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NO at low concentration can enhance the formation of highly oxygenated biogenic molecules in the atmosphere

The interaction between nitrogen monoxide (NO) and organic peroxy radicals (RO$_{2}$) greatly impacts the formation of highly oxygenated organic molecules (HOM), the key precursors of secondary organic aerosols. It has been thought that HOM production can be significantly suppressed by NO even at lo...

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Autores principales: Nie, Wei, Yan, Chao, Yang, Liwen, Roldin, Pontus, Liu, Yuliang, Vogel, Alexander L, Molteni, Ugo, Stolzenburg, Dominik, Finkenzeller, Henning, Amorim, Antonio, Bianchi, Federico, Curtius, Joachim, Dada, Lubna, Draper, Danielle C, Duplissy, Jonathan, Hansel, Armin, He, Xu-Cheng, Hofbauer, Victoria, Jokinen, Tuija, Kim, Changhyuk, Lehtipalo, Katrianne, Nichman, Leonid, Mauldin, Roy L, Makhmutov, Vladimir, Mentler, Bernhard, Mizelli-Ojdanic, Andrea, Petäjä, Tuukka, Quéléver, Lauriane L J, Schallhart, Simon, Simon, Mario, Tauber, Christian, Tomé, António, Volkamer, Rainer, Wagner, Andrea C, Wagner, Robert, Wang, Mingyi, Ye, Penglin, Li, Haiyan, Huang, Wei, Qi, Ximeng, Lou, Sijia, Liu, Tengyu, Chi, Xuguang, Dommen, Josef, Baltensperger, Urs, Haddad, Imad El, Kirkby, Jasper, Worsnop, Douglas, Kulmala, Markku, Donahue, Neil M, Ehn, Mikael, Ding, Aijun
Lenguaje:eng
Publicado: 2023
Materias:
Acceso en línea:https://dx.doi.org/10.1038/s41467-023-39066-4
http://cds.cern.ch/record/2862114
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author Nie, Wei
Yan, Chao
Yang, Liwen
Roldin, Pontus
Liu, Yuliang
Vogel, Alexander L
Molteni, Ugo
Stolzenburg, Dominik
Finkenzeller, Henning
Amorim, Antonio
Bianchi, Federico
Curtius, Joachim
Dada, Lubna
Draper, Danielle C
Duplissy, Jonathan
Hansel, Armin
He, Xu-Cheng
Hofbauer, Victoria
Jokinen, Tuija
Kim, Changhyuk
Lehtipalo, Katrianne
Nichman, Leonid
Mauldin, Roy L
Makhmutov, Vladimir
Mentler, Bernhard
Mizelli-Ojdanic, Andrea
Petäjä, Tuukka
Quéléver, Lauriane L J
Schallhart, Simon
Simon, Mario
Tauber, Christian
Tomé, António
Volkamer, Rainer
Wagner, Andrea C
Wagner, Robert
Wang, Mingyi
Ye, Penglin
Li, Haiyan
Huang, Wei
Qi, Ximeng
Lou, Sijia
Liu, Tengyu
Chi, Xuguang
Dommen, Josef
Baltensperger, Urs
Haddad, Imad El
Kirkby, Jasper
Worsnop, Douglas
Kulmala, Markku
Donahue, Neil M
Ehn, Mikael
Ding, Aijun
author_facet Nie, Wei
Yan, Chao
Yang, Liwen
Roldin, Pontus
Liu, Yuliang
Vogel, Alexander L
Molteni, Ugo
Stolzenburg, Dominik
Finkenzeller, Henning
Amorim, Antonio
Bianchi, Federico
Curtius, Joachim
Dada, Lubna
Draper, Danielle C
Duplissy, Jonathan
Hansel, Armin
He, Xu-Cheng
Hofbauer, Victoria
Jokinen, Tuija
Kim, Changhyuk
Lehtipalo, Katrianne
Nichman, Leonid
Mauldin, Roy L
Makhmutov, Vladimir
Mentler, Bernhard
Mizelli-Ojdanic, Andrea
Petäjä, Tuukka
Quéléver, Lauriane L J
Schallhart, Simon
Simon, Mario
Tauber, Christian
Tomé, António
Volkamer, Rainer
Wagner, Andrea C
Wagner, Robert
Wang, Mingyi
Ye, Penglin
Li, Haiyan
Huang, Wei
Qi, Ximeng
Lou, Sijia
Liu, Tengyu
Chi, Xuguang
Dommen, Josef
Baltensperger, Urs
Haddad, Imad El
Kirkby, Jasper
Worsnop, Douglas
Kulmala, Markku
Donahue, Neil M
Ehn, Mikael
Ding, Aijun
author_sort Nie, Wei
collection CERN
description The interaction between nitrogen monoxide (NO) and organic peroxy radicals (RO$_{2}$) greatly impacts the formation of highly oxygenated organic molecules (HOM), the key precursors of secondary organic aerosols. It has been thought that HOM production can be significantly suppressed by NO even at low concentrations. Here, we perform dedicated experiments focusing on HOM formation from monoterpenes at low NO concentrations (0 – 82 pptv). We demonstrate that such low NO can enhance HOM production by modulating the RO$_{2}$ loss and favoring the formation of alkoxy radicals that can continue to autoxidize through isomerization. These insights suggest that HOM yields from typical boreal forest emissions can vary between 2.5%-6.5%, and HOM formation will not be completely inhibited even at high NO concentrations. Our findings challenge the notion that NO monotonically reduces HOM yields by extending the knowledge of RO$_{2}$-NO interactions to the low-NO regime. This represents a major advance towards an accurate assessment of HOM budgets, especially in low-NO environments, which prevails in the pre-industrial atmosphere, pristine areas, and the upper boundary layer.
id cern-2862114
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2023
record_format invenio
spelling cern-28621142023-06-16T19:24:24Zdoi:10.1038/s41467-023-39066-4http://cds.cern.ch/record/2862114engNie, WeiYan, ChaoYang, LiwenRoldin, PontusLiu, YuliangVogel, Alexander LMolteni, UgoStolzenburg, DominikFinkenzeller, HenningAmorim, AntonioBianchi, FedericoCurtius, JoachimDada, LubnaDraper, Danielle CDuplissy, JonathanHansel, ArminHe, Xu-ChengHofbauer, VictoriaJokinen, TuijaKim, ChanghyukLehtipalo, KatrianneNichman, LeonidMauldin, Roy LMakhmutov, VladimirMentler, BernhardMizelli-Ojdanic, AndreaPetäjä, TuukkaQuéléver, Lauriane L JSchallhart, SimonSimon, MarioTauber, ChristianTomé, AntónioVolkamer, RainerWagner, Andrea CWagner, RobertWang, MingyiYe, PenglinLi, HaiyanHuang, WeiQi, XimengLou, SijiaLiu, TengyuChi, XuguangDommen, JosefBaltensperger, UrsHaddad, Imad ElKirkby, JasperWorsnop, DouglasKulmala, MarkkuDonahue, Neil MEhn, MikaelDing, AijunNO at low concentration can enhance the formation of highly oxygenated biogenic molecules in the atmospherePhysics in GeneralThe interaction between nitrogen monoxide (NO) and organic peroxy radicals (RO$_{2}$) greatly impacts the formation of highly oxygenated organic molecules (HOM), the key precursors of secondary organic aerosols. It has been thought that HOM production can be significantly suppressed by NO even at low concentrations. Here, we perform dedicated experiments focusing on HOM formation from monoterpenes at low NO concentrations (0 – 82 pptv). We demonstrate that such low NO can enhance HOM production by modulating the RO$_{2}$ loss and favoring the formation of alkoxy radicals that can continue to autoxidize through isomerization. These insights suggest that HOM yields from typical boreal forest emissions can vary between 2.5%-6.5%, and HOM formation will not be completely inhibited even at high NO concentrations. Our findings challenge the notion that NO monotonically reduces HOM yields by extending the knowledge of RO$_{2}$-NO interactions to the low-NO regime. This represents a major advance towards an accurate assessment of HOM budgets, especially in low-NO environments, which prevails in the pre-industrial atmosphere, pristine areas, and the upper boundary layer.oai:cds.cern.ch:28621142023
spellingShingle Physics in General
Nie, Wei
Yan, Chao
Yang, Liwen
Roldin, Pontus
Liu, Yuliang
Vogel, Alexander L
Molteni, Ugo
Stolzenburg, Dominik
Finkenzeller, Henning
Amorim, Antonio
Bianchi, Federico
Curtius, Joachim
Dada, Lubna
Draper, Danielle C
Duplissy, Jonathan
Hansel, Armin
He, Xu-Cheng
Hofbauer, Victoria
Jokinen, Tuija
Kim, Changhyuk
Lehtipalo, Katrianne
Nichman, Leonid
Mauldin, Roy L
Makhmutov, Vladimir
Mentler, Bernhard
Mizelli-Ojdanic, Andrea
Petäjä, Tuukka
Quéléver, Lauriane L J
Schallhart, Simon
Simon, Mario
Tauber, Christian
Tomé, António
Volkamer, Rainer
Wagner, Andrea C
Wagner, Robert
Wang, Mingyi
Ye, Penglin
Li, Haiyan
Huang, Wei
Qi, Ximeng
Lou, Sijia
Liu, Tengyu
Chi, Xuguang
Dommen, Josef
Baltensperger, Urs
Haddad, Imad El
Kirkby, Jasper
Worsnop, Douglas
Kulmala, Markku
Donahue, Neil M
Ehn, Mikael
Ding, Aijun
NO at low concentration can enhance the formation of highly oxygenated biogenic molecules in the atmosphere
title NO at low concentration can enhance the formation of highly oxygenated biogenic molecules in the atmosphere
title_full NO at low concentration can enhance the formation of highly oxygenated biogenic molecules in the atmosphere
title_fullStr NO at low concentration can enhance the formation of highly oxygenated biogenic molecules in the atmosphere
title_full_unstemmed NO at low concentration can enhance the formation of highly oxygenated biogenic molecules in the atmosphere
title_short NO at low concentration can enhance the formation of highly oxygenated biogenic molecules in the atmosphere
title_sort no at low concentration can enhance the formation of highly oxygenated biogenic molecules in the atmosphere
topic Physics in General
url https://dx.doi.org/10.1038/s41467-023-39066-4
http://cds.cern.ch/record/2862114
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