State-independent geometric quantum gates via nonadiabatic and noncyclic evolution

Fuente: arXiv
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Main Authors: Chen, Yue, Ji, Li-Na, Xue, Zheng-Yuan, Liang, Yan
Format: Preprint
Published: 2023
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author Chen, Yue
Ji, Li-Na
Xue, Zheng-Yuan
Liang, Yan
author_facet Chen, Yue
Ji, Li-Na
Xue, Zheng-Yuan
Liang, Yan
contents Geometric phases are robust to local noises and the nonadiabatic ones can reduce the evolution time, thus nonadiabatic geometric gates have strong robustness and can approach high fidelity. However, the advantage of geometric phase has not being fully explored in previous investigations. Here, we propose a scheme for universal quantum gates with pure nonadiabatic and noncyclic geometric phases from smooth evolution paths. In our scheme, only geometric phase can be accumulated in a fast way, and thus it not only fully utilizes the local noise resistant property of geometric phase but also reduces the difficulty in experimental realization. Numerical results show that the implemented geometric gates have stronger robustness than dynamical gates and the geometric scheme with cyclic path. Furthermore, we propose to construct universal quantum gate on superconducting circuits, with the fidelities of single-qubit gate and nontrivial two-qubit gate can achieve $99.97\%$ and $99.87\%$, respectively. Therefore, these high-fidelity quantum gates are promising for large-scale fault-tolerant quantum computation.
format Preprint
id arxiv_https___arxiv_org_abs_2309_01323
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle State-independent geometric quantum gates via nonadiabatic and noncyclic evolution
Chen, Yue
Ji, Li-Na
Xue, Zheng-Yuan
Liang, Yan
Quantum Physics
Geometric phases are robust to local noises and the nonadiabatic ones can reduce the evolution time, thus nonadiabatic geometric gates have strong robustness and can approach high fidelity. However, the advantage of geometric phase has not being fully explored in previous investigations. Here, we propose a scheme for universal quantum gates with pure nonadiabatic and noncyclic geometric phases from smooth evolution paths. In our scheme, only geometric phase can be accumulated in a fast way, and thus it not only fully utilizes the local noise resistant property of geometric phase but also reduces the difficulty in experimental realization. Numerical results show that the implemented geometric gates have stronger robustness than dynamical gates and the geometric scheme with cyclic path. Furthermore, we propose to construct universal quantum gate on superconducting circuits, with the fidelities of single-qubit gate and nontrivial two-qubit gate can achieve $99.97\%$ and $99.87\%$, respectively. Therefore, these high-fidelity quantum gates are promising for large-scale fault-tolerant quantum computation.
title State-independent geometric quantum gates via nonadiabatic and noncyclic evolution
topic Quantum Physics
url https://arxiv.org/abs/2309.01323