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Room-Temperature Sodium–Sulfur Batteries and Beyond: Realizing Practical High Energy Systems through Anode, Cathode, and Electrolyte Engineering

机译:室温钠 - 硫磺电池及更大:通过阳极,阴极和电解质工程实现实用高能量系统

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摘要

The increasing energy demands of society today have led to the pursuit of alternative energy storage systems that can fulfil rigorous requirements like cost-effectiveness and high storage capacities. Based fundamentally on earth-abundant sodium and sulfur, room-temperature sodium-sulfur batteries are a promising solution in applications where existing lithium-ion technology remains less economically viable, particularly in large-scale stationary systems such as grid-level storage. Here, the key challenges in the field are first highlighted, followed by comprehensive analyses of accessible strategies to overcome them, starting from engineering of the anode-electrolyte interface in both liquid and solid electrolytes. Recently reported polymer and solid-state electrolytes are also surveyed. Thereafter, the core principles guiding use-inspired design of cathode architectures, covering the spectrum of elemental sulfur and polysulfide cathodes, to emerging host structures, and covalent composites are focused upon. Future prospects are explored, with insights into other alkali-metal systems beyond sodium-sulfur batteries, such as the potassium-sulfur battery. Finally a conclusion is provided by outlining the research directions necessary to attain high energy sodium-sulfur devices, and potential solutions to issues concerning large-scale production, so as to ultimately realize widespread deployment of practical energy storage systems.
机译:今天的社会能源需求越来越大导致追求可以满足成本效益和高存储容量等严格要求的替代能源存储系统。从根本上基于地球 - 丰富的钠和硫,室温钠 - 硫磺电池是在现有锂离子技术仍然不太经济上可行的应用中的有希望的解决方案,特别是在大规模的静止系统中,如网格级储存。在这里,首先突出显示该领域的关键挑战,然后综合分析可访问的策略来克服它们,从液体和固体电解质中的阳极电解质界面的工程开始。最近报告的聚合物和固态电解质也被调查。此后,聚焦使用覆盖元素硫和多硫化物阴极的光谱,覆盖元素硫和多硫化物阴极的光谱的核心原理,覆盖出新的宿主结构和共价复合材料。探索未来的前景,洞察其他碱金属系统,超出硫磺电池,如钾 - 硫磺电池。最后,通过概述获得高能量硫磺设备所需的研究方向以及对大规模生产问题的潜在解决方案来提供结论,最终实现了实用能量存储系统的广泛部署。

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