Trade‐Off between Second‐ and Third‐Order Nonlinearities, Ultrafast Free Carrier Absorption and Material Damage in Silicon Nanoparticles
Affiliation
Arizona Center for Mathematical Sciences, University of ArizonaWyant College of Optical Sciences, University of Arizona
Issue Date
2022-11-15Keywords
free carrier absorptionharmonic generation
lattice resonances
material damage
Mie resonances
silicon photonics
ultrashort lasers
Metadata
Show full item recordPublisher
WileyCitation
Rudenko, A., Han, A., & Moloney, J. V. (2022). Trade-Off between Second- and Third-Order Nonlinearities, Ultrafast Free Carrier Absorption and Material Damage in Silicon Nanoparticles. Advanced Optical Materials.Journal
Advanced Optical MaterialsRights
© 2022 Wiley-VCH GmbH.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
Reaching the optimal second- and third-order nonlinear conversion efficiencies while avoiding undesirable free carrier absorption losses and material damage in ultrashort laser-excited nanostructures is a challenging obstacle in all-dielectric ultrafast nanophotonics. In order to elucidate the main aspects of this problem, a multi-physical model is developed, coupling nonlinear Maxwell equations supplied by surface and bulk nonlinearities with free carrier hydrodynamic equations for electron–hole plasma kinetics and electron-ion transfer for silicon. The maximum feasible efficiencies for a single spherical particle supporting different electric and magnetic resonances are compared, and the harmonic yields are further optimized by tuning lattice resonances in a periodic arrangement of nanoparticles. Results support the dominant role of magnetic dipole and quadrupole contributions in the enhancement of the third harmonic and the electric dipole for the second harmonic, as well as the possibility to further improve the conversion of both harmonics simultaneously at least by two orders of magnitude by designing properly the resonant metasurface.Note
12 month embargo; first published: 15 November 2022ISSN
2195-1071EISSN
2195-1071Version
Final accepted manuscriptSponsors
Air Force Office of Scientific Researchae974a485f413a2113503eed53cd6c53
10.1002/adom.202201654