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Mechanically Interlocked Polymer Electrolyte with Built-In Fast Molecular Shuttles for All- Solid-State Lithium Batteries

机译:机械互锁的聚合物电解质,内置快速分子叉车,适用于固态锂电池

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摘要

The mobility of molecular shuttles inside a mechanically interlocked polymer (MIP) can improve the ionic conductivity and electron transport capacity of a solid polymer electrolyte (SPE) and maintain a mechanically tough structure. The polyrotaxane-based MIP electrolyte with a necklace-like molecular structure exhibits high ionic conductivity (sigma = 5.93 x 10(-3) S cm(-1) at 25 degrees C and 1.44 x 10(-2) S cm(-1) at 60 degrees C), a high Li+ ion transference number (t(+) = 0.71), and high electrochemical oxidation stability (approximate to 4.7 V vs Li+/Li). When SPEs are used in Li-based batteries, a high Coulombic efficiency (= 98.5%), an excellent rate capability, and fast charging (= 2C) can be achieved using a "built-in molecular shuttle" design.
机译:机械互锁聚合物(MIP)内的分子梭的迁移率可以改善固体聚合物电解质(SPE)的离子电导率和电子传输能力,并保持机械韧性的结构。 具有项链样分子结构的聚映烷基的MIP电解质具有高25℃和1.44×10(-2)CM(-1)的高离子电导率(Sigma = 5.93×10(-3)Scm(-1))(-1 )在60℃),高Li +离子转移数(T(+)= 0.71),高电化学氧化稳定性(近似为4.7V Vs Li + / Li)。 当SPES用于锂基电池时,可以使用“内置分子梭”设计实现高库仑效率(& = 98.5%),优异的速率能力和快速充电(& = 2c)。

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