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Enhancement and Mitigation Mechanisms of Protein Fouling of Ultrafiltration Membranes under Different Ionic Strengths

机译:不同离子强度下超滤膜蛋白结垢的增强和缓解机理

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摘要

To determine further the enhancement and mitigation mechanisms of protein fouling, filtration experiments were carried out with polyvinylidene fluoride (PVDF) ultrafiltration (UF) membranes and bovine serum albumin (BSA) over a range of ionic strengths. The interaction forces, the adsorption behavior of BSA on the membrane surface, and the structure of the BSA adsorbed layers at corresponding ionic strengths were investigated. Results indicate that when the ionic strength increased from 0 to 1 mM, there was a decrease in the PVDF-BSA and BSA-BSA electrostatic repulsion forces, resulting in a higher deposition rate of BSA onto the membrane surface, and the formation of a denser BSA layer; consequently, membrane fouling was enhanced. However, at ionic strengths of 10 and 100 mM, membrane fouling and the BSA removal rate decreased significantly. This was mainly due to the increased hydration repulsion forces, which caused a decrease in the PVDF-BSA and BSA-BSA interaction forces accompanied by a decreased hydrodynamic radius and increased diffusion coefficient of BSA. Consequently, BSA passed more easily through the membrane and into permeate. There was less accumulation of BSA on the membrane surface. A more nonrigid and open structure BSA layer was formed on the membrane surface.
机译:为了进一步确定蛋白质结垢的增强和缓解机制,使用聚偏二氟乙烯(PVDF)超滤(UF)膜和牛血清白蛋白(BSA)进行了一系列离子强度的过滤实验。研究了相互作用力,BSA在膜表面的吸附行为以及相应离子强度下BSA吸附层的结构。结果表明,当离子强度从0增加到1 mM时,PVDF-BSA和BSA-BSA静电排斥力降低,导致BSA在膜表面的沉积速率更高,并形成更致密的膜。 BSA层;因此,膜污染增加了。但是,在10和100 mM的离子强度下,膜结垢和BSA去除率显着降低。这主要是由于增加了水合排斥力,导致了PVDF-BSA和BSA-BSA相互作用力的降低,同时流体动力学半径减小,BSA扩散系数增大。因此,BSA更容易通过膜并渗透。 BSA在膜表面的积聚较少。在膜表面上形成了更加非刚性和开放性的BSA层。

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  • 来源
    《Environmental Science & Technology》 |2015年第11期|6574-6580|共7页
  • 作者单位

    School of Environmental & Municipal Engineering, Xi'an University of Architecture and Technology, Yan Ta Road. No. 13, Xi'an 710055, China;

    School of Environmental & Municipal Engineering, Xi'an University of Architecture and Technology, Yan Ta Road. No. 13, Xi'an 710055, China;

    School of Environmental & Municipal Engineering, Xi'an University of Architecture and Technology, Yan Ta Road. No. 13, Xi'an 710055, China;

    School of Environmental & Municipal Engineering, Xi'an University of Architecture and Technology, Yan Ta Road. No. 13, Xi'an 710055, China;

    School of Environmental & Municipal Engineering, Xi'an University of Architecture and Technology, Yan Ta Road. No. 13, Xi'an 710055, China;

    School of Environmental & Municipal Engineering, Xi'an University of Architecture and Technology, Yan Ta Road. No. 13, Xi'an 710055, China;

    School of Environmental & Municipal Engineering, Xi'an University of Architecture and Technology, Yan Ta Road. No. 13, Xi'an 710055, China;

    School of Environmental & Municipal Engineering, Xi'an University of Architecture and Technology, Yan Ta Road. No. 13, Xi'an 710055, China;

    School of Environmental & Municipal Engineering, Xi'an University of Architecture and Technology, Yan Ta Road. No. 13, Xi'an 710055, China;

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  • 入库时间 2022-08-17 13:59:40

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