|
|
1 | (34) |
|
|
1 | (1) |
|
|
1 | (1) |
|
|
2 | (2) |
|
|
4 | (1) |
|
|
5 | (4) |
|
1.6 Drude-Lorentz Model for Metals |
|
|
9 | (5) |
|
1.7 Pulses and Group Velocity |
|
|
14 | (2) |
|
|
16 | (3) |
|
1.9 Jones Matrices, Stokes Parameters and the Poincare Sphere |
|
|
19 | (4) |
|
1.10 Optically Anisotropic Media |
|
|
23 | (6) |
|
|
29 | (2) |
|
|
31 | (4) |
|
|
35 | (34) |
|
|
35 | (1) |
|
2.2 Reflection and Refraction |
|
|
35 | (10) |
|
|
45 | (4) |
|
2.4 Energy Transport by Evanescent Waves |
|
|
49 | (1) |
|
|
50 | (1) |
|
2.6 Reflection and Refraction in the Presence of Absorption |
|
|
51 | (4) |
|
2.7 Reflection and Refraction with Materials with Negative Refractive Index |
|
|
55 | (2) |
|
2.8 X-ray Evanescent Waves |
|
|
57 | (2) |
|
2.9 Reflection and Refraction of Plane Waves at a Boundary Between an Isotropic and a Birefringent Medium |
|
|
59 | (1) |
|
2.10 The Plane Wave Decomposition of a Field |
|
|
60 | (2) |
|
2.11 The Classical Limit of Resolution Explained |
|
|
62 | (2) |
|
2.12 Reflection and Refraction of Gaussian Beams |
|
|
64 | (1) |
|
2.13 Evanescent Waves in Diffraction |
|
|
65 | (4) |
|
3 Evanescent Waves in Optical Waveguides |
|
|
69 | (42) |
|
|
69 | (1) |
|
|
69 | (12) |
|
3.3 Coupling of Light to a Planar Waveguide |
|
|
81 | (5) |
|
3.4 Coupling of Two Waveguides |
|
|
86 | (2) |
|
|
88 | (5) |
|
|
93 | (13) |
|
3.7 The Role of Evanescent Waves in Waveguide Sensors |
|
|
106 | (5) |
|
4 High Resolution Optical Microscopes |
|
|
111 | (16) |
|
|
111 | (1) |
|
4.2 Scanning Near-field Optical Microscopy (SNOM) |
|
|
112 | (6) |
|
4.3 Scanning Tunnelling Optical Microscope (STOM) |
|
|
118 | (4) |
|
4.4 Total Internal Reflection Fluorescence (TIRF) |
|
|
122 | (5) |
|
|
127 | (42) |
|
|
127 | (1) |
|
|
128 | (2) |
|
|
130 | (1) |
|
5.4 Surface Plasmon Polaritons (SPPs) |
|
|
131 | (5) |
|
5.5 Properties of Plasmons |
|
|
136 | (3) |
|
5.6 Excitation and Coupling of Plasmons |
|
|
139 | (5) |
|
|
144 | (6) |
|
5.8 Localized Surface Plasmons |
|
|
150 | (6) |
|
5.9 Surface Phonon Polaritons in Dielectrics and Semiconductors |
|
|
156 | (4) |
|
5.10 The Plasmons in Optical Nonlinear Materials |
|
|
160 | (2) |
|
|
162 | (7) |
|
6 Applications of Plasmons |
|
|
169 | (40) |
|
|
169 | (1) |
|
6.2 Surface Enhanced Raman Scattering (SERS) |
|
|
170 | (3) |
|
6.3 Surface Plasmon Sensors |
|
|
173 | (4) |
|
6.4 Extraordinary Optical Transmission Through Arrays of Sub-wavelength Holes |
|
|
177 | (5) |
|
6.5 Surface Plasmon Circuitry |
|
|
182 | (6) |
|
6.6 Plasmon Lasers and SPASER |
|
|
188 | (10) |
|
6.7 Plasmons for Solar Cells |
|
|
198 | (3) |
|
|
201 | (1) |
|
6.9 Black-body Spatial and Temporal Coherence |
|
|
202 | (6) |
|
6.10 Controlled Thermal Emission Using Plasma Resonances |
|
|
208 | (1) |
|
7 Quantization of Evanescent Waves |
|
|
209 | (48) |
|
|
209 | (2) |
|
7.2 Quantization of the Electromagnetic Field in One Dimension |
|
|
211 | (4) |
|
7.3 Quantum States of the Electromagnetic Field |
|
|
215 | (4) |
|
7.4 Quantization of the Electromagnetic Field in Lossless Dielectric Media |
|
|
219 | (7) |
|
|
226 | (2) |
|
7.6 The Problem of Localizing Photons |
|
|
228 | (1) |
|
7.7 Expansion of the Field and Their Orthonormalization |
|
|
229 | (3) |
|
7.8 Quantization of Evanescent Waves |
|
|
232 | (7) |
|
7.9 Plasmons in Bulk Metals |
|
|
239 | (2) |
|
7.10 Surface Plasmon Polaritons |
|
|
241 | (7) |
|
7.11 Localized Surface Plasmon Resonances |
|
|
248 | (2) |
|
7.12 Absorption of Evanescent Photons and Stimulated Emission of Surface Plasmons |
|
|
250 | (1) |
|
7.13 Plasmons and Quantum Information |
|
|
251 | (6) |
Index |
|
257 | |