Preface |
|
xi | |
Editor |
|
xv | |
Contributors |
|
xvii | |
|
Ultrahigh-Q Photonic Crystal Nanocavities and Their Applications |
|
|
1 | (52) |
|
|
|
|
|
|
2 | (1) |
|
Small Optical Cavities Fabricated on 2D Photonic Crystal Slabs |
|
|
3 | (4) |
|
2D and 3D Photonic Crystals |
|
|
3 | (3) |
|
Ultrasmall Cavity: Photonic Crystal Nanocavity |
|
|
6 | (1) |
|
Designing High-Q Photonic Crystal Nanocavities |
|
|
7 | (13) |
|
Design of High-Q Photonic Crystal Nanocavity |
|
|
7 | (1) |
|
Waveguide-Coupled High-Q Photonic Crystal Nanocavity |
|
|
8 | (1) |
|
Various Types of High-Q Photonic Crystal Cavities |
|
|
9 | (1) |
|
Line Defect Cavities with Modulated End-Holes |
|
|
9 | (3) |
|
Point Defect Hexapole Cavity with Rotational Symmetry Confinement |
|
|
12 | (4) |
|
Width-Modulated Line Defect Cavity with Mode-Gap Confinement |
|
|
16 | (1) |
|
Other Photonic Crystal Nanocavities |
|
|
17 | (2) |
|
Discussion of Structural Error and Q |
|
|
19 | (1) |
|
Fabrication of Photonic Crystal Slabs |
|
|
20 | (1) |
|
Characterization of Ultrahigh-Q Photonic Crystal Nanocavities |
|
|
20 | (6) |
|
Spectral Domain Measurement |
|
|
20 | (1) |
|
Spectrum Measurement with Frequency Tunable Laser |
|
|
21 | (1) |
|
Spectrum Measurement using Electro-Optic Frequency Shifter |
|
|
21 | (2) |
|
|
23 | (2) |
|
Technical Issues Related to Obtaining Accurate Q |
|
|
25 | (1) |
|
Applications of High-Q Photonic Crystal Nanocavities |
|
|
26 | (22) |
|
Caging Light and Slow Light |
|
|
26 | (1) |
|
Caging Light Using Ultrahigh-Q Photonic Crystal Nanocavity |
|
|
26 | (1) |
|
Slow Light with Photonic Crystal Nanocavity |
|
|
26 | (4) |
|
Compact Optical Add-Drop Filter |
|
|
30 | (1) |
|
|
31 | (1) |
|
Switching by Thermo-Optic Effect |
|
|
32 | (2) |
|
Switching by Carrier Plasma Dispersion Effect |
|
|
34 | (1) |
|
Numerical Study of Carrier Dynamics in Silicon Photonic Crystal |
|
|
35 | (3) |
|
5-GHz Return-to-Zero Pulse Train Modulation |
|
|
38 | (1) |
|
Accelerating the Speed of All-Optical Switches using Ion-Implantation Technology |
|
|
39 | (2) |
|
Ultra-Low Power Bistable Memory |
|
|
41 | (4) |
|
|
45 | (1) |
|
|
45 | (2) |
|
|
47 | (1) |
|
|
48 | (5) |
|
|
48 | (5) |
|
Pillar Microcavities for Single-Photon Generation |
|
|
53 | (80) |
|
|
|
|
|
|
|
|
|
|
54 | (4) |
|
|
58 | (14) |
|
Design of Pillar Microcavities |
|
|
59 | (6) |
|
|
65 | (3) |
|
Fabrication of Pillar Structures |
|
|
68 | (1) |
|
|
68 | (1) |
|
|
69 | (3) |
|
|
72 | (1) |
|
|
72 | (26) |
|
Modifying Single QD Spontaneous Emission |
|
|
73 | (1) |
|
First and Second Generation |
|
|
74 | (5) |
|
|
79 | (1) |
|
|
80 | (1) |
|
Mechanism for Single-Photon Generation in QDs |
|
|
81 | (2) |
|
Experimental Results with Pillar DBR Devices |
|
|
83 | (3) |
|
|
86 | (3) |
|
Photon Indistinguishability |
|
|
89 | (6) |
|
|
95 | (3) |
|
|
98 | (27) |
|
BB84 Quantum Key Distribution |
|
|
99 | (3) |
|
Entanglement Generation without a ``True'' Interaction |
|
|
102 | (6) |
|
Single-Mode Teleportation |
|
|
108 | (6) |
|
Coherent Single-Photon Emission and Trapping |
|
|
114 | (1) |
|
Coherent Photon Generation in Ideal Systems |
|
|
115 | (4) |
|
Performance of Practical Systems |
|
|
119 | (1) |
|
Performance as a Single-Photon Source |
|
|
120 | (1) |
|
Mathematical Details of the Theory |
|
|
120 | (5) |
|
|
125 | (8) |
|
|
126 | (7) |
|
Crystalline Whispering Gallery Mode Resonators in Optics and Photonics |
|
|
133 | (78) |
|
|
|
|
|
|
134 | (1) |
|
|
135 | (2) |
|
|
137 | (7) |
|
|
137 | (2) |
|
|
139 | (3) |
|
|
142 | (1) |
|
|
142 | (1) |
|
|
143 | (1) |
|
Modal Structure and Spectrum Engineering |
|
|
144 | (13) |
|
The Spectrum and the Shape of the Resonator |
|
|
145 | (2) |
|
|
147 | (4) |
|
|
151 | (4) |
|
|
155 | (2) |
|
Quality Factor and Finesse of Crystalline Resonators |
|
|
157 | (9) |
|
|
162 | (2) |
|
|
164 | (2) |
|
Filters and Their Applications |
|
|
166 | (21) |
|
|
167 | (2) |
|
Periodical Poling and Reconfigurable Filters |
|
|
169 | (2) |
|
|
171 | (3) |
|
|
174 | (1) |
|
|
174 | (1) |
|
Tuning of the Multi-Resonator Filter |
|
|
175 | (3) |
|
Resonator Coating Technique |
|
|
178 | (1) |
|
|
178 | (2) |
|
Vertically Coupled Resonators |
|
|
180 | (4) |
|
Microwave Photonics Applications |
|
|
184 | (1) |
|
Opto-Electronic Oscillator |
|
|
184 | (1) |
|
Microwave Photonic Receivers |
|
|
185 | (2) |
|
Frequency Stability of WGM Resonators |
|
|
187 | (13) |
|
Fundamental Thermodynamic Limits |
|
|
189 | (1) |
|
Thermorefractive Fluctuations: Steady State |
|
|
189 | (1) |
|
Thermorefractive Fluctuations: Spectrum |
|
|
190 | (3) |
|
Thermoelastic and Thermal Expansion Fluctuations: Steady State |
|
|
193 | (1) |
|
Thermoelastic Fluctuations: Spectrum |
|
|
193 | (1) |
|
Thermal Expansion Fluctuations: Spectrum |
|
|
194 | (2) |
|
Fluctuations Originating from the Measurement Procedure |
|
|
196 | (1) |
|
Photothermal Fluctuations |
|
|
196 | (1) |
|
Ponderomotive Fluctuations |
|
|
197 | (1) |
|
Stabilization Scheme: An Example |
|
|
198 | (1) |
|
Applications for Laser Stabilization |
|
|
199 | (1) |
|
|
200 | (11) |
|
|
201 | (10) |
|
Microresonator-Based Devices on a Silicon Chip: Novel Shaped Cavities and Resonance Coherent Interference |
|
|
211 | (54) |
|
|
|
|
|
|
|
|
|
|
212 | (2) |
|
Polygonal-Shaped Microdisk Resonators with Directional Coupling |
|
|
214 | (13) |
|
Overview of Polygonal-Shaped Microresonators |
|
|
214 | (2) |
|
N-Bounce Orbits in Polygonal-Shaped Microresonators |
|
|
216 | (1) |
|
Modes in Square-Shaped Microdisk Resonators |
|
|
217 | (5) |
|
Directional Coupling via Polygonal-Shaped Microdisk Flat Sidewalls |
|
|
222 | (3) |
|
Sharp Corner Radiative Loss and Corner Rounding |
|
|
225 | (1) |
|
Experimental Demonstrations |
|
|
226 | (1) |
|
Spiral-Shaped Microdisk Resonators with Nonevanescent Coupling |
|
|
227 | (11) |
|
Overview of Spiral-Shaped Microresonators |
|
|
227 | (3) |
|
|
230 | (3) |
|
Experimental Demonstrations |
|
|
233 | (3) |
|
Tilted Notch-Coupled Waveguide Design for Mode Matching |
|
|
236 | (2) |
|
Silicon Electro-Optic Modulators Using Microdisk Resonators |
|
|
238 | (6) |
|
Overview of Silicon Electro-Optic Modulators |
|
|
238 | (1) |
|
Principle of Microresonator-Based Modulators |
|
|
239 | (1) |
|
Microdisk Resonator-Based Modulators |
|
|
240 | (1) |
|
Experimental Demonstrations |
|
|
241 | (1) |
|
Toward GHz-Speed Microdisk Resonator-Based Modulators |
|
|
241 | (3) |
|
Coherent Interference of Optical Resonances |
|
|
244 | (12) |
|
Overview of Coherent Interference in Photonic Resonators |
|
|
244 | (1) |
|
Reconfigurable Microring Resonator-Based Add-Drop Filters Using Fano Resonances |
|
|
245 | (3) |
|
Coherent Interference between a Resonance Pathway and a Feedback Pathway |
|
|
248 | (1) |
|
Coherent Feedback-Coupled Filters |
|
|
248 | (5) |
|
Coherent Feedback-Coupled Modulators and Logic Devices |
|
|
253 | (3) |
|
|
256 | (9) |
|
|
257 | (1) |
|
|
257 | (8) |
|
Electro-Optic Polymer Ring Resonators for Millimeter-Wave Modulation and Optical Signal Processing |
|
|
265 | (52) |
|
|
|
|
|
|
|
|
|
266 | (1) |
|
Ring Resonator Basics and EO Modulators and Switches |
|
|
267 | (19) |
|
|
267 | (3) |
|
Electro-Optic Ring Modulators |
|
|
270 | (1) |
|
Bandwidth of Ring Resonant Modulators |
|
|
271 | (1) |
|
|
272 | (1) |
|
|
272 | (5) |
|
Electro-Optic Polymer Traveling-Wave Ring Modulator |
|
|
277 | (1) |
|
|
277 | (1) |
|
Optical and Electro-Optical Properties |
|
|
277 | (1) |
|
Traveling Wave Electrode Properties |
|
|
278 | (2) |
|
Modulation at the First FSR Spacing of 28 GHz |
|
|
280 | (3) |
|
Modulation at Multiples of the FSR |
|
|
283 | (3) |
|
Optical Signal Processing Using Ring Resonator |
|
|
286 | (31) |
|
|
286 | (1) |
|
|
286 | (2) |
|
|
288 | (1) |
|
|
289 | (1) |
|
|
290 | (1) |
|
|
291 | (1) |
|
|
292 | (1) |
|
|
292 | (1) |
|
|
293 | (1) |
|
|
293 | (2) |
|
Generality of One-Block OSP |
|
|
295 | (1) |
|
Verification and Operation |
|
|
295 | (1) |
|
|
296 | (1) |
|
|
297 | (1) |
|
|
298 | (1) |
|
|
299 | (1) |
|
Pole/Zero Locations Using One-Block OSP |
|
|
300 | (1) |
|
|
301 | (3) |
|
|
304 | (1) |
|
Arbitrary Waveform Generator |
|
|
304 | (2) |
|
|
306 | (1) |
|
|
307 | (3) |
|
Discrete-Time Applications of OSP |
|
|
310 | (3) |
|
|
313 | (4) |
|
Organic Micro-Lasers: A New Avenue onto Wave Chaos Physics |
|
|
317 | (38) |
|
|
|
|
|
318 | (1) |
|
Introduction to Flat Organic Micro-Cavities |
|
|
318 | (6) |
|
|
318 | (2) |
|
|
320 | (4) |
|
Polymer-Based Technology and Process |
|
|
324 | (3) |
|
|
325 | (1) |
|
|
326 | (1) |
|
|
327 | (6) |
|
|
327 | (1) |
|
|
328 | (1) |
|
|
329 | (4) |
|
|
333 | (15) |
|
|
334 | (1) |
|
|
335 | (5) |
|
|
340 | (4) |
|
Light Patterns Inside the Cavities |
|
|
344 | (1) |
|
|
344 | (2) |
|
|
346 | (2) |
|
|
348 | (7) |
|
|
349 | (1) |
|
Appendix A: Lyapounov Coefficient for Unstable Periodic Orbits |
|
|
349 | (1) |
|
|
350 | (5) |
|
Optical Microfiber Loop and Coil Resonators |
|
|
355 | (30) |
|
|
|
355 | (1) |
|
|
356 | (3) |
|
Microfiber Loop Resonator (MLR) |
|
|
359 | (11) |
|
|
359 | (1) |
|
|
360 | (1) |
|
Q-Factor, Extinction Ratio, and Finesse |
|
|
361 | (1) |
|
Models of Directional Coupling |
|
|
362 | (1) |
|
Experimental Demonstration and Applications of MLR |
|
|
363 | (1) |
|
MLR Fabricated by Macro-Manipulation |
|
|
363 | (5) |
|
Knot MLR Fabricated by Micro-Manipulation |
|
|
368 | (2) |
|
Microfiber Coil Resonator (MCR) |
|
|
370 | (10) |
|
|
371 | (1) |
|
|
372 | (1) |
|
|
372 | (1) |
|
|
373 | (2) |
|
Experimental Demonstration and Application of MCR |
|
|
375 | (1) |
|
|
375 | (2) |
|
|
377 | (1) |
|
|
378 | (2) |
|
|
380 | (5) |
|
|
381 | (4) |
|
Optofluidic Ring Resonator Biological and Chemical Sensors |
|
|
385 | (36) |
|
|
|
|
|
|
|
|
|
386 | (3) |
|
|
386 | (1) |
|
Optical Ring Resonator Biosensors |
|
|
386 | (2) |
|
Opto-Fluidic Ring Resonator (OFRR) Biosensors |
|
|
388 | (1) |
|
|
389 | (9) |
|
|
389 | (1) |
|
Bulk Refractive Index Sensitivity (BRIS) |
|
|
390 | (1) |
|
Wall Thickness Dependence |
|
|
391 | (1) |
|
|
391 | (2) |
|
|
393 | (1) |
|
|
393 | (1) |
|
|
393 | (1) |
|
|
394 | (1) |
|
|
395 | (1) |
|
Relation between BRIS and the Sensitivity to Molecule Binding |
|
|
396 | (1) |
|
|
397 | (1) |
|
Experimental Investigations |
|
|
398 | (15) |
|
|
398 | (1) |
|
|
399 | (1) |
|
|
400 | (1) |
|
|
401 | (1) |
|
Characterization of Thermally-Induced Noise |
|
|
401 | (1) |
|
|
402 | (1) |
|
Bio/chemical Molecule Detection |
|
|
403 | (1) |
|
|
403 | (2) |
|
|
405 | (2) |
|
|
407 | (1) |
|
Bacterium and Whole Cell Detection |
|
|
407 | (2) |
|
|
409 | (1) |
|
Integration with Microfluidics |
|
|
409 | (2) |
|
Integration with Waveguides |
|
|
411 | (1) |
|
Integration with Antiresonant Reflecting Optical Waveguide (ARROW) |
|
|
411 | (1) |
|
Integration with Metal-Clad Waveguide |
|
|
412 | (1) |
|
Integration with Microfiber and Low Index Polymer |
|
|
413 | (1) |
|
|
413 | (8) |
|
|
413 | (1) |
|
|
414 | (7) |
|
A Non-Electronic Wireless Receiver with Immunity to Damage by Electromagnetic Pulses |
|
|
421 | (26) |
|
|
|
|
|
|
|
|
422 | (1) |
|
|
423 | (2) |
|
Immunity to High EM Fields |
|
|
425 | (1) |
|
|
426 | (2) |
|
Temperature Dependence of Dielectric Antenna |
|
|
428 | (1) |
|
|
428 | (2) |
|
|
430 | (1) |
|
|
431 | (1) |
|
RF Gain in the Optical Front-End |
|
|
432 | (1) |
|
Heterogeneous Dielectric Antenna for Wideband Operation |
|
|
433 | (1) |
|
Microwave Ceramics for Dielectric Antenna |
|
|
434 | (1) |
|
EO Resonator Design: Whispering Gallery Versus Fabry-Perot |
|
|
434 | (2) |
|
Optical Power Limit in a Resonant Field Sensor |
|
|
436 | (1) |
|
Maximum Power in Disk and Ring Resonators |
|
|
436 | (1) |
|
Fabry-Perot LiNbO3 Resonant Modulator |
|
|
437 | (1) |
|
Other Applications of the ADNERF Technology |
|
|
437 | (1) |
|
|
437 | (3) |
|
|
440 | (7) |
|
|
441 | (1) |
|
Theory of Resonant EO Field Sensors |
|
|
441 | (1) |
|
Equivalent Eπ of Resonant Modulators |
|
|
441 | (1) |
|
Dynamic Range of Resonant EO Field Sensors |
|
|
442 | (1) |
|
Biasing for Maximum Signal |
|
|
443 | (1) |
|
Biasing for Minimum Distortion |
|
|
443 | (1) |
|
RF Gain in the Optical Front-End |
|
|
444 | (1) |
|
Example: LiNbO3 Resonant Modulator |
|
|
445 | (1) |
|
|
445 | (2) |
|
|
447 | (36) |
|
|
|
|
447 | (3) |
|
Theoretical Framework of Dynamic Back-Action |
|
|
450 | (12) |
|
|
450 | (2) |
|
Modifications due to Dynamic Back-Action: Method of Retardation Expansion |
|
|
452 | (5) |
|
|
457 | (5) |
|
Opto-Mechanical Coupling and Displacement Measurements |
|
|
462 | (4) |
|
Mechanical Modes of Optical Microcavities |
|
|
462 | (2) |
|
Measuring the Opto-Mechanical Response |
|
|
464 | (1) |
|
|
465 | (1) |
|
Blue Detuning: Mechanical Gain and Parametric Oscillation Instability |
|
|
466 | (5) |
|
Threshold and Mode Selection Mechanisms |
|
|
466 | (1) |
|
Threshold Dependence on Optical Q and Mechanical Q |
|
|
467 | (4) |
|
|
471 | (1) |
|
Red Detuning: Radiation Pressure Cooling |
|
|
471 | (7) |
|
|
471 | (1) |
|
Experimental Observation of Cooling |
|
|
472 | (4) |
|
Quantum Limits of Radiation Pressure Back-Action Cooling |
|
|
476 | (1) |
|
Physical Interpretation of the Quantum limits of Back-Action Cooling |
|
|
477 | (1) |
|
|
478 | (5) |
|
|
480 | (1) |
|
|
480 | (3) |
|
Optical Frequency Comb Generation in Monolithic Microresonators |
|
|
483 | (24) |
|
|
|
|
|
|
Introduction to Optical Frequency Combs |
|
|
483 | (2) |
|
Frequency Comb Generation from a Monolithic Silica Microresonator |
|
|
485 | (8) |
|
Physics of the Comb Generation Process |
|
|
485 | (3) |
|
Verification of the Comb Spectrum Equidistance |
|
|
488 | (1) |
|
Multiheterodyne Spectroscopy |
|
|
488 | (1) |
|
Proving the Equidistance of the Mode Spacing at the mHz Level |
|
|
489 | (2) |
|
Dispersion in Toroidal Microresonators |
|
|
491 | (2) |
|
Stabilization of the Comb |
|
|
493 | (6) |
|
|
494 | (1) |
|
|
495 | (1) |
|
Characterization of the Locking Mechanism |
|
|
496 | (2) |
|
|
498 | (1) |
|
Generation of a Stabilized Microwave Repetition Rate Frequency Comb |
|
|
499 | (4) |
|
Monolithic Frequency Comb Generators with Microwave Repetition Rate |
|
|
500 | (1) |
|
Stabilization and Characterization of a Microwave Frequency Comb |
|
|
501 | (2) |
|
|
503 | (4) |
|
|
504 | (1) |
|
|
504 | (3) |
|
Bit Rate Limitations in Single and Coupled Microresonators |
|
|
507 | (22) |
|
|
|
507 | (1) |
|
Single and Coupled Microresonators as Optical Delay Elements |
|
|
508 | (5) |
|
Single and Coupled Microresonators as Optical Switches |
|
|
513 | (5) |
|
Loss and GDD Limitations in CRS Delay Lines |
|
|
518 | (6) |
|
|
524 | (2) |
|
|
526 | (3) |
|
|
527 | (2) |
|
Linear and Nonlinear Localization of Light in Optical Slow-Wave Structures |
|
|
529 | (26) |
|
|
|
529 | (2) |
|
Waveguiding Principles and the Dispersion Relationship |
|
|
531 | (3) |
|
|
531 | (1) |
|
|
531 | (1) |
|
Tail of the Dispersion Relationship |
|
|
532 | (2) |
|
Localization in the Presence of Disorder |
|
|
534 | (5) |
|
|
539 | (6) |
|
Quadratic Dispersion at the Band Edge |
|
|
539 | (1) |
|
The Nonlinear Evolution Equation |
|
|
540 | (1) |
|
|
541 | (1) |
|
The ``Super-Resonant'' Mode |
|
|
542 | (2) |
|
Nonlinear Anderson Localization |
|
|
544 | (1) |
|
Cascaded Versus Nested Coupled-Resonator Structures |
|
|
545 | (5) |
|
Slow Light in Fabry-Perot and Gires-Tournois Resonators |
|
|
545 | (2) |
|
Slow Light in the Coupled Fabry-Perot Structure |
|
|
547 | (1) |
|
Advantages and Disadvantages of the Nested Architecture |
|
|
548 | (2) |
|
|
550 | (5) |
|
|
551 | (1) |
|
|
551 | (4) |
Index |
|
555 | |