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Universal Relationship between Conductivity and Solvation-Site Connectivity in Ether-Based Polymer Electrolytes

机译:醚基聚合物电解质中电导率与溶剂-位点连通性之间的通用关系

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摘要

We perform a joint experimental and computational study of ion transport properties in a systematic set of linear polyethers synthesized via acyclic diene metathesis (ADMET) polymerization. We measure ionic conductivity, σ, and glass transition temperature, T_g, in mixtures of polymer and lithium bis(trifluoromethanesulfonyl)imide (LiTFSI) salt. While T_g is known to be an important factor in the ionic conductivity of polymer electrolytes, recent work indicates that the number and proximity of lithium ion solvation sites in the polymer also play an important role, but this effect has yet to be systematically investigated. Here, adding aliphatic linkers to a poly(ethylene oxide) (PEO) backbone lowers T_g and dilutes the polar groups; both factors influence ionic conductivity. To isolate these effects, we introduce a two-step normalization scheme. In the first step, Vogel–Tammann–Fulcher (VTF) fits are used to calculate a temperature-dependent reduced conductivity, σ_r(T), which is defined as the conductivity of the electrolyte at a fixed value of T – T_g. In the second step, we compute a nondimensional parameter f_(exp), defined as the ratio of the reduced molar conductivity of the electrolyte of interest to that of a reference polymer (PEO) at a fixed salt concentration. We find that f_(exp) depends only on oxygen mole fraction, x_0, and is to a good approximation independent of temperature and salt concentration. Molecular dynamics simulations are performed on neat polymers to quantify the occurrences of motifs that are similar to those obtained in the vicinity of isolated lithium ions. We show that f_(exp) is a linear function of the simulation-derived metric of connectivity between solvation sites. From the relationship between σ_r and f_(exp) we derive a universal equation that can be used to predict the conductivity of ether-based polymer electrolytes at any salt concentration and temperature.
机译:我们对通过无环二烯复分解(ADMET)聚合合成的线性聚醚的系统化体系中的离子传输性能进行了联合实验和计算研究。我们测量聚合物和双(三氟甲磺酰基)酰亚胺锂(LiTFSI)盐的混合物中的离子电导率σ和玻璃化转变温度T_g。尽管已知T_g是影响聚合物电解质的离子电导率的重要因素,但是最近的工作表明聚合物中锂离子溶剂化位点的数量和邻近度也起着重要作用,但是这种作用尚未进行系统的研究。在此,在聚环氧乙烷(PEO)主链上添加脂族连接基可降低T_g并稀释极性基团;这两个因素都会影响离子电导率。为了隔离这些影响,我们引入了两步标准化方案。第一步,使用Vogel–Tammann–Fulcher(VTF)拟合来计算与温度相关的降低的电导率σ_r(T),其定义为在T – T_g固定值下的电解质电导率。在第二步中,我们计算一个无量纲参数f_(exp),定义为目标电解质在固定盐浓度下降低的摩尔电导率与参考聚合物(PEO)的摩尔电导率之比。我们发现f_(exp)仅取决于氧的摩尔分数x_0,并且与温度和盐浓度无关,且近似良好。对纯聚合物进行分子动力学模拟,以量化与在孤立的锂离子附近获得的基序相似的基序。我们表明f_(exp)是溶剂化位点之间连接性的模拟衍生指标的线性函数。从σ_r和f_(exp)之间的关系,我们可以得出一个通用方程,该方程可用于预测任何盐浓度和温度下基于醚的聚合物电解质的电导率。

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