论文标题
基于铁的铁核苷超导体中抗铁磁相的间歇性动力学
Intermittent dynamics of antiferromagnetic phase in inhomogeneous iron-based chalcogenide superconductor
论文作者
论文摘要
相位通常发生在分层超导体中,以不同的电子自由度为特征。其中,碱性插入式硫化盐是模型系统,显示了磁磁性(PAR)和抗磁磁性(AFM)阶段的显微镜系统,但是,不同阶段的时间行为仍然未知。在这里,我们在K $ _ {x} $ fe $ _ {2-y} $ se $ _2 $使用X射线光子相关光谱的颗粒阶段报告原子运动的第一个可视化。与PAR阶段不同,AFM纹理揭示了与Martensites一样的间歇性动态。当在超导过渡温度t $ _c $上冷却时,AFM相通过异常的减慢行为,这表明AFM相中的原子运动与超导性之间存在直接关系。除了在分层超导体中提供雪崩样动力学的令人信服的证据外,结果为新的理论模型提供了描述不均匀固体中量子状态的基础。
Coexistence of phases, characterized by different electronic degrees of freedom, commonly occurs in layered superconductors. Among them, alkaline intercalated chalcogenides are model systems showing microscale coexistence of paramagnetic (PAR) and antiferromagnetic (AFM) phases, however, temporal behavior of different phases is still unknown. Here, we report the first visualization of the atomic motion in the granular phase of K$_{x}$Fe$_{2-y}$Se$_2$ using X-ray photon correlation spectroscopy. Unlike the PAR phase, the AFM texture reveals an intermittent dynamics with avalanches as in martensites. When cooled down across the superconducting transition temperature T$_c$, the AFM phase goes through an anomalous slowing behavior suggesting a direct relationship between the atomic motions in the AFM phase and the superconductivity. In addition of providing a compelling evidence of avalanche-like dynamics in a layered superconductor, the results provide a basis for new theoretical models to describe quantum states in inhomogeneous solids.