Green and effective fabrication of porous surfaces with adjustable cell structure by foaming at incomplete healed polymer–polymer interface

材料科学 多孔性 聚合物 聚苯乙烯 润湿 制作 表面粗糙度 纳米技术 单层 多孔介质 接触角 化学工程 复合材料 医学 工程类 病理 替代医学
作者
Cuifang Lv,Xia Liao,Fangfang Zou,Wanyu Tang,Yaguang Yang,Shaowei Xing,Guangxian Li
出处
期刊:Journal of Colloid and Interface Science [Elsevier BV]
卷期号:645: 743-751 被引量:8
标识
DOI:10.1016/j.jcis.2023.04.167
摘要

Porous surfaces of materials have shown huge potentialities for endowing materials with multifarious functions. Despite introducing gas-confined-barriers in supercritical CO2 foaming technology is effective to weaken the gas escape effect and facilitate the preparation of porous surfaces, the differences in intrinsic properties between barriers and polymers result in bottlenecks like cell structure adjustment limitation and incompletely eliminated solid skin layers. This study undertakes a preparation approach for porous surfaces by foaming at incompletely healed polystyrene/polystyrene interfaces. In contrast with employing gas-confined-barriers reported before, the porous surfaces foamed at incompletely healed polymer/polymer interfaces show a monolayer, full-open cell morphology, and wide adjustable range in cell structures including cell size (120 nm∼15.68 μm), cell density (3.40 × 105 cells/cm2∼3.47 × 109 cells/cm2), and surface roughness (0.50 μm∼7.22 μm). Furthermore, the wettability of obtained porous surfaces depending on the cell structures is systematically discussed. Finally, a super-hydrophobic surface with hierarchical micro-nanoscale roughness, low water adhesion, and high water-impact resistance is built by depositing nanoparticles on a porous surface. Consequently, this study offers a clean and simple method to prepare porous surfaces with adjustable cell structures, which is expected to open a door to developing a new fabrication technique for micro/nano-porous surfaces.
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