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首页> 外文期刊>Advanced energy materials >A Lithium–Sulfur Cell Based on Reversible Lithium Deposition from a Li_2S Cathode Host onto a Hostless-Anode Substrate
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A Lithium–Sulfur Cell Based on Reversible Lithium Deposition from a Li_2S Cathode Host onto a Hostless-Anode Substrate

机译:基于可逆锂沉积的锂硫电池,该锂沉积是从Li_2S阴极主体到无宿主阳极衬底上

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The development of lithium-sulfur batteries necessitates a thorough understanding of the lithium-deposition process. A novel full-cell configuration comprising an Li2S cathode and a bare copper foil on the anode side is presented here. The absence of excess lithium allows for the realization of a truly lithium-limited Li-S battery, which operates by reversible plating and stripping of lithium on the hostless-anode substrate (copper foil). Its performance is closely tied to the efficiency of lithium deposition, generating valuable insights on the role and dynamic behavior of lithium anode. The Li2S full cell shows reasonable capacity retention with a Coulombic efficiency of 96% over 100 cycles, which is a tremendous improvement over that of a similar lithium-plating-based full cell with LiFePO4 cathodes. The exceptional robustness of the Li2S system is attributed to an intrinsic stabilization of the lithium-deposition process, which is mediated by polysulfide intermediates that form protective Li2S and Li2S2 regions on the deposited lithium. Combined with the large improvements in energy density and safety by the elimination of a metallic lithium anode, the stability and electrochemical performance of the lithium-plating-based Li2S full cell establish it as an important trajectory for Li-S battery research, focusing on practical realization of reversible lithium anodes.
机译:锂硫电池的发展需要对锂沉积过程有透彻的了解。本文介绍了一种新颖的全电池配置,包括一个Li2S阴极和一个位于阳极侧的裸铜箔。不存在过量的锂,可以实现真正的锂受限的Li-S电池,该电池通过在无基质阳极基材(铜箔)上可逆镀覆和剥离锂来工作。它的性能与锂沉积的效率紧密相关,从而对锂阳极的作用和动态行为产生了宝贵的见解。 Li2S满电池在100个循环中显示出合理的容量保持率,库仑效率为96%,这与具有LiFePO4阴极的类似基于锂电镀的满电池相比是一个巨大的进步。 Li2S系统的出色耐用性归因于锂沉积过程的固有稳定性,这是由在沉积的锂上形成保护性Li2S和Li2S2区的多硫化物中间体介导的。通过消除金属锂阳极,结合能量密度和安全性的巨大改进,基于锂的Li2S充满电池的稳定性和电化学性能使其成为Li-S电池研究的重要轨迹,重点是实用性。实现可逆锂阳极。

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