Long-life high-capacity lithium battery with liquid organic cathode and sulfide solid electrolyte

Jian Peng, Dengxu Wu, Hong Li, Liquan Chen, Fan Wu
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引用次数: 4

Abstract

Electrochemical batteries with organic electrode materials have attracted worldwide attention due to their high safety, low cost, renewability, low contamination, and easiness of recycling. However, the practical application of such system is limited by low density, low electronic/ionic conductivity, and the dissolution of organic electrode materials in conventional liquid electrolytes. Herein, a novel battery configuration is proposed to replace liquid electrolyte/solid organic cathode with solid electrolyte/liquid organic cathode to ultimately solve the shuttle effect and dissolution problem of organic cathodes. More importantly, this configuration combines room-temperature high-safety liquid lithium metal anode Li-BP-DME that can essentially inhibit lithium dendrite nucleation/growth and sulfide SE with ultrahigh room-temperature ionic conductivity for facilitated ion-conduction.

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液态有机阴极和硫化物固体电解质的长寿命大容量锂电池
采用有机电极材料的电化学电池由于其高安全性、低成本、可再生性、低污染和易于回收而引起了全世界的关注。然而,这种系统的实际应用受到低密度、低电子/离子电导率以及有机电极材料在传统液体电解质中的溶解性的限制。本文提出了一种新的电池配置,用固体电解质/液体有机阴极取代液体电解质/固体有机阴极,以最终解决有机阴极的穿梭效应和溶解问题。更重要的是,这种配置结合了室温高安全液态锂金属阳极Li-BP DME,其可以基本上抑制锂枝晶的成核/生长,以及硫化物SE与超高室温离子电导率的结合,以促进离子传导。
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Issue Information Cover Image, Volume 3, Issue 6, November 2024 Lithium Ion Batteries: Characteristics, Recycling and Deep-Sea Mining ZnxMnO2/PPy Nanowires Composite as Cathode Material for Aqueous Zinc-Ion Hybrid Supercapacitors Manipulation in the In Situ Growth Design Parameters of Aqueous Zinc-Based Electrodes for Batteries: The Fundamentals and Perspectives
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