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arxiv: 2509.17081 · v3 · pith:V3XYX5ZDnew · submitted 2025-09-21 · 🪐 quant-ph

Proposal for creating spatial superposition of a large mass in a RF trap

classification 🪐 quant-ph
keywords nanoparticleschemespatialtrapchargeddelocalisationlargemass
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Engineering coherent spatial superpositions of levitated large masses is an ongoing challenge. Borrowing from recent experimental work, we consider a charged mass of hundreds of nanometers size (``nanoparticle'') co-trapped with an ion in a Paul trap, and propose a scheme to manipulate its spatial state through the Coulomb interaction with the ion. We focus on the achievable delocalisation, only sketching the other challenges of the protocol (initial cooling, preservation of coherence for long-enough times, and detection). We prove that our scheme can displace coherently the nanoparticle by a few nanometers, and give an estimate of the allowed noise. Though smaller than the nanoparticle's size, the nanoparticle displacement is much larger than the wavefunction of the trap's ground state. Thus the co-trapping scheme is in principle able to demonstrate the delocalisation of a charged nanoparticle if the required noise isolation can be realised.

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Cited by 1 Pith paper

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

  1. Quantum theory of electrically levitated nanoparticle-ion systems: Motional dynamics and sympathetic cooling

    quant-ph 2025-11 unverdicted novelty 7.0

    Derives motional frequencies, classical trajectories, and a quantum master equation for nanoparticle-ion systems, predicting sympathetic cooling to sub-kelvin temperatures with linear scaling for multiple ions.