Scalable frequency locking of single photon sources for quantum photonic technologies
ORAL
Abstract
Large-scale quantum technologies require exquisite control over many individual quantum systems. Typically, such systems are very sensitive to environmental fluctuations, and diagnosing errors via measurements causes unavoidable perturbations. Here we present an in situ frequency locking technique that monitors and corrects frequency variations in single photon sources based on microring resonators. By using the same classical laser fields required for photon generation as a probe to diagnose variations in the resonator frequency, our protocol applies feedback control to correct photon frequency errors in parallel to the optical quantum computation without disturbing the physical qubit. We implement our technique on a silicon photonic device and demonstrate feedback controlled quantum state engineering. Our approach enables frequency locking of many single photon sources for large-scale photonic quantum technologies.
*Supported by the AFOSR MURI for Optimal Measurements for Scalable Quantum Technologies (FA9550-14-1-0052) and by the AFOSR program FA9550-16-1-0391, supervised by Gernot Pomrenke. J.C. is supported by EU H2020 Marie Sklodowska-Curie grant number 751016. U.C. is supported by the National Defense Science and Engineering Graduate Fellowship.
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Presenters
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Jacques Carolan
- Research Laboratory of Electronics, Massachusetts Institute of Technology