日本地球惑星科学連合2022年大会

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セッション記号 B (地球生命科学) » B-CG 地球生命科学複合領域・一般

[B-CG05] 地球史解読:冥王代から現代まで

2022年5月22日(日) 10:45 〜 12:15 304 (幕張メッセ国際会議場)

コンビーナ:小宮 剛(東京大学大学院総合文化研究科広域科学専攻)、コンビーナ:加藤 泰浩(東京大学大学院工学系研究科システム創成学専攻)、鈴木 勝彦(国立研究開発法人海洋研究開発機構・海底資源センター)、コンビーナ:中村 謙太郎(東京大学大学院工学系研究科システム創成学専攻)、座長:渡辺 泰士(東京大学)、小宮 剛(東京大学大学院総合文化研究科広域科学専攻)

11:00 〜 11:15

[BCG05-08] Limited Mo isotopic fractionation in ~2.35-Gyr-old clastic sedimentary rocks in the Huronian Supergroup

*後藤 孝介1下田 玄1 (1.産業技術総合研究所)

キーワード:大酸化イベント、モリブデン同位体、ヒューロニアン累層群

Atmospheric oxygen rose to appreciable levels during the early Paleoproterozoic, which is often referred to as the Great Oxidation Event (GOE). The disappearance of mass-independent fractionation of sulfur isotopes (MIF-S) in sedimentary rocks suggests the initial rise of atmospheric O2 levels to above 10-5 times the present atmospheric level (PAL) occurred by ~2.43 Ga (e.g., Warke et al., 2020 PNAS 117, 13314–13320). However, recent investigations reveal the preservation of MIF-S in younger sedimentary rocks deposited between 2.35 and 2.25 Ga. (Philippot et al., 2018 Nat. Commun. 9, 2245; Poulton et al., 2021 Nature 592, 232–236). These MIF-S records may reflect fluctuations in atmospheric O2 levels around10-5 PAL between 2.43 to 2.25 Ga (Poulton et al., 2021). Alternatively, the MIF-S signals may capture oxidative weathering of Archean sulfides possessing MIF-S signals (Philippot et al., 2018).
To further understand the atmospheric redox conditions during the early Paleoproterozoic, we analyzed Mo isotopic compositions (δ98/95Mo) of ~2.35-Gyr-old clastic sedimentary rocks from the Espanola and Serpent formations in the Huronian Supergroup. Small MIF-S signals and low Mo concentrations (~1–2 ppm) were previously reported from the studied interval (Yamada et al., 2008 JpGU; Nakamura et al., 2014 JpGU), although the MIF-S signals may reflect the mobilization of detrital pyrite by late fluids (Cui et al., 2018 Astrobiology 18, 519–538). The analyzed samples have an average δ98/95Mo of +0.16 ± 0.33 ‰, which is similar to the average Archean upper continental crust δ98/95Mo (+0.03 ± 0.18‰) estimated from Archean and early Paleoproterozoic glacial diamictites (Greaney et al., 2020 EPSL 534, 116083). The unfractionated δ98/95Mo requires limited oxidative weathering of Mo as well as little authigenic Mo enrichment during deposition. Our results, therefore, suggest low atmospheric O2 conditions at ~2.35 Ga and support the oscillations in atmospheric O2 levels after its initial rise at ~2.43 Ga.