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February 24, 20260 citations

Astrometric Reconnaissance of Exoplanetary Systems (ARES)

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MLM. LibralatoLBL. R. BedinABA. Burgasser

Key Points

  • This project aims to validate and characterize exoplanets around nearby star systems using astrometric techniques.
  • Utilized multi-epoch Hubble Space Telescope (HST) data for point-source imaging.
  • Refined geometric-distortion calibration of the HST detector.
  • Combined HST measurements with Gaia DR3 catalog for high-precision astrometric analysis.
  • Analyzed proper-motion anomalies to evaluate the presence of candidates like Proxima c.
  • Achieved position, proper motion, and parallax measurements for Proxima Centauri with minimal uncertainties.
  • Estimated mass of the candidate exoplanet Proxima c aligns with radial-velocity measurements.
  • Established a foundation for future ARES phases to improve astrometric precision and search for low-mass companions.

Abstract

We present the first results of the Astrometric Reconnaissance of Exoplanetary Systems (ARES) project, aimed at validating and characterizing candidate exoplanets around the nearest systems using multi-epoch Hubble Space Telescope (HST) data. In this first paper, we focus on Proxima Centauri, leveraging archival and recent HST observations in point-source imaging mode. We refined the geometric-distortion calibration of the HST detector used and developed a robust methodology to derive high-precision astrometric parameters by combining HST measurements with the Gaia DR3 catalog. We determined Proxima’s position, proper motion, and parallax with uncertainties at the ~0.4-mas, 50-µas yr−1, and 0.2-mas levels, respectively. This allowed us to achieve consistent results with Gaia measurements within ~1σ. We further investigated the presence of the candidate exoplanet Proxima c by analyzing the proper-motion anomaly derived from combining long-term HST-based and short-term Gaia astrometry. Based on the assumption of a circular, face-on orbit, we obtained an estimated mass of mc = 3.4−3.4+5.2 M⊕, which is broadly consistent with radial-velocity constraints, but still limited by our current uncertainties. These results establish the foundation for the next phase of ARES, which will exploit HST spatial-scanning observations to achieve astrometric precisions of a few tens of µas, while also enabling a direct search for astrometric signatures of low-mass companions.

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Cite This Study

Libralato et al. (2026) studied this question.

synapsesocial.com/papers/699d4008de8e28729cf64fd2https://doi.org/10.1051/0004-6361/202557737/pdf
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