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本文以聚甲基丙烯酸甘油酯(PGMA)作为大分子RAFT试剂,甲基丙烯酸羟丙酯(HPMA)和甲基丙烯酸-2-(二甲氨基)乙酯(DMAEMA)作为单体,在室温下通过水相光引发聚合诱导自组装制备CO2响应聚合物囊泡。动力学研究表明聚合在可见光(405nm,0.5 mW/cm2)照射10min后,转化率可以达到100%。文中还探讨了DMAEMA对于聚合反应的影响。通过视觉观察、透射电子显微镜(TEM)以及核磁共振(NMR)对聚合物囊泡的二氧化碳响应特性进行了研究。  相似文献   

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本文以聚甲基丙烯酸甘油酯(PGMA)作为大分子链转移剂、甲基丙烯酸羟丙酯(HPMA)为单体、苯基钠盐-三甲基苯甲酰亚磷酸盐(SPTP)为引发剂,通过水相光引发可逆加成-断裂链转移(RAFT)分散聚合制备了一系列PGMA-b-PHPMA共聚物纳米材料。考察了水相光引发聚合诱导自组装的反应动力学,在温和条件下(水相、可见光和室温)成功得到不同形貌的聚合物纳米材料(球形、纤维和囊泡),并进一步探究了反应条件对嵌段聚合物形貌的影响。聚合反应的激活或暂停都可以通过对光源的简单"开/关"进行控制。  相似文献   

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聚合诱导自组装(PISA)是一种新兴的纳米粒子制备技术,它集聚合与组装过程于一体,可在高固含量条件下进行,因此备受青睐.此外,通过改变嵌段聚合度以及固含量等参数,可以精确地控制纳米粒子的形貌,实现从球形胶束到空心囊泡的形貌转变.然而,受限于适用于PISA体系的聚合方法和单体种类,其发展也受到了一定的限制.目前,PISA主要基于可逆加成-断裂链转移聚合(RAFT),其在聚合诱导自组装机理、形貌控制、结构表征等方面的研究成果,对于高分子化学其他领域具有重要的参考价值.然而,由于RAFT聚合诱导自组装(RAFT-PISA)体系中适用的单体往往局限于(甲基)丙烯酸酯类和苯乙烯类,导致RAFT-PISA制备的纳米粒子限于其碳-碳主链的基本结构难以生物降解,因此生物医用前景并不乐观.为了克服以上缺陷,开环聚合诱导自组装(ROPISA)应运而生,主要包括开环易位聚合诱导自组装(ROMPISA)、氨基酸-N-羧基-环内酸酐开环聚合诱导自组装(NCA-PISA)及自由基开环聚合诱导自组装(r ROPISA).由于ROMPISA体系对诸多功能性基团表现出化学惰性,从而为多功能纳米粒子的原位制备提供了新的方...  相似文献   

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利用两亲性线性-超支化多臂共聚物聚乙二醇-聚乙烯亚胺-聚谷氨酸苄酯(PEG-PEI-PBLG)在水溶液中自组装为阳离子囊泡. 利用透射电镜、动态光散射、静态光散射和zeta电位仪对囊泡结构进行了表征. PEG-PEI-PBLG囊泡具有双分子层结构, 壁厚5~10 nm, 直径在100 nm左右. 由于PEI在水溶液中的质子化作用, 囊泡表面携带有正电荷, 其表面电势为+25。2 mV, 因此PEG-PEI-PBLG阳离子囊泡具有担载负电性蛋白的能力.  相似文献   

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聚合诱导自组装(PISA)技术是制备嵌段共聚物纳米自组装体的一种新技术.相较于传统的嵌段共聚物自组装技术,该技术具有边聚合、边组装的操作简便性特点,同时还具有纳米自组装体形态可控、固含量高(高达50%)等优点,使得聚合物纳米自组装体的规模化生产和应用成为可能.经过十多年的发展,基于各种"活性"/可控聚合机理和各种配方组...  相似文献   

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利用耗散粒子动力学模拟方法, 研究了杂臂星型嵌段共聚物Am(Bn)2在溶液中自组装形成囊泡的行为. 主要分析了自组装过程、亲水分枝和疏水分枝的长度及分子构型对组装结构的影响. 结果表明, 杂臂星型聚合物在溶液中会自组装形成碟状胶束, 之后弯曲闭合形成囊泡. 当亲水部分的分枝较短时, 易于形成囊泡结构; 在可形成囊泡结构的条件下, 双分子层囊泡膜的厚度随分枝长度的增加而增加. 与构成相近的线型嵌段共聚物相比, 杂臂星型嵌段共聚物更易形成囊泡结构, 且形成的囊泡结构较薄.  相似文献   

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以商用蓝光LED为光源,聚2-乙烯基吡啶(P2VP)为大分子链转移剂,未添加光引发剂或光催化剂,在常温下甲醇溶液中进行了苯乙烯(St)的光引发聚合诱导自组装(PISA).考察了当P2VP的分子量为4000,[St]:[P2VP]=4000:1时,聚合时间对聚2-乙烯基吡啶嵌段聚苯乙烯(P2VP-b-PSt)纳米粒形貌的...  相似文献   

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While network‐like assemblies are formed by amphiphilic polyphosphazenes with poly(N‐isopropylacrylamide) and ethyl tryptophan as side groups in aqueous solution, a significant morphology transformation is observed when small molecules that exhibit hydrogen‐bonding interactions with amphiphilic copolymers are introduced during the preparation of polymeric assemblies through a dialysis procedure. Depending on copolymer composition and the content of small molecules introduced, aggregates ranging from general vesicles, high‐genus vesicles, to well‐defined nanospheres can be prepared successfully as clearly evidenced by TEM observation, which suggests this procedure should be a novel approach to prepare composite vesicles.

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Polymerization‐induced self‐assembly (PISA) enables the scalable synthesis of functional block copolymer nanoparticles with various morphologies. Herein we exploit this versatile technique to produce so‐called “high χ–low N” diblock copolymers that undergo nanoscale phase separation in the solid state to produce sub‐10 nm surface features. By varying the degree of polymerization of the stabilizer and core‐forming blocks, PISA provides rapid access to a wide range of diblock copolymers, and enables fundamental thermodynamic parameters to be determined. In addition, the pre‐organization of copolymer chains within sterically‐stabilized nanoparticles that occurs during PISA leads to enhanced phase separation relative to that achieved using solution‐cast molecularly‐dissolved copolymer chains.  相似文献   

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Polymerization-induced chiral self-assembly(PICSA)is an efficient strategy that not only allows the construction of the supramolecular chiral assemblies in a controlled manner but also can regulate the morphology in situ.Herein,a series of azobenzene-containing block copolymer(Azo-BCP)assemblies with tunable morphologies and supramolecular chirality were obtained through the PICSA strategy.The supramolecular chirality of Azo-BCP assemblies could be regulated by carbon dioxide(CO2)stimulus,and completely recovered by bubbling with Ar.A reversible morphology transformation and chiroptical switching process could also be achieved by the alternative 365 nm UV light irradiation and heatingcooling treatment.Moreover,the supramolecular chirality is thermo-responsive and a reversible chiral-achiral switching was successfully realized,which can be reversibly repeated for at least five times.This work provides a feasible strategy for constructing triple stimuli-responsive supramolecular chiral nano-objects in situ.  相似文献   

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The formation mechanism of hollow micron-sized polystyrene (PS) particles having numerous dents on the surface, so-called cage-like particles, obtained from seeded dispersion polymerization (SDP) of 2-ethylhexyl methacrylate (EHMA) with low molecular weight (MW) PS particles stabilized by poly(vinyl alcohol) (PVA) in the presence of hexadecane droplets was investigated. It was found that association of poly(2-ethylhexyl methacrylate) (PEHMA)/hexadecane phases which occurs due to the instability of the obtained composite particles followed by a diffusion of PS ellipsoidal particles into each other is the main process responsible for the production of such unique morphology. Time course monitoring of the SDP showed that diffusion of hexadecane and/or PS and/or PEHMA phase into PS/PEHMA/hexadecane composite particles through PS shell which happens based on Ostwald ripening is the main phenomenon which results in the formation of the dents on the surface of final particles. Moreover, the experimental results revealed that in this reaction system, the polymerization develops in a faster manner rather than the SDP employing seed particles having higher MWs. Furthermore, it was observed that particles with different surface morphologies can be produced by using different hydrocarbons. The elimination of small particles which are produced in addition to the cage-like ones via decreasing the concentration of the stabilizer was another interesting finding of this research. The acquired results showed that unstable SDP is expected to be a new concept in polymerization-induced self-assembly (PISA) which employs instability of a dispersion for self-assembly of polymeric particles, and therefore, production of polymeric unique objects.  相似文献   

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Zirconia nanoparticles were synthesized via hydrothermal method without any additives. This work focuses on the effect of preparation conditions1 such as the precursor preparation condition and crystallization time of nanocrystallite in autoclave on the properties of as-prepared products. The results indicated that the amount of tetragonal zirconia varied with the preparation conditions. It increased with the increase of the concentration of KOH solution in precursor producing process and reduced with the prolongation of crystallization time. At the same time, the particle size and morphology were also affected by the preparation conditions. In addition, the self-assembled spindle- like aggregates were observed in present works.  相似文献   

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通过溶剂散逸自组装法制备了聚苯乙烯(PS)有序多孔膜. 利用水珠在冷的PS溶液表面凝结形成有序阵列, 使PS以水珠阵列为模板形成有序多孔膜. 将有序多孔膜的上层剥离并附着在可收缩性高分子表面, 并进行离子溅射, 除掉有序多孔膜后在可收缩膜上留下了有序的金属圆盘阵列. 经过收缩, 有序阵列不仅光学性质发生了改变, 而且实现了导电的各向异性.  相似文献   

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The preparation of long‐term‐stable giant unilamellar vesicles (GUVs, diameter ≥1000 nm) and large vesicles (diameter ≥500 nm) by self‐assembly in THF of the crystalline‐b‐coil polyphosphazene block copolymers [N=P(OCH2CF3)2]nb‐[N=PMePh]m ( 4 a : n=30, m=20; 4 b : n=90, m=20; 4 c : n=200, m=85), which combine crystalline [N=P(OCH2CF3)2] and amorphous [N=PMePh] blocks, both of which are flexible, is reported. SEM, TEM, and wide‐angle X‐ray scattering experiments demonstrated that the stability of these GUVs is induced by crystallization of the [N=P(OCH2CF3)2] blocks at the capsule wall of the GUVS, with the [N=PMePh] blocks at the corona. Higher degrees of crystallinity of the capsule wall are found in the bigger vesicles, which suggests that the crystallinity of the [N=P(OCH2CF3)2] block facilitates the formation of large vesicles. The GUVs are responsive to strong acids (HOTf) and, after selective protonation of the [N=PMePh] block, they undergo a morphological evolution to smaller spherical micelles in which the core and corona roles have been inverted. This morphological evolution is totally reversible by neutralization with a base (NEt3), which regenerates the original GUVs. The monitoring of this process by dynamic light scattering allowed a mechanism to to be proposed for this reversible morphological evolution in which the block copolymer 4 a and its protonated form 4 a+ are intermediates. This opens a route to the design of reversibly responsive polymeric systems in organic solvents. This is the first reversibly responsive vesicle system to operate in organic media.  相似文献   

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