Advances in metal-organic frameworks for microplastic removal from aquatic environments: Mechanisms and performance insights

IF 4.2 Q2 CHEMISTRY, MULTIDISCIPLINARY Results in Chemistry Pub Date : 2025-02-18 DOI:10.1016/j.rechem.2025.102132
Fateme Barari , Mohaddeseh Eydi Gabrabad , Ziaeddin Bonyadi , Bahman Ramavandi
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Abstract

Metal-organic frameworks (MOFs) are highly effective materials for mitigating microplastic (MP) pollution in aquatic environments, owing to their exceptional porosity, large surface area, and selective affinity for pollutants. This study evaluates the performance of MOFs in MP removal by analyzing findings from over 65 studies, with a detailed focus on 20 key papers. Approximately 32 % of the studies investigated polystyrene (PS) MPs, and a similar percentage examined MP concentrations ranging from 10 to 1000 mg/L. Notably, 47 % of the studies reported that contact times exceeding 200 min significantly enhanced MP removal, while 36 % indicated optimal removal efficiencies at pH levels between 3 and 6. Furthermore, smaller MPs (<1 μm) had higher removal efficiency due to increased surface interactions. Among MOFs, ZIF-67 achieved a 92.1 % removal efficiency for micrometer-sized PS MPs, while PSF/MIL-100(Fe) demonstrated a 98 % removal efficiency even after six reuse cycles. Cr-MOF had a remarkable adsorption capacity of 665 mg/g for PS MPs. Adsorption behaviors predominantly followed pseudo-first-order kinetics and Freundlich isotherms. Mechanistic analyses identified electrostatic attraction, π-π interactions, and acid-base interactions as the primary adsorption pathways of MPs onto MOFs. This study highlights the high efficiency and reusability of MOFs in microplastic removal. Future research should focus on scaling up MOF applications, optimizing synthesis methods to increase efficiency and reduce cost, and addressing the potential environmental impacts of large-scale MOF deployment.

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从水生环境中去除微塑料的金属有机框架的进展:机制和性能见解
金属有机框架(mof)由于其特殊的孔隙率、大表面积和对污染物的选择性亲和力,是减轻水生环境中微塑料(MP)污染的高效材料。本研究通过分析超过65项研究的结果来评估mof去除MP的性能,并详细关注了20篇关键论文。大约32%的研究调查了聚苯乙烯(PS) MPs,类似比例的研究调查了10至1000 mg/L的MPs浓度。值得注意的是,47%的研究报告接触时间超过200分钟显著提高了MP的去除,而36%的研究表明pH值在3到6之间时去除效率最佳。此外,由于表面相互作用增加,较小的MPs (<1 μm)具有更高的去除效率。在mof中,ZIF-67对微米级PS MPs的去除率为92.1%,而PSF/MIL-100(Fe)在重复使用6次后的去除率为98%。Cr-MOF对PS - MPs的吸附量为665 mg/g。吸附行为主要遵循准一级动力学和Freundlich等温线。机理分析表明,静电吸引、π-π相互作用和酸碱相互作用是MPs在mof上的主要吸附途径。本研究强调了mof去除微塑料的高效率和可重复使用性。未来的研究应侧重于扩大MOF的应用规模,优化合成方法以提高效率和降低成本,并解决大规模MOF部署的潜在环境影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Results in Chemistry
Results in Chemistry Chemistry-Chemistry (all)
CiteScore
2.70
自引率
8.70%
发文量
380
审稿时长
56 days
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