Quantum sensing of acceleration and rotation by interfering magnetically-launched atoms

Fuente: arXiv
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Main Authors: Salducci, Clément, Bidel, Yannick, Cadoret, Malo, Darmon, Sarah, Zahzam, Nassim, Bonnin, Alexis, Schwartz, Sylvain, Blanchard, Cédric, Bresson, Alexandre
Format: Preprint
Published: 2024
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author Salducci, Clément
Bidel, Yannick
Cadoret, Malo
Darmon, Sarah
Zahzam, Nassim
Bonnin, Alexis
Schwartz, Sylvain
Blanchard, Cédric
Bresson, Alexandre
author_facet Salducci, Clément
Bidel, Yannick
Cadoret, Malo
Darmon, Sarah
Zahzam, Nassim
Bonnin, Alexis
Schwartz, Sylvain
Blanchard, Cédric
Bresson, Alexandre
contents Accurate measurement of inertial quantities is essential in geophysics, geodesy, fundamental physics and navigation. For instance, inertial navigation systems require stable inertial sensors to compute the position and attitude of the carrier. Here, we present an architecture for a compact cold-atom accelerometer-gyroscope based on a magnetically launched atom interferometer. Characterizing the launching technique, we demonstrate 700 ppm gyroscope scale factor stability over one day, while acceleration and rotation rate bias stabilities of $7 \times 10^{-7}$ m/s$^2$ and $4 \times 10^{-7}$ rad/s are reached after two days of integration of the cold-atom sensor. Hybridizing it with a classical accelerometer and gyroscope, we correct their drift and bias to achieve respective 100-fold and 3-fold increase on the stability of the hybridized sensor compared to the classical ones. Compared to state-of-the-art atomic gyroscope, the simplicity and scalability of our launching technique make this architecture easily extendable to a compact full six-axis inertial measurement unit, providing a pathway towards autonomous positioning and orientation using cold-atom sensors.
format Preprint
id arxiv_https___arxiv_org_abs_2405_13689
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Quantum sensing of acceleration and rotation by interfering magnetically-launched atoms
Salducci, Clément
Bidel, Yannick
Cadoret, Malo
Darmon, Sarah
Zahzam, Nassim
Bonnin, Alexis
Schwartz, Sylvain
Blanchard, Cédric
Bresson, Alexandre
Quantum Physics
Accelerator Physics
Atomic Physics
Accurate measurement of inertial quantities is essential in geophysics, geodesy, fundamental physics and navigation. For instance, inertial navigation systems require stable inertial sensors to compute the position and attitude of the carrier. Here, we present an architecture for a compact cold-atom accelerometer-gyroscope based on a magnetically launched atom interferometer. Characterizing the launching technique, we demonstrate 700 ppm gyroscope scale factor stability over one day, while acceleration and rotation rate bias stabilities of $7 \times 10^{-7}$ m/s$^2$ and $4 \times 10^{-7}$ rad/s are reached after two days of integration of the cold-atom sensor. Hybridizing it with a classical accelerometer and gyroscope, we correct their drift and bias to achieve respective 100-fold and 3-fold increase on the stability of the hybridized sensor compared to the classical ones. Compared to state-of-the-art atomic gyroscope, the simplicity and scalability of our launching technique make this architecture easily extendable to a compact full six-axis inertial measurement unit, providing a pathway towards autonomous positioning and orientation using cold-atom sensors.
title Quantum sensing of acceleration and rotation by interfering magnetically-launched atoms
topic Quantum Physics
Accelerator Physics
Atomic Physics
url https://arxiv.org/abs/2405.13689