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氧化铁改性废咖啡渣生物炭和过硫酸盐体系增强了土霉素的去除。

Enhanced chlortetracycline removal by iron oxide modified spent coffee grounds biochar and persulfate system.

机构信息

School of Materials and Environmental Engineering, Yantai University, Yantai, China.

School of Materials and Environmental Engineering, Yantai University, Yantai, China.

出版信息

Chemosphere. 2022 Aug;301:134654. doi: 10.1016/j.chemosphere.2022.134654. Epub 2022 Apr 19.

Abstract

Chlortetracycline (CTC) is a tetracycline derivative antibiotic that has been widely used in the livestock industry for prophylactic and therapeutic purposes. Effective measures should be taken to decrease the environmental risks associated with CTC-rich waste. Biochar produced by biomass waste showed great potential for organic contaminants removal by adsorption and catalytic degradation. This study prepared iron oxide-modified coffee grounds biochar (CGF) at different temperatures for enhanced CTC removal by adsorption and degradation. The main mechanism for CTC removal was found to be electrostatic interaction. In addition, pore diffusion, hydrogen bonds, and π-π bonds also contributed to CTC adsorption. Maximum CTC adsorption capacity was 223.63 mg/g for CGF800 (CGF prepared at 800 °C pyrolysis). The free radical content of CGF600 (CFG prepared at 600 °C pyrolysis) was higher than CGF800, and there were no significant advantages in using biochar prepared at a higher temperature for persulfate activation. The ion mass-to-charge ratio (M/z) is used to describe the ratio of mass to charge of an ion or peak, which can infer compound structure. The structure of CTC degradation products was analyzed by UPLC-MS, and the M/z values were determined as 444, 273, and 154. Thus, pyrolysis of coffee grounds at higher temperatures increased CTC adsorption capacity, and CGF can indirectly assist in CTC degradation by persulfate activation.

摘要

金霉素(CTC)是一种四环素衍生物抗生素,广泛应用于畜牧业的预防和治疗。应采取有效措施降低与 CTC 丰富废物相关的环境风险。生物质废物制备的生物炭通过吸附和催化降解表现出去除有机污染物的巨大潜力。本研究在不同温度下制备了氧化铁改性咖啡渣生物炭(CGF),以增强吸附和降解去除 CTC 的能力。去除 CTC 的主要机制被发现是静电相互作用。此外,孔扩散、氢键和π-π键也有助于 CTC 的吸附。CGF800(在 800°C 热解下制备的 CGF)对 CTC 的最大吸附容量为 223.63mg/g。CGF600(在 600°C 热解下制备的 CGF)的自由基含量高于 CGF800,并且使用更高温度制备的生物炭来激活过硫酸盐没有明显优势。离子质荷比(M/z)用于描述离子或峰的质量与电荷的比值,可以推断化合物结构。通过 UPLC-MS 分析 CTC 降解产物的结构,确定 M/z 值分别为 444、273 和 154。因此,咖啡渣在较高温度下热解会增加 CTC 的吸附能力,而 CGF 可以通过过硫酸盐激活间接辅助 CTC 降解。

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