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On-Chip High-Finesse Fabry-Perot Microcavities for Optical Sensing and Quantum Information.

Mohammad H Bitarafan1, Ray G DeCorby2

  • 1ECE department, University of Alberta, 9107-116 St. NW, Edmonton, AB T6G 2V4, Canada. bitarafan@ualberta.ca.

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Open-access Fabry-Perot cavities offer tunable, chip-based solutions for quantum computing and sensing. Micro-fabrication enables small, stable modes for advanced applications in cavity quantum electrodynamics.

Keywords:
Fabry-Perotintegrated optics devicesmicrocavities

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Area of Science:

  • Optics and Photonics
  • Quantum Technologies
  • Micro- and Nanotechnology

Background:

  • Open-access Fabry-Perot cavities provide advantages over microcavities for sensing and quantum applications.
  • These cavities feature tunable air or vacuum gaps between high-reflectance mirrors.
  • They allow precise placement of atomic emitters or analytes in high optical field regions.

Purpose of the Study:

  • To review recent advancements in chip-based Fabry-Perot cavities.
  • To highlight the potential of these cavities in sensing and cavity quantum electrodynamics.
  • To discuss the integration of curved-mirror Fabry-Perot cavities with electronic and optomechanical elements.

Main Methods:

  • Micro-fabrication techniques for creating mirrors with small radius-of-curvature.
  • Development of MEMS-based actuation strategies for cavity tuning.
  • Integration of optical elements on chip-scale platforms.

Main Results:

  • Progress in fabricating chip-based Fabry-Perot cavities with stable, small-volume modes.
  • Demonstration of tunable cavities suitable for advanced applications.
  • Enabling high field regions for atomic emitters and analytes.

Conclusions:

  • Chip-based Fabry-Perot cavities are crucial for next-generation sensing and quantum technologies.
  • Micro-fabrication techniques are key to realizing stable, tunable, and compact cavity designs.
  • These integrated cavities hold significant promise for cavity quantum electrodynamics and metrology.