论文标题
研究结构,弹性,电子,热力学和热电特性的第一原理计算CAPD $ _3 $ b $ _4 $ o $ o $ _ {12} $(b = ti,v)perovskite perovskite
First-principles calculations to investigate structural, elastic, electronic, thermodynamic, and thermoelectric properties of CaPd$_3$B$_4$O$_{12}$ (B = Ti, V) perovskite
论文作者
论文摘要
这项研究探讨了CAPD $ _3 $ ti $ _4 $ o $ o $ _ {1} $ 2(cpto)和CAPD $ _3 $ _3 $ _4 $ _4 $ o $ _ {12} $(cpvo)Quadruple perovskites使用密度功能理论(DFT)方法。这两种化合物的机械持久性也通过出生的稳定标准观察到。 CPTO的频带结构分别使用GGA-MBJ和GGA-PBE电位,揭示了0.88和0.46 eV的直接狭窄带隙,这表明其引人入胜的半导体性质。计算的状态部分密度表明CPTO的PD-4D和O-2P轨道电子之间的杂交很强,而CPVO的PD-4D和V-3D-O-2P。化学键合性和电子电荷分布图的研究揭示了两种化合物的共价O-V/PD键,离子O-Ti/Ca键以及金属TI/V-TI/V键的共存。 CPVO的费米表面确保了一种孔以及电子的脸部同时表明多种带的特征。 CPTO的静态实际介电函数(光学特性)在零能量上的预测意味着其有希望的介电性质。 CPBO的光电导率和吸收系数表现出良好的定性符合符合带结构计算的后果。计算出的热力学特性表现出CPBO的热力学稳定性,而CPVO的声子分散剂与CPTO的略微不稳定的声子分散相比,表现出稳定的声子分散体。预测的Debye温度($θ_D$)已用于将其局部特征(包括热电行为)相关联。 CPTO的研究热电传输属性产生了Seebeck系数(186 V/K),功率因数(11.9 WCM $^{ - 1} $ K $^{ - 2} $),功绩(ZT)值(ZT)值为0.8,在800 k时约为0.8,表明该材料对助热应用程序是一种有希望的候选应用。
This study has explored numerous physical properties of CaPd$_3$Ti$_4$O$_{1}$2 (CPTO) and CaPd$_3$V$_4$O$_{12}$ (CPVO) quadruple perovskites employing the density functional theory (DFT) method. The mechanical permanence of these two compounds was observed by the Born stability criteria as well. The band structure of CPTO reveals a 0.88 and 0.46 eV direct narrow band gap while using GGA-mBJ and GGA-PBE potentials, respectively, which is an indication of its fascinating semiconducting nature. The calculated partial density of states indicates the strong hybridization between Pd-4d and O-2p orbital electrons for CPTO, whereas Pd-4d and V-3d-O-2p for CPVO. The study of the chemical bonding nature and electronic charge distribution graph reveals the coexistence of covalent O-V/Pd bonds, ionic O-Ti/Ca bonds, as well as metallic Ti/V-Ti/V bonding for both compounds. The Fermi surface of CPVO ensures a kind of hole as well as electron faces simultaneously, indicating the multifarious band characteristic. The prediction of the static real dielectric function (optical property) of CPTO at zero energy implies its promising dielectric nature. The photoconductivity and absorption coefficient of CPBO display good qualitative compliance with the consequences of band structure computations. The calculated thermodynamic properties manifest the thermodynamical stability for CPBO, whereas phonon dispersions of CPVO exhibit stable phonon dispersion in contrast to slightly unstable phonon dispersion of CPTO. The predicted Debye temperature ($θ_D$) has been utilized to correlate its topical features including thermoelectric behaviors. The studied thermoelectric transport properties of CPTO yielded the Seebeck coefficient (186 V/K), power factor (11.9 Wcm$^{-1}$K$^{-2}$), and figure of merit (ZT) value of about 0.8 at 800 K, indicating that this material could be a promising candidate for thermoelectric applications.