R. Wagner
Karlsruhe Institute of Technology
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Environmental Research Letters | 2008
O. Möhler; Stefan Benz; Harald Saathoff; Martin Schnaiter; R. Wagner; Johannes Schneider; S. Walter; Volker Ebert; Steven Wagner
The effect of organic coating on the heterogeneous ice nucleation (IN) efficiency of dust particles was investigated at simulated cirrus cloud conditions in the AIDA cloud chamber of Forschungszentrum Karlsruhe. Arizona test dust (ATD) and the clay mineral illite were used as surrogates for atmospheric dust aerosols. The dry dust samples were dispersed into a 3.7?m3 aerosol vessel and either directly transferred into the 84?m3 cloud simulation chamber or coated before with the semi-volatile products from the reaction of ?-pinene with ozone in order to mimic the coating of atmospheric dust particles with secondary organic aerosol (SOA) substances. The ice-active fraction was measured in AIDA expansion cooling experiments as a function of the relative humidity with respect to ice, RHi, in the temperature range from 205 to 210?K. Almost all uncoated dust particles with diameters between 0.1 and 1.0??m acted as efficient deposition mode ice nuclei at RHi between 105 and 120%. This high ice nucleation efficiency was markedly suppressed by coating with SOA. About 20% of the ATD particles coated with a SOA mass fraction of 17?wt% were ice-active at RHi between 115 and 130%, and only 10% of the illite particles coated with an SOA mass fraction of 41?wt% were ice-active at RHi between 160 and 170%. Only a minor fraction of pure SOA particles were ice-active at RHi between 150 and 190%. Strong IN activation of SOA particles was observed only at RHi above 200%, which is clearly above water saturation at the given temperature. The IN suppression and the shift of the heterogeneous IN onset to higher RHi seem to depend on the coating thickness or the fractional surface coverage of the mineral particles. The results indicate that the heterogeneous ice nucleation potential of atmospheric mineral particles may also be suppressed if they are coated with secondary organics.
Journal of Geophysical Research | 2005
Martin Schnaiter; C. Linke; O. Möhler; K.-H. Naumann; Harald Saathoff; R. Wagner; Ulrich Schurath; B. Wehner
Atmospheric Chemistry and Physics | 2006
O. Möhler; P. R. Field; Paul Connolly; Stefan Benz; Harald Saathoff; Martin Schnaiter; R. Wagner; Richard Cotton; Martina Krämer; A. Mangold; Andrew J. Heymsfield
Journal of Geophysical Research | 2005
O. Möhler; S. Büttner; C. Linke; Martin Schnaiter; Harald Saathoff; O. Stetzer; R. Wagner; Martina Krämer; A. Mangold; Volker Ebert; Ulrich Schurath
Biogeosciences Discussions | 2008
O. Möhler; Dimitrios G. Georgakopoulos; Cindy E. Morris; Stefan Benz; Volker Ebert; S. Hunsmann; Harald Saathoff; Martin Schnaiter; R. Wagner
Atmospheric Chemistry and Physics | 2012
Theodore W. Wilson; Benjamin J. Murray; R. Wagner; O. Möhler; Harald Saathoff; Martin Schnaiter; J. Skrotzki; H. C. Price; T. L. Malkin; Steven Dobbie; Sardar M. R. K. Al-Jumur
Atmospheric Chemistry and Physics | 2012
Martin Schnaiter; S. Buttner; O. Möhler; J. Skrotzki; M. Vragel; R. Wagner
Atmospheric Chemistry and Physics | 2006
O. Stetzer; O. Möhler; R. Wagner; Stefan Benz; Harald Saathoff; H. Bunz
Atmospheric Measurement Techniques | 2016
Paul Vochezer; Emma Järvinen; R. Wagner; Piotr Kupiszewski; Thomas Leisner; Martin Schnaiter
Archive | 2009
Alexander Benz; O. Möhler; R. Wagner; Martin Schnaiter; Thomas Leisner