硫酸盐埋葬约束法内罗纪硫循环的限制
Itay Halevy1, Shanan E Peters, Woodward W Fischer
1Environmental Sciences and Energy Research, Weizmann Institute of Science, Rehovot 76100, Israel. itay.halevy@weizmann.ac.il
概括
硫循环研究显示,硫酸盐蒸发物埋葬率波动,影响海洋和大气化学. 矿的埋葬和气候变化更为稳定,这表明硫在调节地球氧气水平方面发挥了关键作用.
科学领域:
- 地质化学 地质化学
- 古气候学 古气候学
- 生物地质化学循环的过程
背景情况:
- 硫循环对于沉积有机物呼吸,大气和海洋氧化状态以及海水成分至关重要.
- 控制海水和沉积水库之间的主要硫流的关键因素尚未完全理解.
- 了解这些流动对于理解地球的长期地质化学调节至关重要.
研究的目的:
- 为了量化硫酸盐蒸发的埋葬流在整个Phanerozoic时间.
- 为了研究蒸发气候变化和现代河流硫酸盐流动之间的关系.
- 为了比较硫酸盐和酸盐埋葬率的变化及其对硫循环的影响.
主要方法:
- 利用宏观地图数据重建历史的蒸发性埋葬.
- 分析了现代河流硫酸盐流量的贡献来自经过气候变化的蒸发物.
- 硫酸盐和酸盐的埋葬和化率的比较.
主要成果:
- 硫酸盐蒸发物的埋葬率不稳定,与蒸发物形成和保存的海洋环境的可用性相关.
- 最近沉积的蒸发岩石的气候变化约占现代河流硫酸盐流量的一半.
- 与硫酸盐流相比,矿埋葬和气候变化的速度更高,更一致,并且在很大程度上平衡.
结论:
- 硫酸盐蒸发物的埋葬是硫循环的一个重要,但变化的组成部分.
- 矿流的稳定性表明,硫循环在调节地质时间尺度上的大气氧气水平方面发挥了更为主导作用.
- 需要进一步研究蒸发动力学,才能充分理解长期的硫循环及其对地球系统的影响.
相关概念视频
Microbes and the Sulfur Cycle
Sulfur is a vital element in Earth's biogeochemical systems. It transitions through various inorganic states, including sulfate (SO₄²⁻), elemental sulfur (S⁰), and sulfide (S²⁻). Abiotic and biological mechanisms across oxic and anoxic environments intricately mediate these transformations. Sulfate, the most oxidized form of sulfur, is predominantly stored in rocks, marine sediments, and oceanic waters, acting as a long-term reservoir in the global sulfur cycle.In oxic environments,...
The Sulfur Cycle
Sulfur, an important element in the chemical makeup of proteins, is recycled through the atmosphere and aquatic and terrestrial environments. Found in the atmosphere as sulfur dioxide (SO2), sulfur is released by decaying organisms, weathered rocks, geothermal vents, volcanos, and burning fossil fuels. It is deposited into the ecosystem, cycled through the biotic community, and either released back into the atmosphere as gas or deposited in marine sediment for long-term storage and eventual...
Sulfur Assimilation
Sulfur is an essential element in biological systems, contributing to synthesizing key biomolecules, including amino acids such as cysteine and methionine, and cofactors such as coenzyme A and biotin. Microorganisms primarily assimilate sulfur as sulfate (SO₄²⁻) from the environment, which must undergo a series of biochemical transformations before it can be incorporated into cellular components. As sulfate is highly oxidized, it must undergo assimilatory sulfate reduction to become...
Deep Sea Microbial Ecology
The deep ocean and its underlying sediments represent vast, largely unexplored microbial habitats that extend far beyond the sunlit photic zone. The photic (euphotic) zone typically spans the upper ~100–200 meters of pelagic waters in the open ocean, but its depth varies geographically and seasonally, where sufficient light supports photosynthetic life. Below this lies the deep sea, spanning roughly 1000–6000 meters (bathypelagic to abyssal zones), with deeper hadal trenches extending beyond...
The Phosphorus Cycle
Unlike carbon, water, and nitrogen, phosphorus is not present in the atmosphere as a gas. Instead, most phosphorus in the ecosystem exists as compounds, such as phosphate ions (PO43-), found in soil, water, sediment and rocks. Phosphorus is often a limiting nutrient (i.e., in short supply). Consequently, phosphorus is added to most agricultural fertilizers, which can cause environmental problems related to runoff in aquatic ecosystems.
Microbes and Other Elemental Cycles
Microbial activity plays a pivotal role in the biogeochemical cycling of iron and manganese, especially at the redox gradients characteristic of stratified aquatic environments. These cycles are driven by microbial transformations between oxidized and reduced forms of the metals, allowing organisms to exploit them for metabolic energy and structural purposes.Iron Cycling Across Redox GradientsIn neutral, oxygen-rich surface waters, iron is predominantly found in its oxidized, insoluble ferric...


