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Understanding the wetting properties of nanostructured selenium coatings: The role of nanostructured surface roughness and air-pocket formation

机译:了解纳米结构硒涂层的润湿特性:纳米结构表面粗糙度和气穴形成的作用

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摘要

Wetting properties of biomaterials, in particular nanomaterials, play an important role, as these influence interactions with biological elements, such as proteins, bacteria, and cells. In this study, the wetting phenomenon of titanium substrates coated with selenium nanoparticles was studied using experimental and mathematical modeling tools. Importantly, these selenium-coated titanium substrates were previously reported to increase select protein adsorption (such as vitronectin and fibronectin), to decrease bacteria growth, and increase bone cell growth. Increased selenium nanoparticle coating density resulted in higher contact angles but remained within the hydrophilic regime. This trend was found in disagreement with the Wenzel model, which is widely used to understand the wetting properties of rough surfaces. The trend also did not fit well with the Cassie–Baxter model, which was developed to understand the wetting properties of composite surfaces. A modified wetting model was thus proposed in this study, to understand the contributing factors of material properties to the hydrophilicity/hydrophobicity of these nanostructured selenium-coated surfaces. The analysis and model created in this study can be useful in designing and/or understanding the wetting behavior of numerous biomedical materials and in turn, biological events (such as protein adsorption as well as bacteria and mammalian cell functions).
机译:生物材料,特别是纳米材料的润湿特性起着重要作用,因为它们会影响与生物元素(例如蛋白质,细菌和细胞)的相互作用。在这项研究中,使用实验和数学建模工具研究了涂覆有硒纳米颗粒的钛基材的润湿现象。重要的是,这些硒包覆的钛底物以前被报道会增加选择性蛋白质的吸附(例如玻连蛋白和纤连蛋白),减少细菌的生长并增加骨细胞的生长。硒纳米颗粒涂层密度的增加导致较高的接触角,但仍保持在亲水范围内。发现这种趋势与Wenzel模型不一致,该模型被广泛用于理解粗糙表面的润湿特性。该趋势也与Cassie-Baxter模型不太吻合,该模型是为了解复合材料表面的润湿性而开发的。因此在本研究中提出了一种改进的润湿模型,以了解材料性能对这些纳米结构化硒涂层表面的亲水性/疏水性的影响因素。在这项研究中创建的分析和模型可用于设计和/或理解多种生物医学材料的润湿行为,进而有助于生物事件(例如蛋白质吸附以及细菌和哺乳动物细胞功能)的润湿行为。

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