La-Fe金属有机骨架高效吸附剂对矿井水中氟化物的吸附性能及机理研究

IF 6.9 Q1 Environmental Science
Chaomin Jia , Jianbing Wang , Huijiao Wang , Sichao Zhu , Xiaohui Zhang , Yuxiang Wang
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引用次数: 1

摘要

水氟污染对环境和人类造成了不可忽视的危害,因此寻找合适的处理技术至关重要。在本研究中,La-Fe@PTA合成了用于矿井水除氟的吸附剂。实验结果表明,采用La-Fe@PTApH接近7.0,F−初始浓度为10mg/L,投加量为0.5g/L,吸附时间为240min。与SO42-相比,Cl-、NO3-、Ca2+和Mg2+、CO32-和HCO3-通过La-Fe@PTA.吸附过程符合拟二阶动力学模型和Freundlich模型,Langmuir模型的最大吸附量为95mg/g。固定床吸附结果表明,在130床体积(BV)范围内,使用1.5g可有效去除实际含氟矿井水中的氟,从3.6mg/L降至1.5mg/L以下La-Fe@PTA.此外,再生后的吸附剂仍具有良好的吸附能力,这证实了La-Fe@PTA作为氟离子吸附剂。机理分析表明:La-Fe@PTA氟离子的吸附是一种由静电吸引和离子交换驱动的物理化学反应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Performance and mechanism of La-Fe metal-organic framework as a highly efficient adsorbent for fluoride removal from mine water

Performance and mechanism of La-Fe metal-organic framework as a highly efficient adsorbent for fluoride removal from mine water

Water fluoride pollution has caused non-negligible harm to the environment and humans, and thus it is crucial to find a suitable treatment technology. In this study, La-Fe@PTA adsorbent was synthesized for the defluoridation of mine water. The results showed that the optimum conditions for defluoridation by La-Fe@PTA were pH close to 7.0, the initial F concentration of 10 mg/L, the dosage of 0.5 g/L and the adsorption time of 240 min. Compared with SO42‒, Cl, NO3, Ca2+ and Mg2+, CO32‒ and HCO3 presented severer inhibition on fluoride uptake by La-Fe@PTA. The adsorption process fits well with the pseudo-second-order kinetic model and Freundlich model, and the maximum adsorption capacity of Langmuir model was 95 mg/g. Fixed-bed adsorption results indicated that fluoride in practical fluorinated mine water could be effectively removed from 3.6 mg/L to less than 1.5 mg/L within 130 bed volume (BV) by using 1.5 g La-Fe@PTA. Furthermore, the adsorbent still had good adsorption capacity after regeneration, which confirms the great application potential of La-Fe@PTA as a fluoride ion adsorbent. The mechanism analysis showed that La-Fe@PTA adsorption of fluorine ions is a physicochemical reaction driven by electrostatic attraction and ion exchange.

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来源期刊
Journal of environmental sciences
Journal of environmental sciences Environmental Science (General)
CiteScore
12.80
自引率
0.00%
发文量
0
审稿时长
17 days
期刊介绍: Journal of Environmental Sciences is an international peer-reviewed journal established in 1989. It is sponsored by the Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences, and it is jointly published by Elsevier and Science Press. It aims to foster interdisciplinary communication and promote understanding of significant environmental issues. The journal seeks to publish significant and novel research on the fate and behaviour of emerging contaminants, human impact on the environment, human exposure to environmental contaminants and their health effects, and environmental remediation and management. Original research articles, critical reviews, highlights, and perspectives of high quality are published both in print and online.
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