Electromagnetic And Photonic Simulation For The Beginner: Finite-Difference Frequency-Domain In Matl Av Raymond Rumpf

Electromagnetic And Photonic Simulation For The Beginner: Finite-Difference Frequency-Domain In Matl Av Raymond Rumpf

Written especially for those who are new to computational electromagnetics, this book teaches you everything you need to know to simulate a wide variety of electromagnetic and photonic devices using the powerful finite-difference frequency-domain (FDFD) method. The book comprehensively reviews key concept......
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<p><span>Written especially for those who are new to computational electromagnetics, this book teaches you everything you need to know to simulate a wide variety of electromagnetic and photonic devices using the powerful finite-difference frequency-domain (FDFD) method. The book comprehensively reviews key concepts from electromagnetics and is packed with MATLAB¿ codes and special techniques that demonstrate how FDFD can be applied to a very wide array of devices and applications.</span></p><p><br></p><p><span>MATLAB codes are provided with detailed explanations of the programs. The examples are chosen to make it easy to simulate your own devices and write your own programs. Readers are assumed to have a basic knowledge of electromagnetics or photonics, and computer programming in MATLAB. </span></p>
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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 (R) 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. Visit https://empossible.net/fdfdbook/ to access the book website. Visit https://raymondrumpf.com/ for Raymond C. Rumpf's personal webpage.

Produktinformasjon

Introduksjon til "Electromagnetic And Photonic Simulation For The Beginner"

Enten du er student, forsker eller hobbyist, er Electromagnetic And Photonic Simulation For The Beginner: Finite-Difference Frequency-Domain In Matl Av Raymond Rumpf det ideelle verktøyet for å ta dine forståelser av elektromagnetikk og fotonikk til neste nivå. Denne boken gir en dypdykk i finite-difference frequency-domain (FDFD) metoden, perfekt for nybegynnere som ønsker å mestre komplekse simuleringer med letthet.

Lær det grunnleggende og mer!

  • Enkel tilnærming: Boken er skrevet på en lettfattelig måte, noe som gjør den ideell for dem som har begrenset erfaring med emnet.
  • Visualisering: Høykvalitetsgrafikk og trinnvise instruksjoner hjelper deg med å forstå de mest komplekse konseptene på en visuell måte.
  • MATLAB: Spesielle teknikker for MATLAB presenteres, og gir deg muligheten til å skrive dine egne FDFD-programmer.

Innholdet i boken

Innholdet i Electromagnetic And Photonic Simulation For The Beginner dekker et bredt spekter av emner, inkludert:

  • Grunnleggende konsepter i elektromagnetikk for å støtte dine simuleringer.
  • Effektiv indeksmetode for å modellere tredimensjonale enheter i to dimensjoner.
  • Beregning av fotonic band diagrams og iso-frekvens konturer for periodiske strukturer.
  • Simulering av optiske integrerte kretser og hvordan du endrer koden for parameteroverganger.

Praktiske Anvendelser

Boken gir deg også muligheten til å:

  • Simulere en rekke enheter, inkludert metamaterialer, fotoniske krystaller og mye mer.
  • Utføre analyser av diffraksjonsgitter og beregne kraften som er koblet til hver diffraksjonsorden.

Den perfekte ressursen for læring

Med alt materialet samlet på ett sted, er Electromagnetic And Photonic Simulation For The Beginner en uvurderlig ressurs for både bachelor- og masterstudenter i beregningsfysikk og elektroteknikk. Den kombinerer teorien med praktiske anvendelser, og gir deg verktøyene du trenger for å utvikle dine egne innovative løsninger.

For mer informasjon, besøk gjerne denne linken.

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ProduktnavnElectromagnetic and Photonic Simulation for the Beginner: FiniteDifference FrequencyDomain in MATLAB (R)
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