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首页> 外文期刊>Inorganic Chemistry: A Research Journal that Includes Bioinorganic, Catalytic, Organometallic, Solid-State, and Synthetic Chemistry and Reaction Dynamics >Thermal Evolution of ZnS Nanostructures: Effect of Oxidation Phenomena on Structural Features and Photocatalytical Performances
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Thermal Evolution of ZnS Nanostructures: Effect of Oxidation Phenomena on Structural Features and Photocatalytical Performances

机译:ZnS纳米结构的热量演化:氧化现象对结构特征和光催化性能的影响

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ZnS nanosystems are being extensively studied for their possible use in a wide range of technological applications. Recently, the gradual oxidation of ZnS to ZnO was exploited to tune their structural, electronic, and functional properties. However, the inherent complexity and size dependence of the ZnS oxidation phenomena resulted in a very fragmented description of the process. In this work, different sized nanosystems were obtained through two different low temperature wet chemistry routes, namely, hydrothermal and inverse miniemulsion approaches. These protocols were used to obtain ZnS samples consisting of 21 and 7 nm crystallites, respectively, to be used as reference material. The obtained samples were then calcinated at different temperatures, ranging from 400 to 800 degrees C toward the complete oxidation of ZnO, passing through the coexistence of the two phases (ZnS/ZnO). A thorough comparison of the effects of thermal handling on ZnS structural, chemical, and functional evolution was carried out by TEM, XRD, XAS, XPS, Raman, FT-IR, and UV-Vis. Finally, the photocatalytic activity in the H-2 evolution reaction was also compared for selected ZnS and ZnS/ZnO samples. A correlation between size and the oxidation process was observed, as the smaller nanosystems showed the formation of ZnO at lower temperature, or in a larger amount in the case of the ZnS and ZnO co-presence. A difference in the underlying mechanism of the reaction was also evidenced. Despite the ZnS/ZnO mixed samples being characterized by an increased light absorption in the visible range, their photocatalytic activity was found to be much lower.
机译:在广泛的技术应用中,广泛研究ZNS纳米系统。最近,利用ZnS对ZnO的逐渐氧化来调整其结构,电子和功能性。然而,ZnS氧化现象的固有复杂性和尺寸依赖性导致对该过程的非常碎片化的描述。在这项工作中,通过两种不同的低温湿化学途径,即水热和反型微乳液方法获得不同大小的纳米系统。这些方案用于获得由21和7nm微晶分别组成的ZnS样品,以用作参考材料。然后将所得样品在不同的温度下煅烧,从400至800℃朝向ZnO的完全氧化,通过两个相的共存(ZnS / ZnO)。通过TEM,XRD,XAS,XP,拉曼,FT-IR和UV-Vis进行热处理对ZnS结构,化学和功能演化的彻底比较ZNS结构,化学和功能演化的影响。最后,还将H-2进化反应中的光催化活性与所选ZnS和ZnS / ZnO样品进行比较。观察到尺寸和氧化过程之间的相关性,因为较小的纳米系统显示在较低温度下形成ZnO,或者在ZnS和ZnO共存的情况下以更大的量形成。还证明了反应的潜在机制的差异。尽管ZnS / ZnO混合样品的特征在于可见范围内的光吸收增加,但发现它们的光催化活性远低得多。

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