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 |
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| Médium: | Journal Article |
| Jazyk: | angličtina |
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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. |
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| 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 |
| Author_xml | – sequence: 1 givenname: Christophe orcidid: 0000-0003-0502-8435 surname: Caloz fullname: Caloz, Christophe email: christophe.caloz@polymtl.ca organization: Polytechnique Montréal, Montreal, QC, Canada – sequence: 2 givenname: Zoe-Lise orcidid: 0000-0002-9694-8247 surname: Deck-Leger fullname: Deck-Leger, Zoe-Lise organization: Polytechnique Montréal, Montreal, QC, Canada |
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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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