论文标题
ndnio $ _2 $和cacuo $ _2 $的多体电子结构
Many-body Electronic Structure of NdNiO$_2$ and CaCuO$_2$
论文作者
论文摘要
高$ t_c $ cuprates的镍类似物中超导性的演示提供了有关相关电子材料物理学的新观点。镍电子结构与铜酸盐相似的程度是一个重要的开放问题。本文介绍了对等值电子结构和理论相图的比较研究的结果,而等级材料Cacuo $ _2 $和ndnio $ _2 $。 Important differences include the proximity of the oxygen $2p$ bands to the Fermi level, the bandwidth of the transition metal-derived $3d$ bands, and the presence, in NdNiO$_2$, of both Nd-derived $5d$ states crossing the Fermi level and a van Hove singularity that crosses the Fermi level as the out of plane momentum is varied. NDNIO $ _2 $的低能物理学被发现是单个Ni衍生的相关频带的低能物理学,并具有额外的ND衍生状态的较弱相关的频段,这些频段刺激了Ni-dedive-dedive vand band。发现NDNIO $ _2 $在NDNIO $ _2 $中跨越费米水平的Ni-dedive $ d $ band的有效相关强度大于cu衍生的$ d $ band in Cacuo $ _2 $,但预测的NDNIO $ _2 $的磁性磁过渡温度大大低于cacuo $ _2 $的磁极$ _2 $。
The demonstration of superconductivity in nickelate analogues of high $T_c$ cuprates provides new perspectives on the physics of correlated electron materials. The degree to which the nickelate electronic structure is similar to that of cuprates is an important open question. This paper presents results of a comparative study of the many-body electronic structure and theoretical phase diagram of the isostructural materials CaCuO$_2$ and NdNiO$_2$. Important differences include the proximity of the oxygen $2p$ bands to the Fermi level, the bandwidth of the transition metal-derived $3d$ bands, and the presence, in NdNiO$_2$, of both Nd-derived $5d$ states crossing the Fermi level and a van Hove singularity that crosses the Fermi level as the out of plane momentum is varied. The low energy physics of NdNiO$_2$ is found to be that of a single Ni-derived correlated band, with additional accompanying weakly correlated bands of Nd-derived states that dope the Ni-derived band. The effective correlation strength of the Ni-derived $d$-band crossing the Fermi level in NdNiO$_2$ is found to be greater than that of the Cu-derived $d$-band in CaCuO$_2$, but the predicted magnetic transition temperature of NdNiO$_2$ is substantially lower than that of CaCuO$_2$ because of the smaller bandwidth.