Analytical Chemistry in a Drop. Solvent Extraction in a Microdrop
- 1 June 1996
- journal article
- research article
- Published by American Chemical Society (ACS) in Analytical Chemistry
- Vol. 68 (11), 1817-1821
- https://doi.org/10.1021/ac960145h
Abstract
An organic microdrop (∼1.3 μL) is suspended inside a flowing aqueous drop from which the analyte is extracted. The drop-in-drop system is achieved by a multitube assembly. The aqueous phase is continuously delivered to the outer drop and is aspirated away from the bottom meniscus of the drop. After the sampling/extraction period, a wash solution replaces the sample/reagent in the aqueous layer, resulting in a clear outer aqueous drop housing a colored organic drop containing the extracted material. This also results in an automatic backwash. The color intensity of the organic drop, related to the analyte concentration, is monitored by a light-emitting diode based absorbance detector. After the analytical cycle, the organic drop is removed and replaced by a new one. The performance of the system is illustrated with the determination of sodium dodecyl sulfate (a methylene blue active substance) extracted as an ion pair into chloroform. This unique microextraction system is simple and flexible, permits automated backwashing, consumes only microquantities of organic solvents, and is capable of being coupled with other analytical systems. This concept should prove valuable for preconcentration and matrix isolation in a microscale.Keywords
This publication has 15 references indexed in Scilit:
- Phase Discrimination in Continuous Liquid-Liquid Extraction with Diode Array Photometric DetectionAnalytical Chemistry, 1994
- Flow injection and solvent extraction with intelligent segment separation. Determination of quaternary ammonium ions by ion-pairingTalanta, 1992
- Design of a multi-channel dropping segmenter for liquid-liquid extraction continuous flow-injection analysisAnalytica Chimica Acta, 1991
- Centrifugal partition chromatography of palladium(II) and the influence of chemical kinetic factors on separation efficiencyAnalytical Chemistry, 1991
- Determination of octan-1-ol-water partition coefficients by flow-injection extraction without phase separationAnalytica Chimica Acta, 1991
- Application of a capillary flow cell to sophisticated flow-injection systemsAnalytica Chimica Acta, 1990
- Solvent extraction in continuous flow systems with intelligent zone samplingAnalytica Chimica Acta, 1989
- Determination of octanol/water partition coefficients by flow injection analysisAnalytica Chimica Acta, 1988
- Automated sample handling by extraction techniquesTrAC Trends in Analytical Chemistry, 1983
- Extraction based on the flow-injection principleAnalytica Chimica Acta, 1978