Role of dry watercourses of an arid watershed in carbon and nitrogen processing along an agricultural impact gradient.
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J. Martínez-López | M. Cayuela | M. Sánchez-Monedero | M. I. Arce | M. Sánchez-García | Javier Martínez-López
[1] T. Datry,et al. “It's dry, it has fewer charms!”: Do perceptions and values of intermittent rivers interact with their management? , 2023, Environmental Science & Policy.
[2] A. Burgin,et al. The unknown biogeochemical impacts of drying rivers and streams , 2022, Nature Communications.
[3] K. Knorr,et al. Temporal patterns and drivers of CO2 emission from dry sediments in a groyne field of a large river , 2022, Biogeosciences.
[4] R. Pinto,et al. Dry-Wet Cycles Affect Nitrous Oxide Emissions Across Aquatic-Terrestrial Interfaces: A Mesocosms Study , 2022, Frontiers in Soil Science.
[5] I. Santos,et al. Anthropogenic land use substantially increases riverine CO2 emissions. , 2022, Journal of environmental sciences.
[6] A. Bellin,et al. Nitrous Oxide Emissions From Drying Streams and Rivers , 2021, Geophysical Research Letters.
[7] F. Roland,et al. Cross-continental importance of CH4 emissions from dry inland-waters , 2021, Science of The Total Environment.
[8] T. Urich,et al. Desiccation time and rainfall control gaseous carbon fluxes in an intermittent stream , 2021, Biogeochemistry.
[9] P. Groffman,et al. Drivers of Hot Spots and Hot Moments of Denitrification in Agricultural Systems , 2021, Journal of Geophysical Research: Biogeosciences.
[10] N. Lamouroux,et al. Global prevalence of non-perennial rivers and streams , 2021, Nature.
[11] G. Hernandez‐Ramirez,et al. Primings of soil organic matter and denitrification mediate the effects of moisture on nitrous oxide production , 2021 .
[12] R. Pinto,et al. Effects of dry-wet cycles on nitrous oxide emissions in freshwater sediments: a synthesis , 2021, PeerJ.
[13] M. González-Alcaraz,et al. The case of Mar Menor eutrophication: State of the art and description of tested Nature-Based Solutions , 2020 .
[14] G. Hernandez‐Ramirez,et al. How does management legacy, nitrogen addition and nitrification inhibition impact soil organic matter priming and nitrous oxide production? , 2020, Journal of environmental quality.
[15] R. Gómez,et al. Defining Dry Rivers as the Most Extreme Type of Non-Perennial Fluvial Ecosystems , 2020, Sustainability.
[16] F. Roland,et al. Global CO2 emissions from dry inland waters share common drivers across ecosystems , 2020, Nature Communications.
[17] H. Tian,et al. Increased global nitrous oxide emissions from streams and rivers in the Anthropocene , 2019, Nature Climate Change.
[18] I. Santos,et al. Linking riverine partial pressure of carbon dioxide to dissolved organic matter optical properties in a Dry-hot Valley Region. , 2019, The Science of the total environment.
[19] F. Dyer,et al. Sediment Respiration Pulses in Intermittent Rivers and Ephemeral Streams , 2019, Global Biogeochemical Cycles.
[20] K. Congreves,et al. A new look at an old concept: using 15N2O isotopomers to understand the relationship between soil moisture and N2O production pathways , 2019, SOIL.
[21] Clara Mendoza-Lera,et al. A conceptual framework for understanding the biogeochemistry of dry riverbeds through the lens of soil science , 2019, Earth-Science Reviews.
[22] G. Singer,et al. Emissions from dry inland waters are a blind spot in the global carbon cycle , 2019, Earth-Science Reviews.
[23] T. Urich,et al. Drying and Rainfall Shape the Structure and Functioning of Nitrifying Microbial Communities in Riverbed Sediments , 2018, Front. Microbiol..
[24] J. Schimel. Life in Dry Soils: Effects of Drought on Soil Microbial Communities and Processes , 2018, Annual Review of Ecology, Evolution, and Systematics.
[25] K. Ekschmitt,et al. Recovery dynamics of prokaryotes and extracellular enzymes during sediment rewetting after desiccation , 2018, Hydrobiologia.
[26] X. Timoner,et al. The Biota of Intermittent Rivers and Ephemeral Streams: Prokaryotes, Fungi, and Protozoans , 2017 .
[27] E. Bernhardt,et al. Control Points in Ecosystems: Moving Beyond the Hot Spot Hot Moment Concept , 2017, Ecosystems.
[28] J. Pekel,et al. High-resolution mapping of global surface water and its long-term changes , 2016, Nature.
[29] E. Casamayor,et al. Stream drying drives microbial ammonia oxidation and first-flush nitrate export. , 2016, Ecology.
[30] H. Grossart,et al. Carbon and nutrient cycling in kettle hole sediments depending on hydrological dynamics: a review , 2016, Hydrobiologia.
[31] L. Liang,et al. Multivariate regulation of soil CO2 and N2O pulse emissions from agricultural soils , 2016, Global change biology.
[32] V. Acuña,et al. When Water Vanishes: Magnitude and Regulation of Carbon Dioxide Emissions from Dry Temporary Streams , 2016, Ecosystems.
[33] E. Pendall,et al. The carbon dioxide evasion cycle of an intermittent first-order stream: contrasting water–air and soil–air exchange , 2016, Biogeochemistry.
[34] V. Acuña,et al. Hot spots for carbon emissions from Mediterranean fluvial networks during summer drought , 2015, Biogeochemistry.
[35] R. Gómez,et al. Nitrogen processing following experimental sediment rewetting in isolated pools in an agricultural stream of a semiarid region , 2015 .
[36] G. D. Jenerette,et al. Regulation of CO2 and N2O fluxes by coupled carbon and nitrogen availability , 2015 .
[37] V. Acuña,et al. Carbon dioxide emissions from dry watercourses , 2014 .
[38] Panos Panagos,et al. A new baseline of organic carbon stock in European agricultural soils using a modelling approach , 2014, Global change biology.
[39] T. Meixner,et al. Physical and biological controls on trace gas fluxes in semi-arid urban ephemeral waterways , 2014, Biogeochemistry.
[40] P. Groffman,et al. High N2O emissions in dry ecosystems , 2013 .
[41] Eoin L. Brodie,et al. Rainfall-induced carbon dioxide pulses result from sequential resuscitation of phylogenetically clustered microbial groups , 2012, Proceedings of the National Academy of Sciences.
[42] Amilcare Porporato,et al. Responses of soil microbial communities to water stress: results from a meta-analysis. , 2012, Ecology.
[43] R. Vargas,et al. Effects of soil rewetting and thawing on soil gas fluxes: a review of current literature and suggestions for future research , 2011 .
[44] R. Aravena,et al. The Role of Leaky Boreholes in the Contamination of a Regional Confined Aquifer. A Case Study: The Campo de Cartagena Region, Spain , 2011 .
[45] R. Gómez,et al. The effects of drying on sediment nitrogen content in a Mediterranean intermittent stream: a microcosms study , 2011, Hydrobiologia.
[46] S. Hamilton,et al. Nitrous oxide emission from denitrification in stream and river networks , 2010, Proceedings of the National Academy of Sciences.
[47] J. Ourcival,et al. Impact of seasonal sediment desiccation and rewetting on microbial processes involved in greenhouse gas emissions , 2010 .
[48] C. Watson,et al. Insights into the Effect of Soil pH on N2O and N2 Emissions and Denitrifier Community Size and Activity , 2010, Applied and Environmental Microbiology.
[49] J. Prosser,et al. Growth of ammonia-oxidizing archaea in soil microcosms is inhibited by acetylene. , 2009, FEMS microbiology ecology.
[50] W. Borken,et al. Reappraisal of drying and wetting effects on C and N mineralization and fluxes in soils , 2009 .
[51] Laura E. Green,et al. Pulse dynamics and microbial processes in aridland ecosystems , 2008 .
[52] D. Cooper,et al. Linkages among watersheds, stream reaches, and riparian vegetation in dryland ephemeral stream networks , 2008 .
[53] T. Royer,et al. Benthic organic carbon influences denitrification in streams with high nitrate concentration , 2007 .
[54] R. Sponseller. Precipitation pulses and soil CO2 flux in a Sonoran Desert ecosystem , 2007 .
[55] E. Zaady. Seasonal Change and Nitrogen Cycling in a Patchy Negev Desert: a Review , 2005 .
[56] H. Birch. The effect of soil drying on humus decomposition and nitrogen availability , 1958, Plant and Soil.
[57] Oene Oenema,et al. Nitrous oxide emission from animal manures applied to soil under controlled conditions , 2003, Biology and Fertility of Soils.
[58] N. Fierer,et al. Effects of drying–rewetting frequency on soil carbon and nitrogen transformations , 2002 .
[59] Sommer SvenG.,et al. Determination of Total Ammonium Nitrogen in Pig and Cattle Slurry: Sample Preparation and Analysis , 1992 .