Using transducerless time-domain thermoreflectance technique to measure in- and cross-plane thermal conductivity of nanofilms

Author:

Du Yanzheng1ORCID,Bo Zhenxing2ORCID,Ma Weigang1ORCID,Wang Weihua2ORCID,Zhang Xing1

Affiliation:

1. Key Laboratory for Thermal Science and Power Engineering of Ministry of Education, Department of Engineering Mechanics, Tsinghua University 1 , Beijing 100084, China

2. Institute of Physics, Chinese Academy of Science 2 , Beijing 100190, China

Abstract

Time-domain thermoreflectance (TDTR) and frequency-domain thermoreflectance techniques have been widely used to measure thermal properties. However, the existence of the metal sensor brings some limitations to the experimental measurement, such as temperature limits, disability to measure low in-plane thermal conductivity, in situ measurement cannot be achieved, etc. This paper proposes a transducerless time-domain thermoreflectance method to measure in- and cross-plane thermal conductivity of nanofilms, in which the optical absorption depth and thermal conductivity tensor are considered to establish a new differential equation that can describe the heat conduction process in multilayer structures. This thermal model can also calculate the effects of spot ellipticity and spot offset distance. Then, the analytical solution and relative deviation of this new model and the surface heat flow boundary model used in conventional TDTR are compared by calculating the phase signals. In terms of experimental measurement, this model is successfully used to derive cross- and in-plane thermal conductivity of PdSi and IrNiTa amorphous alloy nanofilms without a metal sensor.

Funder

National Natural Science Foundation of China

Tsinghua-Toyota Joint Research Fund

University Joint Innovation Fund of China Academy of Launch Vehicle Technology

Publisher

AIP Publishing

Subject

General Physics and Astronomy

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