Blending block copolymer micelles in solution; obstacles of blending
文献信息
Daniel B. Wright, Joseph P. Patterson, Nathan C. Gianneschi, Christophe Chassenieux, Olivier Colombani, Rachel K. O'Reilly
Amphiphilic block copolymers can assemble into a variety of structures on the nanoscale in selective solvent. The micelle blending protocol offers a simple unique route to reproducibly produce polymer nanostructures. Here we expand this blending protocol to a range of polymer micelle systems and self-assembly routes. We found by exploring a range of variables that the systems must be able to reach global equilibrium at some point for the blending protocol to be successful. Our results demonstrate the kinetic requirements, specifically core block glass transition temperature, Tg, and length of the block limiting the exchange rates, for the blending protocol which can then be applied to a wide range of polymer systems to access this simple protocol for polymer self-assembly.
相关文献
Unraveling the forming mechanism of hierarchical helices via self-assembly of an achiral supramolecular polymer brush
Shanshan Liu, Qibin Chen, Yujie Sheng, Jincheng Shen, Changjun Peng, Honglai Liu
DOI: 10.1039/C5PY00163C
Effect of monomers’ structure on self-acid-assisted polycondensation for the synthesis of poly(3,4-ethylenedioxythiophene) and homopolythiophene
Chuong Tusy, Kang Jiang, Kai Peng, Lili Huang, Jiangbin Xia
DOI: 10.1039/C4PY01070A
The intensively enhanced conductivity of polyelectrolytes by amphiphilic compound doping
Huang-Ming Hsu, Chun-Han Hsu, Ping-Lin Kuo
DOI: 10.1039/C4PY01672F
Kinetics of the (salen)Cr(iii)- and (salen)Co(iii)-catalyzed copolymerization of epoxides with CO2, and of the accompanying degradation reactions
D. J. Darensbourg, A. D. Yeung
DOI: 10.1039/C4PY01322K
New insight into the polymerization mechanism of 1,3-dienes cationic polymerization. IV. Mechanism of unsaturation loss in the polymerization of isoprene
Victor A. Rozentsvet, Valery G. Kozlov, Nelly A. Sablina, Olesya A. Stotskaya, Frederic Peruch, Sergei V. Kostjuk
DOI: 10.1039/C6PY01736C
Novel multiarm star block copolymer ionomers as proton conductive membranes
Tuba Erdogan, Elif Erdal Unveren, A. Levent Demirel, Umit Tunca
DOI: 10.1039/C4PY00994K
Regulation of the self-assembly morphology of azobenzene-bearing double hydrophobic block copolymers in aqueous solution by shifting the dynamic host–guest complexation
Zai-Zai Tong, Rui-Yang Wang, Jie Huang, Jun-Ting Xu, Zhi-Qiang Fan
DOI: 10.1039/C5PY00004A
A novel donor–acceptor alternating copolymer based on angular-shaped benzo[2,1-b:3,4-b′]diselenophene for bulk heterojunction solar cells
Youyu Jiang, Mingyan Yang, Xuan Huang, Jianhong Gao, Chun Zhan, Shengqiang Xiao
DOI: 10.1039/C4PY01519C
Ring-opening polymerization of a 2,3-disubstituted oxirane leading to a polyether having a carbonyl–aromatic π-stacked structure
Yasuhito Koyama, Hiroyasu Sato, Li Geng, Vakhtang Barbakadze, Bezhan Chankvetadze, Tamaki Nakano
DOI: 10.1039/C4PY01711K
One-pot synthesis of indolizine functionalized nanohyperbranched polyesters with different nano morphologies and their fluorescent response to anthracene
Xiaoxia Wang, Fanyang Zeng, Can Jin, Yuliang Jiang, Qiaorong Han, Bingxiang Wang, Zhenye Ma
DOI: 10.1039/C4PY01529K
您可能还喜欢
P11(CAS号:848644-86-0)安全吗?
P11作为一种化学化合物,需要谨慎处理。一般来说,该化合物无毒,但在操作过程中仍需遵循实验室安全规定,避免皮肤接触和吸入。建议在通风良好的环境中操作,并佩戴适当...
氨甲环酸杂质C(CAS号:330838-52-3)通常如何合成?
氨甲环酸杂质C通常通过氨甲环酸的衍生物与环己烯进行缩合反应合成。常见的合成方法包括一步合成法和多步合成法,其中多步合成法可以提高产物的选择性和产率。反应通常在无...
(±)-茉莉酸(CAS号:221682-41-3)通常如何合成?
(±)-茉莉酸的合成通常采用生物合成或者化学合成的方法。化学合成方法中,可以通过2-戊烯-1-醇与环戊酮的缩合反应,再经过氧化反应得到目标产物。该反应需要温和的...
(4S,4'S)-2,2'-(1,1-环己烷二基)双(4-异丙基-4,5-二氢-1,3-噁唑)(CAS号:1373357-00-6)安全吗?
(4S,4'S)-2,2'-(1,1-环己烷二基)双(4-异丙基-4,5-二氢-1,3-噁唑)属于有机化合物,应遵循实验室安全规范。在操作时应佩戴适当的个人防护...
什么是6-苄氧基-5-甲氧基-2-羧基吲哚(CAS号:2495-92-3)?
6-苄氧基-5-甲氧基-2-羧基吲哚是一种有机化合物,分子式为C16H15NO3。它是一种含有苄氧基、甲氧基和羧基官能团的吲哚衍生物。
丙二酸丁酯乙酯(CAS号:17373-84-1)安全吗?
丙二酸丁酯乙酯属于易燃物质,具有一定的毒性。在操作时应佩戴防护眼镜和手套,避免接触皮肤和眼睛。储存时应远离热源和火源,避免阳光直射,以减少火灾和爆炸的风险。
2-碘-3-甲基吡嗪(CAS号:58139-08-5)的市场或研究趋势如何?
2-碘-3-甲基吡嗪作为一种特殊结构的化合物,目前在工业和学术研究中的应用相对有限。然而,随着对特定化学结构及其潜在应用的深入研究,预计未来可能在农药、医药等领...
千层纸素A-7-0-β-D-葡萄糖醛酸苷甲酯(CAS号:82475-01-2)的物理化学性质是什么?
千层纸素A-7-0-β-D-葡萄糖醛酸苷甲酯是一种白色结晶固体,分子量为616.27 g/mol。该化合物在水中溶解度较低,在有机溶剂中溶解度较高。其反应活性主...
什么是7-苄基-4,7-二氮杂螺[2.5]辛烷(CAS号:1222106-45-7)?
7-苄基-4,7-二氮杂螺[2.5]辛烷是一种有机化合物,其结构由一个环状的7-苄基-4,7-二氮杂螺环和一个苯基组成。该化合物的分子式为C14H16N2。它具...
在合成中是否有丁酰胺酸甲酯(CAS号:53171-39-4)的替代品?
丁酰胺酸甲酯的合成中可能的替代品包括其他氨基酸衍生物,如乙酰胺酸甲酯或丙酰胺酸甲酯。这些替代品在某些合成路线中可能更为便利或成本更低。
来源期刊
Polymer Chemistry

Polymer Chemistry welcomes submissions in all areas of polymer science that have a strong focus on macromolecular chemistry. Manuscripts may cover a broad range of fields, yet no direct application focus is required.














