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Contrasting depth distribution of colloid-associated phosphorus in the active and abandoned sections of an alluvial fan in a hyper-arid region of the Atacama Desert

机译:在阿塔卡马沙漠的超干旱地区,胶体相关磷在激发扇中的活性和废弃区段中的胶体相关磷的对比分布

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摘要

Colloids and their subset nanoparticles are key soil constituents for nutrient and Organic Carbon (OC) storage and transport, yet little is known about their specific role in overall transfer of elements under hyper-arid conditions. We analyzed the Water Dispersible Colloids (WDCs) of two adjacent soil profiles, located either on the active (named: Fan) or passive (named: Crust) sections of an alluvial fan. Colloidal particles ( 500 nm) were fractionated using Asymmetric Field-Flow-Field Fractionation (AF(4)), which was coupled online to an Inductively Coupled Plasma-Mass Spectrometer (ICP-MS) and an Organic Carbon Detector (OCD) to detect the composition of size-fractionated colloids. Three size categories of particles were identified: nanoparticles (0.6-24 nm), fine colloids (24-210 nm), and medium colloids (210-500 nm). The two profiles differed distinctively in vertical WDC distribution and associated phosphorus (P) content. Fractograms of the Crust profile predominantly showed fine colloids, whereas the medium-sized colloids dominated those of the Fan. Furthermore, the highest colloid content in the Crust profile was found at the surface, while in the Fan, colloids accumulated at 10-20 cm depth, thus overall reflecting the different genesis and infiltration capacities of the soils. Despite very low concentration of colloidal P in these hyper-arid soils, a strong correlation between colloidal P and calcium (Ca), Silica (Si), aluminum (Al), iron (Fe), and OC content were found. This also revealed Ca-phosphates as the primary P retention from, with the association of P to phyllosilicates and Fe/AI (hydr-) oxides as the main soil colloidal fractions. Overall, our results did highlight that small local scale differences in topographic-derived distribution of water flow pathways, defined the formation of the crust-like surfaces, and ultimately the overall movement and distribution of nanoparticles and colloids in soil profiles under hyper-arid conditions.
机译:胶体和它们的子集纳米粒子是用于营养和有机碳(OC)储存和运输的关键土壤成分,但在超干旱条件下的整体元素的总体转移中有几乎是知之甚少。我们分析了两个相邻的土壤曲线的水分散胶体(WDC),位于激活的风扇的活性(命名:风扇)或被动(命名:地壳)部分上。使用不对称场 - 流场分级(AF(4))分级胶体颗粒(<500nm),其在线耦合到电感耦合等离子体 - 质谱仪(ICP-MS)和有机碳检测器(OCD)到检测尺寸分级胶体的组成。鉴定了三种尺寸类别的颗粒:纳米颗粒(0.6-24nm),细胶体(24-210nm)和中胶体(210-500nm)。两种型材在垂直WDC分布和相关的磷(P)含量中不同。地壳型材的分流主要显示出细胶体,而中等胶体占主导地位的风扇。此外,在表面上发现了壳曲线中的最高胶体含量,而在风扇中,胶体在10-20cm深度累积,因此整体反映了土壤的不同的起源和渗透能力。尽管这些超干旱土壤中胶体P浓度非常低,但发现胶体P和钙(CA),二氧化硅(Si),铝(Al),铁(Fe)和OC含量的强烈相关性。这也揭示了Ca-磷酸盐作为主要P保留,P与Phyllosilicates和Fe / Ai(水)氧化物作为主要土壤胶体级分。总体而言,我们的结果表明,水流动途径的地形衍生分布的小局部级别差异,定义了地壳状表面的形成,并最终在过度干旱条件下的土壤谱中纳米颗粒和胶体的总体运动和分布。

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  • 来源
    《Global and planetary change》 |2020年第1期|103090.1-103090.8|共8页
  • 作者单位

    Forschungszentrum Julich Inst Bio & Geosci Agrosphere MG 3 Julich Germany|Rhein Westfal TH Aachen Inst Environm Res Biol 5 Worringerweg 1 D-52074 Aachen Germany;

    Forschungszentrum Julich Inst Bio & Geosci Agrosphere MG 3 Julich Germany;

    Forschungszentrum Julich Inst Bio & Geosci Agrosphere MG 3 Julich Germany;

    Forschungszentrum Julich Inst Bio & Geosci Agrosphere MG 3 Julich Germany;

    Univ Bonn Inst Crop Sci & Resource Conservat Soil Sci & Soi D-53115 Bonn Germany;

    Univ Catolica Norte Dept Ingn Quim Lab Tecnol Membranas Medio Ambiente & Biotecnol Antofagasta Chile;

    Univ Cologne Inst Geog Albertus Magnus Pl D-50923 Cologne Germany;

    Univ Bonn Inst Crop Sci & Resource Conservat Soil Sci & Soi D-53115 Bonn Germany;

    Forschungszentrum Julich Inst Bio & Geosci Agrosphere MG 3 Julich Germany;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Hyper-arid soils; Water dispersible soil colloids; Phosphorus; Field-Flow-Field- Fractionation;

    机译:超干旱土壤;水分分散土壤胶体;磷;场 - 流场 - 分馏;

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