论文标题
部分可观测时空混沌系统的无模型预测
Formation of CuO$_2$ sublattices by suppression of interlattice correlations in tetragonal CuO
论文作者
论文摘要
我们在细胞动力学均值场理论的背景下研究了二元过渡金属氧化物CUO(T-CUO)的四方相。由于其强大的抗铁磁相关性和简单的结构,分析T-CUO的物理学引起了人们的兴趣,因为它可能为对孔掺杂的抗铁磁铁的高温超导性的更全面理解铺平道路。在这项工作中,我们为弱耦合假设提供了形式上的理由,该假设以前是通过研究系统的非本地自我增强的单层T-CUO中互连的sublattices做出的。我们直接在真实轴上直接使用矩阵乘积状态(MPS)的杂质求解器来计算动量分辨光谱函数,该轴不需要任何数字条件不良的分析延续。与光发射光谱的一致性表明,单个带Hubbard模型足以捕获材料的低能量物理学。我们对各种温度范围进行计算,发现了两个磁性机制,为此我们确定了它们各自的绝缘状态背后的驾驶机制。最后,我们表明,在孔掺杂的方向上,T-CUO的sublattice结构对超导状态的对称性产生了有趣的后果。
We investigate the tetragonal phase of the binary transition metal oxide CuO (t-CuO) within the context of cellular dynamical mean-field theory. Due to its strong antiferromagnetic correlations and simple structure, analysing the physics of t-CuO is of high interest as it may pave the way towards a more complete understanding of high temperature superconductivity in hole-doped antiferromagnets. In this work we give a formal justification for the weak coupling assumption that has previously been made for the interconnected sublattices within a single layer of t-CuO by studying the non-local self-energies of the system. We compute momentum-resolved spectral functions using a Matrix Product State (MPS)-based impurity solver directly on the real axis, which does not require any numerically ill-conditioned analytic continuation. The agreement with photoemission spectroscopy indicates that a single band Hubbard model is sufficient to capture the material's low energy physics. We perform calculations on a range of different temperatures, finding two magnetic regimes, for which we identify the driving mechanism behind their respective insulating state. Finally, we show that in the hole-doped regime the sublattice structure of t-CuO has interesting consequences on the symmetry of the superconducting state.