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MOF材料在水環境污染物去除方面的應用現狀及發展趨勢(II)

Review on the application of MOF materials for removal of pollutants from the water (II)

  • 摘要: 對近年來MOF材料去除水環境中重金屬、有機物的相關研究進行了總結與評述。本篇是該主題的第2篇,主要對MOF材料去除水中有機污染物的相關研究進行總結和論述。研究表明,MOF材料含有大量開放性金屬位點、路易斯酸堿位以及官能團,因而對染料、抗生素、農藥、持久性有機污染物等均具有較高的吸附性能。氫鍵、π?π作用、疏水作用和靜電引力是其吸附有機污染物的主要機制,部分MOF材料中較大的孔道結構也有利于大分子有機污染物的吸附;另外,部分MOF材料還具有優異的催化性能,能夠作為類Fenton催化,光催化以及過硫酸鹽活化的催化劑實現對有機污染物的催化降解,其中光催化反應中污染物的降解主要源于·O2?、·OH和h+的貢獻;而在過硫酸鹽體系中,·O2?、·OH、SO4·?1O2是導致有機污染物分解的主要活性氧化物種。基于對先前研究的回顧,相信未來的研究領域包括但不限于以下方面:(1)進一步提高MOF在去除有機污染物方面的性能,并提高其可回收性;(2)開展新型MOF催化材料的制備及催化反應機理的研究;(3)研究MOF缺陷結構的調控,以開發具有更高吸附和催化性能的新型MOF材料;(4)研究新的框架材料,例如共價有機骨架(COFs)材料,并將其應用于污染物凈化領域。

     

    Abstract: Metal–organic frameworks (MOFs) are a class of organic–inorganic hybrid functional materials generally formed via self-assembly of metal ions or metal clusters and rigid organic ligands with nitrogen and oxygen atoms. The wide range of potential applications of MOF materials includes gas storage and separation, catalysis, sensing, and drug transportation and release, which can be attributed to their versatile designable structures, modifiable chemical functionality, low-density framework, large specific surface area, and functional and permanent pore space. MOF and its composite materials have also been employed to remove various contaminants from the environment in the recent decade. To present the remarkable research progress and outcomes of MOF materials in the removal of pollutants from the water environment, the related studies on the removal of heavy metals and organic pollutants from the water environment were reviewed in this paper. This was the second paper on the topic that mainly introduced the research progress of MOF materials in the removal of organic pollutants in aqueous solution. The previous studies have shown that MOF materials have open metal sites and Lewis acid–base sites; thus, they exhibit a high adsorption performance for dyes, antibiotics, pesticides, and persistent organic pollutants. Hydrogen bonding, π–π interaction, hydrophobic interaction, and electrostatic attraction are the main mechanisms for their adsorption of organic pollutants. In addition, the large pore structure of some MOF materials is conducive to the adsorption of macromolecular organic pollutants. Moreover, some MOF materials that can be used as catalysts for Fenton-like reactions, photocatalytic reactions, and persulfate activation to degrade organic pollutants, exhibit excellent catalytic performance. The degradation of pollutants in photocatalytic reactions can be mainly attributed to the contributions of ·O2?, ·OH, and h+. In the persulfate system, ·O2?, ·OH, SO4·?, and 1O2 are the main reactive oxide species that cause the decomposition of organic pollutants. Based on the review of previous studies, it is believed that future research will include but will not be limited to the following: (1) the improvement of the performance of MOF in removing organic pollutants and its recyclability; (2) the preparation of new MOF catalytic materials and investigation of catalytic reaction mechanisms; (3) the regulation of the defect structure of MOF to develop new MOF materials with high adsorption and catalytic efficiency; and (4) the analysis of new framework materials, e.g., covalent organic framework materials, and their applications in the field of pollutant purification.

     

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