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Quantum Delocalization of a Levitated Nanoparticle

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arxiv 2408.01264 v1 pith:PPQOMOHH submitted 2024-08-02 quant-ph physics.optics

classification quant-phphysics.optics
keywords motioncoherencecomparablelengthquantumconfinementdelocalizationexperiments
verification ladder T0 review T1 audit T2 compute T3 formal
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Every massive particle behaves like a wave, according to quantum physics. Yet, this characteristic wave nature has only been observed in double-slit experiments with microscopic systems, such as atoms and molecules. The key aspect is that the wavefunction describing the motion of these systems extends coherently over a distance comparable to the slit separation, much larger than the size of the system itself. Preparing these states of more massive and complex objects remains an outstanding challenge. While the motion of solid-state oscillators can now be controlled at the level of single quanta, their coherence length remains comparable to the zero-point motion, limited to subatomic distances. Here, we prepare a delocalized state of a levitating solid-state nanosphere with coherence length exceeding the zero-point motion. We first cool its motion to the ground state. Then, by modulating the stiffness of the confinement potential, we achieve more than a threefold increment of the initial coherence length with minimal added noise. Optical levitation gives us the necessary control over the confinement that other mechanical platforms lack. Our work is a stepping stone towards the generation of delocalization scales comparable to the object size, a crucial regime for macroscopic quantum experiments, and towards quantum-enhanced force sensing with levitated particles.

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Cited by 4 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Trap-to-trap free falls with an optically levitated nanoparticle

    quant-ph 2025-07 conditional novelty 7.0 of 10

    An optically levitated silica nanoparticle was released, fell freely for up to 0.25 ms under gravity, was recaptured by a second optical tweezer, and showed an approximately 190-fold growth in position uncertainty.

  2. Dark Optical Trapping of Resonant Transition-Metal Dichalcogenide Particles

    physics.optics 2026-07 conditional novelty 6.0 of 10

    Mie-theory calculations show magnetic-quadrupole dark trapping of WS2 particles (mass ~5e11 amu) yields Γ/Ω ≃ 0.02 and low internal heating, extending coherence ~1000× versus equal-mass silica in bright traps.

  3. Searching for Ultralight Dark Matter with MOLeQuTE: a Massive Optically Levitated Quantum Tabletop Experiment

    hep-ph 2025-11 conditional novelty 6.0 of 10

    A proposed optically levitated milligram-scale plate sensor could reach the standard quantum limit and probe new parameter space for ultralight B-L vector dark matter.

  4. Roto-translational optomechanics

    quant-ph 2025-07 accept novelty 3.0 of 10

    A comprehensive review of the coupled rotational and translational motion of levitated nanoparticles, with a classical-to-quantum theoretical framework and a survey of experiments and applications.

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