Evidence of topological superconductivity in planar Josephson junctions.

Fornieri, Antonio; Whiticar, Alexander M; Setiawan, F; Portolés, Elías; Drachmann, Asbjørn C C; Keselman, Anna; Gronin, Sergei; Thomas, Candice et al. · Nature · 2019

basic_science · Level V

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Abstract

Majorana zero modes-quasiparticle states localized at the boundaries of topological superconductors-are expected to be ideal building blocks for fault-tolerant quantum computing<sup>1,2</sup>. Several observations of zero-bias conductance peaks measured by tunnelling spectroscopy above a critical magnetic field have been reported as experimental indications of Majorana zero modes in superconductor-semiconductor nanowires<sup>3-8</sup>. On the other hand, two-dimensional systems offer the alternative approach of confining Majorana channels within planar Josephson junctions, in which the phase difference φ between the superconducting leads represents an additional tuning knob that is predicted to drive the system into the topological phase at lower magnetic fields than for a system without phase bias<sup>9,10</sup>. Here we report the observation of phase-dependent zero-bias conductance peaks measured by tunnelling spectroscopy at the end of Josephson junctions realized on a heterostructure consisting of aluminium on indium arsenide. Biasing the junction to φ ≈ π reduces the critical field at which the zero-bias peak appears, with respect to φ = 0. The phase and magnetic-field dependence of the zero-energy states is consistent with a model of Majorana zero modes in finite-size Josephson junctions. As well as providing experimental evidence of phase-tuned topological superconductivity, our devices are compatible with superconducting quantum electrodynamics architectures<sup>11</sup> and are scalable to the complex geometries needed for topological quantum computing<sup>9,12,13</sup>.