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10-dB squeeze laser tuneable over half a nanometer around 1550 nm.

Malte Hagemann, Jascha Zander, Axel Schönbeck

    Optics Express
    |March 5, 2024
    PubMed
    Summary

    We developed a tunable "squeeze laser" producing 10 dB squeezed vacuum states for quantum computing. This innovation enables wavelength-division multiplexing by combining multiple lasers, advancing optical quantum computation.

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    Area of Science:

    • Quantum optics
    • Quantum information science

    Background:

    • Optical continuous-variable quantum computers require lasers generating monochromatic light beams with sideband spectra in strongly squeezed vacuum states.
    • Previous systems faced limitations in tunability and integration for scalable quantum computing architectures.

    Purpose of the Study:

    • To develop a novel
    • squeeze laser
    • capable of producing tunable squeezed vacuum states at 1550 nm for optical quantum computing applications.

    Main Methods:

    • Utilized parametric down-conversion in a periodically poled KTP crystal within a resonant cavity.
    • Achieved double resonance and phase matching by individually optimizing and controlling the temperatures of two crystal sections.
    • Integrated a tunable 1550 nm master laser for wavelength control.

    Main Results:

    • Successfully generated 10 dB squeezed vacuum states at 1550 nm.
    • Demonstrated tunability of the output wavelength by 0.5 nm without compromising the squeeze factor.
    • Established a foundation for wavelength-division multiplexing by combining multiple identical squeeze lasers.

    Conclusions:

    • The developed squeeze laser is a key enabling technology for building scalable optical continuous-variable quantum computers.
    • The demonstrated tunability and potential for multiplexing offer a significant advancement over previous squeezed light sources.
    • Future work will focus on expanding the tunable wavelength range by improving the master laser's tunability.