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Instability caused by the fermion-fermion interactions combined with rotational and particle-hole asymmetries in three-dimensional materials with quadratic band touching

机译:Fermion-Fermion相互作用引起的不稳定性与三维材料中的旋转和粒子孔不对称引起的,具有二次带触摸

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摘要

We investigate the role of four-fermion interactions, rotational and particle-hole asymmetries, and their interplay in three-dimensional systems with a quadratic band touching point by virtue of the renormalization group approach, which allows to treat all these facets unbiasedly. The coupled flow evolutions of interaction parameters are derived by taking into account one-loop corrections in order to explore the behaviors of low-energy states. We find four-fermion interaction can drive Gaussian fixed points to be unstable in the low-energy regime. In addition, the rotational and particle-hole asymmetries, together with the fermion-fermion interactions conspire to split the trajectories of distinct types of fermionic couplings and induce superconductivity instability with appropriate starting conditions. Furthermore, we present the schematic phase diagrams in the parameter space, showing the overall behaviors of states in the low-energy regime caused by both fermionic interactions and asymmetries.
机译:我们调查四个铁偶相互作用,旋转和粒子孔不对称的作用,以及借助于重整组方法具有二次带触摸点的三维系统中的相互作用,这允许无偏见地处理所有这些方面。通过考虑一个循环校正来导出交互参数的耦合流量演进,以便探索低能量状态的行为。我们发现四个Fermion互动可以驱动高斯固定点在低能量方案中不稳定。另外,旋转和颗粒孔不对称,与FERMION-FERMION相互作用一起分开以分开不同类型的FERMION偶联的轨迹,并通过适当的起始条件诱导超导稳定性。此外,我们在参数空间中介绍了参数空间中的示意图,示出了由Fermionic相互作用和不对称引起的低能量方案中状态的整体行为。

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