Absorption of Hydrophobic Compounds into the Poly(dimethylsiloxane) Coating of Solid-Phase Microextraction Fibers: High Partition Coefficients and Fluorescence Microscopy Images
- 28 December 1999
- journal article
- research article
- Published by American Chemical Society (ACS) in Analytical Chemistry
- Vol. 72 (3) , 459-464
- https://doi.org/10.1021/ac990948f
Abstract
The use of solid-phase microextraction with poly(dimethylsiloxane) (PDMS)-coated glass fibers for the extraction and analysis of hydrophobic organic analytes is increasing. The literature on this topic is characterized by large discrepancies in partition coefficients and an uncertainty of whether highly hydrophobic analytes are retained by absorption into the fiber coating or by adsorption to the fiber surface. We applied a new method, which minimizes the impact of experimental artifacts, to determine PDMS water partition coefficients of 17 hydrophobic analytes including chlorinated benzenes, PCBs, PAHs, and p,p‘-DDE. These partition coefficients are several orders of magnitude higher than some reported values. Two observations strongly suggest that the retention of hydrophobic organic substances is governed by partitioning into the PDMS coating. (1) The partition coefficients are proportional with octanol/water partition coefficients. (2) The fluorescence of fluoranthene was observed to be homogeneously distributed within the polymer coating when studied by means of fluorescence microscopy. Implications of these findings for the application of solid-phase microextraction with respect to potential detection limits, with respect to biomimetic extraction, and with respect to measurements in multicompartment systems are discussed.Keywords
This publication has 11 references indexed in Scilit:
- Using Solid-Phase Microextraction To Determine Partition Coefficients to Humic Acids and Bioavailable Concentrations of Hydrophobic ChemicalsEnvironmental Science & Technology, 1998
- The effect of sample volume on quantitative analysis by solid phase microextraction Part 2.† Experimental verificationThe Analyst, 1998
- Solid-phase microextraction of volatile organic compounds estimation of the sorption equilibrium from the Kováts index, effect of salinity and humic acids and the study of the kinetics by the development of an “agitated/static layer” modelJournal of Chromatography A, 1997
- Solid Phase Microextraction for Determining the Distribution of Chemicals in Aqueous MatricesAnalytical Chemistry, 1997
- Effect of Sample Volume on Quantitative Analysis by Solid-phase MicroextractionPart 1. Theoretical ConsiderationsThe Analyst, 1997
- Solid phase microextraction with thermal desorption using fused silica optical fibersAnalytical Chemistry, 1990
- Determination of octanol/water partition coefficients for hydrophobic organic chemicals with the “slow‐stirring” methodEnvironmental Toxicology and Chemistry, 1989
- Partition equilibriums of nonionic organic compounds between soil organic matter and waterEnvironmental Science & Technology, 1983
- A Physical Concept of Soil-Water Equilibria for Nonionic Organic CompoundsScience, 1979
- Importance of Chain Length on Physicochemical and Crystalline Properties of Organic HomologsJournal of Pharmaceutical Sciences, 1972