Thermal relaxation of electrons in semiconductors
ORAL
Abstract
Using a novel first-principles framework, we study the timescales of energy transfer and thermalization of highly energetic "hot" electrons with an atomic lattice for semiconductors [1]. In particular, we compute phonon-specific temperatures and account for both phonon-phonon and electron-phonon interactions in our semiclassical description. For polar and nonpolar semiconductors, we show that the coupled phonon and electron dynamics departs qualitatively from the two-temperature (2T) physical picture over time scales ranging from 1 to 100 ps after excitation. We demonstrate that this disagreement stems from the breakdown of the hypothesis of thermal equilibrium within the lattice subsystem, and generalize the 2T model of Allen [2] to account for slow phonon thermalization as a limiting step of electron-phonon thermalization. We discuss how our model can be used to extract more information on the electron-phonon interactions from time-resolved spectroscopy experiments.
[1] Sadasivam, Chan, Darancet PRL 119, 136602 (2017)
[2] Allen, Phys. Rev. Lett. 59, 1460 (1987)
[1] Sadasivam, Chan, Darancet PRL 119, 136602 (2017)
[2] Allen, Phys. Rev. Lett. 59, 1460 (1987)
*Use of the Center for Nanoscale Materials, an Office of Science user facility, was supported by the U.S. Department of Energy, Office of Science, Office of Basic Energy Sciences, under Contract No. DE-AC02-06CH11357.
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Presenters
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Pierre Darancet
- Argonne Natl Lab
- Argonne National Lab