An Effective Catholyte for Sulfide‐Based All‐Solid‐State Batteries Utilizing Gas Absorbents

Author:

Choi Hyunbeen1,Cho Sungjin1,Kim Yoon‐Seong2,Cho Jun Sic1,Kim Haesol1,Lee Hyungjin3,Ko Sumin4,Kim Kyungjun4,Lee Sang‐Min4,Hong Seung‐Tae3,Choi Chang Hyuck1,Seo Dong‐Hwa2,Park Soojin1ORCID

Affiliation:

1. Department of Chemistry Pohang University of Science and Technology (POSTECH) Pohang 37673 Republic of Korea

2. Department of Materials Science and Engineering Korea Advanced Institute of Science and Technology (KAIST) Daejeon 34141 Republic of Korea

3. Department of Energy Science and Engineering Daegu Gyeongbuk Institute of Science and Technolohy (DGIST) Daegu 42988 Republic of Korea

4. Graduate Institute of Ferrous & Eco Materials Technology (GIFT) Pohang University of Science and Technology (POSTECH) Pohang 37673 Republic of Korea

Abstract

AbstractAll‐solid‐state batteries (ASSBs) possess the advantage of ensuring safety while simultaneously maximizing energy density, making them suitable for next‐generation battery models. In particular, sulfide solid electrolytes (SSEs) are viewed as promising candidates for ASSB electrolytes due to their excellent ionic conductivity. However, a limitation exists in the form of interfacial side reactions occurring between the SSEs and cathode active materials (CAMs), as well as the generation of sulfide‐based gases within the SSE. These issues lead to a reduction in the capacity of CAMs and an increase in internal resistance within the cell. To address these challenges, cathode composite materials incorporating zinc oxide (ZnO) are fabricated, effectively reducing various side reactions occurring in CAMs. Acting as a semiconductor, ZnO helps mitigate the rapid oxidation of the solid electrolyte facilitated by an electronic pathway, thereby minimizing side reactions, while maintaining electron pathways to the active material. Additionally, it absorbs sulfide‐based gases, thus protecting the lithium ions within CAMs. In this study, the mass spectrometer is employed to observe gas generation phenomena within the ASSB cell. Furthermore, a clear elucidation of the side reactions occurring at the cathode and the causes of capacity reduction in ASSB are provided through density functional theory calculations.

Publisher

Wiley

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