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Modelling of Plasmonic and Graphene Nanodevices

 The thesis covers a broad range of electronic, optical and opto-electronic devices and various predicted physical effects. In particular, it examines the quantum interference transistor effect in graphene nanorings; tunable spin-filtering and spin-dependent negative differential resistance in compo...

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Detalles Bibliográficos
Clasificación:Libro Electrónico
Autor principal: Munárriz Arrieta, Javier (Autor)
Autor Corporativo: SpringerLink (Online service)
Formato: Electrónico eBook
Idioma:Inglés
Publicado: Cham : Springer International Publishing : Imprint: Springer, 2014.
Edición:1st ed. 2014.
Colección:Springer Theses, Recognizing Outstanding Ph.D. Research,
Temas:
Acceso en línea:Texto Completo

MARC

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245 1 0 |a Modelling of Plasmonic and Graphene Nanodevices  |h [electronic resource] /  |c by Javier Munárriz Arrieta. 
250 |a 1st ed. 2014. 
264 1 |a Cham :  |b Springer International Publishing :  |b Imprint: Springer,  |c 2014. 
300 |a XVII, 121 p. 64 illus., 48 illus. in color.  |b online resource. 
336 |a text  |b txt  |2 rdacontent 
337 |a computer  |b c  |2 rdamedia 
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490 1 |a Springer Theses, Recognizing Outstanding Ph.D. Research,  |x 2190-5061 
505 0 |a Introduction -- Part I Electronic Nanodevices Based on Graphene -- Tight-Binding Description of Graphene Nanostructures -- Graphene Nanoring as a Quantum Interference Device -- Graphene Nanoring as a Source of Spin-Polarized Electrons -- Spin-Dependent NDR in Graphene Superlattices -- Part II Electro-Optical Nanodevices -- Optical Nanoantennas with Tunable Radiation Patterns -- Electro-Optical Hysteresis of Nanoscale Hybrid Systems -- Conclusions and Prospects. 
520 |a  The thesis covers a broad range of electronic, optical and opto-electronic devices and various predicted physical effects. In particular, it examines the quantum interference transistor effect in graphene nanorings; tunable spin-filtering and spin-dependent negative differential resistance in composite heterostructures based on graphene and ferromagnetic materials; optical and novel electro-optical bistability and hysteresis in compound systems; and the real-time control of radiation patterns of optical nanoantennas. The direction of the main radiation lobe of a regular plasmonic array can be changed abruptly by small variations in external control parameters. This optical effect, apart from its relevance for applications, is a revealing example of the Umklapp process and, thus, is a visual manifestation of one of the most fundamental laws of solid state physics: the conservation of the quasi-momentum to within a reciprocal lattice vector. The thesis analyzes not only results for particular device designs but also a variety of advanced numerical methods which are extended by the author and described in detail. These methods can be used as a sound starting point for further research. . 
650 0 |a Lasers. 
650 0 |a Optical materials. 
650 0 |a Nanoscience. 
650 0 |a Nanotechnology. 
650 0 |a Microtechnology. 
650 0 |a Microelectromechanical systems. 
650 1 4 |a Laser. 
650 2 4 |a Optical Materials. 
650 2 4 |a Nanophysics. 
650 2 4 |a Nanotechnology. 
650 2 4 |a Microsystems and MEMS. 
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830 0 |a Springer Theses, Recognizing Outstanding Ph.D. Research,  |x 2190-5061 
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950 |a Physics and Astronomy (SpringerNature-11651) 
950 |a Physics and Astronomy (R0) (SpringerNature-43715)