H2020Individual fellowship2021–2023

SMART · Star formation history of MAssive pRoTostars

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2021-04-01 → 2023-03-31
EU contribution
€203,852
Participants
1
Scheme
MSCA-IF

Lines connect the coordinator with its partners.

Results in brief

Star formation history of MAssive pRoTostars

elements in our bodies like carbon and nitrogen, and even the oxygen we breathe, were created in the centers of stars. To create heavier elements than iron, massive stars are required. The main question that the Star formation history of MAssive pRoTostars (SMART) project aims to address is 'how are these massive protostars born? Answering this question is ultimately addressing our own origins. Determining how massive stars form, i.e. those stars with more than 8 times the mass of our Sun, is important for many reasons. They are key for regulating galaxies, the interstellar medium, and the star formation process itself. There is some evidence our own Solar System was influenced by massive stars in its early history. However, massive stars are rare compared to their lower-mass 1 brethren and thus tend to be found in formation sites that are relatively far from the Sun, typically >1 kpc away. During the protostellar phase, these stars also tend to be highly obscured by the gas and dust of their parental molecular cloud. For these reasons, despite their importance, the formation mechanism of massive stars is still poorly understood. The overall objective of the SMART project is to shed further light on the formation of massive protostars. To do this we have an observational approach by peering into the heart of massive star-forming regions using the most powerful telescopes on Earth and space, which include the Hubble Space Telescope (HST), the Very Large Telescope (VLT), and the Large Binocular Telescope (LBT). By analysing images and spectra, we aim to fully characterize the central forming protostar, its jets and outflows, as well as its surrounding environment. This work will greatly contribute to our understanding of this important, yet poorly understood, aspect of astrophysics.

Data: CORDIS, © European Union

Project objective

Massive stars are the rock stars of the Universe - blazing short, intense lives, but with death resonating for generations to come! Although massive stars have a profound impact on scales from galaxies down to nearby protoplanetary discs, how they form remains poorly understood. The Star formation history of MAssive pRoTostars (SMART) project has a clear motivation: to understand the origin of massive stars and their associated star clusters that are fundamental building blocks of all the galaxies in the Universe. I propose a research plan to unveil the birth of massive protostars through the study of accretion and ejection processes. For this, I will take an observational approach using the most powerful telescopes available on Earth and in space. I will focus in the near-infrared (NIR) regime on a sample of massive protostars with both imaging and spectroscopic techniques. NIR observations are key for probing the warm regions of the inner disc and shocked and irradiated material in outflowing jets. They can also reveal the presence of nearby lower-mass stars that may be forming as part of a cluster and influencing the massive protostar. My target sample covers a wide range of evolutionary stages and environmental conditions and already has significant ancillary multi-wavelength data available in the far-infrared and radio regimes. Several recent pilot studies have demonstrated the power of NIR observations to measure key properties of these protostars yielding new insights into these systems. Now these studies need to be greatly expanded to systematically probe the evolutionary sequence and effects of environment, ultimately leading to new tests of formation theories.

Original text from CORDIS.

Participants

  • CHALMERS TEKNISKA HOGSKOLA AB · GoteborgCoordinatorSweden

Links

Data: CORDIS, © European Union