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Coherent manipulation of Andreev states in superconducting atomic contacts
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Coherent manipulation of Andreev states in superconducting atomic contacts
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Coherent control of quantum states has been demonstrated in a variety of superconducting devices. In all these devices, the variables that are manipulated are collective electromagnetic degrees of freedom: charge, superconducting phase, or flux. Here, we demonstrate the coherent manipulation of a quantum system based on Andreev bound states, which are microscopic quasiparticle states inherent to superconducting weak links. Using a circuit quantum electrodynamics setup we perform single-shot readout of this "Andreev qubit". We determine its excited state lifetime and coherence time to be in the microsecond range. Quantum jumps and parity switchings are observed in continuous measurements. In addition to possible quantum information applications, such Andreev qubits are a testbed for the physics of single elementary excitations in superconductors.
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Cited by 1 Pith paper
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Fermion parity of an Andreev molecule probed by nonlocal Josephson effect
In a carbon nanotube Andreev molecule, the phase of the nonlocal Josephson current flips by π when the global fermion parity of the molecular ground state changes.
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