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Hauptverfasser: Liu, Zeng-Xing, Wu, Yan-Hua, Sun, Jing-Hua
Format: Preprint
Veröffentlicht: 2025
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Online-Zugang:https://arxiv.org/abs/2504.15559
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author Liu, Zeng-Xing
Wu, Yan-Hua
Sun, Jing-Hua
author_facet Liu, Zeng-Xing
Wu, Yan-Hua
Sun, Jing-Hua
contents We investigate the magnon blockade effect in a quantum magnonic system operating in the strong dispersive regime, where a superconducting qubit interacts dispersively with a magnonic mode in a yttrium-iron-garnet sphere.By solving the quantum master equation, we demonstrate that the magnon blockade, characterized by the second-order correlation function $g^{(2)}(0) \rightarrow 0.04$, emerges under optimal dispersive coupling and driving detuning.The mechanism is attributed to suppressed two-magnon transitions as a result of qubit-induced anharmonicity. Notably, our study identifies the critical role of dispersive interaction strength and environmental temperature, showing that magnon blockade remains observable under experimentally achievable cryogenic conditions.This work extends the magnon blockade effect into the dispersive regime, offering a robust platform for single-magnon manipulation and advancing applications in quantum sensing and information processing.
format Preprint
id arxiv_https___arxiv_org_abs_2504_15559
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Dispersive-induced magnon blockade with a superconducting qubit
Liu, Zeng-Xing
Wu, Yan-Hua
Sun, Jing-Hua
Quantum Physics
We investigate the magnon blockade effect in a quantum magnonic system operating in the strong dispersive regime, where a superconducting qubit interacts dispersively with a magnonic mode in a yttrium-iron-garnet sphere.By solving the quantum master equation, we demonstrate that the magnon blockade, characterized by the second-order correlation function $g^{(2)}(0) \rightarrow 0.04$, emerges under optimal dispersive coupling and driving detuning.The mechanism is attributed to suppressed two-magnon transitions as a result of qubit-induced anharmonicity. Notably, our study identifies the critical role of dispersive interaction strength and environmental temperature, showing that magnon blockade remains observable under experimentally achievable cryogenic conditions.This work extends the magnon blockade effect into the dispersive regime, offering a robust platform for single-magnon manipulation and advancing applications in quantum sensing and information processing.
title Dispersive-induced magnon blockade with a superconducting qubit
topic Quantum Physics
url https://arxiv.org/abs/2504.15559