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Semiconductor-Laser Physics (Paperback, Softcover reprint of the original 1st ed. 1994): Weng W. Chow, Stephan W. Koch, Murray... Semiconductor-Laser Physics (Paperback, Softcover reprint of the original 1st ed. 1994)
Weng W. Chow, Stephan W. Koch, Murray III Sargent
R1,625 Discovery Miles 16 250 Ships in 10 - 15 working days

Semiconductor-Laser Physics discusses the underlying physics and operational principles of semiconductor lasers. The optical and electronic properties of the semiconductor medium are analyzed in detail, including quantum confinement and gain engineering effects. A semiclassical and a quantum version of the laser theory are presented, including an analysis of single- and multimode operation, instabilities, laser arrays, unstable resonators, and microcavity lasers.

Semiconductor-Laser Fundamentals - Physics of the Gain Materials (Paperback, Softcover reprint of hardcover 1st ed. 1999): Weng... Semiconductor-Laser Fundamentals - Physics of the Gain Materials (Paperback, Softcover reprint of hardcover 1st ed. 1999)
Weng W. Chow, Stephan W. Koch
R1,557 Discovery Miles 15 570 Ships in 10 - 15 working days

This in-depth title discusses the underlying physics and operational principles of semiconductor lasers. It analyzes the optical and electronic properties of the semiconductor medium in detail, including quantum confinement and gain-engineering effects. The text also includes recent developments in blue-emitting semiconductor lasers.

Semiconductor-Laser Fundamentals - Physics of the Gain Materials (Hardcover, 1999 ed.): Weng W. Chow, Stephan W. Koch Semiconductor-Laser Fundamentals - Physics of the Gain Materials (Hardcover, 1999 ed.)
Weng W. Chow, Stephan W. Koch
R1,715 Discovery Miles 17 150 Ships in 10 - 15 working days

This book presents an in-depth discussion of the semiconductor-laser gain medium. The optical and electronic properties of semiconductors, particularly semiconductor quantum-well systems, are analzyed in detail, covering a wide variety of near-infrared systems with or without strain, as well as wide-gap materials such as the group-III nitride compounds or the II-VI materials. The important bandstructure modifications and Coulomb interaction effects are discussed, including the solution of the longstanding semiconductor laser lineshape problem. Quantitative comparisons between measured and predicted gain/absorption and refractive index spectra for a wide variety of semiconductor-laser materials enable the theoretical results to be used directly in the engineering of advanced laser and amplifier structures. A wealth of examples for many different material combinations bestow the book with quantitative and predictive value for a wide variety of applications.

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