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Feldman, U.; Landi, E.; Curdt, W.: Newly identified forbidden transitions within the ground configuration of ions of very low abundance P, Cl, K, and Co. Astrophysical Journal 607, pp. 1039 - 1045 (2004)
Feldman, U.; Landi, E.; Curdt, W.: Nonthermal mass motions within the high-temperature plasmas above a complex solar active region. Astrophysical Journal 585, pp. 1087 - 1094 (2003)
Feldman, U.; Landi, E.; Doschek, G. A.; Dammasch, I. E.; Curdt, W.: Free-free emission in the far-ultraviolet spectral range: A resource for diagnosing solar and stellar flare plasmas. Astrophysical Journal 593, pp. 1226 - 1241 (2003)
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Rendtel, J.; Staude, J.; Curdt, W.: Observations of oscillations in the transition region above sunspots. Astronomy and Astrophysics 410, pp. 315 - 321 (2003)
Solanki, S. K.; Curdt, W.; Gandorfer, A.; Schüssler, M.; Lites, B. W.; Martinez Pillet, V.; Schmidt, W.; Title, A. M.; the Sunrise Team: SUNRISE: Balloon-borne high-resolution observation of the Sun. Astron. Nachrichten 324, p. 113 (2003)
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Lemaire, P.; Artzner, G.; Vial, J.-C.; Curdt, W.; Schühle, U.; Wilhelm, K.: Transition region quiet Sun velocity field evolution. Advances in Space Research 30, pp. 487 - 490 (2002)
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The dwarf planet is a bizarre, cryovolcanic world. However, the organic deposits discovered on its surface so far are unlikely to originate from its interior.
The Uranian magnetic field is more expansive than previously thought, according to newly analyzed data from Voyager 2, making it easier to search for moons with oceans.
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).