Processing of dissolved organic matter from surface waters to sediment pore waters in a temperate coastal wetland

溶解有机碳 环境化学 地表水 环境科学 孔隙水压力 有机质 化学 盐度 沉积物 湿地 总有机碳 地质学 生态学 海洋学 环境工程 生物 古生物学 有机化学 岩土工程
作者
Qing-Yuan Lu,Ding He,Yu Pang,Yanzhen Zhang,Chen He,Yuntao Wang,Haibo Zhang,Quan Shi,Yongge Sun
出处
期刊:Science of The Total Environment [Elsevier BV]
卷期号:742: 140491-140491 被引量:24
标识
DOI:10.1016/j.scitotenv.2020.140491
摘要

Coastal wetlands are active transitional ecotones between land and ocean, and are considered as hot spots of organic matter processing within the global carbon cycle, which dissolved organic matter (DOM) plays a critical role. In this study, combined use of ultrahigh-resolution mass spectrometry (FT-ICR MS) and complementary optical techniques was conducted to assess the detailed molecular composition of DOM in the temperate Liaohe coastal wetland (LCW), NE China in respect to the differences in DOM composition from surface water to sediment pore water. Significant positive correlations between salinity and dissolved organic carbon (DOC) concentrations were observed in both surface waters and pore waters. Pore water DOM is generally characterized by lower protein-like fluorescence and biological index, but higher humification and humic-like fluorescent components than those in surface water DOM. Corresponding to the optical properties, FT-ICR MS measurements show that pore water DOM has higher proportions of heteroatoms, aromaticity index, O/C ratios, unsaturated aliphatics, and peptides, but lower average H/C ratios compared to surface water DOM across locations with different marsh plant species (rice (Oryza sativa), reed (Phragmites australis), Seablite (Suaeda Salsa)) and salinity (0.5 to 51.5 psu). The results suggest that selective preservation for polyphenols, lignin degradation intermediates (highly unsaturated compounds), and microbial resynthesis of heteroatomic compounds are involved in the processing of DOM from surface water to pore water, leading to the formation of higher molecular weight and sulfur-containing molecules. The abundant CHOS compounds could be related to the early diagenetic sulfurization of DOM in sediments. Our unique data set should provide new clues for a comprehensive understanding of the molecular dynamics of DOM in coastal wetlands.
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