New insights into the relationship between mass eruption rate and volcanic column

Copernicus Publications (2024)

Authors:

Thomas Aubry, Samantha Engwell, Costanza Bonadonna, Larry Mastin, Guillaume Carazzo, Alexa Van Eaton, David Jessop, Roy Grainger, Simona Scollo, Isabelle Taylor, Mark Jellinek, Anja Schmidt, Sebastien Biass, Mathieu Gouhier

Stellar Wind Contribution to the Origin of Water on the Surface of Oxygen-containing Minerals

The Astrophysical Journal American Astronomical Society 975:1 (2024) 25-25

Authors:

Svatopluk Civiš, Jiří Kubišta, Jan Plšek, Antonín Knížek

Abstract:

Abstract The origin of water and volatile compounds on planets including Earth is a hotly debated topic in planetary science. For example, many dynamic models suggest that the majority of Earth’s water and volatile elements were added from an external source. The stellar wind irradiation of rocky oxygen-containing minerals results in a reaction between H+ ions and silicate minerals to produce water and OH, which could explain the presence of water in the regoliths of airless worlds such as the Moon, as well as the water abundances in asteroids. Here, we used the method of high-resolution infrared spectrometry and temperature-programmed desorption (TPD) with mass detection to observe and for the first time quantify water formation on the surfaces of oxygen-bearing minerals. We tested 14 different mineral and natural samples and observed the formation of water on their surfaces upon exposure to H+ or D+ irradiation. The samples, including two meteorite samples (RAS 445 and SAU 567), were shown to have a water adsorption capacity between 0.09 and 0.7 wt%. The adsorbed water (likely dissociatively adsorbed) remains on the surface at pressures as low as 10−9 mbar (in the TPD experiment) and temperatures as high as 600 K, which suggests a possible transfer over long distances and timescales. Our article has a general character and demonstrates that any interaction of oxygen-containing minerals with stellar radiation (H+ ions) leads to the generation of water adsorbed on the surface of the minerals. The case of the origin of water on Earth is taken as a prime example.

Data availability and requirements relevant for the Ariel space mission and other exoplanet atmosphere applications

RAS Techniques and Instruments Oxford University Press 3:1 (2024) 636-690

Authors:

Katy L Chubb, Séverine Robert, Clara Sousa-Silva, Sergei N Yurchenko, Nicole F Allard, Vincent Boudon, Jeanna Buldyreva, Benjamin Bultel, Athena Coustenis, Aleksandra Foltynowicz, Iouli E Gordon, Robert J Hargreaves, Christiane Helling, Christian Hill, Helgi Rafn Hrodmarsson, Tijs Karman, Helena Lecoq-Molinos, Alessandra Migliorini, Michaël Rey, Cyril Richard, Ibrahim Sadiek, Frédéric Schmidt, Andrei Sokolov, Stefania Stefani, Patrick Gerard Joseph Irwin

Abstract:

The goal of this white paper is to provide a snapshot of the data availability and data needs primarily for the Ariel space mission, but also for related atmospheric studies of exoplanets and cool stars. It covers the following data-related topics: molecular and atomic line lists, line profiles, computed cross-sections and opacities, collision-induced absorption and other continuum data, optical properties of aerosols and surfaces, atmospheric chemistry, UV photodissociation and photoabsorption cross-sections, and standards in the description and format of such data. These data aspects are discussed by addressing the following questions for each topic, based on the experience of the ‘data-provider’ and ‘data-user’ communities: (1) what are the types and sources of currently available data, (2) what work is currently in progress, and (3) what are the current and anticipated data needs. We present a GitHub platform for Ariel-related data, with the goal to provide a go-to place for both data-users and data-providers, for the users to make requests for their data needs and for the data-providers to link to their available data. Our aim throughout the paper is to provide practical information on existing sources of data whether in data bases, theoretical, or literature sources.

Climatology of the terms and variables of transformed Eulerian-mean (TEM) equations from multiple reanalyses: MERRA-2, JRA-55, ERA-Interim, and CFSR

Atmospheric Chemistry and Physics Copernicus Publications 24:13 (2024) 7873-7898

Authors:

Masatomo Fujiwara, Patrick Martineau, Jonathon S Wright, Marta Abalos, Petr Šácha, Yoshio Kawatani, Sean M Davis, Thomas Birner, Beatriz M Monge-Sanz

Decomposition of HCN during Experimental Impacts in Dry and Wet Planetary Atmospheres.

ACS earth & space chemistry 8:6 (2024) 1246-1258

Authors:

Antonín Knížek, Lukáš Petera, Vojtěch Laitl, Martin Ferus

Abstract:

Hydrogen cyanide (HCN), a key molecule of significant importance in contemporary perspectives on prebiotic chemistry, originates in planetary atmospheres from various processes, such as photochemistry, thermochemistry, and impact chemistry, as well as from delivery by impacts. The resilience of HCN during periods of heavy bombardment, a phenomenon caused by an influx of material on unstable trajectories after accretion, remains relatively understudied. This study extensively investigates the stability of HCN under impact conditions simulated using a laboratory Nd:YAG laser in the ELISE experimental setup. High-resolution infrared spectroscopy was employed to monitor the gas phase composition during these simulations. Impact chemistry was simulated in bulk nitrogen atmospheres with varying mixing ratios of HCN and water vapor. The probed range of compositions spans from ∼0 to 1.8% of HCN and 0 to 2.7% of H2O in a ∼1 bar nitrogen atmosphere. The primary decomposition products of HCN are CO and CO2 in the presence of water and unidentified solid phase products in dry conditions. Our experiments revealed a range of initial HCN decomposition rates between 2.43 × 1015 and 5.17 × 1017 molec J-1 of input energy depending on the initial composition. Notably, it is shown that the decomposition process induced by the laser spark simulating the impact plasma is nonlinear, with the duration of the irradiation markedly affecting the decomposition rate. These findings underscore the necessity for careful consideration and allowance for margins when applying these rates to chemical models of molecular synthesis and decomposition in planetary atmospheres.