The PICS Project. I. The impact of metallicity and helium abundance on the bright end of the planetary nebula luminosity function
arXiv:2501.17926 · doi:10.1051/0004-6361/202553974
Abstract
Planetary nebulae (PNe) and their luminosity function (PNLF) in galaxies have been used as a cosmic distance indicator for decades, yet a fundamental understanding is still lacking to explain the universality of the PNLF among different galaxies. Models for the PNLF have generally assumed solar metallicities and artificial stellar populations. In this work, we investigate how metallicity and helium abundances affect the PNe and PNLF, and the importance of the initial-to-final mass relation (IFMR), to resolve the tension between PNLF observations and models. We introduce PICS (PNe In Cosmological Simulations), a PN model framework that accounts for metallicity and is applicable to realistic stellar populations from cosmological simulations and observations. The framework combines stellar evolution models with post-AGB tracks, PN models, and circumnebular extinction to obtain PNe from a parent stellar population. We find that metallicity plays an important role for the resulting PNe: old metal-rich populations can harbor much brighter PNe than old metal-poor ones. We show that the helium abundance is a vital ingredient at high metallicities and explore the impact on the PNLF of a possible saturation of helium at high metallicities. We present PNLF grids for different stellar ages and metallicities, where the observed PNLF bright end can be reached even for old stellar populations of 10 Gyr at high metallicities. Finally, we find that the PNLFs of old stellar populations are sensitive to the IFMR, allowing for the production of bright PNe. With PICS, we have laid the groundwork for studying how different models affect the PNe and PNLF. Two central ingredients for this are the metallicity and helium abundance. Future applications of PICS include modeling PNe in a cosmological framework to explain the origin of the universal PNLF cutoff and using it as a diagnostic tool for galaxy formation.
24 pages, 13 figures, accepted for publication in A&A
References in corpus (17)
- Array Programming with NumPy
- The chemical make-up of the Sun: A 2020 vision
- Planetary nebulae as tracers of galaxy stellar populations
- The Helium abundance and Delta Y / Delta Z in Lower Main Sequence stars
- A revised planetary nebula luminosity function distance to NGC 628 using MUSE
- The evolution of planetary nebulae IV. On the physics of the luminosity function
- The evolution of planetary nebulae. V. The diffuse X-ray emission
- The evolution of planetary nebulae VII. Modelling planetary nebulae of distant stellar systems
- Toward better simulations of planetary nebulae luminosity functions
- Planetary Nebula Luminosity Function distances for 19 galaxies observed by PHANGS-MUSE
- Red Supergiants in M31: The Humphreys-Davidson limit at high metallicity
- Fornax 3D project: automated detection of planetary nebulae in the centres of early-type galaxies and first results
- Resolving the Disc-Halo Degeneracy II: NGC 6946
- Revised Simulations of the Planetary Nebulae Luminosity Function
- A two-mode planetary nebula luminosity function
- Planetary nebulae hosting accreting white dwarfs: A possible solution for the mysterious cut-off of Planetary Nebula Luminosity Function?
- MUSE crowded field 3D spectroscopy in NGC 300 : IV. Planetary nebula luminosity function