LEADER 01570oam 2200397zu 450 001 996204072103316 005 20210806235801.0 010 $a1-5090-9773-2 035 $a(CKB)1000000000022576 035 $a(SSID)ssj0000395392 035 $a(PQKBManifestationID)12081925 035 $a(PQKBTitleCode)TC0000395392 035 $a(PQKBWorkID)10450558 035 $a(PQKB)11136093 035 $a(EXLCZ)991000000000022576 100 $a20160829d2005 uy 101 0 $aeng 181 $ctxt 182 $cc 183 $acr 200 10$a2005 IEEE International Integrated Reliability Workshop final report : Stanford Sierra Conference Center, S. Lake Tahoe, California, October 17-20, 2005 210 31$a[Place of publication not identified]$cIEEE Electron Devices Society$d2005 300 $aBibliographic Level Mode of Issuance: Monograph 311 $a0-7803-8992-1 606 $aIntegrated circuits$xReliability$vCongresses 606 $aIntegrated circuits$xReliability$xWafer-scale integration$vCongresses 615 0$aIntegrated circuits$xReliability 615 0$aIntegrated circuits$xReliability$xWafer-scale integration 712 02$aIEEE Reliability Society 712 02$aIEEE Electron Devices Society 712 12$aInternational Integrated Reliability Workshop 801 0$bPQKB 906 $aPROCEEDING 912 $a996204072103316 996 $a2005 IEEE International Integrated Reliability Workshop final report : Stanford Sierra Conference Center, S. Lake Tahoe, California, October 17-20, 2005$92539079 997 $aUNISA LEADER 07123nam 22006495 450 001 9910298586103321 005 20200706120802.0 010 $a3-319-66044-6 024 7 $a10.1007/978-3-319-66044-8 035 $a(CKB)4100000000587602 035 $a(DE-He213)978-3-319-66044-8 035 $a(MiAaPQ)EBC5047002 035 $a(PPN)204530369 035 $a(EXLCZ)994100000000587602 100 $a20170914d2018 u| 0 101 0 $aeng 135 $aurnn|008mamaa 181 $ctxt$2rdacontent 182 $cc$2rdamedia 183 $acr$2rdacarrier 200 10$aFunctional Metamaterials and Metadevices /$fby Xingcun Colin Tong 205 $a1st ed. 2018. 210 1$aCham :$cSpringer International Publishing :$cImprint: Springer,$d2018. 215 $a1 online resource (XVIII, 277 p. 116 illus., 114 illus. in color.) 225 1 $aSpringer Series in Materials Science,$x0933-033X ;$v262 311 $a3-319-66043-8 320 $aIncludes bibliographical references and index. 327 $aPreface -- Concepts from metamaterials to metadevices -- Rationale for metamaterials exploration -- Classification of metamaterials -- Evolution of metamaterials -- Emerging functional metadevices -- Design and fabrication of metamaterials and metadevices -- Common design Approaches for metamaterials -- General tuning methods for metadevices -- Fabrication technology -- Tuning techniques -- Electromagnetic metamaterials and metadevices -- Fundamental theory of electromagnetic metamaterials -- Single negative metamaterials -- Double Negative Metamaterials -- Zero index metamaterials -- Electromagnetic band gap metamaterials -- Bi-isotropic and bi-anisotropic metamaterials -- Microwave metamaterial-inspired metadevices -- Terahertz metamaterials and metadevices -- Introduction -- Passive-type terahertz metamaterials -- Active-type terahertz metamaterials -- Flexible THz metamaterial sensors -- Photonic metamaterials and metadevices -- Introduction -- Photonic crystals -- Metamaterials designed through transformation optics -- Hyperbolic metamaterials -- Chiral metamaterials and metadevices -- Historical perspective -- Chirality parameter and ellipticity -- Typical chiral metamaterials -- Chiroptical effects -- Typical applications of chiral metamaterials -- Plasmonic metamaterials and metasurfaces -- Plasmonic meta-atoms and their interactions -- Plasmonic metamaterials implementing negative refraction and negative refractive index -- Plasmonic metasurfaces -- Graphene-based plasmonic metamaterials -- Self-assembled plasmonic metamaterials -- Application perspective -- Metamaterials-inspired frequency selective surfaces -- Evolution of frequency selective surfaces -- Design of metamaterial-based miniaturized-element frequency-selective surfaces -- Printed flexible and reconfigurable frequency selective surfaces -- Metamaterials inspired FSS antennas and circuits -- Metamaterial-inspired microfluidic sensors -- Metamaterial-inspired rotation and displacement sensors -- Nonlinear metamaterials and metadevices -- Introduction -- Implementation approaches to manufacture nonlinear metamaterials -- Nonlinear responses and effects -- Acoustic metamaterials and metadevices -- Historical perspective and basic principles -- Dynamic negative density and compressibility -- Membrane-type acoustic materials -- Transformation acoustics and metadevices with spatially varying index -- Space-coiling and acoustic metasurfaces -- Acoustic absorption -- Active acoustic metamaterials -- Emerging directions and future trends -- Mechanical metamaterials and metadevices -- Introduction -- Auxetic mechanical metamaterials -- Penta-mode metamaterials -- Ultra-property metamaterials -- Negative-parameter metamaterials -- Mechanical metamaterials with tunable negative thermal expansion -- Active, adaptive, and programmable metamaterials -- Origami-based metamaterials -- Mechanical metamaterials as seismic shields -- Future trends -- Perspective and future trends -- Emerging metamaterials capabilities and new concepts -- Manipulation of metasurface properties -- Research trends of nonlinear, active and tunable properties -- Emerging metadevices and applications -- Prospective manufacturing and assembly technologies of metamaterials and metadevices. 330 $aTo meet the demands of students, scientists and engineers for a systematic reference source, this book introduces, comprehensively and in a single voice, research and development progress in emerging metamaterials and derived functional metadevices. Coverage includes electromagnetic, optical, acoustic, thermal, and mechanical metamaterials and related metadevices. Metamaterials are artificially engineered composites with designed properties beyond those attainable in nature and with applications in all aspects of materials science. From spatially tailored dielectrics to tunable, dynamic materials properties and unique nonlinear behavior, metamaterial systems have demonstrated tremendous flexibility and functionality in electromagnetic, optical, acoustic, thermal, and mechanical engineering. Furthermore, the field of metamaterials has been extended from the mere pursuit of various exotic properties towards the realization of practical devices, leading to the concepts of dynamically-reconfigurable metadevices and functional metasurfaces. The book explores the fundamental physics, design, and engineering aspects, as well as the full array of state-of-the-art applications to electronics, telecommunications, antennas, and energy harvesting. Future challenges and potential in regard to design, modeling and fabrication are also addressed. 410 0$aSpringer Series in Materials Science,$x0933-033X ;$v262 606 $aOptical materials 606 $aElectronics$xMaterials 606 $aElectronic circuits 606 $aAcoustics 606 $aEnergy harvesting 606 $aOptical and Electronic Materials$3https://scigraph.springernature.com/ontologies/product-market-codes/Z12000 606 $aCircuits and Systems$3https://scigraph.springernature.com/ontologies/product-market-codes/T24068 606 $aElectronic Circuits and Devices$3https://scigraph.springernature.com/ontologies/product-market-codes/P31010 606 $aAcoustics$3https://scigraph.springernature.com/ontologies/product-market-codes/P21069 606 $aEnergy Harvesting$3https://scigraph.springernature.com/ontologies/product-market-codes/117000 615 0$aOptical materials. 615 0$aElectronics$xMaterials. 615 0$aElectronic circuits. 615 0$aAcoustics. 615 0$aEnergy harvesting. 615 14$aOptical and Electronic Materials. 615 24$aCircuits and Systems. 615 24$aElectronic Circuits and Devices. 615 24$aAcoustics. 615 24$aEnergy Harvesting. 676 $a620.11295 676 $a620.11297 700 $aTong$b Xingcun Colin$4aut$4http://id.loc.gov/vocabulary/relators/aut$01063324 906 $aBOOK 912 $a9910298586103321 996 $aFunctional Metamaterials and Metadevices$92531790 997 $aUNINA