
Optical Waveguide Theory by the Finite Element Method
Masanori Koshiba(Author)
Kluwer Academic Publishers
Published on 30. June 1993
Book
Hardback
272 pages
978-0-7923-2080-7 (ISBN)
Description
Recent advances in the field of guided-wave optics, such as fibre optics and integrated optics, have included the introduction of various optical waveguides. Computational tools for modelling and simulation are essential for a successful design, optimization, and realization of the optical waveguides. Despite its relatively brief existence, the finite element method has grown into a powerful and efficient tool for solving the most general optical waveguide problems. In this book, starting with a brief review of electromagnetic theory for optical waveguide analysis, the concepts of the finite element method and its fundamentals are discussed in detail. Current topics of the application of the finite element method to various optical waveguide problems, such as planar optical waveguides, optical channel waveguides, optical fibres, polarization-maintaining optical fibres, optical gratings, optical waveguide discontinuities, nonlinear optical waveguides, optical solitons and quantum well structures, are described, including many illustrations.
More details
Series
Language
English
Place of publication
United States
Target group
Professional and scholarly
Product notice
sewn/stitched
Cloth over boards
Illustrations
illustrations
Dimensions
Height: 241 mm
Width: 160 mm
Thickness: 22 mm
Weight
600 gr
ISBN-13
978-0-7923-2080-7 (9780792320807)
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Schweitzer Classification
Other editions
Additional editions

Masanori Koshiba
Optical Waveguide Theory by the Finite Element Method
Book
11/2012
Springer
€53.49
Shipment within 15-20 days
Content
1. Finite Element Method. 2. Planar Optical Waveguides. 3. Optical Channel Waveguides. 4. Optical Fibres. 5. Polarization-Maintaining Optical Fibres. 6. Optical Gratings. 7. Optical Waveguide Discontinuities. 8. Nonlinear Optical Waveguide. 9. Optical Solitons. 10. Quantum Well Structures.