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Quantum capacities of transducers

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  • Chiao-Hsuan Wang

    (National Taiwan University
    National Taiwan University
    National Center for Theoretical Sciences
    University of Chicago)

  • Fangxin Li

    (University of Chicago)

  • Liang Jiang

    (University of Chicago)

Abstract

High-performance quantum transducers, which faithfully convert quantum information between disparate physical carriers, are essential in quantum science and technology. Different figures of merit, including efficiency, bandwidth, and added noise, are typically used to characterize the transducers’ ability to transfer quantum information. Here we utilize quantum capacity, the highest achievable qubit communication rate through a channel, to define a single metric that unifies various criteria of a desirable transducer. Using the continuous-time quantum capacities of bosonic pure-loss channels as benchmarks, we investigate the optimal designs of generic quantum transduction schemes implemented by transmitting external signals through a coupled bosonic chain. With physical constraints on the maximal coupling rate $${g}_{\max }$$ g max , the highest continuous-time quantum capacity $${Q}^{\max }\approx 31.4{g}_{\max }$$ Q max ≈ 31.4 g max is achieved by transducers with a maximally flat conversion frequency response, analogous to Butterworth electric filters. We further investigate the effect of thermal noise on the performance of transducers.

Suggested Citation

  • Chiao-Hsuan Wang & Fangxin Li & Liang Jiang, 2022. "Quantum capacities of transducers," Nature Communications, Nature, vol. 13(1), pages 1-9, December.
  • Handle: RePEc:nat:natcom:v:13:y:2022:i:1:d:10.1038_s41467-022-34373-8
    DOI: 10.1038/s41467-022-34373-8
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    1. John G. Bartholomew & Jake Rochman & Tian Xie & Jonathan M. Kindem & Andrei Ruskuc & Ioana Craiciu & Mi Lei & Andrei Faraon, 2020. "On-chip coherent microwave-to-optical transduction mediated by ytterbium in YVO4," Nature Communications, Nature, vol. 11(1), pages 1-6, December.
    2. Jeff T. Hill & Amir H. Safavi-Naeini & Jasper Chan & Oskar Painter, 2012. "Coherent optical wavelength conversion via cavity optomechanics," Nature Communications, Nature, vol. 3(1), pages 1-7, January.
    3. Yuntao Xu & Ayed Al Sayem & Linran Fan & Chang-Ling Zou & Sihao Wang & Risheng Cheng & Wei Fu & Likai Yang & Mingrui Xu & Hong X. Tang, 2021. "Bidirectional interconversion of microwave and light with thin-film lithium niobate," Nature Communications, Nature, vol. 12(1), pages 1-7, December.
    4. Xu Han & Wei Fu & Changchun Zhong & Chang-Ling Zou & Yuntao Xu & Ayed Al Sayem & Mingrui Xu & Sihao Wang & Risheng Cheng & Liang Jiang & Hong X. Tang, 2020. "Cavity piezo-mechanics for superconducting-nanophotonic quantum interface," Nature Communications, Nature, vol. 11(1), pages 1-8, December.
    5. Francesco Morichetti & Antonio Canciamilla & Carlo Ferrari & Antonio Samarelli & Marc Sorel & Andrea Melloni, 2011. "Travelling-wave resonant four-wave mixing breaks the limits of cavity-enhanced all-optical wavelength conversion," Nature Communications, Nature, vol. 2(1), pages 1-8, September.
    6. Kristiaan De Greve & Leo Yu & Peter L. McMahon & Jason S. Pelc & Chandra M. Natarajan & Na Young Kim & Eisuke Abe & Sebastian Maier & Christian Schneider & Martin Kamp & Sven Höfling & Robert H. Hadfi, 2012. "Quantum-dot spin–photon entanglement via frequency downconversion to telecom wavelength," Nature, Nature, vol. 491(7424), pages 421-425, November.
    7. H. J. Kimble, 2008. "The quantum internet," Nature, Nature, vol. 453(7198), pages 1023-1030, June.
    8. Mohammad Mirhosseini & Alp Sipahigil & Mahmoud Kalaee & Oskar Painter, 2020. "Superconducting qubit to optical photon transduction," Nature, Nature, vol. 588(7839), pages 599-603, December.
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