Microscopic modeling of non-normal incidence vertical external cavity surface-emitting laser cavities
Affiliation
Program in Applied Mathematics, University of ArizonaArizona Center for Mathematical Sciences
College of Optical Sciences, University of Arizona
Issue Date
2021
Metadata
Show full item recordPublisher
American Institute of Physics Inc.Citation
McLaren, S., Kilen, I., & Moloney, J. V. (2021). Microscopic modeling of non-normal incidence vertical external cavity surface-emitting laser cavities. Applied Physics Letters, 118(12), 121103.Journal
Applied Physics LettersRights
Copyright © 2021 Author(s).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
The optimization of a V-cavity geometry to obtain intense ultrafast pulses for a modelocked vertical external-cavity surface-emitting laser is studied using an expanded form of the transverse Maxwell semiconductor Bloch equations. The influence of the incidence angle and relative cavity arm lengths is considered with respect to both the pump-probe computed instantaneous gain and group delay dispersion and the converged modelocked state. Changes in the angle are seen to lead to modest changes in dispersion but significant deformations of the modelocked pulse. Large changes in relative arm lengths are seen to lead to modest changes in the modelocked pulse with optimal pulses being observed with a 1:1 arm length ratio. The underlying microscopic dynamics are shown to drive these behaviors. This work provides a theoretical means to optimize experimental cavity geometry for desirable modelocking behaviors. © 2021 Author(s).Note
12 month embargo; published online: 24 March 2021ISSN
0003-6951Version
Final published versionae974a485f413a2113503eed53cd6c53
10.1063/5.0040185