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使用具有便捷电子和离子渗透途径的混合碳网络设计和优化固态电池复合阴极

Design and Optimization of Composite Cathodes for Solid-State Batteries Using Hybrid Carbon Networks with Facile Electronic and Ionic Percolation Pathways.

作者信息

Kim Kyung Oh, Park Sang-Hoon, Chun Hye-Bin, Lee Woo Young, Jang Bo-Yun, Kim Daeil, Yu Ji Haeng, Yun Kyong Sik, Kim Jinsoo, Li Oi Lun, Han Yu-Jin

机构信息

Ulsan Advanced Energy Technology R&D Center, Korea Institute of Energy Research, Ulsan 44776, Republic Korea.

School of Materials Science and Engineering, Pusan National University, Busan 46241, Republic of Korea.

出版信息

ACS Appl Mater Interfaces. 2023 Aug 2;15(30):36748-36758. doi: 10.1021/acsami.3c04394. Epub 2023 Jul 19.

DOI:10.1021/acsami.3c04394
PMID:37467137
Abstract

Solid-state batteries (SSBs) have emerged as a promising alternative to conventional liquid electrolyte batteries due to their potential for higher energy density and improved safety. However, achieving high performance in SSBs is difficult because of inadequate contact and interfacial reactions that generate high interfacial resistance, as well as inadequate solid-solid contact between electrodes. These chronic issues are associated with inhomogeneous ion and electron transport networks owing to imperfect solid-solid interfacial contact. This study developed an optimal interfacial engineering strategy to facilitate an ion-electron transport network by designing an active material (NCM622) uniformly filled with a thin layer of a solid electrolyte (garnet-type LiGaLaZrO) and conductive additives. The optimal composite electrode architecture enhanced the high capacity, high rate capability, and long-term cycle stability, even at room temperature, owing to the percolating network for facile ionic conduction that assured a homogeneous reaction. In addition to mitigating the mechanical degradation of the cathode electrode, it also reduced the crosstalk effects on the anode-solid electrolyte interface. Effectively optimizing the selection and use of conductive additives in composite electrodes offers a promising approach to addressing key performance-limiting factors in SSBs, including interfacial resistance and solid-solid contact issues. This study underscores the critical importance of cathode architecture design for achieving high-performance SSBs by ensuring that the interfaces are intact with solid electrolytes at both the cathode and anode interfaces while promoting uniform reactions. This study provides valuable insights into the development of SSBs with improved performance, which could have significant implications for a wide range of applications.

摘要

固态电池(SSB)因其具有更高能量密度和更高安全性的潜力,已成为传统液体电解质电池的一种有前途的替代品。然而,由于接触不足和界面反应会产生高界面电阻,以及电极之间的固-固接触不足,要在固态电池中实现高性能是很困难的。这些长期存在的问题与由于不完善的固-固界面接触导致的不均匀离子和电子传输网络有关。本研究开发了一种优化的界面工程策略,通过设计一种均匀填充有一层固体电解质(石榴石型LiGaLaZrO)和导电添加剂的活性材料(NCM622)来促进离子-电子传输网络。即使在室温下,这种优化的复合电极结构也提高了高容量、高倍率性能和长期循环稳定性,这得益于用于促进离子传导的渗流网络,确保了均匀的反应。除了减轻阴极电极的机械降解外,它还减少了对阳极-固体电解质界面的串扰效应。有效优化复合电极中导电添加剂的选择和使用,为解决固态电池中关键的性能限制因素提供了一种有前途的方法,这些因素包括界面电阻和固-固接触问题。这项研究强调了阴极结构设计对于实现高性能固态电池的至关重要性,通过确保阴极和阳极界面处与固体电解质的界面完整,同时促进均匀反应。这项研究为开发性能改进的固态电池提供了有价值的见解,这可能对广泛的应用产生重大影响。

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