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生物炭介导的锆铁氧体纳米复合材料用于去除纺织废水中的柠檬黄染料

Biochar-Mediated Zirconium Ferrite Nanocomposites for Tartrazine Dye Removal from Textile Wastewater.

作者信息

Perveen Shazia, Nadeem Raziya, Nosheen Farhat, Asjad Muhammad Imran, Awrejcewicz Jan, Anwar Tauseef

机构信息

Department of Chemistry, University of Agriculture, Faisalabad 38000, Pakistan.

Institute of Chemistry, University of Sargodha, Sargodha 40100, Pakistan.

出版信息

Nanomaterials (Basel). 2022 Aug 17;12(16):2828. doi: 10.3390/nano12162828.

Abstract

To meet the current challenges concerning the removal of dyes from wastewater, an environmentally friendly and efficient treatment technology is urgently needed. The recalcitrant, noxious, carcinogenic and mutagenic compound dyes are a threat to ecology and its removal from textile wastewater is challenge in the current world. Herein, biochar-mediated zirconium ferrite nanocomposites (BC-ZrFeO NCs) were fabricated with wheat straw-derived biochar and applied for the adsorptive elimination of Tartrazine dye from textile wastewater. The optical and structural properties of synthesized BC-ZrFeO NCs were characterized via UV/Vis spectroscopy, Fourier transform Infra-red (FTIR), X-Ray diffraction (XRD), Energy dispersive R-Ray (EDX) and Scanning electron microscopy (SEM). The batch modes experiments were executed to explore sorption capacity of BC-ZrFeO NCs at varying operative conditions, i.e., pH, temperature, contact time, initial dye concentrations and adsorbent dose. BC-ZrFeO NCs exhibited the highest sorption efficiency among all adsorbents (wheat straw biomass (WSBM), wheat straw biochar (WSBC) and BC-ZrFeO NCs), having an adsorption capacity of (mg g) 53.64 ± 0.23, 79.49 ± 0.21 and 89.22 ± 0.31, respectively, for Tartrazine dye at optimum conditions of environmental variables: pH 2, dose rate 0.05 g, temperature 303 K, time of contact 360 min and concentration 100 mg L. For the optimization of process variables, response surface methodology (RSM) was employed. In order to study the kinetics and the mechanism of the adsorption process, kinetic and equilibrium mathematical models were used, and results revealed 2nd order kinetics and a multilayer chemisorption mechanism due to complexation of hydroxyl, Fe and Zr with dyes functional groups. The nanocomposites were also recovered in five cycles without significant loss (89 to 63%) in adsorption efficacy. This research work provides insight into the fabrication of nanoadsorbents for the efficient adsorption of Tartrazine dye, which can also be employed for practical engineering applications on an industrial scale as efficient and cost effective materials.

摘要

为应对当前从废水中去除染料的挑战,迫切需要一种环境友好且高效的处理技术。难降解、有毒、致癌和致突变的复合染料对生态构成威胁,在当今世界,从纺织废水中去除此类染料是一项挑战。在此,用小麦秸秆衍生的生物炭制备了生物炭介导的锆铁氧体纳米复合材料(BC-ZrFeO NCs),并将其用于吸附去除纺织废水中的柠檬黄染料。通过紫外可见光谱、傅里叶变换红外光谱(FTIR)、X射线衍射(XRD)、能量色散X射线光谱(EDX)和扫描电子显微镜(SEM)对合成的BC-ZrFeO NCs的光学和结构性质进行了表征。进行了间歇模式实验,以探究BC-ZrFeO NCs在不同操作条件下(即pH值、温度、接触时间、初始染料浓度和吸附剂剂量)的吸附容量。在所有吸附剂(小麦秸秆生物质(WSBM)、小麦秸秆生物炭(WSBC)和BC-ZrFeO NCs)中,BC-ZrFeO NCs表现出最高的吸附效率,在环境变量的最佳条件下(pH值为2、剂量率为0.05 g、温度为303 K、接触时间为360分钟、浓度为100 mg/L),对柠檬黄染料的吸附容量分别为(mg/g)53.64±0.23、79.49±0.21和89.22±0.31。为了优化工艺变量,采用了响应面方法(RSM)。为了研究吸附过程的动力学和机理,使用了动力学和平衡数学模型,结果表明吸附过程符合二级动力学和多层化学吸附机理,这是由于羟基、铁和锆与染料官能团发生络合作用。纳米复合材料还可循环使用五次,吸附效率无显著损失(从89%降至63%)。这项研究工作为制备用于高效吸附柠檬黄染料的纳米吸附剂提供了思路,这些纳米吸附剂也可作为高效且经济的材料应用于工业规模的实际工程中。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/24e1/9414429/feeac21c4e50/nanomaterials-12-02828-g001.jpg

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