首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到18条相似文献,搜索用时 312 毫秒
1.
张勇  冯增国  刘凤香  张爱英 《化学学报》2002,60(12):2225-2231
用熔融缩聚法合成了一系列基于聚对苯二甲酸丁二醇酯(PBT)、聚丁二酸丁 二醇酯(PBS)及聚乙二醇(PEG)的嵌段共聚物(PBT-co-PBS/PEG)。^1H NMR结 构分析显示,软段摩尔百分含量恒为20%。随组成中PBS含量增加,软段质量百分 含量略微升高,硬段PBT平均序列长度由2.80逐步减至1.23,PBS平均序列长度由1. 27逐步增加到4.76,无规度在1.1附近,两者呈无规分布。受组成及硬段平均序 列长度变化影响,材料内部呈微观相分离状态,DSC热分析曲线上可分别观察到软 、硬段熔点(Tm,s,Tm,h)及玻璃化转变温度(Tg,s,Tg,h)。硬段熔点及结晶度随 PBS含量升高而降低,在50-60mol%处达到最小值,则是PBS与PBT二者间形成共晶 所致。力学性能测试及水解降解实验表明,将脂肪族聚酯PBS引入PEGT/PBT共聚体 系,可赋予高分子链更好的柔韧性及亲水性,加快降解速率。  相似文献   

2.
用熔融缩聚法合成了一系列聚(对苯二甲酸丁二醇酯-co-对苯二甲酸环己烷二甲醇酯)-b-聚乙二醇嵌段共聚物(PBCG),用NMR,GPC,DSC,TGA及力学性能测试等方法表征了材料的结构与性能.GPC分析显示,共聚物分子量均具有较为对称的单峰分布,多分散性指数低于1.70.13CNMR谱结果表明,随PCT摩尔分数(xPCT)从10%增至60%,PBT平均序列长度由4.02降到1.41;而PCT平均序列长度则由1.17升至2.50,二者呈无规分布.受硬段平均序列长度及结晶能力影响,硬段熔点及结晶度在xPCT为20%~30%处均达到最小值,可能是硬段间形成共晶所致.TGA分析显示,引入芳香族聚酯组分PCT确可提高材料的热稳定性.力学性能测试说明,降低结晶度有利于提高材料的断裂延伸率,相反,则有助于增强弹性模量,断裂强度及屈服强度.  相似文献   

3.
相同软硬段质量配比聚醚酯弹性体PEG/PBT的结构与表征   总被引:9,自引:0,他引:9  
以熔融缩聚法合成了一系列聚乙二醇(PEG)/聚对苯二甲酸丁二醇酯(PBT)聚醚酯热塑性弹性体,用NMR,FTIR,DSC及力学性能测试等方法表征了材料的结构及性能.讨论了在相同软硬段质量配比下,不同软硬段长度对材料性能的影响.结果表明,随着软段PEG长度增加,硬段PBT长度相应增长,弹性模量基本保持不变,抗拉强度、屈服应力及特性粘度增加.  相似文献   

4.
用差示扫描量热法(DSC),广角X射线衍射(WAXD),傅立叶变换红外光谱(FTIR)等技术研究了对苯二甲酸丁二酯-ε-己内酯(PBT—PCL)多嵌段共聚物中硬链段的受限结晶。结果表明,PBT—PCL共聚酯中软硬链段在非晶区的混容性比较好,不同组成的样品均显示出一个玻璃化转变温度;对硬段含量超过50%的共聚酯来说,硬链段可以结晶,而软链段不能结晶;由于硬链段的受限特点,BT硬链段的结晶受软链段的影响和制约,其结晶能力随硬段序列长度的增加而逐渐增大。  相似文献   

5.
以熔融缩聚法合成了一系列基于聚乙二醇 (PEG) 聚对苯二甲酸丁二醇酯 (PBT)的聚醚酯热塑性弹性体 ,用NMR、IR、DSC及力学性能测试等方法表征了材料的结构及性能 .讨论了在相同软段长度情况下 ,不同硬段长度对材料结构与性能的影响 .实验表明 ,随着体系中硬段PBT长度的减小 ,弹性模量、抗拉强度降低 ,特性粘度、吸水量及断裂形变量增加 ,材料性能良好可调  相似文献   

6.
用二步法合成了不同软段 (PPO ,PEG ,PEPA)聚氨酯 酰亚胺 (PUI)嵌段共聚物 ,FTIR光谱表征了所有合成PUI分子主链均含有酰亚胺链段 ,并研究了PUI嵌段共聚物的热性能受软段类型及长度的影响 .DSC研究表明聚酯型PUI的软硬段之间的相容性比聚醚型PUI好 ,随相同软段分子量的增加 ,PUI体系的软硬段兼容性变差 ,并显示了相分离的特征 ;热失重 (TGA)研究得出不同软段的PUI样品的热稳定性大小顺序为 :PEPA PUI >PEG PUI>PPO PUI ;动态力学 (DMTA)研究给出了所合成的PUI样品在 5 0~ 2 0 0℃范围内均出现了较长的模量平台显示出有较好的耐热性 ,且随硬段含量的升高其储能模量不断增强  相似文献   

7.
合成了末端均为羟基的聚丁二酸丁二醇酯(PBS)预聚物,再以PBS的端羟基引发D-丙交酯(D-LA)开环聚合,得到聚右旋乳酸(PDLA)与PBS的三嵌段共聚物(PDLA-PBS-PDLA).通过凝胶渗透色谱和核磁共振氢谱进行了结构表征.随着m(D-LA)∶m(PBS)由0.51∶1逐渐增加至2.60∶1,PDLA-PDS-PDLA中PDLA链段的长度逐渐增加.随着PDLA嵌段长度的增加,PDLA嵌段对PBS嵌段的限制作用增强,并导致PBS嵌段结晶温度下降,结晶焓降低.当m(D-LA)∶m(PBS)=2.60∶1时,PBS嵌段不再能形成结晶.而m(D-LA)∶m(PBS)在0.51∶1~3.04∶1范围内,PDLA嵌段均可形成结晶,PDLA嵌段的熔点随其在嵌段共聚物中含量的增加而逐渐升高,但PDLA嵌段的熔融焓呈现先增加后降低的趋势.在部分嵌段共聚物中,PBS和PDLA嵌段可各自形成结晶,且PBS和PDLA的结晶结构不随组分的变化而发生改变,表明该嵌段共聚物中PDLA嵌段和PBS嵌段呈微相分离结构.  相似文献   

8.
用低温溶液法合成了以聚二甲基硅氧烷(PSX)为软段、聚对苯二甲酸酚酞酯(PAE)为硬段的〔-(AB)-n〕型多嵌段共聚物。对共聚物结构的表征表明,使用该方法可得到硅氧烷含量可控的分子量较高的共聚物。随软段长度及含量的不同,既可得到弹性体也可得到较坚硬的材料。共聚物具有两相结构、较好的力学性能、耐热性及成膜性。  相似文献   

9.
聚乙二醇型聚氨酯软硬段对其相变储热性能的影响   总被引:2,自引:0,他引:2  
以不同分子量的聚乙二醇(PEG)为软段,MDI-BDO为硬段,采用两步法溶液聚合合成一种具有固-固相变储热性能的聚氨酯材料.通过DSC,WAXD等测试手段对体系的软硬段结晶性,微相分离,相变可逆性及循环热稳定性进行研究,结果表明,聚氨酯中硬段的存在对软段结晶有着很大的影响,当软段分子量达到2000或以上时,软段才具有较大的结晶度和熔融相变焓,且硬段含量必须高于一定值才能形成较为完善的物理交联网络以保证材料在发生相变时维持固体状态.同时符合这两个条件的试样能具有较好的固-固相变储热性能.就软段PEG含量及分子量对材料储热性能的影响进行了研究,通过调节软段含量与分子量得到一系列具有不同相变焓和相变温度的聚氨酯固-固相变储热材料.经测试还发现,该材料具备很好的相变可逆性和循环热稳定性,是一类很有开发前景的相变储热材料.  相似文献   

10.
以胆酸为引发剂,用辛酸亚锡催化丙交酯开环聚合合成星型CA-PLA。利用DCC为脱水剂,将不同分子量的端羧基化PEG与星型CA-PLA偶联,合成一系列以胆酸为核的星形两亲性嵌段共聚物,用透析法制备共聚物胶束,并用TEM和DLS研究胶束的性质。合成了分子量为6000和12000的两种CA-PLA,其分子量可以通过胆酸羟基与丙交酯的比例进行控制。将分子量2000和5000的PEG分别与两种CA-PLA偶联,合成了四种星型CA-PLA-PEG嵌段共聚物。共聚物胶束形貌为均匀的球形,粒径为20-40nm,且随共聚物中PLA链段分子量的增加而增大,随PEG链段分子量的增加而减小。临界胶束浓度(CMC)低于同等链段长度的线型PLA-PEG嵌段共聚物胶束。  相似文献   

11.
Three series of poly(butylene terephthalate-co-succinate)-b-poly(ethylene glycol) segmented random copolymers with starting PEG number-average molecular weight (Mn(PEG)) at 600, 1000 and 2000, respectively, as well as hard segment poly(butylene succinate) (PBS) molar fraction (MPBS) increasing from 10% to 30% were synthesized through a transesterification/polycondensation process and characterized by means of GPC, NMR, DSC, WAXD and mechanical testing etc. The investigations were mainly focused on the influence of Mn(PEG) on the properties of resulting copolymers bearing two sorts of hard segments. It is revealed that all the samples show a relatively symmetrical GPC curves with the number-average molecular weight more than 4 × 104, while the polydispersity decreases from 1.9 to 1.4 as the increasing Mn(PEG) because of the prolonged time for polycondensation and the faster exclusion of small molecules by-product with the decreased molten viscosity. The sequence distribution analysis shows that the average sequence length of hard segment PBT decreases while that of PBS increases with the increasing MPBS and are independent of the soft segment length. The approximate unit degree of randomness as well as the soft segment length turns out that the segments take a statistically random distribution along the backbone. Micro-phase separation structure is verified for the appearance of two glass transition temperatures and two melting points, respectively, in DSC thermograms of most samples. The depression of melting points and the reduction of crystallinity of hard segments with increasing MPBS are related to the crystal lattice transition from α-PBT to PBS and discussed in the viewpoint of cohensive energy. Mechanical testing results demonstrate that the increase of amorphous domains the increase of MPBS as well as Mn(PEG) will provide high elongation and good flexibility of copolymer chain. The in vitro degradation experiments show that the partial substitution of aromatic segment PBT with aliphatic PBS will substantially accelerate the degradation rate with enhanced safety of degradation by-products and while changing Mn(PEG) broaden the spectrum to tailor the properties.  相似文献   

12.
Biodegradable poly(sebacic anhydride-co-caprolactone) (PSA-co-PCL) multi-block copolymers were prepared by condensation of acylated PSA and PCL prepolymers with different weight ratios. The homopolymer and copolymers were characterized by 1H-NMR, gel permeation chromatography (GPC), differential scanning calorimeter (DSC) and atom force microscope (AFM). 1H-NMR and GPC has indicated the formation of PSA-co-PCL multi-block copolymers, in which PSA and PCL segments are randomly distributed. The incorporation of PCL segments into the molecule chains even at a content of 20 wt% could significantly decrease the molecular weight distribution of the copolymer and increase its weight average molecular weight, as compared with PSA homopolymer. DSC has revealed that the melting temperature and degree of crystallinity for both SA and CL components are strongly composition dependent, implying the hindrance effect of the two components on crystallinity of each other. AFM observation has shown the difference in crystalline structures between PSA and PCL phases in the copolymers. In-vitro degradation tests performed at 37 °C in PBS buffer solution (pH 7.4, 0.1 M) have demonstrated the acceleration of degradation rate of the sample with increasing SA content in the copolymer.  相似文献   

13.
聚丙交酯/聚乙二醇多嵌段共聚物的合成及其性能   总被引:18,自引:0,他引:18  
聚丙交酯 (PLLA)由于具有良好的生物降解性和生物相容性 ,在医学领域已经得到了广泛的临床应用 ,近来又被制备成细胞支架大量应用于组织工程中[1,2 ] ,但由于其疏水性而造成细胞亲和性不好 .聚乙二醇 (PEG)具有良好的亲水性 ,良好的生物相容性 ,但是PEG是非降解性的 ,只有低分子量的PEG可以被吞噬细胞所吞噬或透过肾滤膜而排出体外 ,因此 ,低分子量的PEG常被用来与丙交酯 (L LA)共聚以改善PLLA支架的亲水性 .聚丙交酯 聚乙二醇共聚物 (PLE)的三嵌段及两嵌段共聚物的合成及其性能的研究已被广泛报道[3~ 5] .研究…  相似文献   

14.
Block copolymers demonstrate excellent thermal and mechanical properties superior to their corresponding random copolymers and homopolymers. However, it is difficult to synthesize block copolymers comprising of different polyester segments by copolycondensation due to the serious transesterification reaction. In this study, multiblock copolymers comprising of two different polyester segments, i.e. crystallizable poly(butylene succinate) (PBS) and amorphous poly(1,2‐propylene succinate) (PPSu), were synthesized by chain‐extension with hexamethylene diisocyanate (HDI). Amorphous PPSu segment was incorporated to improve the impact strength of PBS. The copolymers were characterized by GPC, laser light scattering (LLS), NMR, DSC, and mechanical testing. The results of 13C NMR spectra suggest that multiblock copolymers with regular sequential structure have been successfully synthesized. The data of DSC and mechanical testing indicate that block copolymers possess excellent thermal and mechanical properties with satisfactory tensile strength and extraordinary impact strength achieving upto 1900% of pure PBS. The influence of PPSu ratio and chain length of both the segments on the thermal and mechanical properties was investigated. The incorporation of an amorphous soft segment PPSu imparts high‐impact resistance to the copolymers without obviously decreasing the melting point (Tm). The favorable mechanical and thermal properties of the copolymers also depend on their regular sequential structure. At the same time, the introduction of amorphous PPSu segment enhances the enzymatic degradation rate of the multiblock copolymers. Copyright © 2009 John Wiley & Sons, Ltd.  相似文献   

15.
To increase the Tg in combination with a retained crystallization rate, bis(2‐hydroxyethyl)terephthalate (BHET) was incorporated into poly(butylene terephthalate) (PBT) via solid‐state copolymerization (SSP). The incorporated BHET fraction depends on the miscibility of BHET in the amorphous phase of PBT prior to SSP. DSC measurements showed that BHET is only partially miscible. During SSP, the miscible BHET fraction reacts via transesterification reactions with the mobile amorphous PBT segments. The immiscible BHET fraction reacts by self‐condensation, resulting in the formation of poly(ethylene terephthalate) (PET) homopolymer. 1H‐NMR sequence distribution analysis showed that self‐condensation of BHET proceeded faster than the transesterification with PBT. SAXS measurements showed an increase in the long period with increasing fraction BHET present in the mixtures used for SSP followed by a decrease due to the formation of small PET crystals. DSC confirmed the presence of separate PET crystals. Furthermore, the incorporation of BHET via SSP resulted in PBT‐PET copolymers with an increased Tg compared to PBT. However, these copolymers showed a poorer crystallization behavior. The modified copolymer chain segments are apparently fully miscible with the unmodified PBT chains in the molten state. Consequently, the crystal growth process is retarded resulting in a decreased crystallization rate and crystallinity. © 2007 Wiley Periodicals, Inc. J Polym Sci Part A: Polym Chem 45: 882–899, 2007.  相似文献   

16.
采用大分子单体技术合成了一系列以聚乙二醇为支链、甲基丙烯酸六氟丁酯为主链的含氟两亲接枝共聚物(PHFMA-g-PSPEG)。用1HNMR和凝胶色谱(GPC)对制备的大分子单体和两亲接枝共聚物的结构进行了表征。利用示差扫描量热法(DSC)、X射线衍射(XRD)和偏光显微镜(POM)测试技术对含氟两亲接枝共聚物的结晶行为进行了研究。DSC和XRD结果表明,随着共聚物中含氟链段质量分数的增加,其结晶温度(Tc)和结晶度(Xc)均降低,而结晶熔融温度(Tm)先减小后增加。POM发现,随着共聚物中含氟链段质量分数的增加,其结晶速度减慢,共聚物形成清晰球晶的能力减弱,当共聚物中含氟链段质量分数为57%时,含氟两亲接枝共聚物已不能形成清晰的球晶。  相似文献   

17.
制备了高分子量的聚丁二酸丁二醇酯,并通过与对苯二甲酸二甲酯的无规共聚调节其生物可降解性及力学性能,得到了具有优良机械性能和不同生物降解速度的一系列共聚物,并对共聚物序列结构、热力学性能、结晶性进行了研究.结果表明,该共聚物为无规共聚物,PBS和PBT分别结晶.共聚物的结晶熔点符合无规共聚物的Flory方程.  相似文献   

18.
The star-shaped amphiphilic block copolymer (DPEA-PCL-PEG) was prepared through ring opening polymerization of ε-caprolactone (CL) initiated by hydroxyl end-capped dendritic poly(ether-amide) (DPEA-OH), then coupling with monomethoxy-terminated poly(ethylene-glycol) (PEG) via an esterification process. The molecular structure was verified by FT-IR, 1H NMR and gel permeation chromatography (GPC). The number average molecular weight of the PCL arm was calculated to be about 1910 g mol−1 by 1H NMR analysis. The number average molecular weight of the copolymer was determined to be 74,020 with the molecular weight distribution of 1.15 by GPC. The DSC and X-ray diffraction analysis indicated that the copolymer possesses double melting and crystallization peaks, attributed to PCL and PEG segments in DPEA-PCL-PEG. The corresponding melting and crystallization temperature, and value of crystallinity are much lower than that of their individual homopolymers. The copolymer easily formed the core-shell structural nanoparticles as micelles in water with a lower critical micelle concentration of 5.524 mg l−1.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号