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通过扫描热显微镜结合热接触电阻的定量预测实现宽范围内热导率的精确测量。

Realizing the Accurate Measurements of Thermal Conductivity over a Wide Range by Scanning Thermal Microscopy Combined with Quantitative Prediction of Thermal Contact Resistance.

作者信息

Zhang Qingqing, Zhu Wei, Zhou Jie, Deng Yuan

机构信息

School of Materials Science and Engineering, Beihang University, Beijing, 100191, China.

Research Institute for Frontier Science, Beihang University, Beijing, 100191, China.

出版信息

Small. 2023 Aug;19(32):e2300968. doi: 10.1002/smll.202300968. Epub 2023 Apr 17.

Abstract

Quantitative thermal performance measurements and thermal management at the micro-/nano scale are becoming increasingly important as the size of electronic components shrinks. Scanning thermal microscopy (SThM) is an emerging method with high spatial resolution that accurately reflects changes in local thermal signals based on a thermally sensitive probe. However, because of the unclear thermal resistance at the probe-sample interface, quantitative characterization of thermal conductivity for different kinds of materials still remains limited. In this paper, the heat transfer process considering the thermal contact resistance between the probe and sample surface is analyzed using finite element simulation and thermal resistance network model. On this basis, a mathematical empirical function is developed applicable to a variety of material systems, which depicts the relationship between the thermal conductivity of the sample and the probe temperature. The proposed model is verified by measuring ten materials with a wide thermal conductivity range, and then further validated by two materials with unknown thermal conductivity. In conclusion, this work provides the prospect of achieving quantitative characterization of thermal conductivity over a wide range and further enables the mapping of local thermal conductivity to microstructures or phases of materials.

摘要

随着电子元件尺寸的缩小,微/纳米尺度下的定量热性能测量和热管理变得越来越重要。扫描热显微镜(SThM)是一种新兴的具有高空间分辨率的方法,它基于热敏探针准确反映局部热信号的变化。然而,由于探针 - 样品界面处的热阻不明确,不同材料热导率的定量表征仍然有限。本文利用有限元模拟和热阻网络模型分析了考虑探针与样品表面之间热接触电阻的传热过程。在此基础上,开发了适用于多种材料体系的数学经验函数,该函数描述了样品热导率与探针温度之间的关系。通过测量十种具有广泛热导率范围的材料对所提出的模型进行了验证,然后通过两种热导率未知的材料进一步验证。总之,这项工作为在宽范围内实现热导率的定量表征提供了前景,并进一步实现了将局部热导率映射到材料的微观结构或相。

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