Helioseismic inference of the solar radiative opacity
Abstract
The Sun is the most studied of all stars, and thus constitutes a benchmark for stellar models. However, our vision of the Sun is still incomplete, as illustrated by the current debate on its chemical composition. The problem reaches far beyond chemical abundances and is intimately linked to microscopic and macroscopic physical ingredients of solar models such as radiative opacity, for which experimental results have been recently measured that still await theoretical explanations. We present opacity profiles derived from helioseismic inferences and compare them with detailed theoretical computations of individual element contributions using three different opacity computation codes, in a complementary way to experimental results. We find that our seismic opacity is about 10% higher than theoretical values used in current solar models around 2 million degrees, but lower by 35% than some recent available theoretical values. Using the Sun as a laboratory of fundamental physics, we show that quantitative comparisons between various opacity tables are required to understand the origin of the discrepancies between reported helioseismic, theoretical and experimental opacity values.
Keywords
Cite
@article{arxiv.2504.06891,
title = {Helioseismic inference of the solar radiative opacity},
author = {Gaël Buldgen and Jean-Christophe Pain and Philippe Cossé and Christophe Blancard and Franck Gilleron and Anil Pradhan and Christopher J. Fontes and James Colgan and Arlette Noels and Joergen Christensen-Dalsgaard and Morgan Deal and Sergey V. Ayukov and Vladimir A. Baturin and Anna V. Oreshina and Richard Scuflaire and Charly Pinçon and Yveline Lebreton and Thierry Corbard and Patrick Eggenberger and Peter Hakel and David P. Kilcrease},
journal= {arXiv preprint arXiv:2504.06891},
year = {2025}
}
Comments
Published in Nature Communications on January 27. The Arxiv version is the version including supplementary figures as part of the Methods Section