Literature DB >> 25321609

Measuring and modeling the salting-out effect in ammonium sulfate solutions.

Chen Wang1, Ying Duan Lei, Satoshi Endo, Frank Wania.   

Abstract

The presence of inorganic salts significantly influences the partitioning behavior of organic compounds between environmentally relevant aqueous phases, such as seawater or aqueous aerosol, and other, nonaqueous phases (gas phase, organic phase, etc.). In this study, salting-out coefficients (or Setschenow constants) (KS [M(-1)]) for 38 diverse neutral compounds in ammonium sulfate ((NH4)2SO4) solutions were measured using a shared headspace passive dosing method and a negligible depletion solid phase microextraction technique. The measured KS were all positive, varied from 0.216 to 0.729, and had standard errors in the range of 0.006-0.060. Compared to KS for sodium chloride (NaCl) in the literature, KS values for (NH4)2SO4 are always higher for the same compound, suggesting a higher salting-out effect of (NH4)2SO4. A polyparameter linear free energy relationship (pp-LFER) for predicting KS in (NH4)2SO4 solutions was generated using the experimental data for calibration. pp-LFER predicted KS agreed well with measured KS reported in the literature. KS for (NH4)2SO4 was also predicted using the quantum-chemical COSMOtherm software and the thermodynamic model AIOMFAC. While COSMOtherm generally overpredicted the experimental KS, predicted and experimental values were correlated. Therefore, a fitting factor needs to be applied when using the current version of COSMOtherm to predict KS. AIOMFAC tends to underpredict the measured KS((NH4)2SO4) but always overpredicts KS(NaCl). The prediction error is generally larger for KS(NaCl) than for KS((NH4)2SO4). AIOMFAC also predicted a dependence of KS on the salt concentrations, which is not observed in the experimental data. In order to demonstrate that the models developed and calibrated in this study can be applied to estimate Setschenow coefficients for atmospherically relevant compounds involved in secondary organic aerosol formation based on chemical structure alone, we predicted and compared KS for selected α-pinene oxidation products.

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Year:  2014        PMID: 25321609     DOI: 10.1021/es5035602

Source DB:  PubMed          Journal:  Environ Sci Technol        ISSN: 0013-936X            Impact factor:   9.028


  3 in total

1.  Increasing Isoprene Epoxydiol-to-Inorganic Sulfate Aerosol Ratio Results in Extensive Conversion of Inorganic Sulfate to Organosulfur Forms: Implications for Aerosol Physicochemical Properties.

Authors:  Matthieu Riva; Yuzhi Chen; Yue Zhang; Ziying Lei; Nicole E Olson; Hallie C Boyer; Shweta Narayan; Lindsay D Yee; Hilary S Green; Tianqu Cui; Zhenfa Zhang; Karsten Baumann; Mike Fort; Eric Edgerton; Sri H Budisulistiorini; Caitlin A Rose; Igor O Ribeiro; Rafael L E Oliveira; Erickson O Dos Santos; Cristine M D Machado; Sophie Szopa; Yue Zhao; Eliane G Alves; Suzane S de Sá; Weiwei Hu; Eladio M Knipping; Stephanie L Shaw; Sergio Duvoisin Junior; Rodrigo A F de Souza; Brett B Palm; Jose-Luis Jimenez; Marianne Glasius; Allen H Goldstein; Havala O T Pye; Avram Gold; Barbara J Turpin; William Vizuete; Scot T Martin; Joel A Thornton; Cari S Dutcher; Andrew P Ault; Jason D Surratt
Journal:  Environ Sci Technol       Date:  2019-07-23       Impact factor: 9.028

2.  Surface reservoirs dominate dynamic gas-surface partitioning of many indoor air constituents.

Authors:  Chen Wang; Douglas B Collins; Caleb Arata; Allen H Goldstein; James M Mattila; Delphine K Farmer; Laura Ampollini; Peter F DeCarlo; Atila Novoselac; Marina E Vance; William W Nazaroff; Jonathan P D Abbatt
Journal:  Sci Adv       Date:  2020-02-19       Impact factor: 14.136

3.  Effect of salts on the solubility of ionic liquids in water: experimental and electrolyte Perturbed-Chain Statistical Associating Fluid Theory.

Authors:  Catarina M S S Neves; Christoph Held; Sultan Mohammad; Miko Schleinitz; João A P Coutinhoa; Mara G Freire
Journal:  Phys Chem Chem Phys       Date:  2015-12-21       Impact factor: 3.676

  3 in total

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