Hang Tian, Chen Hui-Jiuan, Xiao Shuai, Yang Chengduan, Chen Meiwan, Tao Jun, Shieh Han-Ping, Yang Bo-Ru, Liu Chuan, Xie Xi
State Key Laboratory of Optoelectronic Materials and Technologies, School of Electronics and Information Technology; The First Affiliated Hospital of Sun Yat-sen University; Guangdong Province Key Laboratory of Display Material and Technology, Sun Yat-sen University, Guangzhou, China.
Institute of Chinese Medical Sciences, University of Macau, Avenida da Universidade, Taipa, Macao SAR, China.
R Soc Open Sci. 2017 Dec 20;4(12):171431. doi: 10.1098/rsos.171431. eCollection 2017 Dec.
Extraordinary water-repelling properties of superhydrophobic surfaces make them novel candidates for a great variety of potential applications. A general approach to achieve superhydrophobicity requires low-energy coating on the surface and roughness on nano- and micrometre scale. However, typical construction of superhydrophobic surfaces with micro-nano structure through top-down fabrication is restricted by sophisticated fabrication techniques and limited choices of substrate materials. Micro-nanoscale topographies templated by conventional microparticles through surface coating may produce large variations in roughness and uncontrollable defects, resulting in poorly controlled surface morphology and wettability. In this work, micro-nanoscale hierarchical nanowire network was fabricated to construct self-cleaning coating using one-dimensional TiO nanowires as microscale templates. Hierarchical structure with homogeneous morphology was achieved by branching ZnO nanowires on the TiO nanowire backbones through hydrothermal reaction. The hierarchical nanowire network displayed homogeneous micro/nano-topography, in contrast to hierarchical structure templated by traditional microparticles. This hierarchical nanowire network film exhibited high repellency to both water and cell culture medium after functionalization with fluorinated organic molecules. The hierarchical structure templated by TiO nanowire coating significantly increased the surface superhydrophobicity compared to vertical ZnO nanowires with nanotopography alone. Our results demonstrated a promising strategy of using nanowires as microscale templates for the rational design of hierarchical coatings with desired superhydrophobicity that can also be applied to various substrate materials.
超疏水表面非凡的拒水性能使其成为众多潜在应用的新型候选材料。实现超疏水性的一般方法需要在表面进行低能涂层处理,并在纳米和微米尺度上形成粗糙度。然而,通过自上而下的制造方法构建具有微纳结构的典型超疏水表面受到复杂制造技术和基底材料选择有限的限制。通过表面涂层以传统微粒为模板形成的微纳尺度形貌可能会在粗糙度上产生很大变化以及出现不可控的缺陷,导致表面形态和润湿性难以控制。在这项工作中,以一维TiO纳米线作为微尺度模板,制备了微纳尺度的分级纳米线网络以构建自清洁涂层。通过水热反应在TiO纳米线骨架上生长ZnO纳米线分支,实现了具有均匀形态的分级结构。与传统微粒模板形成的分级结构相比,分级纳米线网络呈现出均匀的微/纳形貌。在用氟化有机分子进行功能化处理后,这种分级纳米线网络薄膜对水和细胞培养基都表现出高排斥性。与仅具有纳米形貌的垂直ZnO纳米线相比,由TiO纳米线涂层模板形成的分级结构显著提高了表面超疏水性。我们的结果展示了一种有前景的策略,即使用纳米线作为微尺度模板来合理设计具有所需超疏水性的分级涂层,这种涂层还可应用于各种基底材料。