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Trapped Ion Quantum Computing

Quantum gravimetry with mechanical qubits

arXiv
Authors: Xiao-Wen Huo, Jun-Hong An, Peng-Bo Li

Year

2026

Paper ID

48700

Status

Preprint

Abstract Read

~2 min

Abstract Words

188

Citations

0

Abstract

Levitated mesoscopic particles hold the promise of revolutionizing gravity sensing by using quantum effects. However, conventional quantum gravimeters based on such systems fail to harness the intrinsic large-mass advantage of the particles, because their commonly utilized auxiliary quantum systems counteract the role of mass as a resource. To overcome this limitation, we propose a quantum gravimetry by directly using the mechanical qubit (QM) formed by a levitated particle as the gravity sensor. Without resorting to the auxiliary quantum system, our scheme enables a straightforward readout of the particle's motion under gravitational influence. The obtained sensitivity behaves as a m-1/2-scaling with the mass m. We also generalize our scheme to the mechanical cat qubit as the gravity sensor. The sensitivity further scales as N-1/2 with the mean phonon number N. In the experimentally realizable parameter regime, a sensitivity on the order of 0.1 textmuGal/sqrt{Hz} can be achieved, which outperforms the traditional schemes by two orders of magnitude. Reaching the double standard quantum limits with m and N simultaneously, our scheme provides a feasible route toward compact high-sensitivity quantum gravimetry.

Why This Paper Matters

  • This paper contributes to the Trapped-Ion Quantum Computing research area in the Quantum Articles archive.
  • It adds a 2026 reference point for readers tracking recent quantum research.
  • Levitated mesoscopic particles hold the promise of revolutionizing gravity sensing by using quantum effects.

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