Observation of spontaneous magnon emission from boron-vacancy centers in hBN as the dominant low-temperature process, with temperature-driven crossover to thermal regime and potential for correlations at high defect density.
Generating single- and many-body quantum magnonic states
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abstract
The growing interest in quantum magnonics is driving the development of advanced techniques for generating, controlling, and detecting non-classical magnonic states. Here, we explore the potential of an ensemble of solid-state spin defects coupled to a shared magnetic bath as a source of such states. We establish a theoretical framework to characterize the quantum correlations among magnons emitted by the ensemble into the bath and investigate how these correlations depend on experimentally tunable parameters. Our findings show that the emitted magnons retain the quantum correlations inherent to the solid-state emitters, paving the way for the deterministic generation of quantum many-body magnonic states.
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cond-mat.mes-hall 1years
2026 1verdicts
UNVERDICTED 1representative citing papers
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Observation and Control of Spontaneous Magnon Emission from Spin Ensembles in 2D Hexagonal Boron Nitride
Observation of spontaneous magnon emission from boron-vacancy centers in hBN as the dominant low-temperature process, with temperature-driven crossover to thermal regime and potential for correlations at high defect density.