{"id":720841,"date":"2021-01-25T16:18:21","date_gmt":"2021-01-26T00:18:21","guid":{"rendered":"https:\/\/www.microsoft.com\/en-us\/research\/?post_type=msr-research-item&p=720841"},"modified":"2021-01-25T16:18:21","modified_gmt":"2021-01-26T00:18:21","slug":"spectral-response-of-josephson-junctions-with-low-energy-quasiparticles","status":"publish","type":"msr-research-item","link":"https:\/\/www.microsoft.com\/en-us\/research\/publication\/spectral-response-of-josephson-junctions-with-low-energy-quasiparticles\/","title":{"rendered":"Spectral response of Josephson junctions with low-energy quasiparticles"},"content":{"rendered":"

We study nanowire-based Josephson junctions shunted by a capacitor and take into account the presence of low-energy quasiparticle excitations. These are treated by extending conventional models used to describe superconducting qubits to include the coherent coupling between fermionic quasiparticles, in particular the Majorana zero modes that emerge in topological superconductors, and the plasma mode of the junction. Using accurate, unbiased matrix-product state techniques, we compute the energy spectrum and response function of the system across the topological phase transition. Furthermore, we develop a perturbative approach, valid in the harmonic limit with small charging energy, illustrating how the presence of low-energy quasiparticles affects the spectrum and response of the junction. Our results are of direct interest to on-going experimental investigations of nanowire-based superconducting qubits.<\/p>\n","protected":false},"excerpt":{"rendered":"

We study nanowire-based Josephson junctions shunted by a capacitor and take into account the presence of low-energy quasiparticle excitations. These are treated by extending conventional models used to describe superconducting qubits to include the coherent coupling between fermionic quasiparticles, in particular the Majorana zero modes that emerge in topological superconductors, and the plasma mode of 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