材料科学
再现性
电池(电)
混合(物理)
复合数
阴极
固态
质量(理念)
复合材料
化学工程
工程物理
色谱法
电气工程
热力学
功率(物理)
化学
物理
哲学
量子力学
认识论
工程类
作者
Maximilian Kissel,Marie Schosland,Julia Töws,Daizy Kalita,Yannik Schneider,Jill Kessler‐Kühn,Steffen Schröder,Johannes Schubert,Finn Frankenberg,Arno Kwade,Anja Bielefeld,Felix H. Richter,Jürgen Janek
标识
DOI:10.1002/aenm.202405405
摘要
Abstract Research into the development and understanding of solid‐state batteries often relies on pelletized press cells due to their comparative ease of use. However, these model cells are prone to comparability and reproducibility issues. This study examines the extent to which the cathode composite preparation influences the cell performance of a reference system comprising LiNi 0.82 Mn 0.07 Co 0.11 O 2 as the cathode active material, Li 6 PS 5 Cl as the solid electrolyte, carbon nanofibers as the conductive additive, and an indium–lithium foil anode. The cathode composite is prepared either via hand mortaring or in a mini vibrating mill. The mixing process is found to be critical for the reproducibility of cell performance and accounts for many of the discrepancies observed in the capacities of different cells made with identical materials and following the same cell assembly protocol. The open‐circuit relaxation method is implemented to quantify active mass utilization in the cathode in situ, which depends on the mixing process and correlates with the cell performance. This approach allows for a quantitative differentiation between static and kinetic capacity losses during the discussion of specific capacity values. The results demonstrate the significance of cathode composite mixing and the necessity of quantifying the mixing quality for reliable electrochemical data acquisition and interpretation.
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