Computational Nanotechnology Using Finite Difference Time Domain

Computational Nanotechnology Using Finite Difference Time Domain pdf

Auteur:

Sarhan Musa

Vues:

687

Langue:

Anglais

Notation:

0

département:

technologie

Nombre de pages:

404

Section:

Nanotechnologie

Taille du fichier:

46437296 MB

qualité du livre :

Excellent

télécharger un livre:

43

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En raison de la mise à jour du site, le téléchargement sera temporairement arrêté jusquà ce que la mise à jour soit terminée. [email protected]

Sarhan Muhammad Musa est professeur au Département de technologie de l'ingénierie de l'Université Prairie View A&M, au Texas. Il a obtenu son doctorat. en génie électrique de la City University de New York en 2001. Le professeur Moses est le fondateur et directeur de Prairie View Networking Academy, Texas, depuis 2004. Il est LTD Sprint et Boeing Welliver Fellow. Le professeur Moses est l'auteur de plusieurs livres sur les mathématiques et l'ingénierie. Ses intérêts de recherche actuels comprennent le calcul électromagnétique, le réseau intelligent, l'imagerie et la spectroscopie, la nanotechnologie computationnelle, la cybersécurité et les réseaux informatiques. EMC (basé sur un document publié le 1er février 2018).

Description du livre

Computational Nanotechnology Using Finite Difference Time Domain pdf par Sarhan Musa

The Finite Difference Time Domain (FDTD) method is an essential tool in modeling inhomogeneous, anisotropic, and dispersive media with random, multilayered, and periodic fundamental (or device) nanostructures due to its features of extreme flexibility and easy implementation. It has led to many new discoveries concerning guided modes in nanoplasmonic waveguides and continues to attract attention from researchers across the globe.
Written in a manner that is easily digestible to beginners and useful to seasoned professionals, Computational Nanotechnology Using Finite Difference Time Domain describes the key concepts of the computational FDTD method used in nanotechnology. The book discusses the newest and most popular computational nanotechnologies using the FDTD method, considering their primary benefits. It also predicts future applications of nanotechnology in technical industry by examining the results of interdisciplinary research conducted by world-renowned experts.
Complete with case studies, examples, supportive appendices, and FDTD codes accessible via a companion website, Computational Nanotechnology Using Finite Difference Time Domain not only delivers a practical introduction to the use of FDTD in nanotechnology but also serves as a valuable reference for academia and professionals working in the fields of physics, chemistry, biology, medicine, material science, quantum science, electrical and electronic engineering, electromagnetics, photonics, optical science, computer science, mechanical engineering, chemical engineering, and aerospace engineering.
 

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