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An Easy Synthesis for Preparing Bio-Based Hybrid Adsorbent Useful for Fast Adsorption of Polar Pollutants

机译:一种易于合成的生物基混合吸附剂可用于快速吸附极性污染物

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摘要

For the first time, γ-Al2O3 and Bio-Based Substances (BBS) hybrids (>A-BBS) were prepared through a simple electrostatic interaction occurring between alumina, used as a support, and BBS (Bio-Based Substance from composted biowastes) carrying positive and negative charges, respectively. We evaluated the optimal amount of BBS to be immobilized on the support and the stability of the resulting >A-BBS in order to use this novel hybrid material as an adsorbent for the removal of polar pollutants. Characterization was carried out by X-Ray Diffraction (XRD) for evaluating the crystal structure of the support, Fourier transform infrared spectroscopy (FT-IR) to evidence the presence of BBS on the hybrid material, thermogravimetric analysis (TGA) to measure the thermal stability of the hybrid materials and quantify the BBS amount immobilized on the support, N2 adsorption at 77 K for the evaluation of the surface area and porosity of the systems, Zeta potential measurements to evaluate the effect of BBS immobilization on the surface charge of the particles and choose the substrates possibly interacting with them. Firstly, we tested the adsorption capability of three samples differently coated with BBS toward cationic species considering various adsorbate/adsorbent ratio. Crystal Violet (CV) was chosen as model pollutant to compare the performance of the hybrid materials with those of other materials described in the literature. The adsorption data were modeled by Langmuir and Freundlich adsorption isotherms. Then, we studied the adsorption capability of the developed material towards molecules with different structures; for this purpose, two contaminants of emerging concerns (carbamazepine and atenolol) were tested. The results indicate that >A-BBS could be applied in wastewater treatment for the removal of a significant amount of polar species. In addition, a comparison with literature data concerning CV adsorption was carried out in order to evaluate the environmental impact of synthetic routes used to prepare different adsorbents.
机译:首次通过用作载体的氧化铝与BBS(Bio-Bios-Bios)之间发生简单的静电相互作用,制备了γ-Al2O3和生物基物质(BBS)杂化物(> A -BBS)。来自堆肥生物废物的基础物质)分别带有正电荷和负电荷。我们评估了固定在载体上的最佳BBS量以及所得的> A -BBS的稳定性,以便将该新型杂化材料用作吸附剂,以去除极性污染物。通过X射线衍射(XRD)进行表征以评估载体的晶体结构,通过傅立叶变换红外光谱(FT-IR)来证明混合材料上存在BBS,通过热重分析(TGA)来进行热分析。杂化材料的稳定性和量化固定在载体上的BBS量,77 K下的N2吸附以评估系统的表面积和孔隙率,Zeta电位测量以评估BBS固定对颗粒表面电荷的影响并选择可能与之相互作用的基材。首先,考虑到各种被吸附物/吸附剂的比率,我们测试了三种不同涂覆BBS的样品对阳离子的吸附能力。选择结晶紫(CV)作为模型污染物,以比较混合材料与文献中描述的其他材料的性能。吸附数据通过Langmuir和Freundlich吸附等温线建模。然后,我们研究了开发的材料对具有不同结构的分子的吸附能力。为此,测试了两种新出现的污染物(卡马西平和阿替洛尔)。结果表明,> A -BBS可用于废水处理中,以去除大量极性物质。另外,与关于CV吸附的文献数据进行了比较,以评估用于制备不同吸附剂的合成路线对环境的影响。

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