论文标题
smalsi中的kramers nodal线和Weyl fermions
Kramers nodal lines and Weyl fermions in SmAlSi
论文作者
论文摘要
Kramers节点线(KNL)最近在理论上是一种特殊类型的Weyl Line Deneracy,连接了时间反转不变动量。 KNL对旋转轨道耦合是强大的,并且是所有非中心对称性心理晶体结构固有的,从而导致异常自旋,磁性电力和光学特性。但是,它们在实际量子材料中的存在尚未实验确定。在这里,我们收集了指出Smalsi中KNLS存在的实验证据,Smalsi是一种非中心对称金属,在低温下会形成不相强的旋转密度波顺序。使用角度分辨的光发射光谱,密度功能理论计算和磁道转运方法,我们提供了表明KNL的存在的证据,以及在Smalsi的顺磁阶段中观察到的反转对称性下的Weyl Fermions。我们讨论了有关Smalsi中新兴磁性的嵌套可能性。我们的结果为探索Smalsi相关拓扑的实验观察提供了扎实的基础。
Kramers nodal lines (KNLs) have recently been proposed theoretically as a special type of Weyl line degeneracy connecting time-reversal invariant momenta. KNLs are robust to spin orbit coupling and are inherent to all non-centrosymmetric achiral crystal structures, leading to unusual spin, magneto-electric, and optical properties. However, their existence in in real quantum materials has not been experimentally established. Here we gather the experimental evidence pointing at the presence of KNLs in SmAlSi, a non-centrosymmetric metal that develops incommensurate spin density wave order at low temperature. Using angle-resolved photoemission spectroscopy, density functional theory calculations, and magneto-transport methods, we provide evidence suggesting the presence of KNLs, together with observing Weyl fermions under the broken inversion symmetry in the paramagnetic phase of SmAlSi. We discuss the nesting possibilities regarding the emergent magnetic orders in SmAlSi. Our results provide a solid basis of experimental observations for exploring correlated topology in SmAlSi.