论文标题
lioso $ _3 $和naoso $ _3 $的结构,电子,磁性和动力学特性的比较初始研究
Comparative ab initio study of the structural, electronic, magnetic, and dynamical properties of LiOsO$_3$ and NaOsO$_3$
论文作者
论文摘要
尽管具有类似的化学成分,但lioso $ _3 $和naoso $ _3 $表现出明显不同的结构,电子,磁性和光谱特性。在低温下,lioso $ _3 $是一种极性坏的金属,带有菱形$ R3C $结构,而没有远程磁性订单,而Naoso $ _3 $是$ G $ type抗fiferromagnetic绝缘子,带有Orthorhombic $ PNMA $结构。通过比较的第一原理DFT+$ U $计算,包括旋转轨道耦合的计算,我们($ i $)确定了使用对称性适应的软模式分析($ ii $)提供不同结构性($ r3c $ vs. $ pnma $)属性的起源无序的多态描述不令人满意,无法同时准确地描述两个系统的电子和磁性,并且($ iii $)澄清了独特的电子(金属与绝缘性)特性主要源自合作空间和磁性效应。最后,我们发现,尽管在环境压力下lioso $ _3 $带有$ pnma $对称性,而naoso $ _3 $带有$ r \ bar {3} c $对称性在精力上不利,但它们不显示软音子,因此动态稳定。预计将预计从$ r3c $ $ r3c $到$ pnma $的结构相过渡,而对于naoso $ _3 $,在被认为的压力范围内没有发现对称变化。
Despite similar chemical compositions, LiOsO$_3$ and NaOsO$_3$ exhibit remarkably distinct structural, electronic, magnetic, and spectroscopic properties. At low temperature, LiOsO$_3$ is a polar bad metal with a rhombohedral $R3c$ structure without the presence of long-range magnetic order, whereas NaOsO$_3$ is a $G$-type antiferromagnetic insulator with an orthorhombic $Pnma$ structure. By means of comparative first-principles DFT+$U$ calculations with the inclusion of the spin-orbit coupling, we ($i$) identify the origin of the different structural ($R3c$ vs. $Pnma$) properties using a symmetry-adapted soft mode analysis, ($ii$) provide evidence that all considered exchange-correlation functionals (LDA, PBE, PBEsol, SCAN, and HSE06) and the spin disordered polymorphous descriptions are unsatisfactory to accurately describe the electronic and magnetic properties of both systems simultaneously, and ($iii$) clarify that the distinct electronic (metallic vs. insulating) properties originates mainly from a cooperative steric and magnetic effect. Finally, we find that although at ambient pressure LiOsO$_3$ with a $Pnma$ symmetry and NaOsO$_3$ with a $R\bar{3}c$ symmetry are energetically unfavorable, they do not show soft phonons and therefore are dynamically stable. A pressure-induced structural phase transition from $R3c$ to $Pnma$ for LiOsO$_3$ is predicted, whereas for NaOsO$_3$ no symmetry change is discerned in the considered pressure range.