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介孔芭蕉生物炭的软模板法制备及其对四环素的高效去除。

Preparation of mesoporous batatas biochar via soft-template method for high efficiency removal of tetracycline.

机构信息

School of Environmental and Municipal Engineering, North China University of Water Resources and Electric Power, Zhengzhou 450046, China; Henan Vocational College of Water Conservancy and Environment, Zhengzhou 450008, China.

School of Environmental and Municipal Engineering, North China University of Water Resources and Electric Power, Zhengzhou 450046, China; Henan Key Laboratory of Water Environment Simulation and Treatment, North China University of Water Resources and Electric Power, Zhengzhou 450046, China.

出版信息

Sci Total Environ. 2021 Sep 15;787:147397. doi: 10.1016/j.scitotenv.2021.147397. Epub 2021 Apr 29.

Abstract

In this contribution, we apply a soft-template-assisted hydrothermal route using polyethylene-polypropylene glycol (F127) as soft-template agent and biomass batatas as carbon precursor to synthesis a novel hydrothermal mesoporous biochar (HMC-800) for adsorptive removal of tetracycline (TC) from wastewater. We use the biochar prepared without F127 and direct pyrolytic biochar for comparison. The physicochemical properties of all the studied biochar samples are measured using a suite of characterization techniques. Our results show that the HMC-800 displays the highest specific surface area (286.3 m/g) and total pore volume (0.249 cm/g), manifesting the introduction of F127 can result in formation of well-developed pore structures. Regarding adsorption properties, the HMC-800 outperforms other biochar samples for TC removal. Our finding shows that solution with near-neutral pH is favorable for TC removal, and the highest adsorption capacity is observed at initial solution pH value 7. In addition, our findings show that applying the pseudo-second-order kinetic and Freundlich isotherm equation closely models the recorded adsorption behavior. The maximum adsorption capacity is measured to be as much as 238.7 mg/g by Langmuir isotherm model. Pore filling, hydrogen-bonding and n-π interaction are suggested to be the prevailing adsorption mechanisms compared to the other mechanisms. Furthermore, the HMC-800 performs better in regeneration and reuse experiments, making it a promising adsorbent material for TC removal from wastewater.

摘要

在本研究中,我们采用软模板辅助水热法,以聚乙烯-聚丙二醇(F127)为软模板剂,生物质芭蕉芋为碳前驱体,合成了一种新型水热介孔生物炭(HMC-800),用于从废水中吸附去除四环素(TC)。我们使用未使用 F127 的生物炭和直接热解生物炭进行比较。所有研究的生物炭样品的物理化学性质均使用一系列表征技术进行测量。结果表明,HMC-800 具有最高的比表面积(286.3 m/g)和总孔体积(0.249 cm/g),表明 F127 的引入可以形成发达的孔结构。关于吸附性能,HMC-800 对 TC 的去除效果优于其他生物炭样品。我们的研究结果表明,近中性 pH 值的溶液有利于 TC 的去除,在初始溶液 pH 值为 7 时观察到最高的吸附容量。此外,我们的研究结果表明,拟二级动力学和 Freundlich 等温线方程较好地模拟了记录的吸附行为。通过 Langmuir 等温线模型测量的最大吸附容量高达 238.7 mg/g。与其他机制相比,建议孔填充、氢键和 n-π 相互作用是主要的吸附机制。此外,HMC-800 在再生和重复使用实验中表现更好,使其成为一种很有前途的用于从废水中去除 TC 的吸附剂材料。

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