Five Volts Lithium Batteries with Advanced Carbonate‐Based Electrolytes: A Rational Design via a Trio‐Functional Addon Materials

Author:

Zhang Fuming12,Zhang Peng3,Zhang Wenhua4,Gonzalez Pedro R.5,Tan Daniel Q.126ORCID,Ein‐Eli Yair278

Affiliation:

1. Department of Materials Science and Engineering Guangdong Technion‐Israel Institute of Technology 241 Daxue Road Shantou 515063 P. R. China

2. Department of Materials Science and Engineering Technion‐Israel Institute of Technology Haifa 3200003 Israel

3. Department of Materials Science and Engineering Tiangong University 399 Binshui Road Tianjin 300387 P. R. China

4. National Synchrotron Radiation Laboratory University of Science and Technology of China Hefei 230029 P. R. China

5. Department of Biology and Food Engineering Technion‐Israel Institute of Technology Haifa 3200003 Israel

6. Guangdong Provincial Key Laboratory of Materials and Technologies for Energy Conversion Guangdong Technion‐Israel Institute of Technology 241 Daxue Road Shantou 515063 P. R. China

7. Israel National Institute of Energy Storage (INIES) Technion‐Israel Institute of Technology Haifa 3200003 Israel

8. Grand Technion Energy Program (GTEP) Technion‐Israel Institute of Technology Haifa 3200003 Israel

Abstract

AbstractLithium metal batteries paired with high‐voltage LiNi0.5Mn1.5O4 (LNMO) cathodes are a promising energy storage source for achieving enhanced high energy density. Forming durable and robust solid‐electrolyte interphase (SEI) and cathode‐electrolyte interface (CEI) and the ability to withstand oxidation at high potentials are essential for long‐lasting performance. Herein, advanced electrolytes are designed via trio‐functional additives to carbonate‐based electrolytes for 5 V Li||LNMO and graphite||LNMO cells achieving 88.3% capacity retention after 500 charge–discharge cycles. Theoretical calculations reveal that adding adiponitrile facilitates the presence of more hierarchical DFOB and PF6 dual anion structure in the solvation sheath, leading to a faster de‐solvation of the Li cation. By combining both fluorine and nitrile additives, an efficient synergistic effect is obtained, generating robust thin inorganic SEI and CEI films, respectively. These films enhance microstructural stability; Li dendrite growth on the Li electrode is being suppressed at the anode side and transition‐metals dissolution from the cathode is being mitigated, as evidenced by cryo‐transmission electron microscopy and synchrotron studies.

Funder

High-end Foreign Experts Recruitment Plan of China

Guangdong Provincial Department of Science and Technology

Publisher

Wiley

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