• Medientyp: E-Artikel
  • Titel: High-accuracy longitudinal position measurement using self-accelerating light
  • Beteiligte: Prabhakar, Shashi; Plachta, Stephen Z. D.; Ornigotti, Marco; Fickler, Robert
  • Erschienen: Optica Publishing Group, 2021
  • Erschienen in: Applied Optics
  • Sprache: Englisch
  • DOI: 10.1364/ao.420590
  • ISSN: 1559-128X; 2155-3165
  • Schlagwörter: Atomic and Molecular Physics, and Optics ; Engineering (miscellaneous) ; Electrical and Electronic Engineering
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  • Beschreibung: <jats:p>Radially self-accelerating light exhibits an intensity pattern that describes a spiraling trajectory around the optical axis as the beam propagates. In this article, we show in simulation and experiment how such beams can be used to perform a high-accuracy distance measurement with respect to a reference using simple off-axis intensity detection. We demonstrate that generating beams whose intensity pattern simultaneously spirals with fast and slow rotation components enables a distance measurement with high accuracy over a broad range, using the high and low rotation frequency, respectively. In our experiment, we achieve an accuracy of around 2 µm over a longitudinal range of more than 2 mm using a single beam and only two quadrant detectors. Because our method relies on single-beam interference and only requires a static generation and simple intensity measurements, it is intrinsically stable and could find applications in high-speed measurements of longitudinal position.</jats:p>