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Dispersion engineering for integrated nanophotonics

Author: Olivier Vanbésien; Emmanuel Centeno
Publisher: London : ISTE ; Hoboken, NJ : Wiley, [2014]
Series: Focus nanoscience and nanotechnology series.
Edition/Format:   eBook : Document : English : First editionView all editions and formats
Summary:

This book studies dispersion engineering in regular and graded photonic crystals to promote anomalous refraction effects from the concepts to the experimental demonstration via nanofabrication  Read more...

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Genre/Form: Electronic books
Additional Physical Format: Print version:
Vanbésien, Olivier.
Dispersion engineering for integrated nanophotonics
(OCoLC)868083357
Material Type: Document, Internet resource
Document Type: Internet Resource, Computer File
All Authors / Contributors: Olivier Vanbésien; Emmanuel Centeno
ISBN: 9781118649398 1118649397 9781118649404 1118649400 1306532353 9781306532358
OCLC Number: 873843568
Notes: "The main purpose of this book is to give an exhaustive review of dispersion engineering principles in dielectric artificial materials in the optical domain (wavelengths of a few micrometers or less)."--Introduction.
Description: 1 online resource (x, 106 pages) : illustrations.
Contents: INTRODUCTION vii CHAPTER 1. Two-Dimensional Dielectric Photonic Crystals 1 1.1. Context 1 1.2. Concepts: photonic band structures and equi-frequency curves 2 1.2.1. Basic concepts on electromagnetic waves in 2D PhCs 3 1.2.2. Dispersion surfaces, equi-frequency curves and group velocity 6 1.3. Fundamental dispersion effects 8 1.3.1. The construction line method 8 1.3.2. A beam propagation model 9 1.3.3. The self-collimation effect 12 1.3.4. Mesoscopic self-collimation of light 14 1.3.5. The superprism effect 18 1.3.6. Negative refraction and -1 effective index in photonic crystals and metamaterials 20 1.4. From concepts to reality 26 1.4.1. 2D1/2 prototype design 27 1.4.2. Thick substrate versus membrane approach 27 1.4.3. 2D patterning and prototype designs 29 1.4.4. The 3D reality 34 1.5. Conclusion 35 CHAPTER 2. Flat Lenses 37 2.1. Context 37 2.2. Negative refraction based flat lenses 38 2.2.1. Effective parameters 38 2.2.2. A 2D photonic crystal based flat lens: dimensioning 42 2.2.3. Experiments 51 2.3. Gradient index lenses 56 2.3.1. GRIN lens concept 56 2.3.2. Negative index based GRIN lens (the hole case) 57 2.3.3. Positive index based GRIN lens (the pillar case) 59 2.3.4. Experimental evaluation of GRIN lenses 60 2.4. Conclusion 62 CHAPTER 3. Towards Transform Optics Based Devices 63 3.1. Context 63 3.2. From transform Optics to Hamiltonian optics 64 3.2.1. Transform Optics 64 3.2.2. Conformal mapping 69 3.2.3. Hamiltonian optics 70 3.3. 1D graded photonic crystals 72 3.3.1. D graded photonic crystals 75 3.4. Cloaking devices 78 3.4.1. A brief overview of optical cloaking 79 3.4.2. A III-V based photonic crystal carpet: design and fabrication 81 3.4.3. A III-V based photonic crystal carpet: evaluation and discussion 83 3.5. Conclusion 85 CONCLUSION 87 BIBLIOGRAPHY 91 INDEX 105
Series Title: Focus nanoscience and nanotechnology series.
Responsibility: Olivier Vanbésien, Emmanuel Centeno.

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