Center of Nanophase Materials Sciences, Oak Ridge National Laboratory, Oak Ridge, Tennessee 37831, USA.
Nat Commun. 2013;4:2297. doi: 10.1038/ncomms3297.
Researchers strive to produce nanoparticles with complexity in composition and structure. Although traditional spherical, cylindrical and membranous, or planar, nanostructures are ubiquitous, scientists seek more complicated geometries for potential functionality. Here we report the simple solution construction of multigeometry nanoparticles, disk-sphere and disk-cylinder, through a straightforward, molecular-level, blending strategy with binary mixtures of block copolymers. The multigeometry nanoparticles contain disk geometry in the core with either spherical patches along the disk periphery in the case of disk-sphere particles or cylindrical edges and handles in the case of the disk-cylinder particles. The portions of different geometry in the same nanoparticles contain different core block chemistry, thus also defining multicompartments in the nanoparticles. Although the block copolymers chosen for the blends are important for the definition of the final hybrid particles, the control of the kinetic pathway of assembly is critical for successful multigeometry particle construction.
研究人员致力于制备具有复杂组成和结构的纳米粒子。虽然传统的球形、圆柱形和膜状或平面纳米结构很常见,但科学家们还是在寻找更复杂的几何形状以实现潜在的功能。在这里,我们通过使用二元嵌段共聚物的简单混合策略,报告了多几何纳米粒子(盘-球和盘-柱)的简单溶液法构建。多几何纳米粒子的核中含有盘状结构,在盘-球粒子中,盘的外围有球形的片层,而在盘-柱粒子中,有圆柱形的边缘和把手。同一纳米粒子中不同几何形状的部分含有不同的核嵌段化学,因此也在纳米粒子中定义了多隔室。尽管用于共混物的嵌段共聚物对于最终的混合粒子的定义很重要,但组装的动力学途径的控制对于成功构建多几何粒子是至关重要的。