无机盐工业
主管:中海油天津化工研究设计院有限公司
主办:中海油天津化工研究设计院有限公司
   中海油炼油化工科学研究院(北京)有限公司
   中国化工学会无机酸碱盐专业委员会
ISSN 1006-4990 CN 12-1069/TQ
催化材料

FeMn-MOF/CN异质结光芬顿催化剂制备及性能研究

  • 李向阳 ,
  • 刘紫威 ,
  • 李克艳 ,
  • 郭新闻
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  • 大连理工大学化工学院精细化工国家重点实验室,辽宁 大连 116024
李向阳(1996— ),男,硕士研究生,研究方向为氮化碳材料的制备及光催化性能研究;E-mail:m18892033176@163.com

收稿日期: 2022-03-28

  网络出版日期: 2022-12-19

基金资助

兴辽英才计划(XLYC2008032)

Study on preparation and performance of FeMn-MOF/CN heterojunction photo-Fenton catalyst

  • Xiangyang LI ,
  • Ziwei LIU ,
  • Keyan LI ,
  • Xinwen GUO
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  • State Key Laboratory of Fine Chemicals,School of Chemical Engineering,Dalian University of Technology,Dalian 116024,China

Received date: 2022-03-28

  Online published: 2022-12-19

摘要

通过一种简便的原位负载策略制备了铁锰双金属有机骨架/氮化碳异质结光芬顿催化剂FeMn-MOF/CN,并利用X射线衍射(XRD)、红外光谱(FT-IR)、扫描电镜(SEM)、光致发光(PL)光谱等测试手段对催化剂的组成、结构及光电化学性质进行了表征。以降解高浓度左氧氟沙星(LEV,100 mg/L)为模型反应评价了催化剂的光芬顿反应性能,并提出了可能的光芬顿反应机理。由于光催化和芬顿反应之间的协同作用,5%FeMn-MOF/CN(FeMn-MOF与CN的质量比为5%)异质结表现出优异的光芬顿反应性能,在40 min内对LEV的移除率达到98.8%。基于原位合成的策略,FeMn-MOF和CN之间形成了紧密的异质结界面,不但极大地提高了光生载流子的分离和传递效率,而且显著地促进了Fe(Ⅲ)/Fe(Ⅱ)和Mn(Ⅲ)/Mn(Ⅱ)的循环。该工作为高效光芬顿催化材料的设计和制备提供了新思路。

本文引用格式

李向阳 , 刘紫威 , 李克艳 , 郭新闻 . FeMn-MOF/CN异质结光芬顿催化剂制备及性能研究[J]. 无机盐工业, 2022 , 54(12) : 126 -132 . DOI: 10.19964/j.issn.1006-4990.2022-0146

Abstract

The bimetal Fe,Mn-organic framework/carbon nitride heterojunction photo-Fenton catalysts(FeMn-MOF/CN) were prepared by a facile in-situ loading strategy,and the composition,structure and optoelectronic properties of the catalysts were characterized by X-ray diffraction(XRD),infrared spectroscopy(FT-IR),scanning electron microscopy(SEM),photoluminescence(PL) spectroscopy and etc.The photo-Fenton performance of the catalysts was evaluated by using the degradation of high concentration levofloxacin(LEV,100 mg/L) as model reaction,and the possible photo-Fenton reaction mechanism was proposed.Due to the synergistic effect between photocatalysis and Fenton reactions,5%FeMn-MOF/CN(mass ratio of FeMn-MoF/CN was 5%) exhi-bited excellent photo-Fenton performance,with the LEV removal efficiency of 98.8% within 40 min.An intimate heterojunction interface was formed between FeMn-MOF and CN via the in-situ loading strategy,which not only significantly improved the separation and transfer efficiency of photogenerated carriers,but also promoted the cycling of the Fe(Ⅲ)/Fe(Ⅱ)and Mn(Ⅲ)/Mn(Ⅱ).This study provided a new idea for the design and preparation of efficient photo-Fenton catalytic materials.

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