2018/10/21 by Yulong Gao, Enci Wang, Xu Kong +8
Physics and Astronomy · #Astronomy and Astrophysical Research #Elliptical galaxy #Galaxies: Formation, Evolution, Phenomena #Galaxy #Initial mass function #Local Group #Metallicity #Star formation #Stars #Stellar mass #Stellar, planetary, and galactic studies #astro-ph.GA
paper · pdf · doi:10.3847/1538-4357/aae9f1
14 pages, 8 figures; accepted by ApJ
arxiv created 2018/10/21 · openalex created_date 2018/10/26 · openalex publication_date 2018/11/27 · arxiv updated 2018/12/05 · openalex updated_date 2026/08/05
Abstract Metallicity and its relationship with other galactic properties is a fundamental probe of the evolution of galaxies. In this work, we select about 750,000 star-forming spatial pixels from 1122 blue galaxies in the Mapping Nearby Galaxies at Apache Point Observatory survey to investigate the global stellar mass–local stellar mass surface density–gas-phase metallicity ( M * –Σ * – Z ) relation. At a fixed M * , the metallicity increases steeply with increasing Σ * . Similarly, at a fixed Σ * , the metallicity increases strongly with increasing M * at the low-mass end, while this trend becomes less obvious at the high-mass end. We find the metallicity to be more strongly correlated to Σ * than to M * . Furthermore, we construct a tight (0.07 dex scatter) M * –Σ * – Z relation, which reduces the scatter in the Σ * – Z relation by about 30% for galaxies with 7.8 < log( M * / M ⊙ ) < 11.0, while the reduction of scatter is much weaker for high-mass galaxies. This result suggests that, especially for low-mass galaxies, the M * –Σ * – Z relation is largely more fundamental than the M * – Z and Σ * – Z relations, meaning that both M * and Σ * play important roles in shaping the local metallicity. We also find that the local metallicity is probably independent on the local star formation rate surface density at a fixed M * and Σ * . Our results are consistent with the scenario that the local metallicities in galaxies are shaped by the combination of the local stars formed in the history and the metal loss caused by galactic winds.