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1.
利用L 谷氨酸和苯甲醇反应制备了L 谷氨酸 苄酯 ,然后将其与三聚光气反应制备了N 羧基 L 谷氨酸 环内酸酐 (NCA) .以聚乙二醇单甲醚 (MPEG)为原料 ,制备了端氨基聚乙二醇单甲醚 (MPEG NH2 ) ,并以此作为引发剂 ,引发NCA开环聚合 ,合成了不同分子量的聚L 谷氨酸 苄酯 聚乙二醇单甲醚 (PBGM )嵌段共聚物 .利用IR、1 H NMR、DSC、GPC等方法对共聚物结构进行了表征 .结果表明 ,MPEG NH2 引发NCA开环聚合得到的是嵌段共聚物 ,通过1 H NMR谱得到共聚物组成及数均分子量 ;随着共聚物中MPEG含量的增高 ,聚L 谷氨酸 苄酯的亲水性有所改善  相似文献   

2.
利用光气法分别以L-谷氨酸和L-丙氨酸为原料,合成了γ-谷氨酸苄酯-NCA单体和L-丙氨酸-NCA单体,再以三乙胺为引发剂,合成了聚(L-丙氨酸)-聚(γ-谷氨酸苄酯)(PLA50-b-PBLG20)双嵌段共聚多肽,并用乙醇胺对其中的PBLG嵌段进行亲核取代,把疏水性的苄酯侧链变为亲水性的羟烷酰胺侧链,得到双亲性的聚(L-丙氨酸)-聚羟乙基谷氨酰胺(PLA-b-PHEGA)双嵌段共聚多肽.利用红外光谱和核磁共振谱对产物进行了表征,用TEM研究了双嵌段共聚多肽PLA50-b-PHEGA20在水溶液中的自组装.研究结果表明,双嵌段共聚多肽在水溶液中可自组装形成囊泡.  相似文献   

3.
聚L-丙氨酸-聚乙二醇嵌段共聚物的胶束化行为研究   总被引:8,自引:3,他引:5  
以氨基聚乙二醇单甲醚(MPEG-NH2)为大分子引发剂, 采用开环聚合方法合成了聚L-丙氨酸-聚乙二醇嵌段共聚物(PAME), 并对其结构进行了表征; 用圆二色谱(CD)研究了嵌段共聚物在水溶液中的二级结构, 用芘荧光探针技术研究了共聚物胶束的形成及其临界胶束浓度(CMC), 利用动态光散射(DLS)和透射电镜(TEM)研究了胶束的粒径分布和形态. 结果表明, 在水溶液中共聚物链以α-螺旋构象形式存在, 在一定条件下嵌段共聚物能够形成球形的稳定胶束, PAME-1形成胶束的CMC为1.99×10-5 mol/L, CMC值受共聚物中聚L-丙氨酸(PLA)链段含量的影响.  相似文献   

4.
分别以氨基聚乙二醇和氨基聚乙二醇单甲醚为大分子引发剂,采用开环聚合的方法合成了两亲性聚L-丙氨酸-聚乙二醇(PAE)和聚L-丙氨酸-聚乙二醇单甲醚(PAME)两种嵌段共聚物,其结构经1H NMR,IR,DSC,GPC等表征;利用园二色技术研究了其在水溶液中的二级结构,用芘荧光探针技术研究了其胶束的形成及其临界胶束浓度(CMC),利用透射电镜研究了胶束的形态。结果表明,在水溶液中共聚物链以α-螺旋构象形式存在,在一定条件下嵌段共聚物PAE-1,PAE-2,PAME-1和PAME-2能够形成球形的稳定胶束,PAE-1形成胶束的CMC为3.36×10-5mol.L-1,CMC值受嵌段类型和共聚物中聚L-丙氨酸链段含量的影响。  相似文献   

5.
以单甲氧基聚乙二醇伯胺(m PEG-NH2)作为大分子引发剂,引发γ-炔丙基-L-谷氨酸-N-羧基-环内酸酐(NCA)开环聚合的方法,合成了侧链上含有炔基的聚乙二醇-b-聚(γ-炔丙基-L-谷氨酸)两嵌段共聚物(PEG-b-PPLG).进一步通过巯基-炔基加成的"点击"化学方法,对两嵌段共聚物中聚氨基酸PPLG嵌段分别修饰了普通疏水性的饱和烷烃、具有超疏水性质的全氟代烷烃,并利用红外光谱、圆二色光谱、动态光散射和透射电子显微镜等技术,对合成的两嵌段共聚物在水溶液及有机溶剂四氢呋喃(THF)中的自组装性质进行了研究.研究发现两嵌段共聚物修饰前后,聚氨基酸嵌段在水和THF中都能保持一定的α-螺旋的构象,并进一步自组装形成以α-螺旋的聚氨基酸嵌段为内核、PEG嵌段为外壳的纳米聚集结构.  相似文献   

6.
首先,以溴代聚乙二醇单甲醚(PEO-Br)为引发剂、甲基丙烯酸丁酯(BMA)为单体,通过原子转移自由基聚合(ATRP)制备了一系列具有不同聚乙二醇(PEO)质量分数的聚甲基丙烯酸丁酯-b-聚乙二醇嵌段共聚物(PBMA-b-PEO)。在此基础上,将手性酒石酸(TA)以氢键的方式选择性掺入到嵌段共聚物的PEO相中,诱导嵌段共聚物自组装制备具有手性螺旋结构的复合薄膜PBMA-b-PEO/TA。利用小角X射线散射(SAXS)、透射电子显微镜(TEM)和圆二色光谱(CD)对嵌段共聚物复合薄膜进行表征,研究了嵌段质量分数对手性诱导嵌段共聚物螺旋结构自组装的影响。结果表明:掺入TA与嵌段共聚物质量比为0.12、0.15的TA,当PEO质量分数为0.17~0.24时,有利于嵌段共聚物相分离形成柱状螺旋结构;当PEO质量分数增加至0.26时,嵌段共聚物自组装则形成层状结构,在分子间氢键作用下虽然发生手性转移,但无法得到螺旋结构。  相似文献   

7.
聚乙二醇甲醚-聚(D,L-乳酸)嵌段共聚物纳米胶束的制备   总被引:3,自引:0,他引:3  
聚乙二醇甲醚-聚(D;L-乳酸)嵌段共聚物纳米胶束的制备;聚乙二醇单甲醚;两亲性二嵌段共聚物;纳米沉淀技术  相似文献   

8.
以基于亚胺键的嵌段共聚物为构筑单元的温度/pH响应性共聚物复合胶束(CMs), 由于具有亚胺键和核-壳-冠结构, 表现出较高的灵敏度和稳定性. 以聚乙二醇单甲醚(MPEG)、 N-乙烯基己内酰胺(NVCL)和ε-己内酯(ε-CL)为原料, 分别制备了端醛基聚乙二醇单甲醚(MPEG-CHO)、 端醛基聚N-乙烯基己内酰胺(PNVCL-CHO)和端氨基聚己内酯(H2N-PCL), 利用希夫碱反应, 进一步制备了基于亚胺键的聚乙二醇单甲醚-b-聚己内酯(MPEG-b-PCL)和聚N-乙烯基己内酰胺-b-聚己内酯(PNVCL-b-PCL)嵌段共聚物, 对共聚物结构进行了确认. 以MPEG-b-PCL和PNVCL-b-PCL为构筑单元, 制备了共聚物复合胶束, 研究了复合胶束对阿霉素的包载、 释放性质和细胞毒性等. 研究结果表明, 室温下MPEG-b-PCL和PNVCL-b-PCL能够在水中自组装形成以PCL为核、 MPEG和PNVCL为混合壳的共聚物复合胶束, 在生理温度下, 温敏性PNVCL链段发生相变塌缩在PCL核表面, 能够防止药物扩散释放, 亲水性MPEG链段形成可控通道. 药物体外释放结果表明, 在弱酸性环境中, 亚胺键能够断裂, 胶束被破坏, 促进药物的释放, 噻唑蓝(MTT)实验表明, 复合胶束的细胞毒性较低.  相似文献   

9.
N3-苯丙氨酸与嵌段共聚物聚乙二醇-b-聚炔丙基缩水甘油(MPEO-b-PGPE)发生"click"反应,合成了具有光学活性的两亲嵌段共聚物聚乙二醇-B-聚L-苯丙氨酸三唑基缩水甘油(MPEO-b-PGTP),用1H-NMR和元素分析对其结构和组成进行表征.并对其自组装行为进行研究,滴体积法测定MPEO-b-PGTP溶...  相似文献   

10.
聚乙二醇单甲醚-聚L-赖氨酸嵌段共聚物的合成及其表征   总被引:1,自引:0,他引:1  
以L-赖氨酸为原料,先制备Nε-苄氧羰基-L-赖氨酸,光气法合成Nε-苄氧羰基-L-赖氨酸-N-羧酸酐[Lys-(Z)-NCA]。以聚乙二醇单甲醚(MPEG)为原料,制备了端氨基聚乙二醇单甲醚(MPEG-NH2),并以此为大分子引发剂,在氯仿中引发Lys-(Z)-NCA开环聚合,经无水溴化氢脱苄,合成不同组成和分子量的聚乙二醇单甲醚-聚L-赖氨酸嵌段共聚物。用IR1、H-NMR、GPC、DSC等对共聚物结构进行了表征。结果表明:MPEG-NH2引发Lys-(Z)-NCA开环聚合得到的是嵌段共聚物,通过1H-NMR谱计算得到了共聚物MPEG-PLL-1、MPEG-PLL-2、MPEG-PLL-3、MPEG-PLL-4中PLL链段的摩尔分数分别为0.553、0.795、0.848、0.861,共聚物数均分子量(Mn)分别为2.3×104、6.1×104、8.6×104、9.5×104。  相似文献   

11.
利用核磁共振方法研究了AB型双嵌段共聚物(MPEG45-b-PA32)在选择性溶剂中的自组装行为及胶束化过程.嵌段共聚物在三氟乙酸中聚氨基酸和聚乙二醇链段均处于自由运动状态,聚丙氨酸链段为无规线团结构.在向该溶液中逐渐加入氘代水的过程中,聚丙氨酸链段又重新聚集形成规整的二级结构.结合1H-NMR和COSY谱分析,结果显示这一自组装过程伴随着聚(L-丙氨酸)链段由无规线团向α-螺旋结构的构象转变,同时嵌段共聚物逐渐形成核-壳型胶束结构.利用透射电镜观察了所形成胶束的形态,嵌段共聚物主要形成粒径150 nm到220 nm的球形胶束.  相似文献   

12.
开环聚合;生物降解共聚物;两亲型聚L-亮氨酸-聚乙二醇单甲醚嵌段共聚物的合成与表征  相似文献   

13.
Summary: This study reported the preparation and characterization of PCL-b-mPEG (poly(ε-caprolactone)-block-poly(ethylene glycol)) and PLL-b-mPEG (poly(L-lactide)-block-poly(ethylene glycol)) diblock copolymers by microwave heating and comparison of resulted products the ones with prepared by conventional heating. Diblock copolymers were synthesized successfully by the microwave-assisted ROP in the presence of stannous octoate (SnOct2) as catalyst under nitrogen atmosphere in different monomer ratios. Structural and functional characterization of copolymers were performed by FTIR, 1H-NMR and DSC. Molecular weight values were determined by GPC and also calculated from 1H-NMR. According to the results, microwave irradiation allowed to obtain polymers with very narrow size distribution in very short reaction time. Similar polymers prepared by conventional heating were also synthesized for comparison. Molecular weight and conversion of polymers were increased by irradiation time. This change was continued until a certain time point after which no more increase was observed. It was concluded that microwave irradiation is a succesful method to obtain these diblock copolymers in very short reaction time and with a similar conversion obtained by conventional method.  相似文献   

14.
Poly[(L-histidine)-co-(L-phenylalanine)]-block-poly(ethylene glycol) (HF-b-PEG) diblock copolymers were synthesized to be used for preparation of pH-sensitive polymeric micelles. First, HF block was synthesized by ring opening copolymerization of L-histidine and L-phenylalanine N-carboxyanhydride, and then the resulting copolymer was coupled with PEG. The pKa value of diblock copolymer can be controlled by adjusting the histidine/phenylalanine ratio in HF block. It is observed that the block copolymers form micelles in aqueous media and that the micelles are spherical in shape with a unimodal distribution. The micelle is formed at pH higher than pKa of block copolymer while it is not formed at lower pH. This is because the protonation of histidine residue in the HF block converts the hydrophobic core into hydrophilic one at lower pH. Acid-Base titration profile of HF41(5600)-b-PEG, HF56(5500)-b-PEG, H(5100)-b-PEG and 0.1 N NaCl.  相似文献   

15.
(AB)f star block copolymers were synthesized by the radical polymerization of a poly(t‐butyl acrylate)‐block‐poly(methyl methacrylate) diblock macroinitiator with ethylene glycol dimethacrylate in methanol under UV irradiation. Diblock macroinitiators were prepared by diethyldithiocarbamate‐mediated sequential living radical copolymerization initiated by (4‐cyano‐4‐diethyldithiocarbamyl)pentanoic acid under UV irradiation. The arm number (f) was controlled by the variation of the initial concentration of the diblock initiator. It was found from light scattering data that such star block copolymers (f ≥ 344) not only took a spherical shape but also formed a single molecule in solution. Subsequently, we derived amphiphilic [arm: poly(acrylic acid)‐block‐poly(methyl methacrylate)] star block copolymers by the hydrolysis of poly(t‐butyl acrylate) blocks. These amphiphilic star block copolymers were soluble in water because the external blocks were composed of hydrophilic poly(acrylic acid) chains. © 2006 Wiley Periodicals, Inc. J Polym Sci Part A: Polym Chem 44: 3321–3327, 2006  相似文献   

16.
Two brush-type amphiphilic diblock copolymers, poly(poly(ethylene glycol)methyl ether methacrylate-block-polystyrene) (P(PEGMA)-b-PS) and poly(glycidyl methacrylate)-block-poly(poly(ethylene glycol)methyl ether methacrylate) (P(GMA)-b-P(PEGMA)) were synthesized, respectively, via consecutive atom-transfer radical polymerizations (ATRPs) and reversible addition-fragmentation chain-transfer (RAFT) polymerizations. The diblock copolymers were characterized by gel permeation chromatography (GPC), (1)H nuclear magnetic resonance (NMR) spectroscopy, and FT-IR spectroscopy. The aggregation behavior of the two amphiphilic diblock copolymers in water was also studied. Scanning electron and transmission electron microscopic images revealed that spherical micelles (40-80 nm in diameter) from self-assembly of the P(PEGMA)-b-PS copolymers and wormlike micelles (60-120 nm in length and 20-30 nm in diameter) from self-assembly of the P(GMA)-b-P(PEGMA) copolymers were prevalent. The spherical P(PEGMA)-b-PS micelles could self-assemble gradually into giant aggregates of several micrometers in diameter.  相似文献   

17.
AB diblock copolymers consisting of PBLG as the hydrophobic part and PNIPAAm as the hydrophilic one were prepared by polymerization of BLG-NCA with semitelechelic PNIPAAm with amino end group as initiator. The core-shell type nanoparticles of the block copolymers were obtained by the diafiltration method. The sizes of the nanoparticles were from about 73 to 359 nm and the shapes of them were spherical. The release for indomethacin (IN) from the nanoparticles was faster at 28°C than at 34°C due to the conformational change of PNIPAAm by temperature.  相似文献   

18.
MPEG–PCL diblock copolymers consisting of methoxy polyethylene glycol (MPEG, 750 g/mol) and poly(?‐caprolactone) (PCL) were synthesized by ring‐opening polymerization. Aqueous solutions of the synthesized diblock copolymers were prepared by dissolving the MPEG–PCL diblock copolymers at concentrations in the range of 0–20 wt %. When the PCL molecular weight was 3000 or greater, the polymer was only partially soluble in water. As the temperature was increased from room temperature, the diblock copolymer solutions showed two phase transitions: a sol‐to‐gel transition and a gel‐to‐sol transition. The sol‐to‐gel phase transition temperature decreased substantially with increasing PCL length. The sol–gel–sol transition with the increase in temperature was confirmed by monitoring the viscosity as a function of temperature. The temperature ranges of the phase transitions measured by the tilting method were in full agreement with those determined from the viscosity measurements. The maximum viscosity of the copolymer solution increased with increasing hydrophobicity of the diblock copolymer and with increasing copolymer concentration. X‐ray diffraction (XRD) and differential scanning calorimetry (DSC) analyses revealed that the diblock copolymers exhibited crystalline domains that favored the formation of an aggregated gel because of the tight aggregation and strong packing interactions between PCL blocks. Scanning electron micrographs of the diblock copolymer solutions in the sol state showed interconnected polyhedral pore structures, whereas those of the gel state revealed a fibrillar‐like morphology. Atomic force microscope (AFM) studies of the sol and gel surfaces showed that the sol surface was covered with fine globular particles, whereas the gel surface was covered with particles in micron‐scale irregular islets. These findings are consistent with uniform mixing of the diblock copolymer and water in the sol state, and aggregation of PCL blocks in the gel state. In conclusion, we confirm that the MPEG–PCL diblock copolymer solution exhibited a sol–gel–sol transition as a function of temperature. © 2006 Wiley Periodicals, Inc. J Polym Sci Part A: Polym Chem 44: 5413–5423, 2006  相似文献   

19.
Three well-defined diblock copolymers of poly(methyl methacrylate-b-methacrylic acid)(P(MMA-b-MAA))were synthesized using atom transfer radical polymerization method and varying poly(methacrylic acid)(PMAA)chain lengths. These copolymers were blended with PVC to fabricate porous membranes via phase inversion process.Membrane morphologies were observed by scanning electron microscopy(SEM),and chemical composition changes of the membrane surfaces were measured by X-ray photoelectron spectroscopy(XPS).Static and dynamic protein adsorption experiments were used to evaluate antifouling properties of the blend membranes.It was found that,the blend membranes containing longer PMAA arm length showed lower static protein adsorption,higher water permeation flux and better protein solution flux recovery.  相似文献   

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