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arXiv · 2606.19454

Baryonic mass budgets in the central regions of the Bullet Cluster and their consistency with strong lensing in MOND

Abstract

Strong lensing observations of the Bullet Cluster have traditionally been regarded as strong evidence for dark matter and a major challenge to Milgromian dynamics (MOND). The offset between the lensing mass and the X-ray gas centroids implies a substantial amount of unseen mass near the brightest cluster galaxies (BCGs). However, the high metallicities observed in both the intracluster gas and the massive early-type member galaxies suggest a past stellar population dominated by massive stars, whose evolved remnants contribute additional baryonic mass. This effect is naturally incorporated in the integrated galaxy-wide initial mass function (IGIMF) theory, which predicts substantially larger baryonic masses than a canonical IMF. In this work, we re-estimate the baryonic masses of the three BCG-centred core regions of the Bullet Cluster using recent JWST photometry and compare them with MOND strong-lensing masses. We derive IGIMF masses using stellar population synthesis models with constant and (self-) enriched metallicities, representing lower and upper mass limits, respectively. We find that the MOND strong-lensing masses of all three cores lie within the range predicted by the IGIMF models. These results suggest that the baryonic mass budget is consistent with MOND requirements from strong-lensing observations in the core regions of the Bullet Cluster. However, the physical viability of this scenario also depends on the spatial distribution and dynamical behavior of the remnant population, which remain to be established. More generally, regardless of the validity of MOND, the results imply that less dark matter may be required than previously inferred.

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Dong Zhang, Hosein Haghi, Elena Asencio, Indranil Banik, Akram Hasani Zonoozi, Sangjun Cha, Boseong Young Cho, Hyungjin Joo, Pavel Kroupa, Anastasia Lazutkina, Eda Gjergo. 2026-06-17. Baryonic mass budgets in the central regions of the Bullet Cluster and their consistency with strong lensing in MOND. https://doi.org/10.1103/6zrp-q7c4

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