Accelerated Degradation of All-Solid-State Batteries Induced through Volumetric Occupation of the Carbon Additive in the Solid Electrolyte Domain

IF 18.5 1区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Hyun-seung Kim, Sejin Park, Sora Kang, Jae Yup Jung, KyungSu Kim, Ji-Sang Yu, Dong-Won Kim, Jong-Won Lee, Yang-Kook Sun, Woosuk Cho
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Abstract

The accelerated oxidative degradation observed in all-solid-state batteries (ASSBs), particularly focusing on the argyrodite solid electrolyte in conjunction with Ni-rich positive electrode surfaces is demonstrated. The formation of oxidative intermediates of the solid electrolyte oxidation process increases the amount of oxidation on the NCM surface with conductive carbon. The introduction of high-weight-composition conductive carbon additives results in a reduction of solid electrolytes within the positive electrode and the amount of solid electrolytes retained after formation. Consequently, cells with high concentrations of carbon additives demonstrate a decrease in both the cycle and power performances of ASSBs. The energy density of ASSBs is significantly limited by the fundamental failure mechanism induced by conductive carbon, particularly pronounced in cells with high active material contents. Consequently, this study provides pivotal insights for the design of high-energy-density ASSBs with NCM electrodes and high active material contents. To mitigate failure induced by high-volumetric-occupied carbon additives, carbon fiber-type additives are further utilized to interconnect the NCMs by decreasing the occupation of the solid electrolyte domain by carbon. Morphological alteration of the carbon additive significantly improves the electrochemical performance of ASSBs by preventing the deterioration of the electrode structure even after prolonged cycling and suppressing electrolyte degradation.

Abstract Image

通过碳添加剂在固态电解质领域的体积占位诱导全固态电池加速降解
在全固态电池 (ASSB) 中观察到的加速氧化降解现象得到了证实,特别是在霰石固态电解质与富镍正极表面结合的情况下。固体电解质氧化过程中氧化中间产物的形成增加了带有导电碳的 NCM 表面的氧化量。引入高重量成分的导电碳添加剂可减少正极内的固体电解质和形成后保留的固体电解质数量。因此,使用高浓度碳添加剂的电池会降低 ASSB 的循环性能和功率性能。导电碳引起的基本失效机制极大地限制了 ASSB 的能量密度,这在活性材料含量高的电池中尤为明显。因此,本研究为设计具有 NCM 电极和高活性材料含量的高能量密度 ASSB 提供了重要见解。为了减轻高体积占位碳添加剂引起的失效,我们进一步利用碳纤维型添加剂,通过减少碳对固体电解质域的占位来实现 NCM 的互连。碳添加剂的形态改变可显著改善 ASSB 的电化学性能,即使在长时间循环后也能防止电极结构退化,并抑制电解质降解。
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来源期刊
Advanced Functional Materials
Advanced Functional Materials 工程技术-材料科学:综合
CiteScore
29.50
自引率
4.20%
发文量
2086
审稿时长
2.1 months
期刊介绍: Firmly established as a top-tier materials science journal, Advanced Functional Materials reports breakthrough research in all aspects of materials science, including nanotechnology, chemistry, physics, and biology every week. Advanced Functional Materials is known for its rapid and fair peer review, quality content, and high impact, making it the first choice of the international materials science community.
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