Wang Tianyang, Wan Ruichen, Tang Zhenghuan, Yap Jun Wei, Shao Jieren, Qin Lei, Zhang Songwei, Choi Junbin, Wu Yiying, Kim Jung-Hyun
Department of Mechanical and Aerospace Engineering, The Ohio State University, Columbus, OH, 43212, USA.
Department of Chemistry and Biochemistry, The Ohio State University, Columbus, OH, 43212, USA.
Small. 2024 Oct;20(42):e2401364. doi: 10.1002/smll.202401364. Epub 2024 Jun 14.
Limited electrochemical stability windows of conventional carbonate-based electrolytes pose a challenge to support the Lithium (Li)- and manganese (Mn)-rich (LMR) high-voltage cathodes in rechargeable Li-metal batteries (LMBs). To address this issue, a novel localized high-concentration electrolyte (LHCE) composition incorporating LiPF and LiTFSI as dual-salts (D-LHCE), tailored for high-voltage (>4.6 V) operation of LMR cathodes in LMBs is introduced. Li nuclear magnetic resonance and Raman spectroscopy revealed the characteristics of the solvation structure of D-LHCE. The addition of LiPF provides stable Al-current-collector passivation while the addition of LiTFSI improves the stability of D-LHCE by producing a more robust cathode-electrolyte interphase (CEI) on LMR cathode and solid-electrolyte interphase (SEI) on Li-metal anode. As a result, LMR/Li cell, using the D-LHCE, achieved 72.5% capacity retention after 300 cycles, a significant improvement compared to the conventional electrolyte (21.9% after 100 cycles). The stabilities of LMR CEI and Li-metal SEI are systematically analyzed through combined applications of electrochemical impedance spectroscopy and distribution of relaxation times techniques. The results present that D-LHCE concept represents an effective strategy for designing next-generation electrolytes for high-energy and high-voltage LMB cells.
传统碳酸盐基电解质有限的电化学稳定窗口对支持锂金属可充电电池(LMB)中富锂锰(LMR)高压正极构成了挑战。为了解决这个问题,引入了一种新型的局部高浓度电解质(LHCE)组合物,它包含LiPF和LiTFSI作为双盐(D-LHCE),专为LMB中LMR正极的高压(>4.6 V)运行量身定制。锂核磁共振和拉曼光谱揭示了D-LHCE的溶剂化结构特征。LiPF的添加提供了稳定的铝集流体钝化,而LiTFSI的添加通过在LMR正极上产生更坚固的阴极-电解质界面(CEI)和在锂金属负极上产生固体电解质界面(SEI)来提高D-LHCE的稳定性。结果,使用D-LHCE的LMR/Li电池在300次循环后实现了72.5%的容量保持率,与传统电解质相比有显著提高(100次循环后为21.9%)。通过联合应用电化学阻抗谱和弛豫时间分布技术,系统地分析了LMR CEI和锂金属SEI的稳定性。结果表明,D-LHCE概念是设计用于高能和高压LMB电池的下一代电解质的有效策略。