School of Materials Science and Engineering, Georgia Institute of Technology , Atlanta, Georgia 30332, United States.
ACS Nano. 2014 Mar 25;8(3):2936-42. doi: 10.1021/nn500193y. Epub 2014 Feb 10.
Hierarchically assembled amphiphilic diblock copolymer micelles were exquisitely crafted over large areas by capitalizing on two concurrent self-assembling processes at different length scales, namely, the periodic threads composed of a monolayer or a bilayer of diblock copolymer micelles precisely positioned by flow-enabled self-assembly (FESA) on the microscopic scale and the self-assembly of amphiphilic diblock copolymer micelles into ordered arrays within an individual thread on the nanometer scale. A minimum spacing between two adjacent threads λmin was observed. A model was proposed to rationalize the relationship between the thread width and λmin. Such FESA of diblock copolymer micelles is remarkably controllable and easy to implement. It opens up possibilities for lithography-free positioning and patterning of diblock copolymer micelles for various applications in template fabrication of periodic inorganic nanostructures, nanoelectronics, optoelectronics, magnetic devices, and biotechnology.
通过利用两种不同长度尺度上的协同自组装过程,即通过流动辅助自组装(FESA)在微观尺度上精确定位的由单层或双层两亲性嵌段共聚物胶束组成的周期性纤维,以及在纳米尺度上胶束自组装成纤维内的有序排列,在大面积上精巧地制备了分级组装的两亲性嵌段共聚物胶束。观察到相邻纤维之间的最小间距λmin。提出了一个模型来合理化纤维宽度和λmin之间的关系。这种无光刻胶的嵌段共聚物胶束的 FESA 具有显著的可控性和易实现性。它为各种应用中无光刻胶的定位和图案化提供了可能性,例如周期性无机纳米结构、纳米电子学、光电学、磁器件和生物技术中的模板制造。