Gouveia A F, Sczancoski J C, Ferrer M M, Lima A S, Santos M R M C, Li M Siu, Santos R S, Longo E, Cavalcante L S
LIEC- Universidade Federal de São Carlos , P.O. Box 676, 13565-905, São Carlos-SP, Brazil.
Inorg Chem. 2014 Jun 2;53(11):5589-99. doi: 10.1021/ic500335x. Epub 2014 May 20.
In this paper, we investigate a correlation between theoretical calculations and experimental data to explain the electronic structure and optical properties of silver molybdate (β-Ag2MoO4) microcrystals synthesized by the microwave-assisted hydrothermal method. X-ray diffraction, Rietveld refinement, and micro-Raman spectroscopy confirmed that these microcrystals crystallize in a spinel-type cubic structure. Field-emission scanning electron microscopy images revealed that the processing temperatures influence in the final shape of microcrystals. Optical properties were analyzed by ultraviolet-visible diffuse reflectance spectroscopy; the increase in the optical band gap energy (Egap) (from 3.24 to 3.31 eV) with processing temperature is associated with the reduction of intermediary energy levels. First-principles quantum mechanical calculations based on the density functional theory at the B3LYP level were conducted. The calculated band structure revealed an indirect Egap of approximately 4.00 and 3.34 eV for the β-Ag2MoO4 without and with the formation of defects, respectively. Theoretical calculations based on density of states and electron density maps were employed to understand the polarization phenomenon induced by structural defects in the β-Ag2MoO4 crystals. Finally, photoluminescence properties at room temperature of β-Ag2MoO4 microcrystals were explained by the charge-transfer mechanism involving tetrahedral [MoO4] clusters.
在本文中,我们研究了理论计算与实验数据之间的相关性,以解释通过微波辅助水热法合成的钼酸银(β-Ag2MoO4)微晶的电子结构和光学性质。X射线衍射、Rietveld精修和显微拉曼光谱证实这些微晶结晶为尖晶石型立方结构。场发射扫描电子显微镜图像显示,加工温度会影响微晶的最终形状。通过紫外-可见漫反射光谱分析光学性质;随着加工温度的升高,光学带隙能量(Egap)从3.24 eV增加到3.31 eV,这与中间能级的降低有关。基于密度泛函理论在B3LYP水平上进行了第一性原理量子力学计算。计算得到的能带结构显示,对于无缺陷和有缺陷形成的β-Ag2MoO4,间接带隙分别约为4.00和3.34 eV。基于态密度和电子密度图的理论计算被用于理解β-Ag2MoO4晶体中结构缺陷引起的极化现象。最后,通过涉及四面体[MoO4]簇的电荷转移机制解释了β-Ag2MoO4微晶在室温下的光致发光性质。