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基于废漂白土的新型介孔碳化材料对水溶液中双酚 A 的有效吸附。

Effective adsorption of bisphenol A from aqueous solution over a novel mesoporous carbonized material based on spent bleaching earth.

机构信息

School of Environmental Engineering, Henan University of Technology, Zhengzhou, 450001, Henan, China.

Zhengzhou Sewage Purification Co. LTD, Zhengzhou, 450051, Henan, China.

出版信息

Environ Sci Pollut Res Int. 2021 Aug;28(29):40035-40048. doi: 10.1007/s11356-021-13596-0. Epub 2021 Mar 26.

DOI:10.1007/s11356-021-13596-0
PMID:33770357
Abstract

In this study, the novel mesoporous carbonized material (HSBE/C) was prepared from clay/carbon composite (SBE/C) treated with hydrofluoric acid (HF) for the first time, and was employed to efficiently adsorb bisphenol A (BPA) in water. Specifically, SBE/C was derived from the pyrolysis of spent bleaching earth (SBE), an industrial waste. HF removed SiO from SBE/C and increased the specific surface area of HSBE/C (from 100.21 to 183.56 m/g), greatly providing more adsorption sites for enhanced BPA adsorption capacity. The Langmuir monolayer maximum adsorption capacity of HSBE/C (103.32 mg/g) was much higher than the commercial activated carbon (AC) (42.53 mg/g). The adsorption process by HSBE/C followed well with the Freundlich isotherm model and the pseudo-second-order kinetic model and also was endothermic (ΔH > 0) and spontaneous (ΔG < 0). Based on the systematic characterization and factor experiment (temperature, dosage, initial pH, co-existing ions), BPA adsorption mechanism by HSBE/C likely included the hydrogen bonding, electrostatic interaction, and hydrophobic interaction. Moreover, there was no secondary pollution during the total adsorption process. Extraordinary, HSBE/C manifested stability by NaOH desorption regeneration. This study provides a new sight for application of waste-based materials as the promising adsorbents in the treatment of endocrine disruptors.

摘要

在这项研究中,首次使用氢氟酸(HF)处理粘土/碳复合材料(SBE/C)制备了新型介孔碳化材料(HSBE/C),并将其用于高效吸附水中的双酚 A(BPA)。具体来说,SBE/C 是由工业废物废漂白土(SBE)热解得到的。HF 去除了 SBE/C 中的 SiO,增加了 HSBE/C 的比表面积(从 100.21 增加到 183.56 m2/g),为增强 BPA 吸附能力提供了更多的吸附位点。HSBE/C 的 Langmuir 单层最大吸附容量(103.32 mg/g)远高于商业活性炭(AC)(42.53 mg/g)。HSBE/C 的吸附过程符合 Freundlich 等温模型和准二级动力学模型,并且是吸热的(ΔH > 0)和自发的(ΔG < 0)。基于系统的表征和因素实验(温度、剂量、初始 pH 值、共存离子),HSBE/C 对 BPA 的吸附机制可能包括氢键、静电相互作用和疏水相互作用。此外,在整个吸附过程中没有二次污染。此外,HSBE/C 通过 NaOH 脱附再生表现出稳定性。本研究为利用基于废物的材料作为有前途的吸附剂处理内分泌干扰物提供了新的视角。

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