Increased high‐latitude photosynthetic carbon gain offset by respiration carbon loss during an anomalous warm winter to spring transition
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Philip Marsh | Zhihua Liu | Donatella Zona | Oliver Sonnentag | Masahito Ueyama | Nima Madani | Hideki Kobayashi | Manuel Helbig | John S Kimball | J. Watts | Hideki Kobayashi | O. Sonnentag | R. Reichle | J. Kimball | Zhihua Liu | A. Ballantyne | P. Marsh | E. Euskirchen | W. Quinton | M. Ueyama | D. Zona | M. Helbig | Wen J. Wang | N. Madani | N. Parazoo | Eugénie S Euskirchen | C. Pan | M. Hurkuck | Caleb G Pan | Rolf H Reichle | Nicholas C Parazoo | Ashley P Ballantyne | Wen J Wang | Jennifer D Watts | Miriam Hurkuck | William Quinton
[1] Donatella Zona,et al. Spring photosynthetic onset and net CO2 uptake in Alaska triggered by landscape thawing , 2018, Global Change Biology.
[2] P. Cox,et al. Projected land photosynthesis constrained by changes in the seasonal cycle of atmospheric CO2 , 2016, Nature.
[3] Atul K. Jain,et al. Widespread seasonal compensation effects of spring warming on northern plant productivity , 2018, Nature.
[4] John S. Kimball,et al. An extended global Earth system data record on daily landscape freeze–thaw status determined from satellite passive microwave remote sensing , 2016 .
[5] W. Oechel,et al. Impact of different eddy covariance sensors, site set-up, and maintenance on the annual balance of CO 2 and CH 4 in the harsh Arctic environment , 2016 .
[6] M. Ueyama,et al. Autumn warming reduces the CO2 sink of a black spruce forest in interior Alaska based on a nine‐year eddy covariance measurement , 2014, Global change biology.
[7] Alexander J. Winkler,et al. Earth system models underestimate carbon fixation by plants in the high latitudes , 2019, Nature Communications.
[8] Ian G. Enting,et al. Reconstructing the recent carbon cycle from atmospheric CO2, δ13C and O2/N2 observations* , 1999 .
[9] D. M. Lawrence,et al. Climate change and the permafrost carbon feedback , 2014, Nature.
[10] S. Sitch,et al. Modeling the Terrestrial Biosphere , 2014 .
[11] Youngwook Kim,et al. Attribution of divergent northern vegetation growth responses to lengthening non-frozen seasons using satellite optical-NIR and microwave remote sensing , 2014 .
[12] Markus Reichstein,et al. Earlier springs decrease peak summer productivity in North American boreal forests , 2013 .
[13] D. Lawrence,et al. The contribution of snow condition trends to future ground climate , 2010 .
[14] Niels Martin Schmidt,et al. Key indicators of Arctic climate change: 1971–2017 , 2019, Environmental Research Letters.
[15] S. Seneviratne,et al. Quantifying soil moisture impacts on light use efficiency across biomes , 2018, The New phytologist.
[16] P. Ciais,et al. Decelerating Autumn CO2 Release With Warming Induced by Attenuated Temperature Dependence of Respiration in Northern Ecosystems , 2018, Geophysical Research Letters.
[17] I. Wing,et al. Net carbon uptake has increased through warming-induced changes in temperate forest phenology , 2014 .
[18] Ke Zhang,et al. Numerical Terradynamic Simulation Group 9-2008 Satellite-based model detection of recent climate-driven changes in northern high-latitude vegetation productivity , 2018 .
[19] P. Ciais,et al. Influence of spring and autumn phenological transitions on forest ecosystem productivity , 2010, Philosophical Transactions of the Royal Society B: Biological Sciences.
[20] John S. Kimball,et al. Widespread permafrost vulnerability and soil active layer increases over the high northern latitudes inferred from satellite remote sensing and process model assessments , 2016 .
[21] C. Frankenberg,et al. Linking chlorophyll a fluorescence to photosynthesis for remote sensing applications: mechanisms and challenges. , 2014, Journal of experimental botany.
[22] Scot M. Miller,et al. Carbon dioxide sources from Alaska driven by increasing early winter respiration from Arctic tundra , 2017, Proceedings of the National Academy of Sciences.
[23] Larry D. Hinzman,et al. Understory CO2, sensible heat, and latent heat fluxes in a black spruce forest in interior Alaska , 2015 .
[24] K. Schaefer,et al. The impact of the permafrost carbon feedback on global climate , 2014 .
[25] Anne D. Bjorkman,et al. Eighteen years of ecological monitoring reveals multiple lines of evidence for tundra vegetation change , 2019, Ecological Monographs.
[26] S. Goetz,et al. Spatial variation in vegetation productivity trends, fire disturbance, and soil carbon across arctic-boreal permafrost ecosystems , 2016 .
[27] P. Jones,et al. Updated high‐resolution grids of monthly climatic observations – the CRU TS3.10 Dataset , 2014 .
[28] Siyuan Wang,et al. Complex responses of spring alpine vegetation phenology to snow cover dynamics over the Tibetan Plateau, China. , 2017, The Science of the total environment.
[29] M. Väliranta,et al. Latitudinal limits to the predicted increase of the peatland carbon sink with warming 1 2 , 2018 .
[30] Nathaniel A. Brunsell,et al. Warm spring reduced carbon cycle impact of the 2012 US summer drought , 2016, Proceedings of the National Academy of Sciences.
[31] D. Lawrence,et al. Dependence of the evolution of carbon dynamics in the northern permafrost region on the trajectory of climate change , 2018, Proceedings of the National Academy of Sciences.
[32] P. Ciais,et al. Permafrost carbon-climate feedbacks accelerate global warming , 2011, Proceedings of the National Academy of Sciences.
[33] Jing M. Chen,et al. Interannual variability of net ecosystem productivity in forests is explained by carbon flux phenology in autumn , 2013 .
[34] T. Barnett,et al. Potential impacts of a warming climate on water availability in snow-dominated regions , 2005, Nature.
[35] P. Cox,et al. Observing terrestrial ecosystems and the carbon cycle from space , 2015, Global change biology.
[36] D. Medvigy,et al. Soil Moisture Stress as a Major Driver of Carbon Cycle Uncertainty , 2018, Geophysical Research Letters.
[37] John E. Walsh,et al. The Exceptionally Warm Winter of 2015/16 in Alaska , 2017 .
[38] Philippe Ciais,et al. Seven years of recent European net terrestrial carbon dioxide exchange constrained by atmospheric observations , 2010 .
[39] Wade T. Crow,et al. Assessment of the SMAP Level-4 surface and root-zone soil moisture product using in situ measurements , 2017 .
[40] S. Goetz,et al. Shrub expansion in tundra ecosystems: dynamics, impacts and research priorities , 2011, Environmental Research Letters.
[41] W. S. Chan,et al. Addressing a systematic bias in carbon dioxide flux measurements with the EC150 and the IRGASON open-path gas analyzers , 2016 .
[42] Ke Zhang,et al. Changing freeze‐thaw seasons in northern high latitudes and associated influences on evapotranspiration , 2011 .
[43] Ying Xu,et al. Recently amplified arctic warming has contributed to a continual global warming trend , 2017, Nature Climate Change.
[44] Ranga B. Myneni,et al. Recent trends and drivers of regional sources and sinks of carbon dioxide , 2015 .
[45] Ranga B. Myneni,et al. Weakening temperature control on the interannual variations of spring carbon uptake across northern lands , 2017 .
[46] C. Wirth,et al. Reconciling Carbon-cycle Concepts, Terminology, and Methods , 2006, Ecosystems.
[47] Kiva L. Oken,et al. Increased wintertime CO2 loss as a result of sustained tundra warming , 2016 .
[48] Steven J. Phillips,et al. Shifts in Arctic vegetation and associated feedbacks under climate change , 2013 .
[49] Grant J. Williamson,et al. Climate-induced variations in global wildfire danger from 1979 to 2013 , 2015, Nature Communications.
[50] M. Mack,et al. Nitrogen availability increases in a tundra ecosystem during five years of experimental permafrost thaw , 2016, Global change biology.
[51] Philippe Ciais,et al. Five decades of northern land carbon uptake revealed by the interhemispheric CO2 gradient , 2019, Nature.
[52] C. Frankenberg,et al. Global monitoring of terrestrial chlorophyll fluorescence from moderate-spectral-resolution near-infrared satellite measurements: methodology, simulations, and application to GOME-2 , 2013 .
[53] S. Natali,et al. Effects of experimental warming of air, soil and permafrost on carbon balance in Alaskan tundra , 2011 .
[54] Anne D. Bjorkman,et al. Local snow melt and temperature—but not regional sea ice—explain variation in spring phenology in coastal Arctic tundra , 2019, Global change biology.
[55] Chris Derksen,et al. The accuracy of snow melt-off day derived from optical and microwave radiometer data — A study for Europe , 2018, Remote Sensing of Environment.
[56] M. Turetsky,et al. Differential response of carbon fluxes to climate in three peatland ecosystems that vary in the presence and stability of permafrost , 2014 .
[57] V. Romanovsky,et al. Long-Term Release of Carbon Dioxide from Arctic Tundra Ecosystems in Alaska , 2017, Ecosystems.
[58] R. Reichle,et al. Spring hydrology determines summer net carbon uptake in northern ecosystems , 2014 .
[59] Nuno Carvalhais,et al. Enhanced seasonal CO2 exchange caused by amplified plant productivity in northern ecosystems , 2016, Science.
[60] Y. Niwa,et al. Global atmospheric carbon budget: results from an ensemble of atmospheric CO2 inversions. , 2013 .
[61] Ke Zhang,et al. Satellite detection of increasing Northern Hemisphere non-frozen seasons from 1979 to 2008: Implications for regional vegetation growth , 2012 .
[62] T. E. Osterkamp,et al. The effect of permafrost thaw on old carbon release and net carbon exchange from tundra , 2009, Nature.
[63] B. Poulter,et al. The Arctic-Boreal vulnerability experiment model benchmarking system , 2019, Environmental Research Letters.
[64] E. A. Kort,et al. Enhanced Seasonal Exchange of CO2 by Northern Ecosystems Since 1960 , 2013, Science.
[65] B. Ramsay,et al. Published online in Wiley InterScience (www.interscience.wiley.com) DOI: 10.1002/hyp.6720 Enhancements to, and forthcoming developments in the Interactive Multisensor Snow and Ice Mapping System (IMS) † , 2022 .
[66] A. Bloom,et al. Accelerating rates of Arctic carbon cycling revealed by long-term atmospheric CO2 measurements , 2018, Science Advances.
[67] J. Berry,et al. Models of fluorescence and photosynthesis for interpreting measurements of solar-induced chlorophyll fluorescence , 2014, Journal of geophysical research. Biogeosciences.
[68] D. Lawrence,et al. Divergent patterns of experimental and model-derived permafrost ecosystem carbon dynamics in response to Arctic warming , 2018, Environmental Research Letters.
[69] O. Sonnentag,et al. Direct and indirect climate change effects on carbon dioxide fluxes in a thawing boreal forest–wetland landscape , 2017, Global change biology.
[70] J. Randerson,et al. An atmospheric perspective on North American carbon dioxide exchange: CarbonTracker , 2007, Proceedings of the National Academy of Sciences.
[71] Robert M. Graham,et al. Increasing frequency and duration of Arctic winter warming events , 2017 .
[72] A. Noormets,et al. Disentangling the Effects of Temperature, Moisture, and Substrate Availability on Soil CO2 Efflux , 2019, Journal of Geophysical Research: Biogeosciences.
[73] Atul K. Jain,et al. Compensatory water effects link yearly global land CO2 sink changes to temperature , 2017, Nature.
[74] C J Tucker,et al. Drier summers cancel out the CO2 uptake enhancement induced by warmer springs. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[75] Richard G. Compton,et al. Supporting Information Section , 2014 .
[76] John A. Gamon,et al. Tundra carbon balance under varying temperature and moisture regimes , 2010 .
[77] Hiroki Iwata,et al. Carbon dioxide balance in early-successional forests after forest fires in interior Alaska , 2019, Agricultural and Forest Meteorology.
[78] S. Pacala,et al. Tropical nighttime warming as a dominant driver of variability in the terrestrial carbon sink , 2015, Proceedings of the National Academy of Sciences.
[79] J. Schaber,et al. Responses of spring phenology to climate change , 2004 .
[80] Pierre Gentine,et al. Large influence of soil moisture on long-term terrestrial carbon uptake , 2018, Nature.
[81] J. Randerson,et al. The sensitivity of carbon fluxes to spring warming and summer drought depends on plant functional type in boreal forest ecosystems , 2007 .
[82] W. Buermann,et al. Increasing summer drying in North American ecosystems in response to longer nonfrozen periods , 2014 .
[83] A. Dai. Increasing drought under global warming in observations and models , 2013 .
[84] M. Mack,et al. Losing Legacies, Ecological Release, and Transient Responses: Key Challenges for the Future of Northern Ecosystem Science , 2016, Ecosystems.
[85] W. Oechel,et al. Tundra photosynthesis captured by satellite‐observed solar‐induced chlorophyll fluorescence , 2017 .
[86] Atul K. Jain,et al. Global Carbon Budget 2018 , 2014, Earth System Science Data.
[87] John S. Kimball,et al. Satellite Microwave remote sensing of contrasting surface water inundation changes within the Arctic-Boreal Region , 2012 .
[88] C. Rödenbeck,et al. The effect of systematic measurement errors on atmospheric CO2 inversions: a quantitative assessment , 2005 .
[89] Andreas Colliander,et al. The SMAP Level 4 Carbon Product for Monitoring Ecosystem Land–Atmosphere CO2 Exchange , 2017, IEEE Transactions on Geoscience and Remote Sensing.
[90] P. Ciais,et al. Net carbon dioxide losses of northern ecosystems in response to autumn warming , 2008, Nature.
[91] Edward A. G. Schuur,et al. Climate change: High risk of permafrost thaw , 2011, Nature.
[92] Anna Liljedahl,et al. Cold season emissions dominate the Arctic tundra methane budget , 2015, Proceedings of the National Academy of Sciences.
[93] P. Patra,et al. Implications of overestimated anthropogenic CO2 emissions on East Asian and global land CO2 flux inversion , 2017, Geoscience Letters.
[94] Sander Houweling,et al. CO 2 flux history 1982–2001 inferred from atmospheric data using a global inversion of atmospheric transport , 2003 .
[95] Ingmar Nitze,et al. 21st-century modeled permafrost carbon emissions accelerated by abrupt thaw beneath lakes , 2018, Nature Communications.
[96] W. Oechel,et al. An assessment of the carbon balance of Arctic tundra: comparisons among observations, process models, and atmospheric inversions , 2011 .