2009Journal of the Optical Society of America BRequires access

Distributed CNOT gate via quantum Zeno dynamics

Xiao‐Qiang Shao, Hong‐Fu Wang, Li Chen, Shou Zhang, Yongfang Zhao, Kyu-Hwang Yeon

Open publisher page 21 citations

Abstract

We show how the quantum Zeno effect can be exploited to implement the CNOT gate in two separated cavities with two atomic four-level tripod systems. In respective subspaces of the total Hilbert space, the evolution of the quantum system exhibits different dynamical properties due to the continuous coupling between atoms and cavities. The strictly numerical simulation reveals that a high average gate fidelity can be obtained in the presence of decoherence.

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What this paper is about

We show how the quantum Zeno effect can be exploited to implement the CNOT gate in two separated cavities with two atomic four-level tripod systems. In respective subspaces of the total Hilbert space, the evolution of the quantum system exhibits different dynamical properties due to the continuous coupling between atoms and cavities. The strictly numerical simulation reveals that a high average gate fidelity can be obtained in the presence of decoherence.

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OpenAlex reports 21 citations for this work. Citation counts describe recorded attention and do not establish research quality.

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Available abstract

We show how the quantum Zeno effect can be exploited to implement the CNOT gate in two separated cavities with two atomic four-level tripod systems. In respective subspaces of the total Hilbert space, the evolution of the quantum system exhibits different dynamical properties due to the continuous coupling between atoms and cavities. The strictly numerical simulation reveals that a high average gate fidelity can be obtained in the presence of decoherence.

Key concepts: Controlled NOT gate, Quantum Zeno effect, Decoherence-free subspaces, Quantum decoherence, Hilbert space, Tripod (photography), Quantum mechanics, Quantum gate

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