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Competitive Adsorption of Sulfolane and Thiolane on Clay Materials
Korean Journal of Chemical Engineering, March 1999, 16(2), 215-220(6), 10.1007/BF02706839
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Abstract
Groundwater samples directly beneath a waste disposal site have been shown to contain a higher concentration of sulfolane and a relatively low concentration of thiolane. The sulfolane is a source compound of thiolane, a reduced from of sulfolane. In subsequent analyses of groundwater samples, these compounds have been detected from all of the monitoring wells in the study area. Since these compounds are present together in an aquifer, a possible competition, that can happen in such a system has been investigated. Thiolane is a nonpolar heterocyclic organic compound whereas sulfolane is a weakly acidic dipolar solvent. As expected, thiolane adsorbs more strongly onto clay than sulfolane in a single solute system. For regression of bisolute system using Matlab to obtain Q (maximum number of moles of solute adsorbed per unit weight of adsorbent), k1, (constants related to the energy of adsorption for sulfolane), and k1, (constants related to the energy of adsorption for thiolane), the k1 value (sulfolane) is smaller than the k2, value (thiolane) which reflects that thiolane is more strongly adsorbed than sulfolane. This is strongly consistent with the result obtained from single solute system. The Q for the sulfolane and combined data is the same that indicates that the sulfolane data is dominantly fitted because the concentrations of surfolane are much greater than those of thiolane in the experiments. In combined data regression, the suppression of sulfolane adsorption on clay was also observed by the presence of thiolane.
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References
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Gutsche CD, Pasto DJ, "Fundamentals of Organic Chemistry," Prentice-Hall (1975)
Karickhoff SW, J. Hydraulic Eng., 110, 707 (1984)
Kirk-Othmer, "Encyclopedia of Chemical Technology," 3rd ed., John Wiley & Sons (1983)
Lawrence J, Parsons R, J. Phys. Chem., 73, 3577 (1969)
Lorprayoon V, Condrate RA, Clays Clay Minerals, 29, 71 (1981)
Lorprayoon V, Condrate RA, Clays Clay Minerals, 31, 43 (1983)
MacEwan DMC, Trans. Faraday Soc., 44, 349 (1948)
Morrison RT, Boyd RN, "Organic Chemistry," 5th ed., 1987 (1987)
Moschandreas DJ, Jones D, Martinus J, "Detection and Recognition Threshold Values of Odorants Used in the Odorization of Natural Gas," The 75th Annual Meeting of the Air Pollution Control Association, New Orleans, Louisiana, June 20-25, 82-48.4 (1982)
Schmidt CE, Meyer-Schmidt JK, "Assessment, Monitoring from a Superfund Site Remedial Action," The 78th Annual Meeting of the Air Pollution Control Association, Detroit, Michigan, June 20-25, 85-66.2 (1985)
Schrementi J, Meganathan R, "Tetrahydrothiophene 1-Oxide as an Electron Acceptor for Anaerobic Growth of Bacteria," Abstracts of the Annual Meeting of the American Society for Microbiology, The 86th Annual Meeting, Washington, D.C., March 23-28, K-128 (1986)
Spangler CW, "Organic Chemistry," Prentice-Hall Inc., Englewood Cliffs, New Jersey (1980)
Sivastava SK, Tyagi R, Water Res., 29, 483 (1995)
Ying WC, Hannan SC, Tucker ME, Friedrich EA, Lin CY, "Successful Application of Biological Activated Carbon Process for Removing Sulfolane from Groundwater," 49th Proc. Ind. Waste Conf., 149 (1995)
Zhu Z, Sun M, Li Z, Yang Z, Zhang T, Heng Z, Xiao B, Li Q, Peng Q, Huaxi Yike Daxue Xuebao, 18, 376 (1987)
Zinder SH, Brock TD, Arch. Microbial., 116, 35 (1978)
Zinder SH, Brock TD, J. General Microbiol., 105, 335 (1978)