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Enhanced Photocatalytic Performance and Mechanism of Au@CaTiO3 Composites with Au Nanoparticles Assembled on CaTiO3 Nanocuboids

机译:AU纳米粒子组装在CATIO3纳米骨膜上的Au @ catio3复合材料的增强的光催化性能和机理

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摘要

Using P25 as the titanium source and based on a hydrothermal route, we have synthesized CaTiO3 nanocuboids (NCs) with the width of 0.3–0.5 μm and length of 0.8–1.1 μm, and systematically investigated their growth process. Au nanoparticles (NPs) of 3–7 nm in size were assembled on the surface of CaTiO3 NCs via a photocatalytic reduction method to achieve excellent Au@CaTiO3 composite photocatalysts. Various techniques were used to characterize the as-prepared samples, including X-ray powder diffraction (XRD), scanning/transmission electron microscopy (SEM/TEM), diffuse reflectance spectroscopy (UV-vis DRS), Fourier transform infrared spectroscopy (FTIR), and X-ray photoelectron spectroscopy (XPS). Rhodamine B (RhB) in aqueous solution was chosen as the model pollutant to assess the photocatalytic performance of the samples separately under simulated-sunlight, ultraviolet (UV) and visible-light irradiation. Under irradiation of all kinds of light sources, the Au@CaTiO3 composites, particularly the 4.3%Au@CaTiO3 composite, exhibit greatly enhanced photocatalytic performance when compared with bare CaTiO3 NCs. The main roles of Au NPs in the enhanced photocatalytic mechanism of the Au@CaTiO3 composites manifest in the following aspects: (1) Au NPs act as excellent electron sinks to capture the photoexcited electrons in CaTiO3, thus leading to an efficient separation of photoexcited electron/hole pairs in CaTiO3; (2) the electromagnetic field caused by localized surface plasmon resonance (LSPR) of Au NPs could facilitate the generation and separation of electron/hole pairs in CaTiO3; and (3) the LSPR-induced electrons in Au NPs could take part in the photocatalytic reactions.
机译:使用P25作为钛源并基于水热途径,我们已经合成了CatiO3纳米吡吡吡吡吡吡吡吡(NC),宽度为0.3-0.5μm和长度为0.8-1.1μm,并系统地研究其生长过程。通过光催化还原方法在CatiO3 NCS的表面上组装3-7nm的Au纳米颗粒(NPS),以实现优异的Au @ catio3复合光催化剂。使用各种技术来表征作为制备的样品,包括X射线粉末衍射(XRD),扫描/透射电子显微镜(SEM / TEM),漫射反射光谱(UV-VIS DRS),傅里叶变换红外光谱(FTIR)和X射线光电子能谱(XPS)。选择水溶液中的罗丹明B(RHB)作为模型污染物,以在模拟 - 阳光下分别评估样品的光催化性能,紫外线(UV)和可见光辐射。在各种光源的照射下,与裸CATIO3 NC相比,Au @ catio3复合材料,特别是4.3%8.3%8.3%@catiO3复合材料,表现出极大地增强的光催化性能。 Au nps在Au @ catio3复合材料增强的光催化机制中的主要作用在以下几个方面清算:(1)Au nps作为优异的电子汇,以捕获Catio3中的光屏蔽电子,从而有效地分离光屏蔽电子catio3中的/孔对; (2)Au NPS的局部表面等离子体共振(LSPR)引起的电磁场可以促进CATIO3中电子/孔对的产生和分离; (3)Au nps中的LSPR诱导的电子可以参与光催化反应。

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