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Detection of molecular absorption in the dayside of exoplanet 51 Pegasi b?

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arxiv 1302.6242 v1 pith:SATD7DJT submitted 2013-02-25 astro-ph.EP

classification astro-ph.EP
keywords planetsignaldatadaysidefirsthoursabsorptionatmosphere
verification ladder T0 review T1 audit T2 compute T3 formal

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In this paper we present ground-based high-resolution spectroscopy of 51 Pegasi using CRIRES at the Very Large Telescope. The system was observed for 3x5 hours at 2.3 {\mu}m at a spectral resolution of R = 100,000, targeting potential signatures from carbon monoxide, water vapour and methane in the planet's dayside spectrum. In the first 2x5 hours of data, we find a combined signal from carbon monoxide and water in absorption at a formal 5.9{\sigma} confidence level, indicating a non-inverted atmosphere. We derive a planet mass of M_P = (0.46 +- 0.02) M_Jup and an orbital inclination i between 79.6 and 82.2 degrees, with the upper limit set by the non-detection of the planet transit in previous photometric monitoring. However, there is no trace of the signal in the final 5 hours of data. A statistical analysis indicates that the signal from the first two nights is robust, but we find no compelling explanation for its absence in the final night. The latter suffers from stronger noise residuals and greater instrumental instability than the first two nights, but these cannot fully account for the missing signal. It is possible that the integrated dayside emission from 51 Peg b is instead strongly affected by weather. However, more data are required before we can claim any time variability in the planet's atmosphere.

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Cited by 3 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Unraveling the Mystery of the Peculiar and Young Hot Jupiter CoRoT-2b II: Phase Resolved Emission Spectroscopy with VLT/CRIRES+ and Gemini-S/IGRINS

    astro-ph.EP 2026-06 unverdicted novelty 7.0 of 10

    Phase-resolved high-resolution spectroscopy of CoRoT-2b measures sub-synchronous rotation at 2.6-sigma significance, consistent with its western hotspot offset.

  2. Instrumentation prospects for rocky exoplanet atmospheres studies with high resolution spectroscopy

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    Higher spectral resolution (R=300,000) materially reduces the exposure time needed to detect oxygen A-band absorption in hazy, cloudy exoplanet atmospheres relative to R=100,000.

  3. Characterizing Transiting Exoplanet Atmospheres in the 2030s with the Hubble Space Telescope

    astro-ph.IM 2026-06 unverdicted novelty 2.0 of 10

    The paper identifies three key science cases that will require Hubble's short-wavelength capabilities for exoplanet atmosphere studies into the 2030s.

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