Agnieszka Kupc
University of Vienna
Network
Latest external collaboration on country level. Dive into details by clicking on the dots.
Publication
Featured researches published by Agnieszka Kupc.
Nature | 2011
J. Kirkby; Joachim Curtius; J. Almeida; Eimear M. Dunne; Jonathan Duplissy; Sebastian Ehrhart; Alessandro Franchin; S. Gagné; Luisa Ickes; Andreas Kürten; Agnieszka Kupc; Axel Metzger; Francesco Riccobono; L. Rondo; Siegfried Schobesberger; Georgios Tsagkogeorgas; Daniela Wimmer; A. Amorim; Federico Bianchi; Martin Breitenlechner; A. David; Josef Dommen; Andrew J. Downard; Mikael Ehn; S. Haider; Armin Hansel; Daniel Hauser; Werner Jud; Heikki Junninen; Fabian Kreissl
Atmospheric aerosols exert an important influence on climate through their effects on stratiform cloud albedo and lifetime and the invigoration of convective storms. Model calculations suggest that almost half of the global cloud condensation nuclei in the atmospheric boundary layer may originate from the nucleation of aerosols from trace condensable vapours, although the sensitivity of the number of cloud condensation nuclei to changes of nucleation rate may be small. Despite extensive research, fundamental questions remain about the nucleation rate of sulphuric acid particles and the mechanisms responsible, including the roles of galactic cosmic rays and other chemical species such as ammonia. Here we present the first results from the CLOUD experiment at CERN. We find that atmospherically relevant ammonia mixing ratios of 100 parts per trillion by volume, or less, increase the nucleation rate of sulphuric acid particles more than 100–1,000-fold. Time-resolved molecular measurements reveal that nucleation proceeds by a base-stabilization mechanism involving the stepwise accretion of ammonia molecules. Ions increase the nucleation rate by an additional factor of between two and more than ten at ground-level galactic-cosmic-ray intensities, provided that the nucleation rate lies below the limiting ion-pair production rate. We find that ion-induced binary nucleation of H2SO4–H2O can occur in the mid-troposphere but is negligible in the boundary layer. However, even with the large enhancements in rate due to ammonia and ions, atmospheric concentrations of ammonia and sulphuric acid are insufficient to account for observed boundary-layer nucleation.
Nature | 2013
Joao Almeida; Siegfried Schobesberger; Andreas Kürten; Ismael K. Ortega; Oona Kupiainen-Määttä; Arnaud P. Praplan; Alexey Adamov; A. Amorim; Federico Bianchi; Martin Breitenlechner; A. David; Josef Dommen; Neil M. Donahue; Andrew J. Downard; Eimear M. Dunne; Jonathan Duplissy; Sebastian Ehrhart; Alessandro Franchin; R. Guida; Jani Hakala; Armin Hansel; Martin Heinritzi; Henning Henschel; Tuija Jokinen; Heikki Junninen; Maija K. Kajos; Juha Kangasluoma; Helmi Keskinen; Agnieszka Kupc; Theo Kurtén
Nucleation of aerosol particles from trace atmospheric vapours is thought to provide up to half of global cloud condensation nuclei. Aerosols can cause a net cooling of climate by scattering sunlight and by leading to smaller but more numerous cloud droplets, which makes clouds brighter and extends their lifetimes. Atmospheric aerosols derived from human activities are thought to have compensated for a large fraction of the warming caused by greenhouse gases. However, despite its importance for climate, atmospheric nucleation is poorly understood. Recently, it has been shown that sulphuric acid and ammonia cannot explain particle formation rates observed in the lower atmosphere. It is thought that amines may enhance nucleation, but until now there has been no direct evidence for amine ternary nucleation under atmospheric conditions. Here we use the CLOUD (Cosmics Leaving OUtdoor Droplets) chamber at CERN and find that dimethylamine above three parts per trillion by volume can enhance particle formation rates more than 1,000-fold compared with ammonia, sufficient to account for the particle formation rates observed in the atmosphere. Molecular analysis of the clusters reveals that the faster nucleation is explained by a base-stabilization mechanism involving acid–amine pairs, which strongly decrease evaporation. The ion-induced contribution is generally small, reflecting the high stability of sulphuric acid–dimethylamine clusters and indicating that galactic cosmic rays exert only a small influence on their formation, except at low overall formation rates. Our experimental measurements are well reproduced by a dynamical model based on quantum chemical calculations of binding energies of molecular clusters, without any fitted parameters. These results show that, in regions of the atmosphere near amine sources, both amines and sulphur dioxide should be considered when assessing the impact of anthropogenic activities on particle formation.
Science | 2014
Francesco Riccobono; Siegfried Schobesberger; Catherine E. Scott; Josef Dommen; Ismael K. Ortega; Linda Rondo; J. Almeida; A. Amorim; Federico Bianchi; Martin Breitenlechner; A. David; Andrew J. Downard; Eimear M. Dunne; Jonathan Duplissy; Sebastian Ehrhart; Alessandro Franchin; Armin Hansel; Heikki Junninen; Maija K. Kajos; Helmi Keskinen; Agnieszka Kupc; Andreas Kürten; Alexander N. Kvashin; Ari Laaksonen; Katrianne Lehtipalo; Vladimir Makhmutov; Serge Mathot; Tuomo Nieminen; Antti Onnela; Tuukka Petäjä
Out of the Air New-particle formation from gaseous precursors in the atmosphere is a complex and poorly understood process with importance in atmospheric chemistry and climate. Laboratory studies have had trouble reproducing the particle formation rates that must occur in the natural world. Riccobono et al. (p. 717) used the CLOUD (Cosmics Leaving Outdoor Droplets) chamber at CERN to recreate a realistic atmospheric environment. Sulfuric acid and oxidized organic vapors in typical natural concentrations caused particle nucleation at similar rates to those observed in the lower atmosphere. Experiments in the CLOUD chamber at CERN reproduce particle nucleation rates observed in the lower atmosphere. Atmospheric new-particle formation affects climate and is one of the least understood atmospheric aerosol processes. The complexity and variability of the atmosphere has hindered elucidation of the fundamental mechanism of new-particle formation from gaseous precursors. We show, in experiments performed with the CLOUD (Cosmics Leaving Outdoor Droplets) chamber at CERN, that sulfuric acid and oxidized organic vapors at atmospheric concentrations reproduce particle nucleation rates observed in the lower atmosphere. The experiments reveal a nucleation mechanism involving the formation of clusters containing sulfuric acid and oxidized organic molecules from the very first step. Inclusion of this mechanism in a global aerosol model yields a photochemically and biologically driven seasonal cycle of particle concentrations in the continental boundary layer, in good agreement with observations.
Proceedings of the National Academy of Sciences of the United States of America | 2013
Siegfried Schobesberger; Heikki Junninen; Federico Bianchi; Gustaf Lönn; Mikael Ehn; Katrianne Lehtipalo; Josef Dommen; Sebastian Ehrhart; Ismael K. Ortega; Alessandro Franchin; Tuomo Nieminen; Francesco Riccobono; Manuel A. Hutterli; Jonathan Duplissy; J. Almeida; A. Amorim; Martin Breitenlechner; Andrew J. Downard; Eimear M. Dunne; Maija K. Kajos; Helmi Keskinen; J. Kirkby; Agnieszka Kupc; Andreas Kürten; Theo Kurtén; Ari Laaksonen; Serge Mathot; Antti Onnela; Arnaud P. Praplan; Linda Rondo
Significance The formation of nanoparticles by condensable vapors in the atmosphere influences radiative forcing and therefore climate. We explored the detailed mechanism of particle formation, in particular the role of oxidized organic molecules that arise from the oxidation of monoterpenes, a class of volatile organic compounds emitted from plants. We mimicked atmospheric conditions in a well-controlled laboratory setup and found that these oxidized organics form initial clusters directly with single sulfuric acid molecules. The clusters then grow by the further addition of both sulfuric acid and organic molecules. Some of the organics are remarkably highly oxidized, a critical feature that enables them to participate in forming initial stable molecular clusters and to facilitate the first steps of atmospheric nanoparticle formation. Atmospheric aerosols formed by nucleation of vapors affect radiative forcing and therefore climate. However, the underlying mechanisms of nucleation remain unclear, particularly the involvement of organic compounds. Here, we present high-resolution mass spectra of ion clusters observed during new particle formation experiments performed at the Cosmics Leaving Outdoor Droplets chamber at the European Organization for Nuclear Research. The experiments involved sulfuric acid vapor and different stabilizing species, including ammonia and dimethylamine, as well as oxidation products of pinanediol, a surrogate for organic vapors formed from monoterpenes. A striking resemblance is revealed between the mass spectra from the chamber experiments with oxidized organics and ambient data obtained during new particle formation events at the Hyytiälä boreal forest research station. We observe that large oxidized organic compounds, arising from the oxidation of monoterpenes, cluster directly with single sulfuric acid molecules and then form growing clusters of one to three sulfuric acid molecules plus one to four oxidized organics. Most of these organic compounds retain 10 carbon atoms, and some of them are remarkably highly oxidized (oxygen-to-carbon ratios up to 1.2). The average degree of oxygenation of the organic compounds decreases while the clusters are growing. Our measurements therefore connect oxidized organics directly, and in detail, with the very first steps of new particle formation and their growth between 1 and 2 nm in a controlled environment. Thus, they confirm that oxidized organics are involved in both the formation and growth of particles under ambient conditions.
Science | 2016
Eimear M. Dunne; H. Gordon; Andreas Kürten; Joao Almeida; Jonathan Duplissy; Christina Williamson; Ismael K. Ortega; K. J. Pringle; Alexey Adamov; Urs Baltensperger; Peter Barmet; François Benduhn; Federico Bianchi; Martin Breitenlechner; Antony D. Clarke; Joachim Curtius; Josef Dommen; Neil M. Donahue; Sebastian Ehrhart; Alessandro Franchin; R. Guida; Jani Hakala; Armin Hansel; Martin Heinritzi; Tuija Jokinen; Juha Kangasluoma; J. Kirkby; Markku Kulmala; Agnieszka Kupc; Michael J. Lawler
Observations made in the CLOUD chamber at CERN illuminate atmospheric particle formation. How new particles form New particle formation in the atmosphere produces around half of the cloud condensation nuclei that seed cloud droplets. Such particles have a pivotal role in determining the properties of clouds and the global radiation balance. Dunne et al. used the CLOUD (Cosmics Leaving Outdoor Droplets) chamber at CERN to construct a model of aerosol formation based on laboratory-measured nucleation rates. They found that nearly all nucleation involves either ammonia or biogenic organic compounds. Furthermore, in the present-day atmosphere, cosmic ray intensity cannot meaningfully affect climate via nucleation. Science, this issue p. 1119 Fundamental questions remain about the origin of newly formed atmospheric aerosol particles because data from laboratory measurements have been insufficient to build global models. In contrast, gas-phase chemistry models have been based on laboratory kinetics measurements for decades. We built a global model of aerosol formation by using extensive laboratory measurements of rates of nucleation involving sulfuric acid, ammonia, ions, and organic compounds conducted in the CERN CLOUD (Cosmics Leaving Outdoor Droplets) chamber. The simulations and a comparison with atmospheric observations show that nearly all nucleation throughout the present-day atmosphere involves ammonia or biogenic organic compounds, in addition to sulfuric acid. A considerable fraction of nucleation involves ions, but the relatively weak dependence on ion concentrations indicates that for the processes studied, variations in cosmic ray intensity do not appreciably affect climate through nucleation in the present-day atmosphere.
Journal of Geophysical Research | 2016
Jonathan Duplissy; Joonas Merikanto; Alessandro Franchin; Georgios Tsagkogeorgas; Juha Kangasluoma; Daniela Wimmer; H. Vuollekoski; Siegfried Schobesberger; Katrianne Lehtipalo; David Brus; Neil M. Donahue; Hanna Vehkamäki; Joao Almeida; A. Amorim; Peter Barmet; Federico Bianchi; Martin Breitenlechner; Eimear M. Dunne; R. Guida; Henning Henschel; Heikki Junninen; J. Kirkby; Andreas Kürten; Agnieszka Kupc; Anni Määttänen; Vladimir Makhmutov; Serge Mathot; T. Nieminen; Antti Onnela; Arnaud P. Praplan
We report comprehensive, demonstrably contaminant-free measurements of binary particle formation rates by sulfuric acid and water for neutral and ion-induced pathways conducted in the European Organization for Nuclear Research Cosmics Leaving Outdoor Droplets chamber. The recently developed Atmospheric Pressure interface-time of flight-mass spectrometer was used to detect contaminants in charged clusters and to identify runs free of any contaminants. Four parameters were varied to cover ambient conditions: sulfuric acid concentration (10^5 to 10^9 mol cm^(−3)), relative humidity (11% to 58%), temperature (207 K to 299 K), and total ion concentration (0 to 6800 ions cm^(−3)). Formation rates were directly measured with novel instruments at sizes close to the critical cluster size (mobility size of 1.3 nm to 3.2 nm). We compare our results with predictions from Classical Nucleation Theory normalized by Quantum Chemical calculation (QC-normalized CNT), which is described in a companion paper. The formation rates predicted by the QC-normalized CNT were extended from critical cluster sizes to measured sizes using the UHMA2 sectional particle microphysics model. Our results show, for the first time, good agreement between predicted and measured particle formation rates for the binary (neutral and ion-induced) sulfuric acid-water system. Formation rates increase with RH, sulfuric acid, and ion concentrations and decrease with temperature at fixed RH and sulfuric acid concentration. Under atmospheric conditions, neutral particle formation dominates at low temperatures, while ion-induced particle formation dominates at higher temperatures. The good agreement between the theory and our comprehensive data set gives confidence in using the QC-normalized CNT as a powerful tool to study neutral and ion-induced binary particle formation in atmospheric modeling.
Aerosol Science and Technology | 2013
Agnieszka Kupc; Oliver F. Bischof; Torsten Tritscher; Michael Beeston; Thomas Krinke; P. Wagner
This study provides insights into the performance of a new nano-water-based condensation particle counter (N-WCPC, TSI 3788) and presents a comparison to the well-established butanol-based ultrafine CPC (UCPC, TSI 3776). The suitability of the N-WCPC to measure ambient airborne nanoparticles of various compositions has been assessed with an urban background aerosol in a light industrial area and provided comparable results (within 2%) to the 3776 at various particle number concentrations. The subsequent investigation using laboratory generated nearly monodisperse positively charged sucrose, sodium chloride, proteins, emery oil, and candle-generated particles in the diameter range of 2–53 nm showed material-dependent N-WCPC cut-off sizes between 2.2 and 17.2 nm at standard operating temperatures. Copyright 2013 American Association for Aerosol Research
Aerosol Science and Technology | 2013
Agnieszka Kupc; Paul M. Winkler; Aron Vrtala; P. Wagner
Copyright 2013 American Association for Aerosol Research
Journal of Geophysical Research | 2016
Sebastian Ehrhart; Luisa Ickes; Joao Almeida; A. Amorim; Peter Barmet; Federico Bianchi; Josef Dommen; Eimear M. Dunne; Jonathan Duplissy; Alessandro Franchin; Juha Kangasluoma; J. Kirkby; Andreas Kürten; Agnieszka Kupc; Katrianne Lehtipalo; Tuomo Nieminen; Francesco Riccobono; Linda Rondo; Siegfried Schobesberger; Gerhard Steiner; António Tomé; Daniela Wimmer; Urs Baltensperger; P. Wagner; Joachim Curtius
Abstract Binary nucleation of sulphuric acid‐water particles is expected to be an important process in the free troposphere at low temperatures. SAWNUC (Sulphuric Acid Water Nucleation) is a model of binary nucleation that is based on laboratory measurements of the binding energies of sulphuric acid and water in charged and neutral clusters. Predictions of SAWNUC are compared for the first time comprehensively with experimental binary nucleation data from the CLOUD chamber at European Organization for Nuclear Research. The experimental measurements span a temperature range of 208–292 K, sulphuric acid concentrations from 1·106 to 1·109 cm−3, and distinguish between ion‐induced and neutral nucleation. Good agreement, within a factor of 5, is found between the experimental and modeled formation rates for ion‐induced nucleation at 278 K and below and for neutral nucleation at 208 and 223 K. Differences at warm temperatures are attributed to ammonia contamination which was indicated by the presence of ammonia‐sulphuric acid clusters, detected by an Atmospheric Pressure Interface Time of Flight (APi‐TOF) mass spectrometer. APi‐TOF measurements of the sulphuric acid ion cluster distributions ( (H2SO4)i·HSO4− with i = 0, 1, ..., 10) show qualitative agreement with the SAWNUC ion cluster distributions. Remaining differences between the measured and modeled distributions are most likely due to fragmentation in the APi‐TOF. The CLOUD results are in good agreement with previously measured cluster binding energies and show the SAWNUC model to be a good representation of ion‐induced and neutral binary nucleation of sulphuric acid‐water clusters in the middle and upper troposphere.
NUCLEATION AND ATMOSPHERIC AEROSOLS: 19th International Conference | 2013
Agnieszka Kupc; Paul M. Winkler; Aron Vrtala; P. Wagner
The first experimental study on the temperature dependence (263-288 K) of heterogeneous nucleation of water vapor on neutral insoluble Ag and soluble NaCl particles (3.5-8 nm) is presented. Heterogeneous nucleation probability was measured as a function of saturation ratio for different seed particle diameters and nucleation temperatures by means of an expansion type condensation particle counter (CPC) - the Size Analyzing Nuclei Counter (SANC). Water vapor onset saturation ratios were also determined. Results revealed an unusual temperature trend for Ag particles, while the temperature effect for NaCl seeds was found to be in qualitative agreement with theory. In order to exclude potential experimental artifacts the effect of temperature on homogeneous nucleation of water vapor was investigated as well and agreement with theoretical predictions was observed.