MaGnum · Majorana bound states in Ge/SiGe heterostructures
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2019-04-01 → 2021-03-31
- EU contribution
- €174,167
- Participants
- 1
- Scheme
- MSCA-IF
Lines connect the coordinator with its partners.
Results in brief
Majorana bound states in Ge/SiGe heterostructures
Problem/issue being addressed: Each particle has its antiparticle, and upon bringing them in close vicinity, they annihilate (they disappear). An interesting question is therefore: what happens if a particle is its own antiparticle? Any such particle can only be created as a pair and whenever one disappears, the other must disappear as well. In this sense, a pair of such particles are very robust if they are brought far apart from each other: no local perturbation can destroy it since, due to its locality, it does not affect its pair. Although such particles have not been reported, certain excitations in semiconductors provide the same features: creating the excitation occurs through the same operator as annihilating the excitation. Therefore, these excitations can also only exist in pairs, and creating them spatially separated protects them from local perturbations. Such semiconductor excitations are called Majorana fermions. Importance for society Once created in low-dimensional semiconductors, moving these Majorana fermions with respect to each other follows different laws than the three-dimensional world suggests. For example moving one particle around the other, in a two-dimensional world, is related to a phase acquisition. While this feature is in itself intriguing, and even more, it is also useful: so-called braiding (i.e. moving around with respect to each other) of Majorana fermions can be used to perform simple quantum operations. Eventually, Majorana fermions may be important building blocks for quantum computers. Overall objectives Majorana fermions are predicted to emerge at the ends of a one-dimensional semiconductor proximitized to a superconductor if the semiconductor hosts a large spin-orbit field perpendicular to the wire and it is subject to a Zeeman magnetic field perpendicular to the spin-orbit field. While these conditions have been fulfilled and some evidence for Majorana bound states (MBS) have been provided, several open questions remain. Importantly, most studies have been performed in one kind of material system, namely InAs. However, holes in germanium are a promising alternative. The objectives of this project are demonstration of controlled confinement of hole states (which is used to build a one-dimensional wire), observation of large spin-orbit interaction, and development of high-transparency superconductor-germanium contacts.
Data: CORDIS, © European Union
Project objective
Each particle has its antiparticle, and upon bringing them in close vicinity, they annihilate (they disappear). A fundamental question arises: what happens if a particle is its own antiparticle? Ettore Majorana predicted their existence and evidence has been put forward for the existence of such a state of matter in the form of quasiparticle excitations in hybrid semiconductor-superconductor devices. Research activites so far has concentrated on InAs nanowires, planar InAs and InSb nanowires. Theory suggests to look for Majorana bound states (MBS) in Germanium and I propose to use a novel yet promising material system, namely a Germanium/Silicon-Germanium heterostructure, to provide evidence for the topological state of matter leading to Majorana bound states (MBS). Using Ge/SiGe brings the advantage of a long mean free path, which will allow for a larger spatial separation of the MBS and facilitate the long anticipated but yet elusive detection of correlation of two MBS. Additionally, the planar geometry brings the possibility to couple the MBS to their environment, which will be important for their usage as topologically protected quantum bits for quantum computation. I propose to show step-by-step the ingredients necessary for a topological phase transition resulting in MBS. In particular, I will follow these steps: I will collaborate with G. Isella's group to develop a highly mobile two-dimensional hole gas and make it accessible for magneto-transport measurements. I will further confine the holes into a one-dimensional wire with tunable tunneling barriers at each end. I will test the presence of a strong spin-orbit interaction by measuring helical transport. I will induce superconducting order by coupling the wire to NbTiN contacts. Finally, I will test the presence of MBS with tunneling conductance measurements and use a proper geometry to show evidence of the correlation of two MBS at each end of the wire.
Original text from CORDIS.
Participants
- INSTITUTE OF SCIENCE AND TECHNOLOGY AUSTRIA · KlosterneuburgCoordinatorAustria
Links
Data: CORDIS, © European Union
