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采用 1H{(19)F} 反异核饱和转移差核磁共振波谱法鉴定溶解腐殖酸中与有机氟污染物结合的成分。

Identifying components in dissolved humic acid that bind organofluorine contaminants using (1)H{(19)F} reverse heteronuclear saturation transfer difference NMR spectroscopy.

机构信息

Department of Chemistry, University of Toronto, Toronto, Ontario, Canada.

出版信息

Environ Sci Technol. 2010 Jul 15;44(14):5476-82. doi: 10.1021/es101100s.

DOI:10.1021/es101100s
PMID:20568693
Abstract

Interactions between dissolved peat humic acid and two structurally dissimilar organofluorine compounds, perfluoro-2-naphthol and perfluoro-octanoic acid, are probed using a novel (1)H{(19)F} Nuclear Magnetic Resonance (NMR) Spectroscopy technique based on the Saturation Transfer Difference (STD) experiment. This technique is used here to show selectively only those regions of the (1)H NMR spectrum of humic acid that arise from chemical constituents interacting with perfluorinated organic compounds. This approach provides a tool for high-resolution analysis of interactions between contaminants and soil organic matter (SOM) directly at the molecular level. Soil organic matter is a chemically heterogeneous mixture, and traditional techniques used to study sorption or binding phenomenon are unable to resolve multiple processes occurring simultaneously at distinct chemical moieties. Here, multiple interaction domains are identified based on known chemical constituents of humic acid, most notably from lignin- and protein-derived material. Specifically, perfluoro-2-naphthol is shown to interact with lignin, protein, and aliphatic material; however, preference is exhibited for lignin-derived domains, while perfluoro-octanoic acid exhibits near exclusive preference for the protein-derived domains of humic acid.

摘要

利用一种基于饱和转移差异(STD)实验的新型(1)H-{(19)F}核磁共振(NMR)光谱技术,研究了溶解的泥炭腐殖酸与两种结构不同的有机氟化合物——全氟-2-萘酚和全氟辛酸之间的相互作用。本研究首次采用该技术选择性地研究腐殖酸(1)H NMR 谱中与全氟有机化合物相互作用的化学组成部分。该方法为直接在分子水平上分析污染物与土壤有机质(SOM)之间的相互作用提供了一种高分辨率的分析工具。土壤有机质是一种化学异质混合物,传统的用于研究吸附或键合现象的技术无法解析同时在不同化学基团中发生的多个过程。在这里,根据腐殖酸的已知化学成分,特别是木质素和蛋白质衍生材料,确定了多个相互作用域。具体而言,全氟-2-萘酚被证明与木质素、蛋白质和脂肪材料相互作用;然而,它优先与木质素衍生的结构域相互作用,而全氟辛酸则几乎只与腐殖酸的蛋白质衍生结构域相互作用。

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