Mapping the Sun's coronal magnetic field using the Zeeman effect
arXiv:2410.21568 · doi:10.1126/sciadv.adq1604
Abstract
Regular remote sensing of the magnetic field embedded within the million-degree solar corona is severely lacking. This reality impedes fundamental investigations of the nature of coronal heating, the generation of solar and stellar winds, and the impulsive release of energy into the solar system via flares and other eruptive phenomena. Resulting from advancements in large aperture solar coronagraphy, we report unprecedented maps of polarized spectra emitted at 1074 nm by Fe+12 atoms in the active corona. We detect clear signatures of the Zeeman effect that are produced by the coronal magnetic field along the optically thin path length of its formation. Our comparisons with global magnetohydrodynamic models highlight the valuable constraints that these measurements provide for coronal modeling efforts, which are anticipated to yield subsequent benefits for space weather research and forecasting.
23 pages, 10 figures, published in Science Advances
References in corpus (7)
- Global maps of the magnetic field in the solar corona
- Solar coronal lines in the visible and infrared. A rough guide
- Mapping Solar Magnetic Fields from the Photosphere to the Base of the Corona
- Coronal Magnetography of a Simulated Solar Active Region from Microwave Imaging Spectropolarimetry
- Using multi-line spectropolarimetric observations of forbidden emission lines to measure single-point coronal magnetic fields
- On a limitation of Zeeman polarimetry and imperfect instrumentation in representing solar magnetic fields with weaker polarization signal
- Tomography of a solar plage with the Tenerife Inversion Code