Superparamagnetic Iron Oxide Decorated Indium Hydroxide Nanocomposite: Synthesis, Characterization and Its Photocatalytic Activity
IF 1.3
Q3 ENGINEERING, CHEMICAL
C. Chong, T. Lee, J. Juan, M. Johan, C. Loke, K. Ng, J. C. Lai, T. Lim
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Abstract
A simple and scalable liquid-based method was developed to produce a nanocomposite photocatalyst which was comprised of Fe3O4 nanoparticles (4-5 nm) decorated indium hydroxide nanorods (mean width 33 nm and average aspect ratio 2-3). The nanocomposite was produced at 25 ℃ in water via a hydroxide-induced co-precipitation ensued by a cathodic reduction during which the non-magnetic Fe(OH)3 intermediate was reduced to magnetic Fe3O4 at 20 V within 1 h. The incorporation of Fe3O4 nanoparticles served to bestow magnetic recoverability to the photocatalyst and helped enhance visible light absorption simultaneously. Interestingly, the addition of Fe3+ led to the formation of In(OH)3 nanorods rather than the commonly observed nanocubes. In comparison to the In(OH)3 system having a band gap of 4.60 eV), the band gap of the Fe3O4/In(OH)3 nanocomposite produced was determined to be 2.85 eV using the Tauc’s plot method. The effective reduction in band gap is expected to allow better absorption of visible light which in turns should help boost its photocatalytic performance. The Fe3O4/In(OH)3 nanocomposite was structurally characterized using a combination of PXRD, FESEM, EDS, and TEM and its paramagnetic property was proven with a positive mass susceptibility measured to be 1.30´10−5 cm3.g−1. Under visible light, a photocatalytic degradation efficiency of 83% was recorded within 1 hr for the nanocomposite using methylene blue as a dye. The photocatalytically-active Fe3O4/In(OH)3 should have good potential in visible-light driven waste water degradation once further optimized. Copyright © 2021 by Authors, Published by BCREC Group. This is an open access article under the CC BY-SA License (https://creativecommons.org/licenses/by-sa/4.0).
超顺磁性氧化铁修饰氢氧化铟纳米复合材料的合成、表征及其光催化活性
以Fe3O4纳米颗粒(4 ~ 5 nm)装饰氢氧化铟纳米棒(平均宽33 nm,平均长径比2 ~ 3)为材料,建立了一种简单、可扩展的液体基制备纳米复合光催化剂的方法。在25℃的水中,通过氢氧化物诱导共沉淀法制备纳米复合材料,然后进行阴极还原,在1小时内,非磁性的Fe(OH)3中间体在20 V的电压下被还原为磁性的Fe3O4。Fe3O4纳米颗粒的掺入使光催化剂具有磁性可恢复性,同时有助于增强可见光吸收。有趣的是,Fe3+的加入导致形成In(OH)3纳米棒,而不是通常观察到的纳米立方体。与带隙为4.60 eV的In(OH)3相比,采用Tauc图法确定了Fe3O4/In(OH)3纳米复合材料的带隙为2.85 eV。有效减小带隙有望更好地吸收可见光,从而有助于提高其光催化性能。采用PXRD、FESEM、EDS和TEM对Fe3O4/In(OH)3纳米复合材料进行了结构表征,证实了其顺磁性,质量磁化率为1.30´10−5 cm3.g−1。在可见光下,以亚甲基蓝为染料的纳米复合材料在1小时内的光催化降解效率为83%。光催化活性Fe3O4/In(OH)3在可见光驱动的废水降解中具有良好的潜力。版权所有©2021作者,BCREC集团出版。这是一篇基于CC BY-SA许可(https://creativecommons.org/licenses/by-sa/4.0)的开放获取文章。
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期刊介绍:
Bulletin of Chemical Reaction Engineering & Catalysis, a reputable international journal, provides a forum for publishing the novel technologies related to the catalyst, catalysis, chemical reactor, kinetics, and chemical reaction engineering. Scientific articles dealing with the following topics in chemical reaction engineering, catalysis science and engineering, catalyst preparation method and characterization, novel innovation of chemical reactor, kinetic studies, etc. are particularly welcome. However, articles concerned on general chemical engineering process are not covered and out of scope of this journal