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用于修复水中污染物的可成型、可重构和多功能MIL-53(Fe)@纤维素复合材料的简单超声集成

Simple ultrasonic integration of shapeable, rebuildable, and multifunctional MIL-53(Fe)@cellulose composite for remediation of aqueous contaminants.

作者信息

Yuan Zihui, Chen Yuanlong, Qiu Chongpeng, Li Mei-Chun, Qi Jinqiu, de Hoop Cornelis F, Zhao Anjiu, Lai Jiaming, Zhang Xuefeng, Huang Xingyan

机构信息

College of Forestry, Sichuan Agricultural University, Chengdu, Sichuan 611130, China.

School of Petroleum Engineering, China University of Petroleum (East China), Qingdao, Shandong 266580, China.

出版信息

Int J Biol Macromol. 2023 Sep 30;249:126118. doi: 10.1016/j.ijbiomac.2023.126118. Epub 2023 Aug 3.

Abstract

Metal-organic frames (MOFs) have been recognized as one of the best candidates in the remediation of aqueous contaminants, while the fragile powder shape restricts the practical implementation. In this work, a shapeable, rebuildable, and multifunctional MOF composite (MIL-53@CF) was prepared from MIL-53 (Fe) and cellulose fiber (CF) using a simple ultrasonic method for adsorption and photocatalytic degradation of organic pollutants in wastewater. The results showed MIL-53(Fe) crystals were uniformly growth on CF surfaces and bonded with surface nanofibrils of CF through physical crosslinking and hydrogen bonding. Because of the high bonding strength, the MIL-53@CF composite exhibited an excellent compressive strength (3.53 MPa). More importantly, the MIL-53@CF composite was rebuildable through mechanical destruction followed by re-ultrasonication, suggesting the excellent reusability of MIL-53@CF for water remediation. The MIL-53@CF composite also had high adsorption capacities for methyl orange (884.6 mg·g), methylene blue (198.3 mg·g), and tetracycline (106.4 mg·g). MIL-53@CF composite could degrade TC through photocatalysis. The photocatalytic degradation mechanism was attributed to the Fe(II)/Fe(III) transform cycle reaction of MIL-53 crystal located on MIL-53@CF. Furthermore, the mechanical property and remoldability of MIL-53@CF composite increased its practicability. Comprehensively, MIL-53@CF composite provided a possible strategy to practically apply MOF in the remediation of aqueous contaminants.

摘要

金属有机框架材料(MOFs)被认为是去除水中污染物的最佳候选材料之一,但其易碎的粉末形态限制了实际应用。在这项工作中,采用简单的超声方法,由MIL-53(Fe)和纤维素纤维(CF)制备了一种可成型、可重塑且多功能的MOF复合材料(MIL-53@CF),用于吸附和光催化降解废水中的有机污染物。结果表明,MIL-53(Fe)晶体在CF表面均匀生长,并通过物理交联和氢键与CF的表面纳米纤维结合。由于结合强度高,MIL-53@CF复合材料表现出优异的抗压强度(3.53MPa)。更重要的是,MIL-53@CF复合材料通过机械破坏后再进行超声处理可重塑,这表明MIL-53@CF在水修复方面具有出色的可重复使用性。MIL-53@CF复合材料对甲基橙(884.6mg·g)、亚甲基蓝(198.3mg·g)和四环素(106.4mg·g)也具有高吸附容量。MIL-53@CF复合材料可通过光催化降解四环素。光催化降解机制归因于位于MIL-53@CF上的MIL-53晶体的Fe(II)/Fe(III)转化循环反应。此外,MIL-53@CF复合材料的机械性能和可重塑性提高了其实用性。综合来看,MIL-53@CF复合材料为MOF在水污染物修复中的实际应用提供了一种可能的策略。

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