Unraveling the Mystery of the Peculiar and Young Hot Jupiter CoRoT-2b. I. H 2 O and CO Detection from Dayside Observations with Gemini-S/IGRINS
Ying Shu, Lisa Dang, Antoine Darveau-Bernier, Aurora Kesseli, Luc Bazinet, Justin Lipper, Stefan Pelletier, Romain Allart, Nicolas B. Cowan, David Lafreniére, Emily Rauscher, Alejandro Sánchez-López, Björn Benneke, Anne Boucher, René Doyon
astro-ph.EP
Submitted: 2026-05-19
Comments: 22 pages, 10 figures, 4 tables
Journal ref: Ying Shu et al 2026 AJ 171 333
License: http://creativecommons.org/licenses/by/4.0/
The gist: We present ground-based high-resolution spectroscopic pre-eclipse observations of the hot Jupiter CoRoT-2b obtained with the IGRINS spectrograph on Gemini South.
Terminology
Abstract
We present ground-based high-resolution spectroscopic pre-eclipse observations of the hot Jupiter CoRoT-2b obtained with the IGRINS spectrograph on Gemini South. Using cross-correlation analysis, we detect the Doppler-shifted signature of the planet's thermal emission with a signal-to-noise ratio of 4.32. Our independent analyses confirm the presence of H 2 O with a confidence level of 2.6 sigma and an abundance of log 10-5.08+0.43-0.43, as well as CO with 2.3 sigma confidence and an abundance of log 10-4.21+0.48-0.81 in CoRoT-2b's atmosphere, using two fully independent data reduction and retrieval pipelines. No significant detections of CH 4, CO 2, TiO, or VO are reported. While our cross-correlation analysis tentatively suggests the presence of HCN and OH, retrieval analysis does not confirm these molecules. The detected H 2 O and CO features indicate that CoRoT-2b's dayside spectrum is not featureless, as previously inferred from lower-resolution observations, but instead reveals a complex atmospheric structure. Interestingly, we find a lack of significant molecular features at wavelengths shorter than 1.7 mu m, potentially due to high-altitude absorbers such as H-, clouds, or observational systematics. From our retrieved abundances of CO and H 2 O, we constrain a supersolar C/O ratio of 0.91+0.08-0.17 and a subsolar metallicity. This study provides the first high-resolution constraints on the atmospheric composition of CoRoT-2b and serves as the foundation for future investigations into its peculiar westward hotspot offset. Further phase-resolved observations will be required to explore the underlying atmospheric dynamics in more detail.
Sources
- NIRPS first light and early science: breaking the 1 m/s RV precision barrier at infrared wavelengths
- A sub-solar metallicity on the ultra-short period planet HIP 65Ab
- Strict Upper Limits on the Carbon-to-Oxygen Ratios of Eight Hot Jupiters from Self-Consistent Atmospheric Retrieval
- A Comprehensive Analysis Spitzer 4.5 $\mu$m Phase Curve of Hot Jupiters
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