Cargando…
The role of low-volatility organic compounds in initial particle growth in the atmosphere
About half of present-day cloud condensation nuclei originate from atmospheric nucleation, frequently appearing as a burst of new particles near midday. Atmospheric observations show that the growth rate of new particles often accelerates when the diameter of the particles is between one and ten nan...
Autores principales: | , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , |
---|---|
Lenguaje: | eng |
Publicado: |
2016
|
Materias: | |
Acceso en línea: | https://dx.doi.org/10.1038/nature18271 http://cds.cern.ch/record/2156634 |
_version_ | 1780950692289052672 |
---|---|
author | Tröstl, Jasmin Chuang, Wayne K Gordon, Hamish Heinritzi, Martin Yan, Chao Molteni, Ugo Ahlm, Lars Frege, Carla Bianchi, Federico Wagner, Robert Simon, Mario Lehtipalo, Katrianne Williamson, Christina Craven, Jill S Duplissy, Jonathan Adamov, Alexey Almeida, Joao Bernhammer, Anne-Kathrin Breitenlechner, Martin Brilke, Sophia Dias, Antònio Ehrhart, Sebastian Flagan, Richard C Franchin, Alessandro Fuchs, Claudia Guida, Roberto Gysel, Martin Hansel, Armin Hoyle, Christopher R Jokinen, Tuija Junninen, Heikki Kangasluoma, Juha Keskinen, Helmi Kim, Jaeseok Krapf, Manuel Kürten, Andreas Laaksonen, Ari Lawler, Michael Leiminger, Markus Mathot, Serge Möhler, Ottmar Nieminen, Tuomo Onnela, Antti Petäjä, Tuukka Piel, Felix M Miettinen, Pasi Rissanen, Matti P Rondo, Linda Sarnela, Nina Schobesberger, Siegfried Sengupta, Kamalika Sipilä, Mikko Smith, James Steiner, Gerhard Tomè, Antònio Virtanen, Annele Wagner, Andrea C Weingartner, Ernest Wimmer, Daniela Winkler, Paul M Ye, Penglin Carslaw, Kenneth S Curtius, Joachim Dommen, Josef Kirkby, Jasper Kulmala, Markku Riipinen, Ilona Worsnop, Douglas R Donahue, Neil M Baltensperger, Urs |
author_facet | Tröstl, Jasmin Chuang, Wayne K Gordon, Hamish Heinritzi, Martin Yan, Chao Molteni, Ugo Ahlm, Lars Frege, Carla Bianchi, Federico Wagner, Robert Simon, Mario Lehtipalo, Katrianne Williamson, Christina Craven, Jill S Duplissy, Jonathan Adamov, Alexey Almeida, Joao Bernhammer, Anne-Kathrin Breitenlechner, Martin Brilke, Sophia Dias, Antònio Ehrhart, Sebastian Flagan, Richard C Franchin, Alessandro Fuchs, Claudia Guida, Roberto Gysel, Martin Hansel, Armin Hoyle, Christopher R Jokinen, Tuija Junninen, Heikki Kangasluoma, Juha Keskinen, Helmi Kim, Jaeseok Krapf, Manuel Kürten, Andreas Laaksonen, Ari Lawler, Michael Leiminger, Markus Mathot, Serge Möhler, Ottmar Nieminen, Tuomo Onnela, Antti Petäjä, Tuukka Piel, Felix M Miettinen, Pasi Rissanen, Matti P Rondo, Linda Sarnela, Nina Schobesberger, Siegfried Sengupta, Kamalika Sipilä, Mikko Smith, James Steiner, Gerhard Tomè, Antònio Virtanen, Annele Wagner, Andrea C Weingartner, Ernest Wimmer, Daniela Winkler, Paul M Ye, Penglin Carslaw, Kenneth S Curtius, Joachim Dommen, Josef Kirkby, Jasper Kulmala, Markku Riipinen, Ilona Worsnop, Douglas R Donahue, Neil M Baltensperger, Urs |
author_sort | Tröstl, Jasmin |
collection | CERN |
description | About half of present-day cloud condensation nuclei originate from atmospheric nucleation, frequently appearing as a burst of new particles near midday. Atmospheric observations show that the growth rate of new particles often accelerates when the diameter of the particles is between one and ten nanometres. In this critical size range, new particles are most likely to be lost by coagulation with pre-existing particles, thereby failing to form new cloud condensation nuclei that are typically 50 to 100 nanometres across. Sulfuric acid vapour is often involved in nucleation but is too scarce to explain most subsequent growth, leaving organic vapours as the most plausible alternative, at least in the planetary boundary layer. Although recent studies predict that low-volatility organic vapours contribute during initial growth, direct evidence has been lacking. The accelerating growth may result from increased photolytic production of condensable organic species in the afternoon, and the presence of a possible Kelvin (curvature) effect, which inhibits organic vapour condensation on the smallest particles (the nano-Köhler theory), has so far remained ambiguous. Here we present experiments performed in a large chamber under atmospheric conditions that investigate the role of organic vapours in the initial growth of nucleated organic particles in the absence of inorganic acids and bases such as sulfuric acid or ammonia and amines, respectively. Using data from the same set of experiments, it has been shown that organic vapours alone can drive nucleation. We focus on the growth of nucleated particles and find that the organic vapours that drive initial growth have extremely low volatilities (saturation concentration less than 10$^{−4.5}$ micrograms per cubic metre). As the particles increase in size and the Kelvin barrier falls, subsequent growth is primarily due to more abundant organic vapours of slightly higher volatility (saturation concentrations of 10$^{−4.5}$ to 10$^{−0.5}$ micrograms per cubic metre). We present a particle growth model that quantitatively reproduces our measurements. Furthermore, we implement a parameterization of the first steps of growth in a global aerosol model and find that concentrations of atmospheric cloud concentration nuclei can change substantially in response, that is, by up to 50 per cent in comparison with previously assumed growth rate parameterizations. |
id | cern-2156634 |
institution | Organización Europea para la Investigación Nuclear |
language | eng |
publishDate | 2016 |
record_format | invenio |
spelling | cern-21566342022-08-10T12:36:30Zdoi:10.1038/nature18271http://cds.cern.ch/record/2156634engTröstl, JasminChuang, Wayne KGordon, HamishHeinritzi, MartinYan, ChaoMolteni, UgoAhlm, LarsFrege, CarlaBianchi, FedericoWagner, RobertSimon, MarioLehtipalo, KatrianneWilliamson, ChristinaCraven, Jill SDuplissy, JonathanAdamov, AlexeyAlmeida, JoaoBernhammer, Anne-KathrinBreitenlechner, MartinBrilke, SophiaDias, AntònioEhrhart, SebastianFlagan, Richard CFranchin, AlessandroFuchs, ClaudiaGuida, RobertoGysel, MartinHansel, ArminHoyle, Christopher RJokinen, TuijaJunninen, HeikkiKangasluoma, JuhaKeskinen, HelmiKim, JaeseokKrapf, ManuelKürten, AndreasLaaksonen, AriLawler, MichaelLeiminger, MarkusMathot, SergeMöhler, OttmarNieminen, TuomoOnnela, AnttiPetäjä, TuukkaPiel, Felix MMiettinen, PasiRissanen, Matti PRondo, LindaSarnela, NinaSchobesberger, SiegfriedSengupta, KamalikaSipilä, MikkoSmith, JamesSteiner, GerhardTomè, AntònioVirtanen, AnneleWagner, Andrea CWeingartner, ErnestWimmer, DanielaWinkler, Paul MYe, PenglinCarslaw, Kenneth SCurtius, JoachimDommen, JosefKirkby, JasperKulmala, MarkkuRiipinen, IlonaWorsnop, Douglas RDonahue, Neil MBaltensperger, UrsThe role of low-volatility organic compounds in initial particle growth in the atmosphereChemical Physics and ChemistryAbout half of present-day cloud condensation nuclei originate from atmospheric nucleation, frequently appearing as a burst of new particles near midday. Atmospheric observations show that the growth rate of new particles often accelerates when the diameter of the particles is between one and ten nanometres. In this critical size range, new particles are most likely to be lost by coagulation with pre-existing particles, thereby failing to form new cloud condensation nuclei that are typically 50 to 100 nanometres across. Sulfuric acid vapour is often involved in nucleation but is too scarce to explain most subsequent growth, leaving organic vapours as the most plausible alternative, at least in the planetary boundary layer. Although recent studies predict that low-volatility organic vapours contribute during initial growth, direct evidence has been lacking. The accelerating growth may result from increased photolytic production of condensable organic species in the afternoon, and the presence of a possible Kelvin (curvature) effect, which inhibits organic vapour condensation on the smallest particles (the nano-Köhler theory), has so far remained ambiguous. Here we present experiments performed in a large chamber under atmospheric conditions that investigate the role of organic vapours in the initial growth of nucleated organic particles in the absence of inorganic acids and bases such as sulfuric acid or ammonia and amines, respectively. Using data from the same set of experiments, it has been shown that organic vapours alone can drive nucleation. We focus on the growth of nucleated particles and find that the organic vapours that drive initial growth have extremely low volatilities (saturation concentration less than 10$^{−4.5}$ micrograms per cubic metre). As the particles increase in size and the Kelvin barrier falls, subsequent growth is primarily due to more abundant organic vapours of slightly higher volatility (saturation concentrations of 10$^{−4.5}$ to 10$^{−0.5}$ micrograms per cubic metre). We present a particle growth model that quantitatively reproduces our measurements. Furthermore, we implement a parameterization of the first steps of growth in a global aerosol model and find that concentrations of atmospheric cloud concentration nuclei can change substantially in response, that is, by up to 50 per cent in comparison with previously assumed growth rate parameterizations.oai:cds.cern.ch:21566342016 |
spellingShingle | Chemical Physics and Chemistry Tröstl, Jasmin Chuang, Wayne K Gordon, Hamish Heinritzi, Martin Yan, Chao Molteni, Ugo Ahlm, Lars Frege, Carla Bianchi, Federico Wagner, Robert Simon, Mario Lehtipalo, Katrianne Williamson, Christina Craven, Jill S Duplissy, Jonathan Adamov, Alexey Almeida, Joao Bernhammer, Anne-Kathrin Breitenlechner, Martin Brilke, Sophia Dias, Antònio Ehrhart, Sebastian Flagan, Richard C Franchin, Alessandro Fuchs, Claudia Guida, Roberto Gysel, Martin Hansel, Armin Hoyle, Christopher R Jokinen, Tuija Junninen, Heikki Kangasluoma, Juha Keskinen, Helmi Kim, Jaeseok Krapf, Manuel Kürten, Andreas Laaksonen, Ari Lawler, Michael Leiminger, Markus Mathot, Serge Möhler, Ottmar Nieminen, Tuomo Onnela, Antti Petäjä, Tuukka Piel, Felix M Miettinen, Pasi Rissanen, Matti P Rondo, Linda Sarnela, Nina Schobesberger, Siegfried Sengupta, Kamalika Sipilä, Mikko Smith, James Steiner, Gerhard Tomè, Antònio Virtanen, Annele Wagner, Andrea C Weingartner, Ernest Wimmer, Daniela Winkler, Paul M Ye, Penglin Carslaw, Kenneth S Curtius, Joachim Dommen, Josef Kirkby, Jasper Kulmala, Markku Riipinen, Ilona Worsnop, Douglas R Donahue, Neil M Baltensperger, Urs The role of low-volatility organic compounds in initial particle growth in the atmosphere |
title | The role of low-volatility organic compounds in initial particle growth in the atmosphere |
title_full | The role of low-volatility organic compounds in initial particle growth in the atmosphere |
title_fullStr | The role of low-volatility organic compounds in initial particle growth in the atmosphere |
title_full_unstemmed | The role of low-volatility organic compounds in initial particle growth in the atmosphere |
title_short | The role of low-volatility organic compounds in initial particle growth in the atmosphere |
title_sort | role of low-volatility organic compounds in initial particle growth in the atmosphere |
topic | Chemical Physics and Chemistry |
url | https://dx.doi.org/10.1038/nature18271 http://cds.cern.ch/record/2156634 |
work_keys_str_mv | AT trostljasmin theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT chuangwaynek theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT gordonhamish theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT heinritzimartin theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT yanchao theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT molteniugo theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT ahlmlars theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT fregecarla theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT bianchifederico theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT wagnerrobert theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT simonmario theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT lehtipalokatrianne theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT williamsonchristina theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT cravenjills theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT duplissyjonathan theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT adamovalexey theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT almeidajoao theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT bernhammerannekathrin theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT breitenlechnermartin theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT brilkesophia theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT diasantonio theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT ehrhartsebastian theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT flaganrichardc theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT franchinalessandro theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT fuchsclaudia theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT guidaroberto theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT gyselmartin theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT hanselarmin theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT hoylechristopherr theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT jokinentuija theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT junninenheikki theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT kangasluomajuha theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT keskinenhelmi theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT kimjaeseok theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT krapfmanuel theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT kurtenandreas theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT laaksonenari theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT lawlermichael theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT leimingermarkus theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT mathotserge theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT mohlerottmar theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT nieminentuomo theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT onnelaantti theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT petajatuukka theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT pielfelixm theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT miettinenpasi theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT rissanenmattip theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT rondolinda theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT sarnelanina theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT schobesbergersiegfried theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT senguptakamalika theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT sipilamikko theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT smithjames theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT steinergerhard theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT tomeantonio theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT virtanenannele theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT wagnerandreac theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT weingartnerernest theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT wimmerdaniela theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT winklerpaulm theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT yepenglin theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT carslawkenneths theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT curtiusjoachim theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT dommenjosef theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT kirkbyjasper theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT kulmalamarkku theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT riipinenilona theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT worsnopdouglasr theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT donahueneilm theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT baltenspergerurs theroleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT trostljasmin roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT chuangwaynek roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT gordonhamish roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT heinritzimartin roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT yanchao roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT molteniugo roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT ahlmlars roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT fregecarla roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT bianchifederico roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT wagnerrobert roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT simonmario roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT lehtipalokatrianne roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT williamsonchristina roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT cravenjills roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT duplissyjonathan roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT adamovalexey roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT almeidajoao roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT bernhammerannekathrin roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT breitenlechnermartin roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT brilkesophia roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT diasantonio roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT ehrhartsebastian roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT flaganrichardc roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT franchinalessandro roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT fuchsclaudia roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT guidaroberto roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT gyselmartin roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT hanselarmin roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT hoylechristopherr roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT jokinentuija roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT junninenheikki roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT kangasluomajuha roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT keskinenhelmi roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT kimjaeseok roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT krapfmanuel roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT kurtenandreas roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT laaksonenari roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT lawlermichael roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT leimingermarkus roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT mathotserge roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT mohlerottmar roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT nieminentuomo roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT onnelaantti roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT petajatuukka roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT pielfelixm roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT miettinenpasi roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT rissanenmattip roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT rondolinda roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT sarnelanina roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT schobesbergersiegfried roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT senguptakamalika roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT sipilamikko roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT smithjames roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT steinergerhard roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT tomeantonio roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT virtanenannele roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT wagnerandreac roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT weingartnerernest roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT wimmerdaniela roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT winklerpaulm roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT yepenglin roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT carslawkenneths roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT curtiusjoachim roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT dommenjosef roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT kirkbyjasper roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT kulmalamarkku roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT riipinenilona roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT worsnopdouglasr roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT donahueneilm roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere AT baltenspergerurs roleoflowvolatilityorganiccompoundsininitialparticlegrowthintheatmosphere |