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1.
采用原位聚合法成功地制备出聚乳酸/聚(异丙基丙烯酰胺-co-丙烯酰胺)[P(D,L-LA)/PNIPAM-co-AM)\]温敏性核壳胶束. 用SEM, TEM和AFM等方法表征了粒子的外在形貌和内部结构. DLS研究结果表明, 所得核壳粒子的尺寸具有温度敏感性, 通过改变单体的投料比, 可方便地调整胶束粒子的响应温度. 对胶束粒子的染料负载行为做了初步的研究.  相似文献   

2.
一锅法制备pH和热敏的P(NIPAM-co-AA)高分子空心球   总被引:1,自引:0,他引:1  
基于N-异丙基丙烯酰胺(NIPAM)在高于PNIPAM的相转变温度时的沉淀聚合反应,利用在成核阶段形成的非交联的核为模板,然后在核的增长阶段加入交联剂N,N′-亚甲基双丙烯酰胺(BMA)和丙烯酸(AA)使得核周围形成一层交联的P(NIPAM-co-AA)共聚物壳层,降温至相转变温度以下使得非交联的PNIPAM核解散并自发地从交联的壳层扩散出来,得到具有温度和pH敏感性的P(NIPAM-co-AA)空心球.透射电镜结果表明该微球具有中空结构.利用光散射在不同pH值和温度条件下对该空心球进行了表征,结果表明,P(NIPAM-co-AA)空心球对pH值和温度具有良好的响应能力.  相似文献   

3.
三元添加剂水溶液体系制备CaCO3空心球   总被引:2,自引:0,他引:2  
利用原位聚合方法, 通过加入一定量的引发剂使甲基丙烯酸原位聚合, 在三嵌段共聚物(P123)、聚甲基丙烯酸(PMAA)和十二烷基硫酸钠(SDS)的三元添加剂混合溶液体系中成功地制备了CaCO3空心球. 采用扫描电子显微镜(SEM)和X射线粉末衍射(XRD)对合成样品的形貌、结构进行了表征. 结果显示, 方解石CaCO3空心球直径约0.5-2 μm. 空心球壁由直径约25-35 nm的圆形粒子组成, 壁厚约100-300 nm. 利用核鄄壳机理解释了空心球结构的形成过程.  相似文献   

4.
结合大分子自组装和原位自由基聚合方法,采用油溶性引发剂偶氮二异丁腈(AIBN),在聚(ε-已内酯)(PCL)纳米粒子表面引发聚合单体N-异丙基丙烯酰胺(NIPAM)和交联剂亚甲基双(丙烯酰胺)(MBA),制备得到了核-壳结构的PCL/PNIPAM聚合物纳米微球.系统研究了单体和交联剂用量、壳层目标交联度、初始PCL/DMF溶液的浓度及引发剂AIBN含量4个反应参数对核-壳结构PCL/PNIPAM纳米微球的PNIPAM壳层得率、微球尺寸、温敏性能及电镜形貌的影响.结果表明,在制备核-壳结构PCL/PNIPAM纳米微球的反应过程中,PCL粒子表面的聚合和水中的聚合二者之间相互竞争.适当增加引发剂AIBN的添加量,有利于制备得到核/壳比例可控的PCL/PNIPAM纳米微球;交联剂MBA较高的反应活性导致形成了非均匀交联的PNIPAM壳层.  相似文献   

5.
炭黑/聚苯胺纳米复合粒子的制备与表征   总被引:1,自引:0,他引:1  
用现场原位聚合法制备了炭黑/聚苯胺纳米复合粒子,讨论了聚合反应条件对产物电导率的影响,并表征了复合粒子的形态和耐热性能.结果表明,所得的炭黑/聚苯胺纳米复合粒子粒度约为50 nm并具有核-壳结构,其电导率达30 S.cm-1,热分解温度约为600℃.  相似文献   

6.
嵌段共聚物聚(N-异丙基丙烯酰胺)-b-聚(4-乙烯基吡啶)(PNPIAM-b-P4VP)在pH6.5的水溶液中自组装成,以聚(4-乙烯基吡啶)为胶束的核,以热响应聚(N-异丙基丙烯酰胺)为胶束壳的球形胶束.通过与4VP基络合作用,将氯铂酸(H2PtCl6)导入胶束的核中,原位还原获得胶束负载2~4nm的铂纳米粒子的温度敏感型催化体系.结果显示,最低临界溶解温度(LCST)为33℃,在LCST以下,催化反应速率会随着温度的升高而提高;在LCST以上,PNPIAM嵌段变成疏水而塌缩在催化剂表面,阻碍了反应物的扩散,因此胶束负载的铂纳米粒子的催化活性会随着温度的上升而下降.  相似文献   

7.
采用原位聚合制备核-壳结构聚合物纳米微球和空心球的新方法, 利用甲基丙烯酸2-羟丙酯(HPMA)和乙酸乙烯酯(VAc)两种单体, 在类似的反应条件下, 成功地制备了以聚(ε-己内酯)(PCL)为核, 分别以交联PHPMA和PVAc为壳的纳米微球; 将微球的核酶解后, 分别得到了对应的交联PMAA空心球和交联PVA空心球. 结果表明, 原位聚合制备核-壳结构聚合物微球的新方法具有一定的普适性, 适用于单体可溶于水而生成的聚合物不溶于水的体系.  相似文献   

8.
通过可逆加成-断裂链转移(RAFT)的聚合方法,合成了分别含有苯硼酸基元和葡萄糖基元的聚(N-异丙基丙烯酰胺)-b-聚(丙烯酰胺基苯硼酸)(PNIPAM-b-PAPBA)和聚(N-异丙基丙烯酰胺)-b-聚(丙烯酰葡萄糖胺)(PNIPAM-b-PAGA)二嵌段聚合物.由于苯硼酸和葡萄糖基元之间在弱碱性条件下(pH9.3)形成硼酸酯共价键,两种二嵌段聚合物的水溶液混合后能自发形成以PAPBA/PAGA络合物为核,PNIPAM为壳层的高分子复合物胶束.由于硼酸酯共价键在pH值和葡萄糖浓度改变时能可逆形成和断裂,以及胶束PNIPAM壳层的温敏性,所制备的基于苯硼酸/葡萄糖可逆共价键的高分子复合物胶束对pH、葡萄糖和温度具有多重响应性.  相似文献   

9.
通过原子转移自由基聚合(ATRP)合成了一种带有活性—NH2基团的温度敏感性亲水型共聚物P(NiPAAm-co-DMAA), 并将其作为引发剂, 合成了P(NiPAAm-co-DMAA)-co-P(L-Ala), 其分子量分布(PDI)在1.3左右. 聚合物通过自组装形成纳米胶束. 透射电镜(TEM)结果表明, 胶束大小200~300 nm, 具有明显的核壳结构. 共聚物的最低临界溶解温度(LCST)为45.5 ℃. 温度低于LCST时, 聚合物溶解形成胶束; 高于LCST时, 胶束解离, 聚合物不溶. 聚合物对温度的响应是快速而可逆的.  相似文献   

10.
核壳结构葡萄糖敏感微凝胶的制备   总被引:1,自引:0,他引:1  
用先合成聚N-异丙基丙烯酰胺(PNIPAM)微凝胶核再包一层N-异丙基丙烯酰胺/丙烯酸共聚物(P(NIPAM-co-AA))壳的办法合成了一系列核壳结构微凝胶.微凝胶壳层厚度随投入的壳储备溶液的增加而增加.研究了pH=3.5时核壳微凝胶的温敏体积相转变行为.由于PNIPAM核和P(NIPAM-co-AA)壳的相转变温度很接近,因此只观察到一个相转变.在EDC催化下使3-氨基苯硼酸与壳层中的羧基反应,将苯硼酸基(PBA)引入微凝胶,得到核为PNIPAM、壳为P(NIPAM-co-AMPBA)的核壳结构微凝胶.改性后的微凝胶表现出3个体积相转变过程.其中第一个对应于P(NIPAM-co-AMPBA)壳层的体积相转变.第二和第三个则是PNIPAM核的相转变过程.由于在沉淀聚合时交联剂BIS反应性更大,PNIPAM核结构不均一,形成BIS含量高的"核"和BIS含量低的"壳".BIS含量低的"壳"被一层疏水的P(NIPAM-co-AMPBA)壳包裹,拉大了其与"核"的相转变温度的差别,因此随着温度升高表现出两个相转变过程.PBA改性的微凝胶同样表现出葡萄糖敏感性,但在葡萄糖存在下溶胀度的改变较小.  相似文献   

11.
Poly(divinylbenzene-co-acrylic acid) (poly(DVB-co-AA)) hollow microspheres with gold nanoparticles on the interior surfaces were prepared from the gold nanoparticles-coated poly(methacrylic acid) (PMAA@Au@poly(DVB-co-AA)) core-shell microspheres by removal of the PMAA core in water.Au nanoparticles-coated PMAA microspheres were afforded by the in-situ reduction of gold trichloride with PMAA microsphere as stabilizer via the interaction between carboxylic acid groups and Au nanoparticles.Gold nanoparticle...  相似文献   

12.
The synthesis of poly(N,N-diethylaminoethyl methacrylate)-core-polyethyleneglycol-shell (PDEAEM-core-PEG-shell) nanogels was achieved by using a “surfactant-free” emulsion polymerization with the aid of commercially available polyethyleneglycol methyl ether methacrylates (PEGMAs) as polymerizable stabilizers. By adjusting the synthetic parameters like the choice of initiator, cross-linker, PEGMA:DEAEM ratio, and molecular weight of PEGMA, a series of core-shell nanogels varying in size (50–350 nm), PDEAEM content, and pH/temperature responsive behavior were obtained in reactions taking only 60 min. The nanogels were used as nanoreactors for the preparation of gold nanoparticles. The PEGylated nanogels have a great potential to be used for diagnosis and therapy.  相似文献   

13.
A new method, adopting inorganic clay (synthetic hectorite) as a physical cross-linker, was used to prepare poly(N-isopropylacrylamide) (PNIPAM) microgels via surfactant-free emulsion polymerization. The effect of hectorite content on the temperature-sensitivity of PNIPAM microgels was investigated by means of DLS, UV/Vis and DSC. It was found that, in the absence of surfactant, with increasing hectorite content, the particle size tends to decrease to 300 nm at room temperature, while increases as weight ratio (WR) of hectorite and N-isopropylacrylamide (NIPAM) exceeds 21%. Furthermore, with increasing WR from 7% to 21%, the volume phase transition temperature of PNIPAM microgels has little shift, while decreases slightly when WR increases up to 28%.  相似文献   

14.
Gold nanoparticles (Au-NPs) are encased in aqueous nanospheres of alpha-helical poly(gamma-benzyl L-glutamate)s (PBLG, number average degree of polymerization: n = 32), with spatially controlled self-assembly structures of solid core-shell nanospheres or double-layered hollow nanocapsules.  相似文献   

15.
用改进的Stöber法和无皂乳液聚合法制备窄分布的二氧化硅/PMMA核-壳纳米微球. 用改进的Stöber法将3-乙氧基甲基丙烯酸丙基硅烷(MPS)修饰在纳米的二氧化硅表面后, 用无皂乳液聚合法制备核-壳纳米微球. 该法简单有效且得到厚度均匀的聚合物包覆层. 随着单体MMA用量的增加, 用动态光散射法测量, PMMA壳层的厚度从6.4 nm增加到96.3 nm. 热重分析表明, PMMA的含量从22.25%增加到93.41%. 扫描电子显微镜和透射电子显微镜结果表明, 得到的是包覆良好、表面光滑的核-壳无机/聚合物纳米微球.  相似文献   

16.
Poly(divinylbenzene-co-acrylic acid) (poly(DVB-co-AA)) hollow microspheres with movable poly(DVB-co-AA) cores were prepared by a facile route. In this approach, poly(DVB-co-AA) microspheres were first used as templates to synthesize poly(DVB-co-AA)@PAA core-shell particles with a non-crosslinked PAA shell by distillation precipitation polymerization in acetonitrile. In situ polymerization to prepare poly(DVB-co-AA)@PAA@poly(DVB-co-AA) trilayer microspheres was then developed, in which the hydrogen-bonding interaction between the carboxylic acid groups played a key role as the driving force for the formation of monodisperse trilayer structure polymer microspheres. After removal of the non-crosslinked poly(acrylic acid) (PAA) midlayer of the poly(DVB-co-AA)@PAA@poly(DVB-co-AA) microspheres in ethanol under basic conditions, poly(DVB-co-AA) hollow microspheres with movable poly(DVB-co-AA) cores were obtained. Functional poly(DVB-co-AA) cores could be released successfully when the hollow structure was destroyed. The resultant core-shell, trilayer polymer microspheres and hollow polymer microspheres with movable cores were characterized by transmission electron microscopy (TEM), dynamic laser scattering (DLS), and Fourier transform infrared (FT-IR) spectra.  相似文献   

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