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Nonequilibrium optical properties in semiconductors from first principles: A combined theoretical and experimental study of bulk silicon

Academic Article
Publication Date:
2016
abstract:
The calculation of the equilibrium optical properties of bulk silicon by using the Bethe-Salpeter equation solved in the Kohn-Sham basis represents a cornerstone in the development of an ab-initio approach to the optical and electronic properties of materials. Nevertheless, calculations of the transient optical spectrum using the same efficient and successful scheme are scarce. We report, here, a joint theoretical and experimental study of the transient reflectivity spectrum of bulk silicon. Femtosecond transient reflectivity is compared to a parameter-free calculation based on the nonequilibrium Bethe-Salpeter equation. By providing an accurate description of the experimental results we disclose the different phenomena that determine the transient optical response of a semiconductor. We give a parameter-free interpretation of concepts such as bleaching, photoinduced absorption, and stimulated emission, beyond the Fermi golden rule. We also introduce the concept of optical gap renormalization, as a generalization of the known mechanism of band gap renormalization. The present scheme successfully describes the case of bulk silicon, showing its universality and accuracy.
Iris type:
01.01 Articolo in rivista
Keywords:
Nonequilibrium optical properties
List of contributors:
Manzoni, CRISTIAN ANGELO; Sangalli, Davide; Marini, Andrea
Authors of the University:
MANZONI CRISTIAN ANGELO
MARINI ANDREA
SANGALLI DAVIDE
Handle:
https://iris.cnr.it/handle/20.500.14243/320588
Published in:
PHYSICAL REVIEW. B, CONDENSED MATTER AND MATERIALS PHYSICS
Journal
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URL

http://link.aps.org/doi/10.1103/PhysRevB.93.195205
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