锆石
地质学
宇宙成因核素
地质年代学
沉积岩
地球化学
沉积物
剥蚀
表面暴露年代测定
古生物学
绝对年代测定
年代地层学
氪
放射性核素
矿物
地貌学
核素
地质记录
砂矿开采
沉积作用
地球科学
等时线测年
放射性碳年代测定
火山作用
矿物学
地层学
风化作用
作者
Maximilian Dröllner,MILO BARHAM,Christopher L. Kirkland,Taryn Scharf,Sabrina Niemeyer,Tibor J. Dunai
标识
DOI:10.1073/pnas.2516058122
摘要
Cosmogenic nuclides have revolutionized our quantitative understanding of landscape evolution via measurements of near-surface erosion, exposure, and burial. Here, we integrate stable cosmogenic krypton in detrital zircon with U-Pb geochronology to extend the temporal limits of cosmogenic nuclide applications and reconstruct Eocene landscape evolution from drill cores of placer deposits in southern Australia. Zircon U-Pb crystallization ages are interpreted to reflect paleodrainage from a deeply weathered ~800,000 km2 hinterland and transport via a ~1,000 km littoral drift system. The measured cosmogenic 78Kr concentration of detrital zircon samples ranges from ~6.4 × 105 to 1.8 × 107 atoms per gram, suggesting low paleodenudation rates of 0.3 to 0.7 m per My [interquartile range (IQR)]. Such low denudation rates are below those expected by comparison to modern analogs and point to underestimation due to re-exposure during sediment transport and shallow storage. Expressing the concentrations as apparent exposure times, which approximate the near-surface integrated residence time, yields estimates of 0.9 to 2.1 My (IQR). In the stratigraphic and mineralogical context, the dataset records a shift from compositionally mature placers with uniformly high residence times (~1.6 My) to less mature placers with stratigraphically variable residence times (~0.7 to 2.7 My). We infer a shift from prolonged sediment storage, during which the mineral assemblage was modified, to a more dynamic transport regime with higher net transfer rates. The timing suggests eustatic and tectonic forcing, and cosmogenic krypton captures this transition, aiding reconstruction of how ancient landscapes and the sedimentary record coevolve.
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