Advanced and sustainable functional materials for potassium-ion batteries

M. Salado, Marco Amores, C. Pozo‐Gonzalo, Maria Forsyth, S. Lanceros‐Méndez
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Abstract

Rechargeable potassium-ion batteries (PIBs) have gained attention as sustainable, environmentally friendly, and cost-effective large-scale stationary energy storage technology. However, although this technology was assumed to perform in a manner similar to that of its monovalent counterparts, huge anode volume expansion and sluggish kinetics are posing challenges in up-scaling it. Apart from the efforts to develop and optimise electrode materials, recent research endeavours have also focussed on the essential role of sustainability. These attempts have often relied on bio-derived and bio-inspired materials to mimic the effectiveness of nature. Furthermore, the use of materials with self-healing properties can alleviate electrode degradation after cycling and augment its electrochemical performance. This review summarises the development of smart materials with self-healing properties that aid in overcoming the present issues of PIBs and highlights the relevance of the interphases. In addition, state-of-the-art design strategies for bio-derived and bio-inspired materials are presented and discussed. The incorporation of recycled and sustainable materials into the manufacturing of PIBs is expected to contribute towards the ultimate goal of achieving truly circular economy ecosystems. Finally, perspectives for further advancements are provided to kindle new ideas and open questions regarding the use of new-generation materials in the development of PIBs.
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先进和可持续的钾离子电池功能材料
可充电钾离子电池(PIBs)作为一种可持续、环保、高性价比的大型固定式储能技术受到了广泛关注。然而,尽管该技术的性能与单价电池类似,但巨大的阳极体积膨胀和缓慢的动力学对扩大其规模构成了挑战。除了努力开发和优化电极材料外,最近的研究工作也集中在可持续性的重要作用上。这些尝试通常依赖于生物衍生和生物启发材料来模仿自然的有效性。此外,使用具有自愈特性的材料可以减轻电极循环后的降解并提高其电化学性能。本文综述了具有自修复特性的智能材料的发展,这些材料有助于克服PIBs目前的问题,并强调了界面相的相关性。此外,最先进的设计策略的生物衍生和生物启发材料提出和讨论。将可回收和可持续材料纳入pib的制造,预计将有助于实现真正的循环经济生态系统的最终目标。最后,提供了进一步发展的观点,以激发有关在pib开发中使用新一代材料的新想法和开放问题。
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