Preparation and HPLC applications of rigid macroporous organic polymer monoliths

被引:211
作者
Svec, F [1 ]
机构
[1] Univ Calif Berkeley, Dept Chem, Berkeley, CA 94720 USA
关键词
polymeric monoliths; preparation; modification; application; stationary phase; separation; HPLC; CEC;
D O I
10.1002/jssc.200401721
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Rigid porous polymer monoliths are a new class of materials that emerged in the early 1990s. These monolithic materials are typically prepared using a simple molding process carried out within the confines of a closed mold. For example, polymerization of a mixture comprising monomers, free-radical initiator, and porogenic solvent affords macroporous materials with large through-pores that enable applications in a rapid flow-through mode. The versatility of the preparation technique is demonstrated by its use with hydrophobic, hydrophilic, ionizable, and zwitterionic monomers. Several system variables can be used to control the porous properties of the monolith over a broad range and to mediate the hydrodynamic properties of the monolithic devices. A variety of methods such as direct copolymerization of functional monomers, chemical modification of reactive groups, and grafting of pore surface with selected polymer chains is available for the control of surface chemistry. Since all the mobile phase must flow through the monolith, the convection considerably accelerates mass transport within the molded material, and the monolithic devices perform well, even at very high flow rates. The applications of polymeric monolithic materials are demonstrated mostly on the separations in the HPLC mode, although CEC, gas chromatography, enzyme immobilization, molecular recognition, advanced detection systems, and microfluiclic devices are also mentioned.
引用
收藏
页码:747 / 766
页数:20
相关论文
共 147 条
[1]   A history of the origin and development of macroporous ion-exchange resins [J].
Abrams, IM ;
Millar, JR .
REACTIVE & FUNCTIONAL POLYMERS, 1997, 35 (1-2) :7-22
[2]   Determination of the porosities of monolithic columns by inverse size-exclusion chromatography [J].
Al-Bokari, M ;
Cherrak, D ;
Guiochon, G .
JOURNAL OF CHROMATOGRAPHY A, 2002, 975 (02) :275-284
[3]   BEADED POLYMER SUPPORTS AND GELS .1. MANUFACTURING TECHNIQUES [J].
ARSHADY, R .
JOURNAL OF CHROMATOGRAPHY, 1991, 586 (02) :181-197
[4]   MACROPOROUS MEMBRANES .2. 2,3-EPOXYPROPYL METHACRYLATE STYRENE ETHYLENE DIMETHACRYLATE MACROPOROUS MEMBRANES BEARING STRONG ACID GROUPS [J].
AZANOVA, VV ;
HRADIL, J ;
SYTOV, G ;
PANARIN, EF ;
SVEC, F .
REACTIVE POLYMERS, 1991, 16 (01) :1-8
[5]   REACTIVE POLYMERS .60. GLYCIDYL METHACRYLATE-STYRENE-ETHYLENE DIMETHACRYLATE TERPOLYMERS MODIFIED WITH STRONG-ACID GROUPS [J].
AZANOVA, VV ;
HRADIL, J ;
SVEC, F ;
PELZBAUER, Z ;
PANARIN, EF .
REACTIVE POLYMERS, 1990, 12 (03) :247-260
[6]   Development of a universal alkoxyamine for "living" free radical polymerizations [J].
Benoit, D ;
Chaplinski, V ;
Braslau, R ;
Hawker, CJ .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1999, 121 (16) :3904-3920
[7]   Application of semi-industrial monolithic columns for downstream processing of clotting factor IX [J].
Branovic, K ;
Buchacher, A ;
Barut, M ;
Strancar, A ;
Josic, D .
JOURNAL OF CHROMATOGRAPHY B-ANALYTICAL TECHNOLOGIES IN THE BIOMEDICAL AND LIFE SCIENCES, 2003, 790 (1-2) :175-182
[8]   BASIC ASPECTS AND RECENT DEVELOPMENTS IN SUSPENSION POLYMERIZATION [J].
BROOKS, BW .
MAKROMOLEKULARE CHEMIE-MACROMOLECULAR SYMPOSIA, 1990, 35-6 :121-140
[9]  
Buchmeiser MR, 2001, MACROMOL RAPID COMM, V22, P1082
[10]   SilicaROD™ -: A new challenge in fast high-performance liquid chromatography separations [J].
Cabrera, K ;
Wieland, G ;
Lubda, D ;
Nakanishi, K ;
Soga, N ;
Minakuchi, H ;
Unger, KK .
TRAC-TRENDS IN ANALYTICAL CHEMISTRY, 1998, 17 (01) :50-53