We show that a topological phase supporting Majorana fermions can form in a two-dimensional electron gas (2DEG) adjacent to an interdigitated superconductor-ferromagnet structure. An advantage of this setup is that the 2DEG can induce the required Zeeman splitting and superconductivity from a single interface, allowing one to utilize a wide class of 2DEGs including the surface states of bulk InAs. We demonstrate that the interdigitated device supports a robust topological phase when the finger spacing λ is smaller than half of the Fermi wavelength λ_F. In this regime, the electrons effectively see a “smeared” Zeeman splitting and pairing field despite the interdigitation. The topological phase survives even in the opposite limit λ>λ_F/2, al...
The 1937 theoretical discovery of Majorana fermions—whose defining property is that they are their o...
International audienceJust like insulators can host topological Dirac states at their edges, superco...
A fundamental obstacle for achieving quantum computation is local decoherence. One way to circumvent...
Topological superconductors can support localized Majorana states at their boundaries(1-5). These qu...
Recently, topological superconductors based on Josephson junctions in two-dimensional electron gases...
Topological insulator edges and spin-orbit-coupled quantum wires in proximity to s-wave superconduct...
We model theoretically a two-dimensional electron gas (2DEG) covered by a superconductor and demonst...
It has been proposed that localized zero-energy Majorana states can be realized in a two-dimensional...
We study the localization and oscillation properties of the Majorana fermions that arise in a two-di...
We propose an easy-to-build easy-to-detect scheme for realizing Majorana fermions at the ends of a c...
Majorana fermions are predicted to localize at the edge of a topological superconductor, a state of ...
Topological superfluids are recently discovered quantum matter that hosts topologically protected ga...
We propose a realization of chiral Majorana modes propagating on the hinges of a 3D antiferromagneti...
We study a realization of a 1D chain of Majorana bound states at the interfaces between alternating ...
We study phase-controlled planar Josephson junction comprising a two-dimensional electron gas with s...
The 1937 theoretical discovery of Majorana fermions—whose defining property is that they are their o...
International audienceJust like insulators can host topological Dirac states at their edges, superco...
A fundamental obstacle for achieving quantum computation is local decoherence. One way to circumvent...
Topological superconductors can support localized Majorana states at their boundaries(1-5). These qu...
Recently, topological superconductors based on Josephson junctions in two-dimensional electron gases...
Topological insulator edges and spin-orbit-coupled quantum wires in proximity to s-wave superconduct...
We model theoretically a two-dimensional electron gas (2DEG) covered by a superconductor and demonst...
It has been proposed that localized zero-energy Majorana states can be realized in a two-dimensional...
We study the localization and oscillation properties of the Majorana fermions that arise in a two-di...
We propose an easy-to-build easy-to-detect scheme for realizing Majorana fermions at the ends of a c...
Majorana fermions are predicted to localize at the edge of a topological superconductor, a state of ...
Topological superfluids are recently discovered quantum matter that hosts topologically protected ga...
We propose a realization of chiral Majorana modes propagating on the hinges of a 3D antiferromagneti...
We study a realization of a 1D chain of Majorana bound states at the interfaces between alternating ...
We study phase-controlled planar Josephson junction comprising a two-dimensional electron gas with s...
The 1937 theoretical discovery of Majorana fermions—whose defining property is that they are their o...
International audienceJust like insulators can host topological Dirac states at their edges, superco...
A fundamental obstacle for achieving quantum computation is local decoherence. One way to circumvent...