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使用离子导电凝胶聚合物中间层膜的锂硫电池中的多硫化物排斥策略。

Polysulfide Rejection Strategy in Lithium-Sulfur Batteries Using an Ion-Conducting Gel-Polymer Interlayer Membrane.

作者信息

Tiwari Rupesh K, Mishra Raghvendra, Patel Anupam, Tiwari Anurag, Meghnani Dipika, Singh Rajendra K

机构信息

Ionic Liquid and Solid-State Ionics Laboratory, Department of Physics, Institute of Science, Banaras Hindu University, Varanasi 221005, India.

出版信息

ACS Appl Mater Interfaces. 2023 Jul 19;15(28):33957-33971. doi: 10.1021/acsami.3c02800. Epub 2023 Jul 10.

Abstract

Lithium-sulfur batteries (LiSBs) are emerging as promising alternative to conventional secondary lithium-ion batteries (LiBs) due to their high energy density, low cost, and environmental friendliness. However, preventing polysulfide dissolution is a great challenge for their commercial viability. The present work is focused on preparing a lithium salt and ionic liquid (IL) solution (SIL) impregnated ion (lithium ion)-conducting gel-polymer membrane (IC-GPM) interlayer to prevent polysulfide migration toward the anode by using an electrostatic rejection and trapping strategy. Herein, we introduce an SIL-based freestanding optimized IC-GPM70 (70 wt % SIL) interlayer membrane with high lithium-ion conductivity (2.58 × 10 S cm) along with excellent thermal stability to suppress the migration of polysulfide toward the anode and prevent polysulfide dissolution in the electrolyte. Because of the coulombic interaction, the anionic groups, -CF of the β-phase polymer host PVdF-HFP, TFSI anion of IL EMIMTFSI, and anion BOB of LIBOB salt, allow hopping of positively charged lithium ions (Li) but reject negatively charged and relatively large-sized polysulfide anions (S, 4 < <8). The cationic group EMIM of the IL is electrostatically able to attract and trap the polysulfides in the interlayer membrane. Since the shuttle effect of lithium polysulfides in LiSBs has been suppressed by the prepared IC-GPM70 interlayer, the resulting lithium-sulfur cell exhibits significantly higher cycling stability (1200 cycles), rate performance (1343, 1208, 1043, 875, and 662 mAh g at 0.1C, 0.2C, 0.5C, 1C, and 2C, respectively), and structural integrity during cycling than its counterpart without the IC-GPM70 interlayer. The interlayer membrane has been found to improve the performance and durability of LiSBs, thus making them a viable alternative to conventional LiBs.

摘要

锂硫电池(LiSBs)因其高能量密度、低成本和环境友好性,正成为传统二次锂离子电池(LiBs)有前景的替代品。然而,防止多硫化物溶解对其商业可行性而言是一项巨大挑战。目前的工作重点是制备一种锂盐和离子液体(IL)溶液(SIL)浸渍的离子(锂离子)导电凝胶聚合物膜(IC - GPM)中间层,通过静电排斥和捕获策略防止多硫化物向阳极迁移。在此,我们引入一种基于SIL的独立式优化IC - GPM70(70 wt% SIL)中间层膜,其具有高锂离子电导率(2.58×10 S cm)以及优异的热稳定性,以抑制多硫化物向阳极的迁移并防止多硫化物溶解在电解质中。由于库仑相互作用,β相聚合物主体PVdF - HFP的阴离子基团 - CF、IL EMIMTFSI的TFSI阴离子以及LIBOB盐的阴离子BOB,允许带正电的锂离子(Li)跳跃,但排斥带负电且相对较大尺寸的多硫化物阴离子(S,4 <<8)。IL的阳离子基团EMIM能够在静电作用下吸引并捕获中间层膜中的多硫化物。由于所制备的IC - GPM70中间层抑制了LiSBs中多硫化锂的穿梭效应,所得锂硫电池在循环稳定性(1200次循环)、倍率性能(在0.1C、0.2C、0.5C、1C和2C时分别为1343、1208、1043、875和662 mAh g)以及循环过程中的结构完整性方面,均显著高于没有IC - GPM70中间层的同类电池。已发现该中间层膜可提高LiSBs的性能和耐久性,从而使其成为传统LiBs可行的替代品。

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