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  4. COSMO-RS and UNIFAC in prediction of micelle/water partition coefficients
 
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COSMO-RS and UNIFAC in prediction of micelle/water partition coefficients

Publikationstyp
Journal Article
Date Issued
2007-08-31
Sprache
English
Author(s)
Mokrushina, Liudmila  
Buggert, Matthias  
Smirnova, Irina  orcid-logo
Arlt, Wolfgang  
Schomäcker, Reinhard  
TORE-URI
http://hdl.handle.net/11420/12677
Journal
Industrial & engineering chemistry research  
Volume
46
Issue
20
Start Page
6501
End Page
6509
Citation
Industrial and Engineering Chemistry Research 46 (20): 6501-6509 (2007-09-26)
Publisher DOI
10.1021/ie0704849
Scopus ID
2-s2.0-35348977673
Publisher
American Chemical Society
Partitioning of active agents between polar and nonpolar phases has a key role in the early stage of drug and drug-carrier design in the pharmaceuticals industry, as well as for separation of products in biosynthesis. In the present paper, the group-contribution Universal Quasi-Chemical Functional-Group Activity Coefficient (UNIFAC) and the a priori Conductor-like Screening Model for Real Solvents (COSMO-RS) models are applied to predict micelle/water partition coefficients. The models allow predictions based only on the molecular structure. The practical implementation of the models is examined by studying several homologous series of organic solutes in aqueous solutions of non-ionic (polyethoxy alcohols) and ionic surfactants (sodium dodecyl sulfate (SDS)). Good quantitative agreement with experimental data from the literature has been achieved. Factors that seem to be important in the calculation and to influence the prediction results are discussed. Among these are interfacial contribution and conformation analysis. Compared to UNIFAC, the COSMO-RS method opens up new perspectives, because ionic components, steric isomers, and inorganics can be modeled.
DDC Class
540: Chemie
More Funding Information
The authors appreciate the financial support of DFG (SM 82/4-1).
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