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利用 SiO 支架限制的离子液体作为混合固态电解质提高 LiV(PO)-Cathode 基锂电池的容量保持率。

Enhanced Capacity Retention of LiV(PO)-Cathode-Based Lithium Metal Battery Using SiO-Scaffold-Confined Ionic Liquid as Hybrid Solid-State Electrolyte.

机构信息

College of Physical Science and Engineering Technology, Yichun University, Yichun 336000, China.

出版信息

Molecules. 2023 Jun 21;28(13):4896. doi: 10.3390/molecules28134896.

Abstract

LiV(PO) (LVP) is one of the candidates for high-energy-density cathode materials matching lithium metal batteries due to its high operating voltage and theoretical capacity. However, the inevitable side reactions of LVP with a traditional liquid-state electrolyte under high voltage, as well as the uncontrollable growth of lithium dendrites, worsen the cycling performance. Herein, a hybrid solid-state electrolyte is prepared by the confinement of a lithium-containing ionic liquid with a mesoporous SiO scaffold, and used for a LVP-cathode-based lithium metal battery. The solid-state electrolyte not only exhibits a high ionic conductivity of 3.14 × 10 S cm at 30 °C and a wide electrochemical window of about 5 V, but also has good compatibility with the LVP cathode material. Moreover, the cell paired with a solid-state electrolyte exhibits good reversibility and can realize a stable operation at a voltage of up to 4.8 V, and the discharge capacity is well-maintained after 100 cycles, which demonstrates excellent capacity retention. As a contrast, the cell paired with a conventional liquid-state electrolyte shows only an 87.6% discharge capacity retention after 100 cycles. In addition, the effectiveness of a hybrid solid-state electrolyte in suppressing dendritic lithium is demonstrated. The work presents a possible choice for the use of a hybrid solid-state electrolyte compatible with high-performance cathode materials in lithium metal batteries.

摘要

磷酸锂(LiV(PO),LVP)是与金属锂电池相匹配的高能密度阴极材料的候选者之一,因为它具有高工作电压和理论容量。然而,LVP 在高压下与传统液态电解质不可避免的副反应,以及不可控的锂枝晶生长,会恶化其循环性能。在此,通过将含锂离子液体限制在介孔 SiO 骨架中,制备了一种混合固态电解质,并将其用于基于 LVP 阴极的锂电池。固态电解质不仅在 30°C 时表现出 3.14×10 S cm 的高离子电导率和约 5 V 的宽电化学窗口,而且与 LVP 阴极材料具有良好的相容性。此外,与固态电解质配对的电池表现出良好的可逆性,可在高达 4.8 V 的电压下稳定运行,并且在 100 次循环后放电容量保持良好,具有出色的容量保持率。相比之下,与传统液态电解质配对的电池在 100 次循环后仅保持 87.6%的放电容量保持率。此外,还证明了混合固态电解质在抑制枝晶锂方面的有效性。这项工作为在锂电池中使用与高性能阴极材料兼容的混合固态电解质提供了一种可能的选择。

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