煤矸石负载纳米feooh对酸性矿山废水中Pb2+、Cu2+和Cd2+的吸附性能研究

IF 4.6 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
RSC Advances Pub Date : 2025-06-30 DOI:10.1039/D5RA03306C
Xuying Guo, Xiaoyue Zhang, Zilong Zhao, Yanrong Dong, Honglei Fu, Fanbo Meng and Wei Sun
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引用次数: 0

摘要

针对酸性矿山水(AMD)中存在Pb2+、Cu2+、Cd2+等重金属污染严重且治理困难的问题,基于煤矸石矿物骨架结构稳定,纳米feooh吸附良好的特点,采用化学沉淀法成功制备了煤矸石负载纳米feooh (nFeOOH-CG)。系统考察了不同吸附剂用量、初始pH、反应时间和初始浓度条件下,nFeOOH-CG对AMD中Pb2+、Cu2+和Cd2+的去除效果。通过吸附等温线、吸附动力学、吸附热力学模型、SEM-EDS、XRD、TEM、FTIR光谱和BET表征,揭示了nFeOOH-CG的吸附机理。结果表明,在5 g / L的投加量下,nFeOOH-CG对Pb2+、Cu2+和Cd2+的去除率分别达到96.85%、88.38%和73.1%;pH值4;反应时间为150 min, Pb2+、Cu2+、Cd2+初始浓度为100 mg / L,明显优于未改性煤矸石。nFeOOH-CG对Pb2+、Cu2+和Cd2+的吸附过程符合Langmuir和拟二级动力学模型,表明吸附机理主要为单层吸附和化学吸附。nFeOOH-CG对Pb2+和Cu2+的吸附是一个自发的吸热增熵过程,而对Cd2+的吸附是一个非自发的吸热增熵过程。表征分析表明,nFeOOH-CG的比表面积为103.68 m2 g−1,是煤矸石的13.22倍。nFeOOH的加入显著提高了煤矸石的比表面积和表面活性位点。nFeOOH-CG对Pb2+、Cu2+和Cd2+的吸附机理主要是增加比表面积、表面络合、静电吸引和离子交换。本研究为煤矸石的高效资源利用和AMD的环境修复提供了理论依据和技术参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Study on the adsorption performance of coal gangue-loaded nano-FeOOH for the removal of Pb2+, Cu2+, and Cd2+ from acid mine drainage

Study on the adsorption performance of coal gangue-loaded nano-FeOOH for the removal of Pb2+, Cu2+, and Cd2+ from acid mine drainage

In view of the serious pollution caused by heavy metals such as Pb2+, Cu2+ and Cd2+ present in acid mine drainage (AMD) and the difficulty in their treatment, based on the stable mineral skeleton structure of coal gangue and the good adsorption of nano-FeOOH, coal gangue-loaded nano-FeOOH (nFeOOH-CG) was successfully prepared via chemical precipitation. The effects of nFeOOH-CG on the removal of Pb2+, Cu2+ and Cd2+ from AMD were systematically investigated under different adsorbent dosage, initial pH, reaction time and initial concentration conditions. The adsorption mechanism of nFeOOH-CG was revealed using the adsorption isotherm, adsorption kinetics, adsorption thermodynamic model, SEM-EDS, XRD, TEM, FTIR spectroscopy and BET characterization. Results indicated that the rate of Pb2+, Cu2+ and Cd2+ removal by nFeOOH-CG reached 96.85%, 88.38% and 73.1%, respectively, under the conditions of 5 g per L dosage; pH 4; 150 min reaction time and 100 mg per L initial concentration of Pb2+, Cu2+ and Cd2+, which were significantly better than those of unmodified coal gangue. The process of Pb2+, Cu2+ and Cd2+ adsorption by nFeOOH-CG conforms to the Langmuir and pseudo-second-order kinetic models, indicating that the adsorption mechanism mainly involves monolayer and chemical adsorption. The adsorption of Pb2+ and Cu2+ by nFeOOH-CG is a spontaneous, endothermic and entropy-increasing process, while the adsorption of Cd2+ is a non-spontaneous, endothermic and entropy-increasing process. Characterization analysis showed that the specific surface area of nFeOOH-CG was 103.68 m2 g−1, which was 13.22 times higher than that of coal gangue. The loading of nFeOOH significantly increased the specific surface area and surface active sites of coal gangue. The adsorption mechanism of nFeOOH-CG on Pb2+, Cu2+ and Cd2+ was mainly attributed to the increased specific surface area, surface complexation, electrostatic attraction and ion exchange. This study provides a theoretical basis and technical reference for the efficient resource utilization of coal gangue and the environmental remediation of AMD.

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来源期刊
RSC Advances
RSC Advances chemical sciences-
CiteScore
7.50
自引率
2.60%
发文量
3116
审稿时长
1.6 months
期刊介绍: An international, peer-reviewed journal covering all of the chemical sciences, including multidisciplinary and emerging areas. RSC Advances is a gold open access journal allowing researchers free access to research articles, and offering an affordable open access publishing option for authors around the world.
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