Ferrarese Lupi Federico, Giammaria Tommaso Jacopo, Miti Andrea, Zuccheri Giampaolo, Carignano Stefano, Sparnacci Katia, Seguini Gabriele, De Leo Natascia, Boarino Luca, Perego Michele, Laus Michele
Nanoscience and Materials Division , Istituto Nazionale di Ricerca Metrologica , Strada delle Cacce 91 , 10135 Torino , Italy.
CNR-IMM , Unit of Agrate Brianza , Via C. Olivetti 2 , 20864 Agrate Brianza , Italy.
ACS Nano. 2018 Jul 24;12(7):7076-7085. doi: 10.1021/acsnano.8b02832. Epub 2018 Jul 3.
We investigated the dewetting process on flat and chemically patterned surfaces of ultrathin films (thickness between 2 and 15 nm) of a cylinder forming polystyrene- block-poly(methyl methacrylate) (PS- b-PMMA) spin coated on poly(styrene- r-methyl methacrylate) random copolymers (RCPs). When the PS- b-PMMA film dewets on a 2 nm-thick RCP layer, the ordering of the hexagonally packed PMMA cylinders in the dewetted structures extends over distances far exceeding the correlation length obtained in continuous block copolymer (BCP) films. As a result, micrometer-sized circular droplets featuring defectless single grains of self-assembled PS- b-PMMA with PMMA cylinders perpendicularly oriented with respect to the substrate are generated and randomly distributed on the substrate. Additionally, alignment of the droplets along micrometric lines was achieved by performing the dewetting process on large-scale chemically patterned stripes of 2 nm thick RCP films by laser lithography. By properly adjusting the periodicity of the chemical pattern, it was possible to tune and select the geometrical characteristics of the dewetted droplets in terms of maximum thickness, contact angle and diameter while maintaining the defectless single grain perpendicular cylinder morphology of the circular droplets.
我们研究了旋涂在聚(苯乙烯 - 甲基丙烯酸甲酯)无规共聚物(RCP)上的圆柱状聚苯乙烯 - 嵌段 - 聚(甲基丙烯酸甲酯)(PS - b - PMMA)超薄膜(厚度在2至15纳米之间)在平坦和化学图案化表面上的去湿过程。当PS - b - PMMA薄膜在2纳米厚的RCP层上发生去湿时,去湿结构中六边形排列的PMMA圆柱的有序性延伸的距离远远超过在连续嵌段共聚物(BCP)薄膜中获得的相关长度。结果,产生了微米级的圆形液滴,其具有无缺陷的自组装PS - b - PMMA单颗粒,其中PMMA圆柱相对于基板垂直取向,并随机分布在基板上。此外,通过在2纳米厚的RCP薄膜的大规模化学图案化条纹上通过激光光刻进行去湿过程,实现了液滴沿微米级线条的排列。通过适当调整化学图案的周期性,可以在保持圆形液滴无缺陷的单颗粒垂直圆柱形态的同时,根据最大厚度、接触角和直径来调整和选择去湿液滴的几何特征。