Lunar-VISE Landing Site Selection and Characterization at Mons Gruithuisen Gamma

The Planetary Science Journal American Astronomical Society 7:7 (2026) 161

Authors:

Jean-Pierre Williams, Margaret E Landis, Kristen A Bennett, Sarah Valencia, Kerri L Donaldson Hanna, Adrienne Dove, Patrick O’Brien, Erwan Mazarico, Javier Benavente, Brett W Denevi, Justin Hagerty, Craig Hardgrove, Paul O Hayne, Lena Heffern, Adam LaMee, Thomas H Prettyman, Katherine A Shirley, Matthew A Siegler, Jessica M Sunshine, John S Karcz, Maria E Banks

Abstract:

The Lunar Vulkan Imaging and Spectroscopy Explorer (Lunar-VISE) was selected for a Commercial Lunar Payload Services (CLPS) delivery to the Gruithuisen domes region of the Moon as part of NASA’s Payloads and Research Investigation on the Surface of the Moon program. The Lunar-VISE instrument payload is designed to investigate the compositional and thermophysical properties of dome materials in order to understand how late-stage silicic volcanism occurred on the Moon. Selection of a landing site required balancing science and exploration goals with the safety requirements for landing and rover trafficability. Science required access to boulders, potential exposures of bedrock, and if possible, rover access to the dome edge to enable observations of the surrounding maria. Safety considerations included landing hazards, maintenance of line-of-sight communications between the lander and rover, and any early morning or late afternoon shadows that would limit the mission duration. After consideration of several candidate landing sites, a 100-meter diameter landing ellipse centered on 36.45715°N, 319.20398°E, was selected near the edge of a topographic step and blocky ejecta crater (recently named Mareta) near the summit of Mons Gruithuisen Gamma. This location enables access to a field of boulders excavated by a relatively fresh impact providing a diversity of boulders for investigations, as well as views to the surrounding mare and Mons Gruithuisen Delta dome off of the dome edge via only a short rover traverse outside the landing ellipse (traverse <100 m) while meeting safety requirements in accord with the CLPS risk posture.

The Lucy flyby of (52246) Donaldjohanson: A bilobed asteroid with tumbling rotation

Science American Association for the Advancement of Science (AAAS) 392:6804 (2026) 1287-1291

Authors:

Simone Marchi, Harold F Levison, Keith S Noll, John R Spencer, Thomas S Statler, Olivier S Barnouin, James F Bell, Edward B Bierhaus, Richard Binzel, William F Bottke, Daniel Britt, Michael E Brown, Marc W Buie, Philip R Christensen, Neil Dello Russo, Joshua P Emery, William M Grundy, Victoria E Hamilton, Carly Howett, Hannah H Kaplan, Katherine Kretke, Tod R Lauer, Brian H May, Stefano Mottola, Catherine B Olkin, Martin Pätzold, Joel Wm Parker, Frank Preusker, Silvia Protopapa, Dennis C Reuter, Stuart J Robbins, Julien Salmon, Amy A Simon, S Alan Stern, Jessica M Sunshine, David Vokrouhlický, Harold A Weaver, Harrison Agrusa, Emily S Costello, Masatoshi Hirabayashi, Fiona Nichols-Fleming, Jennifer EC Scully, Anne Verbiscer, Coralie Adam, John Andrews, Kevin E Berry, Emma Birath, Rich Burns, Russell Carpenter, Mark Effertz

Abstract:

The main belt asteroid (52246) Donaldjohanson (DJ) is a likely member of the Erigone asteroid family. This implies that DJ is a fragment of a larger parent body that was destroyed in a collision about 155 million years ago. We report observations taken during a flyby of DJ by the Lucy spacecraft. We found that DJ is composed of two heavily cratered lobes, connected by a smoother neck, with overall dimensions 8.8 kilometers (km) by 4.4 km by 3.1 km. The crater density is consistent with the Erigone family's age, except for craters <0.4 km, which have been preferentially erased. DJ rotates slowly in a tumbling state, likely owing to spin-down by radiative forces. Surface spectra show iron-bearing phyllosilicates, indicating moderate aqueous evolution on the parent body.

Visible, near‐, and thermal infrared spectra of asteroid Bennu samples: Relationship to and implications for remote sensing of carbonaceous asteroids

Meteoritics & Planetary Science Wiley (2026) maps.70176

Authors:

VE Hamilton, EA Cloutis, RE Milliken, P Haenecour, DR Golish, KJ Domanik, TJ M, LP Keller, AA Simon, HH Kaplan, CA Goodrich, SA Sandford, D Applin, T Hiroi, DH Hill, NG Lunning, FM M, SA Eckley, CJ Snead, EH Blumenfeld, JE Aebersold, C Schultz, N Bowles, KA Shirley, SS Russell

Abstract:

Remote spectroscopy is used to characterize the mineralogy and infer the history of planetary bodies. Carbonaceous asteroids, such as B‐type (101955) Bennu, represent the earliest stages of planet formation. B types have a blue (negative) spectral slope and comprise <5% of asteroids. Samples from Bennu returned by the OSIRIS‐REx spacecraft complement remote observations of this rare population. We show here, using laboratory spectra that are directly comparable to spacecraft data, that OSIRIS‐REx accurately determined Bennu's dust content and most of its surface composition. However, spectra of the asteroid exhibit stronger water absorptions than those of bulk samples, possibly due to hydrous, Mg‐rich phosphate or solar wind implantation at Bennu's uppermost surface. Bennu samples spectrally resemble the most aqueously altered carbonaceous meteorites and samples of (162173) Ryugu, indicating similarly pervasive aqueous alteration. However, one carbon‐enriched Bennu stone does not appear to have a spectral analog among Ryugu samples or meteorites. Our findings demonstrate the leverage obtained using a wide range of wavelengths and that sample analysis anchors the interpretations of remote sensing, leading to more robust characterization of planetary surface composition and evolution.

A Hierarchical Modeling 51 of Absorbing Aerosol Impacts on Precipitation Characteristics and Extremes

Journal of Advances in Modeling Earth Systems American Geophysical Union (AGU) 18:6 (2026) e2025MS005400

Authors:

T Sreelekshmi, Jacob Shpund, Namrah Habib, Guy Dagan

Abstract:

Abstract The impact of anthropogenic aerosols on the mean, spatial, and temporal distribution of precipitation remains a persistent source of uncertainty in climate research. In particular, absorbing aerosols are known to influence cloud formation and precipitation in ways that are not yet fully understood. On average, warming induced by absorbing aerosols is balanced by reduced latent heating from precipitation, so the atmospheric energy budget constrains mean precipitation. This constraint does not apply to spatial or temporal patterns, making the impact of absorbing aerosols on these aspects more uncertain. A recent idealized study suggests that absorbing aerosols can trigger a transition to episodic precipitation, where rainfall occurs in intense, short‐lived events followed by extended dry periods. This transition resembles a previously reported shift under hothouse climate conditions. Specifically, lower tropospheric radiative heating from absorbing aerosols decouples the lower and upper troposphere, suppressing convection for multiple days. During these dry periods, instability builds up until a strong rain event occurs. In this paper, we build on this previous work to further investigate the effects of absorbing aerosols on precipitation characteristics and extremes. We conduct a hierarchy of model simulations that incorporate online aerosol–radiation coupling, the diurnal cycle of solar radiation, convective aggregation in a large‐domain, and large‐scale tropical circulation in a mock Walker simulation. Our results show that the transition to episodic precipitation events under absorbing aerosol perturbation is robust and occurs across all model configurations. We also examine the role of diurnal solar radiation variations and large‐scale circulation in shaping this transition.

Calibration and Performance of the High Resolution Volatiles and Minerals Moon Mapper (HVM 3 ) on Lunar Trailblazer

Earth and Space Science Wiley 13:5 (2026) e2025EA004456

Authors:

David R Thompson, Bethany L Ehlmann, Robert O Green, Gregory D Allen, Holly Bender, Djuna Copley‐Woods, Michael Eastwood, Mark Helmlinger, Christopher Hummel, Jared Keller, Andrew Klesh, Ian McKinley, Bradley D Moore, Pantazis Mouroulis, Shriya Nadgauda, Michael Sondheim, Jose Rodriguez, Charles Sarture, Calina Seybold, Vritika Singh, Christopher Smith, Peter Sullivan, Quentin Vinckier, Walton Williamson, Shannon Kian G Zareh, Neil Bowles, Garni Gharibian

Abstract:

Plain Language Summary: We present laboratory tests of a new instrument, the High‐resolution Volatiles and Minerals Moon Mapper ( H V M 3 ${\mathrm{H}\mathrm{V}\mathrm{M}}^{3}$ ). H V M 3 ${\mathrm{H}\mathrm{V}\mathrm{M}}^{3}$ will launch onboard the National Aeronautics and Space Administration's Lunar Trailblazer mission. It is an imaging spectrometer that will measure the spectrum of reflected sunlight in visible and infrared wavelengths for every pixel of an image. Scientists will interpret these spectra with the goal of measuring how water and ice are distributed across the lunar surface. Our laboratory tests indicate that the instrument is sensitive enough to measure small changes in the content of water on the lunar surface. We find the instrument capable of measuring areas of the Moon that are in permanent shadow using light reflected from neighboring surfaces like crater walls.