论文标题

铁pnictides和葡萄糖代化的非本地相关性

Non-local correlations in Iron Pnictides and Chalcogenides

论文作者

Bhattacharyya, Shinibali, Björnson, Kristofer, Zantout, Karim, Steffensen, Daniel, Fanfarillo, Laura, Kreisel, Andreas, Valentí, Roser, Andersen, Brian M., Hirschfeld, P. J.

论文摘要

铁基超导体与密度功能理论预测的低能电子结构的偏差已以带和轨道依赖性的质量重新归量化和能量转移的参数化。前者通常用在动态平均场理论框架内的局部自我能源来描述,而后者似乎由于带间散射而需要非本地效应。通过计算随机相位近似(RPA)和两粒子自洽近似(TPSC)中的重新归一化的带结构,我们表明,可以通过非局部自我能够很好地描述LaFeaso和Lieleas(例如LaFeaso和LifeEas)中的相关性。特别是,在实验中看到的Fermi Pocket收缩是由于排斥的束间有限能源散射而发生的。对于大容量四方相的规范粉红染色体系统FESE,这种情况更为复杂,因为即使包括动量依赖性的带状率化,也无法解释实验发现。我们建议远程库仑相互作用可能在FESE的频道结构重归其化中起重要作用。我们进一步比较了RPA和TPSC中非本地准粒子散射寿命的评估与生命周期的实验数据。

Deviations of low-energy electronic structure of iron-based superconductors from density functional theory predictions have been parametrized in terms of band- and orbital-dependent mass renormalizations and energy shifts. The former have typically been described in terms of a local self-energy within the framework of dynamical mean field theory, while the latter appears to require non-local effects due to interband scattering. By calculating the renormalized bandstructure in both random phase approximation (RPA) and the two-particle self-consistent approximation (TPSC), we show that correlations in pnictide systems like LaFeAsO and LiFeAs can be described rather well by a non-local self-energy. In particular, Fermi pocket shrinkage as seen in experiment occurs due to repulsive interband finite-energy scattering. For the canonical iron chalcogenide system FeSe in its bulk tetragonal phase, the situation is however more complex since even including momentum-dependent band renormalizations cannot explain experimental findings. We propose that the long-range Coulomb interaction may play an important role in band-structure renormalization in FeSe. We further compare our evaluations of non-local quasiparticle scattering lifetime within RPA and TPSC with experimental data for LiFeAs.

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