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Design, Fabrication, and Characterization of Terahertz Quantum Cascade Lasers

Design, Fabrication, and Characterization of Terahertz Quantum Cascade Lasers PDF Author:
Publisher:
ISBN:
Category :
Languages : en
Pages :

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Design, Fabrication, and Characterization of Terahertz Quantum Cascade Lasers

Design, Fabrication, and Characterization of Terahertz Quantum Cascade Lasers PDF Author:
Publisher:
ISBN:
Category :
Languages : en
Pages :

Book Description


Design, Fabrication, and Characterization of Quantum Cascade Terahertz Emitters

Design, Fabrication, and Characterization of Quantum Cascade Terahertz Emitters PDF Author: Vinod M. Menon
Publisher:
ISBN:
Category : Laser beams
Languages : en
Pages : 230

Book Description


Design, Analysis, and Characterization of Indirectly-pumped Terahertz Quantum Cascade Lasers

Design, Analysis, and Characterization of Indirectly-pumped Terahertz Quantum Cascade Lasers PDF Author: Seyed Ghasem Razavipour
Publisher:
ISBN:
Category :
Languages : en
Pages : 129

Book Description
Quantum cascade laser (QCL), as a unipolar semiconductor laser based on intersubband transitions in quantum wells, covers a large portion of the Mid and Far Infrared electromagnetic spectrum. The frequency of the optical transition can be determined by engineering the layer sequence of the heterostructure. The focus of this work is on Terahertz (THz) frequency range (frequency of 1 - 10 THz and photon energy of ~ 4 - 40 meV), which is lacking of high power, coherent, and efficient narrowband radiation sources. THz QCL, demonstrated in 2002, as a perfect candidate of coherent THz source, is still suffering from the empirical operating temperature limiting factor of T [ap] h̳[omega]/kB, which allows this source to work only under a cryogenic system. Most of high performance THz QCLs, including the world record design which lased up to ~ 200 K, are based on a resonant phonon (RP) scheme, whose population inversion is always less than 50%. The indirectly-pumped (IDP) QCL, nicely implemented in MIR frequency, starts to be a good candidate to overcome the aforementioned limiting factor of RP-QCL. A rate equation (RE) formalism, which includes both coherent and incoherent transport process, will be introduced to model the carrier transport of all presented structures in this thesis. The second order tunneling which employed the intrasubband roughness and impurity scattering, was implemented in our model to nicely predict the behavior of the QCL designs. This model, which is easy to implement and fast to calculate, could help us to engineer the electron wavefunctions of the structure with optimization tools. We developed a new design scheme which employs the phonon scattering mechanism for both injecting carrier to the upper lasing state and extracting carrier from lower lasing state. Since there is no injection/extraction state to be in resonance with lasing states, this simple design scheme does not suffer from broadening due to the tunneling. Finally, three different THz IDP-QCLs, based on phonon-photon-phonon (3P) scheme were designed, grown, fabricated, and characterized. The performance of those structures in terms of operating temperature, threshold current density, maximum current density, output optical power, lasing frequency, differential resistance at threshold, intermediate resonant current before threshold, and kBT/h̳[omega] factor will be compared. We could improve the kBT/h̳[omega] factor of the 3P-QCL design from 0.9 in first iteration to 1.3 and the output optical power of the structure from 0.9 mW in first design to 3.4 mW. The performance of the structure in terms of intermediate resonant current and the change in differential resistance at threshold was improved.

Mid-infrared Quantum Cascade Lasers Modeling, Fabrication and Characterization

Mid-infrared Quantum Cascade Lasers Modeling, Fabrication and Characterization PDF Author: Luyao Xu
Publisher:
ISBN:
Category :
Languages : en
Pages : 60

Book Description
In the past 20 years, mid-infrared Quantum Cascade Lasers (mid-IR QCLs) have been experiencing rapid development and have become practical mid-IR sources for a variety of applications. There is particular technological interest in high efficiency lasers designed for the midwave infrared (MWIR) atmospheric window (3-5 [mu]m) and longwave infrared (LWIR) atmospheric window (8-13 [mu]m). This work presents a systematic study over mid-IR QCLs, including theoractical modeling, device fabrication and characterization. An effective bandstructure calculation method is implemented in this work for active region modeling. A standard process for fabricating mid-IR QCLs has been developed, based on which both LWIR (~ 9 [mu]m) and MWIR (~ 4 [mu]m) QCLs have been successfully demonstrated. Comprehensive testing results are analyzed and discussed, yielding valuable information about the current device design.

Characterization and Analysis of Highly Diagonal Terahertz Quantum Cascade Lasers

Characterization and Analysis of Highly Diagonal Terahertz Quantum Cascade Lasers PDF Author: Chun Wang Ivan Chan
Publisher:
ISBN:
Category :
Languages : en
Pages : 157

Book Description
The as yet unattained milestone of room-temperature operation is essential for establishing Terahertz Quantum Cascade Lasers (THz QCLs) as practical sources of THz radiation. Temperature performance is hypothesized to be limited by upper laser level lifetime reduction due to non-radiative scattering, particularly by longitudinal optical phonons. To address this issue, this work studies highly "diagonal" QCLs, where the upper and lower laser level wave functions are spatially separated to preserve upper laser level lifetime, as well as several other issues relevant to high temperature performance. The highly diagonal devices of this work performed poorly, but the analysis herein nevertheless suggest that diagonality as a design strategy cannot yet be ruled out. Other causes of poor performance in the lasers are identified, and suggestions for future designs are made.

THz and Mid-IR Quantum Cascade Lasers and Light Emitting Devices

THz and Mid-IR Quantum Cascade Lasers and Light Emitting Devices PDF Author: Miriam Serena Vitiello
Publisher:
ISBN:
Category :
Languages : en
Pages : 240

Book Description


Design, Fabrication, and Characterization of Semiconductor Transverse Bragg Resonance Lasers

Design, Fabrication, and Characterization of Semiconductor Transverse Bragg Resonance Lasers PDF Author: John M. Choi
Publisher:
ISBN:
Category : Electronic dissertations
Languages : en
Pages : 236

Book Description


Design and Characterization of Quantum-Cascade Lasers

Design and Characterization of Quantum-Cascade Lasers PDF Author: Maytee Lerttamrab
Publisher:
ISBN:
Category :
Languages : en
Pages :

Book Description


Design and Characterization of a Double-transition Quantum Cascade Laser

Design and Characterization of a Double-transition Quantum Cascade Laser PDF Author: Jingyuan Linda Zhang
Publisher:
ISBN:
Category :
Languages : en
Pages : 0

Book Description


High Power Mid-infrared Quantum Cascade Laser Array for Standoff Photoacoustic Chemical Detection

High Power Mid-infrared Quantum Cascade Laser Array for Standoff Photoacoustic Chemical Detection PDF Author: Xing Chen
Publisher:
ISBN:
Category :
Languages : en
Pages : 364

Book Description
Quantum cascade lasers (QCLs) are compact, portable, powerful semiconductor laser sources with emission wavelengths from mid-infrared (mid-IR) to terahertz (THz) regions of the electromagnetic spectrum. Mid-IR (i.e. wavelengths from 3 to 20 μm) QCLs are of great importance in a wide range of applications such as trace gas sensing, environmental monitoring, free space communication, medical diagnosis and so on. High power QCLs are particularly important to applications such as infrared counter measure (IRCM) and standoff chemical detections. In such applications, the system performances critically depend on the amount of power a QCL can produce. This dissertation includes two major studies: the first part of the dissertation includes design, fabrication and characterization of high power mid-IR QCL arrays; the second part involves standoff chemical detection using QCLs as laser sources and photoacoustic effect as sensing technologies.