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通过光聚合制备的超疏水聚合物复合表面

Superhydrophobic Polymer Composite Surfaces Developed via Photopolymerization.

作者信息

Pathreeker Shreyas, Chando Paul, Chen Fu-Hao, Biria Saeid, Li Hansheng, Finkelstein Eric B, Hosein Ian D

机构信息

Department of Biomedical and Chemical Engineering, Syracuse University, Syracuse, New York 13244, United States.

Syracuse Biomaterials Institute, Syracuse University, Syracuse, New York 13244, United States.

出版信息

ACS Appl Polym Mater. 2021 Sep 10;3(9):4661-4672. doi: 10.1021/acsapm.1c00744. Epub 2021 Aug 19.

Abstract

Fabrication of superhydrophobic materials using incumbent techniques involves several processing steps and is therefore either quite complex, not scalable, or often both. Here, the development of superhydrophobic surface-patterned polymer-TiO composite materials using a simple, single-step photopolymerization-based approach is reported. The synergistic combination of concurrent, periodic bump-like pattern formation created using irradiation through a photomask and photopolymerization-induced nanoparticle (NP) phase separation enables the development of surface textures with dual-scale roughness (micrometer-sized bumps and NPs) that demonstrate high water contact angles, low roll-off angles, and desirable postprocessability such as flexibility, peel-and-stick capability, and self-cleaning capability. The effect of nanoparticle concentration on surface porosity and consequently nonwetting properties is discussed. Large-area fabrication over an area of 20 cm, which is important for practical applications, is also demonstrated. This work demonstrates the capability of polymerizable systems to aid in the organization of functional polymer-nanoparticle surface structures.

摘要

使用现有技术制造超疏水材料涉及多个加工步骤,因此要么相当复杂,要么不可扩展,或者往往两者兼具。在此,报道了一种基于简单的单步光聚合方法开发超疏水表面图案化聚合物-二氧化钛复合材料。通过光掩膜辐照产生的并发周期性凸起状图案形成与光聚合诱导的纳米颗粒(NP)相分离的协同组合,能够开发出具有双尺度粗糙度(微米级凸起和纳米颗粒)的表面纹理,该纹理具有高水接触角、低滚落角以及诸如柔韧性、粘贴能力和自清洁能力等理想的后加工性能。讨论了纳米颗粒浓度对表面孔隙率以及由此产生的非润湿性的影响。还展示了在20平方厘米面积上的大面积制造,这对于实际应用很重要。这项工作展示了可聚合体系在构建功能性聚合物-纳米颗粒表面结构方面的能力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6600/8438665/608878b0a84f/ap1c00744_0002.jpg

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