Probing Substellar Formation with Euclid

seminar default logo
Ομιλητής :  
Δρ. Styliani Tsilia (Instituto de Astrofísica de Canarias (IAC) )
Αίθουσα :  
Αίθουσα Σεμιναρίων 2oυ & Online
Ημερομηνία :  

Ώρα : 

Περίληψη :

The Euclid mission is transforming our view of the low-mass Universe by 
enabling the systematic exploration of ultracool dwarfs (UCDs), from late-M 
dwarfs to free-floating planetary-mass objects, across diverse Galactic 
environments. Within the Euclid SUBSTELLAR project, we are building the 
largest homogeneous census of brown dwarfs and free-floating planets to 
date, expecting to increase the known population by two orders of 
magnitude. Euclid’s combination of wide-area, deep, high-resolution 
near-infrared imaging and low-resolution near-infrared spectroscopy enables 
the identification of UCDs over unprecedented volumes of the Galaxy, 
reaching masses of ~4 MJup at the distance of Orion. Using Early Release 
Observations (ERO) data, we illustrate this potential through studies of 
the σ Orionis cluster and the neighboring Horsehead Nebula region. In σ 
Orionis, Euclid observations have improved the characterization of the 
initial mass function (IMF) in the substellar regime, while complementary 
infrared data are allowing us to extend the search for UCDs into the highly 
reddened environments of the Orion B molecular cloud. Preliminary results 
reveal numerous new embedded UCD candidates, opening a window onto the 
formation of very low-mass objects in environments shaped by ionization 
fronts and stellar feedback. 

We are also taking the first steps toward constraining the very low-mass 
field IMF using Euclid Quick Data Release 1 (Q1) and Data Release 1 (DR1). 
UCD candidates are selected by combining Euclid photometry and spectroscopy 
while accounting for contamination and survey completeness, providing the 
statistically robust samples needed to probe the poorly constrained 
lowest-mass end of the IMF. Field measurements offer a crucial counterpart 
to studies in young clusters, enabling us to investigate how the formation 
environment and subsequent dynamical evolution shape the present-day 
substellar population. Together, these complementary approaches demonstrate 
Euclid’s potential to bridge stellar and planetary populations and to 
facilitate discussions on fundamental questions about the shape, low-mass 
cutoff, and universality of the IMF, laying the foundation for the 
mission’s broader legacy in substellar astrophysics.