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Fano-Resonanzen in Optik und Mikrowellen: Physik und Anwendungen von Eugene Kam-

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Fano Resonances in Optics and Microwaves: Physics and Applications by Eugene Kam
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ISBN-13
9783319997308
Type
NA
Publication Name
NA
ISBN
9783319997308
Book Title
Fano Resonances in Optics and Microwaves : Physics and Applications
Book Series
Springer Series in Optical Sciences Ser.
Publisher
Springer International Publishing A&G
Item Length
9.3 in
Publication Year
2018
Format
Hardcover
Language
English
Illustrator
Yes
Author
Almaz Sadreev
Genre
Technology & Engineering, Science
Topic
Electronics / Semiconductors, Telecommunications, Physics / Atomic & Molecular, Microwaves, Physics / Nuclear
Item Weight
37.7 Oz
Item Width
6.1 in
Number of Pages
Xxiii, 582 Pages

Über dieses Produkt

Product Identifiers

Publisher
Springer International Publishing A&G
ISBN-10
3319997300
ISBN-13
9783319997308
eBay Product ID (ePID)
19038650308

Product Key Features

Book Title
Fano Resonances in Optics and Microwaves : Physics and Applications
Number of Pages
Xxiii, 582 Pages
Language
English
Topic
Electronics / Semiconductors, Telecommunications, Physics / Atomic & Molecular, Microwaves, Physics / Nuclear
Publication Year
2018
Illustrator
Yes
Genre
Technology & Engineering, Science
Author
Almaz Sadreev
Book Series
Springer Series in Optical Sciences Ser.
Format
Hardcover

Dimensions

Item Weight
37.7 Oz
Item Length
9.3 in
Item Width
6.1 in

Additional Product Features

Series Volume Number
219
Number of Volumes
1 vol.
Table Of Content
Theory of Fano Resonances.- Bound States in a Continuum.- Fano Resonances and Field-Matter Chirality.- Fano Resonances in Plasmonic Structures and Metamaterials.- Fano Resonances in Microwave Structures.- Fano Resonances for Biosensing.
Synopsis
This book discusses the development of Fano-based techniques and reveals the characteristic properties of various wave processes by studying interference phenomena. It explains that the interaction of discrete (localized) states with a continuum of propagation modes leads to Fano interference effects in transmission, and explores novel coherent effects such as bound states in the continuum accompanied by collapse of Fano resonance. Originating in atomic physics, Fano resonances have become one of the most appealing phenomena of wave scattering in optics, microwaves, and terahertz techniques. The generation of extremely strong and confined fields at a deep subwavelength scale, far beyond the diffraction limit, plays a central role in modern plasmonics, magnonics, and in photonic and metamaterial structures. Fano resonance effects take advantage of the coupling of these bound states with a continuum of radiative electromagnetic waves. With their unique physical propertiesand unusual combination of classical and quantum structures, Fano resonances have an application potential in a wide range of fields, from telecommunication to ultrasensitive biosensing, medical instrumentation and data storage. Including contributions by international experts and covering the essential aspects of Fano-resonance effects, including theory, modeling and design, proven and potential applications in practical devices, fabrication, characterization and measurement, this book enables readers to acquire the multifaceted understanding required for these multidisciplinary challenges., 1. LINEAR AND NONLINEAR DYNAMICS OF FANO RESONANCES IN PLASMONIC STRUCTURES COUPLED TO QUANTUM EMITTERS Mehmet Emre Tasgin Institute of Nuclear Sciences, Hacettepe University, 06800 Ankara, Turkey metasgin@hacettepe.edu.tr Fano resonances manifest novel phenomena both in linear and nonlinear response of plasmonicnano-materials. They can extend the lifetime of plasmonic excitations, enabling the operation nanolasers, or they can increase the fluorescence of quantum emitters. They also provide control over nonlinear optical processes such as second harmonic generation and four-wave mixing. Fano resonances can both enhance or suppress nonlinear response. Interference of two or more absorption/conversion paths is responsible for the appearance of these effects. In this Chapter , we demonstrate explicitly -on a single equation- how path interference takes part in linear and nonlinear Fano resonances. Keywords : L ifetime, second harmonic generation, four-wave mixing 2. FANO-RESONANT EXCITATIONS OF GENERALIZED OPTICAL SPIN WAVES Xianji Piao*, Sunkyu Yu, Minpyo Lee, and Namkyoo Park Photonic Systems Laboratory, Department of ECE, Seoul National University, Seoul 08826, Korea * xjpiao227@gmail.com While chiral or gyrotropic materials possess spinor 'wavefunctions' as their eigenvectors, optical spin 'observables' cannot be obtained in those materials due to the lack of spinor impedances. Additional non-conservative functions are thus required for deriving spin observables, such as circular dichroism or magneto-optical effects. In this chapter, a conservative approach for achieving optical spin will be described, by exploiting Fano spectral-separation of optical spins. Starting from spinor temporal coupled mode theory for 2D/3D chiral resonances, the origin of spin-Fano interactions is demonstrated: the link between spinor eigenvectors in the polarization domain and anti-symmetric Fano resonances in the spectral domain. Compared with chiral, gyrotropic, and birefringent materials, novel applications of this spin-Fano resonance are discussed toward optical spintronics: including highly-selective spin switching and unpolarized operations. Keywords: optical spin, anti-symmetric Fano resonance, optical spintronics 3. MUELLER MATRIX APPROACH FOR ENGINEERING ASYMMETRIC FANO-RESONANCE LINE SHAPE IN AN ANISOTROPIC OPTICAL SYSTEM S.K. Ray, S. Chandel, A.K. Singh, P. Mitra, and N. Ghosh* Indian Institute of Science Education and Research (IISER) Kolkata, India - 741246 *nghosh@iiserkol.ac.in The asymmetric Fano resonance originating from the interference of a narrow resonance with a broad spectral line or continuum of states is a universal phenomenon, observed in diverse quantum and classical sy stems. The Fano resonances observed in micro and nano optical systems have received particular attention due to their numerous potential applications like in sensing, switching, lasing, filters and robust color display, nonlinear and slow-light devices, invisibility cloaking, and so forth. Most of the aforementioned applications are known to critically depend upon the ability to control or modulate the asymmetry of the spectral line shape by external means. Thus, tuning the Fano resonance via some experimentally accessible parameters are highly desirable for realistic applications. In this chapter, we discuss a new concept based on polarization Mueller matrix analysis for tuning the Fano interference effect and the resulting asymmetric spectral line shape in anisotropic optical system. The approach is founded on a generalized model of anisotropic Fano resonance and exploits the different polarization response (anisotropy) of the two interfering modes to achieve un
LC Classification Number
QC173.4.A87

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