New insights on the nebular emission, ionizing radiation and low metallicity of Green Peas from advanced modelling

Author:

Fernández V12,Amorín R12,Pérez-Montero E3,Papaderos P45,Kehrig C3,Vílchez J M3

Affiliation:

1. Departamento de Astronomía, Universidad de La Serena, Av. Juan Cisternas 1200 Norte, La Serena, Chile

2. Instituto de Investigación Multidisciplinar en Ciencia y Tecnología, Universidad de La Serena, Raúl Bitrán 1305, La Serena, Chile

3. Instituto de Astrofísica de Andalucía-CSIC, Glorieta de la Astronomía S/N, E-18008 Granada, Spain

4. Centro de Astrofísica e Ciências do Espaço, Universidade de Lisboa - OAL, Tapada da Ajuda, PT1349-018 Lisboa, Portugal

5. Departamento de Física, Faculdade de Ciências da Universidade de Lisboa, Edifćio C8, Campo Grande, PT1749-016 Lisboa, Portugal

Abstract

Abstract Low-metallicity, compact starburst galaxies referred to as Green Peas (GPs) provide a unique window to study galactic evolution across cosmic epochs. In this work, we present new deep optical spectra for three GPs from OSIRIS at the 10m Gran Telescopio Canarias (GTC), which are studied using a state-of-the-art methodology. A stellar population synthesis is conducted with 1098 spectral templates. The methodology succeeds at characterizing stellar populations from 0.5 Myrs to 10 Gyrs. The light distribution shows a large red excess from a single population with log(age) > 8.5 yr in the GP sample analysed. This points towards an incomplete characterisation of the gas luminosity, whose continuum already accounts between $7.4{{\ \rm per\ cent}}$ and $27.6{{\ \rm per\ cent}}$ in the galaxy sample. The emission spectra are fitted with the largest Bayesian chemical model consisting of a electron temperature, a electron density, the logarithmic extinction coefficient and eleven ionic species under the direct method paradigm. Additionally, building on previous work, we propose a neural networks sampler to constrain the effective temperature and ionization parameter of each source from photoionization model grids. Finally, we combine both methodologies into a 16-dimensional model, which for the first time, simultaneously explores the direct method and photoionization parameter spaces. Both techniques consistently indicate a low metallicity gas, 7.76 < 12 + log(O/H) < 8.04, ionized by strong radiation fields, in agreement with previous works.

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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