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- W4211232013 abstract "We examined the spectral reflectance properties of 16 CO-type carbonaceous chondrites (CCs) in order to better understand their range of spectral properties, develop spectral–compositional correlations, and provide information that may aid in the search for CO parent bodies. As a group, our CO powder spectra have some similarities and differences. COs have experienced varying degree of thermal metamorphism, with petrologic subgrades ranging from ∼CO3.0 to ∼CO3.8. Their reflectance spectra are characterized by a ubiquitous absorption feature in the 1 μm region, and a nearly ubiquitous feature in the 2 μm region that appears in CO >3.1 spectra. The 1 μm region feature is attributable to abundant Fe-bearing amorphous phases (and Fe-poor olivine) in the lower petrologic subtypes, which gradually transforms to more abundant and Fe-rich olivine with increasing metamorphism. The increase in depth and decrease in wavelength position of this feature are consistent with this transformation. All but the least-altered COs also exhibit an absorption feature in the 2 μm region whose depth also generally increases with increasing metamorphic grade, resulting in increasingly blue-sloped spectra and larger band area ratios. The wavelength position and change in depth of this feature (ranging from 0% to 12.2%) is consistent with increasing Fe2+ in spinel, which is present in calcium–aluminum and ameboid olivine inclusions. Reflectance of a local reflectance maximum near 0.8 μm increases with increasing thermal metamorphism and this is likely due to the loss and aggregation of carbonaceous phases. The increasing reflectance is negatively correlated with various measures of spectral slope (i.e., brighter = bluer), and while this cannot be uniquely attributed to any one cause, it is consistent with increasing spinel Fe2+ content and decreasing carbonaceous material abundance or aggregation. With decreasing grain size, CO spectra normally become brighter and more red-sloped. The 0.6/0.5 μm ratios of CO falls are consistently higher than CO finds, suggesting that terrestrial weathering has affected the visible wavelength region spectral properties of finds. Unmetamorphosed CO spectra may be difficult to distinguish from the least altered CM chondrites. However above petrologic grade ∼3.1, COs can be uniquely discriminated from CI, CM, metamorphosed CI and CM, and CR chondrites, by the presence of both olivine and spinel absorption bands. Some K-class asteroids exhibit olivine and spinel absorption bands, consistent with CO chondrites, although modeled olivine:spinel ratios are generally lower in these asteroids than in CO chondrites." @default.
- W4211232013 created "2022-02-13" @default.
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- W4211232013 date "2012-08-01" @default.
- W4211232013 modified "2023-10-10" @default.
- W4211232013 title "Spectral reflectance properties of carbonaceous chondrites – 5: CO chondrites" @default.
- W4211232013 cites W123234008 @default.
- W4211232013 cites W1479745581 @default.
- W4211232013 cites W1799557730 @default.
- W4211232013 cites W1964705746 @default.
- W4211232013 cites W1966383562 @default.
- W4211232013 cites W1967876833 @default.
- W4211232013 cites W1972339240 @default.
- W4211232013 cites W1976015855 @default.
- W4211232013 cites W1976109197 @default.
- W4211232013 cites W1977827800 @default.
- W4211232013 cites W1982900694 @default.
- W4211232013 cites W1986530877 @default.
- W4211232013 cites W1987234791 @default.
- W4211232013 cites W1990440036 @default.
- W4211232013 cites W1990649527 @default.
- W4211232013 cites W1992682948 @default.
- W4211232013 cites W1995710772 @default.
- W4211232013 cites W1996778241 @default.
- W4211232013 cites W1997805773 @default.
- W4211232013 cites W1999444413 @default.
- W4211232013 cites W2000869872 @default.
- W4211232013 cites W2000942029 @default.
- W4211232013 cites W2003374005 @default.
- W4211232013 cites W2014041841 @default.
- W4211232013 cites W2016167416 @default.
- W4211232013 cites W2023284063 @default.
- W4211232013 cites W2024142864 @default.
- W4211232013 cites W2026108757 @default.
- W4211232013 cites W2028165414 @default.
- W4211232013 cites W2030892084 @default.
- W4211232013 cites W2033688233 @default.
- W4211232013 cites W2034585952 @default.
- W4211232013 cites W2038248875 @default.
- W4211232013 cites W2043161772 @default.
- W4211232013 cites W2045284966 @default.
- W4211232013 cites W2047070047 @default.
- W4211232013 cites W2048941742 @default.
- W4211232013 cites W2052885750 @default.
- W4211232013 cites W2054889081 @default.
- W4211232013 cites W2058394888 @default.
- W4211232013 cites W2063092091 @default.
- W4211232013 cites W2064840320 @default.
- W4211232013 cites W2071786271 @default.
- W4211232013 cites W2080124703 @default.
- W4211232013 cites W2081946112 @default.
- W4211232013 cites W2089708452 @default.
- W4211232013 cites W2094598311 @default.
- W4211232013 cites W2095260679 @default.
- W4211232013 cites W2103780298 @default.
- W4211232013 cites W2103860360 @default.
- W4211232013 cites W2105366506 @default.
- W4211232013 cites W2105775282 @default.
- W4211232013 cites W2108670073 @default.
- W4211232013 cites W2111097761 @default.
- W4211232013 cites W2115724600 @default.
- W4211232013 cites W2117213512 @default.
- W4211232013 cites W2118716221 @default.
- W4211232013 cites W2143996386 @default.
- W4211232013 cites W2158194328 @default.
- W4211232013 cites W2162403785 @default.
- W4211232013 cites W2170905065 @default.
- W4211232013 cites W3101860351 @default.
- W4211232013 cites W40659960 @default.
- W4211232013 cites W4211021246 @default.
- W4211232013 cites W4211069103 @default.
- W4211232013 cites W4246069094 @default.
- W4211232013 doi "https://doi.org/10.1016/j.icarus.2012.05.019" @default.
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