论文标题
紧凑型鱿鱼在双层石墨烯异质结构中实现
Compact SQUID realized in a double layer graphene heterostructure
论文作者
论文摘要
从可扩展的拓扑量子计算的角度来看,与超导体相结合时,托有一维螺旋状态的二维系统令人兴奋。石墨烯对于高电子质量,范德华异质结构的多功能性以及其电子和类似孔的变性为0 $ th $ landau水平而尤其有希望。在这里,我们研究了一个紧凑的双层石墨烯鱿鱼(超导量子干扰装置),其中超导环还原为超导接触,连接了两个平行的石墨烯约瑟夫森连接。尽管鱿鱼的尺寸很小,但它可以通过两层的费米能的独立门控制来完全调节。此外,两个约瑟夫森连接都显示出偏斜的当前相位关系,表明存在具有较高透明度的超导模式。在量子大厅制度中,我们测量了一个定义明确的电导高原为2 $ e^2/h $,指示两层中的反向传播边缘通道。我们的工作开辟了一种通过耦合螺旋边缘状态的工程拓扑超导性的方式,从石墨烯的电子孔归化0 $ th $ landau级别通过超导触点。
Two-dimensional systems that host one-dimensional helical states are exciting from the perspective of scalable topological quantum computation when coupled with a superconductor. Graphene is particularly promising for its high electronic quality, versatility in van der Waals heterostructures and its electron and hole-like degenerate 0$th$ Landau level. Here, we study a compact double layer graphene SQUID (superconducting quantum interference device), where the superconducting loop is reduced to the superconducting contacts, connecting two parallel graphene Josephson junctions. Despite the small size of the SQUID, it is fully tunable by independent gate control of the Fermi energies in both layers. Furthermore, both Josephson junctions show a skewed current phase relationship, indicating the presence of superconducting modes with high transparency. In the quantum Hall regime we measure a well defined conductance plateau of 2$e^2/h$ an indicative of counter propagating edge channels in the two layers. Our work opens a way for engineering topological superconductivity by coupling helical edge states, from graphene's electron-hole degenerate 0$th$ Landau level via superconducting contacts.