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Dynamical-corrected nonadiabatic geometric quantum computation

delete2023-07-14
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PRE
AI
丁成赟 cover
丁成赟 (Cheng-Yun Ding)
L
Li Chen
章礼华 (Lihua Zhang) *
薛正远 cover
薛正远 (Zheng‐Yuan Xue) *
DOI:10.1007/s11467-023-1322-2delete
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Abstract

Abstract

En 中文
Recently, nonadiabatic geometric quantum computation has been received great attentions, due to its fast operation and intrinsic error resilience. However, compared with the corresponding dynamical gates, the robustness of implemented nonadiabatic geometric gates based on the conventional single-loop geometric scheme still has the same order of magnitude due to the requirement of strict multi-segment geometric controls, and the inherent geometric fault-tolerance characteristic is not fully explored. Here, we present an effective geometric scheme combined with a general dynamical-corrected technique, with which the super-robust nonadiabatic geometric quantum gates can be constructed over the conventional single-loop geometric and two-loop composite-pulse geometric strategies, in terms of resisting the systematic error, i.e., s(x) error. In addition, combined with the decoherence-free subspace (DFS) coding, the resulting geometric gates can also effectively suppress the s(z) error caused by the collective dephasing. Notably, our protocol is a general one with simple experimental setups, which can be potentially implemented in different quantum systems, such as Rydberg atoms, trapped ions and superconducting qubits. These results indicate that our scheme represents a promising way to explore large-scale fault-tolerant quantum computation.
Keywords:
geometric phases
dynamical-corrected gates
fault-tolerant quantum computation

Journal

Frontiers of Physics cover
Frontiers of Physics
IF:
5.3
Papers:
1.4K
Citations:
3.7K

Organization

A
Anqing Normal University
Scholars:
1.4K
Papers: 902
Citations: 1.0K
S
south china normal university
Scholars:
2.0W
Papers: 1.3W
Citations: 13