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Research PaperResearchia:202608.04087

Nanohertz Pendulum toward Macroscopic Entanglement under Structural Damping

Azusa Sawada

Abstract

Pendulums are attractive for macroscopic quantum control because gravity dilution reduces mechanical loss, while the $1/f$ force-noise spectrum associated with structural damping allows nearly lossless trapping to suppress the thermal noise sampled at an upward-shifted resonance. The same $1/f$ spectrum, however, produces a low-frequency tail that penalizes entanglement. With $10\%$ detection loss, we find that this tail raises the required back-action-to-thermal force-noise ratio by about $50\%...

Submitted: August 4, 2026Subjects: Quantum Physics; Quantum Computing

Description / Details

Pendulums are attractive for macroscopic quantum control because gravity dilution reduces mechanical loss, while the 1/f1/f force-noise spectrum associated with structural damping allows nearly lossless trapping to suppress the thermal noise sampled at an upward-shifted resonance. The same 1/f1/f spectrum, however, produces a low-frequency tail that penalizes entanglement. With 10%10\% detection loss, we find that this tail raises the required back-action-to-thermal force-noise ratio by about 50%50\%, corresponding to a required suspension gain Greq=1.49G_{\rm req}=1.49. To overcome this structural-noise penalty, we realize a 77-mg pendulum suspended by a stepped fused-silica fiber, with an energy-decay rate Γ/2π=361(39)Γ/2π=361(39) nHz (Qω0/Γ=7.3(8)×106Q\equivω_0/Γ=7.3(8)\times10^6) at ω0/2π=2.63ω_0/2π=2.63 Hz. The reduction in ω0Γω_0Γ yields a measured gain Gq2.5G_q\simeq2.5 relative to the previous monolithic device, exceeding the requirement.


Source: arXiv:2608.02462v1 - http://arxiv.org/abs/2608.02462v1 PDF: https://arxiv.org/pdf/2608.02462v1 Original Link: http://arxiv.org/abs/2608.02462v1

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Date:
Aug 4, 2026
Topic:
Quantum Computing
Area:
Quantum Physics
Comments:
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