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Kategorie szczegółowe BISAC

Nonlinear and Nonequilibrium Dynamics of Quantum-Dot Optoelectronic Devices

ISBN-13: 9783319798431 / Angielski / Miękka / 2019 / 193 str.

Benjamin Lingnau
Nonlinear and Nonequilibrium Dynamics of Quantum-Dot Optoelectronic Devices Benjamin Lingnau   9783319798431 Springer International Publishing AG - książkaWidoczna okładka, to zdjęcie poglądowe, a rzeczywista szata graficzna może różnić się od prezentowanej.

Nonlinear and Nonequilibrium Dynamics of Quantum-Dot Optoelectronic Devices

ISBN-13: 9783319798431 / Angielski / Miękka / 2019 / 193 str.

Benjamin Lingnau
cena 402,53
(netto: 383,36 VAT:  5%)

Najniższa cena z 30 dni: 385,52
Termin realizacji zamówienia:
ok. 16-18 dni roboczych.

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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.

Kategorie:
Nauka, Fizyka
Kategorie BISAC:
Technology & Engineering > Optics
Technology & Engineering > Materials Science - Electronic Materials
Technology & Engineering > Electronics - Semiconductors
Wydawca:
Springer International Publishing AG
Język:
Angielski
ISBN-13:
9783319798431
Rok wydania:
2019
Wydanie:
Softcover Repri
Ilość stron:
193
Waga:
0.30 kg
Wymiary:
23.39 x 15.6 x 1.12
Oprawa:
Miękka
Wolumenów:
01
Dodatkowe informacje:
Wydanie ilustrowane

Introduction.- Theory of Quantum-Dot Optical Devices.- Quantum-Dot Laser Dynamics.- Quantum-Dot Optical Amplifiers.- Summary and Outlook.


Benjamin Lingnau received his B.Sc in physics in 2009 and his M.Sc in 2011 from TU Berlin. He graduated and received the Dr. rer. nat. from TU Berlin in 2015. His scientific interests include nonlinear laser dynamics and dynamics of semiconductor quantum-dot optoelectronic devices. He has authored and co-authored 18 peer-reviewed scientific papers.

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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