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By B. Kuzmanovic
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2000, 72, 261-266. ; Hoffman, K. ; Rossi D. T. Semi-Automated 96-Well Liquid-Liquid Extraction for Quantitation of Drugs in Biological Fluids. J. Pharm. Biomed. Anal. 2000, 22, 131-138. (7) Bolden, R. ; Hoke, S. H. II; Eichhold, T. ; McCauley-Myers, D. ; Wehmeyer K. R. SemiAutomated Liquid-Liquid Back-Extraction in a 96-Well Format to Decrease Sample Preparation Time for the Determination of Dextromethorphan and Dextrorphan in Human Plasma. J. Chromatogr. B 2002, 772, 1-10. (8) Ruddick, C. Automation of Liquid-Liquid Extraction Processes.
18) Morachevskii, A. ; Sabinin, V. E. Solubility Diagrams for the Ternary Systems CaprolactamWater-Benzene, Caprolactam-Water-Carbon Tetrachloride and Caprolactam-WaterDichloroethane. J. App. Chem. (USSR) 1960, 33, 1775-1779. ; Sawinsky, J. Equilibria of the Ternary System Caprolactam /Water/ Organic Solvent, in the Liquid State. Period. Polytech. Chem. Eng. 1960, 4, 201-218. (20) de Haan, A. ; Niemann, S. H. Modelling Phase Equilibria in Industrial Caprolactam Recovery from Aqueous Ammonium Sulphate Solutions with Benzene.
Society of Chemical Industry: London, 2001, 1537-1542. 1 Introduction There are several reports on the use of chemical reactions for performing or improving the recovery/separation of aldehydes and ketones (carbonyl compounds). 3 However, no examples in the field of extraction are reported. In this chapter, we evaluate the use of aqueous solutions containing salts able to react reversibly with carbonyl groups, for the reactive extraction of aldehydes or ketones from an apolar organic solvent.