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Molecular Dynamics Study of Energy Storage Device

机译:储能装置的分子动力学研究

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Currently, the dominating energy storage device remains the battery, particularly the lithium battery. Lithium/lithium-ion batteries are used for various applications. For example, lithium battery powered pipeline inspection tools are used by the oil and gas industry for internal inspection of pipelines. Lithium batteries are complex devices whose performance optimization requires a good understanding of physical processes that occur on multiple time and length scales. Optimization of the electrolyte, in particular, needs detailed, fundamental, molecular level understanding of the chemical and mechanical features that lead to stable electrolytes such as good interfacial lithium transport properties, thermal stability and safety. In this work, we use molecular dynamics (MD) computational technique to investigate thermodynamic and dynamics properties for various carbonate-based electrolyte systems of lithium-ion batteries.
机译:当前,主要的能量存储设备仍然是电池,特别是锂电池。锂/锂离子电池可用于各种应用。例如,石油和天然气行业使用锂电池供电的管道检查工具对管道进行内部检查。锂电池是复杂的设备,其性能优化需要充分了解在多个时间和长度范围内发生的物理过程。电解质的优化尤其需要对形成稳定电解质的化学和机械特性的详细,基本的,分子水平的理解,例如良好的界面锂传输性能,热稳定性和安全性。在这项工作中,我们使用分子动力学(MD)计算技术来研究锂离子电池的各种基于碳酸盐的电解质系统的热力学和动力学特性。

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