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| Funder | European Commission |
|---|---|
| Recipient Organization | Ecole Polytechnique |
| Country | France |
| Start Date | Sep 01, 2021 |
| End Date | Aug 31, 2026 |
| Duration | 1,825 days |
| Number of Grantees | 1 |
| Roles | Coordinator |
| Data Source | European Commission |
| Grant ID | 947707 |
FERMIcQED aims at interfacing novel quantum materials with microwave light at the level of the single photon and fermion.
To achieve this ambitious goal, I plan to use low-dimensional quantum conductors such as carbon nanotubes or semiconducting nanowires combined with state-of-the-art architectures and techniques of circuit Quantum Electrodynamics.
The idea consists in isolating an individual fermionic degree of freedom within a hybrid Josephson junction a quantum dot connected to two superconductors.
Due to the superconducting proximity effect, entangled electron-hole states called the Andreev bound states form in the quantum dot and depend on the superconducting phase difference.
By enclosing the hybrid Josephson junction inside a superconducting photonic cavity, one can couple these fermionic states to microwave light and probe their quantum properties in a well-controlled environment.Specifically, FERMIcQED will tackle three key experiments.
First, we will detect the spin degree of freedom of the Andreev bound states and manipulate it coherently as a superconducting spin qubit.
We will demonstrate strong coupling with cavity photons, which will enable quantum logic operations and long-range qubit interactions.
Second, we will operate the hybrid Josephson junction in the topological regime in order to observe and manipulate Majorana fermions, thus implementing a topological qubit.
At last, we will probe the joint entangled dynamics of bosonic and fermionic modes that coexist in hybrid Josephson junctions and simulate the spin-boson problem.
Ecole Polytechnique
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