利用非晶材料特性在散射介导的声失配模型中预测热边界电阻

A. Devpura, R. Prasher, P. Phelan
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引用次数: 0

摘要

固体-固体热边界阻(Rb)是决定材料间热流的重要因素。声学失配模型(AMM)和漫射失配模型(DMM)在描述和预测极低温度(几开尔文范围内)固体-固体界面的热能输运方面效果很好。在中等低温下,它们的表现就不那么好了,原因可能是散射在测定Rb时占主导地位。基于此原理建立了散射介导的声失配模型(SMAMM)。尽管SMAMM运行良好,但它存在一些基本问题。SMAMM对材料之间形成的非晶态层的u -过程的假设在物理上是无法解释的。它还假设了不切实际的小散射时间。我们提出了一种改进的SMAMM,称为非晶SMAMM,它考虑了形成的间隙层的非晶材料特性,以确定SMAMM中使用的散射时间。该模型对Rb的预测效果优于25 ~ 60k范围内的所有模型。在此温度以上,原始SMAMM的性能更好,但非晶SMAMM的性能总是优于AMM。无定形SMAMM的假设没有遇到任何物理问题,因此结果比SMAMM的物理意义更好。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Using Amorphous Material Properties in Scattering-Mediated Acoustic Mismatch Model for Predicting Thermal Boundary Resistance
Solid-solid thermal boundary resistance (Rb) plays an important role in determining the heat flow between materials. The acoustic mismatch model (AMM) and the diffuse mismatch model (DMM), work pretty well in describing and predicting the thermal energy transport at solid-solid interface at very low temperatures (in the range of few Kelvin). At moderate cryogenic temperatures they do not perform that well, and the reason may be attributed to the dominance of scattering in determining Rb. Scattering mediated acoustic mismatch model (SMAMM) was developed on this principle. Though SMAMM works well, it has some fundamental problems. SMAMM’s assumption of U-processes, for amorphous layer formed between materials, is physically unexplainable. It also assumes unrealistically small scattering time. We propose a modified version of SMAMM called Amorphous SMAMM, which takes into account amorphous material properties for the interstitial layer formed, to find the scattering time to be used in SMAMM. This model performs better than all the models in the range of 25 to 60 K in predicting Rb. Above this temperature, original SMAMM performs better, but Amorphous SMAMM always performs better than the AMM. Amorphous SMAMM does not run into any physical problems with the assumptions made, hence the results have a better physical significance than SMAMM’s.
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