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Electrocatalysis of sulfur and polysulfides in Li-S batteries

机译:LI-S电池中硫和多硫化物的电殖分析

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Li-S batteries have attracted considerable attention because of their high energy density; however, the poor electrochemical reaction kinetics of sulfur and polysulfides limit their high-power output. Besides, the capacity fade caused by the shuttle effect hinders the commercialization of Li-S batteries. To solve these problems, electrocatalysts have been proposed to promote the conversion of polysulfides and inhibit their diffusion. It has been demonstrated that the electrochemical performance can be greatly improved when electrocatalysts are introduced into Li-S batteries, but their mechanisms still require further clarification. For a more in-depth understanding of electrocatalysis in the sulfur electrode, this review summarizes the role of electrocatalysis from three aspects. First, the phase transition of sulfur species and the effect of electrocatalysts on the conversion of sulfur species are systematically summarized. Second, the research methods of electrocatalysts in Li-S batteries are introduced from computational chemistry and electrochemical detection methods. Third, according to the current development of electrocatalysts, strategies for improving electrocatalyst efficiency are summarized based on the intrinsic electrocatalytic activity of the active sites and the number of active sites. Finally, according to current electrocatalyst research, perspectives and future research efforts are proposed to facilitate the design and application of high-performance electrocatalysts for the sulfur electrodes of Li-S batteries.
机译:Li-S电池由于其高能量密度而引起了相当大的关注;然而,硫和多硫化物的差的电化学反应动力学限制了它们的高功率输出。此外,梭子效果引起的能力淡化阻碍了Li-S电池的商业化。为了解决这些问题,已经提出了电催化剂以促进多硫化物的转化并抑制它们的扩散。已经证明,当电催化剂被引入LI-S电池时,可以大大提高电化学性能,但它们的机制仍然需要进一步澄清。为了更深入地理解硫电极中的电常分,本综述总结了电催化从三个方面的作用。首先,系统总结了硫种类的相转变和电催化剂对硫种类转化的影响。其次,利用计算化学和电化学检测方法引入了LI-S电池电池电气催化剂的研究方法。第三,根据电催化剂的目前发展,基于活性位点的内在电催化活性和活性位点的数量来概述改善电催化剂效率的策略。最后,根据目前的电催化剂研究,建议观点和未来的研究努力,以促进LI-S电池硫电极的高性能电催化剂的设计和应用。

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