English

GRAVITY+: reducing non-common-path aberrations for sub-10 μas astrometric accuracy

Instrumentation and Methods for Astrophysics 2026-08-06 v1

Abstract

GRAVITY is a state-of-the-art instrument for near-infrared astrometric interferometry that routinely achieves astrometric accuracy of 30-100 microarcsecond in its phase-referenced dual-field mode. However, its fundamental limit is not yet reached, and can still be improved by several factors. In this paper, we focus on the effect of systematics, and in particular the effect of non-common path aberrations between the science channel and the metrology signal in the GRAVITY Fiber Coupler. Through comprehensive laboratory measurements using a dedicated fiber coupler replica and phase-shifting interferometry at 1908 nm, we have characterized these high-order wavefront errors with nanometer precision in the laboratory. We characterized on-sky the effect of these high-order wavefront imperfections on narrow-angle astrometry, using observations of the binary system GJ65. As part of the GRAVITY+ project, high-precision mirrors designed for nanometer-level surface quality, bringing an order of magnitude improvement over existing GRAVITY injection optics, are currently in production and will be installed in the fiber coupler units by the end of 2027. This upgrade is expected to enable astrometric accuracy at the sub-10 microarcsecond level in dual-field mode with integration times of just a few minutes.

Cite

@article{arxiv.2608.05751,
  title  = {GRAVITY+: reducing non-common-path aberrations for sub-10 μas astrometric accuracy},
  author = {Quentin Fournier and Guillaume Bourdarot and Frank Eisenhauer and Helmut Feuchtgruber and Dieter Lutz and Etienne Rosin and Stefan Gillessen and Reinhard Genzel and Taro Shimizu and Oliver Pfuhl and Felix Mang and Michael Hartl and Thomas Ott and Ekkehard Wieprecht and Vishaal Gopinath and Françoise Delplancke-Stroebele and Luis Esteras Otal and Felix Widmann and Sebastiano von Fellenberg and Pierre Bourget and Guy Perrin and Julien Woillez and Paulo Garcia and Sebastian Hönig and Laura Kreidberg and Jean-Baptiste Le Bouquin and Thibaut Paumard and Christian Straubmeier and for the GRAVITY+ Collaboration},
  journal= {arXiv preprint arXiv:2608.05751},
  year   = {2026}
}