44 resultados para polyesters

em Chinese Academy of Sciences Institutional Repositories Grid Portal


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Crosslinkable side-chain liquid crystalline polyesters PCn from N-[n-(4-(4-nitrophenylazo)phenyloxy)alkyl]diethanolamine (Cn, n = 3, 5, 6, 10) as mesogenic monomers and maleic anhydride were synthesized and characterized. The thermal properties of PCn's were studied by means of DSC, polarized optical microscopy (POM) and wide angle X-ray diffraction (WAXD), and the results showed that all the polymers studied exhibit enantiotropic liquid crystallinity. In the molar mass independent region, the relatively high content of cis -CH=CH- groups in the polymer backbone of PC3 causes an increase of the melting temperature (T-m) and a decrease of T-g and isotropisation temperature (T-i). The crosslinking of PCn in the radical polymerization with styrene was confirmed by FTIR spectroscopy. The absorption band at 1300 cm(-1) attributed to the in-plane C-H-bending vibration of trans -CH=CH- in the polymer backbone disappeared after crosslinking, indicating that the trans -CH=CH- functions are consumed in the crosslinking polymerization of styrene.

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The miscibility of blends of poly(styrene-co-allyl alcohol) (SAA) with poly(methyl methacrylate) (PMMA), poly(ethyl methacrylate) (PEMA), poly(n-butyl methacrylate) (PnBMA), poly-epsilon-caprolactone (PCL) or polycarbonate (PC) has been studied by means of NMR, FT-IR and DSC techniques. It was found that SAA and PMMA, PEMA or PCL form miscible blends and SAA is only partially miscible with PC or PnBMA. Both phenyl groups and hydroxyl groups in SAA are involved in the intermolecular interactions between SAA and PMMA, PEMA or PCL. Also the hydroxyl-carbonyl hydrogen bonds existing in all the miscible blends studied are formed partially at the expense of the disruption of self-association of hydroxyl groups in pure SAA. (C) 1997 Elsevier Science Ltd. All rights reserved.

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The synthesis of novel thermotropic liquid crystalline copolyesters derived from aliphatic hydroxy acid (glycolic acid, GA) and aromatic hydroxy acid (p-hydroxybenzoic acid, PHBA) via a melt-copolycondensation process in the presence of various catalysts

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生物降解高分子在环境保护以及组织工程、药物控制释放、骨固定等医药领域有着广泛的应用。特别是以聚丙交酷(PLA)、聚乙交酯(PGA)、聚。一己内酯(PCL)以及它们的共聚物为代表的化学合成生物降解高分子材料,由于具有优异的性能、可以大规模生产、成本较低等优点,得到了人们广泛的关注。作为生物医用材料,对无毒性的要求很严。而现在所用的脂肪族聚酯大都是用金属盐、金属有机化合物等作为催化剂合成出来的,不可避免残留一些催化剂所用的金属元素。研究表明,即使是已经获得美国FDA批准的,现在用得最普遍的辛酸亚锡所残留的锡也可能引起一些细胞毒性。因此对毒性小且活性高的催化剂的研究是非常有意义。钙离子对人体是没有毒性的,因而这几年已引起了人们的兴趣,但文献中报道的钙催化剂,如CaHZ等,催化活性尚不够让人满意。本文对高效的钙催化剂在生物降解脂肪族聚酯中的应用进行详细的研究,得到了一些有意义的结论:1、用EO和PO处理的有机氨钙催化剂(Ca/EO和Ca/PO)聚合了CL和LLA。发现CL聚合速度很快,M/I=650时70℃反应3h后收率已达到90%以上,LLA的聚合速度比CL要慢,M/I=650、70℃反应10h后收率才达到90%以上。以上聚合反应有明显的活性聚合的特点:反应初期Mv和收率和聚合时间呈线性关系;Mv在一定范围内和M/I成线性关系。2、用红外、原子吸收和核磁共振等分析手段阐明了有机氨钙催化剂的结构:结构,而且这两个催化剂的活性中心分别是均是Ca-O键。CL和LLA的开环聚合可能是以配位一插入的机理进行的。3、用C。/PO催化剂聚合LLA时有一定程度的消旋化反应发生,曳NMR研究表明相当于88%的LLA和12%外消旋以共聚。提高反应温度到110℃时比旋光度只有-125℃说明消旋化反应比较严重。4、用C。/PO催化剂先聚合CL再聚合LLA的方法合成了PCL-PLA两嵌段共聚物,并用泊NMR,13C NMR,GPC,DSC,WAXD进行了表征。其绝对和相对分子量可以通过M/I和投料比进行控制。定量碳谱图表明有较严重的消旋化反应发生,相当于84%的LLA和16%外消旋LA共聚。DSC和似XD分析表明,PLA段的分子量小时PLA段不结晶,当PLA段的分子量达到一定程度(3000以上)后PCL一PLA嵌段共聚物有相分离现象发生。5、以各种分子量的PEG为引发剂用氨钙催化剂和开环聚合CL,合成了一系列PCL-PEG-PCL三嵌段共聚物,并用妞NMR,laCNMR,GPC,DSC,做XD进行了表征。聚合物的结构可以通过改变PEG的分子量和CL/PEG投料比来调整。从DSC和wAXD分析可以得出以下几个结论:PCL-PEG-PCL嵌段共聚物有相分离现象发生,形成PCL和PEG微相区域;PEG段的结晶行为受先结晶的PCL段的影响;PCL段的分子量越大PEG段的Tc和Tm越低,其结晶度越低。6、以各种分子量的PEG为引发剂用氨钙催化剂80℃下开环聚合LLA24小时,合成了一系列PLA-PEG-PLA三嵌段共聚物,和别的催化剂比起来温度低得多,反应时间也短得多。可以通过改变PEG的分子量和CL/PEG投料比来调整聚合物的结构。DSC和WAXD分析表明,PLA-PEG-PLA三嵌段共聚物中PEG段的结晶能力受PLA段的影响非常大:当PEG段的分子量很小时(如1000)很难结晶;即使当PEG段的分子量较大时如果PLA段的分子量达到一定程度时PEG段同样也不结晶;而且PLA段的结晶行为受本身分子量的影响比较大,其Tc和伽随着分子量增加有较大的提高。7、合成了MPEG-PLA两嵌段共聚物,发现合成PLA段的分子量大的聚合物比较困难,MPEG-PCL两嵌段共聚物很难合成。DsC和WAXD分析表明,PLA段对MPEG段结晶有一定程度的影响,但是比三嵌段共聚物的影响要小得多。8、用荧光光谱和IHNMR研究了上面合成出的几个样品的胶束行为。发现cmc由大到小的顺序为MPEG(5000)-PLA(5100),PLA(3050)-PEG(4600)-PLA(3050),PCL(2270)-PEG(5000)-PCL(2270),PCL(4600)-PEG(4600)-PCL(4600)。PCL-PEG-PCL三嵌段共聚物在水中形成了具有核一壳结构的胶束。9、以苯甲醇处理的有机氨钙催化剂开环聚合了CL。泊NMR谱图表明得到的聚合物具有苯端基。这一结果为用硝苯基乙醇代替苯甲醇制备催化剂,然后开环聚合CL或LA得到硝基苯端基的脂肪族聚酯打下了实验基础。

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聚(β-轻基丁酸醋-co-β-经基戊酸酷)(PHBV)是一种生物降解脂肪族聚酷,其结晶成核密度低,结晶速度比较慢且易生成大尺寸的球晶。以球晶中心向外扩展形成许多圆环状的开裂以及沿球晶生长方向形成许多劈裂,从而导致了PHBV呈脆性断裂。只要能有效地降低其结晶度,减小球晶尺寸,就可以达到增韧的目的。通过PHBV与二氧化碳一环氧丙烷共聚物(PPC)反应接枝来调控PHBV的结构和相形态,具有实际的理论意义和应用前景。开展了PPC的封端和与PHBv的接枝反应。首次提出了甲基丙烯酸缩水甘油醋(GMA)与PHBV及PPC与PHBV-GMA的接枝反应机理。确信PHBV接枝GMA的接枝点发生在PHBV骨架上的季碳原子上,反应过程中没有交联反应和降解反应的发生。发现PHBv-g-Gh1A共聚物上环氧基能与封端的PPc上的梭基熔融反应原位生成了PHBv-g-PPC共聚物。在机械共混物中两大分子之间的接枝和醋交换反应几乎不发生。GMA的引入阻止了PHBV的降解行为,从而改善了PHBV的加工性能。成功地调控了PHBVPC结构及相形态。证实了PHBV与PPC在反应共混过程中的接枝反应。加入PPC阻碍了PHBV的结晶,这在反应体系中更加明显。通过控制反应条件和反应物的组成,可以使非反应共混物中PHBV球晶变得不规则,发生扭曲变形,球晶尺寸降低;而在反应共混物中,可以使其球晶已很难辨认。SEM结果表明在PHBV用PC(30/70)和PHBV用PC(70/30)共混物中发生了相转变。尤其在反应共混物中淬断面表现为塑性。力学性能随共混组成而发生较大幅度的改变。发现通过改变组成及对反应共混相结构的控制,PHBV共混物的断裂伸长率可变化1一2个数量级,从而实现了制得一系列从脆性断裂塑料到高韧性弹性体的高分子材料。研究了反应接枝共混体系的熔融、结晶行为、等温和非等温结晶动力学。发现加入的GMA对PHBV有成核作用。引入的PPC阻碍了PHBV的结晶,降低PHBV的结晶度,球晶径向生长速率,平衡熔点和结晶能力。结晶速率与冷却速率有较大的依赖性。修正的Avrami方程能很好地描述PHBv和PHBv爪PC共混物非等温结晶过程。对动态力学性能的分析发现,反应共混物相比于非反应共混物聚合物玻璃化温度都有不同程度的内移,说明两组分间相容性增加,接枝共聚物具有良好的增容效果,显著地改善了两相界面性能。PHBV可以部分进入PPC相区,使共混物分子运动特征发生改变。发现在熔体加工条件下,PHBV与PPC之间很难发生酷交换反应,但是以辛酸亚锡为催化剂,氯苯为溶剂,在120℃条件下,两者可以发生醋交换反应。在聚己内醋(PCL)用PC熔融共混过程中GMA可以有效地抑制过氧化二异丙苯(DCP)所引起的PCL交联反应。在DCP和OMA存在下得到的样品之球晶具有十字消光现象,球晶规整度增大。同在溶液中醋交换催化剂存在下PPC和PCL发生了酷交换反应后所形成的球晶相结构相类似,而PCL/PPCOCP体系所形成的球晶中含有大量的非晶相区。从而,确信了GMA在脂肪族聚醋,脂肪族聚碳酸醋等生物降解高分子反应共混体系中的双重作用:一是引入具有高反应活性的官能团;二是减少在过氧化物作用下PHBV类高分子的降解及PCL类高分子的交联反应。PCL共混组分可以提高PPC相区的稳定性。提高反应时间或催化剂浓度同样能够改善热稳定性。

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A methodological survey of microsphere formation and microencapsulation techniques based on solvent extraction/evaporation techniques is presented. Thus, basic features of solvent extraction and solvent evaporation processes, including droplet formation, droplet/particle stabilization, and solvent removal, are outlined. Preparation of a wide range of microspherical and microcapsular products based on biodegradable polyesters, polysaccharides, and nonbiodegradable polymers are discussed. Dependence of microcapsule characteristics on manufacturing parameters, as well as performance evaluation of microspherical and microcapsular products, are also briefly covered.

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A new biodegradable amphiphilic block copolymer, poly(ethylene glycol)-b-poly(L-factide-co-9-phenyl-2,4,8, 10-tetraoxaspiro[5,5]undecan-3-one) [PEG-b-P(LA-co-PTO)], was successfully prepared by ring-opening polymerization (ROP) Of L-lactide (LA) and functionalized carbonate monomer 9-phenyl-2,4,8,10-tetraozaspiro[5,5]undecan-3-one (PTO) in the presence of monohydroxyl poly(ethylene glycol) as macroinitiator using Sn(Oct)(2) as catalyst. NMR, FT-IR, and GPC studies confirmed the copolymer structure.

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Novel biodegradable poly(carbonate ester)s with photolabile protecting groups were synthesized by ring-opening copolymerization Of L-lactide (LA) with 5-methyl-5-(2-nitro-benzoxycarbonyl)-1,3-dioxan-2-one (MNC) with diethyl zinc (Et2Zn) as catalyst. The poly(L-lactide-co-5-methyl-5-carboxyl-1,3-dioxan-2-one) (P(LA-co-MCC)) was obtained by UV irradiation Of poly(L-lactide acid-co-5-methyl-5-(2-nitro-benzoxycarbonyl)-1,3-dioxan-2-one) (P(LA-co-MNC)) to remove the protective 2-nitrobenzyl group.

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A facile and efficient method to immobilize bioactive proteins onto polymeric substrate was established. Testis-specific protease 50 (TSP50) was immobilized on ultrafine biodegradable polymer fibers, i.e., (1) to prepare a propargyl-containing polymer P(LA90-co-MPCIO) by introducing propargyl group into a cyclic carbonate monomer (5-methyl-5-propargyloxycarbonyl-1,3-dioxan2-one, MPC) and copolymerizing it with L-lactide; (2) to electrospin the functionalized polymer into ultrafine fibers; (3) to azidize the TSP50, and (4) to perform the click reaction between the propargyl groups on the fibers and the azido groups on the protein.

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A series of novel poly(ester-carbonate)s bearing pendant allyl ester groups P(LA-co-MAC)s were prepared by ring-opening copolymerization Of L-lactide (LA) and 5-methyl-5-allyloxycarbonyl-1,3-dioxan-2-one (MAC) with diethyl zinc (ZnEt2) as initiator. NMR analysis investigated the microstructure of the copolymer. DSC results indicated that the copolymers displayed a single glass-transition temperature (T-g), which was indicative of a random copolymer, and the Tg decreased with increasing carbonate content in the copolymer.

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Amphiphilic biodegradable star-shaped polymer was conveniently prepared by the Sn(Oct)(2)-catalyzed ring opening polymerization of c-caprolactone (CL) with hyperbranched poly(ester amide) (PEA) as a macroinitiator. Various monomer/initiator ratios were employed to vary the length of the PCL arms. H-1 NMR and FTIR characterizations showed the successful synthesis of star polymer with high initiation efficiency. SEC analysis using triple detectors, RI, light scattering, and viscosity confirmed the controlled manner of polymerization and the star architecture.

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A new method for quantitative analysis of lactide has been developed by applying chemical kinetics to a HPLC system. The most important advance is its practical approach to the quantification of analytes that are unstable in the HPLC mobile phase. In HPLC analysis, anhydrous mobile phases cannot separate lactide from impurities, and only mixtures of water and organic solvent can achieve effective separation. By selecting conditions for testing and studying the kinetics of lactide hydrolysis, extensive experiments revealed that lactide degradation can be treated as a pseudo-first-order reaction under the given HPLC conditions, and lactide content or purity can be quantitatively determined. This method is practical for measuring the purity of the intermediate lactide in polylactic acid (PLA) production and the lactide content in PLA.