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Laser-Inscribed Diamond Waveguide Resonantly Coupled to Diamond Microsphere.

Nurperi Yavuz1, Mustafa Mert Bayer1,2, Hüseyin Ozan Ҫirkinoğlu1

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Summary

Researchers created an all-diamond photonic circuit using a diamond microsphere and laser-written waveguide. This integrated diamond photonics platform enables high-quality factor resonances for advanced optical applications.

Keywords:
diamondfemtosecond laserfiber opticsinfraredlaser material processingmicrocavitiesoptical resonatorswaveguides

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Area of Science:

  • Photonics
  • Materials Science
  • Optics

Background:

  • Integrated photonics offers miniaturization and enhanced functionality.
  • Diamond's unique optical properties make it a promising material for photonic devices.

Purpose of the Study:

  • To implement an all-diamond photonic circuit by integrating a diamond microsphere with a femtosecond-laser-written waveguide.
  • To explore the potential of this integrated system for advanced optical applications.

Main Methods:

  • Fabrication of a near-surface diamond waveguide using the Type II method for stress-induced waveguiding.
  • Integration of the diamond waveguide with a diamond microsphere.
  • Injection of near-infrared light and characterization of whispering-gallery modes.

Main Results:

  • Demonstration of whispering-gallery modes in the coupled diamond microsphere-waveguide system.
  • Observed mode spacing of 0.33 nm and high-quality factors (Q) of 10^5.
  • Successful waveguiding of transverse electric and transverse magnetic polarized light.

Conclusions:

  • The implemented all-diamond photonic circuit demonstrates high-quality factor resonances.
  • This platform is suitable for realizing filtering, sensing, and nonlinear optical applications.
  • Exploiting nitrogen-vacancy centers in diamond can further enhance device capabilities.