Geographical Distribution of Floating Aquatic Plants in Relation to Environmental Conditions
暂无分享,去创建一个
[1] G. Bell,et al. Overwintering and re-emergence in Lemna minor , 2023, Aquatic Botany.
[2] Jianming Xu,et al. Biodiversity of Duckweed (Lemnaceae) in Water Reservoirs of Ukraine and China Assessed by Chloroplast DNA Barcoding , 2022, Plants.
[3] Janardan Mainali,et al. Diversity of aquatic plants and macroinvertebrates and their spatial patterns in a Himalayan Watershed, Central Nepal , 2022, Aquatic Botany.
[4] Sofia J. van Moorsel. The importance of ecotype diversity on duckweed growth with and without salt stress , 2022, Journal of Plant Ecology.
[5] T. Burg,et al. HIDE AND SEEK: MOLECULAR BARCODING CLARIFIES THE DISTRIBUTION OF TWO CRYPTIC DUCKWEED SPECIES ACROSS ALBERTA , 2021, Botany.
[6] V. Maire,et al. Both selection and plasticity drive niche differentiation in experimental grasslands , 2019, Nature Plants.
[7] P. Convey,et al. Nitrogen Inputs by Marine Vertebrates Drive Abundance and Richness in Antarctic Terrestrial Ecosystems , 2019, Current Biology.
[8] M. Jansen,et al. Competition Between Lemna minuta, Lemna minor, and Azolla filiculoides. Growing Fast or Being Steadfast? , 2018, Front. Chem..
[9] D. Lakušić,et al. An overview of aquatic vegetation in Serbia , 2018 .
[10] E. Peeters,et al. Competition between Free-Floating Plants Is Strongly Driven by Previously Experienced Phosphorus Concentrations in the Water Column , 2016, PloS one.
[11] M. J. McCann. Response diversity of free-floating plants to nutrient stoichiometry and temperature: growth and resting body formation , 2016, PeerJ.
[12] V. Devictor,et al. Linking habitat specialization with species' traits in European birds , 2016 .
[13] K. Appenroth,et al. How fast can angiosperms grow? Species and clonal diversity of growth rates in the genus Wolffia (Lemnaceae) , 2015, Acta Physiologiae Plantarum.
[14] K. Appenroth,et al. The duckweed Wolffia microscopica: A unique aquatic monocot , 2015 .
[15] K. Appenroth,et al. Relative in vitro growth rates of duckweeds (Lemnaceae) - the most rapidly growing higher plants. , 2015, Plant biology.
[16] K. Niklas,et al. Darwin-Wallace Demons: survival of the fastest in populations of duckweeds and the evolutionary history of an enigmatic group of angiosperms. , 2015, Plant biology.
[17] D. Flynn,et al. Selection for niche differentiation in plant communities increases biodiversity effects , 2014, Nature.
[18] I. O'farrell,et al. Regime shifts between free-floating plants and phytoplankton: a review , 2014, Hydrobiologia.
[19] Jiong Ma,et al. Genetic structure of duckweed population of Spirodela, Landoltia and Lemna from Lake Tai, China , 2014, Planta.
[20] Sigrid D. P. Smith. The roles of nitrogen and phosphorus in regulating the dominance of floating and submerged aquatic plants in a field mesocosm experiment , 2014 .
[21] M. Scheffer,et al. Changing weather conditions and floating plants in temperate drainage ditches , 2013 .
[22] W. D. Kissling,et al. The role of biotic interactions in shaping distributions and realised assemblages of species: implications for species distribution modelling , 2012, Biological reviews of the Cambridge Philosophical Society.
[23] J. Soussana,et al. Habitat filtering and niche differentiation jointly explain species relative abundance within grassland communities along fertility and disturbance gradients. , 2012, The New phytologist.
[24] P. Boyce,et al. Relationships within the Araceae: comparison of morphological patterns with molecular phylogenies. , 2011, American journal of botany.
[25] M. Araújo,et al. Biotic and abiotic variables show little redundancy in explaining tree species distributions , 2010 .
[26] I. F. Harvey,et al. Global warming and eutrophication: effects on water chemistry and autotrophic communities in experimental hypertrophic shallow lake mesocosms , 2009 .
[27] M. Chase,et al. Phylogenetic relationships of aroids and duckweeds (Araceae) inferred from coding and noncoding plastid DNA. , 2008, American journal of botany.
[28] B. Gopal,et al. Competition and allelopathy in aquatic plant communities , 1993, The Botanical Review.
[29] W. Hillman. The Lemnaceae, or duckweeds , 1961, The Botanical Review.
[30] T. Hengl,et al. Water nutrient concentrations in channels in relation to occurrence of aquatic plants: a case study in eastern Croatia , 2008, Hydrobiologia.
[31] A. Bouchard,et al. A less restrictive technique for the estimation of understory light under variable weather conditions , 2007 .
[32] Eric Garnier,et al. From Plant Traits to Plant Communities: A Statistical Mechanistic Approach to Biodiversity , 2006, Science.
[33] Amy L. Freestone,et al. Dispersal limitation and environmental heterogeneity shape scale-dependent diversity patterns in plant communities. , 2006, Ecology.
[34] W. Thuiller,et al. Predicting species distribution: offering more than simple habitat models. , 2005, Ecology letters.
[35] M. Scheffer,et al. Floating plant dominance as a stable state , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[36] Charles J. Patton,et al. Methods of analysis by the U.S. Geological Survey National Water Quality Laboratory : evaluation of alkaline persulfate digestion as an alternative to Kjeldahl digestion for determination of total and dissolved nitrogen and phosphorus in water , 2003 .
[37] N. Cedergreen,et al. Nitrogen uptake by the floating macrophyte Lemna minor , 2002 .
[38] Barbara L. Bedford,et al. PATTERNS IN NUTRIENT AVAILABILITY AND PLANT DIVERSITY OF TEMPERATE NORTH AMERICAN WETLANDS , 1999 .
[39] Jan H. Janse,et al. Effects of eutrophication in drainage ditches , 1998 .
[40] R. Roijackers,et al. Primary succession of aquatic macrophytes in experimental ditches in relation to nutrient input. , 1995 .
[41] D. Clark,et al. Long-term study of solar radiation regimes in a tropical wet forest using quantum sensors and hemispherical photography , 1993 .
[42] D. Eissenstat,et al. Costs and benefits of constructing roots of small diameter , 1992 .
[43] J. Shay,et al. A field study of competition and interaction between Lemna minor and Lemna trisulca , 1989 .
[44] C. McLay. The effect of pH on the population growth of three species of duckweed: Spirodela oligorrhiza, Lemna minor and Wolffia arrhiza , 1976 .
[45] G. Hodgson. Effects of Temperature on the Growth and Development of Lemna minor, under Conditions of Natural Daylight , 1970 .
[46] E. H. Daubs. A monograph of Lemnaceae. , 1965 .