RAPID CARBON RESPONSE OF PEATLANDS TO CLIMATE CHANGE.
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Karen Updegraff | Jake F. Weltzin | Scott D. Bridgham | S. Bridgham | J. Weltzin | K. Updegraff | J. Pastor | Bradley Dewey | John Pastor | B. Dewey
[1] P. Glaser,et al. Raised bogs in eastern North America: transitions in landforms and gross stratigraphy , 1986 .
[2] The Effects of Infrared Loading and Water Table on Soil Energy Fluxes in Northern Peatlands , 2004, Ecosystems.
[3] S. Bridgham,et al. RESPONSE OF BOG AND FEN PLANT COMMUNITIES TO WARMING AND WATER‐TABLE MANIPULATIONS , 2000 .
[4] S. Bridgham,et al. Global warming and the export of dissolved organic carbon from boreal peatlands , 2003 .
[5] Robert C. Harriss,et al. Review and assessment of methane emissions from wetlands , 1993 .
[6] S. Bridgham,et al. ECOSYSTEM CONTROL OVER TEMPERATURE AND ENERGY FLUX IN NORTHERN PEATLANDS , 1999 .
[7] S. Bridgham,et al. Effects of soil warming and drying on methane cycling in a northern peatland mesocosm study , 2008 .
[8] S. Bridgham,et al. pH and nutrient effects on above-ground net primary production in a Minnesota, USA bog and fen , 2004, Wetlands.
[9] S. Bridgham,et al. Climate change effects on carbon and nitrogen mineralization in peatlands through changes in soil quality , 2004 .
[10] R. Korhonen,et al. Carbon balance and radiative forcing of Finnish peatlands 1900–2100 – the impact of forestry drainage , 2002 .
[11] Paul J. Crutzen,et al. Global distribution of natural freshwater wetlands and rice paddies, their net primary productivity, seasonality and possible methane emissions , 1989 .
[12] R. Lark,et al. Carbon losses from all soils across England and Wales 1978–2003 , 2005, Nature.
[13] R. Aerts,et al. PLANT‐MEDIATED CONTROLS ON NUTRIENT CYCLING IN TEMPERATE FENS AND BOGS , 1999 .
[14] R. S. Clymo,et al. The Ecology of Sphagnum , 1982 .
[15] S. Bridgham,et al. Potential effects of warming and drying on peatland plant community composition , 2003 .
[16] Scott D. Bridgham,et al. The carbon balance of North American wetlands , 2006, Wetlands.
[17] H. Ingram,et al. Size and shape in raised mire ecosystems: a geophysical model , 1982, Nature.
[18] H. Rydin. Effect of water level on desiccation of Sphagnum in relation to surrounding Sphagna , 1985 .
[19] C. Johnston,et al. Potential feedbacks of northern wetlands on climate change: An outline of an approach to predict climate-change impact , 1995 .
[20] W. Collins,et al. Global climate projections , 2007 .
[21] L. R. Belyea,et al. Carbon sequestration in peatland: patterns and mechanisms of response to climate change , 2004 .
[22] Bruce B. Peckham,et al. Plant Community Dynamics, Nutrient Cycling, and Alternative Stable Equilibria in Peatlands , 2002, The American Naturalist.
[23] Tim R. Moore,et al. Modelling and analysis of peatlands as dynamical systems , 2000 .
[24] S. Bridgham,et al. Multiple limiting gradients in peatlands: A call for a new paradigm , 2009, Wetlands.
[25] G. Inoue,et al. Controls on evapotranspiration in a west Siberian bog , 2004 .
[26] N. Roulet,et al. Atmosphere‐wetland carbon exchanges: Scale dependency of CO2 and CH4 exchange on the developmental topography of a peatland , 1996 .
[27] N. Batjes,et al. Total carbon and nitrogen in the soils of the world , 1996 .
[28] N. Malmer,et al. Biomass, productivity and relative rate of photosynthesis of Sphagnum at different water levels on a South Swedish peat bog , 1988 .
[29] S. Bridgham,et al. Erratum: Carbon, nitrogen, and phosphorus mineralization in northern wetlands (Ecology (1998) 79:5 (1545-1561)) , 1998 .
[30] P. Crill,et al. Seasonal patterns and controls on net ecosystem CO2 exchange in a boreal peatland complex , 1998 .
[31] Karen Updegraff,et al. RESPONSE OF CO2 AND CH4 EMISSIONS FROM PEATLANDS TO WARMING AND WATER TABLE MANIPULATION , 2001 .
[32] Karen Updegraff,et al. CARBON, NITROGEN, AND PHOSPHORUS MINERALIZATION IN NORTHERN WETLANDS , 1998 .
[33] R. S. Clymo,et al. Feedback control of the rate of peat formation , 2001, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[34] J. Houghton,et al. Climate change 2001 : the scientific basis , 2001 .
[35] A. W. Damman,et al. Species-controlled Sphagnum decay on a South Swedish raised bog , 1991 .
[36] S. Bridgham,et al. Temperature responses to infrared-loading and water table manipulations in peatland mesocosms. , 2008, Journal of integrative plant biology.
[37] S. Bridgham,et al. Soils of Northern Peatlands: Histosols and Gelisols , 2000 .
[38] M. Apps,et al. Millennial-Scale Rhythms in Peatlands in the Western Interior of Canada and in the Global Carbon Cycle , 2000, Quaternary Research.
[39] Andrew,et al. CONCEPTS & SYNTHESIS EMPHASIZING NEW IDEAS TO STIMULATE RESEARCH IN ECOLOGY , 2006 .
[40] Eville Gorham,et al. The biogeochemistry of northern peatlands and its possible responses to global warming , 1995 .
[41] Inez Y. Fung,et al. Methane emission from natural wetlands: Global distribution, area, and environmental characteristics of sources , 1987 .
[42] Tim R. Moore,et al. Uncertainty in Predicting the Effect of Climatic Change on the Carbon Cycling of Canadian Peatlands , 1998 .
[43] P. Martikainen,et al. Reconstruction of the carbon balance for microsites in a boreal oligotrophic pine fen, Finland , 1997, Oecologia.
[44] R. Wieder. PAST, PRESENT, AND FUTURE PEATLAND CARBON BALANCE: AN EMPIRICAL MODEL BASED ON 210Pb‐DATED CORES , 2001 .
[45] E. Kellner,et al. Surface energy fluxes and control of evapotranspiration from a Swedish Sphagnum mire. , 2001 .
[46] R. S. Clymo,et al. The Limits to Peat Bog Growth , 1984 .