Colegio de Ciencias e Ingenierías, Universidad San Francisco de Quito, Diego de Robles y Vía Interoceánica, Quito 170901, Ecuador.
Departamento de Física, Facultad de Ciencias, Escuela Politécnica Nacional, Ladrón de Guevara E11-253, Quito 170525, Ecuador.
Molecules. 2023 Jun 29;28(13):5079. doi: 10.3390/molecules28135079.
In recent years, semiconductor hollow spheres have gained much attention due to their unique combination of morphological, chemical, and physico-chemical properties. In this work, we report for the first time the synthesis of BiFeO3 hollow spheres by a facile hydrothermal treatment method. The mechanism of formation of pure phase BiFeO3 hollow spheres is investigated systematically by variation of synthetic parameters such as temperature and time, ratio and amount of precursors, pressure, and calcination procedures. The samples were characterized by X-ray powder diffraction, scanning electron microscopy, energy dispersive X-ray spectroscopy, and UV-vis diffuse reflectance spectroscopy. We observe that the purity and morphology of the synthesized materials are very sensitive to synthesis parameters. In general, the chemically and morphologically very robust hollow spheres have diameters in the range of 200 nm to 2 μm and a wall thickness of 50-200 nm. The synthesized BiFeO3 hollow spheres were applied as catalysts in the photodegradation of the model pollutant Rhodamine B under visible-light irradiation. Notably, the photocatalyst demonstrated exceptionally high removal efficiencies leading to complete degradation of the dye in less than 150 min at neutral pH. The superior efficiencies of the synthesized material are attributed to the unique features of hollow spheres. The active species in the photocatalytic process have been identified by trapping experiments.
近年来,由于半导体中空球具有独特的形态、化学和物理化学性质,因此受到了广泛关注。在这项工作中,我们首次通过简便的水热处理方法合成了 BiFeO3 中空球。通过改变合成参数,如温度和时间、前体的比例和用量、压力和煅烧程序,系统地研究了纯相 BiFeO3 中空球形成的机制。通过 X 射线粉末衍射、扫描电子显微镜、能谱和紫外-可见漫反射光谱对样品进行了表征。我们观察到,合成材料的纯度和形态对合成参数非常敏感。一般来说,化学和形态非常稳定的中空球的直径在 200nm 到 2μm 之间,壁厚为 50-200nm。所合成的 BiFeO3 中空球在可见光照射下作为催化剂用于模型污染物 Rhodamine B 的光降解。值得注意的是,在中性 pH 条件下,光催化剂在不到 150 分钟的时间内就表现出极高的去除效率,使染料完全降解。合成材料的优异效率归因于中空球的独特特性。通过捕获实验确定了光催化过程中的活性物质。