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细菌纤维素/壳聚糖-MIL-100(Fe)复合材料的制备及其对达卡巴嗪的吸附去除性能

Fabrication of Bacterial Cellulose/Chitosan-MIL-100(Fe) Composite for Adsorptive Removal of Dacarbazine.

机构信息

Institute for Nanoscience and Nanotechnology (INST), Sharif University of Technology, P.O. Box 14588-89694, Tehran, Iran.

Department of Cell and Molecular Biology, Faculty of Life Science and Biotechnology, Shahid Beheshti University, P.O. Box 19839-69411, Tehran, Iran.

出版信息

Int J Biol Macromol. 2024 Feb;257(Pt 2):128683. doi: 10.1016/j.ijbiomac.2023.128683. Epub 2023 Dec 11.

Abstract

In this research, a polymeric composite based on a chitosan/bacterial cellulose (CS/BC) matrix filled with MIL-100(Fe) particles was prepared to solve the recyclability of issue MIL-100(Fe) particles and utilized as an efficient adsorbent for removing dacarbazine (DTIC) from wastewater. The adsorption capacity of the composite (CS/BC-MIL) was higher than both MIL-100(Fe) and the CS/BC polymeric matrix. The adsorption performance of the fabricated composite was evaluated through kinetics and isotherm studies. While isotherm studies revealed that the adsorption of DTIC onto the adsorbent can be well described by the Freundlich model, kinetics studies indicated that a combination of factors, rather than a single rate-limiting factor, are responsible for the adsorption rate. Thermodynamics investigation showed that the adsorption of DTIC to CS/BC-MIL composite is exothermic and occurs spontaneously. Additionally, due to the negative entropy change, it was established that the adsorption is governed by the enthalpy change. Exploring the solution chemistry revealed that the optimum pH for the adsorption process was about 4. Moreover, the CS/BC-MIL can selectively adsorb DTIC in the presence of other pharmaceuticals like doxorubicin (DOX). Furthermore, regeneration investigations disclosed that the composite holds its structural features and has an acceptable adsorption capacity after several cycles of adsorption/desorption.

摘要

在这项研究中,制备了一种基于壳聚糖/细菌纤维素(CS/BC)基质的聚合物复合材料,其中填充了 MIL-100(Fe)颗粒,以解决 MIL-100(Fe)颗粒的可回收性问题,并将其用作去除废水中文拉夫定(DTIC)的有效吸附剂。复合材料(CS/BC-MIL)的吸附能力高于 MIL-100(Fe)和 CS/BC 聚合物基质。通过动力学和等温线研究评估了所制备复合材料的吸附性能。虽然等温线研究表明,DTIC 对吸附剂的吸附可以很好地用 Freundlich 模型描述,但动力学研究表明,吸附速率是由多种因素共同作用而不是单一限速因素决定的。热力学研究表明,CS/BC-MIL 复合材料对 DTIC 的吸附是放热的,并且是自发发生的。此外,由于熵的负变化,可以确定吸附受焓变的控制。探索溶液化学表明,吸附过程的最佳 pH 值约为 4。此外,CS/BC-MIL 可以在存在其他药物如阿霉素(DOX)的情况下选择性地吸附 DTIC。此外,再生研究表明,该复合材料在多次吸附/解吸循环后保持其结构特征和可接受的吸附能力。

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