Philip Zakaria, Miroslav Macka, Paul R Haddad
Index: J. Chromatogr. A. 997(1-2) , 207-18, (2003)
Full Text: HTML
The electrokinetic chromatographic (EKC) separation of a series of aromatic bases was achieved utilising an electrolyte system comprising an anionic soluble polymer (polyvinylsulfonic acid, PVS) and a neutral beta-cyclodextrin (beta-CD) as pseudo-stationary phases. The separation mechanism was based on a combination of electrophoresis, ion-exchange interactions with PVS, and hydrophobic interactions with beta-CD. The extent of each chromatographic interaction was independently variable, allowing for control of the separation selectivity of the system. The ion-exchange and the hydrophobic interactions could be varied by changing the PVS and the beta-CD concentrations, respectively. Additionally, mobilities of the bases could be controlled by varying pH, due to their large range of pKa values. The separation system was very robust with reproducibility of migration times being <2% RSD. The two-dimensional parameter space defined by the two variables, [beta-CD] and %PVS, was modelled using a physical model derived from first principles. This model gave very good correlation between predicted and observed mobilities (r2=0.999) for the 13 aromatic bases and parameters derived from the model agreed with the expected ion-exchange and hydrophobic character of each analyte. The complexity of the mathematical model was increased to include pH and this three-dimensional system was modelled successfully using an artificial neural network (ANN). Optimisation of both the two-dimensional and three-dimensional systems was achieved using the normalised resolution product and minimum resolution criteria. An example of using the ANN to predict conditions needed to obtain a separation with a desired migration order between two of the analytes is also shown.
| Structure | Name/CAS No. | Molecular Formula | Articles | 
|---|---|---|---|
                        ![]()  | 
                    Poly(vinylsulfonic acid, sodium salt) solution
                     CAS:9002-97-5  | 
                    C2H3NaO3S | 
| 
                                
                                Application of electrochemically prepared polypyrrole-polyvi...
                                 2006-03-15 [Biosens. Bioelectron. 21(9) , 1777-83, (2006)]  | 
                        
| 
                                
                                Dynamic scale theory for characterizing surface morphology o...
                                 2004-05-01 [J. Nanosci. Nanotechnol. 4(5) , 548-52, (2004)]  | 
                        
| 
                                
                                Bioseparation of papain from Carica papaya latex by precipit...
                                 2013-09-01 [Protein Expr. Purif. 91(1) , 91-5, (2013)]  | 
                        
| 
                                
                                An amperometric biosensor for choline determination prepared...
                                 2012-08-01 [Artif. Cells Blood Substit. Immobil. Biotechnol. 40(4) , 280-4, (2012)]  | 
                        
| 
                                
                                Surface plasmon fluorescence investigation of energy-transfe...
                                 2008-03-18 [Langmuir 24(6) , 2266-70, (2008)]  | 
                        
Home | MSDS/SDS Database Search | Journals | Product Classification | Biologically Active Compounds | Selling Leads | About Us | Disclaimer
Copyright © 2024 ChemSrc All Rights Reserved
