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  • 1<a href="https://ror.org/04wf30j82">QuTech</a> and Kavli Institute of Nanoscience, <a href="https://ror.org/02e2c7k09">Delft University of Technology</a>, P.O. Box 5046, 2600 GA Delft, The Netherlands.

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We integrated tin-vacancy color centers in diamond waveguides to study single-photon interactions. This work demonstrates control over light extinction and photon statistics in nanophotonic quantum devices.

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Area of Science:

  • Quantum optics
  • Nanophotonics
  • Solid-state quantum emitters

Background:

  • Color centers in diamond are promising for quantum technologies.
  • Nanophotonic devices enable precise control of light-matter interactions.

Purpose of the Study:

  • To integrate tin-vacancy centers into diamond waveguides.
  • To investigate single-photon interactions in reflection and transmission.
  • To demonstrate tunable optical interference and control photon statistics.

Main Methods:

  • Fabrication of diamond waveguides with integrated tin-vacancy centers.
  • Single-photon spectroscopy in transmission and reflection configurations.
  • Analysis of photon statistics and interference phenomena.

Main Results:

  • Observed up to 25% single-emitter-induced extinction of transmitted light.
  • Measured nonlinear effects on photon statistics.
  • Demonstrated tunable interference between single photons and backscattered laser light.
  • Showcased controlled switching between bunched and antibunched photon statistics.

Conclusions:

  • Tin-vacancy centers in diamond waveguides offer a robust platform for quantum information processing.
  • Precise control over light-matter interactions at the single-photon level is achievable.
  • This system enables tunable quantum optical phenomena for advanced quantum applications.