Unravelling the microphysics of polar mesospheric cloud formation
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Published:2019-03-06
Issue:5
Volume:19
Page:2871-2879
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ISSN:1680-7324
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Container-title:Atmospheric Chemistry and Physics
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language:en
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Short-container-title:Atmos. Chem. Phys.
Author:
Duft DenisORCID, Nachbar Mario, Leisner Thomas
Abstract
Abstract. Polar mesospheric clouds are the highest water ice clouds
occurring in the terrestrial atmosphere. They form in the polar summer
mesopause, the coldest region in the atmosphere. It has long been assumed
that these clouds form by heterogeneous nucleation on meteoric smoke
particles which are the remnants of material ablated from meteoroids in the
upper atmosphere. However, until now little was known about the properties
of these nanometre-sized particles and application of the classical theory for
heterogeneous ice nucleation was impacted by large uncertainties. In this
work, we performed laboratory measurements on the heterogeneous ice
formation process at mesopause conditions on small (r=1 to 3 nm)
iron silicate nanoparticles serving as meteoric smoke analogues. We observe
that ice growth on these particles sets in for saturation ratios with
respect to hexagonal ice below Sh=50, a value that is commonly
exceeded during the polar mesospheric cloud season, affirming meteoric smoke
particles as likely nuclei for heterogeneous ice formation in mesospheric
clouds. We present a simple ice-activation model based on the Kelvin–Thomson equation that takes into account the water coverage of iron silicates of
various compositions. The activation model reproduces the experimental data
very well using bulk properties of compact amorphous solid water. This is in
line with the finding from our previous study that ice formation on
iron silicate nanoparticles occurs by condensation of amorphous solid water
rather than by nucleation of crystalline ice at mesopause conditions. Using
the activation model, we also show that for iron silicate particles with dry
radius larger than r=0.6 nm the nanoparticle charge has no significant
effect on the ice-activation threshold.
Funder
Deutsche Forschungsgemeinschaft Bundesministerium für Bildung und Forschung
Publisher
Copernicus GmbH
Subject
Atmospheric Science
Reference53 articles.
1. Bardeen, C. G., Toon, O. B., Jensen, E. J., Marsh, D. R., and Harvey, V. L.:
Numerical simulations of the three-dimensional distribution of meteoric dust
in the mesosphere and upper stratosphere, J. Geophys. Res.-Atmos., 113,
D17202, https://doi.org/10.1029/2007JD009515, 2008. 2. Berger, U. and Lübken, F.-J.: Trends in mesospheric ice layers in the
Northern Hemisphere during 1961–2013, J. Geophys. Res.-Atmos., 120,
11277–11298, 2015. 3. Bickes, R. W., Duquette, G., van den Meijdenberg, C. J. N., Rulis, A. M.,
Scoles, G., and Smith, K. M.: Molecular Beam Scattering Experiments with
Polar Molecules: Measurement of Differential Collision Cross Sections for
H2O+H2, He, Ne, Ar, H2O and NH3+H2, He,
NH3, J. Phys. B-At. Mol. Opt., 8, 3034–3043, 1975. 4. Brown, D. E., George, S. M., Huang, C., Wong, E. K. L., Rider, K. B., Smith,
R. S., and Kay, B. D.: H2O Condensation Coefficient and Refractive
Index for Vapor-Deposited Ice from Molecular Beam and Optical Interference
Measurements, J. Phys. Chem., 100, 4988–4995, 1996. 5. Carrillo-Sánchez, J. D., Nesvorný, D., Pokorný, P., Janches, D.,
and Plane, J. M. C.: Sources of cosmic dust in the Earth's atmosphere,
Geophys. Res. Lett., 43, 11979–11986, 2016.
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