Metamaterials with negative parameters: theory, design and microwave applications
Gespeichert in:
Hauptverfasser: | , , |
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Format: | Buch |
Sprache: | English |
Veröffentlicht: |
Hoboken, NJ
John Wiley
2008
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Schriftenreihe: | Wiley series in microwave and optical engineering
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Schlagworte: | |
Online-Zugang: | Table of contents only Publisher description Contributor biographical information Inhaltsverzeichnis |
Beschreibung: | XVIII, 315 S. Ill., graph. Darst. |
ISBN: | 9780471745822 |
Internformat
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245 | 1 | 0 | |a Metamaterials with negative parameters |b theory, design and microwave applications |c Ricardo Marqués ; Ferran Martín ; Mario Sorolla |
264 | 1 | |a Hoboken, NJ |b John Wiley |c 2008 | |
300 | |a XVIII, 315 S. |b Ill., graph. Darst. | ||
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700 | 1 | |a Sorolla, Mario |e Verfasser |4 aut | |
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Datensatz im Suchindex
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adam_text | METAMATERIALS WITH NEGATIVE PARAMETERS THEORY, DESIGN, AND MICROWAVE
APPLICATIONS RICARDO MARQUES FERRAN MARTIN MARIO SOROLLA ,RJE*XEH FUSTK
1 8 O 7 |J 2 O O 7 | B I C 8*K NNIAL WILEY-INTERSCIENCE A JOHN WILEY &
SONS. INC.. PUBLICATION CONTENTS PREFACE XIII ACKNOWLEDGMENTS XVII 1 THE
ELECTRODYNAMICS OF LEFT-HANDED MEDIA 1 1.1 INTRODUCTION 1 1.2 WAVE
PROPAGATION IN LEFT-HANDED MEDIA 2 1.3 ENERGY DENSITY AND GROUP VELOCITY
4 1.4 NEGATIVE REFRACTION 6 1.5 FERMAT PRINCIPLE 9 1.6 OTHER EFFECTS IN
LEFT-HANDED MEDIA 9 1.6.1 INVERSE DOPPLER EFFECT 10 1.6.2 BACKWARD
CERENKOV RADIATION 10 1.6.3 NEGATIVE GOOS-HANCHEN SHIFT 12 1.7 WAVES AT
INTERFACES 13 1.7.1 TRANSMISSION AND REFLECTION COEFFICIENTS 13 1.7.2
SURFACE WAVES 15 1.8 WAVES THROUGH LEFT-HANDED SLABS 16 1.8.1
TRANSMISSION AND REFLECTION COEFFICIENTS 17 1.8.2 GUIDED WAVES 17 1.8.3
BACKWARD LEAKY AND COMPLEX WAVES 19 1.9 SLABS WITH E/E O - -1 AND
/I//IO- -1 20 1.9.1 PHASE COMPENSATION AND AMPLIFICATION OF EVANESCENT
MODES 20 1.9.2 PERFECT TUNNELING 21 1.9.3 THE PERFECT LENS 25 1.9.4 THE
PERFECT LENS AS A TUNNELING/ MATCHING DEVICE 29 1.10 LOSSES AND
DISPERSION 32 VII VIII CONTENTS 1.11 INDEFINITE MEDIA 34 PROBLEMS 35
REFERENCES 37 2 SYNTHESIS OF BULK METAMATERIALS 43 2.1 INTRODUCTION 43
2.2 SCALING PLASMAS AT MICROWAVE FREQUENCIES 44 2.2.1 METALLIC
WAVEGUIDES AND PLATES AS ONE- AND TWO-DIMENSIONAL PLASMAS 44 2.2.2 WIRE
MEDIA 47 2.2.3 SPATIAL DISPERSION IN WIRE MEDIA 49 2.3 SYNTHESIS OF
NEGATIVE MAGNETIC PERMEABILITY 51 2.3.1 ANALYSIS OF THE EDGE-COUPLED SRR
52 2.3.2 OTHER SRR DESIGNS 59 2.3.2.1 THE BROADSIDE-COUPLED SRR 60
2.3.2.2 THE NONBIANISOTROPIC SRR 62 2.3.2.3 THE DOUBLE-SPLIT SRR 62
2.3.2.4 SPIRALS 62 2.3.3 CONSTITUTIVE RELATIONSHIPS FOR BULK SRR
METAMATERIALS 65 2.3.4 HIGHER-ORDER RESONANCES IN SRRS 70 2.3.5
ISOTROPIC SRRS 73 2.3.6 SCALING DOWN SRRS TO INFRARED AND OPTICAL
FREQUENCIES 75 2.4 SRR-BASED LEFT-HANDED METAMATERIALS 80 2.4.1
ONE-DIMENSIONAL SRR-BASED LEFT-HANDED METAMATERIALS 81 2.4.2
TWO-DIMENSIONAL AND THREE-DIMENSIONAL SRR-BASED LEFT-HANDED
METAMATERIALS 85 2.4.3 ON THE APPLICATION OF THE CONTINUOUS-MEDIUM
APPROACH TO DISCRETE SRR-BASED LEFT-HANDED METAMATERIALS 87 2.4.4 THE
SUPERPOSITION HYPOTHESIS 88 2.4.5 ON THE NUMERICAL ACCURACY OF THE
DEVELOPED MODEL FOR SRR-BASED METAMATERIALS 90 2.5 OTHER APPROACHES TO
BULK METAMATERIAL DESIGN 91 2.5.1 FERRITE METAMATERIALS 92 2.5.2 CHIRAL
METAMATERIALS 97 2.5.3 OTHER PROPOSALS 102 APPENDIX 107 PROBLEMS 109
REFERENCES 114 3 SYNTHESIS OF METAMATERIALS IN PLANAR TECHNOLOGY 119 3.1
INTRODUCTION 119 3.2 THE DUAL (BACKWARD) TRANSMISSION LINE CONCEPT 120
CONTENTS IX 3.3 PRACTICAL IMPLEMENTATION OF BACKWARD TRANSMISSION LINES
128 3.4 TWO-DIMENSIONAL (2D) PLANAR METAMATERIALS 131 3.5 DESIGN OF
LEFT-HANDED TRANSMISSION LINES BY MEANS OF SRRS: THE RESONANT TYPE
APPROACH 135 3.5.1 EFFECTIVE NEGATIVE PERMEABILITY TRANSMISSION LINES
136 3.5.2 LEFT-HANDED TRANSMISSION LINES IN MICROSTRIP AND CPW
TECHNOLOGIES 139 3.5.3 SIZE REDUCTION 144 3.6 EQUIVALENT CIRCUIT MODELS
FOR SRRS COUPLED TO CONVENTIONAL TRANSMISSION LINES 146 3.6.1 DISPERSION
DIAGRAMS 151 3.6.2 IMPLICATIONS OF THE MODEL 151 3.7 DUALITY AND
COMPLEMENTARY SPLIT RING RESONATORS (CSRRS) 155 3.7.1 ELECTROMAGNETIC
PROPERTIES OF CSRRS 156 3.7.2 NUMERICAL CALCULATION AND EXPERIMENTAL
VALIDATION 160 3.8 SYNTHESIS OF METAMATERIAL TRANSMISSION LINES BY USING
CSRRS 163 3.8.1 NEGATIVE PERMITTIVITY AND LEFT-HANDED TRANSMISSION LINES
163 3.8.2 EQUIVALENT CIRCUIT MODELS FOR CSRR-LOADED TRANSMISSION LINES
166 3.8.3 PARAMETER EXTRACTION 170 3.8.4 EFFECTS OF CELL GEOMETRY ON
FREQUENCY RESPONSE 172 3.9 COMPARISON BETWEEN THE CIRCUIT MODELS OF
RESONANT-TYPE AND DUAL LEFT-HANDED LINES 175 PROBLEMS 180 REFERENCES 182
4 MICROWAVE APPLICATIONS OF METAMATERIAL CONCEPTS 187 4.1 INTRODUCTION
187 4.2 FILTERS AND DIPLEXERS 188 4.2.1 STOPBAND FILTERS 189 4.2.2
PLANAR FILTERS WITH IMPROVED STOPBAND 193 4.2.3 NARROW BANDPASS FILTER
AND DIPLEXER DESIGN 198 4.2.3.1 BANDPASS FILTERS BASED ON ALTERNATE
RIGHT-/LEFT-HANDED (ARLH) SECTIONS IMPLEMENTED BY MEANS OF SRRS 199
4.2.3.2 BANDPASS FILTERS AND DIPLEXERS BASED ON ALTERNATE
RIGHT-/LEFT-HANDED (ARLH) SECTIONS IMPLEMENTED BY MEANS OF CSRRS 203
4.2.4 CSRR-BASED BANDPASS FILTERS WITH CONTROLLABLE CHARACTERISTICS 207
4.2.4.1 BANDPASS FILTERS BASED ON THE HYBRID APPROACH: DESIGN
METHODOLOGY AND ILLUSTRATIVE EXAMPLES 208 X CONTENTS 4.2.4.2 OTHER
CSRR-BASED FILTERS IMPLEMENTED BY MEANS OF RIGHT-HANDED SECTIONS 218
4.2.5 HIGHPASS FILTERS AND ULTRAWIDE BANDPASS FILTERS (UWBPFS)
IMPLEMENTED BY MEANS OF RESONANT-TYPE BALANCED CRLH METAMATERIAL
TRANSMISSION LINES 225 4.2.6 TUNABLE FILTERS BASED ON VARACTOR-LOADED
SPLIT RINGS RESONATORS (VLSRRS) 227 4.2.6.1 TOPOLOGY OF THE VLSRR AND
EQUIVALENT-CIRCUIT MODEL 228 4.2.6.2 VALIDATION OF THE MODEL 230 4.2.6.3
SOME ILLUSTRATIVE RESULTS: TUNABLE NOTCH FILTERS AND STOPBAND FILTERS
230 4.3 SYNTHESIS OF METAMATERIAL TRANSMISSION LINES WITH CONTROLLABLE
CHARACTERISTICS AND APPLICATIONS 233 4.3.1 MINIATURIZATION OF MICROWAVE
COMPONENTS 234 4.3.2 COMPACT BROADBAND DEVICES 236 4.3.3 DUAL-BAND
COMPONENTS 244 4.3.4 COUPLED-LINE COUPLERS 246 4.4 ANTENNA APPLICATIONS
252 PROBLEMS 258 REFERENCES 260 5 ADVANCED AND RELATED TOPICS 267 5.1
INTRODUCTION 267 5.2 SRR- AND CSRR-BASED ADMITTANCE SURFACES 268 5.2.1
BABINET PRINCIPLE FOR A SINGLE SPLIT RING RESONATOR 268 5.2.2 SURFACE
ADMITTANCE APPROACH FOR SRR PLANAR ARRAYS 270 5.2.3 BABINET PRINCIPLE
FOR CSRR PLANAR ARRAYS 272 5.2.4 BEHAVIOR AT NORMAL INCIDENCE 273 5.2.5
BEHAVIOR AT GENERAL INCIDENCE 274 5.3 MAGNETO- AND ELECTRO-INDUCTIVE
WAVES 278 5.3.1 THE MAGNETO-INDUCTIVE WAVE EQUATION 279 5.3.2
MAGNETO-INDUCTIVE SURFACES 282 5.3.3 ELECTRO-INDUCTIVE WAVES IN CSRR
ARRAYS 284 5.3.4 APPLICATIONS OF MAGNETO- AND ELECTRO-INDUCTIVE WAVES
285 5.4 SUBDIFFRACTION IMAGING DEVICES 287 5.4.1 SOME UNIVERSAL FEATURES
OF SUBDIFFRACTION IMAGING DEVICES 288 5.4.2 IMAGING IN THE
QUASIELECTROSTATIC LIMIT: ROLE OF SURFACE PLASMONS 292 5.4.3 IMAGING IN
THE QUASIMAGNETOSTATIC LIMIT: ROLE OF MAGNETOSTATIC SURFACE WAVES 295
CONTENTS XI 5.4.4 IMAGING BY RESONANT IMPEDANCE SURFACES:
MAGNETO-INDUCTIVE LENSES 299 5.4.5 CANALIZATION DEVICES 302 PROBLEMS 304
REFERENCES 305 INDEX 309
|
adam_txt |
METAMATERIALS WITH NEGATIVE PARAMETERS THEORY, DESIGN, AND MICROWAVE
APPLICATIONS RICARDO MARQUES FERRAN MARTIN MARIO SOROLLA ,RJE*XEH FUSTK
1 8 O 7 |J 2 O O 7 | B I C 8*K NNIAL WILEY-INTERSCIENCE A JOHN WILEY &
SONS. INC. PUBLICATION CONTENTS PREFACE XIII ACKNOWLEDGMENTS XVII 1 THE
ELECTRODYNAMICS OF LEFT-HANDED MEDIA 1 1.1 INTRODUCTION 1 1.2 WAVE
PROPAGATION IN LEFT-HANDED MEDIA 2 1.3 ENERGY DENSITY AND GROUP VELOCITY
4 1.4 NEGATIVE REFRACTION 6 1.5 FERMAT PRINCIPLE 9 1.6 OTHER EFFECTS IN
LEFT-HANDED MEDIA 9 1.6.1 INVERSE DOPPLER EFFECT 10 1.6.2 BACKWARD
CERENKOV RADIATION 10 1.6.3 NEGATIVE GOOS-HANCHEN SHIFT 12 1.7 WAVES AT
INTERFACES 13 1.7.1 TRANSMISSION AND REFLECTION COEFFICIENTS 13 1.7.2
SURFACE WAVES 15 1.8 WAVES THROUGH LEFT-HANDED SLABS 16 1.8.1
TRANSMISSION AND REFLECTION COEFFICIENTS 17 1.8.2 GUIDED WAVES 17 1.8.3
BACKWARD LEAKY AND COMPLEX WAVES 19 1.9 SLABS WITH E/E O - -1 AND
/I//IO- -1 20 1.9.1 PHASE COMPENSATION AND AMPLIFICATION OF EVANESCENT
MODES 20 1.9.2 PERFECT TUNNELING 21 1.9.3 THE PERFECT LENS 25 1.9.4 THE
PERFECT LENS AS A TUNNELING/ MATCHING DEVICE 29 1.10 LOSSES AND
DISPERSION 32 VII VIII CONTENTS 1.11 INDEFINITE MEDIA 34 PROBLEMS 35
REFERENCES 37 2 SYNTHESIS OF BULK METAMATERIALS 43 2.1 INTRODUCTION 43
2.2 SCALING PLASMAS AT MICROWAVE FREQUENCIES 44 2.2.1 METALLIC
WAVEGUIDES AND PLATES AS ONE- AND TWO-DIMENSIONAL PLASMAS 44 2.2.2 WIRE
MEDIA 47 2.2.3 SPATIAL DISPERSION IN WIRE MEDIA 49 2.3 SYNTHESIS OF
NEGATIVE MAGNETIC PERMEABILITY 51 2.3.1 ANALYSIS OF THE EDGE-COUPLED SRR
52 2.3.2 OTHER SRR DESIGNS 59 2.3.2.1 THE BROADSIDE-COUPLED SRR 60
2.3.2.2 THE NONBIANISOTROPIC SRR 62 2.3.2.3 THE DOUBLE-SPLIT SRR 62
2.3.2.4 SPIRALS 62 2.3.3 CONSTITUTIVE RELATIONSHIPS FOR BULK SRR
METAMATERIALS 65 2.3.4 HIGHER-ORDER RESONANCES IN SRRS 70 2.3.5
ISOTROPIC SRRS 73 2.3.6 SCALING DOWN SRRS TO INFRARED AND OPTICAL
FREQUENCIES 75 2.4 SRR-BASED LEFT-HANDED METAMATERIALS ' 80 2.4.1
ONE-DIMENSIONAL SRR-BASED LEFT-HANDED METAMATERIALS 81 2.4.2
TWO-DIMENSIONAL AND THREE-DIMENSIONAL SRR-BASED LEFT-HANDED
METAMATERIALS 85 2.4.3 ON THE APPLICATION OF THE CONTINUOUS-MEDIUM
APPROACH TO DISCRETE SRR-BASED LEFT-HANDED METAMATERIALS 87 2.4.4 THE
SUPERPOSITION HYPOTHESIS 88 2.4.5 ON THE NUMERICAL ACCURACY OF THE
DEVELOPED MODEL FOR SRR-BASED METAMATERIALS 90 2.5 OTHER APPROACHES TO
BULK METAMATERIAL DESIGN 91 2.5.1 FERRITE METAMATERIALS 92 2.5.2 CHIRAL
METAMATERIALS 97 2.5.3 OTHER PROPOSALS 102 APPENDIX 107 PROBLEMS 109
REFERENCES 114 3 SYNTHESIS OF METAMATERIALS IN PLANAR TECHNOLOGY 119 3.1
INTRODUCTION 119 3.2 THE DUAL (BACKWARD) TRANSMISSION LINE CONCEPT 120
CONTENTS IX 3.3 PRACTICAL IMPLEMENTATION OF BACKWARD TRANSMISSION LINES
128 3.4 TWO-DIMENSIONAL (2D) PLANAR METAMATERIALS 131 3.5 DESIGN OF
LEFT-HANDED TRANSMISSION LINES BY MEANS OF SRRS: THE RESONANT TYPE
APPROACH 135 3.5.1 EFFECTIVE NEGATIVE PERMEABILITY TRANSMISSION LINES
136 3.5.2 LEFT-HANDED TRANSMISSION LINES IN MICROSTRIP AND CPW
TECHNOLOGIES 139 3.5.3 SIZE REDUCTION 144 3.6 EQUIVALENT CIRCUIT MODELS
FOR SRRS COUPLED TO CONVENTIONAL TRANSMISSION LINES 146 3.6.1 DISPERSION
DIAGRAMS 151 3.6.2 IMPLICATIONS OF THE MODEL 151 3.7 DUALITY AND
COMPLEMENTARY SPLIT RING RESONATORS (CSRRS) 155 3.7.1 ELECTROMAGNETIC
PROPERTIES OF CSRRS 156 3.7.2 NUMERICAL CALCULATION AND EXPERIMENTAL
VALIDATION 160 3.8 SYNTHESIS OF METAMATERIAL TRANSMISSION LINES BY USING
CSRRS 163 3.8.1 NEGATIVE PERMITTIVITY AND LEFT-HANDED TRANSMISSION LINES
163 3.8.2 EQUIVALENT CIRCUIT MODELS FOR CSRR-LOADED TRANSMISSION LINES
166 3.8.3 PARAMETER EXTRACTION 170 3.8.4 EFFECTS OF CELL GEOMETRY ON
FREQUENCY RESPONSE 172 3.9 COMPARISON BETWEEN THE CIRCUIT MODELS OF
RESONANT-TYPE AND DUAL LEFT-HANDED LINES 175 PROBLEMS 180 REFERENCES 182
4 MICROWAVE APPLICATIONS OF METAMATERIAL CONCEPTS 187 4.1 INTRODUCTION
187 4.2 FILTERS AND DIPLEXERS 188 4.2.1 STOPBAND FILTERS 189 4.2.2
PLANAR FILTERS WITH IMPROVED STOPBAND 193 4.2.3 NARROW BANDPASS FILTER
AND DIPLEXER DESIGN 198 4.2.3.1 BANDPASS FILTERS BASED ON ALTERNATE
RIGHT-/LEFT-HANDED (ARLH) SECTIONS IMPLEMENTED BY MEANS OF SRRS 199
4.2.3.2 BANDPASS FILTERS AND DIPLEXERS BASED ON ALTERNATE
RIGHT-/LEFT-HANDED (ARLH) SECTIONS IMPLEMENTED BY MEANS OF CSRRS 203
4.2.4 CSRR-BASED BANDPASS FILTERS WITH CONTROLLABLE CHARACTERISTICS 207
4.2.4.1 BANDPASS FILTERS BASED ON THE HYBRID APPROACH: DESIGN
METHODOLOGY AND ILLUSTRATIVE EXAMPLES 208 X CONTENTS 4.2.4.2 OTHER
CSRR-BASED FILTERS IMPLEMENTED BY MEANS OF RIGHT-HANDED SECTIONS 218
4.2.5 HIGHPASS FILTERS AND ULTRAWIDE BANDPASS FILTERS (UWBPFS)
IMPLEMENTED BY MEANS OF RESONANT-TYPE BALANCED CRLH METAMATERIAL
TRANSMISSION LINES 225 4.2.6 TUNABLE FILTERS BASED ON VARACTOR-LOADED
SPLIT RINGS RESONATORS (VLSRRS) 227 4.2.6.1 TOPOLOGY OF THE VLSRR AND
EQUIVALENT-CIRCUIT MODEL 228 4.2.6.2 VALIDATION OF THE MODEL 230 4.2.6.3
SOME ILLUSTRATIVE RESULTS: TUNABLE NOTCH FILTERS AND STOPBAND FILTERS
230 4.3 SYNTHESIS OF METAMATERIAL TRANSMISSION LINES WITH CONTROLLABLE
CHARACTERISTICS AND APPLICATIONS 233 4.3.1 MINIATURIZATION OF MICROWAVE
COMPONENTS 234 4.3.2 COMPACT BROADBAND DEVICES 236 4.3.3 DUAL-BAND
COMPONENTS 244 4.3.4 COUPLED-LINE COUPLERS 246 4.4 ANTENNA APPLICATIONS
252 PROBLEMS 258 REFERENCES 260 5 ADVANCED AND RELATED TOPICS 267 5.1
INTRODUCTION 267 5.2 SRR- AND CSRR-BASED ADMITTANCE SURFACES 268 5.2.1
BABINET PRINCIPLE FOR A SINGLE SPLIT RING RESONATOR 268 5.2.2 SURFACE
ADMITTANCE APPROACH FOR SRR PLANAR ARRAYS 270 5.2.3 BABINET PRINCIPLE
FOR CSRR PLANAR ARRAYS 272 5.2.4 BEHAVIOR AT NORMAL INCIDENCE 273 5.2.5
BEHAVIOR AT GENERAL INCIDENCE 274 5.3 MAGNETO- AND ELECTRO-INDUCTIVE
WAVES 278 5.3.1 THE MAGNETO-INDUCTIVE WAVE EQUATION 279 5.3.2
MAGNETO-INDUCTIVE SURFACES 282 5.3.3 ELECTRO-INDUCTIVE WAVES IN CSRR
ARRAYS 284 5.3.4 APPLICATIONS OF MAGNETO- AND ELECTRO-INDUCTIVE WAVES
285 5.4 SUBDIFFRACTION IMAGING DEVICES 287 5.4.1 SOME UNIVERSAL FEATURES
OF SUBDIFFRACTION IMAGING DEVICES 288 5.4.2 IMAGING IN THE
QUASIELECTROSTATIC LIMIT: ROLE OF SURFACE PLASMONS 292 5.4.3 IMAGING IN
THE QUASIMAGNETOSTATIC LIMIT: ROLE OF MAGNETOSTATIC SURFACE WAVES 295
CONTENTS XI 5.4.4 IMAGING BY RESONANT IMPEDANCE SURFACES:
MAGNETO-INDUCTIVE LENSES 299 5.4.5 CANALIZATION DEVICES 302 PROBLEMS 304
REFERENCES 305 INDEX 309 |
any_adam_object | 1 |
any_adam_object_boolean | 1 |
author | Marqués, Ricardo Martín, Ferran Sorolla, Mario |
author_facet | Marqués, Ricardo Martín, Ferran Sorolla, Mario |
author_role | aut aut aut |
author_sort | Marqués, Ricardo |
author_variant | r m rm f m fm m s ms |
building | Verbundindex |
bvnumber | BV023319959 |
callnumber-first | T - Technology |
callnumber-label | TK7871 |
callnumber-raw | TK7871.15.M3 |
callnumber-search | TK7871.15.M3 |
callnumber-sort | TK 47871.15 M3 |
callnumber-subject | TK - Electrical and Nuclear Engineering |
classification_rvk | ZN 3400 |
ctrlnum | (OCoLC)137324999 (DE-599)BVBBV023319959 |
dewey-full | 620.1/1297 |
dewey-hundreds | 600 - Technology (Applied sciences) |
dewey-ones | 620 - Engineering and allied operations |
dewey-raw | 620.1/1297 |
dewey-search | 620.1/1297 |
dewey-sort | 3620.1 41297 |
dewey-tens | 620 - Engineering and allied operations |
discipline | Elektrotechnik / Elektronik / Nachrichtentechnik |
discipline_str_mv | Elektrotechnik / Elektronik / Nachrichtentechnik |
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id | DE-604.BV023319959 |
illustrated | Illustrated |
index_date | 2024-07-02T20:53:21Z |
indexdate | 2024-07-09T21:15:47Z |
institution | BVB |
isbn | 9780471745822 |
language | English |
lccn | 2007017343 |
oai_aleph_id | oai:aleph.bib-bvb.de:BVB01-016504073 |
oclc_num | 137324999 |
open_access_boolean | |
owner | DE-703 DE-573 DE-20 DE-29T DE-355 DE-BY-UBR DE-83 |
owner_facet | DE-703 DE-573 DE-20 DE-29T DE-355 DE-BY-UBR DE-83 |
physical | XVIII, 315 S. Ill., graph. Darst. |
publishDate | 2008 |
publishDateSearch | 2008 |
publishDateSort | 2008 |
publisher | John Wiley |
record_format | marc |
series2 | Wiley series in microwave and optical engineering |
spelling | Marqués, Ricardo Verfasser aut Metamaterials with negative parameters theory, design and microwave applications Ricardo Marqués ; Ferran Martín ; Mario Sorolla Hoboken, NJ John Wiley 2008 XVIII, 315 S. Ill., graph. Darst. txt rdacontent n rdamedia nc rdacarrier Wiley series in microwave and optical engineering Magnetic materials Microelectronics Materials Metamaterial (DE-588)7547278-8 gnd rswk-swf Mikrowellenübertragung (DE-588)4226314-1 gnd rswk-swf Mikrowellenübertragung (DE-588)4226314-1 s DE-604 Metamaterial (DE-588)7547278-8 s 1\p DE-604 Martín, Ferran Verfasser aut Sorolla, Mario Verfasser aut http://www.loc.gov/catdir/toc/ecip0716/2007017343.html Table of contents only http://www.loc.gov/catdir/enhancements/fy0740/2007017343-d.html Publisher description http://www.loc.gov/catdir/enhancements/fy0806/2007017343-b.html Contributor biographical information HEBIS Datenaustausch Darmstadt application/pdf http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=016504073&sequence=000001&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA Inhaltsverzeichnis 1\p cgwrk 20201028 DE-101 https://d-nb.info/provenance/plan#cgwrk |
spellingShingle | Marqués, Ricardo Martín, Ferran Sorolla, Mario Metamaterials with negative parameters theory, design and microwave applications Magnetic materials Microelectronics Materials Metamaterial (DE-588)7547278-8 gnd Mikrowellenübertragung (DE-588)4226314-1 gnd |
subject_GND | (DE-588)7547278-8 (DE-588)4226314-1 |
title | Metamaterials with negative parameters theory, design and microwave applications |
title_auth | Metamaterials with negative parameters theory, design and microwave applications |
title_exact_search | Metamaterials with negative parameters theory, design and microwave applications |
title_exact_search_txtP | Metamaterials with negative parameters theory, design and microwave applications |
title_full | Metamaterials with negative parameters theory, design and microwave applications Ricardo Marqués ; Ferran Martín ; Mario Sorolla |
title_fullStr | Metamaterials with negative parameters theory, design and microwave applications Ricardo Marqués ; Ferran Martín ; Mario Sorolla |
title_full_unstemmed | Metamaterials with negative parameters theory, design and microwave applications Ricardo Marqués ; Ferran Martín ; Mario Sorolla |
title_short | Metamaterials with negative parameters |
title_sort | metamaterials with negative parameters theory design and microwave applications |
title_sub | theory, design and microwave applications |
topic | Magnetic materials Microelectronics Materials Metamaterial (DE-588)7547278-8 gnd Mikrowellenübertragung (DE-588)4226314-1 gnd |
topic_facet | Magnetic materials Microelectronics Materials Metamaterial Mikrowellenübertragung |
url | http://www.loc.gov/catdir/toc/ecip0716/2007017343.html http://www.loc.gov/catdir/enhancements/fy0740/2007017343-d.html http://www.loc.gov/catdir/enhancements/fy0806/2007017343-b.html http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=016504073&sequence=000001&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA |
work_keys_str_mv | AT marquesricardo metamaterialswithnegativeparameterstheorydesignandmicrowaveapplications AT martinferran metamaterialswithnegativeparameterstheorydesignandmicrowaveapplications AT sorollamario metamaterialswithnegativeparameterstheorydesignandmicrowaveapplications |