Efficiency of solar microflares in accelerating electrons when rooted in a sunspot

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Auteurs principaux: Saqri, Jonas, Veronig, Astrid M., Battaglia, Andrea Francesco, Dickson, Ewan C. M., Gary, Dale E., Krucker, Säm
Format: Preprint
Publié: 2023
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author Saqri, Jonas
Veronig, Astrid M.
Battaglia, Andrea Francesco
Dickson, Ewan C. M.
Gary, Dale E.
Krucker, Säm
author_facet Saqri, Jonas
Veronig, Astrid M.
Battaglia, Andrea Francesco
Dickson, Ewan C. M.
Gary, Dale E.
Krucker, Säm
contents We investigate two microflares of GOES classes A9 and C1 (after background subtraction) observed by STIX onboard Solar Orbiter with exceptionally strong nonthermal emission. We complement the hard X-ray imaging and spectral analysis by STIX with co-temporal observations in the (E)UV and visual range by AIA and HMI, in order to investigate what makes these microflares so sufficient in high-energy particle acceleration. We performed case studies of two microflares observed by STIX on October 11, 2021 and November 10, 2022 that showed unusually hard microflare X-ray spectra with power-law indices of the electron flux distributions delta = 2.98 and delta = 4.08 during their nonthermal peaks and photon energies up to 76 keV and 50 keV respectively. For both events under study, we found that one footpoint is located within a sunspot covering areas with mean magnetic flux densities in excess of 1500 G, suggesting that the hard electron spectra are caused by the strong magnetic fields in which the flare loops are rooted. In addition, we revisited the unusually hard RHESSI microflare initially published by Hannah et al. (2008b) and found that in this event also one flare kernel was located within a sunspot, which corroborates the result from the two hard STIX microflares under study. We conclude that the characteristics of the strong photospheric magnetic fields inside sunspot umbrae and penumbrae where the flare loops are rooted play an important role in the generation of exceptionally hard X-ray spectra in these microflares.
format Preprint
id arxiv_https___arxiv_org_abs_2312_06856
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Efficiency of solar microflares in accelerating electrons when rooted in a sunspot
Saqri, Jonas
Veronig, Astrid M.
Battaglia, Andrea Francesco
Dickson, Ewan C. M.
Gary, Dale E.
Krucker, Säm
Solar and Stellar Astrophysics
High Energy Astrophysical Phenomena
We investigate two microflares of GOES classes A9 and C1 (after background subtraction) observed by STIX onboard Solar Orbiter with exceptionally strong nonthermal emission. We complement the hard X-ray imaging and spectral analysis by STIX with co-temporal observations in the (E)UV and visual range by AIA and HMI, in order to investigate what makes these microflares so sufficient in high-energy particle acceleration. We performed case studies of two microflares observed by STIX on October 11, 2021 and November 10, 2022 that showed unusually hard microflare X-ray spectra with power-law indices of the electron flux distributions delta = 2.98 and delta = 4.08 during their nonthermal peaks and photon energies up to 76 keV and 50 keV respectively. For both events under study, we found that one footpoint is located within a sunspot covering areas with mean magnetic flux densities in excess of 1500 G, suggesting that the hard electron spectra are caused by the strong magnetic fields in which the flare loops are rooted. In addition, we revisited the unusually hard RHESSI microflare initially published by Hannah et al. (2008b) and found that in this event also one flare kernel was located within a sunspot, which corroborates the result from the two hard STIX microflares under study. We conclude that the characteristics of the strong photospheric magnetic fields inside sunspot umbrae and penumbrae where the flare loops are rooted play an important role in the generation of exceptionally hard X-ray spectra in these microflares.
title Efficiency of solar microflares in accelerating electrons when rooted in a sunspot
topic Solar and Stellar Astrophysics
High Energy Astrophysical Phenomena
url https://arxiv.org/abs/2312.06856