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An ultra wideband-high spatial resolution-compact electric field sensor based on Lab-on-Fiber technology.
Calero, V; Suarez, M -A; Salut, R; Baida, F; Caspar, A; Behague, F; Courjal, N; Galtier, L; Gillette, L; Duvillaret, L; Gaborit, G; Bernal, M -P.
Afiliação
  • Calero V; FEMTO-ST Institute, UMR 6174, CNRS, 15Bis Avenue des Montboucons, Besançon, 25030, France.
  • Suarez M-; FEMTO-ST Institute, UMR 6174, CNRS, 15Bis Avenue des Montboucons, Besançon, 25030, France.
  • Salut R; FEMTO-ST Institute, UMR 6174, CNRS, 15Bis Avenue des Montboucons, Besançon, 25030, France.
  • Baida F; FEMTO-ST Institute, UMR 6174, CNRS, 15Bis Avenue des Montboucons, Besançon, 25030, France.
  • Caspar A; FEMTO-ST Institute, UMR 6174, CNRS, 15Bis Avenue des Montboucons, Besançon, 25030, France.
  • Behague F; FEMTO-ST Institute, UMR 6174, CNRS, 15Bis Avenue des Montboucons, Besançon, 25030, France.
  • Courjal N; FEMTO-ST Institute, UMR 6174, CNRS, 15Bis Avenue des Montboucons, Besançon, 25030, France.
  • Galtier L; KAPTEOS SAS, 354 Voie Magellan, Sainte-Helene-du-lac, 73800, France.
  • Gillette L; KAPTEOS SAS, 354 Voie Magellan, Sainte-Helene-du-lac, 73800, France.
  • Duvillaret L; KAPTEOS SAS, 354 Voie Magellan, Sainte-Helene-du-lac, 73800, France.
  • Gaborit G; KAPTEOS SAS, 354 Voie Magellan, Sainte-Helene-du-lac, 73800, France.
  • Bernal M-; FEMTO-ST Institute, UMR 6174, CNRS, 15Bis Avenue des Montboucons, Besançon, 25030, France. maria-pilar.bernal@univ-fcomte.fr.
Sci Rep ; 9(1): 8058, 2019 May 30.
Article em En | MEDLINE | ID: mdl-31147616
ABSTRACT
Non-intrusive, wide bandwidth and spatial resolution are terms often heard in electric field sensing. Despite of the fact that conventional electromagnetic field probes (EMF) can exhibit notable functional performances, they fail in terms of perturbation of the E-field due to their loaded metallic structure. In addition, even though electro-optical technology offers an alternative, it requires large interaction lenghts which severely limit the sensing performances in terms of bandwidth and spatial resolution. Here, we focus on miniaturizing the interaction volume, photon lifetime and device footprint by taking advantage of the combination of lithium niobate (LN), Lab-on-Fiber technologies and photonic crystals (PhC). We demonstrate the operation of an all-dielectric E-field sensor whose ultra-compact footprint is inscribed in a 125 µm-diameter circle with an interaction area smaller than 19 µm × 19 µm and light propagation length of 700 nm. This submicrometer length provides outstanding bandwidth flatness, in addition to be promising for frequency detection beyond the THz. Moreover, the minituarization also provides unique features such as spatial resolution under 10 µm and minimal perturbation to the E-field, accompanied by great linearity with respect to the E-field strength. All these specifications, summarized to the high versatibility of Lab-on-Fiber technology, lead to a revolutionary and novel fibered E-field sensor which can be adapted to a broad range of applications in the fields of telecommunications, health and military.

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2019 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2019 Tipo de documento: Article