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Half of global methane emissions come from highly variable aquatic ecosystem sources
by
Liu, Shaoda
, Melack, John
, Deemer, Bridget R.
, Poulter, Benjamin
, Eyre, Bradley D.
, Battin, Tom I.
, Song, Chunlin
, Raymond, Peter A.
, Holgerson, Meredith A.
, Rosentreter, Judith A.
, Olefeldt, David
, Borges, Alberto V.
, Duarte, Carlos M.
, Allen, George H.
in
704/106/286
/ 704/106/47/4113
/ 704/106/694/2739
/ 704/47/4113
/ Anthropogenic factors
/ Aquatic ecosystems
/ Aquatic environment
/ Aquatic sciences & oceanology
/ Atmospheric methane
/ Biogeochemistry
/ CH4
/ Climate
/ Climate change
/ Earth and Environmental Science
/ Earth Resources And Remote Sensing
/ Earth Sciences
/ Earth System Sciences
/ Ecosystems
/ Emissions control
/ Empirical analysis
/ Eutrophication
/ Fluxes
/ Freshwater
/ Freshwater ecosystems
/ Geochemistry
/ Geology
/ Geophysics/Geodesy
/ Greenhouse gases
/ Inland water environment
/ lake
/ Land management
/ Land use
/ Land use management
/ Life sciences
/ Methane
/ Methane emissions
/ Mitigation
/ river
/ Sampling designs
/ Sciences aquatiques & océanologie
/ Sciences du vivant
/ Skewed distributions
/ Urbanization
2021
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Half of global methane emissions come from highly variable aquatic ecosystem sources
by
Liu, Shaoda
, Melack, John
, Deemer, Bridget R.
, Poulter, Benjamin
, Eyre, Bradley D.
, Battin, Tom I.
, Song, Chunlin
, Raymond, Peter A.
, Holgerson, Meredith A.
, Rosentreter, Judith A.
, Olefeldt, David
, Borges, Alberto V.
, Duarte, Carlos M.
, Allen, George H.
in
704/106/286
/ 704/106/47/4113
/ 704/106/694/2739
/ 704/47/4113
/ Anthropogenic factors
/ Aquatic ecosystems
/ Aquatic environment
/ Aquatic sciences & oceanology
/ Atmospheric methane
/ Biogeochemistry
/ CH4
/ Climate
/ Climate change
/ Earth and Environmental Science
/ Earth Resources And Remote Sensing
/ Earth Sciences
/ Earth System Sciences
/ Ecosystems
/ Emissions control
/ Empirical analysis
/ Eutrophication
/ Fluxes
/ Freshwater
/ Freshwater ecosystems
/ Geochemistry
/ Geology
/ Geophysics/Geodesy
/ Greenhouse gases
/ Inland water environment
/ lake
/ Land management
/ Land use
/ Land use management
/ Life sciences
/ Methane
/ Methane emissions
/ Mitigation
/ river
/ Sampling designs
/ Sciences aquatiques & océanologie
/ Sciences du vivant
/ Skewed distributions
/ Urbanization
2021
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Half of global methane emissions come from highly variable aquatic ecosystem sources
by
Liu, Shaoda
, Melack, John
, Deemer, Bridget R.
, Poulter, Benjamin
, Eyre, Bradley D.
, Battin, Tom I.
, Song, Chunlin
, Raymond, Peter A.
, Holgerson, Meredith A.
, Rosentreter, Judith A.
, Olefeldt, David
, Borges, Alberto V.
, Duarte, Carlos M.
, Allen, George H.
in
704/106/286
/ 704/106/47/4113
/ 704/106/694/2739
/ 704/47/4113
/ Anthropogenic factors
/ Aquatic ecosystems
/ Aquatic environment
/ Aquatic sciences & oceanology
/ Atmospheric methane
/ Biogeochemistry
/ CH4
/ Climate
/ Climate change
/ Earth and Environmental Science
/ Earth Resources And Remote Sensing
/ Earth Sciences
/ Earth System Sciences
/ Ecosystems
/ Emissions control
/ Empirical analysis
/ Eutrophication
/ Fluxes
/ Freshwater
/ Freshwater ecosystems
/ Geochemistry
/ Geology
/ Geophysics/Geodesy
/ Greenhouse gases
/ Inland water environment
/ lake
/ Land management
/ Land use
/ Land use management
/ Life sciences
/ Methane
/ Methane emissions
/ Mitigation
/ river
/ Sampling designs
/ Sciences aquatiques & océanologie
/ Sciences du vivant
/ Skewed distributions
/ Urbanization
2021
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Half of global methane emissions come from highly variable aquatic ecosystem sources
Journal Article
Half of global methane emissions come from highly variable aquatic ecosystem sources
2021
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Overview
Atmospheric methane is a potent greenhouse gas that plays a major role in controlling the Earth’s climate. The causes of the renewed increase of methane concentration since 2007 are uncertain given the multiple sources and complex biogeochemistry. Here, we present a metadata analysis of methane fluxes from all major natural, impacted and human-made aquatic ecosystems. Our revised bottom-up global aquatic methane emissions combine diffusive, ebullitive and/or plant-mediated fluxes from 15 aquatic ecosystems. We emphasize the high variability of methane fluxes within and between aquatic ecosystems and a positively skewed distribution of empirical data, making global estimates sensitive to statistical assumptions and sampling design. We find aquatic ecosystems contribute (median) 41% or (mean) 53% of total global methane emissions from anthropogenic and natural sources. We show that methane emissions increase from natural to impacted aquatic ecosystems and from coastal to freshwater ecosystems. We argue that aquatic emissions will probably increase due to urbanization, eutrophication and positive climate feedbacks and suggest changes in land-use management as potential mitigation strategies to reduce aquatic methane emissions.
Publisher
Springer Nature,Nature Publishing Group UK,Nature Publishing Group
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