Developing Quasi‐Solid‐State Ether‐Based Electrolytes with Trifluorotoluylation Ionic Liquids for High Voltage Lithium Metal Batteries

J Jin Li J Junjie Chen X Xiaosa Xu (Department of Mechanical and Aerospace Engineering) J Jiadong Shen (Department of Mechanical and Aerospace Engineering) Z Zhenyu Wang (Institute of Environmental Processes and Pollution Control, School of Environment and Ecology) Z Zixiao Guo (Department of Mechanical and Aerospace Engineering) P Pengzhu Lin (Department of Mechanical and Aerospace Engineering) J Jing Sun B Baoling Huang (Department of Mechanical and Aerospace Engineering) T Tianshou Zhao (Department of Mechanical and Aerospace Engineering)

Abstract

Abstract The practical application of quasi‐solid‐state ether‐based electrolytes is hindered by lithium dendrite formation and poor oxidation stability, which reduce the cycle life and energy density of the battery. Here, taking advantage of the ionic liquids’ high ionic interactions and structural flexibility in forming an optimized electrode/electrolyte interface, a pyrrolidinium‐based ionic liquids with trifluorotoluylation cationic segment is designed and developed. The oxidation of anions in the electrolytes is induced to form a robust inorganic LiF‐rich interphase at the cathode, thereby effectively achieving high oxidation stability and suppressing the dissolution of transition metal ions. In addition, the LiF interphases derived from the trifluorotoluylation cations increase the modulus of the anode interface and suppress the growth of lithium dendrites. Therefore, the Li‐LiFePO 4 , Li‐LiCoO 2 , and Li‐LiNi 0.8 Co 0.1 Mn 0.1 O 2 full cells with the optimized electrolytes demonstrate remarkable performance improvements at high current density (10 C), a wide voltage range of 4.5 V, a high mass loading of 11.1 mg cm −2 , and a wide temperature range of −20–80 °C. Furthermore, a 2.66 Ah‐level pouch cell with a high‐energy‐density of exceeding 356 Wh kg ‒1 and excellent cyclic stability demonstrates the potential of the strategy in providing a path for the practical application of quasi‐solid‐state ether‐based electrolytes in high‐energy‐density batteries.

Article Details

Volume / Issue Vol. 37, Issue 28
Published July 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (10)

J

Jin Li

J

Junjie Chen

X

Xiaosa Xu

Department of Mechanical and Aerospace Engineering

J

Jiadong Shen

Department of Mechanical and Aerospace Engineering

Z

Zhenyu Wang

Institute of Environmental Processes and Pollution Control, School of Environment and Ecology

Z

Zixiao Guo

Department of Mechanical and Aerospace Engineering

P

Pengzhu Lin

Department of Mechanical and Aerospace Engineering

J

Jing Sun

B

Baoling Huang

Department of Mechanical and Aerospace Engineering

T

Tianshou Zhao

Department of Mechanical and Aerospace Engineering