HR: 08:45h
AN: P11A-04 [PDF]
TI: Role of Impact-Induced, Vapor-Phase Deposition in the Lunar Regolith Formation: Clues from the New
Mineral, Hapkeite
AU: * Anand, M
EM: anandm@utk.edu
AF: Planetary Geosciences Inst., Univ. of Tennessee, Knoxville, TN 37996 United States
AU: Taylor, L
EM:
AF: Planetary Geosciences Inst., Univ. of Tennessee, Knoxville, TN 37996 United States
AU: Nazarov, M
EM:
AF: Vernadsky Inst, of Geochemistry and Analytical Chemistry, Moscow, 11975
Russian Federation
AU: Shu, J
EM:
AF: Geophysical Lab, Carnegie Inst. of Washington, Washington DC, 20015 United States
AU: Mao, H
EM:
AF: Geophysical Lab, Carnegie Inst. of Washington, Washington DC, 20015 United States
AU: Hemley, R
EM:
AF: Geophysical Lab, Carnegie Inst. of Washington, Washington DC, 20015 United States
AB:
To correctly interpret the spectral properties of airless planetary bodies such as the Moon, Vesta, etc., it is important to
understand the complex space-weathering processes responsible for their soil formation. In the absence of water and
atmosphere, micrometeorite impacts play the dominant role in soil development on such airless bodies. Kinetics of such
transient impacts can result in ultra-high-temperature events and cause melting and vaporization of even less-volatile
elements in the soil. A regolith-breccia clast in lunar meteorite Dh-280 contains small (e.g. 10-20$\mu$m) opaque mineral
grains consisting of three distinct new lunar mineral phases- FeSi, Fe2Si, FeSi2 [Anand et al., 2002, 2003, LPSC]. We have
named the Fe2Si mineral, HAPKEITE, in honor of Prof. Bruce Hapke. We are using a new X-ray microdiffraction technique with
beamline 7.3.3 of ALS to refine and determine the crystal structures of these Fe-Si phases. Preliminary results indicate the
possibility of superlattice structures in some cases. The presence of Fe-Si phases in a lunar soil fragment in Dh-280
indicates extreme reducing conditions. The two most plausible reduction mechanisms include impact-induced a) melting,
evaporation, and vapor deposition and b) solar-wind hydrogen reduction. Our preferred scenario for the formation of these
phases involves the melting and vaporization of lunar soil by micrometeorite impact. The transient, ultra-high-temperature
impact could cause vaporization and thermal dissociation of FeO and SiO2 into their constituent atoms. The ubiquitous
presence of np-Fe in silica-rich glass on the surface of most mature, lunar-soil grains has already been confirmed (Keller \&
McKay, 1993, Science). We propose that with further dissociation, the Si in the vapor phase could readily combine, in
various proportions, with Fe, and condense as Fe-Si grains. These observations necessitate further careful investigation of
lunar soils for the presence of Fe-Si phases, as these can significantly contribute towards the spectral reflectance of lunar
soils, the actual material observed remotely.
UR: http://web.utk.edu/~anandm/phd-research.htm#lunar-res
DE: 5420 Impact phenomena (includes cratering)
DE: 5464 Remote sensing
DE: 5470 Surface materials and properties
DE: 6240 Meteorites and tektites
DE: 6250 Moon (1221)
SC: Planetary Sciences [P]
MN: 2003 Fall Meeting