Hydrofluorocarbon electrolytes for energy-dense and low-temperature batteries.

Wu, Lanqing; Zhang, Jinyu; Li, Yong; Fan, Zhenyu; Ren, Shuangxin; Zhang, Jie; Li, Yawen; Ni, Youxuan et al. · Nature · 2026

basic_science · Level V

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Abstract

Electrolyte solvents for electrochemical devices have been dominated by oxygen (O)-based and nitrogen (N)-based ligands over the past decades<sup>1-5</sup>, for which the dipole-ion (Li<sup>+</sup>, Na<sup>+</sup> and so on) interaction usually lays the foundations of ion dissociation and transport but frustrates the charge transfer process at the electrolyte-electrode interface<sup>6-9</sup>. Here, by synthesizing alkanes with monofluorinated structures, we show that fluorine (F)-based ligands with designed steric hindrance and Lewis basicity enable salt dissolution of more than 2 mol l<sup>-1</sup>. Among them, 1,3-difluoro-propane (DFP)-based Li-ion electrolyte is endowed with all merits for energy-dense and low-temperature batteries, including low viscosity (0.95 cp), high oxidation stability (>4.9 V) and ionic conductivity of 0.29 mS cm<sup>-1</sup> at -70 °C. By incorporating F atoms in the first solvation shell, the weak F-Li<sup>+</sup> coordination facilitates the Li plating/stripping process with Coulombic efficiency (CE) up to 99.7% and exchange current density one magnitude larger than O-Li<sup>+</sup> coordination at -50 °C. The electrolytes further enable the operation of lithium-metal pouch cells under an electrolyte amount of less than 0.5 g Ah<sup>-1</sup>, achieving energy densities greater than 700 Wh kg<sup>-1</sup> at room temperature and about 400 Wh kg<sup>-1</sup> at -50 °C. The hydrofluorocarbon (HFC) electrolytes in this work provide a feasible approach to building electrochemical systems beyond traditional coordination chemistry.