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Tuning the Interfacial Thermal Conductance between Polystyrene and Sapphire by Controlling the Interfacial Adhesion

机译:通过控制界面粘合力来调整聚苯乙烯和蓝宝石之间的界面导热

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摘要

In polymer-based electric microdevices, thermal transport across polymer/ceramic interface is essential for heat dissipation, which limits the improvement of the device performance and lifetime. In this work, four sets of c polystyrene (PS) thin films/sapphire samples were prepared with different the PS films and the sapphire were measured by time domain thermoreflectance interface adhesion values, which was achieved by changing the rotation speed in the spin-coating process. The interfacial thermal conductance (ITC) between method, and the interfacial adhesion between the PS films and the sapphire, as measured by a scratch tester, was found to increase with the rotation speed from 2000 to 8000 rpm. The ITC shows a similar dependence on the rotation speed, increasing up to a 3-fold from 7.0 +/- 1.4 to 21.0 +/- 4.2 MW/(m(2) K). This study demonstrates the role of spin-coating rotation speed in thermal transport across the polymer/ceramic interfaces, evoking a much simpler mechanical method for tuning this type of ITC. The findings of enhancement of the ITC of polymer/ceramic interface can shed some light on the thermal management and reliability of macroand microelectronics, where polymeric and hybrid organic inorganic nano films are employed.
机译:在基于聚合物的电子微器件中,跨聚合物/陶瓷界面的热传输对于散热至关重要,这限制了器件性能和使用寿命的提高。在这项工作中,用不同的PS膜制备了四套c聚苯乙烯(PS)薄膜/蓝宝石样品,并通过时域热反射界面粘附值测量了蓝宝石,这是通过改变旋涂中的旋转速度来实现的处理。发现通过刮擦测试仪测量的方法之间的界面热导率(ITC)以及PS膜与蓝宝石之间的界面粘附力随着转速从2000到8000 rpm的增加而增加。 ITC对转速显示出类似的依赖性,从7.0 +/- 1.4到21.0 +/- 4.2 MW /(m(2)K)增加了3倍。这项研究证明了旋涂旋转速度在跨聚合物/陶瓷界面的热传输中的作用,从而激发了一种更简单的机械方法来调节这种ITC。聚合物/陶瓷界面ITC增强的发现可以为宏观和微电子学的热管理和可靠性提供一些启示,其中使用了聚合物和杂化有机无机纳米薄膜。

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