论文标题

基于Fe的超导体和其他强相关的电子系统中的非常规密度波和超导能力

Unconventional density waves and superconductivities in Fe-based superconductors and other strongly correlated electron systems

论文作者

Kontani, Hiroshi, Tazai, Rina, Yamakawa, Youichi, Onari, Seiichiro

论文摘要

为了寻求高$ t_c $配对机制,许多科学家专注于在TC上方的神秘自发的旋转对称性破裂,例如$ q = 0 $的列表订单和$ q \ ne0 $的近去订单。金属中的这种异国相关驱动的对称性破裂已成为凝结物理学的核心问题。我们证明了由于轨道极化引起的列表和近晶订单的出现($ n_ {xz} \ ne n_ {yz} $),在相关的site intersite跳跃中突破的对称性(=债券订单$Δt_{i,j} $)在基于fe的和基于fe的cuprate和cuprate supercrate超级尺寸上。此外,我们讨论了由纯虚构$ΔT_{i,j} $驱动的异国自发环电流订单。这些有趣的``非常规密度波''源于田间理论中顶点校正(VC)所描述的不同自旋波动之间的量子干扰。在下一个阶段,我们讨论了由于非常规密度波的波动,电子相关驱动的超导性。为此,我们建议将VC纳入方程式中,建议超越eliAshberg差距方程。在基于Fe的超导体中,高$ T_C $ $ S $ - 波超导率可以通过列表和近晶振动介导,因为配对相互作用被VCS放大。我们还讨论了由于强旋转轨道相互作用与强电子相关性之间的合作,因此在重型费米昂系统中的多极波动配对机制。总而言之,我们建议VC所描述的量子干扰机制不仅是解释许多非常相关的金属中各种非常规密度波,而且解释了异国情调的超导状态。我们最终讨论了有关量子干扰机制的一些有趣的未来问题。

To seek high-$T_c$ pairing mechanism, many scientists have focused on the mysterious spontaneous rotational symmetry breaking above Tc, such as nematic order at $q=0$ and smectic order at $q\ne0$. Such exotic correlation-driven symmetry breaking in metals has become a central issue in condensed matter physics. We demonstrate the emergence of the nematic and smectic orders due to orbital polarization ($n_{xz}\ne n_{yz}$) and the symmetry breaking in the correlated intersite hopping (= bond order $δt_{i,j}$) in Fe-based and cuprate superconductors. In addition, we discuss exotic spontaneous loop current orders driven by the pure imaginary $δt_{i,j}$. These interesting ``unconventional density-waves'' originate from the quantum interference between different spin fluctuations that is described by the vertex correction (VC) in the field theory. In the next stage, we discuss electron-correlation driven superconductivity due to the fluctuations of unconventional density-waves. For this purpose, we suggest the beyond-Migdal-Eliashberg gap equation by including the VCs into the equation. In Fe-based superconductors, high-$T_c$ $s$-wave superconductivity can be mediated by nematic and smectic fluctuations because the pairing interaction is magnified by the VCs. We also discuss the multipolar fluctuation pairing mechanism in heavy fermion systems, owing to the cooperation between the strong spin-orbit interaction and the strong electron correlation. To summarize, we suggest that the quantum interference mechanism described by the VCs is the key ingredients to explain not only various unconventional density-waves, but also exotic superconducting states in many strongly correlated metals. We finally discuss some interesting future issues with respect to the quantum interference mechanism.

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