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Optimization of surface imprinted layer attached poly(vinylidene fluoride) membrane for selective separation of salicylic acid from acetylsalicylic acid using central composite design

机译:使用中心复合设计优化表面印迹层附着的聚偏二氟乙烯膜,用于从乙酰水杨酸中选择性分离水杨酸

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摘要

Highly selective molecularly imprinted membranes (M1M) for salicylic acid (SA) were synthesized with methacrylic acid (MAA), acrylamide (AM) or 4-vinylpyridine (4-VP) as the functional monomer, respectively based on the poly(vinylidene fluoride) microfiltration membrane. Fast kinetic equilibrium for the rebinding of SA was found on all the imprinted membranes. Comparing with MAA-MIM and AM-MIM, the 4-VP-MIM presented stronger adsorption capacity and higher permeation selectivity for SA due to the formation of ionic bond between SA and 4-VP. The separation effect on SA and acetylsalicylic acid (ASA) were strongly affected by the amount of polymer layers on the MIM. The experimental data were well fitted to a second-order polynomial equation using multiple regression analysis and also analyzed by analysis of variance (ANOVA). Response surface methodology was employed to investigate the best combination of separation conditions in the dynamic separation process. The optimal conditions for the separation of SA from ASA were as follows: the SA concentration of 10 mg L~(-1) the temperature of 10 °C and the flow rate of 1 mL min~(-1). Under these conditions, the experimental separation factor of SA and ASA was 10.24 ± 1.06%, which was close to the predicted separation factor.
机译:以甲基丙烯酸(MAA),丙烯酰胺(AM)或4-乙烯基吡啶(4-VP)为功能单体,分别基于聚偏二氟乙烯合成了高选择性的水杨酸分子印迹膜(M1M)。微滤膜。在所有印迹膜上都发现了SA重新结合的快速动力学平衡。 4-MA-MIM与MAA-MIM和AM-MIM相比,由于SA与4-VP之间形成离子键,因此对SA的吸附能力更强,渗透选择性更高。对SA和乙酰水杨酸(ASA)的分离效果受MIM上聚合物层数量的强烈影响。使用多元回归分析将实验数据很好地拟合到二阶多项式方程,并且还通过方差分析(ANOVA)进行了分析。响应面方法用于研究动态分离过程中分离条件的最佳组合。从ASA中分离SA的最佳条件如下:SA浓度为10 mg L〜(-1),温度为10°C,流速为1 mL min〜(-1)。在这些条件下,SA和ASA的实验分离因子为10.24±1.06%,接近预测的分离因子。

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