Context. The different elemental abundances of the photosphere and the corona are striking features of not only the Sun, but of other stars as well. This phenomenon is known as the first ionisation potential (FIP) effect, and its strength can be characterized by the FIP bias, the logarithmic abundance difference between low- and high-FIP elements in the corona, compared to the photosphere. The FIP bias was shown to depend on the surface temperature of the star. Aims: We aim to extend the Teff−FIP bias relationship to a larger stellar sample and analyse the effect of other astrophysical parameters on the relation (e.g. surface gravity, age, activity indicators). Methods: We compiled FIP bias and other parameters for 59 stars for which corona...
ASCA (Advanced Satellite for Cosmology and Astrophysics) and EUVE (Extreme Ultraviolet Explorer) spe...
Abstract The first ionization potential (FIP) bias, whereby elemental abundances for ...
Abstract The first ionization potential (FIP) bias, whereby elemental abundances for ...
Context. The different elemental abundances of the photosphere and the corona are striking features ...
International audienceContext. The different elemental abundances of the photosphere and the corona ...
International audienceContext. The different elemental abundances of the photosphere and the corona ...
Context. The different elemental abundances of the photosphere and the corona are striking features ...
Context. The different elemental abundances of the photosphere and the corona are striking features ...
Context. The different elemental abundances of the photosphere and the corona are striking features ...
One puzzling question in solar physics is the difference between elemental abundances in the photosp...
The chemical composition of solar and stellar atmospheres differs from the composition of their phot...
Context. In the solar corona, elements of low first ionization potential (FIP $\la$ 10 eV) are enric...
The chemical composition of the solar corona is different from that of the solar photosphere, with t...
In the solar corona, elements with a low first ionisation potential (FIP) have been observed to have...
Elemental abundance effects in active coronae have eluded our understanding for almost three decades...
ASCA (Advanced Satellite for Cosmology and Astrophysics) and EUVE (Extreme Ultraviolet Explorer) spe...
Abstract The first ionization potential (FIP) bias, whereby elemental abundances for ...
Abstract The first ionization potential (FIP) bias, whereby elemental abundances for ...
Context. The different elemental abundances of the photosphere and the corona are striking features ...
International audienceContext. The different elemental abundances of the photosphere and the corona ...
International audienceContext. The different elemental abundances of the photosphere and the corona ...
Context. The different elemental abundances of the photosphere and the corona are striking features ...
Context. The different elemental abundances of the photosphere and the corona are striking features ...
Context. The different elemental abundances of the photosphere and the corona are striking features ...
One puzzling question in solar physics is the difference between elemental abundances in the photosp...
The chemical composition of solar and stellar atmospheres differs from the composition of their phot...
Context. In the solar corona, elements of low first ionization potential (FIP $\la$ 10 eV) are enric...
The chemical composition of the solar corona is different from that of the solar photosphere, with t...
In the solar corona, elements with a low first ionisation potential (FIP) have been observed to have...
Elemental abundance effects in active coronae have eluded our understanding for almost three decades...
ASCA (Advanced Satellite for Cosmology and Astrophysics) and EUVE (Extreme Ultraviolet Explorer) spe...
Abstract The first ionization potential (FIP) bias, whereby elemental abundances for ...
Abstract The first ionization potential (FIP) bias, whereby elemental abundances for ...