Composition, Structure and Origin of the Moon
arXiv:2408.16840 · doi:10.1016/B978-0-323-99762-1.00138-8
Abstract
Here we critically examine the geophysical and geochemical properties of the Moon in order to identify the extent to which dynamical scenarios satisfy these observations. New joint inversions of existing lunar geophysical data (mean mass, moment of inertia, and tidal response) assuming a laterally- and vertically homogeneous lunar mantle show that, in all cases, a core with a radius of 30020 km (0.8 to 1.5 % the mass of the Moon) is required. However, an Earth-like Mg# (0.89) in the lunar mantle results in core densities (7800100 kg/m) consistent with that of Fe-Ni alloy, whereas FeO-rich compositions (Mg# = 0.80--0.84) require lower densities (6100800 kg/m). Geochemically, we use new data on mare basalts to reassess the bulk composition of the Moon for 70 elements, and show that the lunar core likely formed near 5 GPa, 2100 K and 1 log unit below the iron-wüstite buffer. Moreover, the Moon is depleted relative to the Earth's mantle in elements with volatilities higher than that of Li, with this volatile loss likely having occurred at low temperatures (1400100 K), consistent with mass-dependent stable isotope fractionation of moderately volatile elements (e.g., Zn, K, Rb). The identical nucleosynthetic (O, Cr, Ti) and radiogenic (W) isotope compositions of the lunar and terrestrial mantles, strongly suggest the two bodies were made from the same material, rather than from an Earth-like impactor. Rb-Sr in FANs and Lu-Hf and Pb-Pb zircon ages point Moon formation close to 4500 Ma. Taken together, there is no unambiguous geochemical or isotopic evidence for the role of an impactor in the formation of the Moon, implying perfect equilibration between the proto-Earth and Moon-forming material or alternative scenarios for its genesis.
62 pages, 23 figures, 5 tables. Treatise of Geochemistry, vol. 3, in press
References in corpus (49)
- A low mass for Mars from Jupiter's early gas-driven migration
- Streaming Instabilities in Protoplanetary Disks
- GIZMO: A New Class of Accurate, Mesh-Free Hydrodynamic Simulation Methods
- The origins and concentrations of water, carbon, nitrogen and noble gases on Earth
- Rapid growth of gas-giant cores by pebble accretion
- Accretion and differentiation of the terrestrial planets with implications for the compositions of early-formed Solar System bodies and accretion of water
- Equilibration in the Aftermath of the Lunar-Forming Giant Impact
- The origin of the Moon within a terrestrial synestia
- Oxygen isotopic evidence for vigorous mixing during the Moon-forming Giant Impact
- Formation of Kuiper Belt Binaries by Gravitational Collapse
- Bifurcation of planetary building blocks during Solar System formation
- Melting and Mixing States of the Earth's Mantle after the Moon-Forming Impact
- A hit-and-run Giant Impact scenario
- A Shorter 146Sm Half-Life Measured and Implications for 146Sm-142Nd Chronology in the Solar System
- Tidal dissipation compared to seismic dissipation: in small bodies, in earths, and in superearths
- Planetary and meteoritic Mg/Si and d30Si variations inherited from solar nebula chemistry
- Formation of Terrestrial Planets from Protoplanets under a Realistic Accretion Condition
- Multiple Impact Origin for the Moon
- Contemporary formation of early solar system planetesimals at two distinct radial locations
- Terrestrial planet formation from lost inner solar system material
- Tidal evolution of the Moon from a high-obliquity, high-angular-momentum Earth
- Chemistry of Impact-Generated Silicate Melt-Vapor Debris Disks
- The structure of terrestrial bodies: Impact heating, corotation limits and synestias
- Lunar accretion from a Roche-interior fluid disk
- High-Resolution Simulations of a Moon-Forming Impact and Post-Impact Evolution
- Gallium isotopic evidence for extensive volatile loss from the Moon during its formation
- Chromium isotopic homogeneity between the Moon, the Earth, and enstatite chondrites
- A primordial origin for the composition similarity between the Earth and the Moon
- Investigation of the Initial State of the Moon-Forming Disk: Bridging SPH Simulations and Hydrostatic Models
- Volatile loss following cooling and accretion of the Moon revealed by chromium isotopes
- Lunar Laser Ranging Science: Gravitational Physics and Lunar Interior and Geodesy
- Inefficient volatile loss from the Moon-forming disk: reconciling the giant impact hypothesis and a wet Moon
- Thermodynamics of Element Volatility and its Application to Planetary Processes
- Solubility of Rock in Steam Atmospheres of Planets
- Immediate origin of the Moon as a post-impact satellite
- Uranian Satellite Formation by Evolution of a Water Vapor Disk Generated by a Giant Impact
- VapoRock: Thermodynamics of vaporized silicate melts for modeling volcanic outgassing and magma ocean atmospheres
- Metal-silicate partitioning of W and Mo and the role of carbon in controlling their abundances in the Bulk Silicate Earth
- Primordial Earth mantle heterogeneity caused by the Moon-forming giant impact
- Large planets may not form fractionally large moons
- Chemical Equilibrium Calculations for Bulk Silicate Earth Material at High Temperatures
- Collision Chains among the Terrestrial Planets. III. Formation of the Moon
- A hot big bang theory: magnetic fields and the early evolution of the protolunar disk
- A Self-Consistent Model for Dust-Gas Coupling in Protoplanetary Disks
- Magneto-rotational instability in the protolunar disk
- A Magnetized, Moon-Forming Giant Impact
- Effect of Equation of State and Cutoff Density in Smoothed Particle Hydrodynamics Simulations of the Moon-Forming Giant Impact
- The Limited Role of the Streaming Instability During Moon and Exomoon Formation
- Forming equal mass planetary binaries via pebble accretion