2023
DOI: 10.1038/s41377-023-01247-7
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High Q-factor reconfigurable microresonators induced in side-coupled optical fibres

Victor Vassiliev,
Michael Sumetsky

Abstract: High Q-factor monolithic optical microresonators found numerous applications in classical and quantum optical signal processing, microwave photonics, ultraprecise sensing, as well as fundamental optical and physical sciences. However, due to the solid structure of these microresonators, attaining the free spectral range tunability of most of them, critical for several of these applications, was, so far, unfeasible. To address this problem, here we experimentally demonstrate that the side-coupling of coplanar b… Show more

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Cited by 12 publications
(1 citation statement)
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References 44 publications
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“…SNAP microresonator structures are fabricated at the surface of an optical fibre by nanoscale deformation [26]. Several approaches for fabrication of these resonators developed to date achieve the unprecedented subangstrom precision [26][27][28][29][30][31][32][33]. Commonly, SNAP microresonators are fabricated from the silica fibres, which parameters (refractive index distribution and dimensions) can be varied in time by applying strong modulated laser field.…”
Section: Sbmmentioning
confidence: 99%
“…SNAP microresonator structures are fabricated at the surface of an optical fibre by nanoscale deformation [26]. Several approaches for fabrication of these resonators developed to date achieve the unprecedented subangstrom precision [26][27][28][29][30][31][32][33]. Commonly, SNAP microresonators are fabricated from the silica fibres, which parameters (refractive index distribution and dimensions) can be varied in time by applying strong modulated laser field.…”
Section: Sbmmentioning
confidence: 99%