Transmission pulse photoacoustic response of thin semiconductor plate

Author:

Stanimirović Zdravko1ORCID,Stanimirović Ivanka1ORCID,Galović Slobodanka1ORCID,Djordjević Katarina1ORCID,Suljovrujić Edin1ORCID

Affiliation:

1. “Vinča” Institute of Nuclear Sciences—National Institute of thе Republic of Serbia, University of Belgrade , P.O. Box 522, Belgrade 11000, Serbia

Abstract

In modern high-speed semiconductor electronics, there is a high-rate heating of components that is affected by very fast relaxation processes. The relaxation times of these processes should be known for thermal management of these devices. For almost half a century, photoacoustic techniques have been successfully developed and used to investigate physical semiconductor properties. In order to enable observation of fast relaxation processes, the model of pulse photoacoustic signal is proposed that includes influence of thermal relaxations. It is shown that these processes can be observed in a thin semiconductor layer by choosing the frequency of short pulse train and their duty cycle.

Funder

Ministarstvo Prosvete, Nauke i Tehnološkog Razvoja

Publisher

AIP Publishing

Subject

General Physics and Astronomy

Reference63 articles.

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1. Time-resolved photoacoustic response of thin solids measured using minimal volume cell;International Communications in Heat and Mass Transfer;2024-06

2. Thermoelastic component of photoacoustic response calculated by the fractional dual-phase-lag heat conduction theory;International Journal of Heat and Mass Transfer;2024-05

3. Photothermal Pulse Response Analysis of Thin Solid Films in Time-Domain Based on Electro-Thermal Analogies;2023 IEEE 33rd International Conference on Microelectronics (MIEL);2023-10-16

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