、燃料电池、电气化二氧化碳捕集、可持续化学合成、废物回收等。氧化还原活性材料的合理设计是其成功的核心,具有精确的氧化还原电位对齐,增强的电子转移动力学和强大的稳定性支撑性能。新材料开发、系统耐久性和成本效益的挑战可以通过实验测量、计算建模、operando表征和跨学科合作来解决。展望未来,氧化还原介导技术与可再生能源系统和工业过程的整合预计将改变能源和化学景观。将实验室创新与现实世界的部署相结合,有助于实现脱碳、资源效率和循环经济。这一观点强调了氧化还原介导的架构在促进一个强大的电气化未来方面的关键作用,在这个未来,能源存储、环境管理和可持续化学品生产的融合对于应对全球挑战至关重要。
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来源期刊
Advanced Materials
Advanced Materials 工程技术-材料科学:综合
CiteScore
43.00
自引率
4.10%
发文量
2182
审稿时长
2 months
期刊介绍: Advanced Materials, one of the world's most prestigious journals and the foundation of the Advanced portfolio, is the home of choice for best-in-class materials science for more than 30 years. Following this fast-growing and interdisciplinary field, we are considering and publishing the most important discoveries on any and all materials from materials scientists, chemists, physicists, engineers as well as health and life scientists and bringing you the latest results and trends in modern materials-related research every week.
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