Ma Yuan, Zhang Ruizhuo, Tang Yushu, Ma Yanjiao, Teo Jun Hao, Diemant Thomas, Goonetilleke Damian, Janek Jürgen, Bianchini Matteo, Kondrakov Aleksandr, Brezesinski Torsten
Helmholtz Institute Ulm (HIU) for Electrochemical Energy Storage, Helmholtzstr. 11, 89081 Ulm, Germany.
Institute of Physical Chemistry & Center for Materials Research (ZfM/LaMa), Justus-Liebig-University Giessen, Heinrich-Buff-Ring 17, 35392 Giessen, Germany.
ACS Nano. 2022 Nov 22;16(11):18682-18694. doi: 10.1021/acsnano.2c07314. Epub 2022 Oct 25.
Bulk-type solid-state batteries (SSBs) composed of lithium thiophosphate superionic solid electrolytes (SEs) and high-capacity cathode active materials (CAMs) have recently attracted much attention for their potential application in next-generation electrochemical energy storage. However, compatibility issues between the key components in this kind of battery system are difficult to overcome. Here, we report on a protective cathode coating that strongly reduces the prevalence of detrimental side reactions between CAM and SE during battery operation. This is demonstrated using preformed HfO nanoparticles as a secondary particle coating for a layered Ni-rich oxide CAM, LiNiCoMnO (NCM85). The preparation of a stable dispersion of the HfO nanoparticles enabled the deposition of a uniform coating of thickness ≤11 nm. When incorporated into LiPSCl-based, pellet-stack SSBs, the coated NCM85 showed superior performance in terms of reversibility, cell capacity, longevity, and rate capability over its uncoated counterpart. The effectiveness of the protective coating in mitigating electro-chemo-mechanical degradation was investigated using a suite of physical and electrochemical characterization techniques. In addition, the adaptability to wet processing of the coated NCM85 is demonstrated in slurry-cast SSBs and liquid-electrolyte-based Li-ion cells.
由硫代磷酸锂超离子固体电解质(SEs)和高容量阴极活性材料(CAMs)组成的块状固态电池(SSBs)因其在下一代电化学储能中的潜在应用,最近备受关注。然而,这种电池系统中关键组件之间的兼容性问题难以克服。在此,我们报道了一种保护性阴极涂层,它能大幅降低电池运行过程中CAM与SE之间有害副反应的发生率。这是通过使用预制的HfO纳米颗粒作为层状富镍氧化物CAM(LiNiCoMnO,NCM85)的二次颗粒涂层来证明的。HfO纳米颗粒稳定分散体的制备使得能够沉积厚度≤11 nm的均匀涂层。当将其并入基于LiPSCl的颗粒堆叠固态电池中时,涂覆的NCM85在可逆性、电池容量、寿命和倍率性能方面表现出优于未涂覆的同类产品。使用一系列物理和电化学表征技术研究了保护涂层在减轻电化学机械降解方面的有效性。此外,涂覆的NCM85在浆料浇铸固态电池和基于液体电解质的锂离子电池中展现了对湿法加工的适应性。