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Influence of disorder and surface roughness on the electrical and thermal properties of lithiated silicon nanowires

机译:病症和表面粗糙度对锂化硅纳米线电气和热性能的影响

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摘要

We use density functional theory and reactive-force-field methods to investigate the electrical and thermal transport properties of long disordered lithiated silicon nanowires. The latter could build the core of future lithium ion batteries with enhanced storage capacity. Due to the amorphous nature of these nanowires, disorder and surface roughness effects inevitably arise, affecting the lithiation process. It is found that the electrical conductivity of the nanowires steadily increases as a function of the lithium concentration, despite the presence of disorder, while the thermal conductivity follows the opposite trend and decreases significantly with reduced heat evacuation capabilities as a consequence. This behavior can be attributed to the influence of Li ions, which on one hand tend to metallize Si nanowires and thus enhance their electron mobility. On the other hand, the random distribution of Li atoms perturbs the phonon propagation through the nanowire, explaining the decrease in thermal conductivity.
机译:我们使用密度函数理论和反应力现场方法来研究长无序锂化硅纳米线的电气和热传输性能。后者可以通过增强的存储容量构建未来锂离子电池的核心。由于这些纳米线的无定形性质,紊乱和表面粗糙度效应不可避免地出现,影响了锂化过程。结果发现,尽管存在病症,但纳米线的电导率稳定地增加,而导热率遵循相反的趋势,并随着减少的热疏散能力而显着降低。这种行为可以归因于Li离子的影响,这一方面倾向于金属化Si纳米线,从而提高它们的电子迁移率。另一方面,Li Atoms的随机分布通过纳米线渗透到声子传播,解释导热率的降低。

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  • 来源
    《Journal of Applied Physics》 |2020年第13期|135101.1-135101.5|共5页
  • 作者

    Dominik Bauer; Mathieu Luisier;

  • 作者单位

    Integrated Systems Laboratory Department of Electrical Engineering and Information Technology ETH Zuerich Gloriastrasse 35 8092 Zuerich Switzerland;

    Integrated Systems Laboratory Department of Electrical Engineering and Information Technology ETH Zuerich Gloriastrasse 35 8092 Zuerich Switzerland;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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