Current location: Home > Research > Academic Achievements

Share

Dodd, Matthew S, et al., Nature, 2023

Date:2023-12-29    Author:Admin     Click:[]

Title: Uncovering the Ediacaran phosphorus cycle

Author:Dodd, M; Shi, W; Li, C*; Zhang, Z; Cheng, M; Gu, H; Hardisty, D; Loyd, S; Wallace, M; Hood, A; Lamothe, K; Mills, B; Poulton, S; Lyons, T

Journal: Nature

Year of Publication: 2023

Volume: 618

DOI10.1038/s41586-023-06077-6

Abstract:Phosphorus is a limiting nutrient that is thought to control oceanic oxygen levels to a large extent. A possible increase in marine phosphorus concentrations during the Ediacaran Period (about 635-539 million years ago) has been proposed as a driver for increasing oxygen levels. However, little is known about the nature and evolution of phosphorus cycling during this time. Here we use carbonate-associated phosphate (CAP) from six globally distributed sections to reconstruct oceanic phosphorus concentrations during a large negative carbon-isotope excursion-the Shuram excursion (SE)-which co-occurred with global oceanic oxygenation. Our data suggest pulsed increases in oceanic phosphorus concentrations during the falling and rising limbs of the SE. Using a quantitative biogeochemical model, we propose that this observation could be explained by carbon dioxide and phosphorus release from marine organic-matter oxidation primarily by sulfate, with further phosphorus release from carbon-dioxide-driven weathering on land. Collectively, this may have resulted in elevated organic-pyrite burial and ocean oxygenation. Our CAP data also seem to suggest equivalent oceanic phosphorus concentrations under maximum and minimum extents of ocean anoxia across the SE. This observation may reflect decoupled phosphorus and ocean anoxia cycles, as opposed to their coupled nature in the modern ocean. Our findings point to external stimuli such as sulfate weathering rather than internal oceanic phosphorus-oxygen cycling alone as a possible control on oceanic oxygenation in the Ediacaran. In turn, this may help explain the prolonged rise of atmospheric oxygen levels.

Key Words: CARBON; OCEAN; SULFATE; REDOX; ANOXIA; OXYGEN; RECONSTRUCTION; EVOLUTION; OXIDATION; ANCIENT


PreAchievement:Meng CHENG, et al., Science China- Earth Sciences, 2023
NextAchievement:Wei Wang, et al., Precambrian Research, 2023

028-84079071

No. 1, East 3rd Road, Erxianqiao, Chenghua District, Chengdu, Sichuan Province

sgbg@cdut.edu.cn

蜀ICP备05026980号