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Effect of Membrane Pore Size and Membrane-Solute Interactions on Lysozyme Ultrafiltration

机译:膜孔径和膜溶质相互作用对溶菌酶超滤的影响

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A model based on steric hindrance mechanisms is used to determine the pore sizes of two ultrafiltration (UF) membranes. The lysozyme rejection coefficients of those membranes are predicted through the same model after modification of the pore size and solute radius by taking into account the development of electric double layers. Two asymmetric cellulose acetate membranes M1 and M2 were prepared and characterized. Membrane M1 has an hydraulic permeability of 2.1x10~(-6) m/s/bar, a molecular weight cut-off (MWCO) of 30,000 Da and an average pore radius of 2.6 nm. Membrane M2 has an hydraulic permeability of 5.9x10~(-6) m/s/bar, a molecular weight cut-off (MWCO) of 60,000 Da and an average pore radius of 5.3 nm. Aqueous solutions of lysozyme containing a NaCl concentration of 0.1M were ultrafiltrated through membranes M1 and M2. The predicted lysozyme rejections considering the development of electric double layers on the protein and membrane pore surfaces, are in good agreement with the experimental results.
机译:基于空间阻碍机构的模型用于确定两个超滤(UF)膜的孔径。通过考虑电双层的开发,通过相同的模型预测这些膜的溶菌酶抑制系数通过相同的模型预测。制备两个不对称纤维素乙酸盐膜M1和M2。膜M1的液压渗透率为2.1×10〜(-6)m / s /棒,分子量截止(MWCO)为30,000da,平均孔半径为2.6nm。膜M2的液压渗透率为5.9x10〜(-6)m / s /棒,分子量截止(mwco)为60,000 da,平均孔半径为5.3nm。通过膜M1和M2超滤含有0.1m的NaCl浓度为0.1m的溶菌酶水溶液。考虑到蛋白质和膜孔隙表面上的电双层的发展的预测溶菌酶抑制与实验结果吻合良好。

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