用于硫化物全固态电池的双相电解质催化的高实际容量硫阴极

IF 24.4 1区 材料科学 Q1 CHEMISTRY, PHYSICAL
Hun Kim, Min-Jae Kim, Min-Seok Shin, Ha-Neul Choi, Ilias Belharouak, Yang-Kook Sun
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引用次数: 0

摘要

采用硫化物超离子导体的全固态锂硫电池(ASSLSBs)具有很高的安全性和能量密度,并且具有成本效益。然而,由于难以在电子导体、离子导体和硫之间形成紧密的三相界面,硫的有效利用具有挑战性。在本研究中,高性能ASSLSBs通过一种简单的两步混合方法获得,该方法结合了1)高能球磨和2)硫/碳复合材料与Li6PS5Cl (LPSCl)的温和混合。该方法减小了粒径,提高了混合均匀性,并在保持超离子导电性的同时激活了LPSCl的氧化还原反应,最终在厚电极中形成了分布均匀的传导途径。在磨矿过程中,硫与LPSCl之间的阳离子化反应导致无机锂离子导电物质的形成,改善了硫的离子接触。此外,氧化分解的LPSCl的S-S桥接和裂解反应对工作电压范围内的附加容量有可逆的贡献。因此,最佳的ASSLSB在30°C下循环150次后,显示出10.1 mAh cm−2的高面容量,保持其初始容量的92.0%。这种阴极设计可进一步扩展到其他硫基阴极和干电极制造,为实现实用的高能ASSLSBs提供了可行的途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

High-Areal-Capacity Sulfur Cathode Enabled by Dual-Phase Electrolyte for Sulfide-Based All-Solid-State Batteries

High-Areal-Capacity Sulfur Cathode Enabled by Dual-Phase Electrolyte for Sulfide-Based All-Solid-State Batteries
All-solid-state lithium–sulfur batteries (ASSLSBs) incorporating sulfide-based superionic conductors offer high safety and energy density and are cost-efficient. However, the effective utilization of sulfur is challenging due to the difficulties in forming an intimate triple-phase interface between the electronic conductors, ionic conductors, and sulfur. In this study, high-performance ASSLSBs are achieved through a simple two-step mixing method that combines 1) high-energy ball milling and 2) mild mixing of a sulfur/carbon composite with Li6PS5Cl (LPSCl). This approach reduces the particle size, enhances the mixing uniformity, and activates the redox reaction of LPSCl while preserving its superionic conductivity, ultimately creating well-distributed conduction pathways in thick electrodes. During the milling, a catenation reaction between sulfur and LPSCl leads to the formation of inorganic Li-ion-conducting species, improving the ionic contact of sulfur. Moreover, the S–S bridging and cleavage reactions of the oxidatively decomposed LPSCl contribute reversibly to the additional capacity within the operating voltage range. Consequently, the optimal ASSLSB demonstrated a high areal capacity of 10.1 mAh cm−2, retaining 92.0% of its initial capacity after 150 cycles at 30 °C. This cathode design is further extendable to other sulfur-based cathodes and dry electrode fabrication, offering a viable pathway toward practical high-energy ASSLSBs.
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来源期刊
Advanced Energy Materials
Advanced Energy Materials CHEMISTRY, PHYSICAL-ENERGY & FUELS
CiteScore
41.90
自引率
4.00%
发文量
889
审稿时长
1.4 months
期刊介绍: Established in 2011, Advanced Energy Materials is an international, interdisciplinary, English-language journal that focuses on materials used in energy harvesting, conversion, and storage. It is regarded as a top-quality journal alongside Advanced Materials, Advanced Functional Materials, and Small. With a 2022 Impact Factor of 27.8, Advanced Energy Materials is considered a prime source for the best energy-related research. The journal covers a wide range of topics in energy-related research, including organic and inorganic photovoltaics, batteries and supercapacitors, fuel cells, hydrogen generation and storage, thermoelectrics, water splitting and photocatalysis, solar fuels and thermosolar power, magnetocalorics, and piezoelectronics. The readership of Advanced Energy Materials includes materials scientists, chemists, physicists, and engineers in both academia and industry. The journal is indexed in various databases and collections, such as Advanced Technologies & Aerospace Database, FIZ Karlsruhe, INSPEC (IET), Science Citation Index Expanded, Technology Collection, and Web of Science, among others.
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