Combined column-mobile phase mixture statistical design optimization of high-performance liquid chromatographic analysis of multicomponent systems

被引:25
作者
Breitkreitz, Marca C. [2 ]
Jardim, Isabel C. S. F. [1 ]
Bruns, Roy E. [1 ]
机构
[1] Univ Estadual Campinas, Inst Chem, BR-13083970 Campinas, SP, Brazil
[2] Int Inst Pharmaceut Res, IIPF, BR-13186481 Hortolandia, SP, Brazil
关键词
HPLC; Split-plot designs; Mobile phase optimization; Derringer's desirability function; Response surface analysis; DERRINGERS DESIRABILITY FUNCTION; SEPARATION; SELECTIVITY; IMPURITIES; CRITERIA; ELECTROPHORESIS; RESOLUTION; OPTIMUM;
D O I
10.1016/j.chroma.2008.12.093
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
A statistical approach for the simultaneous optimization of the mobile and stationary phases used in reversed-phase liquid chromatography is presented. Mixture designs using aqueous mixtures of acetonitrile (ACN), methanol (MeCH) and tetrahydrofuran (THF) organic modifiers were performed simultaneously with column type optimization, according to a split-plot design, to achieve the best separation of compounds in two sample sets: one containing 10 neutral compounds with similar retention factors and another containing 11 pesticides. Combined models were obtained by multiplying a linear model for column type, C8 or C18, by quadratic or special cubic mixture models. Instead of using an objective response function, combined models were built for elementary chromatographic criteria (retention factors, resolution and relative retention) of each solute or pair of solutes and, after their validation, the global separation was accomplished by means of Derringer's desirability functions. For neutral compounds a 37:12:8:43 (v/v/v/v) percentage mixture of ACN:MeOH:THF:H2O with the C18 column and for pesticides a 15:15:70 (v/v/v) ACN:THF:H2O mixture with the C8 column provide excellent resolution of all peaks. (C) 2009 Elsevier B.V. All rights reserved.
引用
收藏
页码:1439 / 1449
页数:11
相关论文
共 32 条
[1]   Unreplicated split-plot mixture designs and statistical models for optimizing mobile chromatographic phase and extraction solutions for fingerprint searches [J].
Borges, Cleber N. ;
Breitkreitz, Marcia C. ;
Bruns, Roy E. ;
Silva, Lucas M. C. ;
Scarminio, Leda S. .
CHEMOMETRICS AND INTELLIGENT LABORATORY SYSTEMS, 2007, 89 (02) :82-89
[2]   SIMULTANEOUS-OPTIMIZATION OF SEVERAL CHROMATOGRAPHIC PERFORMANCE GOALS USING DERRINGER DESIRABILITY FUNCTION [J].
BOURGUIGNON, B ;
MASSART, DL .
JOURNAL OF CHROMATOGRAPHY, 1991, 586 (01) :11-20
[3]  
Box G., 2005, Statistics for Experimenters, VSecond
[4]  
Bruns R.E., 2006, Statistical Design-Chemometrics
[5]   COMPARISON OF OPTIMIZATION METHODS IN REVERSED-PHASE HIGH-PERFORMANCE LIQUID-CHROMATOGRAPHY USING MIXTURE DESIGNS AND MULTICRITERIA DECISION-MAKING [J].
COENEGRACHT, PMJ ;
SMILDE, AK ;
METTING, HJ ;
DOORNBOS, DA .
JOURNAL OF CHROMATOGRAPHY, 1989, 485 :195-217
[6]  
Cornell J., 1990, EXPT MIXTURES, V2nd s
[7]  
CORNELL JA, 1988, J QUAL TECHNOL, V20, P1
[8]   Study of different criteria for the selection of a rugged optimum in high performance liquid chromatography optimisation [J].
deAguiar, PF ;
VanderHeyden, Y ;
Massart, DL .
ANALYTICA CHIMICA ACTA, 1997, 348 (1-3) :223-235
[9]  
DERRINGER G, 1980, J QUAL TECHNOL, V12, P14
[10]   Mixture design in the optimization of a microemulsion system for the electrokinetic chromatographic determination of ketorolac and its impurities: Method development and validation [J].
Furlanetto, S ;
Orlandini, S ;
Marras, AM ;
Mura, P ;
Pinzauti, S .
ELECTROPHORESIS, 2006, 27 (04) :805-818