English

A seeing measurement device for the PoET solar telescope

Instrumentation and Methods for Astrophysics 2026-04-14 v1 Earth and Planetary Astrophysics

Abstract

Atmospheric seeing arises from stochastic fluctuations in the refractive index of the Earth's atmosphere, producing random variations in the apparent direction of incoming light from astronomical sources. Scintillation refers to the associated intensity fluctuations induced by these refractive index inhomogeneities. A quantitative relationship between seeing and scintillation was established in 1993, enabling daytime seeing measurements by exploiting the Sun as an extended, bright source and using non-telescopic instrumentation. PoET, the Paranal solar ESPRESSO Telescope, will feed the Echelle SPectrograph for Rocky Exoplanets and Stable Spectroscopic Observations, ESPRESSO, at the European Southern Observatory (ESO) Very Large Telescope (VLT). By using the Sun as a proxy for solar-type stars, PoET will facilitate detailed investigations of the physical processes that drive stellar noise in ultra-high-precision radial-velocity measurements for exoplanet studies. The instrument is capable of targeting any region on the solar disk and acquiring spatially resolved spectra over areas ranging from 1 to 55 arcseconds. Accurate characterization of daytime atmospheric seeing is therefore essential for selecting the optimal observing aperture and ensuring the scientific performance of PoET. To support this requirement, we have developed and implemented a dedicated solar seeing monitor for daytime deployment at Paranal, Chile, where PoET will operate. In this work, we describe the instrument design and present the results from commissioning and initial on-sky validation.

Keywords

Cite

@article{arxiv.2604.10140,
  title  = {A seeing measurement device for the PoET solar telescope},
  author = {Bachar Wehbe and André Silva and Manuel Abreu and Alexandre Cabral and Nuno Santos and Pit Sütterlin},
  journal= {arXiv preprint arXiv:2604.10140},
  year   = {2026}
}

Comments

Accepted for publication in RAS Techniques and Instruments