Observation of the axion quasiparticle in 2D MnBi<sub>2</sub>Te<sub>4</sub>.
basic_science · Level V
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- Record sourced from PubMed, PMID 40240597.
- Also identified by DOI 10.1038/s41586-025-08862-x.
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Abstract
The axion is a hypothetical fundamental particle that is conjectured to correspond to the coherent oscillation of the θ field in quantum chromodynamics<sup>1,2</sup>. Its existence would solve multiple fundamental questions, including the strong CP problem of quantum chromodynamics and dark matter, but the axion has never been detected. Electrodynamics of condensed-matter systems can also give rise to a similar θ, so far studied as a static, quantized value to characterize the topology of materials<sup>3-5</sup>. Coherent oscillation of θ in condensed matter has been proposed to lead to physics directly analogous to the high-energy axion particle-the dynamical axion quasiparticle (DAQ)<sup>6-23</sup>. Here we report the observation of the DAQ in MnBi<sub>2</sub>Te<sub>4</sub>. By combining a two-dimensional electronic device with ultrafast pump-probe optics, we observe a coherent oscillation of θ at about 44 gigahertz, which is uniquely induced by its out-of-phase antiferromagnetic magnon. This represents direct evidence for the presence of the DAQ, which in two-dimensional MnBi<sub>2</sub>Te<sub>4</sub> is found to arise from the magnon-induced coherent modulation of the Berry curvature. The DAQ also has implications in light-matter interaction and coherent antiferromagnetic spintronics<sup>24</sup>, as it might lead to axion polaritons and electric control of ultrafast spin polarization<sup>6,15-20</sup>. Finally, the DAQ could be used to detect axion particles<sup>21-23</sup>. We estimate the detection frequency range and sensitivity in the millielectronvolt regime, which has so far been poorly explored.