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四环素在具有超大表面积的多孔石墨化生物炭上的吸附能力增强。

Enhanced adsorption capacity of tetracycline on porous graphitic biochar with an ultra-large surface area.

作者信息

Huang Bingyuan, Huang Dan, Zheng Qian, Yan Changhan, Feng Jiaping, Gao Hejun, Fu Hongquan, Liao Yunwen

机构信息

Chemical Synthesis and Pollution Control Key Laboratory of Sichuan Province, Institute of Applied Chemistry, College of Chemistry and Chemical Engineering, China West Normal University Nanchong Sichuan 637000 China

People's Hospital of Gaoping District Nanchong Sichuan 637100 China.

出版信息

RSC Adv. 2023 Apr 3;13(15):10397-10407. doi: 10.1039/d3ra00745f. eCollection 2023 Mar 27.

Abstract

Excessive tetracycline in the water environment may lead to the harming of human and ecosystem health. Removing tetracycline antibiotics from aqueous solution is currently a most urgent issue. Porous graphitic biochar with an ultra-large surface area was successfully prepared by a one-step method. The effects of activation temperature, activation time, and activator dosage on the structural changes of biochar were investigated by scanning electron microscopy, Brunauer-Emmett-Teller, X-ray powder diffraction, and Raman spectroscopy. The effect of the structure change, adsorption time, temperature, initial pH, and co-existing ions on the tetracycline removal efficiency was also investigated. The results show that temperature had the most potent effect on the specific surface area, pore structure, and extent of graphitization. The ultra-large surface area and pore structure of biochar are critical to the removal of tetracycline. The of porous graphitic biochar could reach 1122.2 mg g at room temperature. The calculations of density functional theory indicate that π-π stacking interaction and p-π stacking interaction can enhance the tetracycline adsorption on the ultra-large surface area of graphitic biochar.

摘要

水环境中过量的四环素可能会对人类和生态系统健康造成危害。从水溶液中去除四环素抗生素是当前最为紧迫的问题。通过一步法成功制备了具有超大表面积的多孔石墨化生物炭。利用扫描电子显微镜、布鲁诺尔-埃米特-泰勒法、X射线粉末衍射和拉曼光谱研究了活化温度、活化时间和活化剂用量对生物炭结构变化的影响。还研究了结构变化、吸附时间、温度、初始pH值和共存离子对四环素去除效率的影响。结果表明,温度对比表面积、孔结构和石墨化程度的影响最为显著。生物炭的超大表面积和孔结构对四环素的去除至关重要。多孔石墨化生物炭在室温下对四环素的吸附量可达1122.2 mg/g。密度泛函理论计算表明,π-π堆积相互作用和p-π堆积相互作用可增强四环素在石墨化生物炭超大表面积上的吸附。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d8a3/10068915/e1b08b56b757/d3ra00745f-f1.jpg

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