Author:
Wu Qiaolin,Xing Jun,Yin Hongda
Abstract
AbstractRydberg atoms have exhibited excellent potentials to become a competent platform of implementing quantum computation, which demands to execute various quantum gates fast and faithfully. We propose a dynamic mechanism of two interacting Rydberg atoms for implementing a high-fidelity SWAP gate on ground-state manifolds, where the amplitude modulation and soft quantum control of lasers driving ground-Rydberg state transitions are elaborately matched with the interaction strength between atoms so as to engineer the desired transformation of atomic states. Compared with the recent Rydberg-atom SWAP gate scheme, the present one possesses the undegraded first-order dynamics and shows an interference-induced suppression of the doubly-excited Rydberg state, so it costs shorter gate time and exhibits greater robustness against atomic decay and deviations in the interatomic separation (interaction strengths). The present mechanism of implementing a SWAP gate on interacting Rydberg atoms could facilitate high-fidelity demonstrations of atomic ground state transformation and further exploitation of peculiar dynamics.
Funder
Natural Science Foundation of Xinjiang Uygur Autonomous Region
Tianshan Innovation Team Program of Xinjiang Uygur Autonomous Region
Doctoral Program of Tian Chi Foundation of Xinjiang Uygur Autonomous Region of China
Doctoral Program Foundation of Xinjiang University, China
Ph.D.Startup Program of Bohai University
Publisher
Springer Science and Business Media LLC