A single-atom level mechano-optical transducer for ultrasensitive force sensing

Fuente: arXiv
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Main Authors: Liu, Yang, Lu, Pengfei, Rao, Xinxin, Wu, Hao, Wang, Kunxu, Lao, Qifeng, Bian, Ji, Zhu, Feng, Luo, Le
Format: Preprint
Published: 2022
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author Liu, Yang
Lu, Pengfei
Rao, Xinxin
Wu, Hao
Wang, Kunxu
Lao, Qifeng
Bian, Ji
Zhu, Feng
Luo, Le
author_facet Liu, Yang
Lu, Pengfei
Rao, Xinxin
Wu, Hao
Wang, Kunxu
Lao, Qifeng
Bian, Ji
Zhu, Feng
Luo, Le
contents Using light as a probe to detect a mechanical motion is one of the most successful experimental approaches in physics. The history of mechanical sensing based on the reflection, refraction and scattering of light dates back to the 16th century, where in the Cavendish experiment, the angle of rotation induced by the gravitational force is measured by the deflection of a light beam reflected from a mirror attached to the suspension. In modern science, mechano-optical transducers are such devices that could detect, measure and convert a force or displacement signal to an optical one, and are widely used for force detection. Especially, ultraweak force sensor with ultrahigh spatial resolution is highly demanded for detecting force anomaly in surface science, biomolecule imaging, and atomtronics. Here we show a novel scheme using a single trapped ion as a mechano-optical transduction. This method utilizes the force-induced micromotion, converting the micromotion to a time-resolved fluorescence signal, in which the ion's excess micromotion coupled to the Doppler shift of the scattered photons. We demonstrate the measurement sensitivity about 600 $\textrm{zN}/\sqrt{\textrm{Hz}}$ (1 $\textrm{zN} =10^{-21}$N). By alternating the detection laser beam in all three dimensions, the amplitude and the direction of a vector force can be precisely determined, constituting a 3D force sensor. This mechano-optical transducer provides high sensitivity with spatial resolution in single-atom level, enabling the applications in material industry and the search for possible exotic spin-dependent interactions that beyond the standard model.
format Preprint
id arxiv_https___arxiv_org_abs_2203_00919
institution arXiv
publishDate 2022
record_format arxiv
spellingShingle A single-atom level mechano-optical transducer for ultrasensitive force sensing
Liu, Yang
Lu, Pengfei
Rao, Xinxin
Wu, Hao
Wang, Kunxu
Lao, Qifeng
Bian, Ji
Zhu, Feng
Luo, Le
Atomic Physics
Using light as a probe to detect a mechanical motion is one of the most successful experimental approaches in physics. The history of mechanical sensing based on the reflection, refraction and scattering of light dates back to the 16th century, where in the Cavendish experiment, the angle of rotation induced by the gravitational force is measured by the deflection of a light beam reflected from a mirror attached to the suspension. In modern science, mechano-optical transducers are such devices that could detect, measure and convert a force or displacement signal to an optical one, and are widely used for force detection. Especially, ultraweak force sensor with ultrahigh spatial resolution is highly demanded for detecting force anomaly in surface science, biomolecule imaging, and atomtronics. Here we show a novel scheme using a single trapped ion as a mechano-optical transduction. This method utilizes the force-induced micromotion, converting the micromotion to a time-resolved fluorescence signal, in which the ion's excess micromotion coupled to the Doppler shift of the scattered photons. We demonstrate the measurement sensitivity about 600 $\textrm{zN}/\sqrt{\textrm{Hz}}$ (1 $\textrm{zN} =10^{-21}$N). By alternating the detection laser beam in all three dimensions, the amplitude and the direction of a vector force can be precisely determined, constituting a 3D force sensor. This mechano-optical transducer provides high sensitivity with spatial resolution in single-atom level, enabling the applications in material industry and the search for possible exotic spin-dependent interactions that beyond the standard model.
title A single-atom level mechano-optical transducer for ultrasensitive force sensing
topic Atomic Physics
url https://arxiv.org/abs/2203.00919