Systems and Methods of Scalable Feedback Control of Single Photon Sources for Photonic Quantum Technologies

Typically, quantum systems are very sensitive to environmental fluctuations, and diagnosing errors via measurements causes unavoidable perturbations. Here, an in situ frequency -locking technique monitors and corrects frequency variations in single-photon sources based on resonators. By using the classical laser fields used for photon generation as probes to diagnose variations in the resonator frequency, the system applies feedback control to correct photon frequency errors in parallel to the optical quantum computation without disturbing the physical qubit. Our technique can be implemented on a silicon photonic device and with sub 1 pm frequency stabilization in the presence of applied environmental noise, corresponding to a fractional frequency drift of <1% of a photon linewidth. These methods can be used for feedback-controlled quantum state engineering. By distributing a single local oscillator across a one or more chips, our approach enables frequency locking of many single photon sources for large-scale photonic quantum technologies.

Researchers

Dirk Englund / Nicholas Harris / Mihir Pant / Jacques Johannes Carolan / Uttara Chakraborty

Departments: Dept of Electrical Engineering & Computer Science, Electrical Eng & Computer Sci
Technology Areas: Electronics & Photonics: Photonics, Quantum Technology / Sensing & Imaging: Chemical & Radiation Sensing
Impact Areas: Advanced Materials

  • scalable feedback control of single-photon sources for photonic quantum technologies
    United States of America | Granted | 11,237,454
  • scalable feedback control of single-photon sources for photonic quantum technologies
    Patent Cooperation Treaty | Published application

License this technology

Interested in this technology? Connect with our experienced licensing team to initiate the process.

Sign up for technology updates

Sign up now to receive the latest updates on cutting-edge technologies and innovations.