首页> 外文期刊>Journal of the Ceramic Society of Japan >Simulation of crystal and electronic structures of octahedral molybdenum cluster complex compound Cs2[Mo6Cl14] using various DFT functionals
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Simulation of crystal and electronic structures of octahedral molybdenum cluster complex compound Cs2[Mo6Cl14] using various DFT functionals

机译:使用各种DFT功能模拟八面体钼簇复合化合物Cs2 [Mo6Cl14]的晶体和电子结构

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The electronic and structural characteristics of the octahedral molybdenum cluster-based ternary compound, Cs2[Mo6Cl14], were investigated based on density functional theory (DFT) and subsequent comparisons with experimentally observed results. The geometry optimization and band structure calculations of Cs2[Mo6Cl14] were performed using three standard functionals: local density approximation, Perdew-Burke-Ernzerhof (PBE) as a generalized gradient approximation, and PBE revised for solid compounds (PBEsol). The validity of the calculated results was experimentally examined via X-ray powder diffraction, ultraviolet–visible (UV–vis) diffuse reflection, and X-ray photoemission spectra (XPS) measurements. PBEsol was found to show the best performance in terms of reproducing the experimentally refined lattice structure of the compound. The calculated band gap energy ( E g) was consistent with the value evaluated from the UV–vis measurement. Furthermore, the XPS valence spectrum of the compound was well reproduced by the calculated projected density of state weighted with the photoionization probabilities of Al K α. Although the spectral shapes simulated using the three functionals were similar, PBEsol reproduced the energy levels of the electronic states of both [Mo6Cl14]2? and Cs+ ion with greater consistency. Therefore, it was concluded that PBEsol is the most appropriate functional for DFT calculations of the metal cluster-based lattice system.
机译:基于密度研究了八面体钼团簇三元化合物Cs 2 [Mo 6 Cl 14 ]的电子和结构特征功能理论(DFT)以及随后与实验观察结果的比较。 Cs 2 [Mo 6 Cl 14 ]的几何优化和能带结构计算使用三种标准函数进行:局部密度近似,Perdew- Burke-Ernzerhof(PBE)作为广义梯度逼近,对PBE进行了固体化合物(PBEsol)修订。通过X射线粉末衍射,紫外-可见(UV-vis)漫反射和X射线光发射光谱(XPS)测量,对计算结果的有效性进行了实验检验。发现PBEsol在再现化合物的实验精制晶格结构方面显示出最佳性能。计算出的带隙能量(E g )与从UV-vis测量得出的值一致。此外,该化合物的XPS价谱通过以Al K α的光电离概率加权的计算态投影密度很好地再现了。尽管使用这三个函数模拟的光谱形状相似,但是PBEsol可以复制[Mo 6 Cl 14 ] 2?的电子态能级。 sup>和Cs + 离子具有更高的一致性。因此,可以得出结论,对于基于金属团簇的晶格系统的DFT计算,PBEsol是最合适的功能。

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