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Searching for ultralight dark matter conversion in solar corona using Low Frequency Array data

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  • Haipeng An

    (Tsinghua University
    Tsinghua University
    Peking University
    Frontier Science Center for Quantum Information)

  • Xingyao Chen

    (University of Glasgow)

  • Shuailiang Ge

    (Peking University
    Peking University)

  • Jia Liu

    (Peking University
    Peking University)

  • Yan Luo

    (Peking University)

Abstract

Ultralight dark photons and axions are well-motivated hypothetical dark matter candidates. Both dark photon dark matter and axion dark matter can resonantly convert into electromagnetic waves in the solar corona when their mass is equal to the solar plasma frequency. The resultant electromagnetic waves appear as monochromatic signals within the radio-frequency range with an energy equal to the dark matter mass, which can be detected via radio telescopes for solar observations. Here we show our search for converted monochromatic signals in the observational data collected by the high-sensitivity Low Frequency Array (LOFAR) telescope and establish an upper limit on the kinetic mixing coupling between dark photon dark matter and photon, which can reach values as low as 10−13 within the frequency range of 30 − 80 MHz. This limit represents an improvement of approximately one order of magnitude better than the existing constraint from the cosmic microwave background observation. Additionally, we derive an upper limit on the axion-photon coupling within the same frequency range, which is better than the constraints from Light-Shining-through-a-Wall experiments while not exceeding the CERN Axion Solar Telescope (CAST) experiment or other astrophysical bounds.

Suggested Citation

  • Haipeng An & Xingyao Chen & Shuailiang Ge & Jia Liu & Yan Luo, 2024. "Searching for ultralight dark matter conversion in solar corona using Low Frequency Array data," Nature Communications, Nature, vol. 15(1), pages 1-13, December.
  • Handle: RePEc:nat:natcom:v:15:y:2024:i:1:d:10.1038_s41467-024-45033-4
    DOI: 10.1038/s41467-024-45033-4
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    1. E. P. Kontar & S. Yu & A. A. Kuznetsov & A. G. Emslie & B. Alcock & N. L. S. Jeffrey & V. N. Melnik & N. H. Bian & P. Subramanian, 2017. "Imaging spectroscopy of solar radio burst fine structures," Nature Communications, Nature, vol. 8(1), pages 1-9, December.
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