SYNTHESIS AND CHARACTERIZATION OF POLY(VINYLCYCLOHEXANE) DERIVATIVES

被引:42
作者
GEHLSEN, MD
WEIMANN, PA
BATES, FS
HARVILLE, S
MAYS, JW
WIGNALL, GD
机构
[1] UNIV MINNESOTA,DEPT CHEM ENGN & MAT SCI,MINNEAPOLIS,MN 55455
[2] UNIV ALABAMA,DEPT CHEM,BIRMINGHAM,AL 35294
[3] OAK RIDGE NATL LAB,OAK RIDGE,TN 37831
关键词
POLYMER HYDROGENATION; POLY(VINYLCYCLOHEXANE) DERIVATIVE;
D O I
10.1002/polb.1995.090331010
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Six nearly monodisperse substituted poly(styrene) homopolymers, poly(styrene) (PS), poly(2-methylstyrene) (P2MS), poly(3-methylstyrene) (P3MS), poly(4-methylstyrene) (P4MS), poly(tertiary-butylstyrene) (PtBS), and poly(alpha-methylstyrene) (P alpha MS) were anionically polymerized and subsequently saturated using heterogeneous hydrogenation techniques to poly(vinylcyclohexane) (PVCH), poly(2-methylvinylcyclohexane) (P2MVCH), poly(3-methylvinylcyclohexane) (P3MVCH), poly (4-methylvinylcyclohexane) (P4MVCH), and poly(tertiary-butylvinylcyclohexane) (PtBVCH), respectively. In each case, except P alpha MS, the materials were saturated to > 99% conversion with no chain degradation. PS hydrogenations required the addition of small amounts of tetrahydrofuran to the reaction solvent cyclohexane to enhance miscibility and eliminate large-scale chain degradation. Density gradient and differential scanning calorimetry (DSC) measurements were used to characterize the density and glass transition temperature, T-g, of the unsaturated and saturated polymers. Saturation reduces the density by 3% to 11% and changes T-g substantially. The greatest variation in T-g is obtained with the 3-methyl substituted species where a 63 degrees C increase is observed, while the highest measured T-g is 186 degrees C for P2MVCH. Small-angle neutron scattering (SANS) experiments on binary mixtures of hydrogenous and deuterium labeled PVCH derivatives provided a determination of bulk chain statistics. The statistical segment length is relatively insensitive to vinylcyclohexane ring substitution, except with P3MVCH where a 20% greater value is obtained. (C) 1995 John Wiley & Sons, Inc.
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页码:1527 / 1536
页数:10
相关论文
共 32 条
[1]  
[Anonymous], 1994, POLYM NEUTRON SCATTE
[2]  
[Anonymous], 1979, SCALING CONCEPTS POL
[3]   THE GLASS-TRANSITION BEHAVIOR AND THERMODYNAMIC PROPERTIES OF AMORPHOUS POLYSTYRENE [J].
ARAS, L ;
RICHARDSON, MJ .
POLYMER, 1989, 30 (12) :2246-2252
[4]   EFFECT OF CHEMICAL STRUCTURE ON THE SOFTENING POINT OF SUBSTITUTED POLYSTYRENES AND RELATED MATERIALS [J].
BARB, WG .
JOURNAL OF POLYMER SCIENCE, 1959, 37 (132) :515-532
[5]   CONFORMATIONAL ASYMMETRY AND POLYMER-POLYMER THERMODYNAMICS [J].
BATES, FS ;
FREDRICKSON, GH .
MACROMOLECULES, 1994, 27 (04) :1065-1067
[6]   SMALL-ANGLE NEUTRON-SCATTERING FROM AMORPHOUS POLYMERS [J].
BATES, FS .
JOURNAL OF APPLIED CRYSTALLOGRAPHY, 1988, 21 (06) :681-691
[7]   CORRELATION OF BINARY POLYOLEFIN PHASE-BEHAVIOR WITH STATISTICAL SEGMENT LENGTH ASYMMETRY [J].
BATES, FS ;
SCHULZ, MF ;
ROSEDALE, JH ;
ALMDAL, K .
MACROMOLECULES, 1992, 25 (20) :5547-5550
[8]  
BATES FS, 1989, MACROMOLECULES, V21, P2557
[9]  
BRANDRUP J, 1989, POLYM HDB
[10]  
DALY WH, 1987, ENCY POLYM SCI ENG, V17, P377