论文标题
强杂交1T'-WTE $ _2 $/NBSE $ _2 $异质结构的多频段超导性
Multi-Band Superconductivity in Strongly Hybridized 1T'-WTe$_2$/NbSe$_2$ Heterostructures
论文作者
论文摘要
拓扑和超导性的相互作用已成为凝结物理学的强烈研究的主题,以追求拓扑上的非平凡形式的超导配对。本质上正常的传导材料可以通过接近效应通过与母体超导体的电接触来遗传超导性,通常被理解为在两个独立导体的不同电子结构之间的界面处的Andreev反射。然而,在高界面透明度下,由于电子状态的杂交,强烈的耦合不可避免地会导致局部结构的变化。在这里,我们调查了单层1T'-WTE $ _2 $的强烈接近耦合异质结构,由van-der-waals Epitionales在NBSE $ _2 $上生长。在扫描隧道光谱范围中解析至500 〜MK的状态的局部密度(LDOS),反映了一种混合电子结构,该结构由基于McMillan方程的多频框架很好地描述,该框架基于McMillan方程,该框架捕获了多频段的超级传导性,该结构捕获了NBSE $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2自愿。我们的特定材料特定的紧密结合模型定量捕获了杂交异质结构,并确认强烈的层间跳也会在2D WTE $ _2 $ bumb中产生半金属状态的状态,即使对于名义上的带构造的晶体也是如此。该模型进一步准确预测了测得的顺序参数$δ\ simeq 0.6 $ 〜MEV在WTE $ _2 $单层散装中,稳定在2〜T磁场之外。我们认为,我们对杂交电子结构的详细多波段分析为敏感的降序参数敏感的空间映射提供了有用的工具。
The interplay of topology and superconductivity has become a subject of intense research in condensed matter physics for the pursuit of topologically non-trivial forms of superconducting pairing. An intrinsically normal-conducting material can inherit superconductivity via electrical contact to a parent superconductor via the proximity effect, usually understood as Andreev reflection at the interface between the distinct electronic structures of two separate conductors. However, at high interface transparency, strong coupling inevitably leads to changes in the band structure, locally, owing to hybridization of electronic states. Here, we investigate such strongly proximity-coupled heterostructures of monolayer 1T'-WTe$_2$, grown on NbSe$_2$ by van-der-Waals epitaxy. The superconducting local density of states (LDOS), resolved in scanning tunneling spectroscopy down to 500~mK, reflects a hybrid electronic structure, well-described by a multi-band framework based on the McMillan equations which captures the multi-band superconductivity inherent to the NbSe$_2$ substrate and that induced by proximity in WTe$_2$, self-consistently. Our material-specific tight-binding model captures the hybridized heterostructure quantitatively, and confirms that strong inter-layer hopping gives rise to a semi-metallic density of states in the 2D WTe$_2$ bulk, even for nominally band-insulating crystals. The model further accurately predicts the measured order parameter $Δ\simeq 0.6$~meV induced in the WTe$_2$ monolayer bulk, stable beyond a 2~T magnetic field. We believe that our detailed multi-band analysis of the hybrid electronic structure provides a useful tool for sensitive spatial mapping of induced order parameters in proximitized atomically thin topological materials.