北极淡水中溶解有机质光矿化表观量子产率的控制。

IF 3.9 3区 环境科学与生态学 Q1 CHEMISTRY, ANALYTICAL
Emma C Rieb, Catherine A Polik, George W Kling, Rose M Cory
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引用次数: 0

摘要

阳光将溶解的有机物(DOM)氧化为二氧化碳(光电矿化)可占北极内陆地表水排放的二氧化碳(CO2)的30%。水柱光电矿化率取决于光电矿化表观量子产率谱(φPM,λ)的大小和形状,很少有研究对其进行直接量化。在这里,我们使用了一种基于发光二极管(LED)的方法来直接量化北极地表水中暴露于越来越多的紫外和可见光窄带光下的光矿化产生的二氧化碳的φPM,λ。芳香族DOM和溶解铁含量最高的水在各波长均具有最高的φPM,λ。随着水体中显色性溶解有机物(CDOM)吸收的累积光量的增加,各波长的φPM,λ的大小下降了92%,这与光不稳定的DOM组分的快速耗竭一致。综上所述,CDOM的光吸收程度、芳香碳含量和铁浓度控制了φPM,λ的大小和形状,进而强烈影响了内陆地表水的光矿化速率和CO2产量。量化φPM、λ的实验应考虑到较大的累积光吸收会导致φPM、λ和光矿化率的低估。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Controls on the apparent quantum yield for photomineralization of dissolved organic matter in arctic freshwaters.

The oxidation of dissolved organic matter (DOM) to carbon dioxide by sunlight (photomineralization) can account for up to 30% of carbon dioxide (CO2) emitted from inland surface waters in the Arctic. Water-column photomineralization rates depend on the magnitude and shape of the photomineralization apparent quantum yield spectrum (φPM,λ), which few studies have quantified directly. Here, we used a light-emitting diode (LED)-based approach to directly quantify φPM,λ of CO2 from photomineralization in arctic surface waters exposed to increasing amounts of narrow-banded light at ultraviolet and visible wavelengths. Waters with the highest aromatic DOM and dissolved iron had the highest φPM,λ at all wavelengths. The magnitude of φPM,λ at all wavelengths decreased by up to 92% with increasing cumulative light absorbed by chromophoric dissolved organic matter (CDOM) in a given water, consistent with the rapid depletion of a photo-labile DOM fraction. Together, the results suggest that the extent of light absorption by CDOM, aromatic carbon content, and iron concentration control the magnitude and shape of φPM,λ, which in turn strongly influences rates of photomineralization and CO2 production in inland surface waters. Experiments to quantify φPM,λ should consider that greater cumulative light absorbed leads to underestimates of φPM,λ and photomineralization rates.

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来源期刊
Environmental Science: Processes & Impacts
Environmental Science: Processes & Impacts CHEMISTRY, ANALYTICAL-ENVIRONMENTAL SCIENCES
CiteScore
9.50
自引率
3.60%
发文量
202
审稿时长
1 months
期刊介绍: Environmental Science: Processes & Impacts publishes high quality papers in all areas of the environmental chemical sciences, including chemistry of the air, water, soil and sediment. We welcome studies on the environmental fate and effects of anthropogenic and naturally occurring contaminants, both chemical and microbiological, as well as related natural element cycling processes.
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