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Ecosystem fluxes during drought and recovery in an experimental forest

Werner, Christiane and Meredith, Laura K. and Ladd, S. Nemiah and Ingrisch, Johannes and Kuebert, Angelika and van Haren, Joost and Bahn, Michael and Bailey, Kinzie and Bamberger, Ines and Beyer, Matthias and Blomdahl, Daniel and Byron, Joseph and Daber, Erik and Deleeuw, Jason and Dippold, Michaela A. and Fudyma, Jane and Gil-Loaiza, Juliana and Honeker, Linnea K. and Hu, Jia and Huang, Jianbei and Kluepfel, Thomas and Krechmer, Jordan and Kreuzwieser, Juergen and Kuehnhammer, Kathrin and Lehmann, Marco M. and Meeran, Kathiravan and Misztal, Pawel K. and Ng, Wei-Ren and Pfannerstill, Eva and Pugliese, Giovanni and Purser, Gemma and Roscioli, Joseph and Shi, Lingling and Tfaily, Malak and Williams, Jonathan. (2021) Ecosystem fluxes during drought and recovery in an experimental forest. Science, 374 (6574). pp. 1514-1518.

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Official URL: https://edoc.unibas.ch/86272/

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Abstract

Severe droughts endanger ecosystem functioning worldwide. We investigated how drought affects carbon and water fluxes as well as soil-plant-atmosphere interactions by tracing 13 CO 2 and deep water 2 H 2 O label pulses and volatile organic compounds (VOCs) in an enclosed experimental rainforest. Ecosystem dynamics were driven by different plant functional group responses to drought. Drought-sensitive canopy trees dominated total fluxes but also exhibited the strongest response to topsoil drying. Although all canopy-forming trees had access to deep water, these reserves were spared until late in the drought. Belowground carbon transport was slowed, yet allocation of fresh carbon to VOCs remained high. Atmospheric VOC composition reflected increasing stress responses and dynamic soil-plant-atmosphere interactions, potentially affecting atmospheric chemistry and climate feedbacks. These interactions and distinct functional group strategies thus modulate drought impacts and ecosystem susceptibility to climate change.
Faculties and Departments:05 Faculty of Science > Departement Umweltwissenschaften
UniBasel Contributors:Ladd, Sarah Nemiah
Item Type:Article, refereed
Article Subtype:Research Article
ISSN:0036-8075
Note:Publication type according to Uni Basel Research Database: Journal article
Identification Number:
Last Modified:03 Feb 2022 10:18
Deposited On:03 Feb 2022 10:18

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