Christophe Caloz - Electromagnetic Metasurfaces

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Discover a comprehensive exploration of recent developments and fundamental concepts in the applications of metasurfaces. In
, distinguished researchers and authors Karim Achouri and Christophe Caloz deliver an introduction to the fundamentals and applications of metasurfaces and an insightful analysis of recent and future developments in the field. The book describes the precursors and history of metasurfaces before continuing on to an exploration of the physical insights that can be gleaned from the material parameters of the metasurface.
You’ll learn how to compute the fields scattered by a metasurface with known material parameters being illuminated by an arbitrary incident field, as well as how to realize a practical metasurface and relate its material parameters to its physical structures. The authors provide examples to illustrate all the concepts discussed in the book to improve and simplify reader understanding.
Electromagnetic Metasurfaces Readers will also benefit from the inclusion of:
A thorough introduction to metamaterials, the concept of metasurfaces, and metasurface precursors An exploration of electromagnetic modeling and theory, including metasurfaces as zero-thickness sheets and bianisotropic susceptibility tensors A practical discussion of susceptibility synthesis, including four-parameters synthesis, more than four-parameters synthesis, and the addition of susceptibility components A concise treatment of scattered-field analysis, including approximate analytical methods, and finite-difference frequency-domain techniques Perfect for researchers in metamaterial sciences and engineers working with microwave, THz, and optical technologies,
will also earn a place in the libraries of graduate and undergraduate students in physics and electrical engineering.

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for the structure in Figure 6...Figure 6.8 Mirror equivalent of the scattering particle in Figure 6.5 (diele...Figure 6.9 Reflection coefficient amplitude, in (a), and phase, in (b), for ...Figure 6.10 Example of a circular-cylindrical dielectric resonator. Due to i...Figure 6.11 Electric and magnetic scattering cross-sections of a dielectric ...Figure 6.12 Cross-sectional views of the electric field distribution of the ...Figure 6.13 Reflection and transmission coefficients of a metasurface formed...Figure 6.14 Electric and magnetic susceptibilities corresponding to the meta...Figure 6.15 Co- and cross-polarized reflection coefficients for the structur...Figure 6.16 Reflection amplitude (a) and phase (b) in terms of the metallic ...Figure 6.17 Unit cell with subwavelength lateral dimensions картинка 17and картинка 18constitu...Figure 6.18 Scattering response of the unit cell in Figure 6.17 versus the p...Figure 6.19 Representation of a symmetric unit cell with three metallic cros...Figure 6.20 Full-wave simulations of three different designs for the unit ce...Figure 6.21 Angular scattering by a uniform metasurface that does not affect...Figure 6.22 Representations of the 12 different scattering properties [5].Figure 6.23 Angular scattering properties of four different reciprocal metas...Figure 6.24 Relationships between scattering particle shapes and their symme...

7 Chapter 7Figure 7.1 Reflection and transmission coefficients (7.2) in terms of the me...Figure 7.2 Susceptibilities of a tangential homoanisotropic metasurface cons...Figure 7.3 Reflectance of the metasurface in Figure 7.2 versus frequency and...Figure 7.4 Metasurface operating as an anti-reflection coating for normally ...Figure 7.5 Reflection and transmission power coefficients of the antireflect...Figure 7.6 Metasurface surface power density contributions with картинка 19along the ...Figure 7.7 Refraction efficiency computed by (7.18) for a metasurface design...Figure 7.8 Full-wave simulated real part of картинка 20obtained using (a) the first s...Figure 7.9 Direct and reverse transformations for synthesizing a fully effic...Figure 7.10 Full-wave simulated electric field magnitude for the two refract...Figure 7.11 Simulated diffracted power for the metasurface in Figure 7.10a (...

8 Chapter 9Figure 9.1 Two regions separated by a zero-thickness interface inducing a di...Figure 9.2 Two regions separated by a slab of thickness картинка 21and parameters картинка 22a...Figure 9.3 System of coordinate. The currents that lie on the картинка 23-plane at картинка 24a...

Guide

1 Cover

2 Table of Contents

3 Begin Reading

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IEEE Press

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Piscataway, NJ 08854

IEEE Press Editorial Board

Ekram Hossain, Editor in Chief

Jón Atli BenediktssonXiaoou LiSaeid NahavandiSarah Spurgeon David Alan GrierPeter LianJeffrey ReedAhmet Murat Tekalp Elya B. JoffeAndreas MolischDiomidis Spinellis

Electromagnetic Metasurfaces

Theory and Applications

Karim Achouri

École Polytechnique Fédérale de Lausanne

Lausanne, Switzerland

Christophe Caloz

KU Leuven

Leuven, Belgium

This edition first published 2021 2021 by The Institute of Electrical and - фото 25

This edition first published 2021 © 2021 by The Institute of Electrical and Electronics Engineers, Inc. All rights reserved.

All rights reserved. No part of this publication may be reproduced, stored in a retrieval system, or transmitted, in any form or by any means, electronic, mechanical, photocopying, recording, or otherwise, except as permitted by law. Advice on how to obtain permission to reuse material from this title is available at http://www.wiley.com/go/permissions.

The rights of Karim Achouri and Christophe Caloz to be identified as the authors of this work have been asserted in accordance with law.

Registered Office John Wiley & Sons, Inc., 111 River Street, Hoboken, NJ 07030, USA

Editorial Office 111 River Street, Hoboken, NJ 07030, USA

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