Parenti, S.; Chifu, I.; Del Zanna, G.; Edmondson, J.; Giunta, A.; Hansteen, V.H.; Higginson, A.; Laming, J.M.; Lepri, S.T.; Lynch, B.J.et al.; Rivera, Y.J.; von Steiger, R.; Wiegelmann, T.; Wimmer-Schweingruber, R.F.; Zambrana Prado, N.; Pelouze, G.: Linking the Sun to the Heliosphere Using Composition Data and Modelling: A Test Case with a Coronal Jet. Space Science Reviews 217 (8), 78 (2021)
Mierla, M.; Seaton, D. B.; Berghmans, D.; Chifu, I.; De Groof, A.; Inhester, B.; Rodriguez, L.; Stenborg, G.; Zhukov, A. N.: Study of a Prominence Eruption using PROBA2/SWAP and STEREO/EUVI Data. Solar Physics 286, pp. 241 - 253 (2013)
Chifu, I.; Inhester, B.; Mierla, M.; Chifu, V.; Wiegelmann, T.: First 4D Reconstruction of an Eruptive Prominence Using Three Simultaneous View Directions. Solar Physics 281, pp. 121 - 135 (2012)
Mierla, M.; Chifu, I.; Inhester, B.; Rodriguez, L.; Zhukov, A.: Low polarised emission from the core of coronal mass ejections. Astronomy and Astrophysics 530, L1 (2011)
Wiegelmann, T.; Chifu, I.; Inhester, B.: Global coronal magnetic field modelling for Solar Orbiter. SPICE Operations Consortium Meeting , Göttingen, Germany (2019)
Wiegelmann, T.; Neukirch, T.; Nickeler, D. H.; Chifu, I.; Inhester, B.: Global coronal magnetic field modelling: new models. ISSI-meeting on „Linking the Sun to the heliosphere using composition data and modelling", Berne, Switzerland (2019)
Wiegelmann, T.; Chifu, I.; Inhester, B.: Global magnetic field modelling for the Solar Orbiter mission. 6th Metis Workshop with Focus on Operations, Göttingen, Germany (2018)
Wiegelmann, T.; Chifu, I.; Inhester, B.: Global magnetic field modelling for the Solar Orbiter mission. Mini-Workshop on Solar Magnetic Field at the Purple Mountain Observatory, Nanjing, Nanjing, China (2018)
Chifu, I.; Wiegelmann, T.; Inhester, B.: Nonlinear force-free coronal magnetic stereoscopy. SOLARNET IV, The Physics of the Sun from the Interior to the Outer Atmosphere, Lanzarote, Spain (2017)
Chifu, I.; Wiegelmann, T.; Inhester, B.: Coronal magnetic field modeling using stereoscopic constraints. 15th European Solar Physics Meeting, Budapest, Hungary (2017)
The Planetary Plasma Environments group (PPE) has a strong heritage in the exploration of planetary magnetospheres and space plasma interactions throughout the solar system. It has contributed instruments to several past missions that flew-by or orbited Jupiter (Galileo, Cassini, Ulysses). The PPE participates in the JUICE mission by contributing hardware and scientific expertise to the Particle Environment Package (PEP).
Analyzing the high spatial resolution solar Ca II H and K emission data obtained by the SUNRISE mission and building a model of other stars more active than the Sun
The magnetic field in the solar atmosphere exceeds the geomagnetic field strength by four orders of magnitude. It greatly influences the processes of energy transport within the solar atmosphere, and dominates the morphology of the solar chromosphere and corona. Kinetic energy from convective motions in the Sun can be efficiently stored in magnetic fields and subsequently released - to heat the solar corona to several million degrees or to blast off coronal mass ejections.