Introduction to Nanophotonics - Henri Benisty, Jean-Jacques Greffet, Philippe Lalanne

Introduction to Nanophotonics

Buch | Hardcover
672 Seiten
2022
Oxford University Press (Verlag)
978-0-19-878613-9 (ISBN)
82,30 inkl. MwSt
This book provides an introduction to nanophotonics, a newly emerged and rapidly evolving field combining optics, quantum physics, material sciences, and electrical engineering. It illustrates the theoretical foundations as well as the major advances in the field based on artificial metallic and dielectric nanostructures.
The aim of this textbook is to provide an overview of nanophotonics, a discipline which was developed around the turn of the millennium. This unique and rapidly evolving subject area is the result of a collaboration between various scientific communities working on different aspects of light-matter interaction at the nanoscale. These include near-field optics and super-resolution microscopy, photonic crystals, diffractive optics, plasmonics, optoelectronics, synthesis of metallic and semiconductor nanoparticles, two-dimensional materials, and metamaterials.

The book is aimed at graduate students with a background in physics, electrical engineering, material science, or chemistry, as well as lecturers and researchers working within these fields.

Henri Benisty received his PhD in electrochemistry in 1989 in Paris, working on the photonics of semiconductor integrated optics devices and LEDs enhanced with microcavities and two-dimensional photonic crystals, with the aim to improve either light confinement or light extraction. He is the co-founder of the French startup Genewave (now merged with Finnish Mobidiag), which works on fluorescence biochips. He has contributed to studies of sensors featuring a resonant waveguide grating response in various contexts and was instrumental to introducing the the idea of plasmonic losses within the recently introduced topic of parity-time symmetry in optics. Jean-Jacques Greffet is an alumnus of the Ecole Normale Supérieure de Paris-Saclay. He received his PhD in solid state physics in 1988 from Université Paris-Sud working in light scattering by rough surfaces. Between 1994 and 2005, he worked on the theory of image formation in near-field optics. Since 1998, he has made a number of seminal contributions to the field of thermal radiation at the nanoscale including the demonstration of coherent thermal sources and the prediction and measurement of giant radiative heat transfer at the nanoscale due to surface phonon polaritons. Since 2000, he has contributed to the field of quantum plasmonics and light emission with nanoantennas and metasurfaces. Philippe Lalanne is an alumnus of the Ecole Normale Supérieure de St Cloud. Currently, he is a CNRS researcher working at Bordeaux University. He is an expert in nanoscale electrodynamics, with an emphasis on modelling and theory. His current research is devoted to understanding how light interacts with subwavelength structures to demonstrate novel optical functionalities. He has launched new modal theories and has pioneered the development of large-NA metalenses with high-index nanostructures in the 1990s.

Part I - Basics of Electromagnetic Optics
1: Basics of Electrodynamics of Continuous Media
2: Radiation
3: Electrodynamics in Material Media: Constitutive Relations
4: Propagation
5: Reflection and Refraction at an Interface
6: Guided Modes
7: Basics of Resonators and Cavities
Part II - Optical Properties of Confined Electrons
8: Semiconductors and Quantum Wells
9: More Conned Electrons : Quantum Dots and Quantum Wires
Part III - Advanced Concepts in Nanophotonics
10: Fundamental Concepts of Near-Field Optics
11: Introduction to Super-Resolution Optical Imaging
12: Scattering. Green Tensor and Local Density of Electromagnetic States
Part IV - Plasmonics
13: Propagating Surface Plasmons
14: Localized Surface Plasmons
Part V - Articial Media: Photonics Crystals and Meta-Materials
15: Propagation in Periodic Media (I) : Bloch Modes and Homogenization
16: Propagation in Periodic Media (II): Photonic Crystals
17: Periodic Waveguide
18: Metamaterials and Metasurfaces
Part VI - Confined Photons: Nanoantennas, Microcavities and Optoelectronic Devices
19: Controlling Light-Matter Interaction at the Nanoscale with Cavities and Nanoantennas
20: From Nanophotonics to Devices
Part VII - Fluctuational Electrodynamics
21: Fluctuational Electrodynamics

Erscheinungsdatum
Reihe/Serie Oxford Graduate Texts
Zusatzinfo 211 line diagrams and colour halftones
Verlagsort Oxford
Sprache englisch
Maße 174 x 253 mm
Gewicht 1352 g
Themenwelt Naturwissenschaften Physik / Astronomie Elektrodynamik
Naturwissenschaften Physik / Astronomie Festkörperphysik
Naturwissenschaften Physik / Astronomie Optik
ISBN-10 0-19-878613-1 / 0198786131
ISBN-13 978-0-19-878613-9 / 9780198786139
Zustand Neuware
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