Kavli Institute of Nanoscience, Delft University of Technology , 2600 GA Delft, The Netherlands.
Institute of Science and Technology Austria , Am Campus 1, A-3400 Klosterneuburg, Austria.
Nano Lett. 2017 Jun 14;17(6):3396-3401. doi: 10.1021/acs.nanolett.7b00097. Epub 2017 May 11.
The current-phase relation (CPR) of a Josephson junction (JJ) determines how the supercurrent evolves with the superconducting phase difference across the junction. Knowledge of the CPR is essential in order to understand the response of a JJ to various external parameters. Despite the rising interest in ultraclean encapsulated graphene JJs, the CPR of such junctions remains unknown. Here, we use a fully gate-tunable graphene superconducting quantum intereference device (SQUID) to determine the CPR of ballistic graphene JJs. Each of the two JJs in the SQUID is made with graphene encapsulated in hexagonal boron nitride. By independently controlling the critical current of the JJs, we can operate the SQUID either in a symmetric or asymmetric configuration. The highly asymmetric SQUID allows us to phase-bias one of the JJs and thereby directly obtain its CPR. The CPR is found to be skewed, deviating significantly from a sinusoidal form. The skewness can be tuned with the gate voltage and oscillates in antiphase with Fabry-Pérot resistance oscillations of the ballistic graphene cavity. We compare our experiments with tight-binding calculations that include realistic graphene-superconductor interfaces and find a good qualitative agreement.
约瑟夫森结(JJ)的当前相位关系(CPR)决定了超导电流如何随结两端的超导相位差演变。为了理解 JJ 对各种外部参数的响应,了解 CPR 是至关重要的。尽管人们对超洁净封装石墨烯 JJ 越来越感兴趣,但此类 JJ 的 CPR 仍然未知。在这里,我们使用完全栅极可调谐的石墨烯超导量子干涉器件(SQUID)来确定弹道石墨烯 JJ 的 CPR。SQUID 中的两个 JJ 中的每一个都是用封装在六方氮化硼中的石墨烯制成的。通过独立控制 JJ 的临界电流,我们可以使 SQUID 处于对称或非对称配置。高度非对称的 SQUID 允许我们对一个 JJ 进行相位偏置,从而直接获得其 CPR。发现 CPR 是倾斜的,明显偏离正弦形式。门电压可以调节倾斜度,并与弹道石墨烯腔的 Fabry-Pérot 电阻振荡反相振荡。我们将实验与包括实际石墨烯-超导界面的紧束缚计算进行了比较,并发现了很好的定性一致性。