5 years ago

Selective area grown semiconductor-superconductor hybrids: a basis for topological networks.

A. M. Whiticar, P. Krogstrup, L. Casparis, S. Vaitiekėnas, J. E. Sestoft, C. M. Marcus, S. Marti-Sanchez, J. Arbiol, F. Krizek, M. T. Deng

Majorana zero modes (MZMs) at the ends of one-dimensional topological superconductors are expected to exhibit non-Abelian braiding statistics, providing naturally fault-tolerant qubits. Complex networks for braiding, interference-based topological qubits and topological quantum computing architectures require either branched nanowires or two-dimensional hybrid heterostructures confined by etching and gating, each bringing challenges to scaling. Here, we demonstrate the viability of selective area grown (SAG) Al-InAs hybrid wires that can be patterned into structures with branches and loops, providing a new, flexible platform for topological superconducting networks. We find proximity-induced superconductivity with a hard induced gap and 2e-periodic Coulomb blockade, indicating strongly suppressed quasiparticle poisoning. The observed overshoot of Coulomb blockade peak spacing in a parallel magnetic field is consistent with interacting MZMs, with an amplitude consistent with previous experiments. We also measure electron phase-coherence length and spin-orbit coupling strength via interference measurements in an Aharonov-Bohm ring.

Publisher URL: http://arxiv.org/abs/1802.04210

DOI: arXiv:1802.04210v1

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