探索微观结构模式:对三维打印表面疏水性的影响

Micro Pub Date : 2024-07-23 DOI:10.3390/micro4030028
Mark Lohatepanont, Melody Chen, Luis Carlos Mendoza Nova, John-Thomas Murray, Wilson Merchan-Merchan
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引用次数: 0

摘要

本研究探讨了微结构模式对使用光聚合物树脂生成的三维打印物体表面疏水性的影响。研究考察了三维打印物体表面微结构的各种排列和设计。利用立体光刻打印机(SLA)优于熔融沉积建模的分辨率,复杂的微特征设计得以很好地实现。实验涉及三维打印物体表面的一系列结构,包括精确定义的微圆柱阵列、微通道以及由参数方程生成的其他复杂设计。通过水滴测试评估了三维打印物体的疏水性,结果显示了从疏水、弱疏水到亲水表面的一系列结果。利用光学显微镜鉴定了三维打印物体的表面形态特性,然后将其与测得的接触角相关联。研究发现,使用参数函数形成微结构的三维打印物体在所有方向或轴线上都表现出不规则和波动的图案,因此与柱状阵列结构矩阵相比,疏水性更高。然而,一些使用参数函数创建的表面会产生各向异性系统,即材料特性沿一个方向变化,而另一个方向则表现为平坦的平面表面。根据水滴测试,发现这些各向异性系统的疏水性较差。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Exploring Microstructure Patterns: Influence on Hydrophobic Properties of 3D-Printed Surfaces
This study investigates the influence of microstructure patterns on the hydrophobic properties of surfaces of 3D-printed objects generated using photopolymer resin. Various arrangements and designs of microstructures on the surface of 3D-printed objects were examined. Leveraging the superior resolution of stereolithography printers (SLA) over fused deposition modeling, intricate microfeature designs were well-implemented. The experiments involved a range of structures on the surface of the 3D-printed objects, including precisely defined arrays of microcylinders, microchannels, and other complex designs generated by parametric equations. The hydrophobicity of the 3D-printed objects was assessed through the water droplet test, revealing a spectrum of results ranging from hydrophobic to weakly hydrophobic, and to hydrophilic surfaces. Light microscopy was employed to characterize the surface morphological properties of the 3D-printed objects, which were then correlated with the measured contact angles. It was discovered that the 3D-printed objects with microstructures formed using parametric functions exhibited patterns with irregularities and fluctuations along all directions or axes, resulting in a higher degree of hydrophobicity compared to structured matrices with pillared arrays. However, some surfaces created with parametric functions resulted in an anisotropic system where the material properties varied along one direction, while the other direction exhibited a flat, planar surface. These anisotropic systems were found to be less hydrophobic according to the water droplet test.
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