Effects of Relative Humidity on Ozone and Secondary Organic Aerosol Formation from the Photooxidation of Benzene and Ethylbenzene

被引:92
作者
Jia, Long [1 ]
Xu, Yongfu [1 ]
机构
[1] Chinese Acad Sci, Inst Atmospher Phys, State Key Lab Atmospher Boundary Layer Phys & Atm, Beijing 100029, Peoples R China
基金
中国国家自然科学基金;
关键词
FUNCTIONAL-GROUPS; AROMATIC-HYDROCARBONS; HETEROGENEOUS REACTIONS; ATMOSPHERIC AEROSOLS; OLIGOMER FORMATION; PHASE REACTIONS; AIR-POLLUTION; RATE-CONSTANT; SMOG CHAMBER; M-XYLENE;
D O I
10.1080/02786826.2013.847269
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
The formation of ozone and secondary organic aerosol (SOA) from benzene-NO (x) and ethylbenzene-NOx irradiations was investigated under different levels of relative humidity (RH) in a smog chamber. In benzene and ethylbenzene irradiations, the intensity of the bands of OH, CO, CO, and COH from SOA samples all greatly increased with increasing RH. The major substances in SOA were determined to be carboxylic acids and glyoxal hydrates. It was also found that SOA contained aromatic products, and NO2- and ONO2-containing products. The results show that the increase in RH can greatly reduce the maximum O-3 by the transfer of NO2- and ONO2-containing products into the particle phase. During the process of evaporation, the lost substances from the collected SOA have similar structures for both benzene and ethylbenzene. This demonstrates that ethyl-containing substances are very stable and difficult to evaporate. For benzene, some of glyoxal hydrates were left to form COC- and CO-containing species like hemiacetal and acetal after evaporation, whereas for ethylbenzene, glyoxal favored cross reactions with ethylglyoxal during evaporation. Only a few species in SOA were released into the gas phase during evaporation while a large part of SOA remained, which is mainly composed of carboxylic acid. It is concluded that the aqueous radical reactions and the hydration from glyoxal can be enhanced under high RH conditions, which can irreversibly enhance the formation of SOA from both benzene and ethylbenzene. Copyright 2014 American Association for Aerosol Research
引用
收藏
页码:1 / 12
页数:12
相关论文
共 69 条
[1]   FOURIER-TRANSFORM INFRARED-SPECTROSCOPY OF AEROSOL COLLECTED IN A LOW-PRESSURE IMPACTOR (LPI/FTIR) - METHOD DEVELOPMENT AND FIELD CALIBRATION [J].
ALLEN, DT ;
PALEN, EJ ;
HAIMOV, MI ;
HERING, SV ;
YOUNG, JR .
AEROSOL SCIENCE AND TECHNOLOGY, 1994, 21 (04) :325-342
[2]   Phenol Groups in Northeastern US Submicrometer Aerosol Particles Produced from Seawater Sources [J].
Bahadur, Ranjit ;
Uplinger, Timothy ;
Russell, Lynn M. ;
Sive, Barkley C. ;
Cliff, Steven S. ;
Millet, Dylan B. ;
Goldstein, Allen ;
Bates, Timothy S. .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2010, 44 (07) :2542-2548
[3]   Secondary organic aerosol formation in cloud and fog droplets: a literature evaluation of plausibility [J].
Blando, JD ;
Turpin, BJ .
ATMOSPHERIC ENVIRONMENT, 2000, 34 (10) :1623-1632
[4]   Secondary organic aerosol formation from the photo-oxidation of benzene [J].
Borras, Esther ;
Antonio Tortajada-Genaro, Luis .
ATMOSPHERIC ENVIRONMENT, 2012, 47 :154-163
[5]   Atmospheric oxalic acid and SOA production from glyoxal: Results of aqueous photooxidation experiments [J].
Carlton, Annmarie G. ;
Turpin, Barbara J. ;
Altieri, Katye E. ;
Seitzinger, Sybil ;
Reff, Adam ;
Lim, Ho-Jin ;
Ervens, Barbara .
ATMOSPHERIC ENVIRONMENT, 2007, 41 (35) :7588-7602
[6]  
Carter WP L., 1997, ENV CHAMBER STUDIES
[7]   A new environmental chamber for evaluation of gas-phase chemical mechanisms and secondary aerosol formation [J].
Carter, WPL ;
Cocker, DR ;
Fitz, DR ;
Malkina, IL ;
Bumiller, K ;
Sauer, CG ;
Pisano, JT ;
Bufalino, C ;
Song, C .
ATMOSPHERIC ENVIRONMENT, 2005, 39 (40) :7768-7788
[8]   The effect of water on gas-particle partitioning of secondary organic aerosol:: II.: m-xylene and 1,3,5-trimethylbenzene photooxidation systems [J].
Cocker, DR ;
Mader, BT ;
Kalberer, M ;
Flagan, RC ;
Seinfeld, JH .
ATMOSPHERIC ENVIRONMENT, 2001, 35 (35) :6073-6085
[9]   State-of-the-art chamber facility for studying atmospheric aerosol chemistry [J].
Cocker, DR ;
Flagan, RC ;
Seinfeld, JH .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2001, 35 (12) :2594-2601
[10]   A method to quantify organic functional groups and inorganic compounds in ambient aerosols using attenuated total reflectance FTIR spectroscopy and multivariate chemometric techniques [J].
Coury, Charity ;
Dillner, Ann M. .
ATMOSPHERIC ENVIRONMENT, 2008, 42 (23) :5923-5932