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(Y/Sm)-掺杂和共掺杂 CoFeO 用于非均相高级氧化工艺:结构、磁光和光催化研究。

(Y/Sm)-doped and co-doped CoFeO for heterogeneous advanced oxidation process: structural, magneto-optical, and photocatalytic investigations.

机构信息

Nanoscience and Nanotechnology Unit, E.N.S Rabat, Energy Research Centre, Mohammed V University, B.P. 5118, Takaddoum Rabat, Morocco.

Nanomaterials and Photovoltaic Cells Laboratory, Green Energy Park (GEP), UM6P/IRESEN, Benguerir, Morocco.

出版信息

Environ Sci Pollut Res Int. 2024 Oct;31(47):57623-57644. doi: 10.1007/s11356-024-34978-0. Epub 2024 Sep 17.

Abstract

The photocatalytic properties of CoFeO nanoparticles were activated by the doping and co-doping of a low level of Y and Sm cations. After optimizing the annealing temperature, 900 °C was found to be the optimal temperature for the successful incorporation of Y and Sm into the spinel structure. The purity of our samples annealed at 900 °C was confirmed using several characterization methods, including PXRD, SEM, XPS, VSM, FTIR, and Raman spectroscopy. Thus, we were able to increase the photocatalytic degradation of orange G dye from 9.9 to 64.63% for the Sm-doped sample, 76.42% for the Y-doped sample, and even 85.81% for the co-doped sample under 60 min of UV-visible light irradiation. The beneficial effect of samarium and yttrium doping and co-doping is attributed to several factors: the first factor is doped and co-doped rare earth impurities induce distortion in the lattice, the larger the ionic radii of dopant element, the highest is the photocatalytic activity; second factor, upon doping and co-doping of rare earth impurities in the structure of CoFeO leads to the creation of donor state level within the band gap, causing the Fermi energy to shift near the conduction band. Third factor, co-doping produced strong interactions, which accelerated photocarrier mobility and transport; lastly, longer electron-holes lifetime. We have provided a detailed study of the structural, vibrational, and optical properties to support our conclusions.

摘要

通过掺杂少量的钇(Y)和钐(Sm)阳离子,来激活 CoFeO 纳米粒子的光催化性能。在优化退火温度后,发现 900°C 是成功将 Y 和 Sm 掺入尖晶石结构的最佳温度。通过多种表征方法,包括 PXRD、SEM、XPS、VSM、FTIR 和拉曼光谱,证实了我们在 900°C 下退火的样品的纯度。因此,我们能够将橙 G 染料的光催化降解率从未掺杂的 9.9%提高到 Sm 掺杂样品的 64.63%、Y 掺杂样品的 76.42%,甚至是共掺杂样品的 85.81%,在 60 分钟的紫外-可见光照射下。Sm 和 Y 掺杂和共掺杂的有益效果归因于几个因素:第一个因素是掺杂和共掺杂的稀土杂质会导致晶格畸变,掺杂元素的离子半径越大,光催化活性越高;第二个因素是,在 CoFeO 的结构中掺杂和共掺杂稀土杂质会导致带隙内产生施主能级,使费米能级靠近导带。第三个因素是,共掺杂产生了强烈的相互作用,加速了光生载流子的迁移和输运;最后是,更长的电子-空穴寿命。我们对结构、振动和光学性质进行了详细的研究,以支持我们的结论。

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