Construction of large volume monolithic columns

被引:140
作者
Podgornik, A
Barut, M
Strancar, A
Josic, D
Koloini, T
机构
[1] Univ Ljubljana, Fac Chem & Chem Technol, SI-1000 Ljubljana, Slovenia
[2] Octapharma Prod, A-1100 Vienna, Austria
[3] BIA Separat DOO, SI-1000 Ljubljana, Slovenia
关键词
D O I
10.1021/ac000680o
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Monolithic supports have become the subject of extensive study in the past years. Despite their advantageous features and many successful chromatographic applications in the analytical scale, only a very few examples of larger volume monoliths were described. In the case of GMA-EDMA monoliths, this can be attributed to the fact that due to the exothermic polymerization a pronounced temperature increase inside the monolith significantly affects the structure. The temperature increase depends on the thickness of the monolith, and consequently, there is an upper limit that allows the preparation of a unit with a uniform structure. In the present work, we have analyzed a heat release during the polymerization and have derived a mathematical model for the prediction of the maximal thickness of the monolithic annulus having a uniform structure. On the basis of the calculations, two annuluses of different diameters were polymerized and merged into a single monolithic unit with a volume of 80 mt. In addition, a special housing was designed to provide a uniform flow distribution in the radial direction over the entire monolith bed. It was shown that such a monolithic column exhibits now-independent separation efficiency and dynamic binding capacity up to flow rates higher than 100 mL/min. The separation and loading times are in the range of a few minutes. The pressure drop on the column is linearly dependent on the flow rate and does not exceed 2.5 MPa at a now rate of 250 mL/min.
引用
收藏
页码:5693 / 5699
页数:7
相关论文
共 40 条
[31]  
SVEC F, 1997, COMMUNICATION
[32]   Separation of oligonucleotides on novel monolithic columns with ion-exchange functional surfaces [J].
Sykora, D ;
Svec, F ;
Fréchet, JMJ .
JOURNAL OF CHROMATOGRAPHY A, 1999, 852 (01) :297-304
[33]   HIGH-PERFORMANCE MEMBRANE CHROMATOGRAPHY - HIGHLY EFFICIENT SEPARATION METHOD FOR PROTEINS IN ION-EXCHANGE, HYDROPHOBIC INTERACTION AND REVERSED-PHASE MODES [J].
TENNIKOVA, TB ;
SVEC, F .
JOURNAL OF CHROMATOGRAPHY, 1993, 646 (02) :279-288
[34]   HIGH-PERFORMANCE MEMBRANE CHROMATOGRAPHY - A NOVEL METHOD OF PROTEIN SEPARATION [J].
TENNIKOVA, TB ;
BELENKII, BG ;
SVEC, F .
JOURNAL OF LIQUID CHROMATOGRAPHY, 1990, 13 (01) :63-70
[35]  
Tennikova TB, 2000, HRC-J HIGH RES CHROM, V23, P27
[36]  
TENNIKOVA TB, 1989, Patent No. 4889632
[37]   LONGITUDINAL DIFFUSION AND RESISTANCE TO MASS TRANSFER AS CAUSES OF NONIDEALITY IN CHROMATOGRAPHY [J].
VANDEEMTER, JJ ;
ZUIDERWEG, FJ ;
KLINKENBERG, A .
CHEMICAL ENGINEERING SCIENCE, 1956, 5 (06) :271-289
[38]   Application of Convective Interaction Media disks with immobilised glucose oxidase for on-line glucose measurements [J].
Vodopivec, M ;
Berovic, M ;
Jancar, J ;
Podgornik, A ;
Strancar, A .
ANALYTICA CHIMICA ACTA, 2000, 407 (1-2) :105-110
[39]  
VODOPIVEC M, IN PRESS J CHROMATOG
[40]   MACROPOROUS POLYMERIC STATIONARY-PHASE ROD AS CONTINUOUS SEPARATION MEDIUM FOR REVERSED-PHASE CHROMATOGRAPHY [J].
WANG, QC ;
SVEC, F ;
FRECHET, JMJ .
ANALYTICAL CHEMISTRY, 1993, 65 (17) :2243-2248