The outer atmospheric layer of the Sun, the corona, is an enigma. Coronal plasma temperatures soar over a million degrees Kelvin, some 200–500 times that of the visible surface, the photosphere. It is well known that the corona is governed and structured by magnetic fields, that are generated in the sub-surface layers. Convective motions at the surface churn the magnetic fields, and the resulting Poynting flux is channelled into higher atmospheric layers, where it is dissipated to heat the plasma. The resulting coronal structures and loops trace the magnetic lines of force, and are best observed in the extreme ultraviolet (EUV) and x-rays. But the exact processes that channel the Poynting flux through the solar atmosphere and the nature of magnetic energy release responsible for coronal heating are poorly understood. From this enigmatic solar atmosphere, streams of charged particles accelerate away to form the solar wind. The generation and acceleration processes of the solar wind are actively debated. The phenomena of coronal heating and the solar wind formation are both thought to be intricately linked through magnetic reconnection and magnetohydrodynamic (MHD) waves, two fundamental processes in astrophysical plasmas.
The research goal of Project ORIGIN is to advance our understanding of the magnetic processes responsible for coronal heating and the generation of the solar wind. To this end, we use novel observations from the Extreme Ultraviolet Imager (EUI) and Polarimetric and Helioseismic Imager (PHI), two instruments onboard the Solar Orbiter spacecraft, to investigate intricate magnetic coupling between the photosphere and the corona. In particular, we study how photospheric motions, including processes of emergence and cancellation of magnetic fields at the surface, power the corona. To gain insights into the physical processes at play, we complement these observational investigations with state-of-the-art computer MURaM models that self-consistently simulate the solar atmosphere from the near-surface layers through the corona.