{"type": "FeatureCollection", "features": [{"id": "10.1029/2023gb007989", "type": "Feature", "geometry": null, "properties": {"updated": "2026-07-26T16:17:26Z", "type": "Journal Article", "created": "2024-03-07", "title": "Decreasing Photoreactivity and Concurrent Change in Dissolved Organic Matter Composition With Increasing Inland Water Residence Time", "description": "Abstract<p>Photochemical degradation of dissolved organic matter (DOM) has been the subject of numerous studies; however, its regulation along the inland water continuum is still unclear. We aimed to unravel the DOM photoreactivity and concurrent DOM compositional changes across 30 boreal aquatic ecosystems including peat waters, streams, rivers, and lakes distributed along a water residence time (WRT) gradient. Samples were subjected to a standardized exposure of simulated sunlight. We measured the apparent quantum yield (AQY), which corresponds to DOM photomineralization per photon absorbed, and the compositional change in DOM at bulk and individual compound levels in the original samples and after irradiation. AQY increased with the abundance of terrestrially derived DOM and decreased at higher WRT. Additionally, the photochemical changes in both DOM optical properties and molecular composition resembled changes along the natural boreal WRT gradient at low WRT (&lt;3\uffc2\uffa0years). Accordingly, mass spectrometry revealed that the abundance of photolabile and photoproduced molecules decreased with WRT along the boreal aquatic continuum. Our study highlights the tight link between DOM composition and DOM photodegradation. We suggest that photodegradation is an important driver of DOM composition change in waters with low WRT, where DOM is highly photoreactive.</p", "keywords": ["105904 Environmental research", "water retention time", "Oceanografi", " hydrologi och vattenresurser", "01 natural sciences", "aquatic continuum", "Oceanography", " Hydrology and Water Resources", "Photodegradation", "14. Life underwater", "SDG 15 \u2013 Leben an Land", "dissolved organic matter quality", "106020 Limnology", "SDG 15 - Life on Land", "0105 earth and related environmental sciences", "Ekologi", "Ensure availability and sustainable management of water and sanitation for all", "Ecology", "Dissolved organic matter quality", "Water retention time", "Aquatic continuum", "15. Life on land", "Milj\u00f6vetenskap", "106020 Limnologie", "6. 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J., Groeneveld, M., Hawkes, J. A., Attermeyer, Katrin,", "roles": ["creator"]}]}, "links": [{"href": "https://doi.org/10261/383825"}, {"rel": "self", "type": "application/geo+json", "title": "10261/383825", "name": "item", "description": "10261/383825", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/10261/383825"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date": "2025-01-01T00:00:00Z"}}, {"id": "10.5061/dryad.26d32", "type": "Feature", "geometry": null, "properties": {"updated": "2026-07-26T16:21:19Z", "type": "Dataset", "title": "Data from: A shady business: pine afforestation alters the primary controls on litter decomposition along a precipitation gradient in Patagonia, Argentina", "description": "unspecifiedOur understanding of the principal controls on litter decomposition is  critical for our capacity to predict how global changes will impact  terrestrial ecosystems. Although climate, litter quality and soil  organisms clearly modulate carbon (C) and nutrient turnover, land-use  change affecting plant species composition and structure can alter the  relative importance of such controls. We took advantage of prior land-use  changes of intentional planting of exotic forest species along a broad  precipitation gradient [250\u20132200 mm mean annual precipitation (MAP)] in  Patagonia, South America, where we established five paired sites in  natural vegetation and adjacent 35-year-old pine plantations. We explored  direct and interactive effects of precipitation and plant community  structure on litter decomposition with in situ decomposition, common  litters and reciprocal transplants, in addition to an evaluation of  microenvironmental changes. Surface litter decomposition in natural  vegetation (NV) was similar in all sites along the gradient, independent  of litter quality, MAP or soil characteristics, while mass loss  demonstrated a significant positive linear relationship with MAP in pine  plantations (PP). Decomposition of common litters in PP was markedly  reduced with respect to NV, which was &gt; 50% faster at the arid  extreme of the gradient. C:N ratios predicted decomposition only in PP,  and differences in decomposition were highly correlated with impacts of  vegetative cover on incident solar radiation. Synthesis. Concurrent  changes in plant cover in NV with increasing MAP resulted in reduced  incident solar radiation at the soil surface and decreased the relative  importance of photodegradation as a control on surface mass loss. These  changes eclipsed direct effects of water availability, litter quality and  soil nutrients. In contrast, increased shade and recalcitrant litter with  afforestation in PP sites combined such that photodegradation was entirely  eliminated as a control and biotic decomposition was much reduced. While  afforestation projects are promoted as a strategy to mitigate increased  atmospheric carbon dioxide due to human activity, our results highlight  that primary controls of litter decomposition were substantially altered  with unexpected consequences for the C balance of these ecosystems.", "keywords": ["13. Climate action", "litter quality", "Carbon cycle", "15. 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