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1.
<正> 分子量在3000以下的四氢呋喃聚合产物-聚丁二醇(PTMG)是重要的工业原料。前报中我们已证明用BF_3-环氧氯丙烷(ECH)引发四氢呋喃(THF)聚合时引发效率较高,在这一基础上有希望通过在聚合体系中加水以达到控制产物分子量的目的。 文献上对水在BF_3-ECH引发THF聚合反应中作用的研究不多,Kyzaeb等人  相似文献   

2.
研究了N,N'-双(3,5-二叔丁基水杨醛)-1,2-环己二胺钴(Ⅱ)[Co~Ⅱ(salen~*)]存在下氯丁二烯(CP)的自由基聚合,考察了不同溶剂、引发剂用量及配体对聚合反应的影响.结果表明,随着引发剂用量的增加,聚合反应的诱导期缩短,以[ABVN]0/[Co~Ⅱ(salen~*)]0=3/1配比投料,聚合反应表现出较好的可控聚合特征.在苯、甲苯、四氢呋喃(THF)和乙酸乙酯(EA)4种溶剂中按照[CP]_0/[Co~Ⅱ(salen~*)]0/[ABVN]0=400/1/3的配比投料,在苯中的可控聚合程度最好:在低转化率(40%以下)实测聚合物分子量(Mn,GPC)与理论值(Mn,th)吻合,且分子量随转化率增加呈线性增长.研究了THF、三乙胺(NEt3)、吡啶(Py)及水等不同配体对聚合反应的影响,发现在添加THF时,低转化率(40%以下)下Mn,GPC与Mn,th相符,分子量分布(PDI)相对较窄.  相似文献   

3.
研究了N,N'-双(3,5-二叔丁基水杨醛)-1,2-环己二胺钴(Ⅱ)[Co(salen*)]存在下氯丁二烯(CP)的自由基聚合, 考察了不同溶剂、 引发剂用量及配体对聚合反应的影响. 结果表明, 随着引发剂用量的增加, 聚合反应的诱导期缩短, 以[ABVN]0/[ Co(salen*)]0=3/1配比投料, 聚合反应表现出较好的可控聚合特征. 在苯、 甲苯、 四氢呋喃(THF)和乙酸乙酯(EA) 4种溶剂中按照[CP]0/[Co(salen*)]0/[ABVN]0=400/1/3的配比投料, 在苯中的可控聚合程度最好: 在低转化率(40%以下)实测聚合物分子量(Mn,GPC)与理论值(Mn,th)吻合, 且分子量随转化率增加呈线性增长. 研究了THF、 三乙胺(NEt3)、 吡啶(Py)及水等不同配体对聚合反应的影响, 发现在添加THF时, 低转化率(40%以下)下Mn,GPCMn,th相符, 分子量分布(PDI)相对较窄.  相似文献   

4.
以烷基钇[Y( CH2 SiMe3),(THF)2]与苯甲醇原位反应生成的三苄氧基钇为引发剂,研究ε-己内酯(CL)可控开环聚合反应(ROP).结果表明,随着聚合体系中单体/引发剂摩尔比的增大,产物聚己内酯(PCL)的数均分子量(1H NMR计算和GPC测定)均随之线性增加,且分子量分布(Mw/Mn=1.4~1.1)逐...  相似文献   

5.
<正> 在前报中已证明当用三氟化硼引发四氢呋喃(THF)聚合时,以环氧氯丙烷(ECH)为促进剂效果远较用环氧乙烷(EO)的效果好,在相近的浓度条件下,前者引发效率约为后者的2.5—6倍.本文将进一步对以环氧丙烷(PO)为促进剂的聚合反应进行研究。通过对产物组成与结构的测定,加深了对反应的了解。  相似文献   

6.
用三氟化硼引发体系制备聚丁二醇   总被引:1,自引:0,他引:1  
分子量在3000以下特别是1000或2000的聚丁二醇(PTMG)是制备嵌段聚醚聚氨酯及嵌段聚醚聚醋弹性体的重要软段原料。用三氟化硼(BF_3)体系引发制备PTMG巳有报道,但尚难在工业上采用,主要是引发效率低。前已报道,BF_3-环氧氯丙烷(ECH)体系的引发效率比BF_3-环氧乙烷(EO)体系高2.5~6倍,比BF_3-环氧丙烷(PO)体系高2~3倍。本文用BF_3-ECH为引发体系,并用水为分子量调节剂制备分子量1000或2000的PTMG,测  相似文献   

7.
甲基丙烯酸甲酯的原子转移自由基悬浮聚合   总被引:3,自引:0,他引:3  
以 1 苯基氯乙烷为引发剂 ,氯化亚铜为催化剂 ,2 ,2 联吡啶为配体 ,外加搅拌 ,氮气保护下进行了甲基丙烯酸甲酯 (MMA)在 80℃下的原子转移悬浮聚合 .结果表明 ,聚合反应符合对单体浓度为一级的动力学关系 .经计算聚合体系的增长自由基浓度为 5 .74× 10 - 8mol L .聚合物分子量随转化率呈线性增加 ,分子量分布较窄 ,Mw Mn 在 1.37~ 1.40之间 .还以AIBN为引发剂 ,在三氯化铁和三苯基膦存在下进行了MMA的反向原子转移本体和悬浮聚合研究 .结果证明本体聚合具有好的可控特征 ,分子量随转化率呈线性增长 ,分子量分布指数在 1.2 7~ 1.31之间 .聚合反应速率较快 ,聚合体系中的增长自由基浓度较高 ,为 1.6 4× 10 - 7mol L .而在此催化体系下的悬浮聚合则完全失去了活性特征  相似文献   

8.
研究了二茂基二价钐配合物(C5H5)2Sm(THF)作为单组分催化剂催化己内脂开环聚合反应,考察了催化剂用量、聚合反应时间、聚合反应温度对己内酯聚合反应的影响。结果表明,配合物(C5H5)2Sm(THF)对己内酯聚合有极高的催化活性且产物的数均分子量较高,当催化剂与单体摩尔比为1:5000时,聚合产率仍可达50.3%,数均分子量可高达32.4万;温度升高,聚合反应的转化率增加,聚合产物数均分子量降低;催化剂用量增加,聚合转化率增加,聚合产物分子量降低;聚合产物的分子量分布较窄;通过凝胶色谱法对聚合产物的分子量及分子量分布进行了表征。  相似文献   

9.
研究了苄胺引发N-取代甘氨酸-N-硫代羧酸酐(NNTA)开环聚合.聚合对引发剂当量的水(100~600μg/g)具有很好的耐受性,能保持良好的可控性,聚类肽产率高(>70%),分子量可控(1600~7500),分子量分布较窄(1.13~1.25).随着水含量的增加(达到单体当量)(14000μg/g),聚合产率与产物分子量均有不同程度的下降.MALDI-To F质谱证明所得聚类肽均为苄胺引发产物,水不能引发NNTA聚合.聚合动力学实验表明该聚合体系表现出准一级动力学反应的特征,在不同单体转化率时,聚合物数均分子量与单体转化率呈线性关系,分子量分布窄,证明该聚合体系具有可控性.进一步地,使用未经除水精制处理的市售THF溶剂和未经烘烤除水的反应瓶进行NNTA聚合反应,也表现出很好的可控性.NNTA单体易合成、易储存,聚合时不受微量水的影响,极大地降低了聚类肽的合成难度,有利于聚类肽材料的推广与应用.  相似文献   

10.
研究了1-环戊烷基茚基二价镱配合物(1-C5H9C9H6)2Yb(THF)2作为单组分催化剂催化己内酯开环聚合反应, 考察了催化剂用量、聚合反应时间、聚合反应温度对己内酯聚合反应的影响. 结果表明, 配合物(1-C5H9C9H6)2Yb(THF)2对己内酯聚合有较高的催化活性; 温度升高, 聚合反应的转化率增加, 但产物的数均分子量及分子量分布无明显变化; 所得聚合物分子量分布较窄. 其它几种取代茚基稀土配合物也显示出较高的催化活性, 其活性有下列次序: (1-C2H5C9H6)2Sm(THF)2>(1-C5H9C9H6)2Sm(THF)>KSm(1-C5H9C9H6)3(THF)3>(1-PhCH2C9H6)2Sm(THF)2>(1-C5H9C9H6)2Yb(THF)2, 二价钐配合物较二价镱配合物具有较高的催化活性. 通过凝胶渗透色谱法测定了聚合产物的数均分子量及其分布.  相似文献   

11.
The molecular weight of polytetramethylene glycol (PTMG) prepared from tetrahydrofu-ran (THF) by using cocatalysts of BF3-etherate and epichlorohydrin (ECH) in the presence of butylene glycol(BG) increased sharply with the polymer conversion, but at yields higher than 80% but could be exactly controlled by the molar ratio of BG to BF3. The polyether obtained possessed around 70 mol% primaly hydrcxyl end-groups and a hydroxyl end-group functionality of two. The content of ECH derived units in each polymer chain containing 18.2 or 33.8THF derived units is around 1.60 or 2.16 respectively.  相似文献   

12.
在以低浓度杂多酸(HPA)催化四氢呋喃(THF)聚合反应中,我们曾采用环氧乙烷(EO)和环氧丙烷(PO)为促进剂,发现它们都具有很好的促进效果[1,2],并且活性相近.在以三氟化硼(BF3)为催化剂的四氢呋喃正离子开环聚合反应中,促进剂的活性次序为:ECH(环氧氯丙烷)>POEO[3].在HPA催化THF聚合反应中,ECH是否仍具有高的促进活性是本文研究的目的.1 原料及聚合操作THF的纯化见文献[4],ECH的纯化见文献[5],十二磷钨杂多酸(PW12)的处理见文献[1],三氟醋酸酐的合成方法和聚合反应的操作均见前文[2].2 分析测试核磁共振…  相似文献   

13.
Cationic polymerization of tetrahydrofuran (THF) and epichlorohydrin (ECH) was performed with peroxy initiators synthesized from bis (4,4′‐bromomethyl benzoyl peroxide (BBP) or bromomethyl benzoyl t‐butyl peroxy ester (t‐BuBP) and AgSbF6 or ZnCl2 system at 0 °C to obtain the poly(THF‐b‐ECH) macromonomeric peroxy initiators. Kinetic studies were accomplished for poly(THF‐b‐ECH) initiators. Poly(THF‐b‐ECH‐b‐MMA) and poly(THF‐b‐ECH‐b‐S) block copolymers were synthesized by bulk polymerization of methyl methacrylate (MMA) and styrene (S) with poly(THF‐b‐ECH) initiators. The quantum chemical calculations for the block copolymers, the initiating systems of the cationic polymerization of THF and ECH were achieved using HYPERCHEM 7.5 program. The optimized geometries of the polymers were investigated with the quantum chemical calculations. Poly(THF‐b‐ECH) initiators having peroxygen groups were used for graft copolymerization of polybutadien (PBd) to obtain poly(THF‐b‐ECH‐g‐PBd) crosslinked graft copolymers. The graft copolymers were investigated by sol‐gel analysis. Swelling ratio values of the graft copolymers in CHCl3 were calculated. The characterizations of the polymers were achieved by FTIR, 1H NMR, GPC, SEM, TEM, and DSC techniques. © 2010 Wiley Periodicals, Inc. J Polym Sci Part A: Polym Chem 48: 2896–2909, 2010  相似文献   

14.
通过(CF~3CO~2)~3Ln(Ln=Nd、Y和Eu)和R^1AlR~2(R^1=H, R=i-C~4H~9;R^1=R=C~2H~5), 反应首次合成和培养出Nd-Al、Y-Al和Eu-Al三种新的双金属稀土配合物和晶体, 并用X射线衍射法测定出它们的晶体结构, 然后再用二维波谱技术, 进一步证实和完善了晶体结构中的价态和非共面现象。由此确定这三种稀土配合物分子式的通式为: [(μ-CF~3CO~2)~2Ln(μ-CF~3CHO~2)AlR~2.2THF]~2。根据实验结果还提出了通过烷基化、β-消除(或氢化)、氢转移、键合及缔合等五个步骤生成这些配合物的反应机理。这些配合物单独可使MMA和ECH催化聚合, 前者可获得主要以间同结构聚合物, 后者聚合催化活性较高, 在极少量的ECH存在下,还可使THF开环聚合, 并通过PTHF端基分析, 提出了羊离子聚合反应机理。  相似文献   

15.
<正> 四氢呋喃(THF)通过正离子开环聚合而制得的聚丁二醇(PTMG)是生产嵌段聚醚聚氨酯及嵌段聚醚聚酯弹性材料的重要原料。目前制备PTMG所采用的引发剂都是强酸型的,如高氯酸、氟磺酸或发烟硫酸等,对设备腐蚀严重。用酸性较弱的三氟化硼引发聚合在文献上也有一些研究报道,但尚难以采用,其主要困难在于实际应用的  相似文献   

16.
Group transfer polymerization and sequential addition of monomer and cross-linker were employed for the preparation of two new polymer structures, one of a polymer network and the other of a star polymer. The synthesis was completed in two steps, involving the synthesis of linear methyl methacrylate (MMA) arms of degree of polymerization of 20, followed by their cross-linking using a mixture of MMA monomer and ethylene glycol dimethacrylate (EGDMA) cross-linker. In this study, the volume of the cross-linking mixture was varied systematically. Furthermore, two mixture compositions were employed, involving MMA:EGDMA molar ratios of 1:1 and 3:1, leading to two series of polymeric materials. It was found that at a given cross-linking mixture composition, a larger volume of the cross-linking mixture favored the formation of polymer networks, whereas a smaller volume favored the formation of star polymers. The linear precursors, the star polymers and the extractables from the polymer networks were characterized by gel permeation chromatography in tetrahydrofuran (THF). The absolute weight-average molecular weight, the number of arms and the hydrodynamic radii of the star polymers, as determined using static and dynamic light scattering in THF, respectively, and their average radii as determined by atomic force microscopy, increased as the volume of the cross-linking mixture increased. The gravimetrically measured degrees of swelling in THF, the network sol fraction and the percentage of branched polymer in the sol fraction decreased as the volume of the cross-linking mixture increased.  相似文献   

17.
四氢呋喃与环氧氯丙烷共聚合的研究   总被引:1,自引:3,他引:1  
<正> 晃玉等曾以BF_3-二元醇(DO)引发四氢呋喃(THF)与环氧氯丙烷(ECH)共聚合,用所得共聚醚制成嵌段聚醚聚氨酯,与用THF均聚醚或THF-环氧丙烷(PO)共聚醚为软段的聚氨酯相比,分别在低温性能及强度上有明显改进.且由于引入氯甲基侧基可作进一步接枝共聚改性。但用BF_3-DO为引发剂很难制得不含环聚体的共聚醚,  相似文献   

18.
The aggregation of poly(1,3‐cyclohexadiene) (PCHD), obtained by anionic polymerization with alkyllithium/amine systems, was examined using size exclusion chromatography (SEC) and size exclusion chromatography coupled with a multiangle laser light scattering photometer (SEC‐MALS). The PCHD polymer chain has a structure consisting of a main chain formed by 1,2‐addition (the 1,2‐CHD unit) and 1,4‐addition (the 1,4‐CHD unit). Mild stirring with relatively low temperature in the polymerization reaction forms an aggregation of PCHD. The molecular weight and molar ratio of 1,2‐CHD/1,4‐CHD units in the polymer chain strongly influence the aggregation of PCHD. In a high molecular weight PCHD, containing ~50% 1,2‐CHD units, an aggregation of the polymer was observed in tetrahydrofuran (THF) solution at room temperature. This aggregation of PCHD was soluble in 1,2,4‐trichlorobenzene (TCBz) and could be separated into each polymer molecule. In contrast, a polymer chain with a high content of 1,4‐CHD units having a relatively low cis‐stereospecificity was easily soluble in THF and TCBz without aggregating. A long polymer chain structure with a high content of 1,2‐CHD units is considered to be the reason for the generation of strong intermolecular forces contributing to the aggregation of PCHD with the solvophobic interactions. The degree of aggregation could be controlled by the conditions of the PCHD polymer solution. © 2006 Wiley Periodicals, Inc. J Polym Sci Part B: Polym Phys 44: 1442–1452, 2006  相似文献   

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