Reversible Redistribution in Ag-Si Electrodes for Stable Anode-Free All-Solid-State Batteries
- Authors
- Hwang, Yaelim; Kim, Shin-Yeong; Yim, Haena; Oh, Sang-Hwan; Lee, Ji Hyun; Kim, Yeseul; Jeoun, Yunseo; Kim, So Hee; Lim, Jae-Hong; Weon, Byung Mook; Jang, Ho Won; Yu, Seung-Ho; Sung, Yung-Eun; Choi, Ji-Won
- Issue Date
- 2026-02
- Publisher
- American Chemical Society
- Citation
- ACS Energy Letters, v.11, no.2, pp.1769 - 1779
- Abstract
- Anode-free all-solid-state batteries (AFASSBs) have emerged as promising candidates for next-generation energy storage systems due to their high safety and potential for exceptionally high gravimetric and volumetric energy densities. However, achieving long-term cycling stability remains a critical challenge because of nonuniform Li plating/stripping. A dual-component, bifunctional interfacial coating at the current collector/solid electrolyte interface, incorporating both a protective layer and seed sites, is considered critical for uniform Li plating and formation of a stable interface. Nevertheless, how the dual-component redistribution changes during cycling remains poorly understood, and design guidelines for effectively harnessing this phenomenon are still lacking. Here, we employ a gradient cosputtering approach to produce dual-element coated current collectors in which Ag serves as a Li-affinitive nucleation seed and Si functions as an ion-conducting protective interlayer. Compositional gradients enabled a systematic study of composition-dependent behaviors, and ex-situ analyses revealed that a lower Si fraction in the protective layer promotes a “reversible redistribution”, where Si repeatedly migrate during cycling, preventing crack formation over prolonged cycling. The optimized Ag with 1 mol % Si electrode achieved stable cycling even at room temperature. This bifunctional interfacial design provides valuable mechanistic insights and practical guidelines for engineering dual-component electrode architectures for stable, high-energy-density AFASSBs.
- Keywords
- NANOPARTICLES; LITHIATION; DEPOSITION; BEHAVIOR; DENSITY
- ISSN
- 2380-8195
- URI
- https://pubs.kist.re.kr/handle/201004/154291
- DOI
- 10.1021/acsenergylett.5c03372
- Appears in Collections:
- KIST Article > 2026
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