No evidence of phosphine in the atmosphere of Venus by independent analyses
arXiv:2010.14305 · doi:10.1038/s41550-021-01422-z
Abstract
The detection of phosphine (PH3) in the atmosphere of Venus has been recently reported based on millimeter-wave radio observations (Greaves et al. 2020), and its re-analyses (Greaves et al. 2021a/b). In this Matters Arising we perform an independent reanalysis, identifying several issues in the interpretation of the spectroscopic data. As a result, we determine sensitive upper-limits for PH3 in Venus' atmosphere (>75 km, above the cloud decks) that are discrepant with the findings in G2020 and G2021a/b. The measurements target the fundamental first rotational transition of PH3 (J=1-0) at 266.944513 GHz, which was observed with the James Clerk Maxwell Telescope (JCMT) in June 2017 and with the Atacama Large Millimeter/submillimeter Array (ALMA) in March 2019. This line's center is near the SO2 (J=309,21-318,24) transition at 266.943329 GHz (only 1.3 km/s away from the PH3 line) which represents a potential source of contamination. The JCMT and ALMA data, as presented in G2020, are at spectral resolutions comparable to the frequency separation of the two lines. Moreover, the spectral features identified are several km/s in width, and therefore do not permit distinct spectroscopic separation of the candidate spectral lines of PH3 and SO2. We present the radiative transfer modelling we have performed and then discuss the ALMA and JCMT analyses in turn.
References in corpus (10)
- Phosphine Gas in the Cloud Decks of Venus
- Re-analysis of the 267-GHz ALMA observations of Venus: No statistically significant detection of phosphine
- A stringent upper limit of the PH abundance at the cloud top of Venus
- Claimed detection of PH in the clouds of Venus is consistent with mesospheric SO
- The statistical reliability of 267 GHz JCMT observations of Venus: No significant evidence for phosphine absorption
- Complications in the ALMA Detection of Phosphine at Venus
- Recovery of Spectra of Phosphine in Venus' Clouds
- Re-analysis of Phosphine in Venus' Clouds
- On the Robustness of Phosphine Signatures in Venus' Clouds
- Detection of CHCN in Titan's Atmosphere
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- Phosphine in the Venusian Atmosphere: A Strict Upper Limit from SOFIA GREAT Observations
- On the Robustness of Phosphine Signatures in Venus' Clouds
- Low levels of sulphur dioxide contamination of Venusian phosphine spectra
- Large Interferometer For Exoplanets (LIFE): VIII. Where is the phosphine? Observing exoplanetary PH3 with a space based MIR nulling interferometer
- Dynamics and Clouds in Planetary Atmospheres from Telescopic Observations
- Prebiosignature Molecules Can Be Detected in Temperate Exoplanet Atmospheres with JWST
- Interior Controls on the Habitability of Rocky Planets
- Astrobiological Potential of Venus Atmosphere Chemical Anomalies and Other Unexplained Cloud Properties
- Constraints on the production of phosphine by Venusian volcanoes
- Venusian phosphine: a 'Wow!' signal in chemistry?
- Proximal Exploration of Venus Volcanism with Teams of Autonomous Buoyancy-Controlled Balloons
- A method for constructing an interplanetary trajectory of a spacecraft to Venus using resonant orbits to ensure landing in the desired region
- Venus Cloud Research: Progress and Perspectives
- Using HITRAN to Model Opacities for Planetary Atmospheres: Test case of Microwave Spectra of NH, SO and PH
- Six Maxims of Statistical Acumen for Astronomical Data Analysis
- Necessary Conditions for Earthly Life Floating in the Venusian Atmosphere