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dc.contributor.authorLópez Canfín, Clément 
dc.contributor.authorLázaro, Roberto
dc.contributor.authorPérez Sánchez-Cañete, Enrique 
dc.date.accessioned2026-01-16T10:41:16Z
dc.date.available2026-01-16T10:41:16Z
dc.date.issued2022
dc.identifier.citationPublished version: López Canfín, Clément et al. Geoderma Volume 425, 1 November 2022, 116067. https://doi.org/10.1016/j.geoderma.2022.116067es_ES
dc.identifier.urihttps://hdl.handle.net/10481/109794
dc.descriptionThis work was funded by the research project CGL2016-78075-P, Biocrust Dynamics (DINCOS), of the Spanish National Program of Scientific and Technical Research, and by the ICAERSA research project (P18-RT-3629) of the Andalusian Regional Government including European Union ERDF funds. The funding for the open access charge was provided by the University of Granada / CBUA.es_ES
dc.description.abstractThere is growing evidence that dryland soils could act as substantial but so far disregarded carbon sinks at the global scale. In drylands, potential abiotic processes of CO2 uptake are still debated while estimates of the biotic contribution of photosynthetizing biocrusts to the net carbon uptake remain uncertain. This uncertainty is partly attributable to a common neglect of the underlying soil and spatiotemporal variability of soil CO2 fluxes. Moreover, it is still unknown how those fluxes evolve during the ecological succession of biocrusts and which factors control them. Therefore, in this study, we aimed to (1) identify those factors and use them for predictions, and (2) explain the inter-annual variation of cumulative CO2 fluxes over the succession. We conducted 2 years of continuous measurements of the topsoil CO2 molar fraction (χs) and microclimatic variables and estimated the soil-atmosphere CO2 flux using the gradient method. Statistical spatiotemporal models were developed of χs dynamics and cumulative annual fluxes. A soil CO2 uptake potentially due to coupled gypsum dissolution-calcite precipitation was consistently detected at night, with cumulative values ranging from −4 to −65 gC m−2 depending on succession stage. In comparison, cumulative soil CO2 emissions ranged from 101 to 307 gC m−2 depending on succession stage. The succession stage, soil water content (ϑw), and temperature (Ts) and the interactions of these variables explained and efficiently predicted the daily averaged χs dynamics. Soil CO2 emissions were more sensitive to ϑw and Ts in late successional stages, apparently because of organic carbon accumulation and higher porosity. Our measurements suggest that CO2 consumption processes were progressively counterbalanced by the increase in biological CO2 production during succession. That is probably why those processes could mainly be detected in early successional stages and more generally in drylands, as they sustain a low biological activity. However, such processes could be ubiquitous in ecosystems but difficult to detect. We discuss the implication of those results for the extensive dryland soils in the context of climate change.es_ES
dc.description.sponsorshipSpanish National Program of Scientific and Technical Research CGL2016-78075-Pes_ES
dc.description.sponsorshipAndalusian Regional Government (P18-RT-3629)es_ES
dc.description.sponsorshipEuropean Union ERDFes_ES
dc.description.sponsorshipUniversity of Granada / CBUAes_ES
dc.language.isoenges_ES
dc.publisherElsevieres_ES
dc.rightsAtribución 4.0 Internacional*
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/*
dc.subjectBiological soil crustses_ES
dc.subjectSoil respirationes_ES
dc.subjectDrylandses_ES
dc.titleDisparate responses of soil-atmosphere CO2 exchange to biophysical and geochemical factors over a biocrust ecological succession in the Tabernas Desertes_ES
dc.typejournal articlees_ES
dc.rights.accessRightsopen accesses_ES
dc.identifier.doi10.1016/j.geoderma.2022.116067


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