High performance electrically pumped semiconductor lasers

Quantum Cascade Laser is a unipolar semiconductor optoelectronic device based on inter-subband electron leap with wavelengths covering the mid- and far-infrared to terahertz bands, which has important applications in gas composition detection, medical diagnosis, hazardous materials telemetry, and fr...

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Main Author: Gao, Mengping
Other Authors: Wang Qijie
Format: Thesis-Master by Coursework
Language:English
Published: Nanyang Technological University 2022
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Online Access:https://hdl.handle.net/10356/157127
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1571272023-07-04T17:44:03Z High performance electrically pumped semiconductor lasers Gao, Mengping Wang Qijie School of Electrical and Electronic Engineering qjwang@ntu.edu.sg Engineering::Electrical and electronic engineering Quantum Cascade Laser is a unipolar semiconductor optoelectronic device based on inter-subband electron leap with wavelengths covering the mid- and far-infrared to terahertz bands, which has important applications in gas composition detection, medical diagnosis, hazardous materials telemetry, and free-space communication. The long-wave infrared band contains many fingerprint absorption peaks of gas molecules and is located within a low-loss atmospheric window, so the development of high-power long-wave infrared quantum cascade laser research is of great importance in the fields of gas sensing, free-space communication and infrared countermeasures. Current quantum cascade lasers have achieved watt-level continuous output in the 3-5 μm band range, however, the inherent technical limitations of 8-14 μm long-wave devices (e.g., increased optical loss of free carriers, reduced inter-subband gain, and weakened optical confinement) cause the performance of long-wave devices to decrease rapidly with increasing wavelength. In this article, different designs and performances of active regions of quantum cascade lasers are discussed, including several commonly used active region designs for quantum cascade lasers at long wavelengths, such as bound to continuum, resonant-phonon, and chirped superlattice. In addition, the waveguide structure of the laser also largely determines the performance of the quantum cascade laser, and the design of the waveguide structure not only focuses on the optimization and enhancement of the device performance, but also takes into account some problems encountered in the device fabrication process. I will use a software named “erwinjr” to do the simulation of the design of structure. After this section, I will learn about spectroscopy and how to measure the performance of a quantum cascade laser. In characterizing the performance of a device, there are several important parameters such as light-current-voltage, and spectral characteristics. The process of making a pulsed laser and the devices and processes to characterize the corresponding properties of a laser will also be mentioned in this article. Master of Science (Electronics) 2022-05-05T02:38:13Z 2022-05-05T02:38:13Z 2022 Thesis-Master by Coursework Gao, M. (2022). High performance electrically pumped semiconductor lasers. Master's thesis, Nanyang Technological University, Singapore. https://hdl.handle.net/10356/157127 https://hdl.handle.net/10356/157127 en application/pdf Nanyang Technological University
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering::Electrical and electronic engineering
spellingShingle Engineering::Electrical and electronic engineering
Gao, Mengping
High performance electrically pumped semiconductor lasers
description Quantum Cascade Laser is a unipolar semiconductor optoelectronic device based on inter-subband electron leap with wavelengths covering the mid- and far-infrared to terahertz bands, which has important applications in gas composition detection, medical diagnosis, hazardous materials telemetry, and free-space communication. The long-wave infrared band contains many fingerprint absorption peaks of gas molecules and is located within a low-loss atmospheric window, so the development of high-power long-wave infrared quantum cascade laser research is of great importance in the fields of gas sensing, free-space communication and infrared countermeasures. Current quantum cascade lasers have achieved watt-level continuous output in the 3-5 μm band range, however, the inherent technical limitations of 8-14 μm long-wave devices (e.g., increased optical loss of free carriers, reduced inter-subband gain, and weakened optical confinement) cause the performance of long-wave devices to decrease rapidly with increasing wavelength. In this article, different designs and performances of active regions of quantum cascade lasers are discussed, including several commonly used active region designs for quantum cascade lasers at long wavelengths, such as bound to continuum, resonant-phonon, and chirped superlattice. In addition, the waveguide structure of the laser also largely determines the performance of the quantum cascade laser, and the design of the waveguide structure not only focuses on the optimization and enhancement of the device performance, but also takes into account some problems encountered in the device fabrication process. I will use a software named “erwinjr” to do the simulation of the design of structure. After this section, I will learn about spectroscopy and how to measure the performance of a quantum cascade laser. In characterizing the performance of a device, there are several important parameters such as light-current-voltage, and spectral characteristics. The process of making a pulsed laser and the devices and processes to characterize the corresponding properties of a laser will also be mentioned in this article.
author2 Wang Qijie
author_facet Wang Qijie
Gao, Mengping
format Thesis-Master by Coursework
author Gao, Mengping
author_sort Gao, Mengping
title High performance electrically pumped semiconductor lasers
title_short High performance electrically pumped semiconductor lasers
title_full High performance electrically pumped semiconductor lasers
title_fullStr High performance electrically pumped semiconductor lasers
title_full_unstemmed High performance electrically pumped semiconductor lasers
title_sort high performance electrically pumped semiconductor lasers
publisher Nanyang Technological University
publishDate 2022
url https://hdl.handle.net/10356/157127
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