Electrolyte Lubricants for Solid-State Batteries

Abstract Solid-state batteries (SSBs) promise higher energy density and improved safety, but interparticle voids and unstable solid–solid interfaces still limit their performance. Here, we translate the concept of lubrication into an electrolyte-lubrication strategy for SSBs. We design a solvation-tailored electrolyte lubricant, termed ACE (aggregate cluster electrolyte), in which spatially structured ion-pair clusters direct interphase formation. In ACE, molecular-orbital reconfiguration within Li+–anion clusters favors the growth of a thin, electronically insulating, inorganic-rich solid–liquid electrolyte interphase (SLEI) on sulfide electrolytes, mitigating their intrinsic instability. The fluid ACE infiltrates interparticle voids, forming percolating Li+-conduction networks and facilitating dynamic reconstruction of the solid–electrolyte interphase during cycling. These attributes enable stable Li-metal cycling at reduced external pressure and enhance cathode active-material utilization. Electrochemical–thermal simulations further show that ACE homogenizes ionic fluxes and thermal gradients at the cell scale. Electrolyte lubrication thus emerges as a scalable interfacial-engineering approach for making sulfide-based SSBs operate under more practical conditions.

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Publication Details

Journal
Journal of the American Chemical Society
Published
2026-09-12
DOI
https://doi.org/10.1021/jacs.6c08623
Primary Topic
Advanced Battery Materials and Technologies
Type
article
Field-Weighted Citation Impact
0.00

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article

Electrolyte Lubricants for Solid-State Batteries

Sang‐Young Lee, Minsang Kang, Rhokyun Kwak, Jongjun Lee et al.
Journal of the American Chemical Society
Advanced Battery Materials and Technologies
article

Electrolyte Lubricants for Solid-State Batteries

Sang‐Young Lee, Minsang Kang, Rhokyun Kwak, Jongjun Lee, Hong-I Kim, Won Bo Lee, Young Joo Lee, Yong Min Lee, Seokhyeon Ryu, Minwoo Kim, Sun‐Phil Han, Hyobin Lee, Wonseok Yang, Seung-Hyeok Kim, Tae Woong Lee, Seungyeop Choi, Dokyung Kim, Jaejin Lim, Won-Yeong Kim, Kyeong-Seok Oh, Taeryeol Kim
article en

Abstract

Abstract Solid-state batteries (SSBs) promise higher energy density and improved safety, but interparticle voids and unstable solid–solid interfaces still limit their performance. Here, we translate the concept of lubrication into an electrolyte-lubrication strategy for SSBs. We design a solvation-tailored electrolyte lubricant, termed ACE (aggregate cluster electrolyte), in which spatially structured ion-pair clusters direct interphase formation. In ACE, molecular-orbital reconfiguration within Li+–anion clusters favors the growth of a thin, electronically insulating, inorganic-rich solid–liquid electrolyte interphase (SLEI) on sulfide electrolytes, mitigating their intrinsic instability. The fluid ACE infiltrates interparticle voids, forming percolating Li+-conduction networks and facilitating dynamic reconstruction of the solid–electrolyte interphase during cycling. These attributes enable stable Li-metal cycling at reduced external pressure and enhance cathode active-material utilization. Electrochemical–thermal simulations further show that ACE homogenizes ionic fluxes and thermal gradients at the cell scale. Electrolyte lubrication thus emerges as a scalable interfacial-engineering approach for making sulfide-based SSBs operate under more practical conditions.

Journal of the American Chemical Society
Seoul National University (KR), Daegu Gyeongbuk Institute of Science and Technology (KR), Yonsei University (KR), Hospital Metropolitano (EC), Hanyang University (KR), Ulsan National Institute of Science and Technology (KR), Chung-Ang University (KR)
Korea Institute for Advancement of Technology, National Research Foundation of Korea, National Research Council of Science and Technology, Samsung Science and Technology Foundation
Affordable and clean energy
Openalex Percentile: Top 20%
Advanced Battery Materials and Technologies
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