Peng Chena et al. (>5)
Icarus (in Press) Open Access Link to Article [https://doi.org/10.1016/j.icarus.2025.116808]
aHigh Pressure Science Experiment Center, College of Earth and Planetary Sciences, University of Chinese Academy of Sciences, Beijing 100049, China
Copyright Elsevier
Author: Administrator
Magnesium, iron, and calcium isotope signatures of Chicxulub impact spherules: Isotopic fingerprint of the projectile and plume thermodynamics
Courtney Jean Rundhauga, Martin Schillera, Martin Bizzarroa, Zhengbin Denga,b, Hermann Dario Bermúdezc,d,e
Earth and Planetary Science Letters 669, 119592 Open Access Link to Article [https://doi.org/10.1016/j.epsl.2025.119599]
aCentre for Star and Planet Formation, Globe Institute, University of Copenhagen, Øster Voldgade 5–7, 1350 Copenhagen K, Denmark
bDeep Space Exploration Laboratory/CAS Key Laboratory of Crust-Mantle Materials and Environments, School of Earth and Space Sciences, University of Science and Technology of China, Hefei, China
cDepartment of Earth and Environmental Studies, Montclair State University, Montclair, NJ 07043, USA
dGrupo de Investigación Paleoexplorer, 1400-37 Trexlertown Rd, PA 18062, USA
eDepartamento de Geociencias, Universidad Nacional de Colombia, Bogotá 11001, Colombia
The Cretaceous-Paleogene boundary (KPB) represents a massive extinction event in Earth’s history, probably triggered by the Chicxulub asteroid impact ∼66 Ma. The event dispersed vast volumes of ejecta materials including exceptionally preserved impact spherules in the Gorgonilla Island KPB section. Previous work identified three populations of spherules at Gorgonilla: 1) ballistically transported molten spherules, 2) a mixture of molten and condensed spherules dispersed by the expansion of a high-temperature, turbulent cloud (the “pyrocloud”), and 3) tiny droplets condensed from the plume (the “fireball layer”). We determine the Mg, Fe, and Ca isotopic compositions of pristine spherules to better understand the evaporation and condensation thermodynamics within the pyrocloud. We detect enrichment in mass bias corrected µ48Ca and µ26Mg* isotope signatures from the terrestrial value corresponding to an impactor contribution of ∼17–25%, most likely from a CM or CO chondrite-like asteroid. The mass-dependent δ25Mg and δ56Fe compositions are generally light or unfractionated, suggesting incomplete recondensation as the pyrocloud cooled and expanded. Combined δ25Mg and δ56Fe signatures reveal decoupling of these isotope systems, likely due to differing condensation rates. Thus, we calculate a higher average condensation rate of Fe than Mg, reflecting the thermodynamic decoupling and more complete recondensation signatures of Fe in the pyrocloud vapor. While we uncover information about the evaporation and condensation thermodynamics in the pyrocloud, the exact formation mechanisms of the complete suite of spherules remain complex with some spherules potentially forming from multiple mechanisms, including recondensation and splash–melting.
Delivery of carbonaceous materials to the Moon
Linxi Lia,b,d, et al. (>10)
Icarus (in Press) Open Access Link to Article [https://doi.org/10.1016/j.icarus.2025.116802]
aState Key Laboratory of Lithospheric and Environmental Coevolution, Institute of Geology and Geophysics, Chinese Academy of Sciences, Beijing 100029, China
Copyright Elsevier
Regolith without age? High-resolution regolith depth measurements across lunar maria
Elizabeth F.M. Atang
Icarus (in Press) Open Access Link to Article [https://doi.org/10.1016/j.icarus.2025.116790]
University of Idaho, Department of Physics, 875 Perimeter Dr. MS 0903, Moscow, ID 83844-0903, USA
Copyright Elsevier
Condensation of major and trace elements in dust-rich environments
Marwane Mokhtari, Bernard Bourdon
Icarus (in Press) Link to Article [https://doi.org/10.1016/j.icarus.2025.116801]
Laboratoire de Géologie de Lyon, Terre Planètes Environnement, ENS de Lyon, CNRS, Université Lyon 1. 46 Allée d’Italie, 69007 Lyon, France
Copyright Elsevier
Recent astronomical observations have shown that dust can get locally concentrated in protoplanetary disks, forming ring structures. The thermal processing of such regions could lead to dust evaporation and local enrichment of the solar gas in condensable elements. Previous studies focusing on major element behavior have shown that condensation of such dust-enriched gas could lead to the formation of a silicate melt with compositions resembling that of chondrules. However, previous studies focusing on dust-enriched environments were restricted to a limited set of elements. To study the mineralogical and chemical composition of condensates in these conditions, we have performed equilibrium calculations using the FactSage™ software for a dust-enriched solar gas. The calculations were done with dust-enrichment factors of 1 (solar composition), 10 and 100 at pressures ranging from 10−6 bar to 10−3 bar, for a CI-chondrite dust and a H-chondrite dust. The trace element condensation was accurately modelled with newly calculated activity coefficients in different solid and melt solutions. The available gas phase database was completed with new trace element species that are important to consider in oxidized conditions. The mineralogical sequence, melt composition and condensation temperature for all condensable elements were then quantified.
Our calculations show that the iron contents of olivine in equilibrium with a gas that is x100 enriched in CI-dust is consistent with that of amoeboid olivine aggregates and chondrules. Furthermore, our estimated temperature at which fayalite can form in these conditions is higher than what was previously proposed, enabling diffusion and homogenization of iron in olivine. The calculated composition of refractory metals for a x10 and x100 CI-dust enriched gas at 10−4 bar is consistent with the measured compositions of refractory metal nuggets. The possibility for these grains to have fractionated in an H2O ice-enriched gas can be ruled out as the calculated fractionation patterns in this case did not match the observed compositions.
Trends in planetary science research in the Puna and Atacama Desert regions: Underrepresentation of local scientific institutions?
1A. Tavernier,2,3G. A. Pinto,4,5,6M. Valenzuela,1A. Garcia,1C. Ulloa,7R. Oses,8,9,10,11B. H. Foing
Meteoritics & Planetary Science (in Press) Link to Article [https://doi.org/10.1111/maps.13972]
1Instituto de Investigaciones Científicas y Tecnológicas, IDICTEC, Laboratorio de Investigacion de la Criosfera y Aguas, Universidad de Atacama, UDA, Copiapó, Chile
2Instituto de Investigación en Astronomía y Ciencias Planetarias, INCT, Universidad de Atacama, UDA, Copiapó, Chile
3Centre de Recherches Pétrographiques et Géochimiques, CRPG, Université de Lorraine, Nancy, France
4Departamento de Ciencias Geológicas, Universidad Católica del Norte, UCN, Antofagasta, Chile
5Millennium Institute of Astrophysics, MAS, Santiago, Chile
6Center for Excellence in Astrophysics and Associated Technologies, CATA, Santiago, Chile
7Centro Regional de Investigacion y Desarrollo Sustentable de Atacama, CRIDESAT, Universidad de Atacama, UDA, Copiapó, Chile
8Instituto de Investigación en Astronomía y Ciencias Planetarias, INCT, Universidad de Atacama, UDA, Copiapó, Chile
9International Lunar Exploration Working Group, ILEWG, EuroMoonMars, Noordwijk, The Netherlands
10Vrije Universiteit Amsterdam, VUA, Amsterdam, The Netherlands
11Universiteit Leiden, Leiden, The Netherlands
Published by arrangement with John Wiley & Sons
In 2019, while launching a multidisciplinary research project aimed at developing the Puna de Atacama region as a natural laboratory, investigators at the University of Atacama (Chile) conducted a bibliographic search identifying previously studied geographic points of the region and of potential interest for planetary science and astrobiology research. This preliminary work highlighted a significant absence of local institutional involvement in international publications. In light of this, a follow-up study was conducted to confirm or refute these first impressions, by comparing the search in two bibliographic databases: Web of Science and Scopus. The results show that almost 60% of the publications based directly on data from the Puna, the Altiplano, or the Atacama Desert with objectives related to planetary science or astrobiology do not include any local institutional partner (Argentina, Bolivia, Chile, and Peru). Indeed, and beyond the ethical questioning of international collaborations, Latin-American planetary science deserves a strategic structuring, networking, as well as a road map at national and continental scales, not only to enhance research, development, and innovation, but also to protect an exceptional natural heritage sampling extreme environmental niches on Earth. Examples of successful international collaborations such as the field of meteorites, terrestrial analogs, and space exploration in Chile or astrobiology in Mexico are given as illustrations and possible directions to follow to develop planetary science in South America. To promote appropriate scientific practices involving local researchers, possible responses at academic and institutional levels will eventually be discussed.
A comprehensive study of comet 67P/Churyumov-Gerasimenko in the 2021/2022 apparition. I. Photometry, spectroscopy, morphology
Vera Rosenbusha,b, et al. (>5)
Icarus (in Press) Open Access Link to Article [https://doi.org/10.1016/j.icarus.2025.116799]
aAstronomical Observatory of Taras Shevchenko National University of Kyiv, 3 Observatorna St., Kyiv 04053, Ukraine
Copyright Elsevier
The YORP effect for meter-sized asteroids
Conor J. Benson, Daniel J. Scheeres
Icarus (in Press) Open Access Link to Article [https://doi.org/10.1016/j.icarus.2025.116794]
University of Colorado Boulder, 3775 Discovery Drive, Boulder, CO 80303, USA
Copyright Elsevier
Geological mapping and chronology of lunar landing sites: Apollo 15
I.W. Iqbal1, J.W. Head IIIb, L. Wuellera, H. Hiesingera, C.H. van der Bogerta, D.R. Scottb,c
Icarus (in Press) Open Access Link to Article [https://doi.org/10.1016/j.icarus.2025.116791]
aInstitut für Planetologie, Universität Münster, Wilhelm-Klemm-Str. 10, 48149 Münster, Germany
bDepartment of Earth, Environmental and Planetary Sciences, Brown University, Providence, RI 02912, USA
aApollo 15 Commander, USA
Copyright Elsevier
Century-scale effect of climate change on meteorite falls
Eloy PENA-ASENSIO1,2, Denis VIDA3,4, Ingrid CNOSSEN5 , and Esteban FERRER2
Meteoritics & Planetary Science (in Press) Link to Article [https://doi.org/10.1111/maps.70046]
1Department of Geosciences, University of Arizona Geosciences, Tucson, Arizona, USA
2School of Earth and Space Exploration, Arizona State University, Tempe, Arizona, USA
3Lawrence Livermore National Laboratory, Livermore, California, US
Published by arrangement with John Wiley & Sons
Climate change is inducing a global atmospheric contraction above the tropopause (~10 km), leading to systematic decrease in neutral air density. The impact of climate change on small meteoroids has already been observed over the last two decades, with documented shifts in their ablation altitudes in the mesosphere (~50–85 km) and lower thermosphere (~85–120 km). This study evaluates the potential effect of these changes on meteorite-dropping fireballs, which typically penetrate the stratosphere (~10–50 km). As a case study, we simulate the atmospheric entry of the fragile Winchcombe carbonaceous chondrite under projected atmospheric conditions for the year 2100 assuming a moderate future emission scenario. Using a semi-empirical fragmentation and ablation model, we compare the meteoroid’s light curve and deceleration under present and future atmospheric density profiles. The results indicate a modest variation of the ablation heights, with the catastrophic fragmentation occurring 300 m lower and the luminous flight terminating 190 m higher. The absolute magnitude peak remains unchanged, but the fireball would appear 0.5 dimmer above ~120 km. The surviving meteorite mass is reduced by only 0.1 g. Our findings indicate that century-scale variations in atmospheric density caused by climate change moderately influence bright fireballs and have a minimal impact on meteorite survival.