Maxwells Equations In Periodic Structures
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Author |
: Gang Bao |
Publisher |
: Springer Nature |
Total Pages |
: 361 |
Release |
: 2021-11-22 |
ISBN-10 |
: 9789811600616 |
ISBN-13 |
: 9811600619 |
Rating |
: 4/5 (16 Downloads) |
Synopsis Maxwell’s Equations in Periodic Structures by : Gang Bao
This book addresses recent developments in mathematical analysis and computational methods for solving direct and inverse problems for Maxwell’s equations in periodic structures. The fundamental importance of the fields is clear, since they are related to technology with significant applications in optics and electromagnetics. The book provides both introductory materials and in-depth discussion to the areas in diffractive optics that offer rich and challenging mathematical problems. It is also intended to convey up-to-date results to students and researchers in applied and computational mathematics, and engineering disciplines as well.
Author |
: Raymond C. Rumpf |
Publisher |
: Artech House |
Total Pages |
: 350 |
Release |
: 2022-01-31 |
ISBN-10 |
: 9781630819279 |
ISBN-13 |
: 1630819271 |
Rating |
: 4/5 (79 Downloads) |
Synopsis Electromagnetic and Photonic Simulation for the Beginner: Finite-Difference Frequency-Domain in MATLAB® by : Raymond C. Rumpf
This book teaches the finite-difference frequency-domain (FDFD) method from the simplest concepts to advanced three-dimensional simulations. It uses plain language and high-quality graphics to help the complete beginner grasp all the concepts quickly and visually. This single resource includes everything needed to simulate a wide variety of different electromagnetic and photonic devices. The book is filled with helpful guidance and computational wisdom that will help the reader easily simulate their own devices and more easily learn and implement other methods in computational electromagnetics. Special techniques in MATLAB® are presented that will allow the reader to write their own FDFD programs. Key concepts in electromagnetics are reviewed so the reader can fully understand the calculations happening in FDFD. A powerful method for implementing the finite-difference method is taught that will enable the reader to solve entirely new differential equations and sets of differential equations in mere minutes. Separate chapters are included that describe how Maxwell’s equations are approximated using finite-differences and how outgoing waves can be absorbed using a perfectly matched layer absorbing boundary. With this background, a chapter describes how to calculate guided modes in waveguides and transmission lines. The effective index method is taught as way to model many three-dimensional devices in just two-dimensions. Another chapter describes how to calculate photonic band diagrams and isofrequency contours to quickly estimate the properties of periodic structures like photonic crystals. Next, a chapter presents how to analyze diffraction gratings and calculate the power coupled into each diffraction order. This book shows that many devices can be simulated in the context of a diffraction grating including guided-mode resonance filters, photonic crystals, polarizers, metamaterials, frequency selective surfaces, and metasurfaces. Plane wave sources, Gaussian beam sources, and guided-mode sources are all described in detail, allowing devices to be simulated in multiple ways. An optical integrated circuit is simulated using the effective index method to build a two-dimensional model of the 3D device and then launch a guided-mode source into the circuit. A chapter is included to describe how the code can be modified to easily perform parameter sweeps, such as plotting reflection and transmission as a function of frequency, wavelength, angle of incidence, or a dimension of the device. The last chapter is advanced and teaches FDFD for three-dimensional devices composed of anisotropic materials. It includes simulations of a crossed grating, a doubly-periodic guided-mode resonance filter, a frequency selective surface, and an invisibility cloak. The chapter also includes a parameter retrieval from a left-handed metamaterial. The book includes all the MATLAB codes and detailed explanations of all programs. This will allow the reader to easily modify the codes to simulate their own ideas and devices. The author has created a website where the MATLAB codes can be downloaded, errata can be seen, and other learning resources can be accessed. This is an ideal book for both an undergraduate elective course as well as a graduate course in computational electromagnetics because it covers the background material so well and includes examples of many different types of devices that will be of interest to a very wide audience.
Author |
: Heinrich G. W. Begehr |
Publisher |
: World Scientific |
Total Pages |
: 1557 |
Release |
: 2003 |
ISBN-10 |
: 9789812385727 |
ISBN-13 |
: 981238572X |
Rating |
: 4/5 (27 Downloads) |
Synopsis Progress in Analysis by : Heinrich G. W. Begehr
The biannual ISAAC congresses provide information about recent progress in the whole area of analysis including applications and computation. This book constitutes the proceedings of the third meeting.
Author |
: K.-H. Hoffmann |
Publisher |
: Birkhäuser |
Total Pages |
: 290 |
Release |
: 2012-12-06 |
ISBN-10 |
: 9783034881487 |
ISBN-13 |
: 3034881487 |
Rating |
: 4/5 (87 Downloads) |
Synopsis Optimal Control of Complex Structures by : K.-H. Hoffmann
Interest in the area of control of systems defined by partial differential Equations has increased strongly in recent years. A major reason has been the requirement of these systems for sensible continuum mechanical modelling and optimization or control techniques which account for typical physical phenomena. Particular examples of problems on which substantial progress has been made are the control and stabilization of mechatronic structures, the control of growth of thin films and crystals, the control of Laser and semi-conductor devices, and shape optimization problems for turbomachine blades, shells, smart materials and microdiffractive optics. This volume contains original articles by world reknowned experts in the fields of optimal control of partial differential equations, shape optimization, numerical methods for partial differential equations and fluid dynamics, all of whom have contributed to the analysis and solution of many of the problems discussed. The collection provides a state-of-the-art overview of the most challenging and exciting recent developments in the field. It is geared towards postgraduate students and researchers dealing with the theoretical and practical aspects of a wide variety of high technology problems in applied mathematics, fluid control, optimal design, and computer modelling.
Author |
: Ruey-Bing Hwang |
Publisher |
: John Wiley & Sons |
Total Pages |
: 314 |
Release |
: 2012-09-28 |
ISBN-10 |
: 9781118188064 |
ISBN-13 |
: 1118188063 |
Rating |
: 4/5 (64 Downloads) |
Synopsis Periodic Structures by : Ruey-Bing Hwang
PERIODIC STRUCTURES Mode-Matching Approach and Applications in Electromagnetic Engineering In Periodic Structures, Hwang gives readers a comprehensive understanding of the underlying physics in meta-materials made of periodic structures, providing a rigorous and firm mathematical framework for analyzing their electromagnetic properties. The book presents scattering and guiding characteristics of periodic structures using the mode-matching approach and their applications in electromagnetic engineering. Provides an analytic approach to describing the wave propagation phenomena in photonic crystals and related periodic structures Covers guided and leaky mode propagation in periodic surroundings, from fundamentals to practical device applications Demonstrates formulation of the periodic system and applications to practical electromagnetic / optical devices, even further to artificial dielectrics Introduces the evolution of periodic structures and their applications in microwave, millimeter wave and THz Written by a high-impact author in electromagnetics and optics Contains mathematical derivations which can be applied directly to MATLAB® programs Solution Manual and MATLAB® computer codes available on Wiley Companion Website The book is primarily intended for graduate students in electronic engineering, optics, physics, and applied physics, or researchers working with periodic structures. Advanced undergraduates in EE, optics, applied physics applied math, and materials science who are interested in the underlying physics of meta-materials, will also be interested in this text.
Author |
: Ivan Graham |
Publisher |
: Walter de Gruyter |
Total Pages |
: 328 |
Release |
: 2013-10-14 |
ISBN-10 |
: 9783110282283 |
ISBN-13 |
: 3110282283 |
Rating |
: 4/5 (83 Downloads) |
Synopsis Direct and Inverse Problems in Wave Propagation and Applications by : Ivan Graham
This book is the third volume of three volume series recording the "Radon Special Semester 2011 on Multiscale Simulation & Analysis in Energy and the Environment" taking place in Linz, Austria, October 3-7, 2011. This book surveys recent developments in the analysis of wave propagation problems. The topics covered include aspects of the forward problem and problems in inverse problems, as well as applications in the earth sciences. Wave propagation problems are ubiquitous in environmental applications such as seismic analysis, acoustic and electromagnetic scattering. The design of efficient numerical methods for the forward problem, in which the scattered field is computed from known geometric configurations is very challenging due to the multiscale nature of the problems. Even more challenging are inverse problems where material parameters and configurations have to be determined from measurements in conjunction with the forward problem. This book contains review articles covering several state-of-the-art numerical methods for both forward and inverse problems. This collection of survey articles focusses on the efficient computation of wave propagation and scattering is a core problem in numerical mathematics, which is currently of great research interest and is central to many applications in energy and the environment. Two generic applications which resonate strongly with the central aims of the Radon Special Semester 2011 are forward wave propagation in heterogeneous media and seismic inversion for subsurface imaging. As an example of the first application, modelling of absorption and scattering of radiation by clouds, aerosol and precipitation is used as a tool for interpretation of (e.g.) solar, infrared and radar measurements, and as a component in larger weather/climate prediction models in numerical weather forecasting. As an example of the second application, inverse problems in wave propagation in heterogeneous media arise in the problem of imaging the subsurface below land or marine deposits. The book records the achievements of Workshop 3 "Wave Propagation and Scattering, Inverse Problems and Applications in Energy and the Environment". It brings together key numerical mathematicians whose interest is in the analysis and computation of wave propagation and scattering problems, and in inverse problems, together with practitioners from engineering and industry whose interest is in the applications of these core problems.
Author |
: Aurelia Minut |
Publisher |
: |
Total Pages |
: 140 |
Release |
: 2001 |
ISBN-10 |
: MSU:31293021992619 |
ISBN-13 |
: |
Rating |
: 4/5 (19 Downloads) |
Synopsis Mathematical Analysis of Maxwell's Equations by : Aurelia Minut
Author |
: Jean-Claude Nedelec |
Publisher |
: Springer Science & Business Media |
Total Pages |
: 356 |
Release |
: 2001-03-30 |
ISBN-10 |
: 0387951555 |
ISBN-13 |
: 9780387951553 |
Rating |
: 4/5 (55 Downloads) |
Synopsis Acoustic and Electromagnetic Equations by : Jean-Claude Nedelec
Acoustic and electromagnetic waves underlie a range of modern technology from sonar, radio, and television to microwave heating and electromagnetic compatibility analysis. This book, written by an international researcher, presents some of the research in a complete way. It is useful for graduate students in mathematics, physics, and engineering.
Author |
: Gang Bao |
Publisher |
: SIAM |
Total Pages |
: 349 |
Release |
: 2001-01-01 |
ISBN-10 |
: 0898717590 |
ISBN-13 |
: 9780898717594 |
Rating |
: 4/5 (90 Downloads) |
Synopsis Mathematical Modeling in Optical Science by : Gang Bao
This volume addresses recent developments in mathematical modeling in three areas of optical science: diffractive optics, photonic band gap structures, and waveguides. Particular emphasis is on the formulation of mathematical models and the design and analysis of new computational approaches. The book contains cutting-edge discourses on emerging technology in optics that provides significant challenges and opportunities for applied mathematicians, researchers, and engineers.
Author |
: Marco Pisco |
Publisher |
: Bentham Science Publishers |
Total Pages |
: 239 |
Release |
: 2012-07-27 |
ISBN-10 |
: 9781608054480 |
ISBN-13 |
: 1608054489 |
Rating |
: 4/5 (80 Downloads) |
Synopsis Photonic Bandgap Structures Novel Technological Platforms for Physical, Chemical and Biological Sensing by : Marco Pisco
This E-Book covers the research and the development of a novel generation of photonic devices for sensing applications. The E-Book starts with a brief review of basic photonic crystal (PhC) structure related concepts and describes the numerical and technological tools useful in the design and fabrication of devices based on PhCs. Next, the E-Book provides a selection of crossover topics emerging in the scientific community as breaking through researches, technologies and sciences for the development of novel technological platforms for physical, chemical and biological sensing. The E-Book ends with a description of the main PhC sensors to date by representing many of the exciting sensing applications that utilize photonic crystal structures.