Seeking non-Fourier heat transfer with ultrabroad band thermoreflectance spectroscopy

被引:1
|
作者
Zenji, Ahmad [1 ]
Pernot, Gilles [2 ]
Lacroix, David [2 ]
Rampnoux, Jean-Michel [1 ]
Bourgeois, Olivier [3 ]
Grauby, Stephane [1 ]
Dilhaire, Stefan [1 ]
机构
[1] Univ Bordeaux, LOMA, CNRS UMR 5798, F-33400 Talence, France
[2] Univ Lorraine, CNRS, LEMTA, F-54000 Nancy, France
[3] Univ Grenoble Alpes, Inst NEEL, CNRS, F-38042 Grenoble, France
关键词
THERMAL-CONDUCTIVITY; SILICON;
D O I
10.1038/s43246-024-00572-7
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Studying superdiffusive thermal transport is crucial for advanced thermal management in electronics and nanotechnology, ensuring devices run efficiently and reliably. Such study also contributes to the design of high-performance thermoelectric materials and devices, thereby improving energy efficiency. This work leads to a better understanding of fundamental physics and non-equilibrium phenomena, fostering innovations in numerous scientific and engineering fields. We are showing, from a one shot experiment, that clear deviations from classical Fourier behavior are observed in a semiconductor alloy such as InGaAs. These deviations are a signature of the competition that takes place between ballistic and diffusive heat transfers. Thermal propagation is modelled by a truncated L & eacute;vy model. This approach is used to analyze this ballistic-diffusive transition and to determine the thermal properties of InGaAs. The experimental part of this work is based on a combination of time-domain and frequency-domain thermoreflectance methods with an extended bandwidth ranging from a few kHz to 100 GHz. This unique wide-bandwidth configuration allows a clear distinction between Fourier diffusive and non-Fourier superdiffusive heat propagation in semiconductor materials. For diffusive processes, we also demonstrate our ability to simultaneously measure the thermal conductivity, heat capacity and interface thermal resistance of several materials over 3 decades of thermal conductivity. Thermal transport in semiconductor thin films deviates from conventional Brownian motion, exhibiting superdiffusive behaviour. Here, pump-probe thermoreflectance measurements on InGaAs enable the investigation of heat propagation over an extended bandwidth ranging from a few kHz to 100 GHz.
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页数:9
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