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紧密结合的土壤水分对可移动和可提取的土壤水分库产生同位素记忆效应。

Tightly bound soil water introduces isotopic memory effects on mobile and extractable soil water pools.

作者信息

Newberry Sarah L, Prechsl Ulrich E, Pace Matthew, Kahmen Ansgar

机构信息

a Department of Environmental Sciences - Botany , University of Basel , Basel , Switzerland.

b Institute of Agricultural Sciences, ETH Zurich , Zurich , Switzerland.

出版信息

Isotopes Environ Health Stud. 2017 Aug;53(4):368-381. doi: 10.1080/10256016.2017.1302446. Epub 2017 Mar 23.

Abstract

Cryogenic vacuum extraction is the well-established method of extracting water from soil for isotopic analyses of waters moving through the soil-plant-atmosphere continuum. We investigate if soils can alter the isotopic composition of water through isotope memory effects, and determined which mechanisms are responsible for it. Soils with differing physicochemical properties were re-wetted with reference water and subsequently extracted by cryogenic water distillation. Results suggest some reference waters bind tightly to the soil and not all of this tightly bound water is removed during cryogenic vacuum extraction. Kinetic isotopic fractionation occurring when reference water binds to the soil is likely responsible for the O-depletion of re-extracted reference water, suggesting an enrichment of the tightly bound soil water pool. Further re-wetting of cryogenically extracted soils indicates an isotopic memory effect of tightly bound soil water on water added to the soil. The data suggest tightly bound soil water can influence the isotopic composition of mobile soil water. Findings show that soils influence the isotope composition of soil water by (i) kinetic fractionation when water is bound to the soil and (ii) equilibrium fractionation between different soil water pools. These findings could be relevant for plant water uptake investigations and complicate ecohydrological and paleohydrological studies.

摘要

低温真空萃取是一种成熟的从土壤中提取水分的方法,用于对通过土壤-植物-大气连续体流动的水分进行同位素分析。我们研究了土壤是否会通过同位素记忆效应改变水的同位素组成,并确定了造成这种现象的机制。用参比水重新湿润具有不同物理化学性质的土壤,随后通过低温水蒸馏进行萃取。结果表明,一些参比水与土壤紧密结合,在低温真空萃取过程中,并非所有这种紧密结合的水都能被去除。参比水与土壤结合时发生的动力学同位素分馏可能是再萃取的参比水氧贫化的原因,这表明紧密结合的土壤水池有所富集。对低温萃取后的土壤进一步重新湿润表明,紧密结合的土壤水对添加到土壤中的水具有同位素记忆效应。数据表明,紧密结合的土壤水会影响流动土壤水的同位素组成。研究结果表明,土壤通过以下方式影响土壤水的同位素组成:(i)水与土壤结合时的动力学分馏,以及(ii)不同土壤水池之间的平衡分馏。这些发现可能与植物水分吸收研究相关,并使生态水文和古水文研究变得复杂。

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