薄防污水凝胶涂层的制备、纳米力学和颗粒沉积行为

Lina Rozental , Aleksandr Leontev , Charles Diesendruck , Viatcheslav Freger
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引用次数: 0

摘要

基于亲水交联聚合物网络的水凝胶可以减少水环境中的表面污染,并因其低粘附性、生物相容性和可调性能而继续吸引研究兴趣。特别是,亚微米水凝胶膜可以潜在地屏蔽表面,使其不与污染胶体和微生物相互作用,而不会损害原始功能,例如膜中的水渗透。本研究的重点是水凝胶薄膜的制备,目的是了解其粘合性和微观力学性能,以及影响微粒在此类薄膜上沉积动力学的因素,模拟胶体、微粒和微生物表面污染的初始阶段。为此,开发了一种简单的程序,将多臂PEG前体同时交联并共价锚定到表面,以形成亚微米涂层作为代表性模型。利用聚苯乙烯胶体探针,用力谱法研究了合成参数和外部条件对粘附性和粘弹性的影响。在相同的溶液条件下,在平行板流动池中的宏观沉积实验中也使用了相同的颗粒。微观粘附力和弹性不受水凝胶交联密度和盐度的影响,但受溶液pH和停留时间的强烈影响,而宏观沉积则受盐度和pH的强烈影响。这些差异归因于长程双层力的影响,这种力与沉积有关,但在粘附力和弹力的测量中不存在。结果突出了两种类型的测量和潜在现象之间的差异和相似性,为理解和合理设计软防污涂料迈出了一步。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Preparation, nano-mechanics and particle deposition behavior of thin, antifouling hydrogel coatings

Hydrogels based on hydrophilic, crosslinked polymer networks can reduce surface contamination in aqueous environments and continue attracting research interest due to their low adhesion, biocompatibility and tunable properties. In particular, sub-micron hydrogel films can potentially screen a surface from interaction with foulant colloids and microorganisms without compromising original functions, such as water permeation in membranes. This study focuses on the preparation of thin hydrogel films with the goal of understanding their adhesive and micromechanical properties, as well as factors affecting the dynamics of microparticle deposition on such films, mimicking the initial stages of surface fouling with colloids, microparticles and microorganisms. For this purpose, a simple procedure was developed to simultaneously crosslink and covalently anchor multi-arm-PEG precursors to a surface to form a submicron coating as a representative model. The effects of synthetic parameters and external conditions on adhesion and viscoelasticity were studied by force spectroscopy using polystyrene colloidal probes. The same particles were also employed in macroscopic deposition experiments in a parallel plate flow cell under identical solution conditions. Microscopic adhesion and elasticity were unaffected by the hydrogel crosslinking density and by salinity, but strongly affected by solution pH and dwell time, whereas macroscopic deposition was strongly affected both by salinity and by pH. These differences were ascribed to the effect of long-range double-layer forces, involved in deposition but absent in measurements of adhesion and elasticity. The results highlight the differences and similarities between the two types of measurements and underlying phenomena, as a step towards the understanding and rational design of soft antifouling coatings.

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