论文标题

电子相关性在探索层次li $ _x $ mno $ _2 $的异国情调相图中的重要性

The importance of electronic correlations in exploring the exotic phase diagram of layered Li$_x$MnO$_2$

论文作者

Banerjee, Hrishit, Grey, Clare P., Morris, Andrew J.

论文摘要

利用从头算动力学均值场理论,我们探索了分层li $ _x $ mno $ _2 $的电子和磁状态,作为$ x $的函数,即充电状态。根据MN $ 3D $状态的低能量子空间并解决多发性问题,我们的方法构建了Kohn-Sham轨道的真实空间幻想预测,我们的方法着重于MN站点的本地相关性。 limno $ _2 $中的抗铁磁绝缘状态的中等温度为$ t_n = 296 \,k $与实验研究一致。划定后,系统通过多种状态进行:铁磁相关金属$ x $ = 0.92,0.83;多重电荷不成比例的铁磁相关金属,大型准颗粒重量为$ x $ = 0.67,0.50,0.33; $ x $ = 0.17、0.08的高磁金属和完全界定状态的抗铁磁绝缘子,$ x = 0.0 $。在中度的充电状态下,$ x = 0.67-0.33 $,观察到 +3/ +4正式氧化状态的混合物,而Mn状态的总体名义氧化从limno $ _2 $ _2 $ _2 $ in +4 in Mno $ _2 $中的+3变化。在所有这些情况下,考虑到$ e_g $级别的能源水平至$ t_ {2g} $,高旋转状态是我们计算中最有可能的状态。相关金属状态中的准粒子峰基于以前的文献,归因于极性状态,这是由于强相关系统的非Fermi液体类型行为而引起的类似的等值JT驱动材料。

Using ab initio dynamical mean-field theory we explore the electronic and magnetic states of layered Li$_x$MnO$_2$ as a function of $x$, the state of charge. Constructing real-space Wannier projections of Kohn-Sham orbitals based on the low-energy subspace of Mn $3d$ states and solving a multi-impurity problem, our approach focuses on local correlations at Mn sites. The antiferromagnetic insulating state in LiMnO$_2$ has a moderate Néel temperature of $T_N=296\,K$ in agreement with experimental studies. Upon delithiation the system proceeds through a number of states: ferrimagnetic correlated metals at $x$=0.92, 0.83; multiple charge disproportionated ferromagnetic correlated metals with large quasiparticle weights at $x$=0.67, 0.50, 0.33; ferromagnetic metals with small quasiparticle weights at $x$=0.17, 0.08 and an antiferromagnetic insulator for the fully delithiated state, $x=0.0$. At moderate states of charge, $x=0.67-0.33$, a mix of +3/+4 formal oxidation states of Mn is observed, while the overall nominal oxidation of Mn state changes from +3 in LiMnO$_2$ to +4 in MnO$_2$. In all these cases the high-spin state emerges as the most likely state in our calculations considering the full $d$~manifold of Mn based on the proximity of $e_g$ levels in energy to $t_{2g}$. The quasiparticle peaks in the correlated metallic states were attributed to polaronic states based on previous literature for similar isoelectronic JT driven materials, arising due to non-Fermi liquid type behaviour of the strongly correlated system.

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