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基于新型 LAGP 的固态聚合物复合电解质用于高效和安全的固态锂电池。

New Class of LAGP-Based Solid Polymer Composite Electrolyte for Efficient and Safe Solid-State Lithium Batteries.

机构信息

College of Aerospace Science and Engineering, National University of Defence Technology , Changsha, Hunan 410073, China.

出版信息

ACS Appl Mater Interfaces. 2017 Dec 6;9(48):41837-41844. doi: 10.1021/acsami.7b12092. Epub 2017 Nov 21.

Abstract

Inorganic solid electrolytes (SEs) possess substantial safety and electrochemical stability, which make them as key components of safe rechargeable solid-state Li batteries with high energy density. However, complicated integrally molding process and poor wettability between SEs and active materials are the most challenging barriers for the application of SEs. In this regard, we explore composite SEs of the active ceramic LiAlGe(PO) (LAGP) as the main medium for ion conduction and the polymer P(VDF-HFP) as a matrix. Meanwhile, for the first time, we choice high chemical, thermal, and electrochemical stability of ionic liquid swelled in polymer, which significantly ameliorate the interface in the cell. In addition, a reduced crystallinity degree of the polymer in the electrolyte can also be achieved. All of these lead to good ionic conductivity of the composite electrolyte (LPELCE), at the same time, good compatibility with the lithium electrode. Especially, high mechanical strength and stable solid electrolyte interphase which suppressed the growth of lithium dendrites and high thermal safety stability can also be observed. For further illustration, the solid-state lithium battery of LiFePO/LPELCE/Li shows relatively satisfactory performance, indicating the promising potentials of using this type of electrolyte to develop high safety and high energy density solid-state lithium batteries.

摘要

无机固体电解质 (SE) 具有较高的安全性和电化学稳定性,是高能量密度安全可充电固态锂电池的关键组成部分。然而,SE 与活性材料之间复杂的整体成型工艺和较差的润湿性是 SE 应用的最大挑战。在这方面,我们探索了以活性陶瓷 LiAlGe(PO) (LAGP) 为主要离子传导介质、聚合物 P(VDF-HFP) 为基体的复合 SE。同时,我们首次选择了具有高化学、热和电化学稳定性的离子液体在聚合物中的溶胀,这显著改善了电池中的界面。此外,还可以实现电解质中聚合物结晶度的降低。所有这些都导致了复合电解质 (LPELCE) 的良好离子电导率,同时与锂电极具有良好的兼容性。特别是,还可以观察到高机械强度和稳定的固体电解质界面,抑制了锂枝晶的生长和高热安全稳定性。为了进一步说明,LiFePO/LPELCE/Li 的固态锂电池表现出相对令人满意的性能,表明这种类型的电解质在开发高安全性和高能量密度固态锂电池方面具有广阔的应用前景。

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