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W J Riley

Biographic Data

ID5552368
NAMEW J Riley
GIVEN NAMESW J
FAMILY NAMERiley
SIGNATURERILEY W J
AFFILIATIONSLawrence Berkeley National Laboratory
ORCID0000-0002-4615-2304
VERIFIEDYes
TOTAL WORKS28
TOTAL CITATIONS1
AUTHOR COUNT28
EDITOR COUNT0
FIRST PUBLICATION YEAR1996
LATEST PUBLICATION YEAR2025
H-INDEX1
  • Hydrology controls thermokarst and alters carbon cycling and methane emissions in peatlands near the southern limit of permafrost

    Open Access•Ian Shirley, Z A Mekonnen et al.•ARTICLE•Environmental Research Letters•2025

    Permafrost peatlands store vast amounts of frozen carbon across northern landscapes. When ground ice melts, surface subsidence produces thermokarst landforms that expand wetlands at the edges of permafrost plateaus. Thermokarst represents an accelerating climate feedback, but uncertainties remain about how ground ice, hydrology, and vegetation interact to shape landscape change and carbon fluxes. We extended the process-based model ecosys to simu…

  • Advancements and opportunities to improve bottom–up estimates of global wetland methane emissions

    Open Access•Qing Zhu, Daniel J Jacob et al.•ARTICLE•Environmental Research Letters•2025

    Wetlands are the single largest natural source of atmospheric methane (CH 4 ), contributing approximately 30% of total surface CH 4 emissions, and they have been identified as the largest source of uncertainty in the global CH 4 budget based on the most recent Global Carbon Project CH 4 report. High uncertainties in the bottom–up estimates of wetland CH 4 emissions pose significant challenges for accurately understanding their spatiotemporal vari…

  • Unraveling the depth-dependent causal dynamics of methanogenesis and methanotrophy in a high-latitude fen peatland

    Open Access•Shuai Yang, Jinyun Tang et al.•ARTICLE•Environmental Research Letters•2025

    The dynamics of methane (CH 4 ) cycling in high-latitude peatlands through different pathways of methanogenesis and methanotrophy are still poorly understood due to the spatiotemporal complexity of microbial activities and biogeochemical processes. Additionally, long-term in situ measurements within soil columns are limited and associated with large uncertainties in microbial substrates (e.g. dissolved organic carbon, acetate, hydrogen). To bette…

  • Observations and modeling reveal that heatwaves reduce photosynthesis, plant carbon reserves, and net carbon uptake

    Open Access•Z A Mekonnen, W J Riley et al.•ARTICLE•Environmental Research Letters•2025

    Heatwaves threaten ecosystem carbon balances, yet the mechanisms driving short-term carbon flux responses remain poorly understood. Here, integrating high-frequency eddy covariance (EC) data from 140 global flux tower sites (872 site-years) with detailed process-based modeling, we examine ecosystem responses during and immediately after heatwaves. We show that heatwaves caused a −40% (range [−29%, −128%]) reduction in net ecosystem productivity (…

  • Soil incubation methods lead to large differences in inferred methane production temperature sensitivity

    Open Access•Zhen Li, R F Grant et al.•ARTICLE•Environmental Research Letters•2024

    Quantifying the temperature sensitivity of methane (CH 4 ) production is crucial for predicting how wetland ecosystems will respond to climate warming. Typically, the temperature sensitivity (often quantified as a Q 10 value) is derived from laboratory incubation studies and then used in biogeochemical models. However, studies report wide variation in incubation-inferred Q 10 values, with a large portion of this variation remaining unexplained. H…

  • Evaluating the impact of peat soils and snow schemes on simulated active layer thickness at pan-Arctic permafrost sites

    Open Access•Jing Tao, W J Riley et al.•ARTICLE•Environmental Research Letters•2024

    Permafrost stability is significantly influenced by the thermal buffering effects of snow and active-layer peat soils. In the warm season, peat soils act as a barrier to downward heat transfer mainly due to their low thermal conductivity. In the cold season, the snowpack serves as a thermal insulator, retarding the release of heat from the soil to the atmosphere. Currently, many global land models overestimate permafrost soil temperature and acti…

  • Critical needs to close monitoring gaps in pan-tropical wetland CH 4 emissions

    Open Access•Qing Zhu, Kunxiaojia Yuan et al.•ARTICLE•Environmental Research Letters•2024

    Global wetlands are the largest and most uncertain natural source of atmospheric methane (CH 4 ). The FLUXNET-CH 4 synthesis initiative has established a global network of flux tower infrastructure, offering valuable data products and fostering a dedicated community for the measurement and analysis of methane flux data. Existing studies using the FLUXNET-CH 4 Community Product v1.0 have provided invaluable insights into the drivers of ecosystem-t…

  • Changes in high-latitude surface energy balance driven by snowpack and vegetation dynamics under warmer climate

    Open Access•Z A Mekonnen, W J Riley et al.•ARTICLE•Environmental Research Letters•2024

    With rapid climate warming, expected changes in snowpack and vegetation will alter the seasonal surface albedo of high-latitude ecosystems. The extent to which these albedo changes may affect surface energy balances and thus soil temperatures is uncertain, but represents a potentially important component of ecosystem feedbacks to climate change. Here, we apply a well-tested process-rich ecosystem model, ecosys , to examine changes in seasonal sur…

  • Patient Attribution—A Call for a System Redesign

    Open Access•William Riley, W J Riley et al.•ARTICLE•JAMA Health Forum•2023

    This Viewpoint discusses several shortcomings in patient attribution systems from the perspective of physicians and patients and proposes strategies to improve patient attribution accuracy to better advance the goals of alternative payment models

  • Deforestation triggering irreversible transition in Amazon hydrological cycle

    Open Access•Xiyan Xu, Xiaoyan Zhang et al.•ARTICLE•Environmental Research Letters•2022

    The Amazon is hypothesized to reach an irreversible ‘tipping point’ when deforestation slows the hydrological cycle sufficiently that tropical forest ecosystems cannot be sustained. However, inception of such a tipping point has not been supported by observations and the relevant links between deforestation and atmospheric moisture recycling are poorly understood. Here we show that reduction in evapotranspiration from 20 years of deforestation dr…

  • Machine learning models inaccurately predict current and future high-latitude C balances

    Open Access•Ian Shirley, Z A Mekonnen et al.•ARTICLE•Environmental Research Letters•2022

    The high-latitude carbon (C) cycle is a key feedback to the global climate system, yet because of system complexity and data limitations, there is currently disagreement over whether the region is a source or sink of C. Recent advances in big data analytics and computing power have popularized the use of machine learning (ML) algorithms to upscale site measurements of ecosystem processes, and in some cases forecast the response of these processes…

  • Windthrow characteristics and their regional association with rainfall, soil, and surface elevation in the Amazon

    Open Access•Robinson Negrón‐Juárez, Daniel Magnabosco Marra et al.•ARTICLE•Environmental Research Letters•2022

    Windthrows (trees uprooted and broken by winds) are common across the Amazon. They range in size from single trees to large gaps that lead to changes in forest dynamics, composition, structure, and carbon balance. Yet, the current understanding of the spatial variability of windthrows is limited. By integrating remote sensing data and geospatial analysis, we present the first study to examine the occurrence, area, and direction of windthrows and …

  • Wildfire exacerbates high-latitude soil carbon losses from climate warming

    Open Access•Z A Mekonnen, W J Riley et al.•ARTICLE•Environmental Research Letters•2022

    Arctic and boreal permafrost soil organic carbon (SOC) decomposition has been slower than carbon inputs from plant growth since the last glaciation. Anthropogenic climate warming has threatened this historical trend by accelerating SOC decomposition and altering wildfire regimes. We accurately modeled observed plant biomass and carbon emissions from wildfires in Alaskan ecosystems under current climate conditions. In projections to 2300 under the…

  • Deforestation reshapes land-surface energy-flux partitioning

    Open Access•Kunxiaojia Yuan, Qing Zhu et al.•ARTICLE•Environmental Research Letters•2021

    Land-use and land-cover change significantly modify local land-surface characteristics and water/energy exchanges, which can lead to atmospheric circulation and regional climate changes. In particular, deforestation accounts for a large portion of global land-use changes, which transforms forests into other land cover types, such as croplands and grazing lands. Many previous efforts have focused on observing and modeling land–atmosphere–water/ene…

  • Non-growing season plant nutrient uptake controls Arctic tundra vegetation composition under future climate

    Open Access•W J Riley, Z A Mekonnen et al.•ARTICLE•Environmental Research Letters•2021

    Plant growth and distribution in high-latitude tundra ecosystems is strongly limited by nutrient availability and is critical for quantifying centennial-scale carbon-climate interactions. However, land model representations of plant–nutrient interactions are uncertain, leading to poor comparisons with high-latitude observations. Although it has been recognized for decades in the observational community that plants continue to acquire nutrients we…

  • Warm-season net CO 2 uptake outweighs cold-season emissions over Alaskan North Slope tundra under current and RCP8.5 climate

    Open Access•Jing Tao, Qing Zhu et al.•ARTICLE•Environmental Research Letters•2021

    Arctic warming has increased vegetation growth and soil respiration during recent decades. The rate of Arctic warming will likely amplify over the 21st century. Previous studies have revealed that the most severe Arctic warming occurred during the cold season (September to May). The cold-season warming has posited significant CO 2 emissions to the atmosphere via respiration, possibly offsetting warm-season (June to August) net CO 2 uptake. Howeve…

  • Rapidly changing high-latitude seasonality: Implications for the 21st century carbon cycle in Alaska

    Open Access•Ian Shirley, Z A Mekonnen et al.•ARTICLE•Environmental Research Letters•2021

    Seasonal variations in high-latitude terrestrial carbon (C) fluxes are predominantly driven by air temperature and radiation. At present, high-latitude net C uptake is largest during the summer. Recent observations and modeling studies have demonstrated that ongoing and projected climate change will increase plant productivity, microbial respiration, and growing season lengths at high-latitudes, but impacts on high-latitude C cycle seasonality (a…

  • Changes in precipitation and air temperature contribute comparably to permafrost degradation in a warmer climate

    Open Access•Z A Mekonnen, W J Riley et al.•ARTICLE•Environmental Research Letters•2021

    Surface energy budgets of high-latitude permafrost systems are poorly represented in Earth system models (ESMs), yet permafrost is rapidly degrading and these dynamics are critical to future carbon-climate feedback predictions. A potentially important factor in permafrost degradation neglected so far by ESMs is heat transfer from precipitation, although increases in soil temperature and thaw depth have been observed following increases in precipi…

  • The Global Methane Budget 2000–2017

    Open Access•Marielle Saunois, Ann R Stavert et al.•ARTICLE•Earth System Science Data•2020

    Understanding and quantifying the global methane (CH4) budget is important for assessing realistic pathways to mitigate climate change. Atmospheric emissions and concentrations of CH4 continue to increase, making CH4 the second most important human-influenced greenhouse gas in terms of climate forcing, after carbon dioxide (CO2). The relative importance of CH4 compared to CO2 depends on its shorter atmospheric lifetime, stronger warming potential…

  • St century tundra shrubification could enhance net carbon uptake of North America Arctic tundra under an RCP8.5 climate trajectory

    Open Access•Z A Mekonnen, W J Riley et al.•ARTICLE•Environmental Research Letters•2018

    Recent observed shifts in Arctic tundra shrub cover have uncertain impacts on 21st century net ecosystem carbon exchanges. Here we applied a well-tested ecosystem model, ecosys, to examine the effects of North America Arctic tundra plant dynamics on ecosystem carbon balances from 1980-2100 under the RCP8.5 scenario. Tundra productivity was modeled to increase from enhanced carbon fixation and N mineralization under recent and future climates. Bet…

  • Global wetland contribution to 2000–2012 atmospheric methane growth rate dynamics

    Open Access•Benjamin Poulter, Philippe Bousquet et al.•ARTICLE•Environmental Research Letters•2017

    Increasing atmospheric methane (CH 4 ) concentrations have contributed to approximately 20% of anthropogenic climate change. Despite the importance of CH 4 as a greenhouse gas, its atmospheric growth rate and dynamics over the past two decades, which include a stabilization period (1999–2006), followed by renewed growth starting in 2007, remain poorly understood. We provide an updated estimate of CH 4 emissions from wetlands, the largest natural …

  • Attribution of changes in global wetland methane emissions from pre-industrial to present using CLM4.5-BGC

    Open Access•Rajendra Paudel, N M Mahowald et al.•ARTICLE•Environmental Research Letters•2016

    An understanding of potential factors controlling methane emissions from natural wetlands is important to accurately project future atmospheric methane concentrations. Here, we examine the relative contributions of climatic and environmental factors, such as precipitation, temperature, atmospheric CO2 concentration, nitrogen deposition, wetland inundation extent, and land-use and land-cover change, on changes in wetland methane emissions from pre…

  • Permafrost thaw and resulting soil moisture changes regulate projected high-latitude CO 2 and CH 4 emissions

    Open Access•David M Lawrence, Charles D Koven et al.•ARTICLE•Environmental Research Letters•2015

    The fate of currently frozen permafrost carbon as high-latitude climate warms remains highly uncertain and existing models give widely varying estimates of the permafrost carbon-climate feedback. This uncertainty is due to many factors, including the role that permafrost thaw-induced transitions in soil hydrologic conditions will have on organic matter decomposition rates and the proportion of aerobic to anaerobic respiration. Large-scale permafr…

  • Observed allocations of productivity and biomass, and turnover times in tropical forests are not accurately represented in CMIP5 Earth system models

    Open Access•Robinson Negrón‐Juárez, Robinson I Negrón-Juárez et al.•ARTICLE•Environmental Research Letters•2015

    A significant fraction of anthropogenic CO2 emissions is assimilated by tropical forests and stored as biomass, slowing the accumulation of CO2 in the atmosphere. Because different plant tissues have different functional roles and turnover times, predictions of carbon balance of tropical forests depend on how earth system models (ESMs) represent the dynamic allocation of productivity to different tree compartments. This study shows that observed …

  • Impacts of climate extremes on gross primary production under global warming

    Open Access•Ian N Williams, Margaret Torn et al.•ARTICLE•Environmental Research Letters•2014

    The impacts of historical droughts and heat-waves on ecosystems are often considered indicative of future global warming impacts, under the assumption that water stress sets in above a fixed high temperature threshold. Historical and future (RCP8.5) Earth system model (ESM) climate projections were analyzed in this study to illustrate changes in the temperatures for onset of water stress under global warming. The ESMs examined here predict sharp …

Next
  • Mexico City and the biogeochemistry of global urbanization

    Open Access•Scott Elliott, Isobel J Simpson et al.•ARTICLE•Environmental Science & Policy•2000•Cited by: 1

  • King and Cultus in Chronicles: Worship and the Reinterpretation of History

    Gary N Knoppers, William Riley et al.•ARTICLE•Journal of the American Oriental…•1996

  • Mexico City and the biogeochemistry of global urbanization

    Open Access•Scott Elliott, Isobel J Simpson et al.•ARTICLE•Environmental Science & Policy•2000•Cited by: 1

  • On the influence of shrub height and expansion on northern high latitude climate

    Open Access•C Bonfils, C J W Bonfils et al.•ARTICLE•Environmental Research Letters•2012

    There is a growing body of empirical evidence documenting the expansion of shrub vegetation in the circumpolar Arctic in response to climate change. Here, we conduct a series of idealized experiments with the Community Climate System Model to analyze the potential impact on boreal climate of a large-scale tundra-to-shrub conversion. The model responds to an increase in shrub abundance with substantial atmospheric heating arising from two seasonal…

  • Impacts of climate extremes on gross primary production under global warming

    Open Access•Ian N Williams, Margaret Torn et al.•ARTICLE•Environmental Research Letters•2014

    The impacts of historical droughts and heat-waves on ecosystems are often considered indicative of future global warming impacts, under the assumption that water stress sets in above a fixed high temperature threshold. Historical and future (RCP8.5) Earth system model (ESM) climate projections were analyzed in this study to illustrate changes in the temperatures for onset of water stress under global warming. The ESMs examined here predict sharp …

  • Permafrost thaw and resulting soil moisture changes regulate projected high-latitude CO 2 and CH 4 emissions

    Open Access•David M Lawrence, Charles D Koven et al.•ARTICLE•Environmental Research Letters•2015

    The fate of currently frozen permafrost carbon as high-latitude climate warms remains highly uncertain and existing models give widely varying estimates of the permafrost carbon-climate feedback. This uncertainty is due to many factors, including the role that permafrost thaw-induced transitions in soil hydrologic conditions will have on organic matter decomposition rates and the proportion of aerobic to anaerobic respiration. Large-scale permafr…

  • Observed allocations of productivity and biomass, and turnover times in tropical forests are not accurately represented in CMIP5 Earth system models

    Open Access•Robinson Negrón‐Juárez, Robinson I Negrón-Juárez et al.•ARTICLE•Environmental Research Letters•2015

    A significant fraction of anthropogenic CO2 emissions is assimilated by tropical forests and stored as biomass, slowing the accumulation of CO2 in the atmosphere. Because different plant tissues have different functional roles and turnover times, predictions of carbon balance of tropical forests depend on how earth system models (ESMs) represent the dynamic allocation of productivity to different tree compartments. This study shows that observed …

  • Attribution of changes in global wetland methane emissions from pre-industrial to present using CLM4.5-BGC

    Open Access•Rajendra Paudel, N M Mahowald et al.•ARTICLE•Environmental Research Letters•2016

    An understanding of potential factors controlling methane emissions from natural wetlands is important to accurately project future atmospheric methane concentrations. Here, we examine the relative contributions of climatic and environmental factors, such as precipitation, temperature, atmospheric CO2 concentration, nitrogen deposition, wetland inundation extent, and land-use and land-cover change, on changes in wetland methane emissions from pre…

  • Global wetland contribution to 2000–2012 atmospheric methane growth rate dynamics

    Open Access•Benjamin Poulter, Philippe Bousquet et al.•ARTICLE•Environmental Research Letters•2017

    Increasing atmospheric methane (CH 4 ) concentrations have contributed to approximately 20% of anthropogenic climate change. Despite the importance of CH 4 as a greenhouse gas, its atmospheric growth rate and dynamics over the past two decades, which include a stabilization period (1999–2006), followed by renewed growth starting in 2007, remain poorly understood. We provide an updated estimate of CH 4 emissions from wetlands, the largest natural …

  • St century tundra shrubification could enhance net carbon uptake of North America Arctic tundra under an RCP8.5 climate trajectory

    Open Access•Z A Mekonnen, W J Riley et al.•ARTICLE•Environmental Research Letters•2018

    Recent observed shifts in Arctic tundra shrub cover have uncertain impacts on 21st century net ecosystem carbon exchanges. Here we applied a well-tested ecosystem model, ecosys, to examine the effects of North America Arctic tundra plant dynamics on ecosystem carbon balances from 1980-2100 under the RCP8.5 scenario. Tundra productivity was modeled to increase from enhanced carbon fixation and N mineralization under recent and future climates. Bet…

  • The Global Methane Budget 2000–2017

    Open Access•Marielle Saunois, Ann R Stavert et al.•ARTICLE•Earth System Science Data•2020

    Understanding and quantifying the global methane (CH4) budget is important for assessing realistic pathways to mitigate climate change. Atmospheric emissions and concentrations of CH4 continue to increase, making CH4 the second most important human-influenced greenhouse gas in terms of climate forcing, after carbon dioxide (CO2). The relative importance of CH4 compared to CO2 depends on its shorter atmospheric lifetime, stronger warming potential…

  • Deforestation reshapes land-surface energy-flux partitioning

    Open Access•Kunxiaojia Yuan, Qing Zhu et al.•ARTICLE•Environmental Research Letters•2021

    Land-use and land-cover change significantly modify local land-surface characteristics and water/energy exchanges, which can lead to atmospheric circulation and regional climate changes. In particular, deforestation accounts for a large portion of global land-use changes, which transforms forests into other land cover types, such as croplands and grazing lands. Many previous efforts have focused on observing and modeling land–atmosphere–water/ene…

  • Non-growing season plant nutrient uptake controls Arctic tundra vegetation composition under future climate

    Open Access•W J Riley, Z A Mekonnen et al.•ARTICLE•Environmental Research Letters•2021

    Plant growth and distribution in high-latitude tundra ecosystems is strongly limited by nutrient availability and is critical for quantifying centennial-scale carbon-climate interactions. However, land model representations of plant–nutrient interactions are uncertain, leading to poor comparisons with high-latitude observations. Although it has been recognized for decades in the observational community that plants continue to acquire nutrients we…

  • Warm-season net CO 2 uptake outweighs cold-season emissions over Alaskan North Slope tundra under current and RCP8.5 climate

    Open Access•Jing Tao, Qing Zhu et al.•ARTICLE•Environmental Research Letters•2021

    Arctic warming has increased vegetation growth and soil respiration during recent decades. The rate of Arctic warming will likely amplify over the 21st century. Previous studies have revealed that the most severe Arctic warming occurred during the cold season (September to May). The cold-season warming has posited significant CO 2 emissions to the atmosphere via respiration, possibly offsetting warm-season (June to August) net CO 2 uptake. Howeve…

  • Rapidly changing high-latitude seasonality: Implications for the 21st century carbon cycle in Alaska

    Open Access•Ian Shirley, Z A Mekonnen et al.•ARTICLE•Environmental Research Letters•2021

    Seasonal variations in high-latitude terrestrial carbon (C) fluxes are predominantly driven by air temperature and radiation. At present, high-latitude net C uptake is largest during the summer. Recent observations and modeling studies have demonstrated that ongoing and projected climate change will increase plant productivity, microbial respiration, and growing season lengths at high-latitudes, but impacts on high-latitude C cycle seasonality (a…

  • Changes in precipitation and air temperature contribute comparably to permafrost degradation in a warmer climate

    Open Access•Z A Mekonnen, W J Riley et al.•ARTICLE•Environmental Research Letters•2021

    Surface energy budgets of high-latitude permafrost systems are poorly represented in Earth system models (ESMs), yet permafrost is rapidly degrading and these dynamics are critical to future carbon-climate feedback predictions. A potentially important factor in permafrost degradation neglected so far by ESMs is heat transfer from precipitation, although increases in soil temperature and thaw depth have been observed following increases in precipi…

  • Deforestation triggering irreversible transition in Amazon hydrological cycle

    Open Access•Xiyan Xu, Xiaoyan Zhang et al.•ARTICLE•Environmental Research Letters•2022

    The Amazon is hypothesized to reach an irreversible ‘tipping point’ when deforestation slows the hydrological cycle sufficiently that tropical forest ecosystems cannot be sustained. However, inception of such a tipping point has not been supported by observations and the relevant links between deforestation and atmospheric moisture recycling are poorly understood. Here we show that reduction in evapotranspiration from 20 years of deforestation dr…

  • Machine learning models inaccurately predict current and future high-latitude C balances

    Open Access•Ian Shirley, Z A Mekonnen et al.•ARTICLE•Environmental Research Letters•2022

    The high-latitude carbon (C) cycle is a key feedback to the global climate system, yet because of system complexity and data limitations, there is currently disagreement over whether the region is a source or sink of C. Recent advances in big data analytics and computing power have popularized the use of machine learning (ML) algorithms to upscale site measurements of ecosystem processes, and in some cases forecast the response of these processes…

  • Windthrow characteristics and their regional association with rainfall, soil, and surface elevation in the Amazon

    Open Access•Robinson Negrón‐Juárez, Daniel Magnabosco Marra et al.•ARTICLE•Environmental Research Letters•2022

    Windthrows (trees uprooted and broken by winds) are common across the Amazon. They range in size from single trees to large gaps that lead to changes in forest dynamics, composition, structure, and carbon balance. Yet, the current understanding of the spatial variability of windthrows is limited. By integrating remote sensing data and geospatial analysis, we present the first study to examine the occurrence, area, and direction of windthrows and …

  • Wildfire exacerbates high-latitude soil carbon losses from climate warming

    Open Access•Z A Mekonnen, W J Riley et al.•ARTICLE•Environmental Research Letters•2022

    Arctic and boreal permafrost soil organic carbon (SOC) decomposition has been slower than carbon inputs from plant growth since the last glaciation. Anthropogenic climate warming has threatened this historical trend by accelerating SOC decomposition and altering wildfire regimes. We accurately modeled observed plant biomass and carbon emissions from wildfires in Alaskan ecosystems under current climate conditions. In projections to 2300 under the…

  • Patient Attribution—A Call for a System Redesign

    Open Access•William Riley, W J Riley et al.•ARTICLE•JAMA Health Forum•2023

    This Viewpoint discusses several shortcomings in patient attribution systems from the perspective of physicians and patients and proposes strategies to improve patient attribution accuracy to better advance the goals of alternative payment models

  • Soil incubation methods lead to large differences in inferred methane production temperature sensitivity

    Open Access•Zhen Li, R F Grant et al.•ARTICLE•Environmental Research Letters•2024

    Quantifying the temperature sensitivity of methane (CH 4 ) production is crucial for predicting how wetland ecosystems will respond to climate warming. Typically, the temperature sensitivity (often quantified as a Q 10 value) is derived from laboratory incubation studies and then used in biogeochemical models. However, studies report wide variation in incubation-inferred Q 10 values, with a large portion of this variation remaining unexplained. H…

  • Evaluating the impact of peat soils and snow schemes on simulated active layer thickness at pan-Arctic permafrost sites

    Open Access•Jing Tao, W J Riley et al.•ARTICLE•Environmental Research Letters•2024

    Permafrost stability is significantly influenced by the thermal buffering effects of snow and active-layer peat soils. In the warm season, peat soils act as a barrier to downward heat transfer mainly due to their low thermal conductivity. In the cold season, the snowpack serves as a thermal insulator, retarding the release of heat from the soil to the atmosphere. Currently, many global land models overestimate permafrost soil temperature and acti…

  • Critical needs to close monitoring gaps in pan-tropical wetland CH 4 emissions

    Open Access•Qing Zhu, Kunxiaojia Yuan et al.•ARTICLE•Environmental Research Letters•2024

    Global wetlands are the largest and most uncertain natural source of atmospheric methane (CH 4 ). The FLUXNET-CH 4 synthesis initiative has established a global network of flux tower infrastructure, offering valuable data products and fostering a dedicated community for the measurement and analysis of methane flux data. Existing studies using the FLUXNET-CH 4 Community Product v1.0 have provided invaluable insights into the drivers of ecosystem-t…

  • Changes in high-latitude surface energy balance driven by snowpack and vegetation dynamics under warmer climate

    Open Access•Z A Mekonnen, W J Riley et al.•ARTICLE•Environmental Research Letters•2024

    With rapid climate warming, expected changes in snowpack and vegetation will alter the seasonal surface albedo of high-latitude ecosystems. The extent to which these albedo changes may affect surface energy balances and thus soil temperatures is uncertain, but represents a potentially important component of ecosystem feedbacks to climate change. Here, we apply a well-tested process-rich ecosystem model, ecosys , to examine changes in seasonal sur…

  • Hydrology controls thermokarst and alters carbon cycling and methane emissions in peatlands near the southern limit of permafrost

    Open Access•Ian Shirley, Z A Mekonnen et al.•ARTICLE•Environmental Research Letters•2025

    Permafrost peatlands store vast amounts of frozen carbon across northern landscapes. When ground ice melts, surface subsidence produces thermokarst landforms that expand wetlands at the edges of permafrost plateaus. Thermokarst represents an accelerating climate feedback, but uncertainties remain about how ground ice, hydrology, and vegetation interact to shape landscape change and carbon fluxes. We extended the process-based model ecosys to simu…

Environmental Science (24 works) · Ecology (21 works) · Atmospheric sciences (16 works) · Climate change (14 works) · Ecosystem (14 works) · Geology (14 works) · Climate change and permafrost (13 works) · Atmospheric and Environmental Gas Dynamics (10 works) · Climatology (10 works) · Cryospheric studies and observations (10 works)

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