Department of Mechanical Engineering, School of Engineering, The University of Birmingham, Birmingham B15 2TT, U.K.
Department of Chemical and Biomolecular Engineering, University of Notre Dame, Notre Dame, Indiana 46556, United States.
Langmuir. 2022 Sep 20;38(37):11392-11405. doi: 10.1021/acs.langmuir.2c01671. Epub 2022 Sep 7.
Endoscopes are ubiquitous in minimally invasive or keyhole surgeries globally. However, frequent removal of endoscopes from the patient's body due to the lens contaminations results in undesirable consequences. Therefore, a cost-effective process chain to fabricate thermoplastic-based endoscope lenses with superior antifouling and optical properties is proposed in this research. Such multifunctional surface response was achieved by lubricant impregnation of nanostructures. Two types of topographies were produced by femtosecond laser processing of metallic molds, especially to produce single-tier laser-induced periodic surface structures (LIPSS) and two-tier multiscale structures (MS). Then, these two LIPSS and MS masters were used to replicate them onto two thermoplastic substrates, namely polycarbonate and cyclic olefin copolymer, by using hot embossing. Finally, the LIPSS and MS surfaces of the replicas were infiltrated by silicone oils to prepare lubricant-impregnated surfaces (LIS). Droplet sliding tests revealed that the durability of the as-prepared LIS improved with the increase of the lubricant viscosity. Moreover, the single-tier LIPSS replicas exhibited longer-lasting lubricant conservation properties than the MS ones. Also, LIPSS-LIS replicas demonstrated an excellent optical transparency, better than the MS-LIS ones, and almost match the performance of the reference polished ones. Furthermore, the LIPSS-LIS treatment led to superior antifouling characteristics, i.e., regarding fogging, blood adhesion, protein adsorption, and microalgae attachment, and thus demonstrated its high suitability for treating endoscopic lenses. Finally, a proof-of-concept LIPSS-LIS treatment of endoscope lenses was conducted that confirmed their superior multifunctional response.
内窥镜在全球范围内的微创手术或锁孔手术中无处不在。然而,由于镜头污染,内窥镜经常从患者体内取出,导致不理想的后果。因此,本研究提出了一种经济有效的工艺链,用于制造具有优异的防污和光学性能的热塑性内窥镜镜片。这种多功能表面响应是通过纳米结构的润滑剂浸渍来实现的。两种类型的形貌是通过飞秒激光处理金属模具来产生的,特别是用于产生单层激光诱导周期表面结构 (LIPSS) 和双层多尺度结构 (MS)。然后,使用热压印将这两个 LIPSS 和 MS 母版复制到两个热塑性基底上,即聚碳酸酯和环状烯烃共聚物。最后,将 LIPSS 和 MS 表面的复制品用硅油渗透,制备润滑剂浸渍表面 (LIS)。液滴滑动测试表明,所制备的 LIS 的耐久性随润滑剂粘度的增加而提高。此外,单层 LIPSS 复制品表现出比 MS 复制品更长的润滑剂保持性能。此外,LIPSS-LIS 复制品表现出优异的光学透明度,优于 MS-LIS 复制品,几乎与参考抛光制品的性能相匹配。此外,LIPSS-LIS 处理导致优异的防污特性,即关于雾化、血液粘附、蛋白质吸附和微藻附着,因此证明其非常适合处理内窥镜镜片。最后,进行了内窥镜镜片的 LIPSS-LIS 处理概念验证,证实了它们的卓越多功能响应。