Revisiting the Role of Mobile Ion Size for the Activation Barrier of Charge Transport in Single Ion Conducting Polymers

IF 4.7 2区 化学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Harmandeep Singh*, Ivan Popov, Michelle L. Lehmann, Md Anisur Rahman, Kenneth S. Schweizer, Rajeev Kumar, Tomonori Saito, Alexei P. Sokolov and Catalin P. Gainaru*, 
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Abstract

The development of polymer electrolytes for energy storage and conversion technologies requires a fundamental understanding of the material parameters controlling the energy barriers for ion transport. In glassy polymers, these activation barriers are usually extracted by using Arrhenius procedures. However, our recent studies of single ion conducting polymers reveal that this traditional Arrhenius description provides anomalously small prefactors, an issue that is widely disregarded in the literature. To address it, an alternative approach was introduced for extracting the effective activation barrier E by imposing a physically valid limit (∼10–13 s) for the ion hopping attempt time. Two consequences of this recent approach are that in polymer electrolytes (i) E is significantly (∼30–40%) lower than the barrier estimated using traditional Arrhenius fits and (ii) E displays significant temperature dependence even in the glassy state. Under these circumstances, we are revisiting the role of ion size, glass transition temperature Tg, and dielectric and elastic constants of the polymer matrix on the effective activation barriers for ion transport as extracted using the recently proposed approach and highlight the differences from the picture that previously emerged based on simplistic apparent Arrhenius analysis. To this end, we investigate cation transport in three families of single ion conducting trifluoromethane sulfonimide-based polyanions with varied Tg. Our results indicate that E decreases with mobile cation size and is highly sensitive to changes in the dielectric permittivity of the matrix, even for large cations. These insights call for revisions of many earlier results based on apparent Arrhenius fits as the proposed approach can provide more accurate guidance for the design of polymer electrolytes with enhanced ionic conductivity.

Abstract Image

重新审视移动离子尺寸对单离子导电聚合物中电荷输运激活势垒的作用
用于能量存储和转换技术的聚合物电解质的开发需要对控制离子传输能量障碍的材料参数有基本的了解。在玻璃状聚合物中,这些激活屏障通常通过阿伦尼乌斯程序提取。然而,我们最近对单离子导电聚合物的研究表明,这种传统的阿伦尼乌斯描述提供了异常小的前因子,这一问题在文献中被广泛忽视。为了解决这个问题,引入了一种替代方法,通过对离子跳跃尝试时间施加物理有效限制(~ 10-13 s)来提取有效的激活势垒E。这种最新方法的两个结果是,在聚合物电解质中(i) E显著(~ 30-40%)低于使用传统Arrhenius拟合估计的势阱;(ii)即使在玻璃态,E也显示出显著的温度依赖性。在这种情况下,我们重新审视了离子大小、玻璃化转变温度Tg、聚合物基体的介电常数和弹性常数对离子传输有效激活屏障的作用,并强调了与之前基于简单的表观阿伦尼乌斯分析得出的结果的差异。为此,我们研究了三种不同Tg的单离子导电三氟甲烷磺酰亚胺基聚阴离子的阳离子迁移。我们的结果表明,E随着移动阳离子的大小而减小,并且对基质介电常数的变化高度敏感,即使对于大阳离子也是如此。这些见解要求对许多基于表观阿伦尼乌斯拟合的早期结果进行修订,因为所提出的方法可以为具有增强离子电导率的聚合物电解质的设计提供更准确的指导。
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来源期刊
CiteScore
7.20
自引率
6.00%
发文量
810
期刊介绍: ACS Applied Polymer Materials is an interdisciplinary journal publishing original research covering all aspects of engineering, chemistry, physics, and biology relevant to applications of polymers. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrates fundamental knowledge in the areas of materials, engineering, physics, bioscience, polymer science and chemistry into important polymer applications. The journal is specifically interested in work that addresses relationships among structure, processing, morphology, chemistry, properties, and function as well as work that provide insights into mechanisms critical to the performance of the polymer for applications.
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