Thin transition metal dichalcogenides sustain superconductivity at large in-plane magnetic fields due to Ising spin-orbit protection, which locks their spins in an out-of-plane orientation. Here we use thin NbSe2 as superconducting electrodes laterally coupled to graphene, making a planar, all van der Waals two-dimensional Josephson junction (2DJJ). We map out the behavior of these novel devices with respect to temperature, gate voltage, and both out-of-plane and in-plane magnetic fields. Notably, the 2DJJs sustain supercurrent up to H∥ as high as 8.5 T, where the Zeeman energy EZ rivals the Thouless energy ETh, a regime hitherto inaccessible in graphene. As the parallel magnetic field H∥ increases, the 2DJJ's critical current is suppressed and in a few cases undergoes suppression and recovery. We explore the behavior in H∥ by considering theoretically two effects: a 0-π transition induced by tuning of the Zeeman energy and the unique effect of ripples in an atomically thin layer which create a small spatially varying perpendicular component of the field. The 2DJJs have potential utility as flexible probes for two-dimensional superconductivity in a variety of materials and introduce high H∥ as a newly accessible experimental knob.
@article{arxiv.2106.11662,
title = {Planar graphene-NbSe$_2$ Josephson junctions in a parallel magnetic field},
author = {Tom Dvir and Ayelet Zalic and Eirik Holm Fyhn and Morten Amundsen and Takashi Taniguchi and Kenji Watanabe and Jacob Linder and Hadar Steinberg},
journal= {arXiv preprint arXiv:2106.11662},
year = {2021}
}