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Photonic Band Gap Materials

✍ Scribed by J. D. Joannopoulos (auth.), Costas M. Soukoulis (eds.)


Publisher
Springer Netherlands
Year
1996
Tongue
English
Leaves
724
Series
NATO ASI Series 315
Edition
1
Category
Library

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✦ Synopsis


Photonic band gap crystals offer unique ways to tailor light and the propagation of electromagnetic waves. In analogy to electrons in a crystal, EM waves propagating in a structure with a periodically-modulated dielectric constant are organized into photonic bands separated by gaps in which propagating states are forbidden. Proposed applications of such photonic band gap crystals, operating at frequencies from microwave to optical, include zero- threshold lasers, low-loss resonators and cavities, and efficient microwave antennas. Spontaneous emission is suppressed for photons in the photonic band gap, offering novel approaches to manipulating the EM field and creating high-efficiency light-emitting structures.
Photonic Band Gap Materials identifies three most promising areas of research. The first is materials fabrication, involving the creation of high quality, low loss, periodic dielectric structures. The smallest photonic crystals yet fabricated have been made by machining Si wafers along (110), and some have lattice constants as small as 500 microns. The second area is in applications. Possible applications presented are microwave mirrors, directional antennas, resonators (especially in the 2 GHz region), filters, waveguides, Y splitters, and resonant microcavities. The third area covers fundamentally new physical phenomena in condensed matter physics and quantum optics.
An excellent review of recent development, covering theoretical, experimental and applied aspects. Interesting and stimulating reading for active researchers, as well as a useful reference for non-specialists.

✦ Table of Contents


Front Matter....Pages i-x
An Introduction to Photonic Crystals....Pages 1-21
Photonic Band Gap Materials....Pages 23-40
Micromachined Photonic Band Gap Crystals: From Microwave to the Far-Infrared....Pages 41-61
Fabrication of Three-Dimensional Photonic Band Gap Material by Deep X-Ray Lithography....Pages 63-69
Bloch Wave Optics in Photonic Crystals: Physics and Applications....Pages 71-91
Optical Measurements of Photonic Band Structure in Colloidal Crystals....Pages 93-106
Influence of Optical Band Structures on the Diffraction of Photonic Colloidal Crystals....Pages 107-118
From Micromaser to Microlaser....Pages 119-141
Elastic Waves in Periodic Composite Materials....Pages 143-164
3-D Metallic Photonic Bandgap Structures....Pages 165-171
Photonic Band Gap Structures: Studies of the Transmission Coefficient....Pages 173-202
Transfer Matrix Techniques for Electromagnetic Waves....Pages 203-228
Layer-by-Layer Methods in the Study of Photonic Crystals and Related Problems....Pages 229-251
Electromagnetic Field Distributions in Complex Dielectric Structures....Pages 253-260
Photonic Band Structures and Resonant Modes....Pages 261-270
Photonic Band Structures of Systems with Components Characterized by Frequency-Dependent Dielectric Functions....Pages 271-318
Photonic Band Structures of 1D and 2D Periodic Systems with Metallic Components in the Presence of Dissipation....Pages 319-339
Band Structure and Transmission of Photonic Media: A Real-Space Finite-Difference Calculation with the R-Matrix Propagator....Pages 341-354
Microwave Applications of Photonic Crystals....Pages 355-375
Optimized Antennas on Photonic Band Gap Crystals....Pages 377-390
Design Considerations for a 2-D Photonic Band Gap Accelerator Cavity....Pages 391-410
Microcavities in Channel Waveguides....Pages 411-426
Exploring the Two-Dimensional Photonic Bandgap in Semiconductors....Pages 427-436
2D Photonic Band Gap Structures in Fibre Form....Pages 437-444
Dispersion, Tunability and Applications of Defect Modes in Photonic Band-Gap Structures....Pages 445-452
Fabrication of 2-D Infrared Photonic Crystals in Macroporous Silicon....Pages 453-464
Techniques for Bandstructures and Defect States in Photonic Crystals....Pages 465-485
Impurity Modes from Frequency Dependent Dielectric Impurities in Photonic Band Structures....Pages 487-495
Two-Dimensional Photonic Band Gaps: New Hexagonal Structures....Pages 497-505
Photonic Band Gaps in Complex-Unit Systems and Quasi One-Dimensional Waveguides....Pages 507-514
Theory of Light Scattering Through a Two-Dimensional Periodic Array....Pages 515-520
Two-Dimensional Guides with Photonic Band Gap Boundaries: Mode Structures....Pages 521-528
Second Harmonic Scattering from Sites of a Crystalline Lattice....Pages 529-534
Multistability and Switching in Nonlinear Layered Optical and Electronic Media....Pages 535-545
Waveguides in Periodic Structures with Smoothly Varying Parameters....Pages 547-554
Photonic Band Structure Calculation of System Possessing Kerr Nonlinearity....Pages 555-562
Localization of Light: Theory of Photonic Band Gap Materials....Pages 563-665
Energy Transport Velocity in Random Media....Pages 667-678
Photonic Band Structures of Atomic Lattices....Pages 679-690
Interaction of Different Scattering Mechanisms in a One-Dimensional Random Photonic Lattice....Pages 691-702
Wave Confinement and Localization: Dimensional Crossover Effect....Pages 703-714
Transition from Ballistic to Diffusive Behavior for Multiply Scattered Waves....Pages 715-722
Back Matter....Pages 723-729

✦ Subjects


Theoretical, Mathematical and Computational Physics;Solid State Physics;Spectroscopy and Microscopy;Electrical Engineering;Microwaves, RF and Optical Engineering;Optical and Electronic Materials


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