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链取向无定形聚噻吩的高导热性。

High thermal conductivity of chain-oriented amorphous polythiophene.

机构信息

1] George W. Woodruff School of Mechanical Engineering, Georgia Institute of Technology, 801 Ferst Drive, Atlanta, Georgia 30332, USA [2].

Department of Mechanical Engineering, The University of Texas at Austin, 204 East Dean Keeton Street, Austin, Texas 78712, USA.

出版信息

Nat Nanotechnol. 2014 May;9(5):384-90. doi: 10.1038/nnano.2014.44. Epub 2014 Mar 30.

Abstract

Polymers are usually considered thermal insulators, because the amorphous arrangement of the molecular chains reduces the mean free path of heat-conducting phonons. The most common method to increase thermal conductivity is to draw polymeric fibres, which increases chain alignment and crystallinity, but creates a material that currently has limited thermal applications. Here we show that pure polythiophene nanofibres can have a thermal conductivity up to ∼ 4.4 W m(-1) K(-1) (more than 20 times higher than the bulk polymer value) while remaining amorphous. This enhancement results from significant molecular chain orientation along the fibre axis that is obtained during electropolymerization using nanoscale templates. Thermal conductivity data suggest that, unlike in drawn crystalline fibres, in our fibres the dominant phonon-scattering process at room temperature is still related to structural disorder. Using vertically aligned arrays of nanofibres, we demonstrate effective heat transfer at critical contacts in electronic devices operating under high-power conditions at 200 °C over numerous cycles.

摘要

聚合物通常被认为是热绝缘体,因为分子链的无定形排列降低了导热声子的平均自由程。提高热导率最常见的方法是拉伸聚合物纤维,这可以增加链的取向和结晶度,但会产生一种目前在热应用中受到限制的材料。在这里,我们表明纯聚噻吩纳米纤维的热导率高达约 4.4 W m(-1) K(-1)(比块状聚合物的值高 20 多倍),同时仍保持非晶态。这种增强是由于在使用纳米级模板进行电聚合时,分子链沿着纤维轴发生显著的取向。热导率数据表明,与在拉伸的晶态纤维中不同,在我们的纤维中,室温下主要的声子散射过程仍然与结构无序有关。使用垂直排列的纳米纤维阵列,我们展示了在 200°C 下高功率条件下运行的电子设备中关键接触处的有效热传递,经过多次循环。

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