Electric-Field-Oriented Interfacial Solvent Engineering Enables High-Voltage Ether Electrolytes for Ni-Rich Lithium-Ion Batteries

Abstract High-voltage operation of nickel-rich cathodes (>4.5 V) significantly boosts the energy density of lithium-ion batteries but triggers catastrophic oxidative decomposition of conventional ether electrolytes. Under high-potential electric fields, ether molecules in the electric double layer orient their oxygen atoms toward the cathode surface. This intimate contact accelerates α-hydrogen dehydrogenation and subsequent degradation. Herein, we report an electric-field-oriented interfacial solvent engineering strategy that decouples the vulnerable ether linkage from the charging interface. By introducing a rigid, asymmetric solvent molecule, 4-cyano-tetrahydropyran (THP-CN), we exploit the preferential adsorption of the highly polar cyano group under the intense interfacial electric field, driving the formation of a self-assembled “cathode-cyano-ether-bulk” configuration that effectively shields the ether oxygen and adjacent α-hydrogen atoms from the reactive cathode surface, thereby suppressing oxidative decomposition. Meanwhile, cooperative FSI– and NO3– decomposition constructs a robust, inorganic-rich cathode electrolyte interphase, further stabilizing the cathode structure. Consequently, the low-concentration THP-CN-based ether electrolyte exhibits exceptional oxidative stability up to 4.8 V. Demonstrating practical viability, the assembled 1.5 Ah graphite||NCM811 pouch cell achieves an energy density of 331.2 Wh kg–1 and retains 83.5% capacity after 600 cycles within a 2.8–4.5 V window.

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Publication Details

Journal
Journal of the American Chemical Society
Published
2026-10-06
DOI
https://doi.org/10.1021/jacs.6c12182
Primary Topic
Advanced Battery Materials and Technologies
Type
article
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article

Electric-Field-Oriented Interfacial Solvent Engineering Enables High-Voltage Ether Electrolytes for Ni-Rich Lithium-Ion Batteries

Jingjing Ouyang, Yiju Li, Chenhui Ning, Lin Zeng et al.
Journal of the American Chemical Society
Advanced Battery Materials and Technologies
article

Electric-Field-Oriented Interfacial Solvent Engineering Enables High-Voltage Ether Electrolytes for Ni-Rich Lithium-Ion Batteries

Jingjing Ouyang, Yiju Li, Chenhui Ning, Lin Zeng, Zhiqiang Yang, Shaojun Guo, 卢照安, Huaifang Shang, Qianfeng Zheng, Yanxin Jiang, Chao Luo, Hongji Pan, Yan Su, Guoqiang He, Yi Lv, Jianping Luo, Mingnan Song, Lu Chen
article en

Abstract

Abstract High-voltage operation of nickel-rich cathodes (>4.5 V) significantly boosts the energy density of lithium-ion batteries but triggers catastrophic oxidative decomposition of conventional ether electrolytes. Under high-potential electric fields, ether molecules in the electric double layer orient their oxygen atoms toward the cathode surface. This intimate contact accelerates α-hydrogen dehydrogenation and subsequent degradation. Herein, we report an electric-field-oriented interfacial solvent engineering strategy that decouples the vulnerable ether linkage from the charging interface. By introducing a rigid, asymmetric solvent molecule, 4-cyano-tetrahydropyran (THP-CN), we exploit the preferential adsorption of the highly polar cyano group under the intense interfacial electric field, driving the formation of a self-assembled “cathode-cyano-ether-bulk” configuration that effectively shields the ether oxygen and adjacent α-hydrogen atoms from the reactive cathode surface, thereby suppressing oxidative decomposition. Meanwhile, cooperative FSI– and NO3– decomposition constructs a robust, inorganic-rich cathode electrolyte interphase, further stabilizing the cathode structure. Consequently, the low-concentration THP-CN-based ether electrolyte exhibits exceptional oxidative stability up to 4.8 V. Demonstrating practical viability, the assembled 1.5 Ah graphite||NCM811 pouch cell achieves an energy density of 331.2 Wh kg–1 and retains 83.5% capacity after 600 cycles within a 2.8–4.5 V window.

Journal of the American Chemical Society
Peking University (CN), Southern University of Science and Technology (CN), Huizhou University (CN), Shanxi Normal University (CN)
Openalex Percentile: Top 22%
Advanced Battery Materials and Technologies
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