Spacetime Metamaterials-Part I: General Concepts

This article deals with the general concepts underpinning spacetime metamaterials and related systems. It first introduces spacetime metamaterials as a generalization of (bianisotropic) metamaterials, presented in the holistic perspective of direct and inverse spacetime scattering, where spacetime v...

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Vydáno v:IEEE transactions on antennas and propagation Ročník 68; číslo 3; s. 1569 - 1582
Hlavní autoři: Caloz, Christophe, Deck-Leger, Zoe-Lise
Médium: Journal Article
Jazyk:angličtina
Vydáno: New York IEEE 01.03.2020
The Institute of Electrical and Electronics Engineers, Inc. (IEEE)
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ISSN:0018-926X, 1558-2221
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Abstract This article deals with the general concepts underpinning spacetime metamaterials and related systems. It first introduces spacetime metamaterials as a generalization of (bianisotropic) metamaterials, presented in the holistic perspective of direct and inverse spacetime scattering, where spacetime variance and dispersion offer unprecedented medium diversity despite some limitations related to the uncertainty principle. Then, it describes the fundamental physical phenomena occurring in spacetime systems, such as frequency transitions, nonreciprocity, Fizeau dragging, bianisotropy transformation, and superluminality, allowed when the medium moves perpendicularly to the direction of the wave. Next, it extends some principles and tools of relativity physics, particularly a medium-extended version of the spacetime (or Minkowski) diagrams, elaborates a general strategy to compute the fields scattered by spacetime media, and presents a gallery of possible spacetime media, including the spacetime step discontinuity, which constitutes the building brick of any spacetime metamaterial. Finally, the conclusion section provides a list of 16 items that concisely summarizes the key results and teachings of the overall document. The second part establishes the theory and overviews some current and potential applications of spacetime metamaterials.
AbstractList This article deals with the general concepts underpinning spacetime metamaterials and related systems. It first introduces spacetime metamaterials as a generalization of (bianisotropic) metamaterials, presented in the holistic perspective of direct and inverse spacetime scattering, where spacetime variance and dispersion offer unprecedented medium diversity despite some limitations related to the uncertainty principle. Then, it describes the fundamental physical phenomena occurring in spacetime systems, such as frequency transitions, nonreciprocity, Fizeau dragging, bianisotropy transformation, and superluminality, allowed when the medium moves perpendicularly to the direction of the wave. Next, it extends some principles and tools of relativity physics, particularly a medium-extended version of the spacetime (or Minkowski) diagrams, elaborates a general strategy to compute the fields scattered by spacetime media, and presents a gallery of possible spacetime media, including the spacetime step discontinuity, which constitutes the building brick of any spacetime metamaterial. Finally, the conclusion section provides a list of 16 items that concisely summarizes the key results and teachings of the overall document. The second part establishes the theory and overviews some current and potential applications of spacetime metamaterials.
Author Deck-Leger, Zoe-Lise
Caloz, Christophe
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  fullname: Deck-Leger, Zoe-Lise
  organization: Polytechnique Montréal, Montreal, QC, Canada
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Cites_doi 10.1038/nmat2088
10.1007/s00407-004-0085-6
10.1063/1.3615688
10.1201/9781439817070
10.1002/andp.18882711003
10.1016/j.jmaa.2005.03.093
10.1109/TAP.1962.1137809
10.1002/0471754323
10.1063/1.1700020
10.1007/BF01397280
10.1126/science.1133628
10.1051/jphysrad:01950001107030700
10.1109/TAP.1971.1139931
10.1109/MAP.2012.6230714
10.1109/TAP.1970.1139657
10.1109/LAWP.2018.2877448
10.1515/nanoph-2017-0119
10.1103/PhysRevLett.85.3966
10.1038/nphoton.2007.38
10.1002/j.1538-7305.1948.tb01331.x
10.1126/science.aat3100
10.1103/PhysRevA.97.063829
10.1038/444286a
10.1109/TAP.2018.2793958
10.1007/BF03013466
10.1109/JRPROC.1939.229013
10.1016/j.physrep.2016.04.004
10.1109/PROC.1972.8851
10.1007/978-3-7091-6677-2
10.1126/science.1126493
10.1002/andp.19163540702
10.1103/PhysRevB.59.1551
10.1098/rspa.2016.0819
10.1103/PhysRevB.97.104305
10.1109/TAP.1966.1138637
10.1103/RevModPhys.86.1391
10.1109/TMTT.1958.1124533
10.1109/5.30749
10.1109/PROC.1968.6270
10.1109/LAWP.2018.2851592
10.1098/rspl.1898.0019
10.1002/0471784192
10.1117/12.432921
10.1103/PhysRevE.75.046607
10.1126/science.1058847
10.1103/PhysRevApplied.10.047001
10.1070/PU1972v015n02ABEH004962
10.1002/andp.19203682303
10.1002/andp.19053221004
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References ref13
ref56
ref12
ref59
ref15
ref58
shelby (ref11) 2001; 292
ref14
ref53
rothwell (ref38) 2008
ref55
sagnac (ref51) 1913; 157
ref10
saleh (ref30) 2007
cai (ref24) 2009
werner (ref26) 2015
ref17
ref16
ref19
ref18
lindell (ref33) 1994
lathi (ref41) 2017
minkowski (ref61) 1909; 18
bose (ref6) 1898; 63
gill (ref45) 1965
jackson (ref37) 1998
kong (ref35) 2008
ref46
ref48
shaltout (ref57) 2019; 364
bradley (ref47) 1729; 35
ref42
ref44
ref43
chen (ref28) 1990
deck-léger (ref40) 0
ref8
ref7
ref9
ref4
ref3
ref5
capolino (ref23) 2009; 2
bois (ref54) 1843
ref36
ref31
ref32
ref2
ref39
marqués (ref25) 2013
lorentz (ref63) 1904; 6
pauli (ref66) 1958
ref71
caloz (ref34) 0
newton (ref65) 2012
ref70
ref73
ref72
engheta (ref22) 2006
ref68
ref67
ref69
ref64
ref20
winn (ref49) 2008; 59
ref21
caloz (ref1) 2019; 67
ref27
ref29
fizeau (ref50) 1851; 33
sagnac (ref52) 1913; 157
ref60
ref62
References_xml – year: 0
  ident: ref40
  article-title: Uniform-velocity spacetime crystals
  publication-title: Advances In Physics
– ident: ref5
  doi: 10.1038/nmat2088
– ident: ref48
  doi: 10.1007/s00407-004-0085-6
– ident: ref15
  doi: 10.1063/1.3615688
– ident: ref39
  doi: 10.1201/9781439817070
– ident: ref53
  doi: 10.1002/andp.18882711003
– ident: ref70
  doi: 10.1016/j.jmaa.2005.03.093
– volume: 157
  start-page: 1410
  year: 1913
  ident: ref52
  article-title: Sur la preuve de la réalité de l'éther lumineux par l'expérience de l'interférographe tournant
  publication-title: CR Acad Sci
– ident: ref10
  doi: 10.1109/TAP.1962.1137809
– year: 2007
  ident: ref30
  publication-title: Fundamentals of Photonics
– volume: 2
  year: 2009
  ident: ref23
  publication-title: Metamaterials Handbook
– ident: ref21
  doi: 10.1002/0471754323
– ident: ref9
  doi: 10.1063/1.1700020
– ident: ref42
  doi: 10.1007/BF01397280
– year: 1990
  ident: ref28
  publication-title: The Micro-Doppler Effect in Radar
– volume: 33
  start-page: 349
  year: 1851
  ident: ref50
  article-title: Sur les hypothèses relatives à l'éther lumineux, et sur une expérience qui parait démontrer que le mouvement des corps change la vitesse avec laquelle la lumière se propage dans leur intérieur
  publication-title: CR Acad Sci
– ident: ref13
  doi: 10.1126/science.1133628
– ident: ref68
  doi: 10.1051/jphysrad:01950001107030700
– year: 1958
  ident: ref66
  publication-title: The Theory of Relativity
– ident: ref72
  doi: 10.1109/TAP.1971.1139931
– ident: ref18
  doi: 10.1109/MAP.2012.6230714
– ident: ref60
  doi: 10.1109/TAP.1970.1139657
– ident: ref17
  doi: 10.1109/LAWP.2018.2877448
– ident: ref20
  doi: 10.1515/nanoph-2017-0119
– ident: ref12
  doi: 10.1103/PhysRevLett.85.3966
– ident: ref3
  doi: 10.1038/nphoton.2007.38
– ident: ref8
  doi: 10.1002/j.1538-7305.1948.tb01331.x
– volume: 364
  start-page: eaat3100
  year: 2019
  ident: ref57
  article-title: Spatiotemporal light control with active metasurfaces
  publication-title: Science
  doi: 10.1126/science.aat3100
– ident: ref44
  doi: 10.1103/PhysRevA.97.063829
– ident: ref4
  doi: 10.1038/444286a
– ident: ref32
  doi: 10.1109/TAP.2018.2793958
– ident: ref64
  doi: 10.1007/BF03013466
– year: 2013
  ident: ref25
  publication-title: Metamaterials with Negative Parameters Theory Design and Microwave Applications
– ident: ref31
  doi: 10.1109/JRPROC.1939.229013
– ident: ref19
  doi: 10.1016/j.physrep.2016.04.004
– ident: ref36
  doi: 10.1109/PROC.1972.8851
– ident: ref27
  doi: 10.1007/978-3-7091-6677-2
– ident: ref14
  doi: 10.1126/science.1126493
– ident: ref62
  doi: 10.1002/andp.19163540702
– volume: 6
  start-page: 809
  year: 1904
  ident: ref63
  article-title: Electromagnetic phenomena in a system moving with any velocity smaller than that of light
  publication-title: Proc Roy Netherlands Acad Arts Sci
– volume: 59
  start-page: 1551
  year: 2008
  ident: ref49
  article-title: Interband transitions in photonic crystals
  publication-title: Phys Rev B Condens Matter
  doi: 10.1103/PhysRevB.59.1551
– year: 2015
  ident: ref26
  publication-title: Transformation Electromagnetics and Metamaterials
– ident: ref71
  doi: 10.1098/rspa.2016.0819
– volume: 18
  start-page: 75
  year: 1909
  ident: ref61
  article-title: Raum und Zeit
  publication-title: Jahresbericht der Deutschen Mathematiker-Vereinigung
– ident: ref67
  doi: 10.1103/PhysRevB.97.104305
– year: 2008
  ident: ref38
  publication-title: Electromagnetics
– ident: ref56
  doi: 10.1109/TAP.1966.1138637
– ident: ref29
  doi: 10.1103/RevModPhys.86.1391
– ident: ref58
  doi: 10.1109/TMTT.1958.1124533
– ident: ref43
  doi: 10.1109/5.30749
– year: 0
  ident: ref34
  article-title: Electromagnetic chirality
  publication-title: IEEE Antennas Propag Mag
– year: 2009
  ident: ref24
  publication-title: Optical Metamaterials Fundamentals and Applications
– year: 1994
  ident: ref33
  publication-title: Electromagnetic Waves in Chiral and Bi-Isotropic Media
– year: 2017
  ident: ref41
  publication-title: Linear Systems and Signals
– volume: 67
  year: 2019
  ident: ref1
  article-title: Spacetime metamaterials, Part II: Theory and applications
  publication-title: IEEE Trans Antennas Propag
– year: 2012
  ident: ref65
  publication-title: Philosophiae Naturalis Principia Mathematica
– year: 1965
  ident: ref45
  publication-title: The Doppler Effect The Theory and Applications
– volume: 35
  start-page: 637
  year: 1729
  ident: ref47
  article-title: IV. A letter from the Reverend Mr. James Bradley Savilian Professor of Astronomy at Oxford, and F. R. S. to Dr. Edmond Halley Astronom. Reg. &c. giving an account of a new discovered motion of the fix'd stars
  publication-title: Philos Trans Roy Soc
– ident: ref59
  doi: 10.1109/PROC.1968.6270
– ident: ref16
  doi: 10.1109/LAWP.2018.2851592
– volume: 63
  start-page: 146
  year: 1898
  ident: ref6
  article-title: On the rotation of plane of polarisation of electric wave by a twisted structure
  publication-title: Proc Roy Soc London
  doi: 10.1098/rspl.1898.0019
– year: 2006
  ident: ref22
  publication-title: Metamaterials Physics and Engineering Explorations
  doi: 10.1002/0471784192
– ident: ref2
  doi: 10.1117/12.432921
– volume: 157
  start-page: 708
  year: 1913
  ident: ref51
  article-title: L'éther lumineux démontré par l'effet du vent relatif d'éther dans un interférométrie en rotation uniforme
  publication-title: CR Acad Sci
– year: 2008
  ident: ref35
  publication-title: Electromagnetic Wave Theory
– year: 1998
  ident: ref37
  publication-title: Classical Electrodynamics
– ident: ref69
  doi: 10.1103/PhysRevE.75.046607
– volume: 292
  start-page: 77
  year: 2001
  ident: ref11
  article-title: Experimental verification of a negative index of refraction
  publication-title: Science
  doi: 10.1126/science.1058847
– ident: ref73
  doi: 10.1103/PhysRevApplied.10.047001
– ident: ref55
  doi: 10.1070/PU1972v015n02ABEH004962
– ident: ref7
  doi: 10.1002/andp.19203682303
– year: 1843
  ident: ref54
  publication-title: Recherches Historiques et Physiologiques sur la Guillotine et Détails sur Sanson Ouvrage Rédigé sur Pièces Officielles
– ident: ref46
  doi: 10.1002/andp.19053221004
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Snippet This article deals with the general concepts underpinning spacetime metamaterials and related systems. It first introduces spacetime metamaterials as a...
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SubjectTerms Antennas
Bianisotropy
Diffraction
electromagnetic boundary conditions
inverse prism and chromatic birefringence
Lorentz transformations
Media
Metamaterials
moving media and modulated media
nonreciprocity
photonic transitions
Physics
Relativity
scattering parameters
Spacetime
spacetime crystals
spacetime metamaterials
spacetime mirror and cavity
spacetime reversal
superluminality
theory of relativity
Time-frequency analysis
Title Spacetime Metamaterials-Part I: General Concepts
URI https://ieeexplore.ieee.org/document/8858030
https://www.proquest.com/docview/2374767391
Volume 68
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