Pavoni Eleonora, Modreanu Mircea Gabriel, Mohebbi Elaheh, Mencarelli Davide, Stipa Pierluigi, Laudadio Emiliano, Pierantoni Luca
Department of Materials, Environmental Sciences and Urban Planning, Marche Polytechnic University, Via Brecce Bianche, 60131 Ancona, Italy.
Tyndall National Institute, University College Cork, T12 R5CP Cork, Ireland.
Nanomaterials (Basel). 2023 Apr 9;13(8):1319. doi: 10.3390/nano13081319.
MoO and MoO systems have attracted particular attention for many widespread applications thanks to their electronic and optical peculiarities; from the crystallographic point of view, MoO adopts a thermodynamically stable orthorhombic phase (α-MoO) belonging to the space group , while MoO assumes a monoclinic arrangement characterized by space group 2/ In the present paper, we investigated the electronic and optical properties of both MoO and MoO by using Density Functional Theory calculations, in particular, the Meta Generalized Gradient Approximation (MGGA) SCAN functional together with the PseudoDojo pseudopotential, which were used for the first time to obtain a deeper insight into the nature of different Mo-O bonds in these materials. The calculated density of states, the band gap, and the band structure were confirmed and validated by comparison with already available experimental results, while the optical properties were validated by recording optical spectra. Furthermore, the calculated band-gap energy value for the orthorhombic MoO showed the best match to the experimental value reported in the literature. All these findings suggest that the newly proposed theoretical techniques reproduce the experimental evidence of both MoO and MoO systems with high accuracy.
由于其电子和光学特性,MoO和MoO系统在许多广泛的应用中引起了特别关注;从晶体学角度来看,MoO采用属于空间群的热力学稳定正交相(α-MoO),而MoO呈现出以空间群2/为特征的单斜排列。在本文中,我们通过使用密度泛函理论计算,特别是元广义梯度近似(MGGA)SCAN泛函和赝势,研究了MoO和MoO的电子和光学性质,这是首次用于更深入了解这些材料中不同Mo-O键的性质。通过与已有实验结果进行比较,验证了计算得到的态密度、带隙和能带结构,同时通过记录光谱验证了光学性质。此外,正交相MoO的计算带隙能量值与文献报道的实验值匹配最佳。所有这些发现表明,新提出的理论技术能够高精度地再现MoO和MoO系统的实验证据。