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The oxygen isotope composition of dissolved inorganic phosphate and the marine phosphorus cycle.

机译:溶解的无机磷酸盐的氧同位素组成和海洋磷循环。

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Phosphorus is a key nutrient often present in concentrations sufficiently low to limit or co limit primary production in natural aquatic environments. In eutrophic settings, anthropogenic phosphorus loadings can contribute to hypoxia and toxic algal blooms. On a global scale over millennial time scales and longer, phosphorus availability in the oceans has been invoked as a control on export production and organic carbon burial with feedbacks on atmospheric CO2 and O2 levels.; This dissertation encompasses two different approaches to the study of the marine phosphorus cycle. The first half of the dissertation focuses on the oxygen isotope composition of dissolved inorganic phosphate (P i) in natural waters. A technique is developed that permits the measurement of the δ18O of Pi with a high degree of accuracy and an analytical reproducibility of 0.2–0.3‰ (1 s.d.). Measured δ18O values for Pi span a 9‰ range from mid-latitude river water to coastal waters from Long Island Sound to deep water from the Pacific and Atlantic Oceans. P i was found to be near to a temperature dependent isotopic equilibrium with water oxygen in all parts of the ocean. Both equilibrium conditions and small deviations from equilibrium values provided useful information regarding the kinetics of phosphate transport and biological turnover in aquatic ecosystems.; The second half of the dissertation focuses on a critical but previously overlooked global flux of phosphate into the oceans. This flux is the benthic regenerative flux of Pi from reactive particulate phosphorus phases deposited to sediments, which was determined to be significantly larger than riverine inputs of dissolved phosphorus to the oceans. Small variations in the benthic regeneration efficiency of phosphate can translate to large changes in the oceanic phosphorus inventory on a time scale of 10,000 years. Furthermore, this return flux of phosphorus from sediments to ocean water was found to be sensitive to sediment redox conditions, supporting a hypothesis that phosphate may provide negative feedback stabilization of atmospheric oxygen levels on geologic time scales.
机译:磷是一种关键营养素,通常以足够低的浓度存在,以限制或共同限制天然水生环境中的初级生产。在富营养化的环境中,人为磷的含量可导致缺氧和有毒藻华。在全球范围内(超过千年时间或更长时间),海洋中的磷可利用性被用作对出口生产和有机碳埋藏的控制,并反馈了大气中的CO 2 和O 2 级别。本文涵盖了两种研究海洋磷循环的方法。论文的前半部分着重研究了天然水中溶解的无机磷酸盐(P i )的氧同位素组成。开发了一种技术,可以高精度地测量P i 的δ 18 O,并且分析重现性为0.2–0.3‰(1 s.d.)。 P i 的δ 18 O值从中纬度河水到长岛湾沿岸水域再到太平洋和大西洋的深水,跨度为9‰。发现P i 接近海洋所有部分与水氧的温度依赖性同位素平衡。平衡条件和与平衡值的微小偏差都提供了有关水生生态系统中磷酸盐运输动力学和生物更新的有用信息。论文的后半部分重点讨论了磷酸盐进入海洋的关键但先前被忽视的全球趋势。该通量是P i 从沉积到沉积物中的反应性颗粒磷相的底生再生通量,据确定该通量明显大于河流向海洋输入的溶解磷。磷酸盐底栖生物再生效率的微小变化可转化为10,000年时间范围内海洋磷储量的巨大变化。此外,发现磷从沉积物到海水的回流对沉积物的氧化还原条件很敏感,这支持了一个假设,即磷酸盐可能在地质时标上提供大气氧水平的负反馈稳定。

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