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研究了稀土三元催化剂(三氯乙酸稀土配合物/二乙基锌/甘油)催化下的正辛酸缩水甘油酯、CO2和环氧丙烷三元共聚合. 红外光谱、核磁共振和DSC结果表明,所获得的聚合物是一种新型的三元共聚物. 随着反应单体中正辛酸缩水甘油酯比例的增加,所得聚合物在20 ℃下的断裂伸长率由二氧化碳-环氧丙烷共聚物的31.0%增大至二氧化碳-正辛酸缩水甘油酯共聚物的983.9%,相应的玻璃化转变温度由39.6 ℃降低至-12.3 ℃. 所得三元共聚物中长碳链侧基单元含量为5.6%时,其断裂伸长率就已经达到481.1%,而拉伸强度仍然维持在24.9 MPa的较高水平. 相似文献
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三元共聚物聚甲基乙撑-环己撑碳酸酯的合成与表征 总被引:1,自引:0,他引:1
报道了三元共聚物聚甲基乙撑-环己撑碳酸酯的制备与性能研究. 实验采用高活性的负载戊二酸锌作为催化剂, 在不添加任何溶剂的情况下, 以二氧化碳和环氧丙烷、环氧环己烷为原料, 制备了不同环己撑碳酸酯含量的三元共聚物, 并对其结构和热性能、力学性能进行了表征和分析. 结果表明这些三元共聚物具有较高的分子量, 且玻璃化转变温度随着主链上的环己撑碳酸酯含量增加而逐渐升高. 同时三元共聚物表现出比二元共聚物更好的力学性能. 相似文献
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二氧化碳-环氧乙烷-氧化环己烯三元共聚物的制备与性能 总被引:2,自引:0,他引:2
采用稀土三元催化剂实现了二氧化碳、氧化环己烯与环氧乙烷的三元共聚,当环氧乙烷和氧化环己烯等摩尔投料时催化活性达到690 g/(mol Zn h),所得三元共聚物的数均分子量达到7.9×104,远程异核多量子相关核磁谱证明所得共聚物主要是无规三元共聚物,其中环氧乙烷-二氧化碳结构单元与氧化环己烯-二氧化碳结构单元相连的全交替结构占26.9%.二氧化碳-氧化环己烯共聚物的脆性导致其熔体加工十分困难,引入环氧乙烷为第三单体进行三元共聚,实现了二氧化碳-氧化环己烯共聚物的增韧,解决了其熔体加工难题,而且改变环氧单体比率能够调节三元共聚物的耐温性能和力学性能,当环氧乙烷与氧化环己烯等摩尔投料时,所得三元共聚物在20℃下的杨氏模量达到(900±17)MPa,拉伸强度为(38±2)MPa,断裂伸长率为(26.3±9.2)%. 相似文献
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本工作研究了稀土三元催化剂(三氯乙酸稀土配合物/二乙基锌/甘油)催化下的正辛酸缩水甘油酯、二氧化碳和环氧丙烷三元共聚合。红外光谱、核磁共振和差示扫描结果表明所获得的聚合物是一种新型的三元共聚物。随着反应单体中正辛酸缩水甘油酯比例的增加,所得聚合物在20℃下的断裂伸长率由二氧化碳-环氧丙烷共聚物的31.0%增大到二氧化碳-正辛酸缩水甘油酯共聚物的983.9%,相应的玻璃化转变温度由39.6℃降低至-12.3℃。所得三元共聚物中长碳链侧基单元含量为5.6%时,其断裂伸长率就已经达到481.1%,而拉伸强度仍然维持在24.9MPa的较高水平。 相似文献
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二氧化碳共聚物的分子结构调控有助于改善其物化性能,尤其是对深受低玻璃化温度困扰的二氧化碳(CO2)-环氧丙烷(PO)共聚物(PPC).引入氧化环己烯(CHO)为第三单体进行三元共聚是提高PPC耐温性能的重要途径,但是三元共聚反应过程复杂,其动力学研究还处于探索阶段.本文以均相的卟啉铝配合物为催化剂,利用Fineman-Ross方程和在线红外光谱研究CO2/PO/CHO的三元共聚反应.实验发现较低共聚温度(60~70℃)下PO与CHO的单体竞聚率均小于1,因此通过调整单体投料比即可制备出无规共聚物,进而调整三元共聚物的热力学性能.当共聚温度高于70℃时,CHO竞聚率大幅提高,更容易生成嵌段共聚物.在线红外反应动力学研究表明,此催化体系70℃即使在极低黏度下依然可以快速引发聚合反应,但聚合温度提高后,环状碳酸酯生成量会大幅提升,可明显观察到聚合物的解拉链反应. 相似文献
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由于氧化环己烯(CHO)与二氧化碳的共聚反应速度比其与环氧丙烷(PO)快,这种竞聚率的差异导致一锅法所得的二氧化碳-环氧丙烷-氧化环己烯三元共聚物的组成难以稳定控制。 为此本文在稀土三元催化剂下,采用氧化环己烯单体连续进料的方法合成了二氧化碳-环氧丙烷-氧化环己烯三元共聚物,催化效率可达575 g/(mol Zn h)。 三元共聚物的玻璃化转变温度随CHO含量升高而增大,当CHO的摩尔投料比从0.19增加到0.59时,玻璃化温度从44.3 ℃提高到70.1 ℃。 CHO连续进料合成的三元共聚物的组成与投料比基本相近,且连续进料法所合成的三元共聚物只有一个玻璃化转变温度,而普通的一锅法所得的三元共聚物通常存在两个玻璃化转变温度,因此连续进料法是制备组成稳定的二氧化碳-环氧丙烷-氧化环己烯三元共聚物的有效方法。 相似文献
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Using supported multi-component zinc dicarboxylate catalyst,poly(1,2-propylene carbonate-co-1,2-cyclohexylene carbonate)(PPCHC) was successfully synthesized from carbon dioxide(CO2) with propylene oxide(PO) and cyclohexene oxide(CHO).The conversion of epoxides dramatically increased up to 89.7%(yield:384.2 g of polymer per g of Zn) with increasing reaction temperature from 60℃to 80℃.The optimized reaction temperature is 80℃.The chemical structure,the molecular weight,as well as thermal and mechanical properties of the resulting terpolymers were investigated extensively. When CHO feed content(mol%) is lower than 10%,the PPCHC terpolymers have number average molecular weight(Mn) ranging from 102×103 to 202×103 and molecular weight distribution(MWD) values ranging from 2.8 to 3.5.In contrast to poly(propylene carbonate)(PPC),the introduction of small amount of CHO leads to increase in the glass transition temperature from 38.0℃to 42.6℃.Similarly,the mechanical strength of the synthesized terpolymer is greatly enhanced due to the incorporation of CHO.These improvements in mechanical and thermal properties are of importance for the practical application of PPC. 相似文献
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Lehenmeier MW Bruckmeier C Klaus S Dengler JE Deglmann P Ott AK Rieger B 《Chemistry (Weinheim an der Bergstrasse, Germany)》2011,17(32):8858-8869
The homogeneous dinuclear zinc catalyst going back to the work of Williams et al. is to date the most active catalyst for the copolymerisation of cyclohexene oxide and CO2 at one atmosphere of carbon dioxide. However, this catalyst shows no copolymer formation in the copolymerisation reaction of propylene oxide and carbon dioxide, instead only cyclic carbonate is found. This behaviour is known for many zinc‐based catalysts, although the reasons are still unidentified. Within our studies, we focus on the parameters that are responsible for this typical behaviour. A deactivation of the catalyst due to a reaction with propylene oxide turns out to be negligible. Furthermore, the catalyst still shows poly(cyclohexene carbonate) formation in the presence of cyclic propylene carbonate, but the catalyst activity is dramatically reduced. In terpolymerisation reactions of CO2 with different ratios of cyclohexene oxide to propylene oxide, no incorporation of propylene oxide can be detected, which can only be explained by a very fast back‐biting reaction. Kinetic investigations indicate a complex reaction network, which can be manifested by theoretical investigations. DFT calculations show that the ring strains of both epoxides are comparable and the kinetic barriers for the chain propagation even favour the poly(propylene carbonate) over the poly(cyclohexene carbonate) formation. Therefore, the crucial step in the copolymerisation of propylene oxide and carbon dioxide is the back‐biting reaction in the case of the studied zinc catalyst. The depolymerisation is several orders of magnitude faster for poly(propylene carbonate) than for poly(cyclohexene carbonate). 相似文献
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Darensbourg DJ Yarbrough JC Ortiz C Fang CC 《Journal of the American Chemical Society》2003,125(25):7586-7591
The catalysis of the reaction of carbon dioxide with epoxides (cyclohexene oxide or propylene oxide) using the (salen)Cr(III)Cl complex as catalyst, where H(2)salen = N,N'-bis(3,5-di-tert-butylsalicylidene)-1,2-cyclohexenediimine (1), to provide copolymer and cyclic carbonate has been investigated by in situ infrared spectroscopy. As previously demonstrated for the cyclohexene oxide/CO(2) reaction in the presence of complex 1, coupling of propylene oxide and carbon dioxide was found to occur by way of a pathway first-order in catalyst concentration. Unlike the cyclohexene oxide/carbon dioxide reaction catalyzed by complex 1, which affords completely alternating copolymer and only small quantities of trans-cyclic cyclohexyl carbonate, under similar conditions propylene oxide/carbon dioxide produces mostly cyclic propylene carbonate. Comparative kinetic measurements were performed as a function of reaction temperature to assess the activation barrier for production of cyclic carbonates and polycarbonates for the two different classes of epoxides, i.e., alicyclic (cyclohexene oxide) and aliphatic (propylene oxide). As anticipated in both instances the unimolecular pathway for cyclic carbonate formation has a larger energy of activation than the bimolecular enchainment pathway. That is, the energies of activation determined for cyclic propylene carbonate and poly(propylene carbonate) formation were 100.5 and 67.6 kJ.mol(-1), respectively, compared to the corresponding values for cyclic cyclohexyl carbonate and poly(cyclohexylene carbonate) production of 133 and 46.9 kJ.mol(-1). The small energy difference in the two concurrent reactions for the propylene oxide/CO(2) process (33 kJ.mol(-1)) accounts for the large quantity of cyclic carbonate produced at elevated temperatures in this instance. 相似文献
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Dr. Francesco Della Monica Dr. Veronica Paradiso Prof. Dr. Alfonso Grassi Dr. Stefano Milione Prof. Dr. Luigi Cavallo Prof. Dr. Carmine Capacchione 《Chemistry (Weinheim an der Bergstrasse, Germany)》2020,26(24):5347-5353
A new chromium(III) complex, bearing a bis-thioether-diphenolate [OSSO]-type ligand, was found to be an efficient catalyst in the copolymerization of CO2 and epoxides to achieve poly(propylene carbonate), poly(cyclohexene carbonate), poly(hexene carbonate) and poly(styrene carbonate), as well as poly(propylene carbonate)(cyclohexene carbonate) and poly(propylene carbonate)(hexene carbonate) terpolymers. 相似文献