4.8 Article

Critical Factors to Understanding the Electrochemical Performance of All-Solid-State Batteries: Solid Interfaces and Non-Zero Lattice Strain

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SMALL
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WILEY-V C H VERLAG GMBH
DOI: 10.1002/smll.202304269

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all-solid-state lithium batteries; Ni-rich cathodes; reaction homogeneity; synchrotron-based X-ray techniques

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All-solid-state lithium batteries with non-flammable solid electrolytes have safety advantages over batteries with flammable liquid electrolytes. However, interfacial issues between cathode materials and solid electrolytes pose challenges for commercialization. This study identifies critical factors for battery performance related to solid interfaces and lattice strains, and suggests that a compact electrode microstructure can alleviate the negative effects of increased lattice strain, leading to improved electrochemical performance.
All-solid-state lithium batteries have been developed to secure safety by substituting a flammable liquid electrolyte with a non-flammable solid electrolyte. However, owing to the nature of solids, interfacial issues between cathode materials and solid electrolytes, including chemical incompatibility, electrochemo-mechanical behavior, and physical contact, pose significant challenges for commercialization. Herein, critical factors for understanding the performance of all-solid-state batteries in terms of solid interfaces and non-zero lattice strains are identified through a strategic approach. The initial battery capacity can be increased via surface coating and electrode-fabrication methods; however, the increased lattice strain causes significant stress to the solid interface, which degrades the battery cycle life. However, this seesaw effect can be alleviated using a more compacted electrode microstructure between the solid electrolyte and oxide cathode materials. The compact solid interfaces contribute to low charge-transfer resistance and a homogeneous reaction between particles, thereby leading to improved electrochemical performance. These findings demonstrate, for the first time, a correlation between the uniformity of the electrode microstructure and electrochemical performance through the investigation of the reaction homogeneity among particles. Additionally, this study furthers the understanding of the relationship between electrochemical performance, non-zero lattice strain, and solid interfaces.

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