In pursuit of all solid state batteries (ASSB): advances at the cathode–electrolyte interface for garnet-based ASSB

Evan Kurian, Jayashree Pitchai, Soundarya Neelanarayanan and K. Ramesha
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Abstract

Garnet-based solid-state lithium-ion batteries offer great potential for safe and dense electrochemical energy storage. However, interfacial reactions and stability issues at the interfaces between the Li7La3Zr2O12 (LLZO) electrolyte and electrode materials pose challenges to the overall performance and longevity of the batteries. Discussions of the characteristics of solid electrolytes (SEs) and the solid–electrolyte interface (SEI) at the anode side have been well documented so far. This review focuses on developments at the much more complex cathode–electrolyte interface (CEI) with garnet LLZO. The first half of the review introduces the material aspects of garnet LLZO and its challenges in integrating into solid state batteries, also giving insights into its engineering aspects. The second half is dedicated to defining the CEI, and its physico-chemical properties with an emphasis on the recent attempts addressing the CEI. A table of comparison of all the all solid state batteries (ASSBs) developed using garnet LLZO as the electrolyte is also given. The table highlights the advantages and shortcomings of various engineering strategies that utilise the solid–solid contact at the CEI. As there are numerous works that identify themselves as ASSB on paper, but not in principle, this review attempts to recognise the true innovators of all solid-state batteries.

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追求全固态电池 (ASSB):石榴石基全固态电池阴极-电解质界面的进步
石榴石基固态锂离子电池为安全、高密度的电化学储能提供了巨大的潜力。然而,Li7La3Zr2O12(LLZO)电解质和电极材料之间的界面反应和稳定性问题对电池的整体性能和寿命构成了挑战。迄今为止,有关阳极侧固体电解质(SE)和固体-电解质界面(SEI)特性的讨论已屡见文献。本综述将重点介绍石榴石 LLZO 在更为复杂的阴极-电解质界面 (CEI) 上的发展。综述的前半部分介绍了石榴石 LLZO 的材料方面及其在集成到固态电池中时所面临的挑战,并对其工程方面进行了深入探讨。后半部分专门定义了 CEI 及其物理化学特性,重点介绍了最近针对 CEI 所做的尝试。此外,还提供了使用石榴石 LLZO 作为电解质开发的所有全固态电池 (ASSB) 的比较表。该表突出了在 CEI 上利用固-固接触的各种工程策略的优势和不足。由于有许多作品在纸面上自称是 ASSB,但原则上并非如此,因此本综述试图认识所有固态电池的真正创新者。
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