Passive RF component technology materials, techniques, and applications
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Format: | Buch |
Sprache: | English |
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Boston [u.a.]
Artech House
2012
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Schriftenreihe: | Artech House microwave library
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007 | t| | ||
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020 | |a 9781608071999 |9 978-1-60807-199-9 | ||
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245 | 1 | 0 | |a Passive RF component technology |b materials, techniques, and applications |c Guoan Wang ... eds. |
264 | 1 | |a Boston [u.a.] |b Artech House |c 2012 | |
300 | |a XIII, 290 S. |b Ill., graph. Darst. | ||
336 | |b txt |2 rdacontent | ||
337 | |b n |2 rdamedia | ||
338 | |b nc |2 rdacarrier | ||
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943 | 1 | |a oai:aleph.bib-bvb.de:BVB01-024985003 |
Datensatz im Suchindex
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adam_text | Titel: Passive RF component technology
Autor: Wang, Guoan
Jahr: 2012
Contents
CHAPTER 1
Introduction
CHAPTER 2
Overview of RF Passives and Enabling Materials
2.1 Passive Filters
2.2 Combiners, Dividers, Hybrids, and Couplers
2.3 Inductors, Transformers, and Baluns
2.4 Antennas
2.5 Summary
References
5
6
9
12
16
18
18
CHAPTER 3
Novel Flexible Material Liquid Crystal Polymer (LCP) Based
Flexible Passives
3.1 Introduction
3.2 LCP Properties
3.3 Multilayer LCP Process Development
3.4 Design and Fabrication of LCP-based Tunable RF Passives
3.4.1 Filters
3.4.2 Monolithically Integrated RF MEMS
3.4.3 Phase Shifters
3.4.4 Antennas
3.4.5 Antenna Arrays
3.5 LCP for 3D Integration and Packaging
3.6 Summary
References
19
19
20
22
23
24
26
28
28
30
31
33
33
CHAPTER 4
Ferroelectric-based Tunable RF Capacitor
4.1 Introduction
4.2 BST Materials for RF Capacitors
4.2.1 Structure and Properties
4.2.2 Thin-film Tunable Capacitors
37
37
40
40
41
Contents
4.3 Ferroelectric Capacitor with Low Tuning Voltage and High Linearity 42
4.3.1 Architecture for Reduced Intermodulation Distortion in
Ferroelectric RF Tunable Capacitors 43
4.3.2 Analysis of the Capacitor with Low Tuning Voltage and Fligh
Linearity 47
4.3.3 Device Implementation 51
4.3.4 Characterization 57
4.4 Low Conductor Loss Capacitor 62
4.4.1 Low-loss Microelectrodes Fabricated Using Reverse-side
Exposure 62
4.4.2 Characterization of Low Conductor Loss Capacitors 63
4.5 Embedded Ferroelectric Capacitor 68
4.5.1 Multi-interdigitated BST Gap Capacitor 69
4.6 Summary 71
4.7 Future Prospects 71
References 72
CHAPTER 5
High Aspect Ratio RF Passives Enabled by Smart RF Materials and
Polymer-core Conductor Micromachining Technologies 75
5.1 Introduction 75
5.1.1 Importance of the High-performance Passives with High-
quality Factors 75
5.1.2 Existing Approaches to Improve Performances of Millimeter
Passives 76
5.2 Properties of SU-8 Polymer 77
5.3 The Introduction of Polymer-core Conductor Micromachining
Technology ~ 8
5.3.1 Fabrication Flow ~8
5.3.2 Advantages of the Polymer-core Conductor Technology 80
5.4 High-Q RF Inductors by This Approach 80
5.5 High-performance Millimeter-wave Antennas Using the Polymer-core
Conductor Approach 82
5.5.1 A Millimeter-wave Monopole Antenna 83
5.5.2 An Elevated Patch Antenna 84
5.5.3 A Surface Micromachined Horn Antenna Using a
Polymer-core Conductor 85
5.6 High-aspect-ratio Micromachined Filters, Duplexer. and Coupler 88
5.6.1 Micromachined Cavity Resonator 88
5.6.2 SU-8-based Cavity Filters for 60-GHz Applications 89
5.6.3 SU-8-based Surface Micromachined Cavity Duplexer 90
5.6.4 SU-8-based Surface Micromachined Microstrip Edge Coupler 92
5.7 Summary 94
References 95
Contents
CHAPTER 6
CNT-based Passive Circuits and Detectable Components 97
6.1 Introduction 97
6.2 CNT-based Transmission Line and Interconnect 98
6.2.1 CNT-based Transmission Line 99
6.2.2 CNT-based Interconnects 101
6.3 CNT-based Flexible and Pattern-Agile Antennas 107
6.3.1 CNT-based Flexible Antenna 108
6.3.2 CNT-based Pattern-agile Antenna 110
6.4 CNT-based RF Wireless Transducer 112
6.4.1 The Gas-sensing Mechanism in Carbon Nanotubes for RF
Applications 114
6.4.2 Applications of CNT-based RF Gas Transducers 115
6.5 Summary 126
References 126
CHAPTER 7
Paper-based Green RFID and Other Passives 131
7.1 Introduction 131
7.1.1 Radio Frequency Identification Systems 131
7.1.2 History of RFID 132
7.2 RFID and Its Applications 134
7.2.1 RFID Tag Components 134
7.2.2 RFID Tag Types 134
7.2.3 RFID Readers 135
7.3 Paper-based Green RFID 135
7.3.1 Paper for Low-cost RF Solutions 135
7.3.2 Inkjet-printing Technology 141
7.3.3 Paper-based RFID Tag 143
7.3.4 Paper-based RF Passives 146
7.4 Smart RFID 148
7.4.1 Wireless Sensors and Wireless Sensor Networks 148
7.4.2 RFID-enabled Sensors 150
7.5 Summary 155
References 155
CHAPTER 8
Flexible Magnetic Composites 157
8.1 Introduction 157
8.1.1 Why Flexible Magnetic Passives? 157
8.1.2 Flexible Magnetic Composite Considerations 159
8.2 Flexible Magnetic Composites 161
8.2.1 Material Development and Characterization 161
8.2.2 Benchmark Antenna Design 167
8.3 Flexible Magnetic Composites for Biomonitoring Applications 172
Contents
8.3.1 RFID and Wearable Wireless Applications 172
8.3.2 RFID Tag Design on Flexible Magnetic Composites 173
8.3.3 Conformal Performance 181
8.4 Summary 182
References 183
CHAPTER 9
Composite Right-/Left-handed Metamaterials and Their RF Applications 187
9.1 Introduction 187
9.2 Left-handed Metamaterials and Basic Concepts 189
9.3 Transmission-line Approach 190
9.3.1 Maxwell s Equation and Transmission-line Approach 190
9.3.2 Negative Effective Permittivity and Permeability 190
9.3.3 Composite Right-/Left-handed Transmission Lines 191
9.3.4 Periodic Boundary Condition and Dispersion Relation 192
9.3.5 Leaky Wave Radiation 194
9.4 Zeroth-order Resonators with Double Resonances and Their
Applications to Polarization-controllable Antennas 195
9.4.1 Introduction 195
9.4.2 Resonant Conditions for Transmission-line Resonators 195
9.4.3 Zeroth-order Resonance Based on Balanced CRLHTL 198
9.4.4 Zeroth-order Resonance within Band Gap Region for
Unbalanced CRLHTL 199
9.4.5 Demonstration of Zeroth-order Resonator with Double
Resonances in Series and Shunt Branches 203
9.4.6 Polarization-controllable Zeroth-order Resonator Antennas 206
9.5 Nonreciprocal Metamaterials and Their Applications to
Traveling-wave Resonators and Beam-steering Antennas 209
9.5.1 Introduction 209
9.5.2 Propagation in Gyrotropic Medium and Nonreciprocal
Guided Modes 210
9.5.3 Negative Permeability and Left-handed Metamaterials 212
9.5.4 Transmission-line Approach and Dispersion Diagram 212
9.5.5 Geometries Supporting Nonreciprocal Phase-shift CRLHTL 217
9.5.6 Nonreciprocal Leaky Wave Radiation 218
9.5.7 Traveling-wave Resonators 221
9.5.8 Beam Steering Antennas Based on Traveling-wave
Resonators 225
9.6 Summary 226
References ??7
CHAPTER 10
Designing Novel On-chip Millimeter Wave Passives 233
10.1 Introduction to On-chip Novel Passive Device Design 233
10.2 Tunable Delay Transmission Line with Fixed Characteristic
Impedance 23 S
Contents___________________________________ xiii
10.2.1 Introduction 235
10.2.2 Laddered Ground Return Structure 237
10.2.3 Test Structures and Measurement Results 239
10.2.4 Conclusion 242
10.3 Two-state Single-turn Spiral Inductor of Reconfigurable RF Circuits 242
10.3.1 Introduction 242
10.3.2 Simulators with MOSFET Switch 243
10.3.3 Measurement Structures 245
10.3.4 Conclusions 250
10.4 On-chip Frequency-dependent Inductor for Multi-band Circuit
Designs 250
10.4.1 Introduction 250
10.4.2 Inductor Design and Simulation 251
10.4.3 Measurement results 254
10.4.4 Conclusions 257
10.5 Through-silicon-via (TSV) MMW Passives for 3D Package
Environment 257
10.5.1 TSV Band-pass Filter for 77 GHz applications 257
10.5.2 TSV Wilkinson Power Divider 262
10.6 Summary 272
References 273
About the Authors 277
Index 281
|
any_adam_object | 1 |
author2 | Wang, Guoan |
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building | Verbundindex |
bvnumber | BV040127759 |
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id | DE-604.BV040127759 |
illustrated | Illustrated |
indexdate | 2024-12-24T02:39:35Z |
institution | BVB |
isbn | 9781608071999 1608071995 |
language | English |
oai_aleph_id | oai:aleph.bib-bvb.de:BVB01-024985003 |
oclc_num | 796219083 |
open_access_boolean | |
owner | DE-526 DE-898 DE-BY-UBR DE-83 |
owner_facet | DE-526 DE-898 DE-BY-UBR DE-83 |
physical | XIII, 290 S. Ill., graph. Darst. |
publishDate | 2012 |
publishDateSearch | 2012 |
publishDateSort | 2012 |
publisher | Artech House |
record_format | marc |
series2 | Artech House microwave library |
spellingShingle | Passive RF component technology materials, techniques, and applications Funktechnik (DE-588)4018908-9 gnd Passives Bauelement (DE-588)4173496-8 gnd |
subject_GND | (DE-588)4018908-9 (DE-588)4173496-8 |
title | Passive RF component technology materials, techniques, and applications |
title_auth | Passive RF component technology materials, techniques, and applications |
title_exact_search | Passive RF component technology materials, techniques, and applications |
title_full | Passive RF component technology materials, techniques, and applications Guoan Wang ... eds. |
title_fullStr | Passive RF component technology materials, techniques, and applications Guoan Wang ... eds. |
title_full_unstemmed | Passive RF component technology materials, techniques, and applications Guoan Wang ... eds. |
title_short | Passive RF component technology |
title_sort | passive rf component technology materials techniques and applications |
title_sub | materials, techniques, and applications |
topic | Funktechnik (DE-588)4018908-9 gnd Passives Bauelement (DE-588)4173496-8 gnd |
topic_facet | Funktechnik Passives Bauelement |
url | http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=024985003&sequence=000002&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA |
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