Optimal configurations for normal-metal traps in transmon qubits
arXiv:1706.09336 · doi:10.1103/PhysRevApplied.8.064028
Abstract
Controlling quasiparticle dynamics can improve the performance of superconducting devices. For example, it has been demonstrated effective in increasing lifetime and stability of superconducting qubits. Here we study how to optimize the placement of normal-metal traps in transmon-type qubits. When the trap size increases beyond a certain characteristic length, the details of the geometry and trap position, and even the number of traps, become important. We discuss for some experimentally relevant examples how to shorten the decay time of the excess quasiparticle density. Moreover, we show that a trap in the vicinity of a Josephson junction can reduce the steady-state quasiparticle density near that junction, thus suppressing the quasiparticle-induced relaxation rate of the qubit. Such a trap also reduces the impact of fluctuations in the generation rate of quasiparticles, rendering the qubit more stable.
16 pages, 7 figures; to appear in Phys. Rev. Applied
References in corpus (9)
- Majorana qubit decoherence by quasiparticle poisoning
- Measurement and Control of Quasiparticle Dynamics in a Superconducting Qubit
- Quasiparticle relaxation of superconducting qubits in the presence of flux
- Suppressing relaxation in superconducting qubits by quasiparticle pumping
- Non-Poissonian Quantum Jumps of a Fluxonium Qubit due to Quasiparticle Excitations
- Trapping a single vortex and reducing quasiparticles in a superconducting resonator
- Kinetics of non-equilibrium quasiparticle tunneling in superconducting charge qubits
- Quasiparticle decay rate of Josephson charge qubit oscillations
- A quantitative study of quasiparticle traps using the single-Cooper-pair-transistor