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arXiv · 2606.10558

Hector Galaxy Survey: Linking the low- and high-mass ends of the initial mass function in star-forming galaxies

Abstract

The stellar initial mass function (IMF) is a fundamental ingredient in galaxy evolution, linking observed integrated light to galaxy properties. Constraining the full IMF shape beyond the Milky Way remains challenging, as most studies focus either on the low-mass end of quiescent galaxies or the high-mass end of star-forming galaxies. Here we present the first simultaneous analysis of both ends of the IMF in 214 star-forming galaxies from the Hector survey. We estimate the low-mass end slope using a stellar population approach that fits IMF-sensitive absorption features with extended star formation histories, while the high-mass end slope is derived via the Kennicutt diagnostic, which compares the observed H-alpha equivalent width and g-r colour with stellar population synthesis model predictions. We find substantial diversity in IMF shapes and a weak but statistically robust correlation between the low- and high-mass IMF slopes. Both IMF slopes show significant correlations with stellar mass, star formation activity, and stellar metallicity ([M/H]). In general, higher stellar mass, stronger star formation activity, and higher metallicity are associated with both bottom-heavy and top-heavy IMFs. Partial correlation analysis reveals that the low-mass end slope is primarily driven by [M/H], whereas the high-mass end is mainly linked to stellar mass and recent star formation. Because the low-mass end slope traces the IMF over long-term averages and the high-mass end slope captures only recent star formation, the processes shaping each end likely occur over different and possibly decoupled timescales. Our findings challenge the universality of the IMF and emphasise the need for galaxy evolution and stellar population models to incorporate a flexible IMF prescription. Accounting for these variations is essential to build an IMF-consistent picture of galaxy evolution across cosmic time.

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Diego Salvador, Andrew Hopkins, Matt Owers, Ignacio Martín-Navarro, Gabriella Quattropani, Pratyush Kumar Das, Mina Pak, Scott Croom, Julia Bryant, Tereza Jerabkova, Karl Glazebrook, Andrei Ristea, Madusha Gunawardhana, Sarah Sweet, Kyuseok Oh, Jong Chul Lee, Joon Hyeop Lee, Caroline Foster, Tayyaba Zafar, Yifan Mai, Sujeeporn Tuntipong, Jesse van de Sande, Stefania Barsanti, Joss Bland-Hawthorn, Matthew Colless, Robert Content, Tony Farrell, Jon Lawrence, Seong-sik Min, Sree Oh, Naveen Pai, Ayoan Salim Sadman, Ross Zhelem. 2026-06-09. Hector Galaxy Survey: Linking the low- and high-mass ends of the initial mass function in star-forming galaxies. https://arxiv.org/abs/2606.10558

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