Intrinsic leakage of the Josephson flux qubit and breakdown of the two-level approximation for strong driving
Alejandro Ferron, Daniel Dominguez (Centro Atomico Bariloche)

TL;DR
This paper investigates intrinsic leakage in Josephson flux qubits during quantum operations, revealing how higher energy levels affect qubit fidelity and identifying optimal parameters to minimize leakage.
Contribution
It provides a perturbative analysis and numerical simulations of leakage effects, establishing the breakdown point of the two-level approximation under strong driving conditions.
Findings
Leakage is quadratic in pulse intensity for small $f_p$
Two-level approximation breaks down above a certain $f_p$
Optimal junction energy ratio $eta ightarrow 0.85$ minimizes leakage
Abstract
Solid state devices for quantum bit computation (qubits) are not perfect isolated two-level systems, since additional higher energy levels always exist. One example is the Josephson flux qubit, which consists on a mesoscopic SQUID loop with three Josephson junctions operated at or near a magnetic flux of half quantum. We study intrinsic leakage effects, i.e., direct transitions from the allowed qubit states to higher excited states of the system during the application of pulses for quantum computation operations. The system is started in the ground state and rf- magnetic field pulses are applied at the qubit resonant frequency with pulse intensity . A perturbative calculation of the average leakage for small is performed for this case, obtaining that the leakage is quadratic in , and that it depends mainly on the matrix elements of the supercurrent. Numerical simulations…
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