SPICES · Statistics-driven Planet Imaging in Circumstellar Environments
Horizon Europe — Marie Skłodowska-Curie Actions
- Duration
- 2023-06-01 → 2025-05-31
- EU contribution
- €195,915
- Participants
- 2
- Scheme
- HORIZON-TMA-MSCA-PF-EF
Lines connect the coordinator with its partners.
Results in brief
Statistics-driven Planet Imaging in Circumstellar Environments
Nearly 6000 exoplanets have been detected to date, showing a great diversity in planetary system architectures that is substantially advancing our knowledge of planet formation and evolution. However, the majority of these discoveries come from systems that have their birth environments dissipated, precluding the exploration of the early stages of planetary systems. In contrast, direct imaging of protoplanets – the most effective means to probe these formation stages – remains extremely rare, with less than 5 such planets imaged so far. Meanwhile, the images of over 100 circumstellar disks in the past decade hint the existence of such elusive protoplanets. The SPICES project is designed to bridge the gap between high quality direct imaging datasets and the current limitation of data analysis methods. By refining and advancing applied mathematical methods for astronomical imaging, SPICES remarks an interdisciplinary exploration on the earliest stages of planet formation. To push the boundaries of planet formation through direct imaging, the SPICES project is built around two synergistic objectives that drive our quest to understand the genesis of planetary systems: 1. SAFFRON (Spiral Arm Formation From mOtion aNalysis) Survey: Illuminating Hidden Worlds By re-imaging spiral features in protoplanetary disks, the SAFFRON survey is dedicated to unearthing the subtle signatures of hidden planets residing within circumstellar environments. With a temporal separation of nearly 5 years, we can extract spiral motion signals that suggest the presence of nascent planetary bodies. The results then guide targeted direct imaging follow-up, facilitating the imaging of the next protoplanets. 2. Spectroscopic Characterization of Circumstellar Disks: Decoding the Building Blocks' Mineralogy The imaging of circumstellar disks at multiple wavelengths, i.e., spectroscopy, informs their mineralogical composition. With current high-contrast imaging data reduction facing inherent computational compromises, advanced data imputation techniques can provide authentic disk images. This can enable a precise characterization of dust properties and opens the possibility to detect water ice tracers—key indicators of water reservoirs that might foster Earth analogs. With a systematic extraction of spectroscopy for circumstellar disks, we can explore the compositional trends for the building blocks of planetary formation sites. This not only informs the bulk composition of potential planets, but also facilitates a full exploration of the integral field spectrograph instruments in current and future high-contrast imagers.
Data: CORDIS, © European Union
Project objective
The SPICES project applies and develops state-of-the-art statistical methods to image forming exoplanets and characterize planet-forming disks. More than 5000 exoplanets have been detected as of today, showing a great diversity in planetary system architectures that is still not entirely understood. Many of these planets were found in systems that have dissipated their birth environment, and do not allow for the study of the early times of planet formation. Originally formed in gaseous protoplanetary disks surrounding newborn stars, long-period giant planets such as Jupiter shape the evolution of planetary systems including that in our own Solar System. They can gravitationally interact with disks and imprint signatures such as gaps, rings, and spiral arms. Such features are routinely observed in high resolution disk observations, suggesting that a large population of massive planets are actively sculpting protoplanetary disks. Later on, these gas-rich disks dissipate within a few Myr while terrestrial planets form, and planetesimal collisions lead to second- generation dust populations (i.e., debris disks). Observation of planetary systems in different stages is therefore key to understanding their formation and evolution. Using modern statistics-based methods, I propose the Statistics-driven Planet Imaging in Circumstellar EnvironmentS (SPICES) project to perform unprecedented inspection of planet forming disks, thus detecting planets that are embedded in disks while characterizing disk mineralogy. By doing so, I will bridge the gap between revolutionary data analysis methods in analyzing and the myriad of high-quality data, and ultimately provide new insights into the formation and evolution of planetary systems.
Original text from CORDIS.
Participants
Links
- View on CORDIS
- DOI: 10.3030/101103114
- https://ec.europa.eu/research/participants/documents/downloadPublic?documentIds=080166e5060ca34b&appId=PPGMS
- https://ec.europa.eu/research/participants/documents/downloadPublic?documentIds=080166e51a89c300&appId=PPGMS
Data: CORDIS, © European Union
