Design, fabrication, and characterization of semiconductor transverse Bragg resonance lasers

Controlling the spatial modes of a laser cavity is fundamental for improving the beam quality of a laser and achieving highly efficient coupling of power into an optical system. High-power applications are particularly challenging due to the conflicting requirements for large modal volume, to preven...

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Main Author: Choi, John M.
Format: Others
Published: 2007
Online Access:https://thesis.library.caltech.edu/636/1/Choi_jm_2007.pdf
Choi, John M. (2007) Design, fabrication, and characterization of semiconductor transverse Bragg resonance lasers. Dissertation (Ph.D.), California Institute of Technology. doi:10.7907/NG25-BN55. https://resolver.caltech.edu/CaltechETD:etd-02142007-151137 <https://resolver.caltech.edu/CaltechETD:etd-02142007-151137>
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spelling ndltd-CALTECH-oai-thesis.library.caltech.edu-6362019-12-22T03:05:59Z Design, fabrication, and characterization of semiconductor transverse Bragg resonance lasers Choi, John M. Controlling the spatial modes of a laser cavity is fundamental for improving the beam quality of a laser and achieving highly efficient coupling of power into an optical system. High-power applications are particularly challenging due to the conflicting requirements for large modal volume, to prevent facet damage by reducing energy density, and narrow width, for single-mode operation of an index-guided waveguide. By replacing traditional index confinement with Bragg reflection in the transverse direction, single-mode operation can be achieved even for large modal volumes. These grating confined structures, transverse Bragg resonance (TBR) waveguides, have the unique ability to support localized modes above the light line. Such modes normally couple to radiation modes of the cladding when the confinement mechanism is total-internal-reflection and are too lossy to be considered guided modes. However, for Bragg resonance confined modes, the modal loss can be designed by careful optical mode engineering to introduce a large loss discrimination that can favor a single spatial, low-loss mode. Semiconductor TBR lasers in an InP/InGaAsP/InGaAs material system were designed, fabricated, and characterized to investigate this property. Two regions of operation are identified for TBR waveguides, and, while transverse mode selection is provided by a grating, longitudinal mode control is found to be also necessary to restrict operation to the region that supports modes above the light line. 2007 Thesis NonPeerReviewed application/pdf https://thesis.library.caltech.edu/636/1/Choi_jm_2007.pdf https://resolver.caltech.edu/CaltechETD:etd-02142007-151137 Choi, John M. (2007) Design, fabrication, and characterization of semiconductor transverse Bragg resonance lasers. Dissertation (Ph.D.), California Institute of Technology. doi:10.7907/NG25-BN55. https://resolver.caltech.edu/CaltechETD:etd-02142007-151137 <https://resolver.caltech.edu/CaltechETD:etd-02142007-151137> https://thesis.library.caltech.edu/636/
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description Controlling the spatial modes of a laser cavity is fundamental for improving the beam quality of a laser and achieving highly efficient coupling of power into an optical system. High-power applications are particularly challenging due to the conflicting requirements for large modal volume, to prevent facet damage by reducing energy density, and narrow width, for single-mode operation of an index-guided waveguide. By replacing traditional index confinement with Bragg reflection in the transverse direction, single-mode operation can be achieved even for large modal volumes. These grating confined structures, transverse Bragg resonance (TBR) waveguides, have the unique ability to support localized modes above the light line. Such modes normally couple to radiation modes of the cladding when the confinement mechanism is total-internal-reflection and are too lossy to be considered guided modes. However, for Bragg resonance confined modes, the modal loss can be designed by careful optical mode engineering to introduce a large loss discrimination that can favor a single spatial, low-loss mode. Semiconductor TBR lasers in an InP/InGaAsP/InGaAs material system were designed, fabricated, and characterized to investigate this property. Two regions of operation are identified for TBR waveguides, and, while transverse mode selection is provided by a grating, longitudinal mode control is found to be also necessary to restrict operation to the region that supports modes above the light line.
author Choi, John M.
spellingShingle Choi, John M.
Design, fabrication, and characterization of semiconductor transverse Bragg resonance lasers
author_facet Choi, John M.
author_sort Choi, John M.
title Design, fabrication, and characterization of semiconductor transverse Bragg resonance lasers
title_short Design, fabrication, and characterization of semiconductor transverse Bragg resonance lasers
title_full Design, fabrication, and characterization of semiconductor transverse Bragg resonance lasers
title_fullStr Design, fabrication, and characterization of semiconductor transverse Bragg resonance lasers
title_full_unstemmed Design, fabrication, and characterization of semiconductor transverse Bragg resonance lasers
title_sort design, fabrication, and characterization of semiconductor transverse bragg resonance lasers
publishDate 2007
url https://thesis.library.caltech.edu/636/1/Choi_jm_2007.pdf
Choi, John M. (2007) Design, fabrication, and characterization of semiconductor transverse Bragg resonance lasers. Dissertation (Ph.D.), California Institute of Technology. doi:10.7907/NG25-BN55. https://resolver.caltech.edu/CaltechETD:etd-02142007-151137 <https://resolver.caltech.edu/CaltechETD:etd-02142007-151137>
work_keys_str_mv AT choijohnm designfabricationandcharacterizationofsemiconductortransversebraggresonancelasers
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