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A three-component giant radio halo: the puzzling case of the galaxy cluster Abell 2142

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arxiv 2308.07603 v1 pith:B5VZBKX4 submitted 2023-08-15 astro-ph.CO astro-ph.GA

A three-component giant radio halo: the puzzling case of the galaxy cluster Abell 2142

classification astro-ph.CO astro-ph.GA
keywords radionon-thermalclusterhalopropertiesthermalalphacomponent
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Turbulence introduced into the intra-cluster medium (ICM) through cluster merger events transfers energy to non-thermal components, and can trigger the formation of diffuse synchrotron radio sources. Typical diffuse sources in the forms of giant radio halos and mini-halos are found in merging and relaxed cool core galaxy clusters, respectively. On the other hand, recent observations have revealed an increasing complexity of the non-thermal phenomenology. Abell 2142 (A2142) is a mildly disturbed cluster that exhibits uncommon thermal and non-thermal properties. It is known to host a hybrid halo consisting of two components (H1 and H2), namely a mini-halo-like and an enigmatic elongated radio halo-like structure. We aim to investigate the properties, origin, and connections of each component. We present deep LOFAR observations of A2142 in the frequency ranges $30-78$ MHz and $120-168$ MHz. With complementary multi-frequency radio and X-ray data, we analyse the radio spectral properties of the halo and assess the connection between the non-thermal and thermal components of the ICM. We detected a third radio component (H3), which extends over the cluster volume on scales $\sim 2$ Mpc, embeds H1 and H2, and has a morphology that roughly follows the thermal ICM distribution. The radio spectral index is moderately steep in H1 ($\alpha=1.09\pm 0.02$) and H2 ($\alpha=1.15\pm 0.02$), but is steeper ($\alpha=1.57\pm 0.20$) in H3. The analysis of the thermal and non-thermal properties allowed us to discuss possible formation scenarios for each radio component. Turbulence from sloshing motions of low-entropy gas on different scales may be responsible for the origin of H1 and H2. We classified H3 as a giant ultra-steep spectrum radio halo, which could trace the residual activity from an old energetic merger and/or inefficient turbulent re-acceleration induced by ongoing minor mergers.

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Cited by 3 Pith papers

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  1. Two-component large-scale radio emission in Abell 2244

    astro-ph.CO 2026-07 conditional novelty 6.0

    Abell 2244 hosts a two-component radio halo whose outer part has a flatter spectral index than megahaloes and a weaker radio-X-ray correlation than the inner halo.

  2. Multi-Wavelength Signatures of a Giant Cometary Radio Halo in MACSJ0417-1154

    astro-ph.HE 2026-07 conditional novelty 6.0

    MACSJ0417’s giant radio halo shows spectral steepening and radio–X-ray correlation consistent with turbulence from a 6:1 off-axis merger that preserved the cool core; pure hadronic models are energetically excluded.

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    astro-ph.HE 2026-07 conditional novelty 5.0

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