Lunar Mineralogical Evidence Provided by Chang’e-5 Lunar Soil Microscopic Images and Raman Spectroscopy

1Fanli Lin, 1Jiansheng Wang, 1Huaiyuan Wang, 1Kaijie Dai, 1,2Kun Ding, 1,2Zhiping He, 1Qingli Li
Journal of Geophysical Research: Planets, 131, e2026JE009952
Link to Article [DOI: 10.1029/2026JE009952]
1Shanghai Key Laboratory of Multidimensional Information Processing, East China Normal University, Shanghai, China
2Shanghai Institute of Technical Physics, Chinese Academy of Sciences, Shanghai, China

Published by arrangement with John Wiley & Sons

The Chang’e-5 lunar regolith samples are returned samples of young mare basalt, possessing significant scientific research value. This paper performs nondestructive analysis on one of the Chang’e-5 basalt samples using scanning electron microscopy and micro-Raman spectroscopy. Through the analysis of the mineralogical characteristics, modal abundance, and impact effects of the sample, it is found that the sample is relatively consistent in composition with most Chang’e-5 lunar regolith samples, being low-titanium mare basalt that has undergone a certain degree of impact events. The analysis of quartz and plagioclase indicates that the impact pressure experienced by the young mare basalt is limited to a maximum of 20–25 GPa, with a minimum impact pressure of at least 5.2 GPa. Additionally, both this sample and the Chang’e-5 lunar regolith samples should likely originate from a low-titanium magma source, which may possibly have formed through the partial melting of a mixed magma composed of early refractory cumulates and late ilmenite-bearing cumulates, followed by fractional crystallization in a shallow magma reservoir before being erupted onto the lunar surface, and is compositionally distinct from Apollo and CE-6 basalts as an evolved, low-Ti late-stage basalts. This research can provide mineralogical evidence for understanding the thermal evolution of the Moon, particularly the late-stage volcanic activity and internal thermodynamic changes.

High-Fidelity Lunar Mare Agglutinates and Their Mechanical Effects on Lunar Regolith Simulants

1,2Shun Wang, 1,2Yue Teng, 3Yifei Cui, 3Ao Luo, 1,2Dianqing Li
Journal of Geophysical Research: Planets, 131, e2026JE009810
Link to Article [DOI: 10.1029/2026JE009810]
1State Key Laboratory of Water Resources Engineering and Management, Wuhan University, Wuhan, China
2School of Water Resources and Hydropower Engineering, Institute of Hydraulic Engineering Risk and Disaster Prevention, Wuhan University, Wuhan, China
3Department of Hydraulic Engineering, Tsinghua University, Beijing, China

Published by arrangement with John Wiley & Sons

Lunar agglutinates, which are glass-rich aggregates formed through space weathering, are a key constituent of lunar regolith and strongly influence its engineering properties. This study develops a high-fidelity agglutinate simulant via high-temperature vacuum sintering, yielding particle morphology and chemical composition similar to those of Chang’e-5 samples. The effects of key sintering parameters, including temperature, binder fraction, structural support agent content, and dwell time, on the microstructure and single-particle compression strength are investigated. Furthermore, a new lunar regolith simulant (WHU-1A) is produced by incorporating different agglutinates, and its mechanical response is assessed through angle-of-repose and small-scale triaxial tests. The results demonstrate that, under controlled density conditions, agglutinate characteristics significantly influence regolith mechanical behavior. Weakly bonded agglutinates induce a limited increase in shear strength, whereas extensively melted agglutinates markedly enhance shear strength but also promote strain softening. This coupled strengthening–softening effect is most pronounced in specimens with high glass content.

Iron Isotope Fractionation on Vesta Driven by Magma Ocean Process

1,2Jinting Kang, 1Zhengyu Hou, 1Haochen Yang, 1Xue Tang, 2,3Weibiao Hsu, 1,2Fang Huang
Journal of Geophysical Research: Planets, 131, e2026JE009894
Link to Article [DOI: 10.1029/2026JE009894]
1State Key Laboratory of Lithospheric and Environmental Coevolution, School of Earth and Space Sciences, University of Science and Technology of China, Hefei, China
2Deep Space Exploration Laboratory, Hefei, China
3Purple Mountain Observatory, Chinese Academy of Sciences, Nanjing, China

Published by arrangement with John Wiley & Sons

Magma oceans represent a pivotal stage in the early evolution of terrestrial planets. Early-formed asteroids, driven by the decay of 26Al, may have also experienced such magma ocean processes. To investigate potential magma ocean differentiation on asteroid 4 asteroids, we reported high-precision iron isotope data for 25 eucrites and 13 diogenites. Eucrites exhibit a δ56Fe range of approximately 0.1‰, varying from −0.044 to 0.073‰, with a mean value of 0.020 ± 0.013‰ (2SE, N = 25). Diogenites display δ56Fe ranging from −0.051 to 0.018‰, yielding an average of −0.004 ± 0.011‰ (2SE, N = 13). The observed Fe isotope variation and offset between eucrites and diogenites cannot be produced by terrestrial weathering, impacts, and core formation. Combined with MELTS modeling using two different initial compositions for Vesta, the isotope variation can be explained by magma ocean differentiation. A cross-planetary comparison is made with the Moon, where magma ocean differentiation and associated Fe isotope variations have been extensively studied. Vestan samples exhibit remarkably limited δ56Fe variation (∼0.1‰) compared to lunar basalts (∼0.3‰). This dichotomy may reflect distinct magma ocean evolution pathways across planetary bodies: later pyroxene crystallization, the absence of ilmenite-driven mantle overturn, and rapid cooling in the case of Vesta. Thus, planetary geochemical diversity is fundamentally shaped by magma ocean dynamics modulated by body size, composition, and thermal history.

A Reassessment of the Lithium Isotope Composition of the Moon Using Mare Basalt, Mg-Suite and Anorthosite Meteorites

1Heng-Ci Tian, 1Wei Yang, 2Huijuan Zhang, 1Jingyan Cai, 1Yangting Lin, 3Keqing Zong, 4Qi Liu, 5Feixiang Liu, 6Caihong Gao, 7Maoyong He
Journal of Geophysical Research: Planets, 131, e2026JE010077 Link to Article [DOI: 10.1029/2026JE010077]
1Key Laboratory of Planetary Science and Frontier Technology, Institute of Geology and Geophysics, Chinese Academy of Sciences, Beijing, China
2East China University of Technology, Nanchang, China
3State Key Laboratory of Geological Processes and Mineral Resources, School of Earth Sciences, China University of Geosciences, Wuhan, China
4State Key Laboratory of Critical Mineral Research and Exploration, Institute of Geochemistry, Chinese Academy of Sciences, Guiyang, China
5School of Earth Sciences and Engineering, Nanjing University, Nanjing, China
6Research Center for Planetary Science, College of Earth Sciences, Chengdu University of Technology, Chengdu, China
7State Key Laboratory of Loess Science, Institute of Earth Environment, Chinese Academy of Sciences, Xi’an, China

Published by arrangement with John Wiley & Sons

To further constrain the lunar Li isotopic composition and its behavior during lunar magmatic differentiation, we measured twelve lunar meteorites, including mare basalts, Mg-suite rocks and anorthosites. Petrographic observation, dilute acid cleaning, and trace elemental characteristics indicate minimal terrestrial contamination. Low-Ti basalt meteorites yield a restricted δ7Li range (2.75 ± 0.52‰ to 3.95 ± 0.16‰), consistent with Apollo low-Ti basalts (3.1∼5.6‰). The Mg-rich norite Arguin 002 shows a similar value, supporting limited Li isotope fractionation during early lunar magma ocean (LMO) differentiation, a conclusion corroborated by modeling results of Li isotopic evolution during LMO differentiation. The heavier δ7Li in high-Ti basalts, however, points to the presence of interaction between ilmenite-bearing cumulate-derived melts and the ambient mantle rather than to simple late-stage LMO differentiation. Combining the reported Apollo and La Paz mare basalt meteorites data, we estimate the lunar mantle δ7Li to be 3.8 ± 1.3‰, indistinguishable from the Earth’s mantle, implying negligible fractionation during the Giant Impact. In contrast, lunar anorthosites exhibit extreme δ7Li variations (−0.7‰ to 9.8‰) with a negative correlation with Li content, likely reflecting impact-driven secondary redistribution. These findings not only confirm the Earth-Moon Li isotopic similarity using meteorites from diverse lunar terrains that complement the Apollo collection but also reveal that the lunar crust has been pervasively modified by impact processes, which have significantly disturbed its primary Li isotopic compositions.

Linear spectral unmixing with iterative error analysis for mineral mapping of Theophilus crater using Moon Mineralogy Mapper (M3) hyperspectral data

1Hyunseob Baik, 2Eun-Jin Cho, 1Kwang-Eun Kim
Icarus (in Press)
Open Access Link to Article [DOI: 10.1016/j.icarus.2026.117341]
1Resources Exploration & Development Research Division, Korea Institute of Geosciences and Mineral Resources (KIGAM), Daejeon, Republic of Korea
2Division of Space Exploration, Korea Astronomy and Space Science Institute (KASI), Daejeon, Republic of Korea

Copyright Elsevier

The Moon Mineralogy Mapper (M3) acquired 85-band hyperspectral data (430–3000 nm) at 140 m/pixel resolution between 2008 and 2009 for spectral imaging of the lunar surface. Conventional per-pixel methods, such as the Modified Gaussian Model (MGM) and Integrated Band Depth (IBD), have been widely used for lunar mineral detection but address complementary problems and do not provide sub-pixel abundance estimates across entire scenes. In this study, linear spectral unmixing (LSU) with Iterative Error Analysis (IEA) endmember extraction was applied to M3 Level 2 reflectance data for sub-pixel mineral mapping of Theophilus crater. After noise reduction via Minimum Noise Fraction (MNF) and enhancement of absorption features through continuum removal, IEA extracted five image-derived endmembers without prior mineralogical information or reference libraries. The extracted endmembers were subsequently identified against 23 reference spectra from the RELAB and USGS spectral libraries using explicit criteria based on diagnostic absorption-band positions and Pearson correlation (r = 0.87–0.97 for the assigned minerals). Four endmembers were identified as spinel, plagioclase, pyroxene, and OH/H2O-bearing materials, while the fifth remains unassigned and likely reflects space-weathering effects or mosaicking artifacts. The five-endmember model reconstructs the observed continuum-removed spectra with a mean RMSE of 0.010, and the derived relative abundance maps show a reasonable spatial correspondence with independent Kaguya Multiband Imager mineral maps (Spearman ρ up to 0.63). The resulting maps show spinel concentrated at the central peak, plagioclase dominating the peak and crater walls, and broadly distributed pyroxene, consistent with previous studies. Notably, the unmixing results reveal spatially distinct abundance maxima for spinel and plagioclase within the central peak, suggesting sub-kilometer compositional gradients within the Pink Spinel Anorthosite (PSA) lithology. This sub-pixel approach yields fractional abundance maps that complement conventional per-pixel methods. The combination of library-independent endmember extraction and library-based identification demonstrates that LSU with IEA provides an effective sub-pixel mapping framework for lunar regions where prior mineralogical knowledge is limited.

Prebiotic organic compounds in asteroid Bennu and Ryugu reflect divergent parent body histories

1,2Angel Mojarro, 2José C. Aponte, 2Daniel P. Glavin, 2Jamie E. Elsila, 1,2Jason P. Dworkin, 3,4,5Harold C. Connolly Jr.
Geochimica et Cosmochimica Acta (in Press)
Open Access
Link to Article [DOI: 10.1016/j.gca.2026.10.003]
1University of Maryland Baltimore County and Center for Research and Exploration in Space Science and Technology, NASA GSFC, Greenbelt, MD, USA
2Solar System Exploration Division, NASA Goddard Space Flight Center, Greenbelt, Maryland, USA
3Department of Geology, School of Earth and Environment, Rowan University, Glassboro, New Jersey, USA
4Department of Earth and Planetary Sciences, American Museum of Natural History, New York, New York, USA
5Lunar and Planetary Laboratory, University of Arizona, Tucson, Arizona, USA

Copyright Elsevier

The return of pristine samples from carbonaceous asteroids Ryugu by JAXA’s Hayabusa2 mission and Bennu by NASA’s OSIRIS-REx mission has enabled the direct comparative study of prebiotic organic compounds across the two primitive bodies. Using pyrolysis, thermochemolysis, and one-pot derivatization coupled to gas chromatography-triple quadrupole-mass spectrometry, we analyzed free volatile, insoluble, and soluble organic matter in a Ryugu aggregate and compared results to a Bennu aggregate and stones of interest. Pyrolysis of the Ryugu sample revealed polycyclic aromatic hydrocarbons, their alkylated homologues, and sulfur-, oxygen-, and nitrogen-bearing heterocyclic aromatic compounds consistent with aqueous alteration of the parent body. One-pot derivatization of the Ryugu aggregate yielded only tentative detections of β-alanine and 2,4-diaminopyrimidine. This is in contrast to the 14 proteinogenic α-amino acids and five canonical nucleobases previously detected across Bennu samples using the same technique. Thermochemolysis of the Ryugu sample revealed limited methylated derivatives while Bennu samples did not yield compounds above the procedural blank. The sparse thermochemolysis detections in samples from both asteroids are notable given that diverse methylated derivatives have been reported from the Orguiel (CI1) and Murchison (CM2) meteorites. We interpret these results as most likely originating from reagent-mineral interactions suppressing TMAH yields. Overall, contrasting organic inventories reflect divergent-parent body histories. Results from the Ryugu samples are consistent with a CI1-like classification, displaying increased alkylation of insoluble organic matter alongside depleted soluble organic matter abundances. In contrast, Bennu preserves heterogeneous organic signatures across stones recording multiple distinct alteration episodes. The presence of prebiotic molecules including amino acids and nucleobases across both asteroids further highlights the significance of carbonaceous bodies in contributing the chemical building blocks of life throughout the early Solar System.

Impact-induced formation of low-Ca pyroxene in a partially melted troctolitic clast from the Chang’e-5 lunar regolith

1Yang Bai et al. (>10)
Geochimica et Cosmochimica Acta (in Press) Link to Article [DOI: 10.1016/j.gca.2026.09.038]
1State Key Laboratory of Continental Evolution and Early Life, NWU-HKU Joint Center of Earth and Planetary Sciences, Department of Geology, Northwest University, Xi’an 710069, China

Copyright Elsevier

The composition of the lunar deep interior remains debated, as remote sensing observations indicate that impact-excavated materials from within and around large basins contain both olivine and low-Ca pyroxene (LCP). Here we show a partially melted exotic troctolitic clast from Chang’e-5 lunar soils that records impact-induced mineral transformations. The exotic clast consists of forsteritic olivine grains with magnesium-rich rims and pyroxene crystals embedded in a feldspathic glassy matrix. Pyroxene crystals occur as elongated aggregates, with dendritic crystallites growing along the grain edges. The elongated pyroxene crystals show distinct zoning, with Fe-enriched, low-Ca cores and Al-enriched, high-Ca rims, while the dendritic crystallites are compositionally identical to the rims. Elemental mass-balance considerations suggest that impact-induced melting and recrystallization of olivine and anorthite generated the observed LCP–Al-rich high-Ca pyroxene (HCP) assemblage, with Si released during anorthite transformation compensating for the substantial Si consumption during LCP formation. These observations indicate that the LCP formed through impact-induced partial melting of an olivine-rich troctolite under rapid cooling conditions, rather than being a primary phase excavated from the lunar deep interior. Our findings demonstrate that LCP signatures observed around large impact basins, e.g., Imbrium and South Pole-Aitken basins, may originate from impact-modified olivine-rich lithologies, rather than being directly excavated from the deep interior. These results raise the possibility that such transformations may be a widespread process associated with large-scale impacts on the Moon and have important implications for the interpretation of remote sensing data and constraints on the composition of the lunar interior.

Thermal history, collisional history, and structure of the CK-chondrite parent body

1,2Alan E. Rubin
Meteoritics & Planetary Science (in Press)
Open Access Link to Article [DOI: 10.1111/maps.70244]
1Department of Earth, Planetary, and Space Sciences, University of California, Los Angeles, California, USA
2Maine Mineral & Gem Museum, Bethel, Maine, USA

Published by arrangement with John Wiley & Sons

Major chondrite groups (H, L, LL, R, EH, EL, CK) with some members of petrologic type 5 and 6 also have some members of types 3 and 4; they do not have members of type 1 or 2. Their parent bodies had onion-shell structures and were internally heated by the decay of 26Al. These bodies experienced significant thermal metamorphism but only minor aqueous alteration. Major chondrite groups (CI, CM, CV, CR) that have at least some members of petrologic type 1 or 2 have no members of petrologic type 5 or 6. Their parent bodies were subjected to extensive aqueous alteration but little thermal metamorphism. As shown previously, there is a positive correlation between petrologic type and shock stage in ordinary chondrites. Their parent bodies were disrupted and reassembled while still hot; subsequent stochastic collisions caused the exposed hotter materials (i.e., outcrops of higher petrologic types) to develop more-intense shock features. Although CK chondrites encompass the entire range of metamorphic petrologic types (3–6), they exhibit no correlation between petrologic type and shock stage. This may indicate the CK parent body was relatively small, cooled quickly, and was disrupted and reassembled into a rubble pile after it had already cooled down. Stochastic collisions into surface regions that had already cooled down would have resulted in every CK petrologic type developing about the same mean shock stage.

Coupled Effects of Grain Size and Metallic Iron on Spectral and Polarimetric Properties of Lunar Simulants

1Eunjin Cho (>10)
Journal of Geophysical Research: Planets, 131, e2026JE009905
Open Access Link to Article [DOI: 10.1029/2026JE009905]
1Korea Astronomy and Space Science Institute, Daejeon, Republic of Korea

Published by arrangement with John Wiley & Sons

The lunar surface is heterogeneous in grain size and metallic iron abundance due to diverse histories of space weathering. The spectral and polarimetric properties of the lunar regolith are strongly affected by both grain size and metallic iron particles. However, because physical and chemical alteration processes are closely coupled in their effects on optical properties, their combined influence remains poorly constrained. In this study, lunar simulants (JSC-1A and KLS-1) were sieved into two bulk-type and three size-separated fractions, and hydrogen reduction was conducted to produce metallic iron particles on grain surfaces. The spectral and polarimetric properties of these samples were then systematically measured. After reduction, reflectance decreases while the degree of positive polarization increases, consistent with Umov’s law. In addition, reflectance contrasts among grain sizes are reduced because fine grains preferentially darken, whereas the polarization–albedo relation remains sensitive to grain size. The reflectance of bulk-type fractions is intermediate, unlike that of natural bulk lunar soils, which resembles the finest fractions. In contrast, the polarization–albedo behavior of bulk-type fractions is close to that of the finest fraction. These differences from natural lunar soils suggest that agglutinates, which are absent in our reduced samples, may be important for the optical properties of natural bulk lunar soils. Further comparisons using natural lunar soils will help clarify the relative roles of agglutinates and grain-surface weathering products in controlling the optical properties of lunar regolith.

Incorporation of atmospheric components in planetary magma oceans through bubble–metal compounds

1Fabrice Gaillard, 2Luiz Pereira, 1Laurent Arbaret, 1Giada Iacono-Marziano, 1Emmanuel Le Trong, 1,3Fabien Bernadou, 4Yves Marrocchi
Science, 394, 97–101 Link to Article [DOI: 10.1126/science.aef2542]
1Institut des Sciences de la Terre d’Orléans, CNRS/Université d’Orléans/BRGM, Orléans, France
2GEOLAB, Hangzhou International Innovation Institute, Beihang University, Hangzhou, China
3CNRS, Géosciences Environnement Toulouse (GET), Observatoire Midi-Pyrénées, Toulouse, France
4Université de Lorraine, CNRS, CRPG, Nancy, France

Peprinted with permission from AAAS

Atmophile elements (carbon, hydrogen, and nitrogen) were thought to accrete late during planetary formation, yet cosmochemical and astrophysical evidence suggests that they were already present while small bodies, such as Vesta, were forming. High-temperature magmatic events on small bodies, however, should have outgassed these ultravolatile elements because gravity would have been insufficient to retain them. In this study, experiments reveal that gas bubbles strongly attach to metal droplets in magma ocean–like mixtures, forming compounds that resist segregation. Early flotation of such compounds would have enhanced mantle siderophile endowment, eliminating the need for late accretion. On small bodies, low gravity would have enabled millimeter- to centimeter-sized compounds to sink, trapping atmophiles in their interiors. This mechanism links core formation to the early entrapment of atmophile elements and provides a framework for reconciling volatile delivery across planetary bodies and planetary accretion models.