Reservoir engineering using quantum optimal control for qubit reset




Basilewitsch D, Cosco F, Lo Gullo N, Mottonen M, Ala-Nissila T, Koch CP, Maniscalco S

PublisherIOP PUBLISHING LTD

BRISTOL

2019

New Journal of Physics

NEW JOURNAL OF PHYSICS

NEW J PHYS

ARTN 093054

21

12

1367-2630

1367-2630

DOIhttps://doi.org/10.1088/1367-2630/ab41ad

10.1088/1367-2630/ab41ad

https://research.utu.fi/converis/portal/detail/Publication/42664409



We determine how to optimally reset a superconducting qubit which interacts with a thermal environment in such a way that the coupling strength is tunable. Describing the system in terms of a time-local master equation with time-dependent decay rates and using quantum optimal control theory, we identify temporal shapes of tunable level splittings which maximize the efficiency of the reset protocol in terms of duration and error. Time-dependent level splittings imply a modification of the system-environment coupling, varying the decay rates as well as the Lindblad operators. Our approach thus demonstrates efficient reservoir engineering employing quantum optimal control. We find the optimized reset strategy to consist in maximizing the decay rate from one state and driving non-adiabatic population transfer into this strongly decaying state.

Last updated on 2024-26-11 at 23:53