Modelling and Simulation of Plasmonic Waveguides and Nanolasers
abstract: This thesis summarizes modeling and simulation of plasmonic waveguides and nanolasers. The research includes modeling of dielectric constants of doped semiconductor as a potential plasmonic material, simulation of plasmonic waveguides with different configurations and geometries, simulatio...
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2014
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ndltd-asu.edu-item-248962018-06-22T03:04:56Z Modelling and Simulation of Plasmonic Waveguides and Nanolasers abstract: This thesis summarizes modeling and simulation of plasmonic waveguides and nanolasers. The research includes modeling of dielectric constants of doped semiconductor as a potential plasmonic material, simulation of plasmonic waveguides with different configurations and geometries, simulation and design of plasmonic nanolasers. In the doped semiconductor part, a more accurate model accounting for dielectric constant of doped InAs was proposed. In the model, Interband transitions accounted for by Adachi's model considering Burstein-Moss effect and free electron effect governed by Drude model dominate in different spectral regions. For plasmonic waveguide part, Insulator-Metal-Insulator (IMI) waveguide, silver nanowire waveguide with and without substrate, Metal-Semiconductor-Metal (MSM) waveguide and Metal-Insulator-Semiconductor-Insulator-Metal (MISIM) waveguide were investigated respectively. Modal analysis was given for each part. Lastly, a comparative study of plasmonic and optical modes in an MSM disk cavity was performed by FDTD simulation for room temperature at the telecommunication wavelength. The results show quantitatively that plasmonic modes have advantages over optical modes in the scalability down to small size and the cavity Quantum Electrodynamics(QED) effects due to the possibility of breaking the diffraction limit. Surprisingly for lasing characteristics, though plasmonic modes have large loss as expected, minimal achievable threshold can be attained for whispering gallery plasmonic modes with azimuthal number of 2 by optimizing cavity design at 1.55µm due to interplay of metal loss and radiation loss. Dissertation/Thesis Wang, Haotong (Author) Ning, Cunzheng (Advisor) Palais, Joseph (Committee member) Yu, Hongbin (Committee member) Arizona State University (Publisher) Electrical engineering laser plasmonic material plasmonics waveguide eng 57 pages M.S. Electrical Engineering 2014 Masters Thesis http://hdl.handle.net/2286/R.I.24896 http://rightsstatements.org/vocab/InC/1.0/ All Rights Reserved 2014 |
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language |
English |
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Dissertation |
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Electrical engineering laser plasmonic material plasmonics waveguide |
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Electrical engineering laser plasmonic material plasmonics waveguide Modelling and Simulation of Plasmonic Waveguides and Nanolasers |
description |
abstract: This thesis summarizes modeling and simulation of plasmonic waveguides and nanolasers. The research includes modeling of dielectric constants of doped semiconductor as a potential plasmonic material, simulation of plasmonic waveguides with different configurations and geometries, simulation and design of plasmonic nanolasers. In the doped semiconductor part, a more accurate model accounting for dielectric constant of doped InAs was proposed. In the model, Interband transitions accounted for by Adachi's model considering Burstein-Moss effect and free electron effect governed by Drude model dominate in different spectral regions. For plasmonic waveguide part, Insulator-Metal-Insulator (IMI) waveguide, silver nanowire waveguide with and without substrate, Metal-Semiconductor-Metal (MSM) waveguide and Metal-Insulator-Semiconductor-Insulator-Metal (MISIM) waveguide were investigated respectively. Modal analysis was given for each part. Lastly, a comparative study of plasmonic and optical modes in an MSM disk cavity was performed by FDTD simulation for room temperature at the telecommunication wavelength. The results show quantitatively that plasmonic modes have advantages over optical modes in the scalability down to small size and the cavity Quantum Electrodynamics(QED) effects due to the possibility of breaking the diffraction limit. Surprisingly for lasing characteristics, though plasmonic modes have large loss as expected, minimal achievable threshold can be attained for whispering gallery plasmonic modes with azimuthal number of 2 by optimizing cavity design at 1.55µm due to interplay of metal loss and radiation loss. === Dissertation/Thesis === M.S. Electrical Engineering 2014 |
author2 |
Wang, Haotong (Author) |
author_facet |
Wang, Haotong (Author) |
title |
Modelling and Simulation of Plasmonic Waveguides and Nanolasers |
title_short |
Modelling and Simulation of Plasmonic Waveguides and Nanolasers |
title_full |
Modelling and Simulation of Plasmonic Waveguides and Nanolasers |
title_fullStr |
Modelling and Simulation of Plasmonic Waveguides and Nanolasers |
title_full_unstemmed |
Modelling and Simulation of Plasmonic Waveguides and Nanolasers |
title_sort |
modelling and simulation of plasmonic waveguides and nanolasers |
publishDate |
2014 |
url |
http://hdl.handle.net/2286/R.I.24896 |
_version_ |
1718700363787272192 |