Dubinin, E.; Fraenz, M.; Pätzold, M.; Tellmann, S.; McFadden, J.; Halekas, J.; DiBraccio, G.: Solar Wind—Ionosphere Interface at Mars. Ion Dynamics, Asymmetry, Plasma Jets. Geophysical Research Letters 51, p. e2023GL105073 (2024)
Franco, A. M. S.; Echer, E.; Fränz, M.; Bolzan, M. J. A.: Intermittent plasma turbulence in the Martian plasma environment. Reviews of Modern Plasma Physics 8, p. 3 (2024)
Franco, A. M. S.; Echer, E.; Fränz, M.; Bolzan, M. J. A.: Intermittent plasma turbulence in the Martian plasma environment. Reviews of Modern Plasma Physics 8, p. 3 (2024)
Rojo, M.; André, N.; Aizawa, S.; Sauvaud, J. -.; Saito, Y.; Harada, Y.; Fedorov, A.; Penou, E.; Barthe, A.; Persson, M.et al.; Yokota, S.; Mazelle, C.; Hadid, L. Z.; Delcourt, D.; Fontaine, D.; Fränz, M.; Katra, B.; Krupp, N.; Murakami, G.: Structure and dynamics of the Hermean magnetosphere revealed by electron observations from the Mercury electron analyzer after the first three Mercury flybys of BepiColombo. Astronomy and Astrophysics 687, p. A243 (2024)
Dubinin, E.; Fraenz, M.; Pätzold, M.; Tellmann, S.; DiBraccio, G.; McFadden, J.: The Mini Induced Magnetospheres at Mars. Geophysical Research Letters 50, p. e2022GL102324 (2023)
Dubinin, E.; Fraenz, M.; Pätzold, M.; Tellmann, S.; Modolo, R.; DiBraccio, G.; McFadden, J.; Espley, J.: Magnetic Fields and Plasma Motions in a Hybrid Martian Magnetosphere. Journal of Geophysical Research (Space Physics) 128, p. e2022JA030575 (2023)
Franco., A. M. S.; Echer, E.; Fränz, M.; Bolzan, M.: ULF Waves Propagating Through the Martian Magnetosheath into the Ionosphere: A Statistical Study Using Mars Express Observations. Brazilian Journal of Physics 14 (2023)
Li, X. Z.; Rong, J.; Fränz, M.; Zhang, C.; Klinger, L.; Shi, J.; Gao, J. W.; Dunlop, M.W.; Wei, Y.: Two Types of Martian Magnetotail Current Sheets: MAVEN Observations of Ion Composition. Geophysical Research Letters 50, e2022GL102630 (2023)
Barabash, S.; Fedorov, A.; Sauvaud, J. J.; Lundin, R.; Russell, C. T.; Futaana, Y.; Zhang, T. L.; Andersson, H.; Brinkfeldt, K.; Grigoriev, A.et al.; Holmström, M.; Yamauchi, M.; Asamura, K.; Baumjohann, W.; Lammer, H.; Coates, A. J.; Kataria, D. O.; Linder, D. R.; Curtis, C. C.; Hsieh, K. C.; Sandel, B. R.; Grande, M.; Gunell, H.; Koskinen, H. E. J.; Kallio, E.; Riihelä, P.; Säles, T.; Schmidt, W.; Kozyra, J.; Krupp, N.; Fränz, M.; Woch, J.; Luhmann, J.; McKenna-Lawlor, S.; Mazelle, C.; Thocaven, J. -.; Orsini, S.; Cerulli-Irelli, R.; Mura, A.; Milillo, A.; Maggi, M.; Roelof, E.; Brandt, P.; Szego, K.; Winningham, J. D.; Frahm, R. A.; Scherrer, J.; Sharber, J. R.; Wurz, P.; Bochsler, P.: Author Correction: The loss of ions from Venus through the plasma wake. Nature 605, p. E10 - E10 (2022)
Franco, A. M. S.; Echer, E.; Bolzan, M. J. A.; Fraenz, M.: Study of Mars Magnetosheath Fluctuations using the Kurtosis Technique: Mars Express Observations. Earth and Planetary Physics 6, p. 28 (2022)
Franco, A. M. S.; Echer, E.; Bolzan, M. J. A.; Fränz, M.: Study of fluctuations in the Martian magnetosheath using a kurtosis technique: Mars Express observations. Earth and Planetary Physics 6 (1), pp. 28 - 41 (2022)
The research group “Solar Lower Atmosphere and Magnetism” (SLAM) studies the conditions and dynamic processes in the atmospheric layer between the solar surface (photosphere) and the overlying chromosphere, an approximately 2000 km thick gas layer.
The main research fields of the department "Sun and Heliosphere" are covered by the research groups "Solar and Stellar Coronae", "Solar Lower Atmosphere and Magnetism", "Solar and Stellar Magnetohydrodynamics" and "Solar Variability and Climate".
How does our star heat its outer atmosphere, the solar corona, to unimaginable temperatures of up to 10 million degrees Celsius? With unprecedented observational data from ESA's Solar Orbiter spacecraft and powerful computer simulations, ERC starting grant awardee Pradeep Chitta intends to bring new momentum to the search for the coronal heating mechanism.