High-Dimensional Frequency-Encoded Quantum Information Processing with Passive Photonics and Time-Resolving Detection
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PhysRevLett.124.190502.pdf
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Univ Arizona, James C Wyant Coll Opt SciIssue Date
2020-05-14
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AMER PHYSICAL SOCCitation
Cui, C., Seshadreesan, K. P., Guha, S., & Fan, L. (2020). High-Dimensional Frequency-Encoded Quantum Information Processing with Passive Photonics and Time-Resolving Detection. Physical Review Letters, 124(19), 190502.Journal
PHYSICAL REVIEW LETTERSRights
© 2020 American Physical Society.Collection Information
This item from the UA Faculty Publications collection is made available by the University of Arizona with support from the University of Arizona Libraries. If you have questions, please contact us at repository@u.library.arizona.edu.Abstract
In this Letter, we propose a new approach to process high-dimensional quantum information encoded in a photon frequency domain. In contrast to previous approaches based on nonlinear optical processes, no active control of photon energy is required. Arbitrary unitary transformation and projection measurement can be realized with passive photonic circuits and time-resolving detection. A systematic circuit design for a quantum frequency comb with arbitrary size has been given. The criteria to verify quantum frequency correlation has been derived. By considering the practical condition of the detector's finite response time, we show that high-fidelity operation can be readily realized with current device performance. This work will pave the way towards scalable and high-fidelity quantum information processing based on high-dimensional frequency encoding.ISSN
0031-9007EISSN
1079-7114PubMed ID
32469554Version
Final published versionae974a485f413a2113503eed53cd6c53
10.1103/PhysRevLett.124.190502
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