Nanohertz Pendulum toward Macroscopic Entanglement under Structural Damping
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\%...
Description / Details
Pendulums are attractive for macroscopic quantum control because gravity dilution reduces mechanical loss, while the force-noise spectrum associated with structural damping allows nearly lossless trapping to suppress the thermal noise sampled at an upward-shifted resonance. The same spectrum, however, produces a low-frequency tail that penalizes entanglement. With detection loss, we find that this tail raises the required back-action-to-thermal force-noise ratio by about , corresponding to a required suspension gain . To overcome this structural-noise penalty, we realize a -mg pendulum suspended by a stepped fused-silica fiber, with an energy-decay rate nHz () at Hz. The reduction in yields a measured gain 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
Please sign in to join the discussion.
No comments yet. Be the first to share your thoughts!
Aug 4, 2026
Quantum Computing
Quantum Physics
0