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首页> 外文期刊>Amino acids >A comparative study for adsorption of lysozyme from aqueous samples onto Fe3O4 magnetic nanoparticles using different ionic liquids as modifier
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A comparative study for adsorption of lysozyme from aqueous samples onto Fe3O4 magnetic nanoparticles using different ionic liquids as modifier

机译:使用不同离子液体作为改性剂将溶菌酶从水性样品吸附到Fe3O4磁性纳米颗粒上的比较研究

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摘要

In this paper, nanoparticles of Fe3O4 as well as their modified forms with different ionic liquids (IL-Fe3O4) were prepared and used for adsorption of lysozyme. The mean size and the surface morphology of the nanoparticles were characterized by TEM, XRD and FTIR techniques. Adsorption studies of lysozyme were performed under different experimental conditions in batch system on different modified magnetic nanoparticles such as, lysozyme concentration, pH of the solution, and contact time. Experimental results were obtained under the optimum operational conditions of pH 9.0 and a contact time of 10 min when initial protein concentrations of 0.05-2.0 mg mL(-1) were used. The isotherm evaluations revealed that the Langmuir model attained better fits to the equilibrium data than the Freundlich model. The maximum obtained adsorption capacities were 370.4, 400.0 500.0 and 526.3 mg of lysozyme for adsorption onto Fe3O4 and modified magnetic nanoparticles by [C4MIM][Br], [C6MIM][Br] and [C8MIM][Br] per gram of adsorbent, respectively. The Langmuir adsorption constants were 0.004, 0.019, 0.024 and 0.012 L mg(-1) for adsorptions of lysozyme onto Fe3O4 and modified magnetic nanoparticles by [C4MIM][Br], [C6MIM][Br] and [C8MIM][Br], respectively. The adsorption capacity of lysozyme was found to be dependent on its chemical structure, pH of the solution, temperature and type of ionic liquid as modifier. The applicability of two kinetic models including pseudo-first order and pseudo-second order model was estimated. Furthermore, the thermodynamic parameters were calculated. Protein could desorb from IL-Fe3O4 nanoparticles by using NaCl solution at pH 9.5 and was reused.
机译:本文制备了Fe3O4纳米颗粒及其在不同离子液体中的改性形式(IL-Fe3O4),并将其用于溶菌酶的吸附。通过TEM,XRD和FTIR技术表征了纳米颗粒的平均尺寸和表面形态。溶菌酶的吸附研究是在不同的实验条件下,在不同的修饰磁性纳米颗粒上分批进行的,例如溶菌酶浓度,溶液的pH值和接触时间。当使用0.05-2.0 mg mL(-1)的初始蛋白质浓度时,在最佳pH 9.0的操作条件和10分钟的接触时间下获得了实验结果。等温线评估显示,Langmuir模型比Freundlich模型具有更好的拟合平衡数据的能力。通过[C4MIM] [Br],[C6MIM] [Br]和[C8MIM] [Br] /克吸附剂分别获得的最大吸附容量为370.4、400.0 500.0和526.3 mg溶菌酶,以吸附到Fe3O4和修饰的磁性纳米颗粒上。对于[C4MIM] [Br],[C6MIM] [Br]和[C8MIM] [Br],溶菌酶在Fe3O4和修饰的磁性纳米颗粒上的吸附,Langmuir吸附常数分别为0.004、0.019、0.024和0.012 L mg(-1),分别。发现溶菌酶的吸附能力取决于其化学结构,溶液的pH,温度和作为改性剂的离子液体的类型。估算了包括伪一阶模型和伪二阶模型在内的两个动力学模型的适用性。此外,计算了热力学参数。在pH值为9.5的NaCl溶液中,蛋白质可以从IL-Fe3O4纳米颗粒上解吸并重新使用。

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