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Growth Process and CQDs-modified Bi4Ti3O12 Square Plates with Enhanced Photocatalytic Performance

机译:生长过程和CQDs修饰的Bi4Ti3O12方形板具有增强的光催化性能

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摘要

Bi4Ti3O12 square plates were synthesized via a hydrothermal route, and their growth process was systematically investigated. Carbon quantum dots (CQDs) were prepared using glucose as the carbon source, which were then assembled on the surface of Bi4Ti3O12 square plates via a hydrothermal route with the aim of enhancing the photocatalytic performance. XRD (X-ray powder diffraction), SEM (scanning electron microscopy), TEM (transmission electron microscopy), UV-vis DRS (diffuse reflectance spectroscopy), XPS (X-ray photoelectron spectroscopy), FTIR (Fourier transform infrared spectroscopy), PL (photoluminescence) spectroscopy, EIS (electrochemical impedance spectroscopy) and photocurrent spectroscopy were used to systematically characterize the as-prepared samples. It is demonstrated that the decoration of CQDs on Bi4Ti3O12 plates leads to an increased visible light absorption, slightly increased bandgap, increased photocurrent density, decreased charge-transfer resistance, and decreased PL intensity. Simulated sunlight and visible light were separately used as a light source to evaluate the photocatalytic activity of the samples toward the degradation of RhB in aqueous solution. Under both simulated sunlight and visible light irradiation, CQDs@Bi4Ti3O12 composites with an appropriate amount of CQDs exhibit obviously enhanced photocatalytic performance. However, the decoration of excessive CQDs gives rise to a decrease in the photocatalytic activity. The enhanced photocatalytic activity of CQDs-modified Bi4Ti3O12 can be attributed to the following reasons: (1) The electron transfer between Bi4Ti3O12 and CQDs promotes an efficient separation of photogenerated electron/hole pairs in Bi4Ti3O12; (2) the up-conversion photoluminescence emitted from CQDs could induce the generation of additional electron/hole pairs in Bi4Ti3O12; and (3) the photoexcited electrons in CQDs could participate in the photocatalytic reactions.
机译:通过水热法合成了Bi4Ti3O12方板,并对其生长过程进行了系统的研究。以葡萄糖为碳源制备了碳量子点(CQDs),然后通过水热途径将其组装在Bi4Ti3O12方形板的表面上,以增强光催化性能。 XRD(X射线粉末衍射),SEM(扫描电子显微镜),TEM(透射电子显微镜),UV-vis DRS(漫反射光谱),XPS(X射线光电子光谱),FTIR(傅里叶变换红外光谱), PL(光致发光)光谱,EIS(电化学阻抗光谱)和光电流光谱用于系统地表征所制备的样品。结果表明,在Bi4Ti3O12板上修饰CQD会导致可见光吸收增加,带隙稍微增加,光电流密度增加,电荷转移电阻降低以及PL强度降低。模拟的阳光和可见光分别用作光源,以评估样品对水溶液中RhB降解的光催化活性。在模拟日光和可见光照射下,适量CQDs的CQDs @ Bi4Ti3O12复合材料表现出明显的光催化性能。但是,装饰过量的CQD导致光催化活性降低。 CQDs修饰的Bi4Ti3O12的增强的光催化活性可以归因于以下原因:(1)Bi4Ti 3 O 12 与CQDs之间的电子转移促进了光生物质的有效分离。 Bi 4 Ti 3 O 12 中的电子/空穴对; (2)CQD发出的上转换光致发光可诱导Bi 4 Ti 3 O 12 中额外的电子/空穴对的产生; (3)CQD中的光激发电子可以参与光催化反应。

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