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首页> 外文期刊>Physica status solidi >Enhanced Catalytic and Photocatalytic Degradation of Organic Pollutant Rhodamine-B by LaMnO_3 Nanoparticles Synthesized by Non-Aqueous Sol-Gel Route
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Enhanced Catalytic and Photocatalytic Degradation of Organic Pollutant Rhodamine-B by LaMnO_3 Nanoparticles Synthesized by Non-Aqueous Sol-Gel Route

机译:通过溶胶 - 凝胶途径合成的LAMNO_3纳米颗粒增强了有机污染物罗丹明-B的催化和光催化降解

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摘要

The water crisis is one of the major problem of the 21st century. This has led to the development of various techniques for water purification such as wastewater treatment. In this technique, coloring dyes are one of the most challenging materials to treat. RhodamineB (RhB) is one of the significant coloring agent and is very difficult to treat using conventional techniques. Here, the enhanced catalytic and photocatalytic degradation of RhB by LaMnO3 nanoparticles is reported. The solgel route is used for the synthesis of LaMnO3 nanoparticles, and structural, magnetic, optical and zeta potential studies are performed. Xray diffraction analysis confirms the rhombohedral perovskite structure with R3c space group. The magnetic measurement at 5K shows that saturation magnetization value increases with an increase in particle size. UVvis absorption study of LaMnO3 nanoparticles confirms the optical band gap decreases with increasing size. Zeta potential study of LaMnO3 nanoparticles shows a negative charge on the surface. Degradation of organic pollutant RhB by nanoparticles of LaMnO3 is performed under dark, followed by visible light irradiation. Under the dark, 9092% of the RhB is degraded. Subsequently, upon visible light irradiation, it increased above 99%, confirming enhanced catalytic and photocatalytic activity of LaMnO3 nanoparticles over RhB.
机译:水危机是21世纪的主要问题之一。这导致了各种技术的净水技术,例如废水处理。在这种技术中,着色染料是治疗最具挑战性的材料之一。 RhodamineB(RHB)是显着着色剂之一,并且非常难以使用常规技术治疗。这里,报道了兰诺3纳米颗粒的增强的催化和光催化降解rHB。脱光途径用于合成兰诺3纳米颗粒,并且进行结构,磁性,光学和Zeta潜在研究。 X射线衍射分析证实了具有R3C空间组的菱形HEVSKITE结构。 5K处的磁测量表明饱和磁化强度值随粒径的增加而增加。兰诺3纳米颗粒的UVVIS吸收研究证实光带间隙随着尺寸的增加而降低。 Zeta ampO3纳米颗粒的潜在研究显示了表面上的负电荷。通过南马诺3的纳米颗粒降解有机污染物RHB在黑暗中进行,然后是可见光照射。在黑暗中,9092%的rhB降级。随后,在可见光照射时,它增加99%,确认兰诺3纳米颗粒上的增强催化和光催化活性在RHB上。

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