论文标题
具有意外可调性的柔性无定形超导材料和量子设备
Flexible Amorphous Superconducting Materials and Quantum Devices with Unexpected Tunability
论文作者
论文摘要
在超导性中,电子表现出独特的宏观集体量子行为,这是许多现代量子技术的关键。这种电子行为源于材料中原子的相关运动以及完美筛选外部磁场的同步方向运动。因此,原子间距离和材料几何形状有望影响基本的超导特征。这些参数可通过应变调整,但是超导体的刚性阻碍了应变的施用,从而在相关的温度下增加了应变。在这里,我们通过将超导性无定形合金膜沉积在柔性胶带上,呈现柔性,可折叠和可转移的超导材料和功能性量子纳米结构。具体而言,在可变的磁场,电流,温度和弯曲条件下制造并表征了柔性超导膜,纳米线和量子干扰装置(鱿鱼)。代表单个通量量子的鱿鱼干扰周期性具有折叠曲率的意外可调性。这种可调节性提出了重新构建超导性基本面的需求,这主要是关于几何,磁场不均匀性和应变的影响。我们的工作为具有局部可调性的新型磁性设备和量子技术平台铺平了道路。
In superconductivity, electrons exhibit unique macroscopic collective quantum behavior that is the key for many modern quantum technologies. This electron behavior stems vastly from coupling to a correlated motion of atoms in the material, as well as from synchronized directional movement that screens external magnetic fields perfectly. Hence, the inter-atomic distance and material geometry are expected to affect fundamental superconductive characteristics. These parameters are tunable with strain, but strain application is hindered by the rigidity of superconductors, which in turn increases at device-relevant temperatures. Here, we present flexible, foldable and transferable superconducting materials, and functional quantum nanostructures by depositing superconductive amorphous-alloy films on a flexible adhesive tape. Specifically, flexible superconducting films, nanowires and quantum interference devices (SQUIDs) were fabricated and characterized under variable magnetic-field, current, temperature and flexure conditions. The SQUID interference periodicity, which represents a single flux quantum, exhibits unexpected tunability with folding curvature. This tunability raises a need for a relook at the fundamentals of superconductivity, mainly with respect to effects of geometry, magnetic-field inhomogeneity and strain. Our work paves the way for novel magnetic devices and quantum-technology platforms with local tunability.