Low-Temperature LiCoO2||Graphite Batteries Enabled by Multi-Salt and Acetone-Ester Solvent Regulation
Xiaoyu Yin1, Rui Wang1, Mengfan Wang1
1Hubei Key Lab of Electrochemical Power Sources, College of Chemistry and Molecular Science, Wuhan University, Wuhan 430072, China.
ACS Applied Materials & Interfaces
|July 21, 2026
Summary
A novel fluorinated-solvent-free electrolyte, FBN-442, enhances lithium-ion battery performance at low temperatures by optimizing ion transport and forming stable interphases. This breakthrough enables reliable operation across a wide temperature range.
Area of Science:
- Electrochemistry
- Materials Science
- Energy Storage
Background:
- Lithium-ion battery performance degrades significantly at low temperatures due to slow desolvation and unstable interfaces.
- Developing electrolytes that maintain high performance across diverse temperature ranges is crucial for advanced energy storage applications.
Purpose of the Study:
- To design and evaluate a novel fluorinated-solvent-free electrolyte (FBN-442) for improved low-temperature and high-rate performance in lithium-ion batteries.
- To elucidate the role of tailored solvation structures in optimizing ion transport and interfacial stability.
Main Methods:
- Formulation of a new electrolyte (FBN-442) using specific salts (LiFSI/LiODFB) and additives (LiNO3) in a mixed solvent (acetone, methyl acetate, vinylene carbonate).
- Utilized theoretical calculations and comprehensive experimental analyses to understand solvation structure and interfacial properties.
- Tested electrode performance (graphite and LiCoO2) and validated electrolyte performance in pouch cells at low temperatures (-40 °C).
Main Results:
- The FBN-442 electrolyte demonstrated a tailored solvation structure that promoted salt dissociation, moderate Li+ affinity, and effective film formation.
- Optimized solvation balanced ion transport and interfacial charge transfer, leading to dense, inorganic-rich interphase layers.
- Graphite and LiCoO2 electrodes showed significantly improved low-temperature and high-rate performance, with pouch cells retaining 78% capacity at -40 °C.
Conclusions:
- Solvation-structure regulation is critical for enhancing lithium-ion battery performance at low temperatures.
- The FBN-442 electrolyte offers a promising solution for reliable, high-energy lithium-ion battery operation across wide temperature ranges.
- This work paves the way for developing robust batteries for demanding environmental conditions.


