论文标题
准二维BI2TE3/FE1+yte异质结构纳米结构中的界面超导性和零偏置峰
Interfacial superconductivity and zero bias peak in quasi-one-dimensional Bi2Te3/Fe1+yTe heterostructure nanostructures
论文作者
论文摘要
已知BI2TE3/FE1+YTE异质结构在两种非驱动材料之间表现出界面的超导性:Fe1+YTE作为基于Fe的基于Fe的超导材料的母体化合物和拓扑绝缘体BI2TE3。在这里,我们提出了从二维(2D)异质结构开始的自上而下方法,以制造一维BI2TE3/FE1+YTE纳米线或狭窄的纳米骨。我们证明,BI2TE3/FE1+YTE异质结构在100 nm的宽度纳米结构中保持完整,并保留了界面超导性,如电气传输和Andreeeve Reflection Point接触点接触镜的光谱实验所证明的。差分电导显示出与二维异质结构相似的超导双隙结构,但由于较低的维度而产生的波动效应增强。零偏置电导峰表明存在Andreev结合状态,并鉴于拓扑BI2TE3表面状态的参与,我们讨论了超导性的拓扑性质,与新兴的铁磁势相互作用,这是由于FE1+YTE层中的间隙过量铁,并与超级降低的高度降低效率相似。
Bi2Te3/Fe1+yTe heterostructures are known to exhibit interfacial superconductivity between two non-superconducting materials: Fe1+yTe as the parent compound of Fe-based superconducting materials and the topological insulator Bi2Te3. Here, we present a top-down approach starting from two-dimensional (2D) heterostructures to fabricate one-dimensional (1D) Bi2Te3/Fe1+yTe nanowires or narrow nanoribbons. We demonstrate that the Bi2Te3/Fe1+yTe heterostructure remains intact in nanostructures of widths on the order of 100 nm and the interfacial superconductivity is preserved, as evidenced by electrical transport and Andreev reflection point contact spectroscopy experiments measured at the end of the nanowire. The differential conductance shows a similar superconducting twin-gap structure as in two-dimensional heterostructures, but with enhanced fluctuation effects due to the lower dimensionality. A zero-bias conductance peak indicates the presence of an Andreev bound state and given the involvement of the topological Bi2Te3 surface state, we discuss a possible topological nature of superconductivity with strong interplay with an emerging ferromagnetism due to the interstitial excess iron in the Fe1+yTe layer, developing in parallel with superconductivity at low temperatures.