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Distribution of Silica Cements and Grains Associated with South Australian Ediacara Casts by Ge/Si Ratio
Ge/Si RatioCements (approximate)Grains (approximate)
<2.030%80%
2.0–2.512%11%
2.5–3.014%4%
3.0–3.515%2%
3.5–4.012%2%
4.0–4.58%1%
4.5–5.05%1%
>5.05%0%
Silica cements associated with casts of soft-bodied marine organisms from the Ediacaran period (circa 538–635 million years ago) are plausibly attributable to one of two phenomena: rapid postmortem preservation of the organisms via precipitation of cements from silica-rich oceans or cement precipitation via high-pressure reactions long after the organisms were preserved by some other means. Recognizing that such reactions generally result in cements with germanium/silicon (Ge/Si) ratios lower than those of silica grains recovered from the same portion of sandstone, Lidya Tarhan et al. investigated silica cements and grains associated with Ediacaran soft-bodied casts at a site in South Australia.
Based on the information in the text and the graph, Tarhan et al. could most reasonably draw which conclusion?
A
The range of Ge/Si ratios is larger for the cements than for the grains, which suggests that the cements are likely the result of high-pressure reactions that occurred long after the organisms were preserved by some other means than precipitation from a silica-rich ocean.
B
The distribution of Ge/Si ratios indicates that a portion of the cements could have precipitated via high-pressure reactions, which suggests that organisms at the site were less likely to have been preserved via rapid precipitation from a silica-rich ocean than Tarhan et al. hypothesized.
C
The distribution of Ge/Si ratios of the cements and grains is largely inconsistent with the cements having precipitated via high-pressure reactions, which implicitly lends support to the idea that the organisms at the site were quickly preserved by cement precipitation from a silica-rich ocean.
D
The total number of cement samples is much lower than the total number of grains precipitated via high-pressure reactions, which suggests that rapid precipitation from silica-rich oceans could account for the preservation of the site’s organisms.