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Systematic Computational and Experimental Investigation of Lithium-IonTransport Mechanisms in Polyester-Based Polymer Electrolytes

机译:锂离子的系统计算与实验研究聚酯基聚合物电解质的传输机理

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摘要

Understanding the mechanisms of lithium-ion transport in polymers is crucial for the design of polymer electrolytes. We combine modular synthesis, electrochemical characterization, and molecular simulation to investigate lithium-ion transport in a new family of polyester-based polymers and in poly(ethylene oxide) (PEO). Theoretical predictions of glass-transition temperatures and ionic conductivities in the polymers agree well with experimental measurements. Interestingly, both the experiments and simulations indicate that the ionic conductivity of PEO, relative to the polyesters, is far higher than would be expected from its relative glass-transition temperature. The simulations reveal that diffusion of the lithium cations in the polyesters proceeds via a different mechanism than in PEO, and analysis of the distribution of available cation solvation sites in the various polymers provides a novel and intuitive way to explain the experimentally observed ionic conductivities. This work provides a platform for the evaluation and prediction of ionic conductivities in polymer electrolyte materials.
机译:了解聚合物中锂离子迁移的机理对于聚合物电解质的设计至关重要。我们结合模块化合成,电化学表征和分子模拟来研究锂离子在新的聚酯基聚合物家族和聚(环氧乙烷)(PEO)中的迁移。聚合物中玻璃化转变温度和离子电导率的理论预测与实验测量结果非常吻合。有趣的是,实验和模拟均表明,相对于聚酯,PEO的离子电导率远远高于其相对玻璃化转变温度所预期的电导率。模拟表明,聚酯中锂阳离子的扩散是通过与PEO不同的机理进行的,对各种聚合物中可用阳离子溶剂化位点分布的分析提供了一种新颖直观的方法来解释实验观察到的离子电导率。这项工作为评估和预测聚合物电解质材料中的离子电导率提供了一个平台。

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