Spin dynamics and torque-mediated relaxation mechanisms of a nonbirefringent optomechanical microrotor in vacuum

The vacuum-levitated microrotor has emerged as a versatile strategy for nondestructive detection and precision measurement, which always relies on spin angular momentum transfer from circularly polarized light. Here, we present a deflection optical torque introduction scheme that is independent of beam polarization for a nonbirefringent microparticle. Without active feedback cooling, the stably trapped pressure level achieved is one order of magnitude lower than that attainable with the conventional levitated microrotor method, reaching down to 1.6 × 10 −4 mbar, and a maximum rotational frequency of 0.48 MHz is obtained. From rotation relaxation measurements, the input optical torque is inferred to be (1.384 ± 0.005) × 10 −17 N·m. This work establishes a clean, stable high-speed rotating platform under vacuum conditions, paving the way for ultrasensitive torque measurements and enabling potential applications in optically levitated gyroscopes.

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Publication Details

Journal
Optics Letters
Published
2026-10-08
DOI
https://doi.org/10.1364/ol.605537
Primary Topic
Orbital Angular Momentum in Optics
Type
article
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article

Spin dynamics and torque-mediated relaxation mechanisms of a nonbirefringent optomechanical microrotor in vacuum

Wenfeng Fan, Jian Wu, QI ZHENG, Wei Quan
Optics Letters
Orbital Angular Momentum in Optics
article

Spin dynamics and torque-mediated relaxation mechanisms of a nonbirefringent optomechanical microrotor in vacuum

Wenfeng Fan, Jian Wu, QI ZHENG, Wei Quan
article en

Abstract

The vacuum-levitated microrotor has emerged as a versatile strategy for nondestructive detection and precision measurement, which always relies on spin angular momentum transfer from circularly polarized light. Here, we present a deflection optical torque introduction scheme that is independent of beam polarization for a nonbirefringent microparticle. Without active feedback cooling, the stably trapped pressure level achieved is one order of magnitude lower than that attainable with the conventional levitated microrotor method, reaching down to 1.6 × 10 −4 mbar, and a maximum rotational frequency of 0.48 MHz is obtained. From rotation relaxation measurements, the input optical torque is inferred to be (1.384 ± 0.005) × 10 −17 N·m. This work establishes a clean, stable high-speed rotating platform under vacuum conditions, paving the way for ultrasensitive torque measurements and enabling potential applications in optically levitated gyroscopes.

Optics LettersVol. 51(20)
Openalex Percentile: Top 19%
Orbital Angular Momentum in Optics
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Spin dynamics and torque-mediated relaxation mechanisms of a nonbirefringent optomechanical microrotor in vacuum — Wenfeng Fan, Jian Wu, et al. · Optics Letters (2026) | TGRS Research Map | TGRS