Self-consistent Maxwell–Bloch model for highorder harmonic generation in nanostructured semiconductors
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Final Accepted Manuscript
Affiliation
Arizona Center for Mathematical Sciences, University of ArizonaWyant College of Optical Sciences, University of Arizona
Issue Date
2022-07-06
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Chinese Laser PressCitation
A. Rudenko, M. K. Hagen, J. Hader, S. W. Koch, and J. V. Moloney, "Self-consistent Maxwell–Bloch model for highorder harmonic generation in nanostructured semiconductors", Photon. Res. 10 (9), 2099 (2022).Journal
Photonics ResearchRights
© 2022 Chinese Laser Press.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
In pursuit of efficient high-order harmonic conversion in semiconductor devices, modeling insights into the complex interplay among ultrafast microscopic electron–hole dynamics, nonlinear pulse propagation, and field confinement in nanostructured materials are urgently needed. Here, a self-consistent approach coupling semiconductor Bloch and Maxwell equations is applied to compute transmission and reflection high-order harmonic spectra for finite slab and sub-wavelength nanoparticle geometries. An increase in the generated high harmonics by several orders of magnitude is predicted for gallium arsenide nanoparticles with a size maximizing the magnetic dipole resonance. Serving as a conceptual and predictive tool for ultrafast spatiotemporal nonlinear optical responses of nanostructures with arbitrary geometry, our approach is anticipated to deliver new strategies for optimal harmonic manipulation in semiconductor metadevices.Note
12 month embargo; published: 19 August 2022ISSN
2327-9125Version
Final accepted manuscriptSponsors
Air Force Office of Scientific Researchae974a485f413a2113503eed53cd6c53
10.1364/PRJ.463258