Magnetics, Dielectrics, and Wave Propagation with MATLAB(R) Codes

Autor: 
Język: 
english
Oprawa: 
Twarda
Liczba stron: 
474
Because future microwave, wireless communication systems, computer chip designs and sensor systems, it will require miniature fabrication processes in the order of nano meters or less as well as the m ...Cały opis
441,59 zł

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ISBN9781032555683
AutorVittoria Carmine
WydawcaCrc Pr Inc
Językenglish
OprawaPevná vazba
Rok wydania2023
Liczba stron474

Opis książki

Because future microwave, wireless communication systems, computer chip designs and sensor systems, it will require miniature fabrication processes in the order of nano meters or less as well as the marriage of various material technologies to produce composites consisting of many different materials. This requires distinctly multi-disciplinary collaborations, implying that specialized approaches will not be able to address future world markets in communication, computer and electronic miniaturized products.

Anticipating that many students lack specialized simultaneous training in magnetism and magnetics, as well as in other material technologies, Magnetics, Dielectrics, and Wave Propagation with MATLAB Codes avoids application-specific descriptions, opting for a general point view of materials per se. Specifically, the book develops a general theory to show how a magnetic system of spins are coupled to acoustic motions, magnetoelectric systems and superconductors. Phenomenological approaches are connected to atomic scale formulations reducing complex calculations to essential forms, addressing basic interactions at any scale of dimensionalities. With simple and clear coverage of everything from first principles to calculation tools, it revisits fundamentals that govern magnetic, acoustic, superconducting, magnetoelectric motions at the atomic and macroscopic scales, including superlattices.

Constitutive equations in Maxwell's equations are introduced via general free energy expressions which include magnetic parameters as well as acoustic, magnetoelectric, semiconductor and superconducting parameters derived from first principles. More importantly, it facilitates the derivation of these parameters, as the dimensionality of materials is reduced toward the microscopic scale. Thus, introducing new concepts. The deposition of ferrite films at the atomic scale complements the approach toward the understanding of the physics of miniaturized composites. Thus, a systematic formalism of deriving the permeability or the magnetoelectric coupling tensors from first principles, rather than from an ad-hoc approach, bridges the gap between microscopic and macroscopic principles as applied to wave propagation and other applications.

 

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