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Highly enhanced adsorption performance of tetracycline antibiotics on KOH-activated biochar derived from reed plants

机译:高分增强的四环素抗生素对芦苇植物的酸酸激活生物炭的吸附性能

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摘要

Organic pollutants in water are an increasingly prominent problem. Given this challenge, this study investigated the high adsorption capacity of reed-based biochar for use as an adsorbent using the potassium hydroxide (KOH) activation method. We investigated the performance and mechanism of reed-based biochar with respect to the adsorption of a significant contaminant of emerging concern, tetracycline (TC). The effects of pH, contact time, temperature, and initial pollution concentration on the adsorption rate were investigated in detail. The experimental results suggest that the internal structure of activated biochar was loose and porous, and the specific surface area (BET) increased by 194.08 times, reaching 965.31 m ~(2) g ~(?1) after KOH activation. The biochar surface was electronegative, due to the ionization of oxygen-containing functional groups, such as hydroxyl (–OH) and carboxyl (–COOH) groups. Solution pH had only a weak influence on TC adsorption; neutral conditions favored adsorption. The adsorption kinetics and isotherms were represented well by the pseudo-second-order and Freundlich models, respectively. The chemical multilayer adsorption may play an important role in TC adsorption, which was a spontaneous endothermic reaction. The adsorption process occurred more easily after KOH activation and the adsorption capacity of biochar improved by more than 20 times. These results indicate that preparing reed-derived biochar using KOH activation is an effective way to reduce pollution and utilize a waste resource.
机译:水中有机污染物是一个越来越突出的问题。鉴于这项挑战,本研究研究了使用氢氧化钾(KOH)活化法用作吸附剂的基于簧片基生物炭的高吸附能力。我们研究了基于簧片的生物炭的性能和机制,了解出现关注的显着污染物,四环素(TC)的吸附。详细研究了pH,接触时间,温度和初始污染浓度对吸附速率的影响。实验结果表明,活化生物炭的内部结构松散且多孔,特定表面积(BET)增加了194.08倍,达到了KOH活化后的965.31m〜(2)G〜(α1)。由于含氧官能团的电离,例如羟基(-OH)和羧基(-COOH)基团,Biochar表面是电负电极的。溶液pH仅对TC吸附产生薄弱的影响;中性条件有利于吸附。通过伪二阶和Freundlich模型分别表示吸附动力学和等温。化学多层吸附可能在TC吸附中起重要作用,这是一种自发的吸热反应。在KOH激活后更容易发生吸附过程,生物炭的吸附容量超过20倍。这些结果表明,使用KOH活化制备簧片衍生的生物炭是一种减少污染和利用废资源的有效方法。

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