Spring photosynthetic onset and net CO2 uptake in Alaska triggered by landscape thawing
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Donatella Zona | Junjie Liu | Almut Arneth | Randy Kawa | Christian Rödenbeck | Nicholas Steiner | W. Oechel | A. Arneth | T. Pugh | C. Rödenbeck | Junjie Liu | E. Euskirchen | Ben Smith | D. Zona | C. Miller | J. Benmergui | K. Luus | N. Parazoo | R. Commane | R. Kawa | N. Steiner | K. Arndt | Charles Miller | E. Stofferahn | Ben Smith | Thomas A M Pugh | Eric Stofferahn | Nicholas C Parazoo | Kristina Luus | Roisin Commane | Josh Benmergui | Eugenie Euskirchen | Kyle Arndt | Walt Oechel
[1] C. Frankenberg,et al. Overview of Solar-Induced chlorophyll Fluorescence (SIF) from the Orbiting Carbon Observatory-2: Retrieval, cross-mission comparison, and global monitoring for GPP , 2018 .
[2] D. Douglas,et al. Drivers and Environmental Responses to the Changing Annual Snow Cycle of Northern Alaska , 2017 .
[3] G. Diskin,et al. The NASA Carbon Airborne Flux Experiment (CARAFE): instrumentation and methodology , 2017 .
[4] Dell,et al. Contrasting carbon cycle responses of the tropical continents to the 2015–2016 El Niño , 2017, Science.
[5] A. Mäkelä,et al. Early snowmelt significantly enhances boreal springtime carbon uptake , 2017, Proceedings of the National Academy of Sciences.
[6] K. McDonald,et al. CARVE: Daily Thaw State of Boreal and Arctic Alaska from AMSR-E and SSM/I, 2003-2014 , 2017 .
[7] V. Romanovsky,et al. Long-Term Release of Carbon Dioxide from Arctic Tundra Ecosystems in Alaska , 2017, Ecosystems.
[8] Ran Wang,et al. Parallel Seasonal Patterns of Photosynthesis, Fluorescence, and Reflectance Indices in Boreal Trees , 2017, Remote. Sens..
[9] 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.
[10] Scot M. Miller,et al. CARVE: Net Ecosystem CO2 Exchange and Regional Carbon Budgets for Alaska, 2012-2014 , 2017 .
[11] C. Frankenberg,et al. Application of satellite solar-induced chlorophyll fluorescence to understanding large-scale variations in vegetation phenology and function over northern high latitude forests , 2017 .
[12] W. Oechel,et al. Tundra photosynthesis captured by satellite‐observed solar‐induced chlorophyll fluorescence , 2017 .
[13] 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 .
[14] L. Guanter,et al. Satellite chlorophyll fluorescence measurements reveal large‐scale decoupling of photosynthesis and greenness dynamics in boreal evergreen forests , 2016, Global change biology.
[15] D. Lawrence,et al. Detecting regional patterns of changing CO2 flux in Alaska , 2016, Proceedings of the National Academy of Sciences.
[16] W. Oechel,et al. Vegetation Type Dominates the Spatial Variability in CH4 Emissions Across Multiple Arctic Tundra Landscapes , 2016, Ecosystems.
[17] Nicholas C. Parazoo,et al. Combining GOSAT XCO2 observations over land and ocean to improve regional CO2 flux estimates , 2016 .
[18] Anna Liljedahl,et al. Cold season emissions dominate the Arctic tundra methane budget , 2015, Proceedings of the National Academy of Sciences.
[19] K. McDonald,et al. Snowmelt and Surface Freeze/Thaw Timings over Alaska derived from Passive Microwave Observations using a Wavelet Classifier , 2015 .
[20] Benjamin Smith,et al. Low historical nitrogen deposition effect on carbon sequestration in the boreal zone , 2015, Journal of Geophysical Research: Biogeosciences.
[21] John C. Lin,et al. The Polar Vegetation Photosynthesis and Respiration Model: a parsimonious, satellite-data-driven model of high-latitude CO2 exchange , 2015 .
[22] K. Schaefer,et al. A parameterization of respiration in frozen soils based on substrate availability , 2015 .
[23] K. Schaefer,et al. The importance of a surface organic layer in simulating permafrost thermal and carbon dynamics , 2015 .
[24] John A Gamon,et al. The photochemical reflectance index provides an optical indicator of spring photosynthetic activation in evergreen conifers. , 2015, The New phytologist.
[25] Watson W. Gregg,et al. Assessing the magnitude of CO2 flux uncertainty in atmospheric CO2 records using products from NASA's Carbon Monitoring Flux Pilot Project , 2015 .
[26] Philippe Ciais,et al. Benchmarking the seasonal cycle of CO2 fluxes simulated by terrestrial ecosystem models , 2015 .
[27] M. Bret-Harte,et al. Long-Term Release of Carbon Dioxide from Arctic Tundra Ecosystems in Northern Alaska , 2014 .
[28] J. M. Krijger,et al. Potential of the TROPOspheric Monitoring Instrument (TROPOMI) onboard the Sentinel-5 Precursor for the monitoring of terrestrial chlorophyll fluorescence , 2014 .
[29] Guido Grosse,et al. Estimated stocks of circumpolar permafrost carbon with quantified uncertainty ranges and identified data gaps , 2014 .
[30] Colm Sweeney,et al. Methane emissions from Alaska in 2012 from CARVE airborne observations , 2014, Proceedings of the National Academy of Sciences.
[31] A. Karion,et al. Atmospheric transport simulations in support of the Carbon in Arctic Reservoirs Vulnerability Experiment (CARVE) , 2014 .
[32] Dylan B. A. Jones,et al. Terrestrial gross primary production inferred from satellite fluorescence and vegetation models , 2014, Global change biology.
[33] L. Guanter,et al. The seasonal cycle of satellite chlorophyll fluorescence observations and its relationship to vegetation phenology and ecosystem atmosphere carbon exchange , 2014 .
[34] A. Anthony Bloom,et al. Constraining ecosystem carbon dynamics in a data-limited world: integrating ecological "common sense" in a model-data fusion framework , 2014 .
[35] M. Langer,et al. Freeze/thaw processes in complex permafrost landscapes of northern Siberia simulated using the TEM ecosystem model: impact of thermokarst ponds and lakes , 2014 .
[36] Atul K. Jain,et al. Carbon cycle uncertainty in the Alaskan Arctic , 2014 .
[37] 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 .
[38] 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 .
[39] Dimitris Menemenlis,et al. Carbon monitoring system flux estimation and attribution: impact of ACOS-GOSAT XCO2 sampling on the inference of terrestrial biospheric sources and sinks , 2014 .
[40] W. Oechel,et al. Growing season and spatial variations of carbon fluxes of Arctic and boreal ecosystems in Alaska (USA). , 2013, Ecological applications : a publication of the Ecological Society of America.
[41] L. Hinzman,et al. Trajectory of the Arctic as an integrated system. , 2013, Ecological applications : a publication of the Ecological Society of America.
[42] C. Potter,et al. Alaska ecosystem carbon fluxes estimated from MODIS satellite data inputs from 2000 to 2010 , 2013, Carbon Balance and Management.
[43] Philippe Ciais,et al. Large‐scale variations in the vegetation growing season and annual cycle of atmospheric CO2 at high northern latitudes from 1950 to 2011 , 2013, Global change biology.
[44] E. A. Kort,et al. Enhanced Seasonal Exchange of CO2 by Northern Ecosystems Since 1960 , 2013, Science.
[45] Marco Tedesco,et al. A Wavelet Melt Detection Algorithm Applied to Enhanced Resolution Scatterometer Data over Antarctica (2000-2009) , 2013 .
[46] D. Wunch,et al. Evaluation of seasonal atmosphere–biosphere exchange estimations with TCCON measurements , 2013 .
[47] David Medvigy,et al. Predicting changes in temperate forest budburst using continental‐scale observations and models , 2013 .
[48] G. Kiely,et al. State-dependent errors in a land surface model across biomes inferred from eddy covariance observations on multiple timescales , 2012 .
[49] Jing M. Chen,et al. Land surface phenology from optical satellite measurement and CO2 eddy covariance technique , 2012 .
[50] Atul K. Jain,et al. A model-data comparison of gross primary productivity: Results from the North American Carbon Program site synthesis , 2012 .
[51] A. Denning,et al. CO 2 flux estimation errors associated with moist atmospheric processes , 2012 .
[52] Ke Zhang,et al. Satellite detection of increasing Northern Hemisphere non-frozen seasons from 1979 to 2008: Implications for regional vegetation growth , 2012 .
[53] Steven F. Oberbauer,et al. Plot-scale evidence of tundra vegetation change and links to recent summer warming. , 2012 .
[54] E. Middleton,et al. Filling-in of near-infrared solar lines by terrestrial fluorescence and other geophysical effects: simulations and space-based observations from SCIAMACHY and GOSAT , 2012 .
[55] D. Lawrence,et al. Simulation of Present-Day and Future Permafrost and Seasonally Frozen Ground Conditions in CCSM4 , 2012 .
[56] Susan M. Natali,et al. Increased plant productivity in Alaskan tundra as a result of experimental warming of soil and permafrost , 2012 .
[57] S. Malyshev,et al. Uncertainties in terrestrial carbon budgets related to spring phenology , 2012 .
[58] J. Tison,et al. Natural iron fertilization of the Atlantic sector of the Southern Ocean by continental shelf sources of the Antarctic Peninsula , 2012 .
[59] Ke Zhang,et al. Changing freeze‐thaw seasons in northern high latitudes and associated influences on evapotranspiration , 2011 .
[60] W. Oechel,et al. An assessment of the carbon balance of Arctic tundra: comparisons among observations, process models, and atmospheric inversions , 2011 .
[61] A. Porcar-Castell,et al. A high-resolution portrait of the annual dynamics of photochemical and non-photochemical quenching in needles of Pinus sylvestris. , 2011, Physiologia plantarum.
[62] C. Frankenberg,et al. New global observations of the terrestrial carbon cycle from GOSAT: Patterns of plant fluorescence with gross primary productivity , 2011, Geophysical Research Letters.
[63] Akihiko Kuze,et al. Toward accurate CO2 and CH4 observations from GOSAT , 2011 .
[64] W. Oechel,et al. Light-stress avoidance mechanisms in a Sphagnum-dominated wet coastal Arctic tundra ecosystem in Alaska. , 2011, Ecology.
[65] J. Randerson,et al. Global fire emissions and the contribution of deforestation, savanna, forest, agricultural, and peat fires (1997-2009) , 2010 .
[66] Lars Eklundh,et al. Annual changes in MODIS vegetation indices of Swedish coniferous forests in relation to snow dynamics and tree phenology , 2010 .
[67] C. Tucker,et al. Circumpolar Arctic Tundra Vegetation Change Is Linked to Sea Ice Decline , 2010 .
[68] D. Lawrence,et al. The contribution of snow condition trends to future ground climate , 2010 .
[69] A. Arneth,et al. Separation of net ecosystem exchange into assimilation and respiration using a light response curve approach: critical issues and global evaluation , 2010 .
[70] J. Moreno,et al. Remote sensing of sun‐induced fluorescence to improve modeling of diurnal courses of gross primary production (GPP) , 2010 .
[71] Andrew D Richardson,et al. Near-surface remote sensing of spatial and temporal variation in canopy phenology. , 2009, Ecological applications : a publication of the Ecological Society of America.
[72] Dusanka Zupanski,et al. Estimation of global CO2 fluxes at regional scale using the maximum likelihood ensemble filter , 2008 .
[73] David M. Lawrence,et al. Sensitivity of a model projection of near‐surface permafrost degradation to soil column depth and representation of soil organic matter , 2008 .
[74] U. Rascher,et al. Annual variation of the steady-state chlorophyll fluorescence emission of evergreen plants in temperate zone. , 2008, Functional plant biology : FPB.
[75] Ingo Ensminger,et al. Soil temperature and intermittent frost modulate the rate of recovery of photosynthesis in Scots pine under simulated spring conditions. , 2007, The New phytologist.
[76] Peter M. Lafleur,et al. Spring warming and carbon dioxide exchange over low Arctic tundra in central Canada , 2007 .
[77] J. Randerson,et al. An atmospheric perspective on North American carbon dioxide exchange: CarbonTracker , 2007, Proceedings of the National Academy of Sciences.
[78] K. Larsen,et al. Respiration and Microbial Dynamics in Two Subarctic Ecosystems during Winter and Spring Thaw: Effects of Increased Snow Depth , 2007 .
[79] A. Arneth,et al. Spring in the boreal environment: observations on pre- and post-melt energy and CO2 fluxes in two central Siberian ecosystems , 2006 .
[80] T. Vesala,et al. On the separation of net ecosystem exchange into assimilation and ecosystem respiration: review and improved algorithm , 2005 .
[81] Stefan Jansson,et al. Intermittent low temperatures constrain spring recovery of photosynthesis in boreal Scots pine forests , 2004 .
[82] J. Schaber,et al. Responses of spring phenology to climate change , 2004 .
[83] Sander Houweling,et al. CO 2 flux history 1982–2001 inferred from atmospheric data using a global inversion of atmospheric transport , 2003 .
[84] Tiina Markkanen,et al. Air temperature triggers the recovery of evergreen boreal forest photosynthesis in spring , 2003 .
[85] S. Oberbauer,et al. PHOTOSYNTHESIS OF ARCTIC EVERGREENS UNDER SNOW: IMPLICATIONS FOR TUNDRA ECOSYSTEM CARBON BALANCE , 2003 .
[86] Rommel C. Zulueta,et al. Inter-annual carbon dioxide uptake of a wet sedge tundra ecosystem in the Arctic , 2003 .
[87] K. Niyogi,et al. Non-photochemical quenching. A response to excess light energy. , 2001, Plant physiology.
[88] T. Nakano,et al. Diurnal changes in needle gas exchange in alpine Pinus pumila during snow-melting and summer seasons , 2001, Ecological Research.
[89] T. Zhang,et al. Soil freeze/thaw cycles over snow‐free land detected by passive microwave remote sensing , 2001 .
[90] W. Rouse,et al. Interannual variability of net ecosystem CO2 exchange at a subarctic fen , 2000 .
[91] Vladimir E. Romanovsky,et al. Effects of unfrozen water on heat and mass transport processes in the active layer and permafrost. , 2000 .
[92] Sune Linder,et al. Botany: Constraints to growth of boreal forests , 2000, Nature.
[93] Wenjun Chen,et al. Increased carbon sequestration by a boreal deciduous forest in years with a warm spring , 2000 .
[94] S. Oberbauer,et al. Effects of extended growing season and soil warming on carbon dioxide and methane exchange of tussock tundra in Alaska , 1998 .
[95] Sune Linder,et al. Climatic factors controlling the productivity of Norway spruce : A model-based analysis , 1998 .
[96] Harden,et al. Sensitivity of boreal forest carbon balance to soil thaw , 1998, Science.
[97] D. Campbell,et al. Seasonal changes in photosystem II organisation and pigment composition in Pinus sylvestris , 1995, Planta.
[98] R. Short. The Growing Season , 1991, Acta paediatrica Scandinavica. Supplement.
[99] M. Strand,et al. Inhibition of photosynthesis by freezing temperatures and high light levels in cold-acclimated seedlings of Scots pine (Pinus sylvestris). – II. Effects on chlorophyll fluorescence at room temperature and 77 K. , 1985 .
[100] M. Strand,et al. Inhibition of photosynthesis by freezing temperatures and high light Levels in cold‐acclimated seedlings of Scots pine (Pinus sylvestris). ‐ I. Effects on the light‐limited and light‐saturated rates of CO2 assimilation , 1985 .
[101] K. Luus,et al. The Polar Vegetation Photosynthesis and Respiration Model ( PolarVPRM ) : a parsimonious , satellite data-driven model of high-latitude CO 2 exchange , 2015 .
[102] E. Jafarov,et al. A parameterization of respiration in frozen soils , 2015 .
[103] Zong-Liang Yang,et al. Technical description of version 4.5 of the Community Land Model (CLM) , 2013 .
[104] Xiangming Xiao,et al. Land Surface Phenology , 2009 .
[105] C. Rödenbeck. Estimating CO2 sources and sinks from atmospheric mixing ratio measurements using a global inversion of atmospheric transport , 2005 .
[106] Bryan L. Isacks,et al. Determination of melt-onset and refreeze timing on southeast Alaskan icefields using SSM/I diurnal amplitude variations , 2002, Annals of Glaciology.
[107] B. Demmig‐Adams,et al. The role of xanthophyll cycle carotenoids in the protection of photosynthesis , 1996 .
[108] R. Waring,et al. Constraints on Terrestrial Primary Productivity in Temperate Forests Along the Pacific Coast of North and South America , 1996 .
[109] S. Linder,et al. Gas exchange in a 20-year-old stand of Scots pine , 1982 .
[110] Marvin A. Jolson,et al. http://www.jstor.org/page/info/about/policies/terms.jsp. JSTOR's Terms and Conditions of Use provides, in part, that unless , 2022 .