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Titlebook: Integrated Optics: Theory and Technology; Robert G. Hunsperger Textbook 19913rd edition Springer-Verlag Berlin Heidelberg 1991 Quantum-wel

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書(shū)目名稱(chēng)Integrated Optics: Theory and Technology
編輯Robert G. Hunsperger
視頻videohttp://file.papertrans.cn/469/468586/468586.mp4
叢書(shū)名稱(chēng)Springer Series in Optical Sciences
圖書(shū)封面Titlebook: Integrated Optics: Theory and Technology;  Robert G. Hunsperger Textbook 19913rd edition Springer-Verlag Berlin Heidelberg 1991 Quantum-wel
描述Professor Hunsperger‘s .Integrated Optics. is one of the few texts that is comprehensive and thorough enough for use both as a classroom text (practice problems are included) and as a specialist‘s reference. The gratifying success of the first two editions and the continuing rapid development of the field necessitated the writing of this third edition. All chapters have been revised and updated, and a new chapter, on quantum well devices, has been added. As in the previous editions, detailed descriptions of the phenomena, devices, and technology used in optical integrated circuits and their relationship to fiber optics are presented. The trend of telecommunications toward the use of single mode systems operating at the longer wavelengths of 1.3 and 1.55 μm is explained and documented with illustrations of recently developed devices and systems. Broader coverage of GaInAsP devices and optical integrated circuits is provided, and the new growth tech- niques of molecular beam epitaxy (MBE) and metal-organic chemical vapor deposition (MOCVD) are described. A discussion of the extensive development of hybrid optical integrated circuits in lithium niobate is also included. .From the revi
出版日期Textbook 19913rd edition
關(guān)鍵詞Quantum-well devices; Semiconductor laser; Waveguides; development; integrated optics; optics; organizatio
版次3
doihttps://doi.org/10.1007/978-3-540-48730-2
isbn_ebook978-3-540-48730-2Series ISSN 0342-4111 Series E-ISSN 1556-1534
issn_series 0342-4111
copyrightSpringer-Verlag Berlin Heidelberg 1991
The information of publication is updating

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Theory of Optical Waveguides,comparison has been made between the physical-optic approach and the ray-optic approach is describing light propagation in a waveguide. In this chapter, the electromagnetic wave theory of the physical-optic approach is developed in detail. Emphasis is placed on the two basic waveguide geometries tha
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Waveguide Fabrication Techniques,ce in the index of refraction between the waveguiding region and the surrounding media. A great many techniques have been devised for producing that required index difference. Each method has particular advantages and disadvantages, and no single method can be said to be clearly superior. The choice
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Losses in Optical Waveguides, as to which modes propagate, the next most important characteristic of a waveguide is the attenuation, or loss, that a light wave experiences as it travels through the guide. This loss is generally attributable to three different mechanisms: scattering, absorption and radiation. Scattering loss usu
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Waveguide Input and Output Couplers,e detail the various coupling techniques that can be used. The methods that are employed for coupling an optical beam between two waveguides are different from those used for coupling an optical beam in free space to a waveguide. Also, some couplers selectively couple energy to a given waveguide mod
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Coupling Between Waveguides,couple one waveguide to another. Couplers of this type are usually called directional couplers because the energy is transferred in a coherent fashion so that the direction of propagation is maintained. Directional couplers have been fabricated in two basic geometries: multilayer planar structures,
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Electro-Optic Modulators,switch, depending on the strength of the interaction between the optical waves and the controlling electrical signal, as well as on the arrangement of input and output ports. The device is considered to be a modulator if its primary function is to impress information on a light wave by temporaly var
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Semiconductor Lasers,emission is that it is possible to design a light source in such a way that stimulated emission of photons will predominate over both spontaneous emission and absorption. If a resonant reflecting structure such as a pair of plane, parallel end faces is provided, a lasing mode can be established and
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