English

Thermal Model for Time-Domain Thermoreflectance Experiments in a Laser Flash Geometry

Applied Physics 2022-04-20 v2

Abstract

Time-domain thermoreflectance (TDTR) is a well-established pump/probe method for measuring thermal conductivity and interface conductance of multilayers. Interpreting signals in a TDTR experiment requires a thermal model.In standard front/front TDTR experiments, both pump and probe beams typically irradiate the surface of a multilayer. As a result, existing thermal models for interpreting thermoreflectance experiments assume the pump and probe beams both interact with the surface layer. Here, we present a frequency-domain solution to the heat-diffusion equation of a multilayer in response to nonhomogenous laser heating. This model allows analysis of experiments where the pump and probe beams irradiate opposite sides of a multilayer. We call such a geometry a front/back experiment to differentiate such experiments from standard TDTR experiments. As an example, we consider a 60nm amorphous Si film. We consider how signals differ in a front/front vs. front/back geometry and compare thermal model predictions to experimental data.

Keywords

Cite

@article{arxiv.2112.08734,
  title  = {Thermal Model for Time-Domain Thermoreflectance Experiments in a Laser Flash Geometry},
  author = {Wanyue Peng and Richard Wilson},
  journal= {arXiv preprint arXiv:2112.08734},
  year   = {2022}
}
R2 v1 2026-06-24T08:19:59.469Z