Adsorption and enthalpic partition retention mechanisms in liquid chromatography of non-charged synthetic polymers

被引:27
作者
Berek, D [1 ]
机构
[1] Slovak Acad Sci, Inst Polymer, Lab Liquid Chromat, Bratislava 84236, Slovakia
关键词
column liquid chromatography; adsorption and partition mechanisms; synthetic polymers;
D O I
10.1007/BF02492082
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Adsorption and enthalpic partition processes in high performance liquid chromatography (HPLC) of macromolecules are qualitatively described and compared. These two similar but not identical HPLC retention mechanisms result from enthalpic interactions between polymer sample and column packing, which are in different ways affected by interactions between eluent and column packing, and between eluent and sample. The understanding of basic principles of adsorption and enthalpic partition retention mechanisms in polymer HPLC may facilitate the suppression of their unwanted effects, as well as their appropriate coupling with the exclusion retention mechanism. The goal is an easy selection of suitable column packing, mobile phase, and temperature of system to attain desired separation and molecular characterization of particular complex polymer sample. The tailored coupling of enthalpic and entropic retention mechanisms with exclusion allows to either reduce or enhance separation selectivity of polymer species according to their molar masses. In the former case, macromolecules can be separated (practically) irrespectively of their molar mass in terms of other molecular characteristics, namely their chemical structure or physical architecture. On the contrary, increased selectivity of separation in terms of sample molar mass enables improving both the accuracy and speed of analysis. "Flower-like" enthalpic interactions of macromolecules in narrow pores may substantially affect the sample retention.
引用
收藏
页码:S45 / S54
页数:10
相关论文
共 54 条
[1]   GRADIENT LC SEPARATION OF MACROMOLECULES - THEORY AND MECHANISM [J].
ARMSTRONG, DW ;
BOEHM, RE .
JOURNAL OF CHROMATOGRAPHIC SCIENCE, 1984, 22 (09) :378-385
[2]   CONTRIBUTION OF ADSORPTION AND PARTITION TO THE SEPARATION MECHANISM IN GEL CHROMATOGRAPHY ON INORGANIC CARRIERS [J].
BAKOS, D ;
BLEHA, T ;
OZIMA, A ;
BEREK, D .
JOURNAL OF APPLIED POLYMER SCIENCE, 1979, 23 (08) :2233-2244
[3]   Liquid chromatography of polymers at the exclusion-adsorption transition point: Physicochemical interpretation [J].
Baran, K ;
Laugier, S ;
Cramail, H .
INTERNATIONAL JOURNAL OF POLYMER ANALYSIS AND CHARACTERIZATION, 2000, 6 (1-2) :123-145
[4]   ADSORPTION CHROMATOGRAPHY OF POLYMERS [J].
BELENKII, BG .
PURE AND APPLIED CHEMISTRY, 1979, 51 (07) :1519-1535
[5]  
BELENKII BG, 1976, DOKL AKAD NAUK SSSR+, V231, P1147
[6]   ETUDE PAR CHROMATOGRAPHIE EN PHASE LIQUIDE DE POLYSTYRENES LINEAIRES ET RAMIFIES DE STRUCTURES CONNUES [J].
BENOIT, H ;
GRUBISIC, Z ;
REMPP, P ;
DECKER, D ;
ZILLIOX, JG .
JOURNAL DE CHIMIE PHYSIQUE, 1966, 63 (11-1) :1507-&
[7]   Coupled liquid chromatographic techniques for the separation of complex polymers [J].
Berek, D .
PROGRESS IN POLYMER SCIENCE, 2000, 25 (07) :873-908
[8]   PREFERENTIAL SOLVATION OF SOLUTE AS A SOURCE OF GHOST PEAKS IN LIQUID-CHROMATOGRAPHY [J].
BEREK, D ;
BLEHA, T ;
PEVNA, Z .
JOURNAL OF CHROMATOGRAPHIC SCIENCE, 1976, 14 (12) :560-563
[9]   Liquid chromatography of macromolecules under limiting conditions of adsorption. I. Principles of the method [J].
Berek, D ;
Hunkeler, D .
JOURNAL OF LIQUID CHROMATOGRAPHY & RELATED TECHNOLOGIES, 1999, 22 (19) :2867-2878
[10]  
Berek D, 1998, J POLYM SCI POL CHEM, V36, P1363, DOI 10.1002/(SICI)1099-0518(19980715)36:9<1363::AID-POLA3>3.0.CO