We propose a tune-free scheme to realize Kramers pairs of Majorana bound states in recently discovered higher-order topological insulators (HOTIs). We show that, by bringing two hinges of a HOTI into the proximity of an s-wave superconductor, the competition between local and crossed Andreev pairing leads to the formation of Majorana Kramers pairs, when the latter pairing dominates over the former. We demonstrate that such a topological superconductivity is stabilized by moderate electron-electron interactions. The proposed setup avoids the application of a magnetic field or local voltage gates, and requires weaker interactions compared with nonhelical nanowires
We study two microscopic models of topological insulators in contact with an s-wave superconductor. ...
To guide the search for the Majorana fermion, we theoretically study superconductor/topological-insu...
Much of modernmesoscopic physics focuses on studying hybrid superconducting structures: systems that...
We propose a scheme based on topological insulators to generate Kramers pairs of Majorana fermions o...
We analyze the effects of electron-electron interactions and disorder on a Rashba double-nanowire se...
We consider a three-dimensional topological insulator (TI) wire with a nonuniform chemical potential...
To guide experimental work on the search for Majorana zero-energy modes, we calculate the supercondu...
The modern understanding of topological insulators is based on Wannier obstructions in position spac...
We consider one-dimensional topological insulators hosting fractionally charged midgap states in the...
We study the topological phase diagram of a setup composed of two nanowires with strong Rashba spin-...
We show that interactions can drive a class of higher order topological superconductors (HOTSCs) int...
Motivated by the recent experimental progress in the search for Majorana fermions, we identify signa...
We study two microscopic models of topological insulators in contact with an s-wave superconductor. ...
| openaire: EC/H2020/743884/EU//DiracEntanglerConfinement at the helical edge of a topological insul...
We study proximity-induced superconductivity on the surface of a topological insulator (TI), focusin...
We study two microscopic models of topological insulators in contact with an s-wave superconductor. ...
To guide the search for the Majorana fermion, we theoretically study superconductor/topological-insu...
Much of modernmesoscopic physics focuses on studying hybrid superconducting structures: systems that...
We propose a scheme based on topological insulators to generate Kramers pairs of Majorana fermions o...
We analyze the effects of electron-electron interactions and disorder on a Rashba double-nanowire se...
We consider a three-dimensional topological insulator (TI) wire with a nonuniform chemical potential...
To guide experimental work on the search for Majorana zero-energy modes, we calculate the supercondu...
The modern understanding of topological insulators is based on Wannier obstructions in position spac...
We consider one-dimensional topological insulators hosting fractionally charged midgap states in the...
We study the topological phase diagram of a setup composed of two nanowires with strong Rashba spin-...
We show that interactions can drive a class of higher order topological superconductors (HOTSCs) int...
Motivated by the recent experimental progress in the search for Majorana fermions, we identify signa...
We study two microscopic models of topological insulators in contact with an s-wave superconductor. ...
| openaire: EC/H2020/743884/EU//DiracEntanglerConfinement at the helical edge of a topological insul...
We study proximity-induced superconductivity on the surface of a topological insulator (TI), focusin...
We study two microscopic models of topological insulators in contact with an s-wave superconductor. ...
To guide the search for the Majorana fermion, we theoretically study superconductor/topological-insu...
Much of modernmesoscopic physics focuses on studying hybrid superconducting structures: systems that...