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基于微生物生物质和天然聚合物的生物复合材料对水溶液中药物的生物吸附研究:工艺变量优化及动力学研究

Investigation into Biosorption of Pharmaceuticals from Aqueous Solutions by Biocomposite Material Based on Microbial Biomass and Natural Polymer: Process Variables Optimization and Kinetic Studies.

作者信息

Rusu Lăcrămioara, Grigoraș Cristina-Gabriela, Simion Andrei-Ionuț, Suceveanu Elena-Mirela, Schnakovszky Carol, Favier Lidia

机构信息

Faculty of Engineering, "Vasile Alecsandri" University of Bacau, 157 Calea Mărăşeşti, 600115 Bacau, Romania.

Ecole Nationale Supérieure de Chimie de Rennes, University of Rennes, CNRS, UMR 6226, CEDEX 7, 35708 Rennes, France.

出版信息

Polymers (Basel). 2022 Aug 19;14(16):3388. doi: 10.3390/polym14163388.

Abstract

Biosorbtive removal of the antibacterial drug, ethacridine lactate (EL), from aqueous solutions was investigated using as biosorbent residual biomass immobilized in calcium alginate. The aim of this work was to optimize the biosorption process and to evaluate the biosorption capacity in the batch system. Response surface methodology, based on a Box-Behnken design, was used to optimize the EL biosorption parameters. Two response functions (removal efficiency and biosorption capacity) were maximized dependent on three factors: initial concentration of EL solution, contact time, and agitation speed. The highest values for the studied functions (89.49%, 26.04 mg/g) were obtained in the following operational conditions: EL initial concentration: 59.73 mg/L; contact time: 94.26 min; agitation speed: 297.57 rpm. A number of nonlinear kinetic models, including pseudo-first-order, pseudo-second-order, Elovich, and Avrami, were utilized to validate the biosorption kinetic behavior of EL in the optimized conditions. The kinetic data fitted the pseudo-first-order and Avrami models. The experimental results demonstrated that the optimized parameters (especially the agitation speed) significantly affect biosorption and should be considered important in such studies.

摘要

使用固定在海藻酸钙中的残余生物质作为生物吸附剂,研究了从水溶液中生物吸附去除抗菌药物乳酸依沙吖啶(EL)的方法。这项工作的目的是优化生物吸附过程,并评估间歇系统中的生物吸附容量。基于Box-Behnken设计的响应面法用于优化EL生物吸附参数。两个响应函数(去除效率和生物吸附容量)取决于三个因素而最大化:EL溶液的初始浓度、接触时间和搅拌速度。在以下操作条件下获得了所研究函数的最高值(89.49%,26.04 mg/g):EL初始浓度:59.73 mg/L;接触时间:94.26分钟;搅拌速度:297.57 rpm。利用包括伪一级、伪二级、Elovich和Avrami在内的多种非线性动力学模型来验证EL在优化条件下的生物吸附动力学行为。动力学数据符合伪一级和Avrami模型。实验结果表明,优化参数(尤其是搅拌速度)对生物吸附有显著影响,在这类研究中应予以重视。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1e27/9412267/577100e284b7/polymers-14-03388-g001.jpg

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