盐对离子导电聚合物机械特性的影响:分子动力学研究

IF 5.7 Q2 CHEMISTRY, PHYSICAL
Harish Gudla, Kristina Edström and Chao Zhang*, 
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引用次数: 0

摘要

功能聚合物可用作固态电池的电解质和粘结剂材料。这通常需要在传输和机械性能方面达到性能目标。在这项研究中,我们利用聚环氧乙烷-LiTFSI 离子导电聚合物模型系统,通过非平衡和平衡分子动力学模拟,研究了盐浓度对机械性能的影响,包括不同类型的弹性模量和粘弹性。我们发现,实验与模拟在杨氏模量、体积模量和粘度方面的一致性非常好,令人鼓舞。此外,我们还确定了一个中间盐浓度,在该浓度下,系统显示出高离子传导性、高杨氏模量和短弹性恢复时间。因此,本研究为通过分子动力学模拟研究具有自修复功能的离子导电聚合物粘合剂奠定了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Salt Effects on the Mechanical Properties of Ionic Conductive Polymer: A Molecular Dynamics Study

Salt Effects on the Mechanical Properties of Ionic Conductive Polymer: A Molecular Dynamics Study

Salt Effects on the Mechanical Properties of Ionic Conductive Polymer: A Molecular Dynamics Study

Functional polymers can be used as electrolyte and binder materials in solid-state batteries. This often requires performance targets in terms of both the transport and mechanical properties. In this work, a model ionic conductive polymer system, i.e., poly(ethylene oxide)-LiTFSI, was used to study the impact of salt concentrations on mechanical properties, including different types of elastic moduli and the viscoelasticity with both nonequilibrium and equilibrium molecular dynamics simulations. We found an encouragingly good agreement between experiments and simulations regarding Young’s modulus, bulk modulus, and viscosity. In addition, we identified an intermediate salt concentration at which the system shows high ionic conductivity, high Young’s modulus, and short elastic restoration time. Therefore, this study laid the groundwork for investigating ionic conductive polymer binders with self-healing functionality from molecular dynamics simulations.

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来源期刊
ACS Materials Au
ACS Materials Au 材料科学-
CiteScore
5.00
自引率
0.00%
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0
期刊介绍: ACS Materials Au is an open access journal publishing letters articles reviews and perspectives describing high-quality research at the forefront of fundamental and applied research and at the interface between materials and other disciplines such as chemistry engineering and biology. Papers that showcase multidisciplinary and innovative materials research addressing global challenges are especially welcome. Areas of interest include but are not limited to:Design synthesis characterization and evaluation of forefront and emerging materialsUnderstanding structure property performance relationships and their underlying mechanismsDevelopment of materials for energy environmental biomedical electronic and catalytic applications
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