da Silva Monickarla Teixeira Pegado, Barbosa Felipe Fernandes, Morales Torre Marco Antonio, Villarroel-Rocha Jhonny, Sapag Karim, Pergher Sibele B C, Braga Tiago Pinheiro
Laboratório de Peneiras Moleculares, Instituto de Química, Universidade Federal do Rio Grande do Norte, Natal 59078-970, RN, Brazil.
Departamento de Física, Universidade Federal do Rio Grande do Norte, Natal 59078-970, RN, Brazil.
Molecules. 2020 Feb 24;25(4):1016. doi: 10.3390/molecules25041016.
The mixture containing alloy and oxide with iron-based phases has shown interesting properties compared to the isolated species and the synergy between the phases has shown positive effect on dye adsorption. This paper describes the synthesis of FeSiO-FeCo-based nanocomposite dispersed in Santa Barbara Amorphous (SBA)-15 and its application in dye adsorption followed by magnetic separation. Thus, it was studied the variation of reduction temperature and amount of hydrogen used in synthesis and the effect of these parameters on the physicochemical properties of the iron and cobalt based oxide/alloy mixture, as well as the methylene blue adsorption capacity. The XRD and Mössbauer results, along with the temperature-programmed reduction (TPR) profiles, confirmed the formation of FeSiO-FeCo-based nanocomposites. Low-angle XRD, N isotherms, and TEM images show the formation of the SBA-15 based mesoporous support with a high surface area (640 m/g). Adsorption tests confirmed that the material reduced at 700 °C using 2% of H presented the highest adsorption capacity (49 mg/g). The nanocomposites can be easily separated from the dispersion by applying an external magnetic field. The interaction between the dye and the nanocomposite occurs mainly by π-π interactions and the mixture of the FeSiO and FeCo leads to a synergistic effect, which favor the adsorption.
与分离出的物种相比,含有合金和铁基相氧化物的混合物表现出有趣的性质,且各相之间的协同作用对染料吸附产生了积极影响。本文描述了分散在圣巴巴拉无定形(SBA)-15中的FeSiO-FeCo基纳米复合材料的合成及其在染料吸附和磁分离中的应用。因此,研究了合成过程中还原温度和氢气用量的变化,以及这些参数对铁钴基氧化物/合金混合物物理化学性质的影响,以及对亚甲基蓝吸附容量的影响。X射线衍射(XRD)和穆斯堡尔谱结果,以及程序升温还原(TPR)曲线,证实了FeSiO-FeCo基纳米复合材料的形成。小角XRD、N等温线和透射电子显微镜(TEM)图像表明形成了具有高比表面积(640 m²/g)的基于SBA-15的介孔载体。吸附试验证实,在700℃下用2%氢气还原的材料具有最高的吸附容量(49 mg/g)。通过施加外部磁场,纳米复合材料可轻松从分散液中分离出来。染料与纳米复合材料之间的相互作用主要通过π-π相互作用发生,FeSiO和FeCo的混合物产生协同效应,有利于吸附。