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首页> 外文期刊>Physical review.B.Condensed matter and materials physics >Understanding electronic peculiarities in tetragonal FeSe as local structural symmetry breaking
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Understanding electronic peculiarities in tetragonal FeSe as local structural symmetry breaking

机译:了解四方FESE中的电子特性作为局部结构对称破裂

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摘要

Traditional band theory of perfect crystalline solids often uses as input the structure deduced from diffraction experiments: when modeled by the minimal unit cell this often produces a spatially averaged model. The present study illustrates that this is not always a safe practice unless one examines if the intrinsic bonding mechanism is capable of benefiting from the formation of a distribution of lower symmetry local environments that differ from the macroscopically averaged structure. This can happen either due to positional or to magnetic symmetry breaking. By removing the constraint of a small crystallographic cell, the energy minimization in the density functional theory finds atomic and spin symmetry breaking, not evident in conventional diffraction experiments but being found by local probes such as atomic pair distribution function analysis. Here we report that large atomic and electronic anomalies in bulk tetragonal FeSe emerge from the existence of distributions of local positional and magnetic moment motifs. The found symmetry-broken motifs obtained by minimization of the internal energy represent what chemical bonding in the tetragonal phase prefers as intrinsic energy lowering (stabilizing) static distortions. This explains observations of band renormalization. predicts orbital order and enhanced nematicity, and provides unprecedented close agreement with spectral function measured by photoe-mission and local atomic environment revealed by the pair distribution function. While the symmetry-restricted strong correlation approach has been argued previously lo be the exclusive theory needed for describing the main peculiarities of FeSe, we show here that the symmetry-broken mean-field approach addresses numerous aspects of the problem, provides intuitive insight into the electronic structure, and opens the door for large-scale mean-Held calculations for similar d-electron quantum materials.
机译:完美结晶固体的传统频段理论通常用作从衍射实验推导的结构的输入:当由最小单元电池建模的时,这通常产生空间平均模型。本研究说明,除非有一个内在结合机制能够从不同于宏观平均结构不同的局部环境的分布的形成,否则这并不总是安全的练习。这可能是由于位置或磁性对称性断裂而发生的。通过去除小晶细胞的约束,密度函数理论中的能量最小化发现原子和旋转对称性破裂,在常规衍射实验中不明显,但通过局部探测器如原子对分布函数分析发现。在这里,我们举报了散装四方FESE中的大原子和电子异常从局部位置和磁矩图案的分布中出现。通过最小化内部能量获得的发现对称性破碎的基序代表了四边形相中的化学键,优选为内在能量降低(稳定)静态畸变。这解释了乐队重整化的观察。预测轨道顺序和增强的向外信心,并通过由Photo-Mission函数的Photoe-Mission和局部原子环境测量的光谱函数提供前所未有的密切协议。虽然对称限制的强烈相关方法已经争辩,但是为了描述FESE的主要特点所需的独家理论,我们在此显示对称破碎的平均场方法解决了问题的众多方面,提供了直观的洞察力电子结构,并为类似D-ElectronQuallum材料的大规模平均计算的大门打开。

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  • 来源
    《Physical review.B.Condensed matter and materials physics》 |2020年第23期|235121.1-235121.11|共11页
  • 作者单位

    University of Colorado Renewable & Sustainable Energy Institute Boulder Colorado 80309 USA;

    University of Colorado Renewable & Sustainable Energy Institute Boulder Colorado 80309 USA;

    Condensed Matter Physics and Materials Science Department Brookhaven National Laboratory Upton New York 11973 USA;

    Condensed Matter Physics and Materials Science Department Brookhaven National Laboratory Upton New York 11973 USA Department of Applied Physics and Mathematics Columbia University New York New York 10027 USA;

    University of Colorado Renewable & Sustainable Energy Institute Boulder Colorado 80309 USA;

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