论文标题
部分可观测时空混沌系统的无模型预测
Discrete scale invariance of the quasi-bound states at atomic vacancies in a topological material
论文作者
论文摘要
最近,在拓扑材料锆甲氯脲(ZRTE5)和五颗戊酰hafnium Pentatelliride(HFTE5)中检测到对数周期量子振荡,显示出有趣的离散量表不变性(DSI)的特征。在冷凝的材料中,DSI被认为与具有强大库仑吸引力的无质量毛毛部填充物形成的准结合状态有关,提供了一个可行的平台来研究长期累积的原子崩溃现象。在这里,我们证明了拓扑材料中的各种原子空缺HFTE5可以托管具有DSI特征的几何准结合状态,类似于人工超临界原子崩溃。这些准结合状态的状态的密度得到增强,并且准结合的状态在空缺位点周围的“轨道”中分布在空间上,该状态通过低温扫描隧道显微镜/光谱仪(STM/S)检测到和可视化。通过施加垂直磁场,较低能量的准结合状态变得更宽并最终是看不见的,同时,准结合状态的能量逐渐向费米能量(EF)移动。这些特征与从超临界到亚临界状态的磁场诱导的过渡的理论预测一致。几何形状结合状态的直接观察阐明了对量子材料中对DSI的深刻理解。
Recently, log-periodic quantum oscillations have been detected in topological materials zirconium pentatelluride (ZrTe5) and hafnium pentatelluride (HfTe5), displaying intriguing discrete scale invariance (DSI) characteristic. In condensed materials, the DSI is considered to be related to the quasi-bound states formed by massless Dirac fermions with strong Coulomb attraction, offering a feasible platform to study the long-pursued atomic-collapse phenomenon. Here, we demonstrate that a variety of atomic vacancies in the topological material HfTe5 can host the geometric quasi-bound states with DSI feature, resembling the artificial supercritical atom collapse. The density of states of these quasi-bound states are enhanced and the quasi-bound states are spatially distributed in the "orbitals" surrounding the vacancy sites, which are detected and visualized by low-temperature scanning tunneling microscope/spectroscopy (STM/S). By applying the perpendicular magnetic fields, the quasi-bound states at lower energies become wider and eventually invisible, meanwhile the energies of quasi-bound states move gradually towards the Fermi energy (EF). These features are consistent with the theoretical prediction of a magnetic-field-induced transition from supercritical to subcritical states. The direct observation of geometric quasi-bound states sheds light on the deep understanding of the DSI in quantum materials.