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具有先进碳酸盐基电解质的5伏锂电池:通过三功能添加剂材料的合理设计

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

作者信息

Zhang Fuming, Zhang Peng, Zhang Wenhua, Gonzalez Pedro R, Tan Daniel Q, Ein-Eli Yair

机构信息

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

Department of Materials Science and Engineering, Technion-Israel Institute of Technology, Haifa, 3200003, Israel.

出版信息

Adv Mater. 2024 Nov;36(44):e2410277. doi: 10.1002/adma.202410277. Epub 2024 Sep 9.

Abstract

Lithium metal batteries paired with high-voltage LiNiMnO (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 PF 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.

摘要

与高压锂镍锰氧化物(LNMO)阴极配对的锂金属电池是实现增强高能量密度的一种有前景的储能来源。形成耐用且坚固的固体电解质界面(SEI)和阴极-电解质界面(CEI)以及在高电位下耐受氧化的能力对于长期性能至关重要。在此,通过向基于碳酸盐的电解质中添加三功能添加剂来设计先进的电解质,用于5V锂||LNMO和石墨||LNMO电池,在500次充放电循环后实现了88.3%的容量保持率。理论计算表明,添加己二腈有助于在溶剂化鞘层中存在更多分级的二氟草酸硼酸锂(DFOB)和双(氟磺酰)亚胺锂(LiFSI)双阴离子结构,从而导致锂离子更快地去溶剂化。通过结合氟和腈添加剂,获得了有效的协同效应,分别生成了坚固的无机SEI薄膜和CEI薄膜。这些薄膜增强了微观结构稳定性;低温透射电子显微镜和同步加速器研究表明,在阳极侧抑制了锂电极上锂枝晶的生长,并且减轻了阴极中过渡金属的溶解。

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