论文标题
原子纳米谱系中的接近诱导的超导性
Proximity-Induced Superconductivity in Atomically Precise Nanographene
论文作者
论文摘要
通过与超导体接近性能在原子上精确的纳米学(NG)结构中获得可靠的超导状态可以促进石墨烯中拓扑超导的发现。这种NGS的表面合成是在贵金属或金属氧化物上实现的,但是,超导体仍然不存在。在这里,我们提出了一种合成方法,可诱导聚合物链和NGS超导性,并吸附在超导NB(110)底物上,被薄AG膜覆盖。在低温下使用原子力显微镜,我们表征了超导AG层上每个亚产物的化学结构。扫描隧道光谱进一步使我们能够阐明这些纳米结构的电子特性,这些纳米结构始终显示出超导间隙。我们预计我们的方法是成为探索基本层面碳磁性和超导性之间相互作用的有前途的平台。
Obtaining a robust superconducting state in atomically precise nanographene (NG) structures by proximity to a superconductor could foster the discovery of topological superconductivity in graphene. On-surface synthesis of such NGs has been achieved on noble metals or metal oxides, however, it is still absent on superconductors. Here, we present a synthetic method to induce superconductivity to polymeric chains and NGs adsorbed on the superconducting Nb(110) substrate covered by thin Ag films. Using atomic force microscopy at low-temperature, we characterize the chemical structure of each sub-product formed on the superconducting Ag layer. Scanning tunneling spectroscopy further allows us to elucidate electronic properties of these nanostructures, which consistently show a superconducting gap. We foresee our approach to become a promising platform for exploring the interplay between carbon magnetism and superconductivity at the fundamental level.