Nonlinear and Nonequilibrium Dynamics of Quantum-Dot Optoelectronic Devices
Softcover reprint of the original 1st ed. 2015
Book Details
Format
Paperback / Softback
Book Series
Springer Theses
ISBN-10
331979843X
ISBN-13
9783319798431
Edition
Softcover reprint of the original 1st ed. 2015
Publisher
Springer International Publishing AG
Imprint
Springer International Publishing AG
Country of Manufacture
CH
Country of Publication
GB
Publication Date
Mar 21st, 2019
Print length
193 Pages
Product Classification:
Optical physicsLaser physicsQuantum physics (quantum mechanics & quantum field theory)Quantum physics (quantum mechanics and quantum field theory)Mechanical engineeringElectronic devices & materialsElectronic devices and materialsOther technologies & applied sciencesOther technologies and applied sciences
Ksh 16,200.00
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This thesis sheds light on the unique dynamics of optoelectronic devices based on semiconductor quantum-dots.
This thesis sheds light on the unique dynamics of optoelectronic devices based on semiconductor quantum-dots. The complex scattering processes involved in filling the optically active quantum-dot states and the presence of charge-carrier nonequilibrium conditions are identified as sources for the distinct dynamical behavior of quantum-dot based devices. Comprehensive theoretical models, which allow for an accurate description of such devices, are presented and applied to recent experimental observations. The low sensitivity of quantum-dot lasers to optical perturbations is directly attributed to their unique charge-carrier dynamics and amplitude-phase-coupling, which is found not to be accurately described by conventional approaches. The potential of quantum-dot semiconductor optical amplifiers for novel applications such as simultaneous multi-state amplification, ultra-wide wavelength conversion, and coherent pulse shaping is investigated. The scattering mechanisms and the unique electronic structure of semiconductor quantum-dots are found to make such devices prime candidates for the implementation of next-generation optoelectronic applications, which could significantly simplify optical telecommunication networks and open up novel high-speed data transmission schemes.
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