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Multi-path photon-phonon converter in optomechanical system at single-quantum level.

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    Researchers developed a controllable quantum converter for photons and phonons using optomechanics. This method achieves high-fidelity state transfer, even with weak photon coupling, enabling new quantum information applications.

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    Area of Science:

    • Quantum physics
    • Optomechanics
    • Quantum information science

    Background:

    • Photon-phonon interactions are crucial for quantum technologies.
    • Controlling quantum states at the single-quantum level is a significant challenge.
    • Existing methods often require strong coupling rates, limiting experimental feasibility.

    Purpose of the Study:

    • To propose a novel scheme for controllable photon-phonon conversion at the single-quantum level.
    • To enhance the Kerr nonlinear effect between photons and phonons using a mechanical oscillator.
    • To achieve high-fidelity quantum state transfer under experimentally relevant conditions.

    Main Methods:

    • Utilizing a composed quadratically coupled optomechanical system.
    • Leveraging photon-phonon nonlinear interaction enhanced by a mechanical oscillator.
    • Analytical and numerical analysis of state transfer protocols and fidelity.
    • Designing a multi-path converter by integrating low-frequency resonators.

    Main Results:

    • Demonstrated a scheme for high-fidelity single-photon to phonon state conversion.
    • Achieved efficient conversion even when single-photon coupling rate is much smaller than the mechanical frequency (g ≪ ωm).
    • Developed a controllable multi-path photon-phonon converter with adjustable experimental parameters.

    Conclusions:

    • The proposed scheme offers a viable platform for quantum state transfer.
    • This work advances the development of quantum information processing technologies.
    • The controllable nature of the converter opens avenues for practical quantum applications.