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Advances in FDTD Computational Electrodynamics: Photonics and Nanotechnology

Advances in FDTD Computational Electrodynamics

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"Advances in FDTD Computational Electrodynamics" by Allen Taflove, Ardavan Oskooi, Steven G. Johnson is a physics book focused on Devices & Sensors. Best for students, educators, and scientifically curious readers.

Advances in photonics and nanotechnology have the potential to revolutionize humanitys ability to communicate and compute. To pursue these advances, it is mandatory to understand and properly model interactions of light with materials such as silicon and gold at the nanoscale, i.e., the span of a few tens of atoms laid side by side. These interactions are governed by the fundamental Maxwells equations of classical electrodynamics, supplemented by quantum electrodynamics. This book presents the current state-of-the-art in formulating and implementing computational models of these interactions. Maxwells equations are solved using the finite-difference time-domain (FDTD) technique, pioneered by the senior editor, whose prior Artech House books in this area are among the top ten most-cited in the history of engineering. This cutting-edge resource helps readers understand the latest developments in computational modeling of nanoscale optical microscopy and microchip lithography, as well as nanoscale plasmonics and biophotonics.

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Best For: Researchers and engineers working in photonics, nanotechnology, and computational electrodynamics
Focus: Computational modeling of light-matter interactions at the nanoscale using the finite-difference time-domain (FDTD) method
Covers: Formulation and implementation of FDTD techniques for nanoscale optical microscopy, microchip lithography, plasmonics, and biophotonics
Why It Matters: Understanding and accurately modeling nanoscale light interactions is essential for advancing communication and computing technologies based on photonics and nanotechnology

"Advances in FDTD Computational Electrodynamics" by Allen Taflove, Ardavan Oskooi, Steven G. Johnson is a physics book focused on Devices & Sensors. Best for students, educators, and scientifically curious readers.

Topic: Devices & Sensors

Author: Allen Taflove, Ardavan Oskooi, Steven G. Johnson

Who this is for:

  • Physics students
  • Science-minded readers
  • Readers building technical understanding

Why this book matters: It provides structured coverage of physics concepts in a way that supports deeper understanding and continued study.

Advances in photonics and nanotechnology have the potential to revolutionize humanitys ability to communicate and compute. To pursue these advances, it is mandatory to understand and properly model interactions of light with materials such as silicon and gold at the nanoscale, i.e., the span of a few tens of atoms laid side by side. These interactions are governed by the fundamental Maxwells equations of classical electrodynamics, supplemented by quantum electrodynamics. This book presents the current state-of-the-art in formulating and implementing computational models of these interactions. Maxwells equations are solved using the finite-difference time-domain (FDTD) technique, pioneered by the senior editor, whose prior Artech House books in this area are among the top ten most-cited in the history of engineering. This cutting-edge resource helps readers understand the latest developments in computational modeling of nanoscale optical microscopy and microchip lithography, as well as nanoscale plasmonics and biophotonics.

AuthorAllen Taflove, Ardavan Oskooi, Steven G. Johnson
PublisherArtech House
Published2013
ISBN-139781608071708
BindingHardcover
Pages640
LanguageEnglish
SubjectsScience
TopicDevices & Sensors
SeriesArtech House Antennas and Propagation Library

Format: Hardcover

Length: 640 pages

Language: English

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