Magnetic core–shell S-Fe@MOF derivative hybrids to activate peroxymonosulfate for highly efficient degradation of tetrabromobisphenol A

四溴双酚A 化学 催化作用 双金属片 碳化 降级(电信) 浸出(土壤学) 纳米颗粒 金属有机骨架 电子顺磁共振 核化学 无机化学 材料科学 有机化学 纳米技术 吸附 土壤水分 阻燃剂 土壤科学 物理 电信 核磁共振 计算机科学 环境科学
作者
Minghui Xiang,Lu Zhen,Siyang Li,Hui Li,Chen Wang,Jin Zhang,Lide Jin,Chunyang Li
出处
期刊:Separation and Purification Technology [Elsevier]
卷期号:286: 120503-120503 被引量:24
标识
DOI:10.1016/j.seppur.2022.120503
摘要

In recent years, new heterogeneous catalysts derived from metal organic frameworks (MOFs) have been widely used in advanced oxidation processes (AOPs). In this work, zeolite imidazole framework-67 (ZIF-67) and sulfide nanozero-valent iron (S-Fe) were used as precursors to prepare S-Fe/Co bimetallic nanoparticles embedded in graphitized carbon (S-Fe/[email protected]) and used to activate peroxymonosulfate (PMS) to degrade tetrabromobisphenol A (TBBPA). Morphological and structural characterization indicated that S-Fe/[email protected] compared to pre-carbonization, the pore size of the material became larger, formed a graphite carbon skeleton with excellent electrical conductivity. In a 0.2 g/L S-Fe/[email protected] and 0.6 mM PMS system, 96.1% of TBBPA (20 mg/L) was degraded within 30 min, and the degradation yielded a total organic carbon (TOC) removal of 56.2% in 60 min. This excellent catalytic activity was attributed to the synergistic effect of graphitic carbon, sulfide nanozero-valent iron and metallic cobalt. Radical quenching experiments and electron paramagnetic resonance (EPR) technology indicated that reactive oxygen species (ROS) included HO•, SO4•−, O2•− and 1O2, among which O2•− plays a leading role in the degradation of TBBPA. Based on the LC-MS analysis of the degradation intermediates, the degradation pathway of TBBPA in the S-Fe/[email protected]/PMS system was proposed. In addition, S-Fe/[email protected] showed a low ion leaching rate, and the regenerated S-Fe/[email protected] still had high catalytic performance. This work will extend the development of MOFs encapsulate functional nanoparticle materials for environmental remediation.
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