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March 6, 2026Sensors0 citationsOpen Access

Active Suppression of Differential Light Shift Drift in an Atom Gravimeter

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WXWeihao XuXCXi ChenJLJ. F. Li

Key Points

  • This research aims to address the issue of differential light shift drift in atom gravimeters to enhance measurement accuracy.
  • Conducted long-term gravity measurements to assess drifts caused by differential light shift.
  • Developed a model to quantify DLS-induced gravity errors.
  • Proposed a DLS compensation method to reduce gravity drift.
  • Introduced a Dual-Sideband Ratio Locking scheme to stabilize sideband ratios.
  • Identified gravity drift of approximately 13.13 μGal correlated to Raman laser's sidebands.
  • Achieved a reduction in gravity drift to 2.54 μGal using the DLS compensation method.
  • Demonstrated sidebands stability level of 10−5 leading to a gravity error of less than 0.1 μGal.
  • Reported long-term gravity measurement stability of 1.6 μGal after implementing the locking method.

Abstract

Differential light shift (DLS) is an important error term that limits the atom interferometer’s measurement precision, especially for the case of the electro-optic modulator (EOM)-based scheme, where multiple laser sidebands exist, and their ratios are hard to control synchronously. This article carried out an experimental and theoretical study on this subject. By conducting long-term gravity measurement, we find that the gravity exhibits drifts of about 13.13 μGal, and is strongly correlated to the Raman laser’s sidebands. A model of the DLS-induced gravity error is established and a DLS compensation method is proposed to suppress the gravity drift to 2.54 μGal. Besides the compensation method, we propose a Dual-Sideband Ratio Locking scheme to more robustly eliminate the gravity measurement drift. By feeding back to both the EOM microwave power and the tapered amplifier’s temperature, this method locks both the ±1 order sideband to a stability level of 10−5, which corresponds to a gravity error of less than 0.1 μGal. Long-term gravity measurement is carried out after the locking method, showing a long-term stability of 1.6 μGal. The proposed methods will benefit the suppression of the DLS effect for high-precision atom interference measurement.

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Cite This Study

Xu et al. (2026) studied this question.

synapsesocial.com/papers/69aa70f8531e4c4a9ff5b473https://doi.org/10.3390/s26051620
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