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使用格林-久保模态分析和声化技术理解单聚噻吩链中的发散热导率。

Understanding Divergent Thermal Conductivity in Single Polythiophene Chains Using Green-Kubo Modal Analysis and Sonification.

作者信息

Lv Wei, Winters R Michael, DeAngelis Freddy, Weinberg Gil, Henry Asegun

机构信息

George W. Woodruff School of Mechanical Engineering, Georgia Institute of Technology , Atlanta, Georgia 30332, United States.

Georgia Tech Center for Music Technology (GTCMT), Georgia Institute of Technology , Atlanta, Georgia 30318, United States.

出版信息

J Phys Chem A. 2017 Aug 3;121(30):5586-5596. doi: 10.1021/acs.jpca.7b05099. Epub 2017 Jul 25.

Abstract

We used molecular dynamics simulations and the Green-Kubo modal analysis (GKMA) method as well as sonification to study the modal contributions to thermal conductivity in individual polythiophene chains. The simulations suggest that it is possible to achieve divergent thermal conductivity in individual polythiophene chains of certain lengths, with periodic boundary conditions. Application of the GKMA method further allowed for exact pinpointing of the modes responsible for the anomalous behavior. The analysis showed that transverse vibrations in the plane of the aromatic rings at low frequencies ∼0.05 THz are primarily responsible for the divergence. Within the integration time, one mode in particular exhibits a thermal conductivity contribution greater than 100 W m K. Further investigation showed that the divergence arises from persistent correlation between the three lowest frequency modes on chains that have exact multiples of 30 unit cells in length. Sonification of the mode heat fluxes revealed regions where the heat flux amplitude yields a somewhat sinusoidal envelope with a long period similar to the relaxation time. This characteristic in the divergent mode heat fluxes gives rise to the overall thermal conductivity divergence, which strongly supports earlier hypotheses that attribute the divergence to correlated phonon-phonon scattering/interactions as opposed to a lack of scattering/interaction among modes (e.g., infinite relaxation time/ballistic transport).

摘要

我们使用分子动力学模拟、格林 - 库博模态分析(GKMA)方法以及声化技术来研究单个聚噻吩链中模态对热导率的贡献。模拟结果表明,在具有周期性边界条件的特定长度的单个聚噻吩链中,有可能实现发散的热导率。应用GKMA方法进一步能够精确确定导致异常行为的模态。分析表明,在低频约0.05太赫兹时,芳香环平面内的横向振动是发散的主要原因。在积分时间内,有一种模式的热导率贡献尤其大于100 W m⁻¹ K⁻¹。进一步研究表明,这种发散源于长度为30个晶胞精确倍数的链上三个最低频率模式之间的持续相关性。模式热流的声化揭示了热流振幅产生类似正弦包络且周期与弛豫时间相似的区域。发散模式热流中的这一特性导致了整体热导率的发散,这有力地支持了早期的假设,即这种发散归因于相关的声子 - 声子散射/相互作用,而不是模式之间缺乏散射/相互作用(例如,无限弛豫时间/弹道输运)。

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