Pyrite sulfur isotope heterogeneity across the Nanhua Basin records intensified biogeochemical cycling on continental slopes during Marinoan deglaciation

生物地球化学循环 地质学 冰消 自行车 黄铁矿 硫黄 构造盆地 地球化学循环 地球化学 同位素 地球科学 同位素地球化学 沉积物 海洋学 稳定同位素比值 生物地球化学 古海洋学 硫循环 地貌学 古生物学 硫同位素 沉积岩 成岩作用 矿化(土壤科学) 硫化物 胶黄铁矿
作者
Yangdanjie Zeng,Xianguo Lang,Tianzheng Huang,Shengxian Zhu,Kun Zhao,Bing Shen
出处
期刊:Earth and Planetary Science Letters [Elsevier BV]
卷期号:696: 120381-120381
标识
DOI:10.1016/j.epsl.2026.120381
摘要

The termination of the Marinoan Snowball Earth (∼635 Ma) reorganized ocean circulation and biogeochemical cycling, but the spatial recovery of marine primary productivity remains poorly constrained. Here we present a basinal scale sulfur isotope (δ 34 S) dataset from the upper Nantuo Formation of South China, based on disseminated pyrite and coeval pyrite nodules from 19 sections spanning shallow shelf, continental slope, and basin environments. Stratigraphically weighted δ 34 S values of disseminated pyrite reveal pronounced lateral heterogeneity, with the highest values and the greatest dispersion on continental slopes (weighted mean 28.3‰; 95% CI, 24.3–33.0‰), compared with shallow shelf (13.0‰) and basinal environments (15.7‰). Petrographic observations and trace element data indicate syndepositional to early diagenetic pyrite formation, whereas crystal scale δ 34 S homogeneity in disseminated pyrite, limited isotope variation from nodule rims to cores, and numerical modeling show that porewater sulfate reduction alone cannot account for the observed combination of heavy δ 34 S values and abundant pyrite. Combined with widespread pyritization, these observations indicate that most H 2 S incorporated into pyrite originated in euxinic bottom waters, while further pyrite growth and local isotope modification occurred near the sediment water interface and in shallow porewaters. The δ 34 S maximum on continental slopes records enhanced local sulfate consumption. The corresponding demand for metabolizable organic matter indicates that continental slopes were focal zones of organic matter export and remineralization during Marinoan deglaciation. Periodic upwelling and mixing intensified by topography likely concentrated regenerated nutrients along continental margins. Meltwater dilution limited nutrient retention in shallow waters, while persistent stratification restricted nutrient exchange in distal basins. Continental margin circulation therefore played a key role in organizing marine biogeochemical recovery after Snowball Earth.

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