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发展和应用薄膜扩散梯度技术测量土壤中硝酸盐的方法。

Development and Application of the Diffusive Gradients in Thin Films Technique for the Measurement of Nitrate in Soils.

机构信息

Key Laboratory of Urban Environment and Health Institute of Urban Environment, Chinese Academy of Sciences , Xiamen 361021, China.

Lancaster Environment Centre, Lancaster University , Lancaster LA1 4YQ, U.K.

出版信息

Anal Chem. 2017 Jan 17;89(2):1178-1184. doi: 10.1021/acs.analchem.6b03609. Epub 2016 Dec 23.

Abstract

Nitrate (NO-N), the main plant/microbial nitrogen source, has a fast turnover in soil driven by species transformation (nitrification/denitrification) and phyto/microbiota assimilation. The technique of diffusive gradients in thin films (DGT) is capable of a robust, low disturbance measurement of NO-N but has not been implemented due to the absence of a binding layer suitable for deployment in soils. In this study, a new styrene divinylbenzene-based absorbent with amine functional groups (SIR-100-HP) was cast into an agarose gel support. The NO-N ion selectivity of the SIR-100-HP/agarose binding layer was retained in the presence of high multivalent ion concentrations and was used successfully to acquire in situ NO-N measurements in bulk soil. The kinetics of binding and the maximum binding capacity were determined. The total capacity of the DGT containing the SIR-100-HP/agarose binding phase was 667 μg of NO-N. The performance of DGT was not affected by varying pH (3-8) or ionic strength (0-0.018 mol L), while anion competition effects at concentrations reflecting those in common agricultural soils were found to be negligible. Complete elution (100% efficiency) of NO-N from the binding phase was achieved using a solution of 5% NaCl. This technique was validated in three contrasting soils. C measurements were in excellent agreement with pore water NO-N values. Two-dimensional NO-N mapping of a profile of flooded rice paddy soil demonstrated the potential of this novel methodology for improved characterization of in situ N speciation for further understanding of bioavailability and biogeochemical processes of NO-N in soils.

摘要

硝酸盐(NO3-N)是植物/微生物的主要氮源,在土壤中由于物种转化(硝化/反硝化)和植物/微生物的同化作用,其周转率很快。扩散梯度薄膜(DGT)技术能够对 NO3-N 进行稳健、低干扰的测量,但由于缺乏适合在土壤中使用的结合层,因此尚未得到应用。在这项研究中,一种新的带有胺官能团的苯乙烯-二乙烯基苯基吸收剂(SIR-100-HP)被浇铸到琼脂糖凝胶载体中。在存在高多价离子浓度的情况下,SIR-100-HP/琼脂糖结合层的 NO3-N 离子选择性得以保留,并成功地用于原位测量原状土壤中的 NO3-N。测定了结合的动力学和最大结合容量。含有 SIR-100-HP/琼脂糖结合相的 DGT 的总容量为 667μg 的 NO3-N。DGT 的性能不受 pH 值(3-8)或离子强度(0-0.018mol L)的变化影响,而在反映常见农业土壤中浓度的阴离子竞争效应可忽略不计。NO3-N 从结合相的完全洗脱(100%效率)是使用 5%NaCl 溶液实现的。该技术在三种不同的土壤中进行了验证。C 测量与孔隙水 NO3-N 值非常吻合。对水淹稻田土壤剖面的二维 NO3-N 图谱的绘制,证明了这种新方法在原位 N 形态的改进描述方面具有潜力,从而进一步了解土壤中 NO3-N 的生物利用和生物地球化学过程。

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