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Fault Tolerance in Programmable Metasurfaces: The Beam Steering Case

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arxiv 1902.04509 v2 pith:YXA6N7RT submitted 2019-02-12 physics.app-ph

classification physics.app-ph
keywords errormetasurfacesprogrammablebeamsteeringcontrolmetamaterialsmethodology
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Metasurfaces, the two-dimensional counterpart of metamaterials, have caught great attention thanks to their powerful control over electromagnetic waves. Recent times have seen the emergence of a variety of metasurfaces exhibiting not only countless functionalities, but also a reconfigurable or even programmable response. Reconfigurability, however, entails the integration of tuning and control circuits within the metasurface structure and, as this new paradigm moves forward, new reliability challenges may arise. This paper examines, for the first time, the reliability problem in programmable metamaterials by proposing an error model and a general methodology for error analysis. To derive the error model, the causes and potential impact of faults are identified and discussed qualitatively. The methodology is presented and instantiated for beam steering, which constitutes a relevant example for programmable metasurfaces. Results show that performance degradation depends on the type of error and its spatial distribution and that, in beam steering, error rates over 10% can still be considered acceptable.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. The Software-Defined Metasurfaces Concept and Electromagnetic Aspects

    physics.app-ph 2019-08 unverdicted novelty 2.0 of 10

    The paper outlines a software-controlled metasurface whose unit cells carry voltage-tunable resistors and capacitors, claiming this can produce tunable absorption and wavefront control.

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