Cargando…

On the implications of aerosol liquid water and phase separation for organic aerosol mass

Organic compounds and liquid water are major aerosol constituents in the southeast United States (SE US). Water associated with inorganic constituents (inorganic water) can contribute to the partitioning medium for organic aerosol when relative humidities or organic matter to organic carbon (OM/OC)...

Descripción completa

Detalles Bibliográficos
Autores principales: Pye, Havala O. T., Murphy, Benjamin N., Xu, Lu, Ng, Nga L., Carlton, Annmarie G., Guo, Hongyu, Weber, Rodney, Vasilakos, Petros, Appel, K. Wyat, Budisulistiorini, Sri Hapsari, Surratt, Jason D., Nenes, Athanasios, Hu, Weiwei, Jimenez, Jose L., Isaacman-VanWertz, Gabriel, Misztal, Pawel K., Goldstein, Allen H.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6104851/
https://www.ncbi.nlm.nih.gov/pubmed/30147709
http://dx.doi.org/10.5194/acp-17-343-2017
_version_ 1783349561956237312
author Pye, Havala O. T.
Murphy, Benjamin N.
Xu, Lu
Ng, Nga L.
Carlton, Annmarie G.
Guo, Hongyu
Weber, Rodney
Vasilakos, Petros
Appel, K. Wyat
Budisulistiorini, Sri Hapsari
Surratt, Jason D.
Nenes, Athanasios
Hu, Weiwei
Jimenez, Jose L.
Isaacman-VanWertz, Gabriel
Misztal, Pawel K.
Goldstein, Allen H.
author_facet Pye, Havala O. T.
Murphy, Benjamin N.
Xu, Lu
Ng, Nga L.
Carlton, Annmarie G.
Guo, Hongyu
Weber, Rodney
Vasilakos, Petros
Appel, K. Wyat
Budisulistiorini, Sri Hapsari
Surratt, Jason D.
Nenes, Athanasios
Hu, Weiwei
Jimenez, Jose L.
Isaacman-VanWertz, Gabriel
Misztal, Pawel K.
Goldstein, Allen H.
author_sort Pye, Havala O. T.
collection PubMed
description Organic compounds and liquid water are major aerosol constituents in the southeast United States (SE US). Water associated with inorganic constituents (inorganic water) can contribute to the partitioning medium for organic aerosol when relative humidities or organic matter to organic carbon (OM/OC) ratios are high such that separation relative humidities (SRH) are below the ambient relative humidity (RH). As OM/OC ratios in the SE US are often between 1.8 and 2.2, organic aerosol experiences both mixing with inorganic water and separation from it. Regional chemical transport model simulations including inorganic water (but excluding water uptake by organic compounds) in the partitioning medium for secondary organic aerosol (SOA) when RH > SRH led to increased SOA concentrations,· particularly at night. Water uptake to the organic phase resulted in even greater SOA concentrations as a result of a positive feedback in which water uptake increased SOA, which further increased aerosol water and organic aerosol. Aerosol properties· such as the OM/OC and hygroscopicity parameter (κ(org)), were captured well by the model compared with measurements during the Southern Oxidant and Aerosol Study (SOAS) 2013. Organic nitrates from monoterpene oxidation were predicted to be the least water-soluble semivolatile species in the model, but most biogenically derived semivolatile species in the Community Multiscale Air Quality (CMAQ) model were highly water soluble and expected to contribute to water-soluble organic carbon (WSOC). Organic aerosol and SOA precursors were abundant at night, but additional improvements in daytime organic aerosol are needed to close the model–measurement gap. When taking into account deviations from ideality, including both inorganic (when RH > SRH) and organic water in the organic partitioning medium reduced the mean bias in SOA for routine monitoring networks and improved model performance compared to observations from SOAS. Property updates from this work will be released in CMAQ v5.2.
format Online
Article
Text
id pubmed-6104851
institution National Center for Biotechnology Information
language English
publishDate 2017
record_format MEDLINE/PubMed
spelling pubmed-61048512018-08-22 On the implications of aerosol liquid water and phase separation for organic aerosol mass Pye, Havala O. T. Murphy, Benjamin N. Xu, Lu Ng, Nga L. Carlton, Annmarie G. Guo, Hongyu Weber, Rodney Vasilakos, Petros Appel, K. Wyat Budisulistiorini, Sri Hapsari Surratt, Jason D. Nenes, Athanasios Hu, Weiwei Jimenez, Jose L. Isaacman-VanWertz, Gabriel Misztal, Pawel K. Goldstein, Allen H. Atmos Chem Phys Article Organic compounds and liquid water are major aerosol constituents in the southeast United States (SE US). Water associated with inorganic constituents (inorganic water) can contribute to the partitioning medium for organic aerosol when relative humidities or organic matter to organic carbon (OM/OC) ratios are high such that separation relative humidities (SRH) are below the ambient relative humidity (RH). As OM/OC ratios in the SE US are often between 1.8 and 2.2, organic aerosol experiences both mixing with inorganic water and separation from it. Regional chemical transport model simulations including inorganic water (but excluding water uptake by organic compounds) in the partitioning medium for secondary organic aerosol (SOA) when RH > SRH led to increased SOA concentrations,· particularly at night. Water uptake to the organic phase resulted in even greater SOA concentrations as a result of a positive feedback in which water uptake increased SOA, which further increased aerosol water and organic aerosol. Aerosol properties· such as the OM/OC and hygroscopicity parameter (κ(org)), were captured well by the model compared with measurements during the Southern Oxidant and Aerosol Study (SOAS) 2013. Organic nitrates from monoterpene oxidation were predicted to be the least water-soluble semivolatile species in the model, but most biogenically derived semivolatile species in the Community Multiscale Air Quality (CMAQ) model were highly water soluble and expected to contribute to water-soluble organic carbon (WSOC). Organic aerosol and SOA precursors were abundant at night, but additional improvements in daytime organic aerosol are needed to close the model–measurement gap. When taking into account deviations from ideality, including both inorganic (when RH > SRH) and organic water in the organic partitioning medium reduced the mean bias in SOA for routine monitoring networks and improved model performance compared to observations from SOAS. Property updates from this work will be released in CMAQ v5.2. 2017 /pmc/articles/PMC6104851/ /pubmed/30147709 http://dx.doi.org/10.5194/acp-17-343-2017 Text en Atmospheric Chemistry and Physics http//creativecommons.org/licenses/by/4.0/.
spellingShingle Article
Pye, Havala O. T.
Murphy, Benjamin N.
Xu, Lu
Ng, Nga L.
Carlton, Annmarie G.
Guo, Hongyu
Weber, Rodney
Vasilakos, Petros
Appel, K. Wyat
Budisulistiorini, Sri Hapsari
Surratt, Jason D.
Nenes, Athanasios
Hu, Weiwei
Jimenez, Jose L.
Isaacman-VanWertz, Gabriel
Misztal, Pawel K.
Goldstein, Allen H.
On the implications of aerosol liquid water and phase separation for organic aerosol mass
title On the implications of aerosol liquid water and phase separation for organic aerosol mass
title_full On the implications of aerosol liquid water and phase separation for organic aerosol mass
title_fullStr On the implications of aerosol liquid water and phase separation for organic aerosol mass
title_full_unstemmed On the implications of aerosol liquid water and phase separation for organic aerosol mass
title_short On the implications of aerosol liquid water and phase separation for organic aerosol mass
title_sort on the implications of aerosol liquid water and phase separation for organic aerosol mass
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6104851/
https://www.ncbi.nlm.nih.gov/pubmed/30147709
http://dx.doi.org/10.5194/acp-17-343-2017
work_keys_str_mv AT pyehavalaot ontheimplicationsofaerosolliquidwaterandphaseseparationfororganicaerosolmass
AT murphybenjaminn ontheimplicationsofaerosolliquidwaterandphaseseparationfororganicaerosolmass
AT xulu ontheimplicationsofaerosolliquidwaterandphaseseparationfororganicaerosolmass
AT ngngal ontheimplicationsofaerosolliquidwaterandphaseseparationfororganicaerosolmass
AT carltonannmarieg ontheimplicationsofaerosolliquidwaterandphaseseparationfororganicaerosolmass
AT guohongyu ontheimplicationsofaerosolliquidwaterandphaseseparationfororganicaerosolmass
AT weberrodney ontheimplicationsofaerosolliquidwaterandphaseseparationfororganicaerosolmass
AT vasilakospetros ontheimplicationsofaerosolliquidwaterandphaseseparationfororganicaerosolmass
AT appelkwyat ontheimplicationsofaerosolliquidwaterandphaseseparationfororganicaerosolmass
AT budisulistiorinisrihapsari ontheimplicationsofaerosolliquidwaterandphaseseparationfororganicaerosolmass
AT surrattjasond ontheimplicationsofaerosolliquidwaterandphaseseparationfororganicaerosolmass
AT nenesathanasios ontheimplicationsofaerosolliquidwaterandphaseseparationfororganicaerosolmass
AT huweiwei ontheimplicationsofaerosolliquidwaterandphaseseparationfororganicaerosolmass
AT jimenezjosel ontheimplicationsofaerosolliquidwaterandphaseseparationfororganicaerosolmass
AT isaacmanvanwertzgabriel ontheimplicationsofaerosolliquidwaterandphaseseparationfororganicaerosolmass
AT misztalpawelk ontheimplicationsofaerosolliquidwaterandphaseseparationfororganicaerosolmass
AT goldsteinallenh ontheimplicationsofaerosolliquidwaterandphaseseparationfororganicaerosolmass