Published February 23, 2026 | Version v1
Presentation Open

The impact of stellar migration and gas giants on Galactic habitability

  • 1. INAF Osservatorio Astronomico di Trieste
  • 2. INAF OAA
  • 3. ROR icon National Institute for Astrophysics
  • 4. University of Trieste, Department of Physics
  • 5. Italian National Institute for Astrophysics (INAF)
  • 6. INAF-Osservatorio Astrofisico di Torino
  • 7. Institut für Kernphysik, Technische Universität Darmstad
  • 8. ROR icon Arcetri Astrophysical Observatory
  • 9. Università degli Studi di Trieste Dipartimento di Fisica
  • 10. ROR icon Trieste Astronomical Observatory
  • 11. INAF, Trieste Observatory

Description

In exoplanet research, the focus is increasingly on identifying Earth analogs, planets similar in density and habitability potential. As the number of rocky exoplanets grows, parallel discussions have emerged on system architectures and Galactic environments that may support life, drawing comparisons to our own Earth. This has brought renewed attention to the concept of the Galactic Habitable Zone (GHZ) as a broader context for interpreting the diversity of planetary environments. This study is the first to use detailed chemical evolution models to investigate the impact of stellar migration, modeled through a parametric approach, on the GHZ. Our findings reveal that stellar migration significantly enhances the number of stars capable of hosting habitable planets in the outer Galactic regions, with an increase of up to a factor of five at 18 kpc relative to a baseline value of unity at 6 kpc. Furthermore, we explore a novel scenario where the presence of gas giant planets increases the probability for the formation of terrestrial ones. We find that this increased probability is higher in the inner Galactic disc, but is also mitigated by stellar migration. In particular, at the present time, the number of FGK stars hosting terrestrial planets with minimum habitability conditions in the ring centered at 4 kpc is approximately 1.4 times higher than in scenarios where gas giants are assumed to hinder the formation and evolution of Earth-like planets. Without stellar migration, this factor increases to 1.5. Even larger ratios are predicted for terrestrial planets orbiting retired A stars, reaching 2.8 in models with stellar migration and 3.3 in models without it.

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Additional details

Dates

Accepted
2026-02-05
Presentation slides for the workshop 'Exploring the Evolution of CNOPS Elements from Earth and Space', Centre for Astrophysics, Haus Sexten, 2026.

References

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