Affiliation:
1. College of Chemistry and Pharmaceutical Sciences, Qingdao Agricultural University, Qingdao 266109, China
2. Department of Chemistry—Ångström Laboratory, Uppsala University, 75121 Uppsala, Sweden
Abstract
The construction of a thin, uniform, and robust solid electrolyte interphase (SEI) film on the surface of active materials is pivotal for enhancing the overall performance of lithium-ion batteries (LiBs). However, conventional electrolytes often fail to achieve the desired SEI characteristics. In this work, we introduced 1,3,6-hexanetrinitrile (HTCN) in the baseline electrolyte (BE) of 1.0 M LiPF6 in Ethylene Carbonate/Dimethyl Carbonate (EC/DMC) (3:7 by volume) with 5 wt.% fluoroethylene carbonate (FEC), denoted as BE-FH. By systematically investigating the influence of FEC: HTCN weight ratios on the electrochemical performance of graphite anodes, we identified an optimal composition (FEC:HTCN = 5:4 by weight, denoted as BE-FH54) that demonstrated greatly improved initial Coulombic efficiency, rate capability, and cycling stability compared with the baseline electrolyte. Deviations from the optimal FEC:HTCN ratio resulted in the formation of either small cracks or excessively thick SEI layers. The enhanced performance of BE-FH54-based LiB is mainly ascribed to the synergistic effect of FEC and HTCN in forming a robust, thin, homogeneous, and ion-conducting SEI. This research highlights the importance of rational electrolyte design in enhancing the electrochemical performance of graphite anodes in LiBs and provides insights into the role of nitrile-based additives in modulating the SEI properties.
Funder
China Postdoctoral Science Foundation
Postdoctoral Science Foundation of Jiangsu Province
Experimental Technology Research Project of Qingdao Agricultural University
Swedish Energy Agency
Reference55 articles.
1. Revealing the complex lithiation pathways and kinetics of core-shell NiO@CuO electrode;Wang;Energy Storage Mater.,2022
2. Electrochemical methods contribute to the recycling and regeneration path of lithium-ion batteries;Li;Energy Storage Mater.,2023
3. Sustainable regeneration of spent cathodes for lithium-ion and post-lithium-ion batteries;Yang;Nat. Sustain.,2024
4. Lithium-ion batteries: Outlook on present, future, and hybridized technologies;Kim;J. Mater. Chem. A,2019
5. Deng, R., and He, T. (2023). Flexible Solid-State Lithium-Ion Batteries: Materials and Structures. Energies, 16.