Identification of volatile organic compounds and their sources driving ozone and secondary organic aerosol formation in NE Spain

被引:5
作者
Veld, Marten in 't [1 ,2 ]
Seco, Roger [1 ]
Reche, Cristina [1 ]
Perez, Noemi [1 ]
Alastuey, Andres [1 ]
Portillo-Estrada, Miguel [3 ]
Janssens, Ivan A. [3 ]
Penuelas, Josep [4 ,5 ]
Fernandez-Martinez, Marcos [3 ,4 ,5 ]
Marchand, Nicolas [6 ]
Temime-Roussel, Brice [6 ]
Querol, Xavier [1 ]
Yanez-Serrano, Ana Maria [1 ,4 ,5 ]
机构
[1] IDAEA CSIC, Inst Environm Assessment & Water Res, Barcelona 08034, Spain
[2] Univ Politecn Cataluna, Dept Civil & Environm Engn, Barcelona 08034, Spain
[3] Univ Antwerp, Dept Biol, PLECO Plants & Ecosyst, Antwerp, Belgium
[4] CREAF, E-08193 Catalonia, Cerdanyola Del, Spain
[5] UAB, Global Ecol Unit, CSIC, CREAF, Catalonia, Cerdanyola Del, Spain
[6] Aix Marseille Univ, CNRS, LCE, Marseille, France
关键词
VOC; PTR-MS; Source apportionment; PMF; OFP; SOAP; WESTERN MEDITERRANEAN BASIN; MIXING RATIOS; SOURCE APPORTIONMENT; PARTICULATE MATTER; CARBONYL-COMPOUNDS; BIOGENIC ISOPRENE; METROPOLITAN-AREA; URBAN ATMOSPHERE; COMPOUNDS VOCS; PTR-MS;
D O I
10.1016/j.scitotenv.2023.167159
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Volatile organic compounds (VOCs) play a crucial role in the formation of ozone (O3) and secondary organic aerosol (SOA). We conducted measurements of VOC ambient mixing ratios during both summer and winter at two stations: a Barcelona urban background station (BCN) and the Montseny rural background station (MSY). Subsequently, we employed positive matrix factorization (PMF) to analyze the VOC mixing ratios and identify their sources. Our analysis revealed five common sources: anthropogenic I (traffic & industries); anthropogenic II (traffic & biomass burning); isoprene oxidation; monoterpenes; long-lifetime VOCs. To assess the impact of these VOCs on the formation of secondary pollutants, we calculated the ozone formation potential (OFP) and secondary organic aerosol formation potential (SOAP) associated with each VOC. In conclusion, our study provides insights into the sources of VOCs and their contributions to the formation of ozone and SOA in NE Spain. The OFP was primarily influenced by anthropogenic aromatic compounds from the traffic & industries source at BCN (38-49 %) and during winter at MSY (34 %). In contrast, the summer OFP at MSY was primarily driven by biogenic contributions from monoterpenes and isoprene oxidation products (45 %). Acetaldehyde (10-35 %) and methanol (13-14 %) also made significant OFP contributions at both stations. Anthropogenic aromatic com-pounds originating from traffic, industries, and biomass burning played a dominant role (88-93 %) in SOA formation at both stations during both seasons. The only exception was during the summer at MSY, where monoterpenes became the primary driver of SOA formation (41 %). These findings emphasize the importance of considering both anthropogenic and biogenic VOCs in air quality management strategies.
引用
收藏
页数:20
相关论文
共 134 条
[1]  
AIRUSE, 2016, Biomass Burning in Southern Europe
[2]   Quantifying road dust resuspension in urban environment by Multilinear Engine: A comparison with PMF2 [J].
Amato, F. ;
Pandolfi, M. ;
Escrig, A. ;
Querol, X. ;
Alastuey, A. ;
Pey, J. ;
Perez, N. ;
Hopke, P. K. .
ATMOSPHERIC ENVIRONMENT, 2009, 43 (17) :2770-2780
[3]   AIRUSE-LIFE plus : a harmonized PM speciation and source apportionment in five southern European cities [J].
Amato, Fulvio ;
Alastuey, Andres ;
Karanasiou, Angeliki ;
Lucarelli, Franco ;
Nava, Silvia ;
Calzolai, Giulia ;
Severi, Mirko ;
Becagli, Silvia ;
Gianelle, Vorne L. ;
Colombi, Cristina ;
Alves, Celia ;
Custodio, Danilo ;
Nunes, Teresa ;
Cerqueira, Mario ;
Pio, Casimiro ;
Eleftheriadis, Konstantinos ;
Diapouli, Evangelia ;
Reche, Cristina ;
Cruz Minguillon, Maria ;
Manousakas, Manousos-Ioannis ;
Maggos, Thomas ;
Vratolis, Stergios ;
Harrison, Roy M. ;
Querol, Xavier .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2016, 16 (05) :3289-3309
[4]  
[Anonymous], 2019, Air Quality in Europe2019 Report. EEA Technical Report 10/2019, DOI DOI 10.2800/822355
[5]   Photodissociation of acetone: Atmospheric implications of temperature-dependent quantum yields [J].
Arnold, SR ;
Chipperfield, MP ;
Blitz, MA ;
Heard, DE ;
Pilling, MJ .
GEOPHYSICAL RESEARCH LETTERS, 2004, 31 (07) :L071101-4
[6]   Atmospheric degradation of volatile organic compounds [J].
Atkinson, R ;
Arey, J .
CHEMICAL REVIEWS, 2003, 103 (12) :4605-4638
[7]   KINETICS AND MECHANISMS OF THE GAS-PHASE REACTIONS OF OZONE WITH ORGANIC-COMPOUNDS UNDER ATMOSPHERIC CONDITIONS [J].
ATKINSON, R ;
CARTER, WPL .
CHEMICAL REVIEWS, 1984, 84 (05) :437-470
[8]   Global crop yield reductions due to surface ozone exposure: 2. Year 2030 potential crop production losses and economic damage under two scenarios of O3 pollution [J].
Avnery, Shiri ;
Mauzerall, Denise L. ;
Liu, Junfeng ;
Horowitz, Larry W. .
ATMOSPHERIC ENVIRONMENT, 2011, 45 (13) :2297-2309
[9]   How Should Forests Be Characterized in Regard to Human Health? Evidence from Existing Literature [J].
Bach Pages, Albert ;
Penuelas, Josep ;
Clara, Jana ;
Llusia, Joan ;
Lopez, Ferran Campillo I. ;
Maneja, Roser .
INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH, 2020, 17 (03)
[10]   An investigation into the traffic-related fraction of isoprene at an urban location [J].
Borbon, A ;
Fontaine, H ;
Veillerot, M ;
Locoge, N ;
Galloo, JC ;
Guillermo, R .
ATMOSPHERIC ENVIRONMENT, 2001, 35 (22) :3749-3760