The Sc, Ti, and V Abundance Discrepancy: Testing High-Mass IMF Variation and Massive-Star Rotation

arXiv:2606.31218 · astro-ph.GA · Submitted 2026-06-30 · Read on arXiv

Soonchul Choi, Eda Gjergo, Youngman Kim, Toshitaka Kajino

astro-ph.GA

Submitted: 2026-06-30

Comments: 16 pages, 14 figures

Code: https://github.com/egjergo/GalCEM

License: http://creativecommons.org/licenses/by/4.0/

The gist: Scandium, titanium, and vanadium can be synthesized primarily in massive stars.

Terminology

Abstract

Scandium, titanium, and vanadium can be synthesized primarily in massive stars. Yet many of the current Galactic chemical evolution models under-produce these elements at early epochs. Motivated by evidence that the initial mass function varied in the past on the Galactic disc, we examine how assumptions about massive-star rotation and the initial mass function affect the inferred evolution of Sc, Ti, and V. We compute a grid of one-zone Galactic chemical evolution models that varies the initial rotational velocity of massive stars and the high-mass slope of the initial mass function. We compare the resulting [X/Fe] vs [Fe/H] for X= Sc, Ti, and V tracks and cross-element correlations with Galactic abundance data. We find that adopting rotating massive-star yields with an initial rotational velocity of 300 km/s brings the model trends closer to metal-poor observations, especially for halo stars ([Fe/H] < -2), and improves the joint behavior of Sc, Ti, and V. Variations of the high-mass slope of the initial mass function produce a secondary modulation. The remaining tensions, most apparent at solar to super-solar metallicities, motivate future work with a more complete treatment of the enrichment physics and model uncertainties.

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