Kim Tae-Hwan, Song Chaeyeon, Han Young-Soo, Jang Jong-Dae, Choi Myung Chul
Neutron Science Division, Korea Atomic Energy Research Institute, 1045 Daedeok-daero, Yuseong-gu, Daejeon, 305-353, Republic of Korea.
Soft Matter. 2014 Jan 21;10(3):484-90. doi: 10.1039/c3sm52519h.
A unilamellar polymeric vesicle is a self-assembled structure of a block copolymer that forms a spherical single bilayer structure with a hydrophobic interlayer and a hydrophilic surface. Due to their enhanced colloidal stability and mechanical property, controllable surface functionality, or tunable membrane thickness, polymeric vesicles are useful in nano and bio-science, providing potential applications as nanosized carriers for catalysts, drugs, and enzymes. For fabrication of a unilamellar vesicle, however, preparative procedures with a few steps are inherently required. Herein, without complicated preparative procedures, we report spontaneous unilamellar polymeric vesicles with nanometer sizes (<100 nm), which are prepared by simply mixing a triblock copolymer, Pluronic P85 (PEO26PPO40PEO26), and an organic derivative, 5-methyl salicylic acid (5mS), in aqueous solution. Depending on the 5mS concentration and the temperature, the P85-5mS mixtures presented various self-assembled nanostructures such as spherical and cylindrical micelles or vesicles, which were characterized by small angle neutron scattering and cryo-TEM, resulting in a phase diagram drawn as a function of temperature and the 5mS concentration. Interestingly the critical temperature for the micelle-to-vesicle phase transition was easily controlled by varying the 5mS concentration, i.e. it was decreased with increasing the 5mS concentration.
单层聚合物囊泡是一种嵌段共聚物的自组装结构,它形成具有疏水中间层和亲水表面的球形单双层结构。由于其增强的胶体稳定性和机械性能、可控的表面功能或可调节的膜厚度,聚合物囊泡在纳米和生物科学中很有用,为催化剂、药物和酶等纳米级载体提供了潜在应用。然而,对于制备单层囊泡,本质上需要几步的制备程序。在此,无需复杂的制备程序,我们报道了通过在水溶液中简单混合三嵌段共聚物Pluronic P85(PEO26PPO40PEO26)和有机衍生物5-甲基水杨酸(5mS)制备的纳米尺寸(<100 nm)的自发单层聚合物囊泡。根据5mS浓度和温度,P85-5mS混合物呈现出各种自组装纳米结构,如球形和圆柱形胶束或囊泡,通过小角中子散射和冷冻透射电子显微镜对其进行了表征,从而绘制了作为温度和5mS浓度函数的相图。有趣的是,通过改变5mS浓度可以很容易地控制胶束到囊泡相变的临界温度,即随着5mS浓度的增加它会降低。