Vinay Sharma, Xinfeng Charlie Shi, George Yao, Ying Zheng, Nicholas D Spencer, James Yuliang Wu
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引用次数: 0
摘要
聚(2-甲基丙烯酰氧乙基磷酰胆碱)(PMPC)改性硅水凝胶隐形眼镜(CL)材料 lehfilcon A 以前曾被证明具有润滑、防污和超柔软的表面。本研究确认了这种隐形眼镜表面的外部聚合物结构为支化 PMPC 结构。研究还旨在进一步了解这些结构在通过流体约束提高摩擦学性能方面的作用。该研究结合使用了扫描透射电子显微镜和原子力显微镜红外光谱技术,从形态和化学角度证实了支化 PMPC 结构与角膜表面的多糖类相似。通过纳米压痕实验对该层的流体粘合行为进行测量,结果表明它能抵御间隙流体的挤出,从而通过流体负载支撑机制增强润滑效果。对 CL 进行的摩擦学测试表明,这种有效的润滑在每天佩戴一个月后仍能保持。
Fluid confinement within a branched polymer structure enhances tribological performance of a poly(2-methacryloyloxyethyl phosphorylcholine)-surface-modified contact lens.
The poly(2-methacryloyloxyethyl phosphorylcholine) (PMPC)-modified, silicone hydrogel, contact lens (CL) material lehfilcon A has previously been demonstrated to have a lubricious, antifouling and ultra-soft surface. This study provides confirmatory identification of the outer polymer structures on this CL surface as branched PMPC structures. It further aims to understand their role in providing enhanced tribological performance via fluid confinement. A combination of scanning transmission electron microscopy and atomic force microscopy infrared spectroscopy has been used to achieve both morphological and chemical confirmation of branched PMPC structures resembling the polysaccharide species present on the surface of the cornea. Measurements of the fluid-confinement behaviour of this layer, by means of nanoindentation experiments, show it to resist squeeze-out of the interstitial fluid, thereby boosting lubrication by virtue of a fluid-load-support mechanism. Tribological testing of CLs showed this effective lubrication to be maintained after one month of daily wearing.
期刊介绍:
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