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March 3, 2026The Astronomical Journal2 citationsOpen Access

Bayesian Analysis for Remote Biosignature Identification on exoEarths (BARBIE). IV. Analyzing CO 2 Detections in the Near-IR to Determine the Long-wavelength Cutoff for the Habitable Worlds Observatory Coronagraph

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CHCeleste HageeUniversity of WashingtonNLNatasha LatoufAMAvi M. Mandell

Key Points

  • The optimal long-wavelength cutoff for detecting carbon dioxide is determined to be 1.68 µm.
  • Analysis shows that carbon monoxide does not lead to strong detections of CO2 in various planetary conditions.
  • Using the Bayesian analysis, this study tested 25 bandpasses between 0.8 and 2.0 µm to understand CO2 detectability.
  • Findings highlight the crucial roles of methane and water in the detection of carbon dioxide, indicating their necessity.

Abstract

Abstract We present our analysis of how the detectability of carbon dioxide (CO 2 ) on an Earth-like planet varies with respect to signal-to-noise ratio (SNR), wavelength, and molecular abundance. Using the Bayesian Analysis for Remote Biosignature Identification on exoEarths methodology, we can determine the optimal long-wavelength cutoff for the future Habitable Worlds Observatory coronagraph. We test 25 evenly spaced 20% bandpasses between 0.8 and 2.0 μ m, and simulate data spanning a range of SNRs and molecular abundance to analyze the relationship between wavelength and detectability for different planetary archetypes. We examine abundance levels from varying Earth epochs and a Venus-like archetype to investigate how detectability would change throughout the evolution of a rocky planet. Here, we present our results on the planetary conditions and technological requirements to strongly detect CO 2 . In addition, we analyze the degeneracy of CO 2 with carbon monoxide (CO), methane (CH 4 ), and water (H 2 O). We determine that any abundance of CO does not achieve strong detections and that CH 4 and H 2 O play a pivotal role in the ability to detect CO 2 . We conclude that the optimal long-wavelength cutoff for the Habitable Worlds Observatory coronagraph should be 1.68 μ m.

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Cite This Study

Hagee et al. (2026) studied this question.

synapsesocial.com/papers/69a76232c6e9836116a307bfhttps://doi.org/10.3847/1538-3881/ae3c81
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