Introduction to micro- and nanooptics

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Hauptverfasser: Jahns, Jürgen 1953- (VerfasserIn), Helfert, Stefan 1961- (VerfasserIn)
Format: Buch
Sprache:English
Veröffentlicht: Weinheim Wiley-VCH 2012
Schriftenreihe:Physics textbook
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Datensatz im Suchindex

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adam_text IMAGE 1 V I I CONTENTS HOW TO STUDY THIS TEXTBOOK V PREFACE X V LIST O F SYMBOLS X V I I ACKNOWLEDGMENT X X I I I 1 PRELIMINARIES 1 1.1 COMPLEX NUMBERS 1 1.2 FOURIER TRANSFORMATION 3 1.2.1 BASIC FOURIER RULES 7 1.3 MAXWELL'S EQUATIONS 11 1.4 BOUNDARY CONDITIONS 13 1.4.1 METHOD O F STATIONARY PHASE 15 QUESTIONS 17 PROBLEMS 17 FURTHER READING 18 2 LIGHT PROPAGATION 19 2.1 WAVE EQUATION 19 2.2 SOLUTIONS O F THE WAVE EQUATION 21 2.2.1 PLANE WAVES 22 2.3 VECTORIAL DESCRIPTION O F PLANE WAVES 24 2.3.1 SPHERICAL WAVES 26 2.3.2 WAVES A N D RAYS O F LIGHT 28 2.4 THE TIME-INDEPENDENT WAVE EQUATION 29 2.5 PARAXIAL WAVE EQUATION 30 2.6 GAUSSIAN BEAMS 31 2.7 THE ANGULAR SPECTRUM 34 2.8 LIGHT PROPAGATION IN TERMS O F THE ANGULAR SPECTRUM 36 2.9 EVANESCENT FIELDS 37 2.10 FREE-SPACE A N D WAVEGUIDE PROPAGATION 41 2.10.1 FREE-SPACE OPTICS 41 2.10.2 WAVEGUIDE OPTICS 42 HTTP://D-NB.INFO/1019989661 IMAGE 2 V I I I J CONTENTS QUESTIONS 43 PROBLEMS 44 FURTHER READING 45 3 LIGHT AS CARRIER O F INFORMATION AND ENERGY 47 3.1 POYNTING VECTOR AND FLOW O F ENERGY IN A WAVE FIELD 47 3.1.1 SINGLE PLANE WAVE 47 3.1.2 OPTICAL INTENSITY 49 3.1.3 TILTED PLANE WAVE 5 0 3.1.4 TWO INTERFERING PLANE WAVES 51 3.1.5 MULTIMODAL WAVE FIELD 53 3.1.6 POYNTING VECTOR O F A GAUSSIAN BEAM NEAR THE FOCUS 55 3.1.7 POWER FLOW THROUGH A CIRCULAR APERTURE 56 3.2 FLOW O F INFORMATION IN A WAVE FIELD 5 7 3.2.1 SPACE-BANDWIDTH PRODUCT O F A ONE-DIMENSIONAL GAUSSIAN FUNCTION 59 3.2.2 SPACE-BANDWIDTH PRODUCT O F A TWO-DIMENSIONAL GAUSSIAN BEAM PROFILE 61 3.2.3 JVF 2-PARAMETER O F LASER BEAMS 62 3.A APPENDIX: MINIMAL VALUE O F THE SPACE-BANDWIDTH PRODUCT 66 QUESTIONS 67 PROBLEMS 67 FURTHER READING 68 4 LIGHT PROPAGATION IN FREE SPACE 69 4.1 TRANSMISSION O F A WAVE FIELD THROUGH A N OBJECT 70 4.1.1 KIRCHHOFF APPROXIMATION FOR THIN OBJECTS 70 4.1.2 THIN AND THICK PHASE OBJECTS 71 4.1.3 TRANSMISSION PROPERTIES O F A THIN LENS 73 4.2 PROPAGATION BETWEEN OBJECTS 75 4.2.1 HUYGENS-FRESNEL-KIRCHHOFF DIFFRACTION THEORY 76 4.2.2 RAYLEIGH-SOMMERFELD-DEBYE DIFFRACTION THEORY 77 4.2.3 PARAXIAL APPROXIMATION O F THE HUYGENS-FRESNEL DIFFRACTION INTEGRAL 80 4.3 DIFFRACTION AT A SINGLE SLIT 81 4.4 NEAR-FIELD DIFFRACTION 84 4.4.1 NEAR-FIELD DIFFRACTION IN POLAR COORDINATES 84 4.4.2 AXIAL FIELD DISTRIBUTION A N D MCCUTCHEN'S THEOREM 86 4.5 EXAMPLES FOR NEAR-FIELD DIFFRACTION 87 4.5.1 NEAR-FIELD DIFFRACTION AT A LINEAR GRATING (TALBOT EFFECT) 87 4.5.2 NEAR-FIELD DIFFRACTION AT A RING APERTURE O F INFINITESIMAL WIDTH 89 4.5.3 NEAR-FIELD DIFFRACTION AT A CIRCULAR APERTURE 89 4.6 FAR-FIELD DIFFRACTION A N D OPTICAL FOURIER TRANSFORMATION 90 4.6.1 FAR-FIELD DIFFRACTION IN POLAR COORDINATES 92 4.7 EXAMPLES O F FAR-FIELD DIFFRACTION 93 4.7.1 FAR-FIELD DIFFRACTION AT A RECTANGULAR APERTURE 93 4.7.2 FAR-FIELD DIFFRACTION AT A CIRCULAR APERTURE 94 4.7.3 FAR-FIELD DIFFRACTION AT A GAUSSIAN APERTURE (APODIZATION) 95 IMAGE 3 CONTENTS | I X 4.7.4 FAR-FIELD DIFFRACTION AT A LINEAR GRATING 96 4.7.5 GRATING DIFFRACTION IN FC-SPACE 98 4.8 OPTICAL IMAGING 100 4.8.1 4 F SETUP 103 4.9 LENS PERFORMANCE 104 4.9.1 DIFFRACTION LIMIT A N D RESOLUTION 104 4.9.2 ABERRATIONS 106 4.9.3 QUALITY CRITERIA 108 4.9.4 SCALING LAWS O F OPTICAL SYSTEMS 111 QUESTIONS 112 PROBLEMS 113 FURTHER READING 114 5 REFRACTIVE AND REFLECTIVE MICROOPTICS 115 5.1 REFRACTIVE OPTICS 115 5.2 REFRACTIVE MICROLENSES 117 5.2.1 GENERATION O F A SPHERICAL SURFACE PROFILE BY USING SURFACE TENSION 117 5.2.2 GRADIENT-INDEX MICROLENSES 120 5.2.2.1 PLANAR GRIN MICROLENS 120 5.2.2.2 GRIN ROD LENS 123 5.3 MICROPRISMS 127 5.3.1 FABRICATION O F MICROPRISMS BY SURFACE MICROMACHINING 128 5.3.2 FABRICATION O F MICROPRISMS BY BULK MICROMACHINING 129 5.4 REFLECTIVE MICROOPTICS 129 5.4.1 RETROREFLECTOR ARRAY AS STRUCTURED MIRROR 131 5.4.2 BLAZED GRATING 134 QUESTIONS 135 PROBLEMS 135 FURTHER READING 135 6 DIFFRACTIVE MICROOPTICS 137 6.1 PHASE QUANTIZATION 137 6.1.1 MULTILEVEL DIFFRACTIVE ELEMENTS 141 6.2 LINEAR DIFFRACTION GRATINGS 143 6.2.1 LINEAR MULTILEVEL GRATING 143 6.2.2 BEAM SPLITTER GRATINGS 144 6.2.3 BRAGG GRATINGS 147 6.3 DIFFRACTIVE ELEMENTS WITH RADIAL SYMMETRY 149 6.3.1 INFINITESIMAL RING APERTURE 149 6.3.2 RING APERTURE O F FINITE WIDTH 151 6.3.3 AXICON AND BESSEL B E A M 152 6.3.4 SPIRAL AXICON 156 6.3.5 FRESNEL ZONE PLATE AND DIFFRACTIVE LENS 158 6.3.6 PHOTON SIEVE 162 6.4 SUBWAVELENGTH GRATINGS A N D RIGOROUS DIFFRACTION THEORY 164 6.4.1 EFFECTIVE MEDIUM THEORY FOR SUBWAVELENGTH GRATINGS 165 IMAGE 4 X | CONTENTS 6.4.2 RIGOROUS DIFFRACTION THEORY 169 QUESTIONS 171 PROBLEMS 171 FURTHER READING 172 7 MICRO- AND NANOFABRICATION 173 7.1 STRUCTURING AND PATTERN TRANSFER 173 7.2 THE LITHOGRAPHIC PROCESS 174 7.2.1 PHOTORESIST 175 7.3 EXPOSURE 177 7.3.1 MASK-BASED LITHOGRAPHY 177 7.3.2 DIRECT-WRITING LITHOGRAPHY 179 7.3.3 NANOLITHOGRAPHY 182 7.4 PATTERN TRANSFER 184 7.4.1 ETCHING 185 7.4.2 THIN FILM DEPOSITION 188 7.4.2.1 PHYSICAL VAPOR DEPOSITION 188 7.4.2.2 CHEMICAL VAPOR DEPOSITION 190 7.5 MEMS FABRICATION 192 7.6 NONLITHOGRAPHIC FABRICATION 196 7.7 EXAMPLES FOR THE FABRICATION O F MULTILEVEL A N D BLAZED STRUCTURES 198 7.7.1 FABRICATION O F BINARY A N D MULTILEVEL GRATINGS 198 1.1.2 HOLOGRAPHIC FABRICATION O F A BLAZED GRATING 201 7.7.3 ANALOG LITHOGRAPHY WITH SPECIAL PHOTOMASKS 202 QUESTIONS 204 PROBLEMS 204 FURTHER READING 205 8 TUNABLE MICROOPTICS 207 8.1 SPATIAL LIGHT MODULATORS 208 8.1.1 LIQUID CRYSTAL-BASED SPATIAL LIGHT MODULATORS 208 8.1.2 MEMS-BASED SPATIAL LIGHT MODULATORS 215 8.2 TUNABLE MICROLENSES USING MICROFLUIDICS 217 8.2.1 ELECTROWETTING 217 8.2.2 MEMBRANE-BASED MICROLENSES 220 QUESTIONS 222 PROBLEMS 222 FURTHER READING 223 9 COMPOUND AND INTEGRATED FREE-SPACE OPTICS 225 9.1 MICROOPTICAL IMAGING 225 9.1.1 MULTI-APERTURE IMAGING 225 9.1.2 SPACE-BANDWIDTH PRODUCT O F A MULTI-APERTURE IMAGING SYSTEM 227 9.1.3 INTEGRAL IMAGING 229 9.1.4 GABOR SUPERLENS 230 9.1.5 MICROOPTICAL IMAGING FOR INTERCONNECTION 231 IMAGE 5 CONTENTS I X I 9.2 MICROOPTICAL BEAM HOMOGENIZATION, BEAM GUIDING AND STEERING 235 9.2.1 HOMOGENIZATION O F LASER BEAMS 235 9.2.2 GUIDING O F A HIGH-POWER BEAM 238 9.2.3 BEAM STEERING WITH MICROLENSES 239 9.3 INTEGRATED FREE-SPACE OPTICS 241 9.4 MEMS-BASED INTEGRATED FREE-SPACE OPTICS 241 9.4.1 STACKED PLANAR OPTICS 242 9.4.2 PLANAR INTEGRATED FREE-SPACE OPTICS 242 QUESTIONS 246 PROBLEMS 246 FURTHER READING 246 10 LIGHT PROPAGATION IN WAVEGUIDES 249 10.1 OVERVIEW ABOUT WAVEGUIDE MECHANISMS 249 10.2 DIELECTRIC WAVEGUIDES 251 10.2.1 MAXWELL'S EQUATION IN 2D 252 10.2.2 REFLECTION AND TRANSMISSION O F PLANE WAVES AT INTERFACES 253 10.2.2.1 CRITICAL ANGLE 255 10.3 SLAB WAVEGUIDES 262 10.3.1 ZIG-ZAG MODEL 262 10.4 DETERMINING EIGENMODES IN SLAB WAVEGUIDES FROM MAXWELL'S EQUATIONS 265 10.4.1 SYMMETRIC WAVEGUIDE STRUCTURES 266 10.4.1.1 TE-POLARIZATION 266 10.4.1.2 FIELD DISTRIBUTION O F THE EIGENMODES A N D GOOS-HAENCHEN SHIFT 273 10.4.1.3 TM-POLARIZATION 273 10.4.2 NONSYMMETRIC WAVEGUIDES 275 10.4.2.1 EXCITATION O F WAVEGUIDE MODES (NUMERICAL APERTURE) 278 10.5 STEP-INDEX FIBERS 281 QUESTIONS 286 PROBLEMS 286 FURTHER READING 287 11 INTEGRATED WAVEGUIDE OPTICS 289 11.1 ANALYSIS O F WAVEGUIDE CIRCUITS 289 11.1.1 CONCATENATION OFWAVEGUIDE SECTIONS 292 11.2 WAVEGUIDE COUPLERS 295 11.2.1 SUPERMODES O F COUPLED WAVEGUIDES 296 11.2.1.1 HIGHER ORDER SUPERMODES 299 11.2.2 COUPLED MODE THEORY 301 11.2.3 COMPARISON BETWEEN SUPERMODES A N D COUPLED MODES 304 11.3 RECTANGULAR WAVEGUIDES 305 11.3.1 STRIP WAVEGUIDES 306 11.3.2 STRIP LOADED A N D RIB WAVEGUIDES 307 11.4 ARRAYED WAVEGUIDE GRATINGS 312 11.4.1 QUANTITATIVE DESCRIPTION 313 IMAGE 6 X I I | CONTENTS 11.4.1.1 FIELDS IN THE OUTPUT WAVEGUIDES 316 QUESTIONS 323 PROBLEMS 323 FURTHER READING 324 12 PLASMONICS 325 12.1 DRUDE MODEL O F ELECTRONS IN METAL 325 12.2 SURFACE WAVES AT A METAL-DIELECTRIC INTERFACE 327 12.2.1 SURFACES PLASMON WAVES FOR THE TE-POLARIZATION? 333 12.3 FINITE HEIGHT O F THE METAL 334 12.3.1 NONSYMMETRIC PLASMONIC WAVEGUIDES 337 12.3.1.1 FIELD DISTRIBUTION 338 12.3.2 COUPLING INTO PLASMON WAVES 340 12.3.2.1 EXCITATION O F PLASMON WAVES BY GRATINGS 344 12.4 THREE-DIMENSIONAL PLASMONIC WAVEGUIDES 348 12.5 ENHANCED TRANSMISSION THROUGH TINY HOLES 350 12.6 FINAL REMARKS 352 QUESTIONS 352 PROBLEMS 352 FURTHER READING 353 13 PHOTONIC CRYSTALS 355 13.1 INTRODUCTION 355 13.1.1 PERIODIC CONCATENATION O F A/4 LONG SECTIONS 356 13.2 FLOQUET-BLOCH MODES 359 13.2.1 FLOQUET-BLOCH MODES IN I D STRUCTURES 364 13.3 TWO-AND THREE-DIMENSIONAL PERIODIC STRUCTURES 366 13.3.1 LATTICE VECTORS A N D RECIPROCAL LATTICE 367 13.3.2 PHOTONIC CRYSTALS WITH SQUARE LATTICE 369 13.3.2.1 SYMMETRY CONSIDERATIONS I N A SQUARE LATTICE 370 13.3.2.2 BAND STRUCTURES FOR PHOTONIC CRYSTALS WITH SQUARE LATTICES 373 13.3.2.3 BAND STRUCTURES FOR PHOTONIC CRYSTALS WITH SQUARE LATTICE 373 13.3.3 PHOTONIC CRYSTALS WITH HEXAGONAL LATTICE 376 13.4 WAVEGUIDES AND BENDS WITH PHOTONIC CRYSTALS 378 13.5 PHOTONIC CRYSTAL FIBERS 381 QUESTIONS 382 PROBLEMS 383 FURTHER READING 384 14 LEFT-HANDED MATERIALS 385 14.1 INTRODUCTION 385 14.1.1 FEATURES O F LEFT-HANDED MATERIALS 386 14.2 MATHEMATICAL DESCRIPTION O F PLANE WAVES I N ARBITRARY MATERIALS 388 14.2.1 GENERAL EXPRESSIONS FOR PLANE WAVES 390 14.2.2 PLANE WAVES IN DOUBLE POSITIVE MATERIALS 393 14.2.3 PLANE WAVES IN DOUBLE NEGATIVE MATERIALS 394 IMAGE 7 CONTENTS I X I I I 14.2.4 LOSSY MATERIALS 395 14.3 WAVE PROPAGATION IN HOMOGENEOUS MEDIA 397 14.3.1 DETERMINATION O F THE EIGENVECTORS A N D EIGENVALUES 399 14.3.1.1 POSITIVE MATERIAL PARAMETERS 400 14.3.1.2 NEGATIVE MATERIAL PARAMETERS 401 14.3.1.3 ELECTRIC A N D MAGNETIC FIELD O F PLANE WAVES 401 14.3.2 CONNECTION O F MEDIA WITH DIFFERENT MATERIAL PARAMETERS 402 14.3.3 SNELL'S LAW 404 14.3.3.1 HIGH RESOLUTION LENSES 406 14.3.4 POYNTING VECTOR 407 14.4 PRACTICAL REALIZATION O F LEFT-HANDED MATERIALS (METAMATERIALS) 407 14.4.1 NEGATIVE PERMITTIVITY - NANOWIRES 408 14.4.2 NEGATIVE PERMEABILITY - SPLIT RING RESONATORS 410 14.5 LEFT-HANDED MATERIALS IN TIME DOMAIN 415 14.5.1 FINAL REMARKS 419 QUESTIONS 419 PROBLEMS 420 FURTHER READING 421 INDEX 423
any_adam_object 1
author Jahns, Jürgen 1953-
Helfert, Stefan 1961-
author_GND (DE-588)17408823X
(DE-588)122135180
author_facet Jahns, Jürgen 1953-
Helfert, Stefan 1961-
author_role aut
aut
author_sort Jahns, Jürgen 1953-
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s h sh
building Verbundindex
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dewey-search 621.369
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dewey-tens 620 - Engineering and allied operations
discipline Physik
Elektrotechnik / Elektronik / Nachrichtentechnik
Feinwerktechnik
format Book
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publishDate 2012
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publisher Wiley-VCH
record_format marc
series2 Physics textbook
spellingShingle Jahns, Jürgen 1953-
Helfert, Stefan 1961-
Introduction to micro- and nanooptics
Nanooptik (DE-588)1024960048 gnd
Mikrooptik (DE-588)4362762-6 gnd
subject_GND (DE-588)1024960048
(DE-588)4362762-6
(DE-588)4123623-3
title Introduction to micro- and nanooptics
title_auth Introduction to micro- and nanooptics
title_exact_search Introduction to micro- and nanooptics
title_full Introduction to micro- and nanooptics Jürgen Jahns and Stefan Helfert
title_fullStr Introduction to micro- and nanooptics Jürgen Jahns and Stefan Helfert
title_full_unstemmed Introduction to micro- and nanooptics Jürgen Jahns and Stefan Helfert
title_short Introduction to micro- and nanooptics
title_sort introduction to micro and nanooptics
topic Nanooptik (DE-588)1024960048 gnd
Mikrooptik (DE-588)4362762-6 gnd
topic_facet Nanooptik
Mikrooptik
Lehrbuch
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