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聚合物承载表面上的双层脂类组装:非对称边界润滑中的滑移面性质。

Lipid-Bilayer Assemblies on Polymer-Bearing Surfaces: The Nature of the Slip Plane in Asymmetric Boundary Lubrication.

机构信息

Department of Materials and Interfaces, Weizmann Institute of Science, Rehovot 76100, Israel.

出版信息

Langmuir. 2020 Dec 29;36(51):15583-15591. doi: 10.1021/acs.langmuir.0c02956. Epub 2020 Dec 17.

Abstract

Phospholipid-macromolecule complexes have been proposed to form highly efficient, lubricating boundary layers at artificial soft surfaces or at biological surfaces such as articular cartilage, where the friction reduction is attributed to the hydration lubrication mechanism acting at the exposed, hydrated head groups of the lipids. Here we measure, using a surface force balance, the normal and frictional interactions between model mica substrates across several different configurations of phosphatidylcholine (PC) lipid aggregates and adsorbed polymer (PEO) layers, to provide insight into the nature of such lubricating boundary layers in both symmetric and especially asymmetric configurations. Our results reveal that, irrespective of the configuration, the slip plane between the sliding surfaces reverts wherever possible to a bilayer-bilayer interface where hydration lubrication reduces the friction strongly. Where such an interface is not available, the sliding friction remains high. These findings may account for the low friction observed between both biological and synthetic hydrogel surfaces which may be asymmetrically coated with lipid-based boundary layers and fully support the hydration lubrication mechanism attributed to act at such boundary layers.

摘要

已提出磷脂-大分子复合物在人工软表面或生物表面(如关节软骨)形成高效、润滑的边界层,在这些表面,摩擦的降低归因于暴露于水合头部基团的水合润滑机制作用于脂质。在这里,我们使用表面力天平测量了在几种不同的磷脂酰胆碱(PC)脂质聚集体和吸附聚合物(PEO)层的模型云母基底之间的法向和摩擦相互作用,以深入了解在对称和特别是不对称配置中这种润滑边界层的性质。我们的结果表明,无论配置如何,滑动表面之间的滑移平面尽可能地返回到双层-双层界面,在该界面中水化润滑强烈地降低了摩擦。在没有这种界面的情况下,滑动摩擦仍然很高。这些发现可能解释了在具有不对称脂质基边界层涂层的生物和合成水凝胶表面之间观察到的低摩擦,并且完全支持归因于此类边界层的水合润滑机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/79d3/7774307/c4aa2acd5ada/la0c02956_0001.jpg

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