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Cyclic Nanostructures of Tungsten Oxide (WO3)(n) (n=2-6) as NOx Gas Sensor: A Theoretical Study

机译:氧化钨(WO3)(n)(n = 2-6)作为NOx气体传感器的循环纳米结构:理论研究

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摘要

Today's WO3-based gas sensors have received a lot of attention, because of important role as a sensitive layer for detection of the small quantities of NOx In this research, a theoretical study has been done on the sensing properties of different cyclic nanoclusters of (WO3)(n) (n = 2-6) for NOx (n = 1, 2) gases. Based on the calculated adsorption energies by B3LYP and X3LYP functionals, from the different orientations of NO.. molecule on the tungsten oxide clusters, O-N center dot center dot center dot W was preferred. Different sizes of the mentioned clusters have been analyzed and W2O6 cluster was chosen as the best candidate for NOx detection from the energy viewpoint. Using the concepts of the chemical hardness and electronic charge transfer, some correlations between the energy of adsorption and interaction energy have been established. These analyses confirmed that the adsorption energy will be boosted with charge transfer enhancement. However, the chemical hardness relationship is reversed. Finally, obtained results from the natural bond orbital and electronic density of states analysis confirmed the electronic charge transfer from the adsorbates to WO3 clusters and Fermi level shifting after adsorption, respectively. The last parameter confirms that the cyclic clusters of tungsten oxide can be used as NOx gas sensors.
机译:由于基于WO3的气体传感器作为检测少量NOx的敏感层的重要作用,因此今天的WO3气体传感器受到了广泛关注。在这项研究中,已经对(WO3)的不同环状纳米团簇的传感特性进行了理论研究。 )(n)(n = 2-6),用于NOx(n = 1,2)气体。基于通过B3LYP和X3LYP官能团计算的吸附能,从NO ..分子在氧化钨簇上的不同取向,优选O-N中心点中心点中心点W。已分析了上述簇的不同大小,从能量的角度出发,选择了W2O6簇作为NOx检测的最佳候选者。利用化学硬度和电子电荷转移的概念,已经建立了吸附能和相互作用能之间的一些相关性。这些分析证实吸附能将随着电荷转移增强而增强。但是,化学硬度关系相反。最后,从自然键轨道和状态的电子密度分析获得的结果分别证实了从吸附物到WO3团簇的电荷转移以及吸附后费米能级转移。最后一个参数确认了氧化钨的环状簇可以用作NOx气体传感器。

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