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用于高温锂离子电池的基于六方氮化硼纳米片的相转变聚合物复合隔膜

Phase-Inversion Polymer Composite Separators Based on Hexagonal Boron Nitride Nanosheets for High-Temperature Lithium-Ion Batteries.

作者信息

de Moraes Ana C M, Hyun Woo Jin, Luu Norman S, Lim Jin-Myoung, Park Kyu-Young, Hersam Mark C

机构信息

Department of Materials Science and Engineering , Northwestern University , Evanston , Illinois 60208 , United States.

Department of Chemistry , Northwestern University , Evanston , Illinois 60208 , United States.

出版信息

ACS Appl Mater Interfaces. 2020 Feb 19;12(7):8107-8114. doi: 10.1021/acsami.9b18134. Epub 2020 Feb 4.

Abstract

By preventing electrical contact between anode and cathode electrodes while promoting ionic transport, separators are critical components in the safe operation of rechargeable battery technologies. However, traditional polymer-based separators have limited thermal stability, which has contributed to catastrophic thermal runaway failure modes that have conspicuously plagued lithium-ion batteries. Here, we describe the development of phase-inversion composite separators based on carbon-coated hexagonal boron nitride (hBN) nanosheets and poly(vinylidene fluoride) (PVDF) polymers that possess high porosity, electrolyte wettability, and thermal stability. The carbon-coated hBN nanosheets are obtained through a scalable liquid-phase shear exfoliation method using ethyl cellulose as a polymer stabilizer and source of the carbon coating following thermal pyrolysis. When incorporated within the PVDF matrix, the carbon-coated hBN nanosheets promote favorable interfacial interactions during the phase-inversion process, resulting in porous, flexible, free-standing composite separators. The unique chemical composition of these carbon-coated hBN separators implies high wettability for a wide range of liquid electrolytes. This combination of high porosity and electrolyte wettability enables enhanced ionic conductivity and lithium-ion battery electrochemical performance that exceeds incumbent polyolefin separators over a wide range of operating conditions. The hBN nanosheets also impart high thermal stability, providing safe lithium-ion battery operation up to 120 °C.

摘要

通过防止阳极和阴极电极之间的电接触同时促进离子传输,隔膜是可充电电池技术安全运行的关键组件。然而,传统的聚合物基隔膜热稳定性有限,这导致了灾难性的热失控故障模式,显著困扰着锂离子电池。在此,我们描述了基于碳包覆六方氮化硼(hBN)纳米片和聚偏氟乙烯(PVDF)聚合物的相转化复合隔膜的开发,该隔膜具有高孔隙率、电解质润湿性和热稳定性。碳包覆的hBN纳米片通过一种可扩展的液相剪切剥离方法获得,使用乙基纤维素作为聚合物稳定剂和热解后碳涂层的来源。当掺入PVDF基体中时,碳包覆的hBN纳米片在相转化过程中促进了良好的界面相互作用,从而得到多孔、柔性、自立的复合隔膜。这些碳包覆的hBN隔膜独特的化学成分意味着对多种液体电解质具有高润湿性。高孔隙率和电解质润湿性的这种结合能够提高离子电导率和锂离子电池的电化学性能,在广泛的操作条件下超过现有的聚烯烃隔膜。hBN纳米片还赋予了高热稳定性,可确保锂离子电池在高达120°C的温度下安全运行。

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