PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
May 12, 2026The Astronomical Journal2 citationsOpen Access

NASA’s Pandora SmallSat Mission: Simulating the Impact of Stellar Photospheric Heterogeneity and Its Correction

View Full Paper
BRB V RackhamAIAishwarya R. IyerDADániel Apai

Key Points

  • This research aims to quantify Pandora’s ability to infer stellar photospheric properties and correct stellar contamination in exoplanet observations.
  • Constructed eight stellar activity scenarios and generated 160 simulated datasets.
  • Conducted end-to-end simulations incorporating time-dependent spectra, instrument response, and noise.
  • Used Bayesian retrievals for joint visible photometry and near-infrared spectroscopy to analyze data.
  • Photospheric temperatures inferred with uncertainties of ≈30 K and no significant bias under accurate models.
  • Contamination signals reduced from 10^2–10^3 ppm to ≲10 ppm for simple distributions, below Pandora’s precision.
  • For complex spot distributions, residual contamination remains around 10^3 ppm, requiring additional constraints for mitigation.

Abstract

Abstract Stellar photospheric heterogeneity is a dominant astrophysical systematic impacting exoplanet transmission spectroscopy. NASA’s Pandora SmallSat Mission is designed to address this challenge through contemporaneous visible-band photometry and near-infrared spectroscopy of exoplanet host stars. Here, we present an end-to-end simulation study quantifying Pandora’s ability to infer stellar photospheric properties and correct stellar contamination using out-of-transit observations. We construct eight representative stellar activity scenarios and generate 160 simulated Pandora datasets, incorporating time-dependent stellar spectra, instrument response, and noise. Given accurate models, Bayesian retrievals of joint visible photometry (0.4–0.7 μ m) and near-infrared spectroscopy (0.9–1.6 μ m, R ≈ 120) recover photospheric temperatures with typical uncertainties of ≈30 K, with no significant bias. Models with two spectral components (i.e., a quiescent photosphere and spots) are strongly favored in 95% of cases; one-component models are preferred when true spot filling factors fall below a detection threshold of ≈0.3%. We propagate the true and inferred stellar parameters to compute true, inferred, and residual contamination signals under physically motivated spot geometries. For simple spot distributions, contamination signals of 10 2 –10 3 ppm are reduced to ≲10 ppm—well below Pandora’s expected transmission spectroscopy precision (30–100 ppm). For more complex spot distributions, geometric degeneracies limit deterministic corrections, leaving residual contamination at the 10 3 ppm level that must be mitigated using additional constraints, such as spot-crossing events and joint stellar–planetary retrievals of transmission spectra. These results define regimes in which stellar contamination can be corrected from stellar observations alone and show how Pandora stellar observations can identify cases where additional information is required.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Rackham et al. (2026) studied this question.

synapsesocial.com/papers/6a02c2b9ce8c8c81e96402e6https://doi.org/10.3847/1538-3881/ae5f63
Ask AI
Helpful
Bookmark
Share
View Full Paper