Inverse temperature dependence of Henry's law coefficients for volatile organic compounds in supercooled water

被引:10
作者
Sieg, Karsten [1 ]
Starokozhev, Elena [1 ]
Schmidt, Martin U. [2 ]
Puettmann, Wilhelm [1 ]
机构
[1] Goethe Univ Frankfurt, Inst Atmospher & Environm Sci, Dept Analyt Environm Chem, D-60438 Frankfurt, Germany
[2] Goethe Univ Frankfurt, Dept Inorgan & Analyt Chem, D-60438 Frankfurt, Germany
关键词
BTEX; Supercooled water; Ice; Gas phase; Partitioning coefficient; SOLID-PHASE MICROEXTRACTION; BUTYL ETHER MTBE; AROMATIC-HYDROCARBONS; STATIC HEADSPACE; ICE SURFACES; LOCAL ORDER; FREE-ENERGY; CONSTANT; SNOW; VAPORS;
D O I
10.1016/j.chemosphere.2009.06.028
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Upon supercooling, water expels volatile organic compounds (VOC), and Henry's law coefficients are increasing concomitant with decreasing temperature. This unexpected observation was found by measuring the VOC partitioning between supercooled water and gas phase in the temperature range from -5 degrees C to -15 degrees C for benzene, toluene, ethlybenzene. m-, p-, o-xylenes (BTEX), methyl tert-butyl ether (MTBE) and ethyl tert-butyl ether (ETBE). Aqueous standard solutions were analyzed using a static head-space method in combination with gas chromatography/mass spectrometry (GC/MS). Dimensionless Henry's law coefficients (K-AW) were calculated from measurements of the concentration of the VOCs in the headspace above the standard solutions at temperatures between -25 degrees C and 25 degrees C. The results show that the well known temperature dependence of Henry's law coefficients at temperatures above 0 degrees C is inversed upon decreasing the temperature below 0 degrees C and formation of supercooled water while decreasing the temperature to -15 degrees C. Upon further decrease of the temperature to -25 degrees C freezing of the supercooled water occurs. K-AW values increase from 0.092 (benzene), 0.099 (toluene), 0.098 (ethylbenzene), 0.117 (m/p-xylene), 0.076 (o-xylene), 0.012 (MTBE) and 0.014 (ETBE) at 5 degrees C to 0.298 (benzene), 0.498 (toluene), 0.944 (ethylbenzene), 0.327 (m/p-xylene), 0.342 (o-xylene), 0.029 (MTBE) and 0.041 (ME) at -25 degrees C, respectively. Inversion of Henry coefficients upon cooling the aqueous solutions to temperatures below 0 degrees C is explained by the increasing formation of ice-like clusters in the water below 0 degrees C. The VOC are expelled from these clusters resulting in enhanced VOC concentrations in the gas phase upon supercooling. Formation of ice upon further cooling to -25 degrees C results in a further increase of the VOC concentrations in the gas phase above the ice. The findings have implications for the partitioning of VOC in clouds between the gas phase, supercooled water droplets, aerosol particles and ice. (C) 2009 Elsevier Ltd. All rights reserved.
引用
收藏
页码:8 / 14
页数:7
相关论文
共 50 条
[31]   Detection of volatile organic sulfur compounds in water by headspace gas chromatography and membrane inlet mass spectrometry [J].
Ojala, M ;
Ketola, R ;
Mansikka, T ;
Kotiaho, T ;
Kostiainen, R .
HRC-JOURNAL OF HIGH RESOLUTION CHROMATOGRAPHY, 1997, 20 (03) :165-169
[32]   Uptake Coefficients of Some Volatile Organic Compounds by Soot and Their Application in Understanding Particulate Matter Evolution in Aircraft Engine Exhaust Plumes [J].
Yu, Zhenhong ;
Liscinsky, David S. ;
True, Bruce ;
Peck, Jay ;
Jennings, Archer C. ;
Wong, Hsi-Wu ;
Jun, Mina ;
Franklin, Jonathan ;
Herndon, Scott C. ;
Waitz, Ian A. ;
Miake-Lye, Richard C. .
JOURNAL OF ENGINEERING FOR GAS TURBINES AND POWER-TRANSACTIONS OF THE ASME, 2014, 136 (12)
[33]   Development of a method for profiling of volatile organic compounds to monitor heat stress in hot water dipped apples [J].
Himmelboe, M. ;
Luca, A. ;
de Paulo Rocha, R. ;
Bertelsen, M. G. ;
Edelenbos, M. .
III INTERNATIONAL SYMPOSIUM ON POSTHARVEST PATHOLOGY: USING SCIENCE TO INCREASE FOOD AVAILABILITY, 2016, 1144 :341-347
[34]   Analysis of volatile organic compounds in environmental water samples and soil gas by solid-phase microextraction [J].
Nilsson, T ;
Montanarella, L ;
Baglio, D ;
Tilio, R ;
Bidoglio, G ;
Facchetti, S .
INTERNATIONAL JOURNAL OF ENVIRONMENTAL ANALYTICAL CHEMISTRY, 1998, 69 (03) :217-226
[35]   Assessment of PDMS-Water Partition Coefficients: Implications for Passive Environmental Sampling of Hydrophobic Organic Compounds [J].
Difilippo, Erica L. ;
Eganhouse, Robert P. .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2010, 44 (18) :6917-6925
[36]   Activity Coefficients at Infinite Dilution of Organic Compounds in Trihexyl(tetradecyl)phosphonium Bis(trifluoromethylsulfonyl)imide Using Inverse Gas Chromatography [J].
Revelli, Anne-Laure ;
Sprunger, Laura M. ;
Gibbs, Jennifer ;
Acree, William E., Jr. ;
Baker, Gary A. ;
Mutelet, Fabrice .
JOURNAL OF CHEMICAL AND ENGINEERING DATA, 2009, 54 (03) :977-985
[37]   Characterization of volatile compounds and organic acids in ultra-high-temperature milk packaged in tetra brik cartons [J].
Dursun, Ahmet ;
Guler, Zehra ;
Sekerli, Yunus Emre .
INTERNATIONAL JOURNAL OF FOOD PROPERTIES, 2017, 20 (07) :1511-1521
[38]   Catalysis Removal of Indoor Volatile Organic Compounds in Room Temperature: From Photocatalysis to Active Species Assistance Catalysis [J].
Jiang, Zhi ;
Chen, MingXia ;
Shi, Jianwei ;
Yuan, Jian ;
Shangguan, Wenfeng .
CATALYSIS SURVEYS FROM ASIA, 2015, 19 (01) :1-16
[39]   Distributions of the particle/gas and dust/gas partition coefficients for seventy-two semi-volatile organic compounds in indoor environment [J].
Wei, Wenjuan ;
Mandin, Corinne ;
Blanchard, Olivier ;
Mercier, Fabien ;
Pelletier, Maud ;
Le Bot, Barbara ;
Glorennec, Philippe ;
Ramalho, Olivier .
CHEMOSPHERE, 2016, 153 :212-219
[40]   Determination of volatile organic compounds in water using ultrasound-assisted emulsification microextraction followed by gas chromatography [J].
Leong, Mei-I. ;
Huang, Shang-Da .
JOURNAL OF SEPARATION SCIENCE, 2012, 35 (5-6) :688-694