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Fouling and Protein Adsorption Effect of Low-Temperature Plasma Treatment of Membrane Surfaces

机译:低温等离子体处理膜表面的结垢和蛋白质吸附作用

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Adsorption of proteins and the effect of the chemical nature of membrane surfaces on protein adsorption were investigated using ~(14)C-tagged albumin and several microporous membranes (polyvinilydene fluoride, PVDF; nylon; polypropylene, PP; and polycarbonate, PC). The membrane surfaces were modified by exposing them to low-temperature plasma of several different monomers (n-butane, oxygen, nitrogen alone or as mixtures) in a radiofrequency plasma reactor. Transients in the permeability of albumin solutions through the membranes and changes in flux of distilled water through the membranes before and after adsorption of albumin were used to investigate the role of protein adsorption on membrane fouling. The results show that the extent of adsorption of albumin on hydrophobic membranes was considerably more than that on hydrophilic membranes. The hydrophilic membranes were susceptible to electrostatic interactions and less prone to fouling. A pore-blocking model was successfully used to correlate the loss of water flux through pores of defined geometry.
机译:使用〜(14)C标记的白蛋白和几种微孔膜(聚偏二氟乙烯,PVDF;尼龙;聚丙烯,PP;和聚碳酸酯,PC)研究了蛋白质的吸附以及膜表面化学性质对蛋白质吸附的影响。通过在射频等离子体反应器中将膜表面暴露于几种不同单体(正丁烷,氧,氮单独或以混合物形式)的低温等离子体中进行改性。用白蛋白溶液通过膜的渗透性的瞬态变化和吸附白蛋白前后的蒸馏水通过膜的通量变化来研究蛋白质吸附对膜污染的作用。结果表明,疏水膜上白蛋白的吸附程度明显大于亲水膜上的吸附程度。亲水膜易受静电作用,不易结垢。孔阻塞模型已成功用于关联通过定义几何形状的孔的水通量损失。

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