Effect of Mn2+ substitution on catalytic properties of Fe3-xMnxO4 nanoparticles synthesized via co-precipitation method

IF 0.9 Q4 MATERIALS SCIENCE, MULTIDISCIPLINARY
N. Danyliuk, I. Lapchuk, V. Kotsyubynsky, V. Boychuk, Viktor Husak
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Abstract

Mn-substituted magnetite samples Fe3-xMnxO4 (x = 0.0; 0.02; 0.05; 0.1; 0.15; 0.2; 0.25) were synthesized using the co-precipitation method. X-ray diffraction patterns confirmed the formation of pure, well-crystallized manganese ferrite with a cubic spinel structure. The crystallites size increases sharply for the minimum degrees of substitution, with a subsequent tendency to decrease with the growth of manganese ions content. The catalytic properties of Fe3-xMnxO4 were investigated for the degradation of oxytetracycline (ОТС) and inactivate E. coli. There is a correlation between particle size and catalytic activity. The Fe2.95Mn0.05O4 sample exhibited the highest catalytic activity in the destruction of OTC. The effect of electromagnetic heating (EMH) on the catalytic properties of iron oxides were investigated. The Fe2.9Mn0.1O4 sample with electromagnetic heating achieved 100 % efficiency in decomposing 5 mg/L of OTC. Fe3-xMnxO4 samples reduce the number of Gram-negative bacteria E. coli at concentrations of 104 and 106 CFU/mL. Electromagnetic heating experiments demonstrated high performance, achieving inactivation of 6 logs of E. coli in the presence of Fe2.98Mn0.02O4 and Fe2.95Mn0.05O4 catalysts within 135 minutes. Studies on ecotoxicity have shown that Daphnia magna is a sensitive bioindicator of residual H2O2 concentration. An increase in the Mn2+ content in the synthesized catalysts resulted in a decrease in the toxicity of purified water. The study suggests that Mn-substituted magnetite catalysts are effective materials for catalytic decomposition of OTC and inactivation of E. coli bacteria.
Mn2+ 取代对共沉淀法合成的 Fe3-xMnxO4 纳米粒子催化性能的影响
采用共沉淀法合成了锰取代的磁铁矿样品 Fe3-xMnxO4 (x = 0.0; 0.02; 0.05; 0.1; 0.15; 0.2; 0.25)。X 射线衍射图样证实形成了纯净、结晶良好、具有立方尖晶石结构的锰铁氧体。随着锰离子含量的增加,晶体尺寸随着最小取代度的增加而急剧增大,随后呈减小趋势。研究了 Fe3-xMnxO4 在降解土霉素(ОТС)和灭活大肠杆菌方面的催化特性。颗粒大小与催化活性之间存在相关性。Fe2.95Mn0.05O4 样品在破坏 OTC 方面表现出最高的催化活性。研究了电磁加热(EMH)对铁氧化物催化特性的影响。电磁加热的 Fe2.9Mn0.1O4 样品分解 5 mg/L 的 OTC 的效率达到了 100%。Fe3-xMnxO4 样品可减少浓度为 104 和 106 CFU/mL 的革兰氏阴性菌大肠杆菌的数量。电磁加热实验证明了这种催化剂的高性能,在 135 分钟内,Fe2.98Mn0.02O4 和 Fe2.95Mn0.05O4 催化剂可灭活 6 个对数的大肠杆菌。生态毒性研究表明,大型蚤是残留 H2O2 浓度的敏感生物指标。增加合成催化剂中的 Mn2+ 含量可降低纯净水的毒性。研究表明,锰取代的磁铁矿催化剂是催化分解 OTC 和灭活大肠杆菌的有效材料。
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来源期刊
CiteScore
1.70
自引率
14.30%
发文量
83
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