Applied nanophotonics:
Gespeichert in:
Hauptverfasser: | , |
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Format: | Buch |
Sprache: | English |
Veröffentlicht: |
Cambridge ; New York ; Port Melbourne ; New Delhi ; Singapore
Cambridge University Press
2019
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Schlagworte: | |
Online-Zugang: | Inhaltsverzeichnis Klappentext |
Beschreibung: | xvii, 433 Seiten Illustrationen, Diagramme |
ISBN: | 9781107145504 |
Internformat
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505 | 8 | |a Electrons in potential wells and in solids -- Quantum confinement effects in semiconductors -- Light waves in restricted geometries -- Spontaneous emission of photons and lifetime engineering -- Stimulated emission and lasing -- Energy transfer processes -- Lighting with nanostructures -- Lasers -- Photonic circuitry -- Photovoltaics -- Emerging nanophotonics | |
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Datensatz im Suchindex
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adam_text |
CONTENTS Preface Notation Acronyms 1 page xi xii xv Introduction 1.1 From passive vision to active harnessing of light 1.2 What is nanophotonics? References 1 1 3 5 Part I Basics 7 2 Electrons in potential wells and in solids 2.1 One-dimensional wells 2.2 Tunneling 2.3 Centrally symmetric potentials 2.4 Periodic potential 2.5 Energy bands in semiconductors and dielectrics 2.6 Quasiparticles: electrons, holes, and excitons Conclusion Problems Further reading References 9 9 19 22 27 31 35 49 49 50 51 3 Quantum confinement effects in semiconductors 3.1 Density of states for various dimensionalities 3.2 Electron confinement in semiconductors and in metals 3.3 Quantum wells, nanoplatelets, and superlattices 3.4 Quantum wires and nanorods 3.5 Nanocrystals, quantum dots, and quantum dot solids Conclusion Problems Further reading References 52 52 57 61 70 73 88 89 90 90
Contents viii 4 5 Lightwaves inrestrictedgeometries 4.1 Light at the interface of two dielectrics 4.2 Light in a periodic medium 104 4.3 4.4 Photonic crystals Metallic mirrors Ш 122 4.5 Tunneling of light 124 4.6 4.7 Microcavities Light in metal-dielectric nanostructures: nanoplasmonics 126 129 4.8 Optical antennas 134 4.9 Non-periodic structures and multiple lightscattering 136 4.10 Useful analogies of electronic and optical phenomena 140 Conclusion Problems Further reading 142 143 144 References 145 Spontaneous emissionof photons and lifetime engineering 147 147 154 157 160 162 164 168 169 172 180 182 183 185 186 186 5.1 Emission of light by matter 5.2 Photon density of states 5.3 The Purcell effect 5.4 Photon density of state effects in optics 5.5 The Barnett-Loudon sum rule 5.6 Mirrors and interfaces 5.7 Microcavities 5.8 Photonic crystals 5.9 Nanoplasmonics 5.10 Nanoantennas revisited 5.11 Controlling emission patterns Conclusion Problems Further reading References 6 92 92 Stimulated emissionand lasing 188 6.1 6.2 6.3 6.4 6.5 6.6 6.7 6.8 188 192 196 199 202 203 204 206 Stimulated emission, absorption saturation, and optical gain Lasers Semiconductor lasers Double heterostructures and quantum wells Surface-emitting semiconductor lasers Quantum dot lasers Quantum cascade lasers Semiconductor lasers on the market
7 Conclusion Problems Further reading References 206 207 208 208 Energy transfer processes 210 210 211 212 215 7.1 7.2 7.3 7.4 7.5 Introduction Radiative and nonradiative energy transfers Basic processes of energy transfer Förster resonance energy transfer Dexter energy transfer, charge transfer, exciton diffusion, and exciton dissociation 7.6 Nanostructures of mixed dimensionalities 7.7 Assembly of nanostructures Conclusion Problems Further reading References 218 220 222 224 225 225 225 Part II Advances andchallenges 227 8 Lighting with nanostructures 8.1 Human vision and photometry 8.2 Quantum dot emitters and light sources 8.3 Quantum well-based blue LEDs 8.4 Quality white light with nanocrystals 8.5 Colloidal LEDs 8.6 Possible plasmonic enhancement of LED performance 8.7 Challenges and outlook Conclusion Problems Further reading References 229 229 234 245 251 260 265 270 273 274 275 275 9 Lasers 278 278 294 300 305 9.1 9.2 9.3 9.4 9.5 Epitaxial quantum well lasers Epitaxial quantum dot lasers Colloidal lasers Lasers with photonic crystals Q-switching and mode-locking with quantum dots and quantum well structures 312
x Contents 9.6 Quantum well and quantum dot lasers with an external cavity (VECSELs) 9.7 Challenges and outlook Conclusion Problems Further reading References 322 332 336 337 337 338 10 Photonic circuitry 10.1 Photonic crystal waveguides 10.2 Coupling lightwaves through tunneling 10.3 Optical switching 10.4 Challenges and outlook Conclusion Problems Further reading References 342 342 347 348 358 359 360 360 361 11 Photovoltaics 11.1 What can nanophotonics suggest for photovoltaics? 11.2 Colloidal quantum dots in solar cells 11.3 Removing reflections withperiodic structures 11.4 Increasing absorption with metal nanostructures 11.5 Challenges and outlook Conclusion Problems Further reading References 363 363 367 374 375 376 377 378 378 378 12 Emerging nanophotonics 12.1 Colloidal technological platform 12.2 Nanoplasmonics 12.3 Sensors 12.4 Silicon photonics 12.5 Quantum optics 12.6 Metamaterials 12.7 Bioinspired nanophotonics Conclusion Further reading References 380 380 388 392 402 408 412 418 422 422 423 Index 429
With full color throughout, this unique text provides an accessible yet rigorous introduction to the basic principles, technology, and applications of nanophotonics. It explains key physical concepts such as quantum confinement in semiconductors, light confinement in metal and dielectric nanostructures, and wave coupling in nanostructures, and describes how they can be applied in lighting sources, lasers, photonic circuitry, and photovoltaic systems. Readers will gain an intuitive insight into the commercial implementation of nanophotonic components, in both current and potential future devices, as well as challenges facing the field. The fundamentals of semiconductor optics, optical material properties, and light propagation are included, and new and emerging fields such as colloidal photonics, Si-based photonics, nanoplasmonics, and bioinspired photonics are all discussed. This is the "go-to" guide for graduate students and researchers in electrical engineering and physics interested in nanophotonics, and students taking nanophotonics courses. SERGEY V. GAPONENKO is a professor and Head of the Laboratory of Nano-optics at the National Academy of Sciences of Belarus. He is also the author of Optical Properties of Semiconductor Nanocrystals and Introduction to Nanophotonics (Cambridge University Press, 1998. 2010). HİLMİ VOLKAN DEMİR isa professor at the Nanyang Technological University, Singapore, and a founder and director of the University’s Luminous! Centre of Excellence for Semiconductor Lighting and Displays. He is also a professor at Bilkent University UNAM of
Turkey, his alma mater. Cambridge UNIVERSITY PRESS Cover image: photo courtesy of Kivanc Gungor, Bilkent University UNAM www.cambridge.org of Turkey. ISBN 978-1-107-14550-4 9781107145504 cover designed by Hart McLeod Ltd |
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author | Gaponenko, Sergej V. 1958- Demir, Hilmi Volkan 1976- |
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contents | Electrons in potential wells and in solids -- Quantum confinement effects in semiconductors -- Light waves in restricted geometries -- Spontaneous emission of photons and lifetime engineering -- Stimulated emission and lasing -- Energy transfer processes -- Lighting with nanostructures -- Lasers -- Photonic circuitry -- Photovoltaics -- Emerging nanophotonics |
ctrlnum | (OCoLC)1082320448 (DE-599)BVBBV045291530 |
discipline | Chemie / Pharmazie Physik Elektrotechnik / Elektronik / Nachrichtentechnik |
format | Book |
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illustrated | Illustrated |
indexdate | 2024-12-28T04:12:47Z |
institution | BVB |
isbn | 9781107145504 |
language | English |
oai_aleph_id | oai:aleph.bib-bvb.de:BVB01-030678913 |
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owner_facet | DE-29T DE-11 DE-862 DE-BY-FWS DE-703 DE-20 |
physical | xvii, 433 Seiten Illustrationen, Diagramme |
publishDate | 2019 |
publishDateSearch | 2019 |
publishDateSort | 2019 |
publisher | Cambridge University Press |
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spellingShingle | Gaponenko, Sergej V. 1958- Demir, Hilmi Volkan 1976- Applied nanophotonics Electrons in potential wells and in solids -- Quantum confinement effects in semiconductors -- Light waves in restricted geometries -- Spontaneous emission of photons and lifetime engineering -- Stimulated emission and lasing -- Energy transfer processes -- Lighting with nanostructures -- Lasers -- Photonic circuitry -- Photovoltaics -- Emerging nanophotonics Nanophotonics Nanophotonics fast Nanophotonik (DE-588)7618094-3 gnd Nanostrukturiertes Material (DE-588)4342626-8 gnd Photonik (DE-588)4243979-6 gnd |
subject_GND | (DE-588)7618094-3 (DE-588)4342626-8 (DE-588)4243979-6 |
title | Applied nanophotonics |
title_auth | Applied nanophotonics |
title_exact_search | Applied nanophotonics |
title_full | Applied nanophotonics Sergey V. Gaponenko, National Academy of Sciences of Belarus, Hilmi Volkan Demir, Nanyang Technological University, Singapore, Bilkent University UNAM, Turkey |
title_fullStr | Applied nanophotonics Sergey V. Gaponenko, National Academy of Sciences of Belarus, Hilmi Volkan Demir, Nanyang Technological University, Singapore, Bilkent University UNAM, Turkey |
title_full_unstemmed | Applied nanophotonics Sergey V. Gaponenko, National Academy of Sciences of Belarus, Hilmi Volkan Demir, Nanyang Technological University, Singapore, Bilkent University UNAM, Turkey |
title_short | Applied nanophotonics |
title_sort | applied nanophotonics |
topic | Nanophotonics Nanophotonics fast Nanophotonik (DE-588)7618094-3 gnd Nanostrukturiertes Material (DE-588)4342626-8 gnd Photonik (DE-588)4243979-6 gnd |
topic_facet | Nanophotonics Nanophotonik Nanostrukturiertes Material Photonik |
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Inhaltsverzeichnis
THWS Schweinfurt Zentralbibliothek Lesesaal
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2000 VE 9850 G211 |
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