Isotropic Steric Hindrance of Acyclic Cations Enables Thermally Robust Anion-Derived Interphase for High-Temperature Lithium Metal Batteries at 100 °C

Abstract High-temperature lithium metal batteries are critical for desert energy storage and deep-field exploration, yet the molecular-level understanding of how solvation structure and interphase evolution govern thermal safety remains elusive. Conventional carbonate electrolytes undergo reductive decomposition at the lithium metal anode, while cyclic ionic liquids, constrained by charge-localized, anisotropic cations, fail to regulate high-temperature interfacial chemistry. Herein, we propose an acyclic ionic liquid electrolyte based on the tributylmethylammonium (TBMA+) cation, whose flexible acyclic skeleton and uniformly delocalized charge impart isotropic steric hindrance. Theory and experiments prove that TBMA+ can reshape the solvation structure and build an anion-dominated solvation sheath. This leads to the formation of a compact, anion-derived inorganic-rich SEI at high temperatures, which effectively suppresses solvent decomposition and dendrite growth. This strategy enables Li|NCM90 cells to cycle stably from room temperature to 100 °C. This work establishes cation configuration–interfacial stability relationships, guiding electrolyte design for extreme-condition lithium metal batteries

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Publication Details

Journal
Nano Letters
Published
2026-09-18
DOI
https://doi.org/10.1021/acs.nanolett.6c03582
Primary Topic
Advanced Battery Materials and Technologies
Type
article
Field-Weighted Citation Impact
0.00

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article

Isotropic Steric Hindrance of Acyclic Cations Enables Thermally Robust Anion-Derived Interphase for High-Temperature Lithium Metal Batteries at 100 °C

Shuaifeng Lou, Kun Lin, Dalong Li, Yuting Fu et al.
Nano Letters
Advanced Battery Materials and Technologies
article

Isotropic Steric Hindrance of Acyclic Cations Enables Thermally Robust Anion-Derived Interphase for High-Temperature Lithium Metal Batteries at 100 °C

Shuaifeng Lou, Kun Lin, Dalong Li, Yuting Fu, Shengwei Dong, Liang Deng
article en

Abstract

Abstract High-temperature lithium metal batteries are critical for desert energy storage and deep-field exploration, yet the molecular-level understanding of how solvation structure and interphase evolution govern thermal safety remains elusive. Conventional carbonate electrolytes undergo reductive decomposition at the lithium metal anode, while cyclic ionic liquids, constrained by charge-localized, anisotropic cations, fail to regulate high-temperature interfacial chemistry. Herein, we propose an acyclic ionic liquid electrolyte based on the tributylmethylammonium (TBMA+) cation, whose flexible acyclic skeleton and uniformly delocalized charge impart isotropic steric hindrance. Theory and experiments prove that TBMA+ can reshape the solvation structure and build an anion-dominated solvation sheath. This leads to the formation of a compact, anion-derived inorganic-rich SEI at high temperatures, which effectively suppresses solvent decomposition and dendrite growth. This strategy enables Li|NCM90 cells to cycle stably from room temperature to 100 °C. This work establishes cation configuration–interfacial stability relationships, guiding electrolyte design for extreme-condition lithium metal batteries

Nano Letters
Harbin Institute of Technology (CN)
Fundamental Research Funds for the Central Universities of Beijing University of Chemical Technology, China Postdoctoral Science Foundation, Key Technology Research and Development Program of Shandong
Openalex Percentile: Top 20%
Advanced Battery Materials and Technologies
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Isotropic Steric Hindrance of Acyclic Cations Enables Thermally Robust Anion-Derived Interphase for High-Temperature Lithium Metal Batteries at 100 °C — Shuaifeng Lou, Kun Lin, et al. · Nano Letters (2026) | TGRS Research Map | TGRS