State Key Laboratory of High-Efficiency Coal Utilization and Green Chemical Engineering, Ningxia University, 750021, Yinchuan, China.
Department of Gynaecology and Obstetrics, Shanghai Fourth People's Hospital, School of Medicine, Tongji University, 200434, Shanghai, China.
Nat Commun. 2022 Apr 21;13(1):2170. doi: 10.1038/s41467-022-29863-8.
The precise control of the shape, size and microstructure of nanomaterials is of high interest in chemistry and material sciences. However, living lateral growth of cylinders is still very challenging. Herein, we propose a crystallization-driven fusion-induced particle assembly (CD-FIPA) strategy to prepare cylinders with growing diameters by the controlled fusion of spherical micelles self-assembled from an amphiphilic homopolymer. The spherical micelles are heated upon glass transition temperature (T) to break the metastable state to induce the aggregation and fusion of the amorphous micelles to form crystalline cylinders. With the addition of extra spherical micelles, these micelles can attach onto and fuse with the cylinders, showing the living character of the lateral growth of cylinders. Computer simulations and mathematical calculations are preformed to reveal the total energy changes of the nanostructures during the self-assembly and CD-FIPA process. Overall, we demonstrated a CD-FIPA concept for preparing cylinders with growing diameters.
在化学和材料科学领域,对纳米材料的形状、尺寸和微观结构进行精确控制具有重要意义。然而,圆柱体的侧向生长仍然极具挑战性。在此,我们提出了一种由结晶驱动的融合诱导粒子组装(CD-FIPA)策略,通过由两亲性均聚物自组装形成的球形胶束的受控融合来制备直径不断增加的圆柱体。球形胶束在玻璃化转变温度(T)下加热以打破亚稳态,从而诱导无定形胶束的聚集和融合以形成结晶圆柱体。随着额外球形胶束的加入,这些胶束可以附着在圆柱体上并与之融合,显示出圆柱体侧向生长的活性特征。我们进行了计算机模拟和数学计算,以揭示自组装和 CD-FIPA 过程中纳米结构的总能量变化。总之,我们展示了一种用于制备直径不断增加的圆柱体的 CD-FIPA 概念。