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Manipulating metal–sulfur interactions for achieving high‐performance S cathodes for room temperature Li/Na–sulfur batteries

机译:操纵金属硫相互作用以实现高性能S阴极进行室温Li / Na-Sulfur电池

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摘要

Abstract Rechargeable lithium/sodium–sulfur batteries working at room temperature (RT‐Li/S, RT‐Na/S) appear to be a promising energy storage system in terms of high theoretical energy density, low cost, and abundant resources in nature. They are, thus, considered as highly attractive candidates for future application in energy storage devices. Nevertheless, the solubility of sulfur species, sluggish kinetics of lithium/sodium sulfide compounds, and high reactivity of metallic anodes render these cells unstable. As a consequence, metal–sulfur batteries present low reversible capacity and quick capacity loss, which hinder their practical application. Investigations to address these issues regarding S cathodes are critical to the increase of their performance and our fundamental understanding of RT‐Li/S and RT‐Na/S battery systems. Metal–sulfur interactions, recently, have attracted considerable attention, and there have been new insights on pathways to high‐performance RT‐Li/Na sulfur batteries, due to the following factors: (1) deliberate construction of metal–sulfur interactions can enable a leap in capacity; (2) metal–sulfur interactions can confine S species, as well as sodium sulfide compounds, to stop shuttle effects; (3) traces of metal species can help to encapsulate a high loading mass of sulfur with high‐cost efficiency; and (4) metal components make electrodes more conductive. In this review, we highlight the latest progress in sulfide immobilization via constructing metal bonding between various metals and S cathodes. Also, we summarize the storage mechanisms of Li/Na as well as the metal–sulfur interaction mechanisms. Furthermore, the current challenges and future remedies in terms of intact confinement and optimization of the electrochemical performance of RT‐Li/Na sulfur systems are discussed in this review.
机译:摘要在室温(RT-LI / S,RT-NA / S)工作的摘要可充电锂/硫磺电池似乎是高层能源密度,低成本和自然资源丰富的有前途的能量存储系统。因此,它们被视为高度有吸引力的候选人,以便在能量存储设备中应用应用。然而,硫种类的溶解度,锂/硫化钠化合物的缓慢动力学,以及金属阳极的高反应性使得这些细胞不稳定。因此,金属 - 硫磺电池具有低可逆容量和快速容量损失,这阻碍了其实际应用。解决关于S阴极的这些问题的调查对于增加其性能以及对RT-Li / S和RT-Na / S电池系统的基本理解至关重要。最近,金属硫相互作用引起了相当大的关注,并且由于以下因素,高性能RT-LI / NA硫电池的途径有新的见解:(1)故意建设金属硫相互作用可以实现跨越能力; (2)金属硫相互作用可以限制S物种,以及硫化钠化合物,以停止梭效果; (3)金属种类的痕迹可以帮助封装高装载量的硫的高成本效率; (4)金属部件使电极更具导电性。在本综述中,我们通过在各种金属和S阴极之间构建金属粘合来突出硫化物固定的最新进展。此外,我们总结了Li / Na的储存机制以及金属硫相互作用机制。此外,在本综述中讨论了目前在完整的挑战和未来的RT-Li / Na Sulfur系统的电化学性能方面的挑战和未来疗额。

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