首页> 外文期刊>ACS applied materials & interfaces >High-Performance All-Solid-State Polymer Electrolyte with Controllable Conductivity Pathway Formed by Self-Assembly of Reactive Discogen and Immobilized via a Facile Photopolymerization for a Lithium-Ion Battery
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High-Performance All-Solid-State Polymer Electrolyte with Controllable Conductivity Pathway Formed by Self-Assembly of Reactive Discogen and Immobilized via a Facile Photopolymerization for a Lithium-Ion Battery

机译:具有可控导电途径的高性能全固态聚合物电解质,通过反应性椎间体的自组装形成,并通过适用于锂离子电池的容纳光聚合而固定

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摘要

All-solid-state polymer electrolytes (SPEs) have aroused great interests as one of the most promising alternatives for liquid electrolyte in the next-generation high-safety, and flexible lithium-ion batteries. However, some disadvantages of SPEs such as inefficient ion transmission capacity and poor interface stability result in unsatisfactory cyclic performance of the assembled batteries. Especially, the solid cell is hard to be run at room temperature. Herein, a novel and flexible discotic liquid-crystal (DLC)-based cross-linked solid polymer electrolyte (DLCCSPE) with controlled ion-conducting channels is fabricated via a one-pot photopolymerization of oriented reactive discogen, poly(ethylene glycol)diacrylate, and lithium salt. The experimental results indicate that the macroscopic alignment of self-assembled columns in the DLCCSPEs is successfully obtained under annealing and effectively immobilized via the UV photopolymerization. Because of the existence of unique oriented structure in the electrolytes, the prepared DLCCSPE films exhibit higher ionic conductivities and better comprehensive electrochemical properties than the DLCCSPEs without controlled ion-conductive pathways. Especially, the assembled LiFePO4/Li cells with oriented electrolyte show an initial discharge capacity of 164 mA h g(-1) at 0.1 C and average specific discharge capacities of 143, 135, and 149 mA h g(-1) at the C-rates of 0.5, 1, and 0.2 C, respectively. In addition, the solid cell also shows the first discharge capacity of 124 mA h g(-1) (0.2 C) at room temperature. The outstanding cell performance of the oriented DLCCSPE should be originated from the macroscopically oriented and self-assembled DLC, which can form ion-conducting channels. Thus, combining the excellent performance of DLCCSPE and the simple one-pot fabricating process of the DLC-based all-solid-state electrolyte, it is believed that the DLC-based electrolyte can be one of the most promising electrolyte materials for the next-generation high-safety solid lithium-ion batteries.
机译:全固态聚合物电解质(SPE)引起了极致的兴趣,作为下一代高安全性和柔性锂离子电池中液体电解质最有前途的替代品之一。然而,诸如效率低下的离子传输容量和界面稳定性差的一些缺点导致组装电池的循环性能不令人满意。特别地,固体细胞很难在室温下运行。本文,通过一盆光聚合的取向反应性椎间体,聚(乙二醇)二丙烯酸酯,具有受控离子导电通道的新型和柔性盘状液晶(DLC)的交联固体聚合物电解质(DLCCPE)。和锂盐。实验结果表明,在退火下成功获得了DLCCSPES中自组装柱的宏观取向,并通过UV光聚合有效地固定。由于在电解质中存在独特取向结构,所制备的DLCCSPE膜表现出更高的离子电导率和比没有受控离子导电途径的DLCCSPES更高的离子导电性和更好的综合电化学性质。特别地,具有取向电解质的组装LiFePO4 / Li细胞显示出在0.1℃的初始放电容量为164 mA Hg(-1),并且在C率下的平均特异性放电容量为143,135和149 mA Hg(-1)分别为0.5,1和0.2℃。另外,固体细胞还在室温下显示了124mA H(-1)(0.2℃)的第一放电容量。面向DLCCSPE的出色电池性能应起源于宏观定向和自组装的DLC,其可以形成离子导电通道。因此,组合DLCCSPE的优异性能和基于DLC的全固态电解质的简单一锅制造过程,据信DLC基电解质可以是下一个最有前景的电解质材料之一一代高安全固体锂离子电池。

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