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Optimized Protocols for Duplex Quantum Transduction.

Zhaoyou Wang1, Mengzhen Zhang1, Yat Wong1

  • 1Pritzker School of Molecular Engineering, University of Chicago, Chicago, Illinois 60637, USA.

Physical Review Letters
|December 15, 2023
PubMed
Summary
This summary is machine-generated.

We introduce rate regions to measure duplex quantum transduction performance. Optimized transducers for simultaneous bidirectional conversion surpass time-shared methods, even with finite bandwidth.

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Area of Science:

  • Quantum Information Science
  • Quantum Communication Networks
  • Quantum Transduction

Background:

  • Quantum transducers are crucial for quantum networks, interfacing different physical platforms.
  • Unidirectional quantum transduction performance is assessed using quantum channel capacity.
  • Characterizing duplex (bidirectional) quantum transducer performance is an open challenge.

Purpose of the Study:

  • To develop a framework for characterizing duplex quantum transducer performance.
  • To compare simultaneous duplex transduction with time-shared unidirectional transduction.
  • To extend the characterization to transducers with finite bandwidth.

Main Methods:

  • Proposal of 'rate regions' as a tool to quantify duplex quantum transduction performance.
  • Analysis of simultaneous duplex transduction strategies.
  • Integration over the frequency domain to account for finite bandwidth.

Main Results:

  • Rate regions provide a method to characterize duplex quantum transduction.
  • Simultaneous duplex transduction can achieve higher performance than time-shared protocols.
  • The rate region framework successfully characterizes transducers with finite bandwidth.

Conclusions:

  • Rate regions offer a novel approach to evaluate duplex quantum transducers.
  • Optimized simultaneous operation is a promising strategy for quantum network development.
  • The developed framework is applicable to practical quantum transducer characterization.