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The triple oxygen isotope composition of phytoliths as a proxy of continental atmospheric humidity: insights from climate chamber and climate transect calibrations

机译:植物体的三重氧同位素组合物作为大陆大气湿度的代理:气候室和气候横断校准的见解

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Continental atmospheric relative humidity (RH) is a key climate parameter. Combined with atmospheric temperature, it allows us to estimate the concentration of atmospheric water vapor, which is one of the main components of the global water cycle and the most important gas contributing to the natural greenhouse effect. However, there is a lack of proxies suitable for reconstructing, in a quantitative way, past changes of continental atmospheric humidity. This reduces the possibility of making model-data comparisons necessary for the implementation of climate models. Over the past 10 years, analytical developments have enabled a few laboratories to reach sufficient precision for measuring the triple oxygen isotopes, expressed by the O-17-excess (O-17-excess = ln (delta O-17+1)-0.528 x ln (delta O-18+1)), in water, water vapor and minerals. The O-17-excess represents an alternative to deuterium-excess for investigating relative humidity conditions that prevail during water evaporation. Phytoliths are micrometric amorphous silica particles that form continuously in living plants. Phytolith morphological assemblages from soils and sediments are commonly used as past vegetation and hydrous stress indicators. In the present study, we examine whether changes in atmospheric RH imprint the O-17-excess of phytoliths in a measurable way and whether this imprint offers a potential for reconstructing past RH. For that purpose, we first monitored the O-17-excess evolution of soil water, grass leaf water and grass phytoliths in response to changes in RH (from 40 to 100 %) in a growth chamber experiment where transpiration reached a steady state. Decreasing RH from 80 to 40% decreases the O-17-excess of phytoliths by 4.1 per meg/% as a result of kinetic fractionation of the leaf water subject to evaporation. In order to model with accuracy the triple oxygen isotope fractionation in play in plant water and in phytoliths we recommend direct and continuous measurements of the triple isotope composition of water vapor. Then, we measured the O-17-excess of 57 phytolith assemblages collected from top soils along a RH and vegetation transect in inter-tropical West and Central Africa. Although scattered, the O-17-excess of phytoliths decreases with RH by 3.4 per meg/%. The similarity of the trends observed in the growth chamber and nature supports that RH is an important control of O-17-excess of phytoliths in the natural environment. However, other parameters such as changes in the triple isotope composition of the soil water or phytolith origin in the plant may come into play. Assessment of these parameters through additional growth chambers experiments and field campaigns will bring us closer to an accurate proxy of changes in relative humidity.
机译:大陆大气相对湿度(RH)是一种关键气候参数。结合大气温度,允许我们估计大气水蒸气的浓度,这是全球水循环的主要成分之一,以及为自然温室效应有助于贡献的最重要的天然气。然而,缺乏适合于大陆大气湿度的过去变化重建的代理。这减少了制定实施气候模型所必需的模型数据比较的可能性。在过去的10年中,分析发展使一些实验室能够达到足够的精度来测量三重氧同位素,由O-17过量表达(O-17-过量= LN(Delta O-17 + 1)-0.528 X LN(Delta O-18 + 1)),水,水蒸气和矿物质。 O-17过量代表氘过量的替代方法,用于研究水蒸发过程中占上风的相对湿度条件。 Phytoliths是在活植物中连续形成的微米非晶二氧化硅颗粒。来自土壤和沉积物的Phytolith形态学组合通常用作过去的植被和含水应激指示器。在本研究中,我们检查大气RH的变化是否以可衡量的方式对多余的植物素进行了压印,以及该印度是否提供了重建过去RH的可能性。为此目的,我们首先监测土壤水,草叶水和草植物的O-17多余演变,响应于RH(从40〜100%)的生长室实验中的变化,其中蒸腾达到稳定状态。减少80%至40%的RH降低了O-17-超过4.1每MEG /%的植物油/%,由于叶水进行蒸发的动力学分馏。为了模拟精度在植物水和植物中的三重氧同位素分馏中,我们建议直接和连续测量水蒸气的三同位素组成。然后,我们测量了从热带西部和中非的Rh和植被横断的RH和植被横断面从顶部土壤中收集的O-17过量的57个过量的57个植物组合。虽然散射,O-17-过量的植物溶解用RH减少3.4每MEG /%。在生长室和性质中观察到的趋势的相似性支持Rh是对自然环境中O-17过量植物植物的重要控制。然而,其他参数如植物中土壤水或植物或植物原产地的三重同位素组成的变化可能会发挥作用。通过额外的增长室实验评估这些参数,现场运动将使我们更接近相对湿度的准确变化。

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