Super MagneFiQuE · Superconducting magnetic-field compatible quantum electronics
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2015-10-01 → 2018-09-30
- EU contribution
- €260,930
- Participants
- 2
- Scheme
- MSCA-IF
Lines connect the coordinator with its partners.
Results in brief
Superconducting magnetic-field compatible quantum electronics
In superconducting quantum electronics macroscopic degrees of freedom like currents and voltages can exist in a quantum mechanical superposition. This macroscopic quantum coherence has led to the development of circuits behaving as atoms. An exciting new field of research is circuit-based quantum electrodynamics (cQED), in which these artificial atoms are placed in microwave cavities to perform quantum optics in the microwave regime. This cQED architecture is arguably the most promising platform for processing quantum information and realizing a full-scale quantum computer. However, a major draw-back of these circuits, which are made from aluminum films, is that superconductivity is lost upon applying strong magnetic fields. This limitation poses a fundamental obstacle to interfacing superconducting circuits with other systems that require these strong magnetic fields. Forming such hybrid systems, in which the short-comings of one system are compensated by another, can be used to develop new technologies, such as long term quantum memories for superconducting qubits using solid-state spin ensembles, or a topological quantum computer by exploiting the non-Abelian braiding statistics obeyed by Majorana Fermions. The main goal of this proposal was to realize magnetic-field compatible superconducting quantum circuits for the cQED architecture. To achieve this goal, I used newly developed semiconducting nanowire Josephson junctions (NW JJs) as the basic non-linear element. These elements are made entirely from magnetic field compatible materials, such as the high-field superconductor Niobium Titanium Nitride (NbTiN). Preliminary work [1] has shown that these junctions exhibit more dissipation than their aluminium counterparts. A possible cause for this excess dissipation was the presence of sub-gap quasiparticle (QP) states in the superconductor and/or excess QPs present in the circuit. The objective was to understand the role of QP's in super-semi hybrid circuits and the removal of excess QPs as source for dissipation of microwaves and poisoning, allowing the demonstration of macroscopic quantum coherence of a superconducting circuit in a strong magnetic field. [1] G.de Lange et al. Physical Review Letters 115, 127002 (2015). The project is terminated earlier because the fellow has received and accepted an offer to work at the newly established fundamental research lab of Microsoft in Delft, the Netherlands. The fellow is very grateful that he was given the opportunity by the EU to work as a Marie Curie postdoc. It has been instrumental in acquiring his new position, which allows him to continue high-impact fundamental academic research in a senior position that bridges both academia and industry.
Data: CORDIS, © European Union
Project objective
In superconducting quantum electronics, or superquantronics, macroscopic degrees of freedom, like currents and voltages, can exist in a quantum mechanical superposition. This macroscopic quantum coherence has led to the development of circuits behaving as atoms. An exciting new field of research is circuit-based quantum electrodynamics (cQED), in which these artificial atoms are placed in cavities to perform quantum optics in the microwave regime. This cQED architecture is arguably the most promising platform for realizing a full-scale quantum computer. However, a major draw-back of the circuits used for cQED today, which contain aluminum films, is that superconductivity is lost upon applying strong magnetic fields. This limitation poses a fundamental obstacle to interfacing superquantronic circuits with other quantum systems that rely on these strong magnetic fields for their operation. By forming such hybrid systems, new technologies can be developed, such as long term quantum memories for superconducting qubits using highly coherent solid-state spin ensembles, or a topological quantum computer using Majorana Fermions.The goal of this proposal is to realize magnetic-field compatible superquantronic circuits for the cQED architecture.A promising new approach is to combine magnetic-field compatible superconducting materials with semiconducting nanowires to build new circuit elements. We plan to develop circuits using these new elements and demonstrate the coherent operation of an artificial atom in cQED in the presence of a strong magnetic field. The magnetic-field compatible superquantronic circuits we will develop, provide a unique platform to create and study new quantum devices. This fellowship, along with his previous research experience with a wide range of quantum systems, will allow the applicant to define new research directions in fundamental physics and experimental quantum information science, by developing new hybrid quantum systems.
Original text from CORDIS.
Participants
- TECHNISCHE UNIVERSITEIT DELFT · DelftCoordinatorNetherlands
- YALE UNIVERSITY · New HavenUnited States
Links
Data: CORDIS, © European Union
