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使用从阿萨伊果核制备的生物炭作为吸附剂从合成废水中摄取儿茶酚。

Use of Biochar Prepared from the Açaí Seed as Adsorbent for the Uptake of Catechol from Synthetic Effluents.

机构信息

Institute of Exact Sciences, Federal University of the South and Southeast of Pará (UNIFESPA), Marabá 68570-590, PA, Brazil.

Institute of Chemistry, Federal University of Rio Grande do Sul (UFRGS), Porto Alegre 91501-970, RS, Brazil.

出版信息

Molecules. 2022 Nov 4;27(21):7570. doi: 10.3390/molecules27217570.

Abstract

This work proposes a facile methodology for producing porous biochar material (ABC) from açaí kernel residue, produced by chemical impregnation with ZnCl2 (1:1) and pyrolysis at 650.0 °C. The characterization was achieved using several techniques, and the biochar material was employed as an adsorbent to remove catechol. The results show that ABC carbon has hydrophilic properties. The specific surface area and total pore volume are 1315 m2·g−1 and 0.7038 cm3·g−1, respectively. FTIR revealed the presence of oxygenated groups, which can influence catechol adsorption. The TGA/DTG indicated that the sample is thermally stable even at 580 °C. Adsorption studies showed that equilibrium was achieved in <50 min and the Avrami kinetic model best fits the experimental data, while Freundlich was observed to be the best-fitted isotherm model. Catechol adsorption on ABC biochar is governed by van der Waals forces and microporous and mesoporous filling mechanisms. The Qmax is 339.5 mg·g−1 (40 °C) with 98.36% removal of simulated effluent, showing that açaí kernel is excellent biomass to prepare good biochar that can be efficiently used to treat real industrial effluents.

摘要

本工作提出了一种从用 ZnCl2(1:1)化学浸渍和在 650.0°C 下热解制备的巴西莓果核残渣中生产多孔生物炭材料(ABC)的简便方法。使用多种技术对生物炭材料进行了表征,并将其用作吸附剂去除儿茶酚。结果表明,ABC 碳具有亲水性。比表面积和总孔体积分别为 1315 m2·g−1和 0.7038 cm3·g−1。FTIR 表明存在含氧基团,这可能影响儿茶酚的吸附。TGA/DTG 表明即使在 580°C 下,样品也是热稳定的。吸附研究表明,平衡在 <50 min 内达到,Avrami 动力学模型最适合实验数据,而 Freundlich 被观察到是最适合的等温线模型。儿茶酚在 ABC 生物炭上的吸附受范德华力和微孔和中孔填充机制的控制。Qmax 为 339.5 mg·g−1(40°C),模拟废水中的去除率为 98.36%,表明巴西莓果核是极好的生物质,可以有效地用于处理实际工业废水。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ac99/9654046/fdd3441554fd/molecules-27-07570-g001.jpg

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