A Significant Role for Nitrate and Peroxide Groups on Indoor Secondary Organic Aerosol

被引:45
作者
Carslaw, Nicola [1 ]
Mota, Tiago [1 ]
Jenkin, Michael E. [2 ]
Barley, Mark H. [3 ]
McFiggans, Gordon [3 ]
机构
[1] Univ York, Dept Environm, York YO10 5DD, N Yorkshire, England
[2] Atmospher Chem Serv, Okehampton EX20 1FB, Devon, England
[3] Univ Manchester, Ctr Atmospher Sci, Sch Earth Environm & Atmospher Sci, Manchester, Lancs, England
关键词
PRESSURE ESTIMATION METHODS; MASTER CHEMICAL MECHANISM; PURE COMPONENT PROPERTIES; MCM V3 PART; ALPHA-PINENE; D-LIMONENE; TROPOSPHERIC DEGRADATION; VAPOR-PRESSURE; OZONE/LIMONENE REACTIONS; CLEANING PRODUCTS;
D O I
10.1021/es301350x
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
This paper reports indoor secondary organic aerosol, SOA, composition based on the results from an improved model for indoor air chemistry. The model uses a detailed chemical mechanism that is near-explicit to describe the gas-phase degradation of relevant indoor VOC species. In addition, gas-to-particle partitioning is included for oxygenated products formed from the degradation of limonene, the most ubiquitous terpenoid species in the indoor environment. The detail inherent in the chemical mechanism permits the indoor SOA composition to be reported in greater detail than currently possible using experimental techniques. For typical indoor conditions in the suburban UK, SOA concentrations are similar to 1 mu g m(-3) and dominated by nitrated material (similar to 85%), with smaller contributions from peroxide (12%), carbonyl (3%), and acidic (1%) material. During cleaning activities, SOA concentrations can reach 20 mu g m(-3) with the composition dominated by peroxide material (73%), with a smaller contribution from nitrated material (21%). The relative importance of these different moieties depends crucially (in order) on the outdoor concentration of O-3, the deposition rates employed and the scaling factor value applied to the partitioning coefficient. There are currently few studies that report observation of aerosol composition indoors, and most of these have been carried out under conditions that are not directly relevant. This study highlights the need to investigate SOA composition in real indoor environments. Further, there is a need to measure deposition rates for key indoor air species on relevant indoor surfaces and to reduce the uncertainties that still exist in gas-to-particle phase parametrization for both indoor and outdoor air chemistry models.
引用
收藏
页码:9290 / 9298
页数:9
相关论文
共 68 条
[1]   Relative contribution of outdoor and indoor particle sources to indoor concentrations [J].
Abt, E ;
Suh, HH ;
Catalano, P ;
Koutrakis, P .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2000, 34 (17) :3579-3587
[2]   Generation of sub-micron particles and secondary pollutants from building materials by ozone reaction [J].
Aoki, Taisuke ;
Tanabe, Shin-ichi .
ATMOSPHERIC ENVIRONMENT, 2007, 41 (15) :3139-3150
[3]   Atmospheric degradation of volatile organic compounds [J].
Atkinson, R ;
Arey, J .
CHEMICAL REVIEWS, 2003, 103 (12) :4605-4638
[4]   Modelling the evolution of organic carbon during its gas-phase tropospheric oxidation: development of an explicit model based on a self generating approach [J].
Aumont, B ;
Szopa, S ;
Madronich, S .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2005, 5 :2497-2517
[5]   Sensitivities of the absorptive partitioning model of secondary organic aerosol formation to the inclusion of water [J].
Barley, M. ;
Topping, D. O. ;
Jenkin, M. E. ;
McFiggans, G. .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2009, 9 (09) :2919-2932
[6]   The critical assessment of vapour pressure estimation methods for use in modelling the formation of atmospheric organic aerosol [J].
Barley, M. H. ;
McFiggans, G. .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2010, 10 (02) :749-767
[7]   Time-resolved molecular characterization of limonene/ozone aerosol using high-resolution electrospray ionization mass spectrometry [J].
Bateman, Adam P. ;
Nizkorodov, Sergey A. ;
Laskin, Julia ;
Laskin, Alexander .
PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2009, 11 (36) :7931-7942
[8]   Development of a detailed chemical mechanism (MCMv3.1) for the atmospheric oxidation of aromatic hydrocarbons [J].
Bloss, C ;
Wagner, V ;
Jenkin, ME ;
Volkamer, R ;
Bloss, WJ ;
Lee, JD ;
Heard, DE ;
Wirtz, K ;
Martin-Reviejo, M ;
Rea, G ;
Wenger, JC ;
Pilling, MJ .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2005, 5 :641-664
[9]   Solid state and sub-cooled liquid vapour pressures of cyclic aliphatic dicarboxylic acids [J].
Booth, A. M. ;
Montague, W. J. ;
Barley, M. H. ;
Topping, D. O. ;
McFiggans, G. ;
Garforth, A. ;
Percival, C. J. .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2011, 11 (02) :655-665
[10]   A new detailed chemical model for indoor air pollution [J].
Carslaw, Nicola .
ATMOSPHERIC ENVIRONMENT, 2007, 41 (06) :1164-1179