This work introduces a novel framework for analyzing wave propagation in hydro-semiconductors by simultaneously incorporating fractional-order heat conduction, temperature-dependent thermal conductivity, and rotational effects into a unified photo-thermoelastic model. Unlike previous studies that considered these effects separately, the present model couples nonlocal fractional heat transport with variable thermal conductivity in a rotating semiconductor medium. Analytical solutions are obtained using the normal mode method, and numerical results illustrate how fractional derivatives and temperature-dependent conductivity jointly reshape thermal, mechanical, and carrier wave behaviors compared to classical theories. The findings provide new physical insights into nonlocal, memory-driven, and anisotropic transport phenomena in advanced semiconductor systems, which are not captured by conventional thermoelasticity models.
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Ibrahim S. Elshazly
Farouq Alshormani
Mohamad Abou El Nasr
Scientific Reports
University of Guelph
King Saud University
Zagazig University
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Elshazly et al. (Tue,) studied this question.
www.synapsesocial.com/papers/68e7ba40ccde5f1021f64a20 — DOI: https://doi.org/10.1038/s41598-025-18621-7
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