Litcius/Paper detail

Robust Mølmer-Sørensen gate for neutral atoms using rapid adiabatic Rydberg dressing

Anupam Mitra, Michael J. Martin, Grant Biedermann, Alberto M. Marino, Pablo M. Poggi, Ivan Deutsch

2020Physical review. A/Physical review, A77 citationsDOIOpen Access PDF

Abstract

The Rydberg blockade mechanism is now routinely considered for entangling qubits encoded in clock states of neutral atoms. Challenges towards implementing entangling gates with high fidelity include errors due to thermal motion of atoms, laser amplitude inhomogeneities, and imperfect Rydberg blockade. We show that adiabatic rapid passage by Rydberg dressing provides a mechanism for implementing two-qubit entangling gates by accumulating phases that are robust to these imperfections. We find that the typical error in implementing a two-qubit gate, such as the controlled phase gate, is dominated by errors in the single-atom light shift, and that this can be easily corrected using adiabatic dressing interleaved with a simple spin echo sequence. This results in a two-qubit M\o{}lmer-S\o{}rensen gate. A gate fidelity $\ensuremath{\sim}0.995$ is achievable with modest experimental parameters and a path to higher fidelities is possible for Rydberg states in atoms with a stronger blockade, longer lifetimes, and larger Rabi frequencies.

Topics & Concepts

Rydberg formulaQubitAdiabatic processRydberg atomPhysicsAtomic physicsEnergetic neutral atomAtom (system on chip)Quantum mechanicsComputer scienceIonIonizationQuantumEmbedded systemCold Atom Physics and Bose-Einstein CondensatesAdvanced Frequency and Time StandardsAtomic and Subatomic Physics Research