A New Probe of Dark Matter Subhalos: Stellar Aberration with TESS
astro-ph.CO, gr-qc
Submitted: 2026-08-24
Updated: 2026-08-24
Comments: 10 pages, 4 figures
License: http://creativecommons.org/licenses/by/4.0/
The gist: Small-scale dark matter (DM) structure encodes key information about the particle nature of DM and therefore provides a sensitive test of competing models.
Terminology
Abstract
Small-scale dark matter (DM) structure encodes key information about the particle nature of DM and therefore provides a sensitive test of competing models. Yet, it remains hidden from electromagnetic surveys and is instead inferred through its gravitational effects. Stellar aberration, the apparent shift in a light source's position induced by the observer's motion, offers a largely unexplored channel to access such signatures. DM subhalos can perturb the observer's motion, imprinting characteristic, spatially correlated shifts in stellar positions across the sky. We show that the Transiting Exoplanet Survey Satellite (TESS), with its long temporal baseline, wide sky coverage, and high-cadence observations, is well suited to search for these aberration signals. We derive Fisher-matrix-based sensitivity estimates for constant observer accelerations, forecasting a sensitivity down to 6.3 times 10-9, m/s squared from the combined sample of TESS stars with magnitude Tmag at most 10. This sensitivity allows TESS to probe concentrated DM subhalos over a broad parameter space, from 10-6, M at AU-scale distances to 10 7, M at O(10, pc). TESS's sector-based observing strategy further provides intrinsic temporal resolution of potential DM-induced aberration signals. Moreover, we briefly discuss challenges for future data analysis, including the modeling of instrumental systematics and stellar astrometric foregrounds, such as parallax and proper motion. Our results establish stellar aberration as a novel probe of DM substructure, paving the way for dedicated searches in TESS and next-generation wide-field surveys.
Sources
- Snowmass2021 Cosmic Frontier White Paper: Dark Matter Physics from Halo Measurements
- Roman Observations Time Allocation Committee: Final Report and Recommendations
- Astrometric Microlensing by Primordial Black Holes with The Roman Space Telescope
- Detectability of Small-Scale Dark Matter Clumps with Pulsar Timing Arrays
- Secular aberration drift in stellar proper motions: An additional term due to the change in line-of-sight direction
- A High Earth, Lunar Resonant Orbit for Lower Cost Space Science Missions
Related papers
- Angular clustering and bias of photometric quasars in the Kilo-Degree Survey Data Release 4
- A Novel kinetic Sunyaev-Zel'dovich Estimator for Electron-Electron Correlations
- Magnetic fields at the dawn of structure formation I. The CARLA J1510+5958 proto-cluster
- Dark Energy Survey Year 6 Results: Weak Lensing and Galaxy Clustering Cosmological Analysis Framework
- Exploring the Impact of Systematic Bias in Type Ia Supernova Cosmology Across Diverse Dark Energy Parametrizations
- Non-Gaussian Galaxy Stochasticity and the Noise-Field Formulation