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Facet-dependent photocatalytic and antibacterial properties of a-Ag2WO4 crystals: combining experimental data and theoretical insights

机译:a-ag2WO4晶体的小面相关光催化和抗菌性能:结合实验数据和理论见解

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摘要

In this paper, we have combined the various experimental results and first-principles calculations with a new and interesting discussion to explain the photocatalytic and antibacterial activities of α-Ag2WO4 crystals, which were obtained using the microwave-hydrothermal (MH) method with anionic surfactants. The advantages of the insights gained through the present work are two-fold. First, the mechanism and origin of the photocatalytic and antibacterial activities can be rationalized. Second, this facile and controllable synthetic method is expected to encourage the synthesis of complex metal oxides with specific active facets, and these insights can contribute to the rational design of new materials for multifunctional applications. X-ray diffraction and Rietveld refinement analysis confirmed that all the crystals have an orthorhombic structure without deleterious phases. Ultraviolet–visible diffuse reflectance spectroscopy indicated the presence of intermediary energy levels and a variation in the optical band gap values (3.09–3.14 eV) with the crystal growth process. The geometry, electronic properties of the bulk, and surface energies of these crystals were evaluated using first-principles quantum mechanical calculations based on the density functional theory. The crystal shapes was experimentally and theoretically modeled based on Rietveld refinement data, emission scanning electron microscopy images, and Wulff construction. To obtain a wide variety of crystal shapes, the morphologies were gradually varied by tuning the surface chemistry, i.e., the relative stability of the faceted crystals. The growth mechanisms of different α-Ag2WO4 crystals and their facet-dependent photocatalytic and antibacterial performances were explored in details. The combination of experimental and theoretical data revealed the presence of (110) and (011) planes with high surface energies together with the disappearance of faces related to the (010)/(0[1 with combining macron]0) planes in α-Ag2WO4 crystals are key factors that can rationalize both the photocatalytic and antibacterial activities. The different activities may be attributed to the different number of unsaturated superficial Ag and W atoms capable of forming the main active adsorption sites. Finally, we discuss how knowledge of surface-specific properties can be utilized to design a number of crystal morphologies that may offer improved performance in various applications.
机译:在本文中,我们将各种实验结果和第一性原理计算相结合,进行了新的有趣的讨论,以解释α-Ag2WO4晶体的光催化和抗菌活性,这些晶体是通过微波水热法(MH)与阴离子表面活性剂获得的。通过当前工作获得的见解的优势是双重的。首先,可以使光催化和抗菌活性的机理和来源合理化。其次,这种简便且可控的合成方法有望促进具有特定活性面的复杂金属氧化物的合成,这些见解可有助于合理设计用于多功能应用的新材料。 X射线衍射和Rietveld精炼分析证实,所有晶体均具有正交结构,无有害相。紫外可见漫反射光谱法表明存在中间能级,并且随着晶体生长过程,光学带隙值(3.09–3.14 eV)发生变化。使用基于密度泛函理论的第一原理量子力学计算,评估了这些晶体的几何形状,电子性质和表面能。根据Rietveld精炼数据,发射扫描电子显微镜图像和Wulff结构,对晶体形状进行了实验和理论建模。为了获得各种各样的晶体形状,通过调节表面化学即多面晶体的相对稳定性来逐渐改变形态。详细探讨了不同α-Ag2WO4晶体的生长机理及其与表面有关的光催化和抗菌性能。实验和理论数据的结合揭示了具有高表面能的(110)和(011)平面的存在,以及与(010)/(0 [1并结合了macron] 0)平面相关的面的消失。 Ag2WO4晶体是可以合理化光催化和抗菌活性的关键因素。不同的活性可以归因于能够形成主要的活性吸附位点的不饱和表面Ag和W原子的数量不同。最后,我们讨论如何利用表面特定属性的知识来设计许多晶体形态,以在各种应用中提供更高的性能。

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