Integrated optics: theory and technology
Gespeichert in:
1. Verfasser: | |
---|---|
Format: | Buch |
Sprache: | English |
Veröffentlicht: |
Berlin ; Heidelberg ; New York ; London ; Paris ; Tokyo ; Hong Kong ; Barcelona ; Budapest
Springer
1991
|
Ausgabe: | 3. ed. |
Schriftenreihe: | Springer series in optical sciences
33 |
Schlagworte: | |
Online-Zugang: | Inhaltsverzeichnis |
Beschreibung: | Literaturverz. S. 323 - 342 |
Beschreibung: | XIX, 347 S. Ill., graph. Darst. |
ISBN: | 3540533052 0387533052 |
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245 | 1 | 0 | |a Integrated optics |b theory and technology |c Robert G. Hunsperger |
250 | |a 3. ed. | ||
264 | 1 | |a Berlin ; Heidelberg ; New York ; London ; Paris ; Tokyo ; Hong Kong ; Barcelona ; Budapest |b Springer |c 1991 | |
300 | |a XIX, 347 S. |b Ill., graph. Darst. | ||
336 | |b txt |2 rdacontent | ||
337 | |b n |2 rdamedia | ||
338 | |b nc |2 rdacarrier | ||
490 | 1 | |a Springer series in optical sciences |v 33 | |
500 | |a Literaturverz. S. 323 - 342 | ||
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adam_text |
CONTENTS
1. INTRODUCTION. 1
1.1 ADVANTAGES OF INTEGRATED OPTICS. 2
1.1.1 COMPARISON OF OPTICAL FIBERS
WITH OTHER INTERCONNECTORS. 3
1.1.2 COMPARISON OF OPTICAL INTEGRATED CIRCUITS
WITH ELECTRICAL INTEGRATED CIRCUITS. 7
1.2 SUBSTRATE MATERIALS FOR OPTICAL INTEGRATED CIRCUITS . 8
1.2.1 HYBRID VERSUS MONOLITHIC APPROACH. 9
1.2.2 III-V AND II-VI TERNARY SYSTEMS. 10
1.2.3 HYBRID OIC'S IN LINB03 . 11
1.3 ORGANIZATION OF THIS BOOK. 12
PROBLEMS . 15
2. OPTICAL WAVEGUIDE MODES. 16
2.1 MODES IN A PLANAR WAVEGUIDE STRUCTURE. 16
2.1.1 THEORETICAL DESCRIPTION OF THE MODES
OF A THREE-LAYER PLANAR WAVEGUIDE. 17
2.1.2 CUTOFF CONDITIONS. 19
2.1.3 EXPERIMENTAL OBSERVATION OF WAVEGUIDE MODES . . . 20
2.2 THE RAY-OPTIC APPROACH TO OPTICAL MODE THEORY . 24
2.2.1 RAY PATTERNS IN THE THREE-LAYER PLANAR WAVEGUIDE 24
2.2.2 THE DISCRETE NATURE OF THE PROPAGATION CONSTANT J8 . 27
PROBLEMS . 29
3. THEORY OF OPTICAL WAVEGUIDES. 30
3.1 PLANAR WAVEGUIDES. 30
3.1.1 THE BASIC THREE-LAYER PLANAR WAVEGUIDE. 30
3.1.2 THE SYMMETRIC WAVEGUIDE. 33
3.1.3 THE ASYMMETRIC WAVEGUIDE. 35
3.2 RECTANGULAR WAVEGUIDES. 36
3.2.1 CHANNEL WAVEGUIDES. 36
3.2.2 STRIP-LOADED WAVEGUIDES. 41
PROBLEMS. 44
4. WAVEGUIDE FABRICATION TECHNIQUES. 46
4.1 DEPOSITED THIN FILMS. 46
4.1.1 SPUTTERED DIELECTRIC FILMS. 46
BIBLIOGRAFISCHE INFORMATIONEN
HTTP://D-NB.INFO/910694133
XIV CONTENTS
4.1.2 DEPOSITION FROM SOLUTIONS. 49
4.1.3 ORGANOSILICON FILMS. 49
4.2 SUBSTITUTIONAL DOPANT ATOMS. 50
4.2.1 DIFFUSED DOPANTS. 50
4.2.2 ION EXCHANGE AND MIGRATION. 51
4.2.3 ION IMPLANTATION. 52
4.3 CARRIER-CONCENTRATION-REDUCTION WAVEGUIDES . 54
4.3.1 BASIC PROPERTIES OF CARRIER-CONCENTRATION-REDUCTION
WAVEGUIDES. 55
4.3.2 CARRIER REMOVAL BY PROTON BOMBARDMENT. 56
4.4 EPITAXIAL GROWTH. 57
4.4.1 BASIS PROPERTIES OF EPITAXIALLY GROWN WAVEGUIDES . . 58
4.4.2 GA(1_;[)ALXAS EPITAXIALLY GROWN WAVEGUIDES . 58
4.4.3 EPITAXIAL WAVEGUIDES IN OTHER III V AND
II -VI MATERIALS. 62
4.4.4 MOLECULAR BEAM EPITAXY . 63
4.4.5 METAL-ORGANIC CHEMICAL VAPOR DEPOSITION. 64
4.5 ELECTRO-OPTIC WAVEGUIDES. 64
4.6 METHODS FOR FABRICATING CHANNEL WAVEGUIDES. 66
4.6.1 RIDGED WAVEGUIDES FORMED BY ETCHING. 66
4.6.2 STRIP-LOADED WAVEGUIDES. 68
4.6.3 MASKED ION IMPLANTATION OR DIFFUSION . 68
PROBLEMS. 69
5. LOSSES IN OPTICAL WAVEGUIDES. 71
5.1 SCATTERING LOSSES. 71
5.1.1 SURFACE SCATTERING LOSS. 72
5.2 ABSORPTION LOSSES. 74
5.2.1 INTERBAND ABSORPTION. 74
5.2.2 FREE CARRIER ABSORPTION. 76
5.3 RADIATION LOSSES. 80
5.3.1 RADIATION LOSS FROM PLANAR
AND STRAIGHT CHANNEL WAVEGUIDES. 80
5.3.2 RADIATION LOSS FROM CURVED CHANNEL WAVEGUIDES . . 80
5.4 MEASUREMENT OF WAVEGUIDE LOSSES. 84
5.4.1 END-FIRE COUPLING TO WAVEGUIDES OF DIFFERENT LENGTH 84
5.4.2 PRISM-COUPLED LOSS MEASUREMENTS. 85
5.4.3 SCATTERING LOSS MEASUREMENTS. 86
PROBLEMS. 87
6. WAVEGUIDE INPUT AND OUTPUT COUPLERS. 90
6.1 FUNDAMENTALS OF OPTICAL COUPLING. 90
6.2 TRANSVERSE COUPLERS . 91
6.2.1 DIRECT FOCUSING. 91
6.2.2 END-BUTT COUPLING. 92
6.3 PRISM COUPLERS.
%
CONTENTS
XV
6.4 GRATING COUPLERS.100
6.4.1 BASIC THEORY OF THE GRATING COUPLER.100
6.4.2 GRATING FABRICATION.101
6.5 TAPERED COUPLERS.103
6.6
FIBER TO WAVEGUIDE COUPLERS.104
6.6.1 BUTT COUPLING.104
6.6.2 TAPERED FILM FIBER COUPLERS.106
6.6.3 GRATING FIBER COUPLERS.107
PROBLEMS .108
7. COUPLING BETWEEN WAVEGUIDES.110
7.1 MULTILAYER PLANAR WAVEGUIDE COUPLERS .110
7.2 DUAL-CHANNEL DIRECTIONAL COUPLERS.ILL
7.2.1 OPERATING CHARACTERISTICS
OF THE DUAL-CHANNEL COUPLER.112
7.2.2 COUPLED-MODE THEORY OF SYNCHRONOUS COUPLING . . 113
7.2.3 METHODS OF FABRICATING
DUAL-CHANNEL DIRECTIONAL COUPLERS.117
7.2.4 APPLICATIONS INVOLVING DIRECTIONAL COUPLERS . 121
7.3 BRANCHING WAVEGUIDE COUPLERS.121
PROBLEMS .122
8
. ELECTRO-OPTIC MODULATORS .124
8.1 BASIC OPERATING CHARACTERISTICS OF SWITCHES AND MODULATORS 124
8.1.1 MODULATION DEPTH.124
8.1.2 BANDWIDTH.125
8.1.3 INSERTION LOSS.125
8.1.4 POWER CONSUMPTION.126
8.1.5 ISOLATION .126
8.2 THE ELECTRO-OPTIC EFFECT.127
8.3 SINGLE-WAVEGUIDE ELECTRO-OPTIC MODULATORS.127
8.3.1 PHASE MODULATION.128
8.3.2 POLARIZATION MODULATION.129
8.3.3 INTENSITY MODULATION.130
8.3.4 ELECTRO-ABSORPTION MODULATION .130
8.4 DUAL-CHANNEL WAVEGUIDE ELECTRO-OPTIC MODULATORS . 133
8.4.1 THEORY OF OPERATION.133
8.4.2 OPERATING CHARACTERISTICS
OF DUAL-CHANNEL MODULATORS.135
8.5 MACH-ZEHNDER TYPE ELECTRO-OPTIC MODULATORS.138
8.6
ELECTRO-OPTIC MODULATORS EMPLOYING REFLECTION
OR DIFFRACTION.140
8.6.1 BRAGG-EFFECT ELECTRO-OPTIC MODULATORS.140
8.6.2 ELECTRO-OPTIC REFLECTION MODULATORS.141
8.7 COMPARISON OF WAVEGUIDE MODULATORS
TO BULK ELECTRO-OPTIC MODULATORS .143
XVI
CONTENTS
8.8 TRAVELING WAVE ELECTRODE CONFIGURATIONS.145
PROBLEMS.146
9. ACOUSTO-OPTIC MODULATORS.149
9.1 FUNDAMENTAL PRINCIPLES OF THE ACOUSTO-OPTIC EFFECT . . . . 149
9.2 RAMAN-NATH-TYPE MODULATORS.151
9.3 BRAGG-TYPE MODULATORS.152
9.4 BRAGG-TYPE BEAM DEFLECTORS AND SWITCHES.155
9.5 PERFORMANCE CHARACTERISTICS OF ACOUSTO-OPTIC MODULATORS
AND BEAM DEFLECTORS.158
9.6 ACOUSTO-OPTIC FREQUENCY SHIFTERS.161
PROBLEMS.163
10. BASIC PRINCIPLES OF LIGHT EMISSION IN SEMICONDUCTORS.165
10.1 A MICROSCOPIC MODEL FOR LIGHT GENERATION AND ABSORPTION
IN A CRYSTALLINE SOLID.165
10.1.1 BASIC DEFINITIONS.165
10.1.2 CONSERVATION OF ENERGY AND MOMENTUM.167
10.2 LIGHT EMISSION IN SEMICONDUCTORS.170
10.2.1 SPONTANEOUS EMISSION.170
10.2.2 STIMULATED EMISSION.176
10.3 LASING.178
10.3.1 SEMICONDUCTOR LASER STRUCTURES .178
10.3.2 LASING THRESHOLD.179
10.3.3 EFFICIENCY OF LIGHT EMISSION.181
PROBLEMS.182
11. SEMICONDUCTOR LASERS.184
11.1 THE LASER DIODE.184
11.1.1 BASIC STRUCTURE .184
11.1.2 OPTICAL MODES.185
11.1.3 LASING THRESHOLD CONDITIONS .186
11.1.4 OUTPUT POWER AND EFFICIENCY .190
11.2 THE TUNNEL-INJECTION LASER .193
11.2.1 BASIC STRUCTURE.193
11.2.2 LASING THRESHOLD CONDITIONS.195
PROBLEMS .196
12. HETEROSTRUCTURE, CONFINED-FIELD LASERS.198
12.1 BASIC HETEROJUNCTION LASER STRUCTURES.199
12.1.1 SINGLE HETEROJUNCTION (SH) LASERS .199
12.1.2 DOUBLE HETEROSTRUCTURE (DH) LASERS.200
12.2 PERFORMANCE CHARACTERISTICS OF THE HETEROJUNCTION LASER . . 201
12.2.1 OPTICAL FIELD CONFINEMENT.201
12.2.2 CARRIER CONFINEMENT.204
12.2.3 COMPARISON OF LASER EMISSION CHARACTERISTICS . 205
CONTENTS
XVII
12.3 CONTROL OF EMITTED WAVELENGTH.206
12.3.1 GA(1_X)ALXAS LASERS FOR FIBER-OPTIC APPLICATIONS . . 206
12.3.2 LASERS MADE OF QUATERNARY MATERIALS.208
12.4 ADVANCED HETEROJUNCTION LASER STRUCTURES.208
12.4.1 STRIPE GEOMETRY LASERS.208
12.4.2 SINGLE-MODE LASERS.209
12.4.3 INTEGRATED LASER STRUCTURES .211
12.5 RELIABILITY.215
12.5.1 CATASTROPHIC FAILURE.215
12.5.2 GRADUAL DEGRADATION.216
12.6 LASER AMPLIFIERS.217
PROBLEMS .219
13. DISTRIBUTED FEEDBACK LASERS.220
13.1 THEORETICAL CONSIDERATIONS.220
13.1.1 WAVELENGTH DEPENDENCE OF BRAGG REFLECTIONS . . . . 220
13.1.2 COUPLING EFFICIENCY.222
13.1.3 LASING WITH DISTRIBUTED FEEDBACK.225
13.2 FABRICATION TECHNIQUES.226
13.2.1 EFFECTS OF LATTICE DAMAGE.227
13.2.2 GRATING LOCATION.227
13.2.3 DBR LASERS.230
13.3 PERFORMANCE CHARACTERISTICS.231
13.3.1 WAVELENGTH SELECTABILITY.231
13.3.2 OPTICAL EMISSION LINEWIDTH.232
13.3.3 STABILITY.233
13.3.4 THRESHOLD CURRENT DENSITY AND OUTPUT POWER . . . 235
PROBLEMS.235
14. DIRECT MODULATION OF SEMICONDUCTOR LASERS.236
14.1 BASIC PRINCIPLES OF DIRECT MODULATION.236
14.1.1 AMPLITUDE MODULATION.236
14.1.2 PULSE MODULATION.239
14.1.3 FREQUENCY MODULATION.241
14.2 MICROWAVE FREQUENCY MODULATION OF LASER DIODES . 243
14.2.1 SUMMARY OF EARLY EXPERIMENTAL RESULTS.243
14.2.2 FACTORS LIMITING MODULATION FREQUENCY.243
14.2.3 DESIGN OF LASER DIODE PACKAGES
FOR MICROWAVE MODULATION .247
14.3 MONOLITHICALLY INTEGRATED DIRECT MODULATORS.249
14.4 FUTURE PROSPECTS FOR MICROWAVE MODULATION OF LASER DIODES 250
PROBLEMS.250
15. INTEGRATED OPTICAL DETECTORS.252
15.1 DEPLETION LAYER PHOTODIODES .252
15.1.1 CONVENTIONAL DISCRETE PHOTODIODES.253
XVIII CONENTS
15.1.2 WAVEGUIDE PHOTODIODES.255
15.1.3 EFFECTS OF SCATTERING AND FREE-CARRIER ABSORPTION . . 256
15.2 SPECIALIZED PHOTODIODE STRUCTURES.257
15.2.1 SCHOTTKY-BARRIER PHOTODIODE.257
15.2.2 AVALANCHE PHOTODIODES.258
15.2.3 P-I-N PHOTODIODES.260
15.3 TECHNIQUES FOR MODIFYING SPECTRAL RESPONSE.261
15.3.1 HYBRID STRUCTURES .261
15.3.2 HETEROEPITAXIAL GROWTH.262
15.3.3 PROTON BOMBARDMENT.264
15.3.4 ELECTRO-ABSORPTION.268
15.4 FACTORS LIMITING PERFORMANCE OF INTEGRATED DETECTORS . 271
15.4.1 HIGH FREQUENCY CUTOFF.271
15.4.2 LINEARITY.272
15.4.3 NOISE.272
PROBLEMS.273
16. QUANTUM WELL DEVICES.277
16.1 QUANTUM WELLS AND SUPERLATTICES.277
16.2 QUANTUM WELL LASERS.279
16.2.1 SINGLE QUANTUM WELL LASERS.279
16.2.2 MULTIPLE QUANTUM WELL LASERS.282
16.3 QUANTUM WELL MODULATORS AND SWITCHES.286
16.3.1 ELECTRO-ABSORPTION MODULATORS.286
16.3.2 ELECTRO-OPTIC EFFECT IN QUANTUM WELLS .289
16.3.3 MULTIPLE QUANTUM WELL SWITCHES.291
16.4 QUANTUM WELL DETECTORS .293
16.4.1 PHOTOCONDUCTIVE DETECTORS.293
16.4.2 MQW AVALANCHE PHOTODIODES.294
16.5 SELF-ELECTRO-OPTIC EFFECT DEVICES.294
16.6 QUANTUM WELL DEVICES IN OEIC'S.295
16.6.1 INTEGRATED LASER/MODULATORS.296
16.6.2 A FOUR-CHANNEL TRANSMITTER ARRAY WITH MQW LASERS 297
PROBLEMS.299
17. APPLICATION OF INTEGRATED OPTICS AND CURRENT TRENDS.300
17.1 APPLICATIONS OF OPTICAL INTEGRATED CIRCUITS.300
17.1.1 RF SPECTRUM ANALYZER.300
17.1.2 MONOLITHIC WAVELENGTH-MULTIPLEXED OPTICAL SOURCE . 303
17.1.3 ANALOG-TO-DIGITAL CONVERTER (ADC).304
17.1.4 INTEGRATED-OPTIC DOPPLER VELOCIMETER.305
17.1.5 AN IO OPTICAL DISK READHEAD.307
17.1.6 OIC TEMPERATURE SENSOR .308
17.1.7 IO HIGH VOLTAGE SENSOR.310
17.2 OPTO-ELECTRONIC INTEGRATED CIRCUITS.311
17.2.1 AN OEIC TRANSMITTER.311
CONTENTS
XIX
17.2.2 AN OEIC RECEIVER.311
17.2.3 AN OEIC PHASED ARRAY ANTENNA DRIVER.312
17.3 DEVICES AND SYSTEMS FOR TELECOMMUNICATIONS.314
17.3.1 TRENDS IN OPTICAL TELECOMMUNICATIONS.314
17.3.2 NEW DEVICES FOR TELECOMMUNICATIONS.318
17.4 OPTO-MICROWAVE APPLICATIONS.319
17.5 FUTURE PROJECTIONS.320
REFERENCES.323
SUBJECT INDEX .
343 |
any_adam_object | 1 |
author | Hunsperger, Robert G. 1940- |
author_GND | (DE-588)143138545 |
author_facet | Hunsperger, Robert G. 1940- |
author_role | aut |
author_sort | Hunsperger, Robert G. 1940- |
author_variant | r g h rg rgh |
building | Verbundindex |
bvnumber | BV025860371 |
classification_rvk | UH 5090 UH 5765 UH 6700 |
ctrlnum | (OCoLC)263165845 (DE-599)BVBBV025860371 |
discipline | Physik |
edition | 3. ed. |
format | Book |
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id | DE-604.BV025860371 |
illustrated | Illustrated |
indexdate | 2024-10-09T12:04:11Z |
institution | BVB |
isbn | 3540533052 0387533052 |
language | English |
oai_aleph_id | oai:aleph.bib-bvb.de:BVB01-019108093 |
oclc_num | 263165845 |
open_access_boolean | |
owner | DE-11 |
owner_facet | DE-11 |
physical | XIX, 347 S. Ill., graph. Darst. |
publishDate | 1991 |
publishDateSearch | 1991 |
publishDateSort | 1991 |
publisher | Springer |
record_format | marc |
series | Springer series in optical sciences |
series2 | Springer series in optical sciences |
spelling | Hunsperger, Robert G. 1940- Verfasser (DE-588)143138545 aut Integrated optics theory and technology Robert G. Hunsperger 3. ed. Berlin ; Heidelberg ; New York ; London ; Paris ; Tokyo ; Hong Kong ; Barcelona ; Budapest Springer 1991 XIX, 347 S. Ill., graph. Darst. txt rdacontent n rdamedia nc rdacarrier Springer series in optical sciences 33 Literaturverz. S. 323 - 342 Integrierte Optik (DE-588)4027240-0 gnd rswk-swf Optoelektronik (DE-588)4043687-1 gnd rswk-swf Integrierte Optik (DE-588)4027240-0 s DE-604 Optoelektronik (DE-588)4043687-1 s Springer series in optical sciences 33 (DE-604)BV000000237 33 DNB Datenaustausch application/pdf http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=019108093&sequence=000001&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA Inhaltsverzeichnis |
spellingShingle | Hunsperger, Robert G. 1940- Integrated optics theory and technology Springer series in optical sciences Integrierte Optik (DE-588)4027240-0 gnd Optoelektronik (DE-588)4043687-1 gnd |
subject_GND | (DE-588)4027240-0 (DE-588)4043687-1 |
title | Integrated optics theory and technology |
title_auth | Integrated optics theory and technology |
title_exact_search | Integrated optics theory and technology |
title_full | Integrated optics theory and technology Robert G. Hunsperger |
title_fullStr | Integrated optics theory and technology Robert G. Hunsperger |
title_full_unstemmed | Integrated optics theory and technology Robert G. Hunsperger |
title_short | Integrated optics |
title_sort | integrated optics theory and technology |
title_sub | theory and technology |
topic | Integrierte Optik (DE-588)4027240-0 gnd Optoelektronik (DE-588)4043687-1 gnd |
topic_facet | Integrierte Optik Optoelektronik |
url | http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=019108093&sequence=000001&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA |
volume_link | (DE-604)BV000000237 |
work_keys_str_mv | AT hunspergerrobertg integratedopticstheoryandtechnology |