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Plasmonics and light-matter interact...
~
Goncalves, Paulo Andre Dias.
Plasmonics and light-matter interactions in two-dimensional materials and in metal nanostructuresClassical and Quantum Considerations /
紀錄類型:
書目-電子資源 : Monograph/item
正題名/作者:
Plasmonics and light-matter interactions in two-dimensional materials and in metal nanostructuresby Paulo Andre Dias Goncalves.
其他題名:
Classical and Quantum Considerations /
作者:
Goncalves, Paulo Andre Dias.
出版者:
Cham :Springer International Publishing :2020.
面頁冊數:
xviii, 232 p. :ill., digital ;24 cm.
Contained By:
Springer eBooks
標題:
Plasmonics.
電子資源:
https://doi.org/10.1007/978-3-030-38291-9
ISBN:
9783030382919$q(electronic bk.)
Plasmonics and light-matter interactions in two-dimensional materials and in metal nanostructuresClassical and Quantum Considerations /
Goncalves, Paulo Andre Dias.
Plasmonics and light-matter interactions in two-dimensional materials and in metal nanostructures
Classical and Quantum Considerations /[electronic resource] :by Paulo Andre Dias Goncalves. - Cham :Springer International Publishing :2020. - xviii, 232 p. :ill., digital ;24 cm. - Springer theses,2190-5053. - Springer theses..
Introduction -- Classical Electrodynamics of Solids -- Electronic and Optical Properties of Graphene -- Fundamentals of Graphene Plasmonics -- Two-Dimensional Channel Plasmons in Nonplanar Geometries -- Electrodynamics of Metals Beyond the Local-Response Approximation: Nonlocal Effects -- Quantum Nonlocal Effects Probed by Ultraconfined Graphene Plasmons -- Quantum Corrections in Plasmonics and Plasmon-Emitter Interactions -- Conclusions and Outlook -- Appendices.
This thesis presents a comprehensive theoretical description of classical and quantum aspects of plasmonics in three and two dimensions, and also in transdimensional systems containing elements with different dimensionalities. It focuses on the theoretical understanding of the salient features of plasmons in nanosystems as well as on the multifaceted aspects of plasmon-enhanced light-matter interactions at the nanometer scale. Special emphasis is given to the modeling of nonclassical behavior across the transition regime bridging the classical and the quantum domains. The research presented in this dissertation provides useful tools for understanding surface plasmons in various two- and three-dimensional nanostructures, as well as quantum mechanical effects in their response and their joint impact on light-matter interactions at the extreme nanoscale. These contributions constitute novel and solid advancements in the research field of plasmonics and nanophotonics that will help guide future experimental investigations in the blossoming field of nanophotonics, and also facilitate the design of the next generation of truly nanoscale nanophotonic devices.
ISBN: 9783030382919$q(electronic bk.)
Standard No.: 10.1007/978-3-030-38291-9doiSubjects--Topical Terms:
820640
Plasmonics.
LC Class. No.: QC176.8.P55 / G663 2020
Dewey Class. No.: 530.44
Plasmonics and light-matter interactions in two-dimensional materials and in metal nanostructuresClassical and Quantum Considerations /
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Introduction -- Classical Electrodynamics of Solids -- Electronic and Optical Properties of Graphene -- Fundamentals of Graphene Plasmonics -- Two-Dimensional Channel Plasmons in Nonplanar Geometries -- Electrodynamics of Metals Beyond the Local-Response Approximation: Nonlocal Effects -- Quantum Nonlocal Effects Probed by Ultraconfined Graphene Plasmons -- Quantum Corrections in Plasmonics and Plasmon-Emitter Interactions -- Conclusions and Outlook -- Appendices.
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This thesis presents a comprehensive theoretical description of classical and quantum aspects of plasmonics in three and two dimensions, and also in transdimensional systems containing elements with different dimensionalities. It focuses on the theoretical understanding of the salient features of plasmons in nanosystems as well as on the multifaceted aspects of plasmon-enhanced light-matter interactions at the nanometer scale. Special emphasis is given to the modeling of nonclassical behavior across the transition regime bridging the classical and the quantum domains. The research presented in this dissertation provides useful tools for understanding surface plasmons in various two- and three-dimensional nanostructures, as well as quantum mechanical effects in their response and their joint impact on light-matter interactions at the extreme nanoscale. These contributions constitute novel and solid advancements in the research field of plasmonics and nanophotonics that will help guide future experimental investigations in the blossoming field of nanophotonics, and also facilitate the design of the next generation of truly nanoscale nanophotonic devices.
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