Photosynthetic characteristics and biomass distribution of the dominant vascular plant species in a high Arctic tundra ecosystem, Ny-Ålesund, Svalbard: implications for their role in ecosystem carbon gain
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H. Noda | H. Muraoka | H. Koizumi | T. Ohtsuka | M. Uchida | T. Nakatsubo
[1] J. Gamon,et al. Ecological Applications of Remote Sensing at Multiple Scales , 2007 .
[2] S. Yoshitake,et al. Carbon and nitrogen limitation of soil microbial respiration in a High Arctic successional glacier foreland near Ny-Ålesund, Svalbard , 2007 .
[3] G. R. Shaver,et al. What is the relationship between changes in canopy leaf area and changes in photosynthetic CO2 flux in arctic ecosystems? , 2007 .
[4] Masaki,et al. Relationships between vegetation types and soil properties along a topographical gradient on the northern coast of the Brgger Peninsula, Svalbard , 2006 .
[5] H. Muraoka,et al. Ecosystem development and carbon cycle on a glacier foreland in the high Arctic, Ny-Ålesund, Svalbard , 2005, Journal of Plant Research.
[6] H. Koizumi,et al. Soil Microbial Biomass, Respiration Rate, and Temperature Dependence on a Successional Glacier Foreland in Ny-Ålesund, Svalbard , 2004 .
[7] H. Koizumi,et al. Soil respiration in a high arctic glacier foreland in Ny-Alesund, Svalbard. , 2004 .
[8] T. Callaghan,et al. Environmental constraints on the growth, photosynthesis and reproductive development of Dryas octopetala at a high Arctic polar semi-desert, Svalbard , 1995, Oecologia.
[9] Ulrich Schreiber,et al. Determination of the quantum efficiency of photosystem II and of non-photochemical quenching of chlorophyll fluorescence in the field , 1995, Oecologia.
[10] D. Mortensen,et al. Arctic tundra: A source or sink for atmospheric carbon dioxide in a changing environment? , 1982, Oecologia.
[11] Mark T. van Wijk,et al. Tight coupling between leaf area index and foliage N content in arctic plant communities , 2004, Oecologia.
[12] J. R. Evans. Photosynthesis and nitrogen relationships in leaves of C3 plants , 2004, Oecologia.
[13] S. Coulson,et al. Community assembly along proglacial chronosequences in the high Arctic: vegetation and soil development in north‐west Svalbard , 2003 .
[14] H. Kanda,et al. Carbon Isotope Discrimination in Diverging Growth Forms of Saxifraga oppositifolia in Different Successional Stages in a High Arctic Glacier Foreland , 2003 .
[15] H. Muraoka,et al. Leaf photosynthetic characteristics and net primary production of the polar willow (Salix polaris) in a high arctic polar semi-desert, Ny-Ålesund, Svalbard , 2002 .
[16] H. Muraoka,et al. Net Photosynthesis, Respiration, and Production of the Moss Sanionia uncinata on a Glacier Foreland in the High Arctic, Ny-Ålesund, Svalbard , 2002 .
[17] J. Palutikof,et al. Climate change 2007 : impacts, adaptation and vulnerability , 2001 .
[18] G. Henry,et al. Responses of carbon and nitrogen concentrations in high arctic plants to experimental warming , 2001 .
[19] U. Molau,et al. Leaf-trait Variation of Tundra Plants along a Climatic Gradient: An Integration of Responses in Evergreen and Deciduous Species , 2001 .
[20] C. Dormann,et al. Trading forage quality for quantity? Plant phenology and patch choice by Svalbard reindeer , 2000, Oecologia.
[21] E. Rastetter,et al. PLANT CARBON–NUTRIENT INTERACTIONS CONTROL CO2 EXCHANGE IN ALASKAN WET SEDGE TUNDRA ECOSYSTEMS , 2000 .
[22] E. Rastetter,et al. Vegetation characteristics and primary productivity along an arctic transect: implications for scaling‐up , 1999 .
[23] Lennart Nilsen,et al. Mapping and analysing arctic vegetation: Evaluating a method coupling numerical classification of vegetation data with SPOT satellite data in a probability model , 1999 .
[24] L. Nilsen,et al. Mapping plant communities in a local Arctic landscape applying a scanned infrared aerial photograph in a geographical information system , 1999 .
[25] H. Koizumi,et al. Respiration of the belowground parts of vascular plants: its contribution to total soil respiration on a successional glacier foreland in Ny‐Ålesund, Svalbard , 1998 .
[26] F. Chapin,et al. Physiological and Growth Responses of Arctic Plants to a Field Experiment Simulating Climatic Change , 1996 .
[27] Sigmund Spjelkavik,et al. A satellite-based map compared to a traditional vegetation map of Arctic vegetation in the Ny-Ålesund area, Svalbard , 1995, Polar Record.
[28] Ernst-Detlef Schulze,et al. Ecophysiology of Photosynthesis , 1995, Springer Study Edition.
[29] J. P. Grime. 1 – The Role of Plasticity in Exploiting Environmental Heterogeneity , 1994 .
[30] W. Bilger,et al. Chlorophyll fluorescence as a nonintrusive indicator for rapid assessment of in vivo photosynthesis , 1994 .
[31] F. Stuart Chapin,et al. Evolution of Suites of Traits in Response to Environmental Stress , 1993, The American Naturalist.
[32] R. Crawford,et al. Potential impact of climatic warming on Arctic vegetation , 1993 .
[33] J. Briantais,et al. The relationship between the quantum yield of photosynthetic electron transport and quenching of chlorophyll fluorescence , 1989 .
[34] F. Chapin,et al. The Cost of Tundra Plant Structures: Evaluation of Concepts and Currencies , 1989, The American Naturalist.
[35] Thomas J. Givnish,et al. On the economy of plant form and function. , 1988 .
[36] Christopher B. Field,et al. photosynthesis--nitrogen relationship in wild plants , 1986 .
[37] Plant communities and plant production in the western Queen Elizabeth Islands , 1984 .
[38] J. P. Grime,et al. Plant Strategies and Vegetation Processes. , 1980 .
[39] J. H. M. Thornley,et al. Mathematical models in plant physiology , 1976 .
[40] Roderick R. Riewe,et al. Arctic Tundra Ecosystems , 1973 .