Propagation kinetics of acrylic and methacrylic acid in water and organic solvents studied by pulsed-laser polymerization

被引:116
作者
Kuchta, FD
van Herk, AM
German, AL
机构
[1] Eindhoven Univ Technol, Lab Polymer Chem & Technol, NL-5600 MB Eindhoven, Netherlands
[2] Deutsch Forsch Gemeinschaft, D-53170 Bonn, Germany
关键词
D O I
10.1021/ma990906t
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Pulsed laser-induced polymerization (PLP) in combination with analysis of formed polymer by size exclusion chromatography (SEC) has been successfully applied in determining propagation rate coefficient, k(p) of acrylic and methacrylic acid in organic solvents and water. For methacrylic acid solution polymerization in methanol and in dimethyl sulfoxide (DMSO), minor but not negligible variations of k(p) with solvent have been observed. In contrast, k(p) values for polymerizations in water are significantly influenced by the solvent and furthermore by monomer concentration. The k(p) values obtained from polymerization experiments in water are significantly larger than the corresponding values obtained in methanol or DMSO. Weighted nonlinear least-squares fitting (NLLS) has been applied to calculate frequency factors, A, and activation energies, E-a, from the temperature dependence of k(p) for methacrylic acid in methanol, DMSO, and water in order to underline the reliability of the data. For acrylic acid it turns out that optimized experimental conditions have to be chosen in order to determine reliable k(p) values at ambient temperature. Laser pulse repetition rates of at least 90 Hz are necessary to ensure that "termination by the laser pulse" is the main chain stopping event. Smaller values of the laser pulse repetition rate will not yield reliable k(p) data. Furthermore, evidence of at least one first overtone inflection point at L-2 approximate to 2L(1) is not only recommended, it is necessary to ensure a reliable measure of k(p). This is the most important consistency criterion showing that experimental conditions are suitable.
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页码:3641 / 3649
页数:9
相关论文
共 33 条
[21]   Pulsed-laser polymerization measurements of the propagation rate coefficient for butyl acrylate [J].
Lyons, RA ;
Hutovic, J ;
Piton, MC ;
Christie, DI ;
Clay, PA ;
Manders, BG ;
Kable, SH ;
Gilbert, RG .
MACROMOLECULES, 1996, 29 (06) :1918-1927
[22]  
Manders BG, 1996, J POLYM SCI POL CHEM, V34, P2473, DOI 10.1002/(SICI)1099-0518(19960915)34:12<2473::AID-POLA21>3.0.CO
[23]  
2-4
[24]   SOLVENT EFFECTS ON THE PROPAGATION RATE COEFFICIENT FOR FREE-RADICAL POLYMERIZATION [J].
MORRISON, BR ;
PITON, MC ;
WINNIK, MA ;
GILBERT, RG ;
NAPPER, DH .
MACROMOLECULES, 1993, 26 (16) :4368-4372
[25]  
ODriscoll KF, 1997, J POLYM SCI POL CHEM, V35, P515
[26]   A decrease in effective acrylate propagation rate constants caused by intramolecular chain transfer [J].
Plessis, C ;
Arzamendi, G ;
Leiza, JR ;
Schoonbrood, HAS ;
Charmot, D ;
Asua, JM .
MACROMOLECULES, 2000, 33 (01) :4-7
[27]   EFFECT OF THE REACTION MEDIUM ON RADICAL COPOLYMERIZATION [J].
PLOCHOCKA, K .
JOURNAL OF MACROMOLECULAR SCIENCE-REVIEWS IN MACROMOLECULAR CHEMISTRY AND PHYSICS, 1981, C20 (01) :67-148
[28]  
SANTOS AM, 1998, ENTROPIE, V212, P31
[29]   Nonlinear least squares fitting applied to copolymerization modeling [J].
vanHerk, AM ;
Droge, T .
MACROMOLECULAR THEORY AND SIMULATIONS, 1997, 6 (06) :1263-1276
[30]   LEAST-SQUARES FITTING BY VISUALIZATION OF THE SUM OF SQUARES SPACE [J].
VANHERK, AM .
JOURNAL OF CHEMICAL EDUCATION, 1995, 72 (02) :138-140