Shenyang National Laboratory for Materials Science, Institute of Metal Research, Chinese Academy of Sciences , Shenyang 110016, P. R. China.
Beijing Key Laboratory of Quantum Devices, Key Laboratory for the Physics and Chemistry of Nanodevices and Department of Electronics, Peking University , Beijing 100871, P. R. China.
ACS Nano. 2017 Jun 27;11(6):5906-5914. doi: 10.1021/acsnano.7b01638. Epub 2017 Jun 13.
Vertical heterostructures of two-dimensional (2D) crystals have led to the observations of numerous exciting physical phenomena and presented the possibilities for technological applications, which strongly depend on the quality, interface, relative alignment, and interaction of the neighboring 2D crystals. The heterostructures or hybrids of graphene and superconductors offer a very interesting platform to study mesoscopic superconductivity and the interplay of the quantum Hall effect with superconductivity. However, so far the heterostructures of graphene and 2D superconductors are fabricated by stacking, and consequently suffer from random relative alignment, weak interfacial interaction, and unavoidable interface contaminants. Here we report the direct growth of high-quality graphene/2D superconductor (nonlayered ultrathin α-MoC crystal) vertical heterostructures with uniformly well-aligned lattice orientation and strong interface coupling by chemical vapor deposition. In the heterostructure, both graphene and 2D α-MoC crystal show no defect, and the graphene is strongly compressed. Different from the previously reported graphene/superconductor heterostructures or hybrids, the strong interface coupling leads to a phase diagram of superconducting transition with multiple voltage steps being observed in the transition regime. Furthermore, we demonstrate the realization of highly transparent Josephson junction devices based on these strongly coupled high-quality heterostructures, in which a clear magnetic-field-induced Fraunhofer pattern of the critical supercurrent is observed.
二维(2D)晶体的垂直异质结构导致了许多令人兴奋的物理现象的观察,并为技术应用提供了可能性,这些应用强烈依赖于相邻 2D 晶体的质量、界面、相对对准和相互作用。石墨烯和超导体的异质结构或杂化提供了一个非常有趣的平台来研究介观超导和量子霍尔效应与超导的相互作用。然而,到目前为止,石墨烯和 2D 超导体的异质结构是通过堆叠制造的,因此存在随机的相对对准、弱的界面相互作用和不可避免的界面污染物。在这里,我们通过化学气相沉积报告了高质量石墨烯/2D 超导体(非层状超薄α-MoC 晶体)垂直异质结构的直接生长,具有均匀的晶格取向和强的界面耦合。在异质结构中,石墨烯和 2Dα-MoC 晶体都没有缺陷,并且石墨烯被强烈压缩。与以前报道的石墨烯/超导体异质结构或杂化不同,强的界面耦合导致在转变区域中观察到具有多个电压步的超导转变相图。此外,我们基于这些强耦合高质量异质结构实现了高度透明的约瑟夫森结器件,其中观察到临界超导电流的清晰磁场诱导夫琅和费图案。