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工程生物炭/水热炭对合成废水中四环素的吸附行为。

Adsorptive behavior of engineered biochar /hydrochar for tetracycline removal from synthetic wastewater.

机构信息

Department of Agricultural Engineering, Faculty of Agriculture, University of Jaffna, Sri Lanka.

Department of Agricultural Engineering, Faculty of Agriculture, University of Jaffna, Sri Lanka.

出版信息

Environ Pollut. 2024 Mar 15;345:123452. doi: 10.1016/j.envpol.2024.123452. Epub 2024 Jan 27.

Abstract

In this research, engineered biochar and hydrochar derived from paddy husk were compared for the adsorption tetracycline (TC) in water effluents. Biochar was produced at three different pyrolysis temperatures (e.g., 250 °C, 300 °C and 350 °C) while hydrochar was produced using three different HTC temperatures (e.g., 180 °C, 200 °C and 220 °C). The adsorptive experiments were performed for both biochar and hydrochar using well-defined experimental conditions: pH (3); initial TC concentration (10 mg/L); adsorbent dosage (1 g/L); and temperature (27 °C) to study their adsorptive performances (q in mg/g). After selecting the best q values for both biochar and hydrochar, both materials were modified using 20% HPO. A comprehensive scientific evaluation of both engineered biochar (EBC 350) and hydrochar (EHC 220) was performed using adsorption isotherm, adsorption kinetics, rate-limiting, and thermodynamics tests along with their characterization using FTIR and point of zero charge (pzc). The effects of temperature, dosage, and initial TC concentration on the adsorption process were studied for both EBC 350 and EHC 220. Acid activation improved the adsorptive performance of EHC 220 almost four times (from 1.9 to 7.5 mg/g), whereas adsorptive performance of EBC 350 improved 2.4 times from 3.8 to 9.1 mg/g. The best pH for TC adsorption onto EHC 220 was 5, whereas it was 3 for EBC 350. EBC 350 exhibited a good fit with the Freundlich model, whereas EHC 220 followed the Langmuir model. At 100 mg/L TC concentration, EHC 220 exhibited higher q value (46.9 mg/g) compared to EBC 350 (41.7 mg/g). The Pseudo-first order kinetic model was the best fit for EHC 220 adsorption, whereas Pseudo-second order model was most suitable for EBC 350. The adsorption mechanisms involved in TC adsorption by EHC 220 included hydrogen bonding, hydrophobic effect, and π-π interaction, whereas cation exchange, mass diffusion, and π-π interaction were involved for EBC 350. The results of this study will facilitate the development of cost-effective filters with the incorporation of engineered biochar/engineered hydrochar for the active removal of emerging contaminants, like tetracycline, from wastewater so as to increase its reusable potential.

摘要

在这项研究中,比较了由稻壳制成的工程生物炭和水热炭对水中四环素(TC)的吸附性能。生物炭在三种不同的热解温度下制备(例如,250°C、300°C 和 350°C),而水热炭在三种不同的 HTC 温度下制备(例如,180°C、200°C 和 220°C)。在研究其吸附性能(q,mg/g)时,在三个不同的 pH 值(3)、初始 TC 浓度(10mg/L)、吸附剂剂量(1g/L)和温度(27°C)下对生物炭和水热炭进行了吸附实验。在为生物炭和水热炭选择最佳 q 值后,使用 20% HPO 对两种材料进行了改性。通过吸附等温线、吸附动力学、速率限制和热力学测试,以及使用傅里叶变换红外光谱(FTIR)和零电荷点(pzc)对它们进行的表征,对工程生物炭(EBC 350)和水热炭(EHC 220)进行了全面的科学评估。研究了温度、剂量和初始 TC 浓度对 EBC 350 和 EHC 220 吸附过程的影响。酸活化使 EHC 220 的吸附性能提高了近四倍(从 1.9 到 7.5mg/g),而 EBC 350 的吸附性能从 3.8 提高到 9.1mg/g,提高了 2.4 倍。EHC 220 吸附 TC 的最佳 pH 值为 5,而 EBC 350 的最佳 pH 值为 3。EBC 350 符合 Freundlich 模型,而 EHC 220 符合 Langmuir 模型。在 100mg/L TC 浓度下,EHC 220 的 q 值(46.9mg/g)高于 EBC 350(41.7mg/g)。EHC 220 的吸附最符合拟一级动力学模型,而 EBC 350 最符合拟二级动力学模型。EHC 220 吸附 TC 涉及氢键、疏水作用和π-π 相互作用,而 EBC 350 涉及阳离子交换、质量扩散和π-π 相互作用。这项研究的结果将有助于开发具有成本效益的过滤器,将工程生物炭/工程水热炭纳入其中,以主动去除废水中的新兴污染物,如四环素,从而提高其再利用潜力。

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