Maxwell-Semiconductor Bloch Simulations of High-Harmonic Generation in Finite Thickness Semiconductor Slabs
Affiliation
Arizona Center for Mathematical Sciences, College of Optical Sciences, University of ArizonaIssue Date
2022Keywords
gallium arsenideharmonic generation
Nonlinear optics
semiconductor Bloch equations
ultrashort laser
Metadata
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SPIECitation
Rudenko, A., Hagen, M. K., Hader, J., Kolesik, M., Koch, S. W., & Moloney, J. V. (2022). Maxwell-Semiconductor Bloch Simulations of High-Harmonic Generation in Finite Thickness Semiconductor Slabs. Proceedings of SPIE - The International Society for Optical Engineering, 11999.Rights
Copyright © 2022 SPIE.Collection Information
This item from the UA Faculty Publications collection is made available by the University of Arizona with support from the University of Arizona Libraries. If you have questions, please contact us at repository@u.library.arizona.edu.Abstract
High-order harmonics can be efficiently generated by high power mid-infrared ultrashort laser excitation of semiconductor materials. Interaction of an intense femtosecond pulse with finite structures involves a complex interplay of linear and nonlinear propagation effects and electron-hole carrier dynamics, which can be self-consistently analyzed numerically by a coupled Maxwell-Semiconductor Bloch model. In the current work, such an approach based on a three-band model for gallium arsenide [111] is applied to elucidate the influence of multiple reflections and transmissions from a finite slab on the high-order harmonic emission. Reflected and transmitted spectra including even and odd harmonics are theoretically analyzed as a function of the slab thickness and the field amplitude. Spatial distributions of laser-induced carriers are shown to be strongly inhomogeneous and thickness-dependent. The developed approach opens new frontiers for exploring ultrashort laser interaction regimes with nanostructures of arbitrary geometry. © 2022 SPIENote
Immediate accessISSN
0277-786XISBN
9781510648692Version
Final published versionae974a485f413a2113503eed53cd6c53
10.1117/12.2625903
