System-Specific Complex Interactions Shape Soil Organic Carbon Distribution in Coastal Salt Marshes
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Bo Wang | Chi Xu | Chi Xu | Maosong Liu | Dan Yang | Dan Yang | Xin-Yu Miao | Ren-Ping Jiang | Teng Wen | Mao-Song Liu | Cheng Huang | Xinyu Miao | T. Wen | Bo Wang | Cheng Huang | Ren-Ping Jiang
[1] J. van de Koppel,et al. The shaping role of self-organization: linking vegetation patterning, plant traits and ecosystem functioning , 2019, Proceedings of the Royal Society B.
[2] M. Scheffer,et al. Can we infer plant facilitation from remote sensing? a test across global drylands. , 2015, Ecological applications : a publication of the Ecological Society of America.
[3] Zheng Y. X. Huang,et al. Macroecological factors shape local-scale spatial patterns in agriculturalist settlements , 2017, Proceedings of the Royal Society B: Biological Sciences.
[4] Rik Leemans,et al. Millennium Ecosystem Assessment: Ecosystems and human well-being: a framework for assessment , 2003 .
[5] Shing Yip Lee,et al. Updated estimates of carbon accumulation rates in coastal marsh sediments , 2014 .
[6] Lei Wang,et al. Variability of soil carbon sequestration capability and microbial activity of different types of salt marsh soils at Chongming Dongtan , 2010 .
[7] B. Cui,et al. Natural enemies govern ecosystem resilience in the face of extreme droughts. , 2017, Ecology letters.
[8] H. Katsuragi,et al. Physical constraints on sand crab burrows: Mechanical properties of wet sand explain the size and spatial distributions of burrows on beaches , 2019, PloS one.
[9] Junhong Bai,et al. Spatial and Temporal Distributions of Soil Organic Carbon and Total Nitrogen in Two Marsh Wetlands with Different Flooding Frequencies of the Yellow River Delta, China , 2012 .
[10] B. Silliman,et al. Physical Stress, Consumer Control, and New Theory in Ecology. , 2018, Trends in ecology & evolution.
[11] S. Cannicci,et al. Mangrove carbon sink. Do burrowing crabs contribute to sediment carbon storage? Evidence from a Kenyan mangrove system , 2014 .
[12] R Core Team,et al. R: A language and environment for statistical computing. , 2014 .
[13] B. Silliman,et al. Consumer control as a common driver of coastal vegetation worldwide , 2016 .
[14] B. Cui,et al. Depth-distribution patterns and control of soil organic carbon in coastal salt marshes with different plant covers , 2016, Scientific Reports.
[15] R. Franklin,et al. Salinity affects microbial activity and soil organic matter content in tidal wetlands , 2014, Global change biology.
[16] Huifeng Wu,et al. Spatiotemporal Distribution Characteristics of Soil Organic Carbon in Newborn Coastal Wetlands of the Yellow River Delta Estuary , 2014 .
[17] Gail L. Chmura,et al. What do we need to assess the sustainability of the tidal salt marsh carbon sink , 2013 .
[18] Hari Eswaran,et al. Organic Carbon in Soils of the World , 1993 .
[19] Mark Huxham,et al. The future of Blue Carbon science , 2019, Nature Communications.
[20] F. Maestre,et al. Surface indicators are correlated with soil multifunctionality in global drylands , 2020 .
[21] J. van de Koppel,et al. Weather fluctuations affect the impact of consumers on vegetation recovery following a catastrophic die-off. , 2018, Ecology.
[22] Laura C. Feher,et al. Climate and plant controls on soil organic matter in coastal wetlands , 2018, Global change biology.
[23] C. Hopkinson,et al. Global-change controls on soil-carbon accumulation and loss in coastal vegetated ecosystems , 2019, Nature Geoscience.
[24] Robert P Freckleton,et al. Why do we still use stepwise modelling in ecology and behaviour? , 2006, The Journal of animal ecology.
[25] P. Qin,et al. Functional group classification and target species selection for Yancheng Nature Reserve, China , 2004, Biodiversity & Conservation.
[26] Marten Scheffer,et al. Local Facilitation May Cause Tipping Points on a Landscape Level Preceded by Early-Warning Indicators , 2015, The American Naturalist.
[27] Frank Canters,et al. A multiple regression approach to assess the spatial distribution of Soil Organic Carbon (SOC) at the regional scale (Flanders, Belgium) , 2008 .
[28] Carlos M. Duarte,et al. A blueprint for blue carbon: toward an improved understanding of the role of vegetated coastal habitats in sequestering CO2 , 2011 .
[29] Paul L. G. Vlek,et al. An appraisal of global wetland area and its organic carbon stock , 2005 .
[30] J. L. Parra,et al. Very high resolution interpolated climate surfaces for global land areas , 2005 .
[31] Johan van de Koppel,et al. Phase separation explains a new class of self-organized spatial patterns in ecological systems , 2013, Proceedings of the National Academy of Sciences.
[32] Jonathan S. Lefcheck,et al. piecewiseSEM: Piecewise structural equation modelling in r for ecology, evolution, and systematics , 2015, 1509.01845.
[33] D. W. Nelson,et al. Total Carbon, Organic Carbon, and Organic Matter , 1983, SSSA Book Series.
[34] Martin J. Wassen,et al. Trophic interactions in a changing world , 2004 .
[35] R. Milne,et al. A soil carbon and land use database for the United Kingdom , 2005 .
[36] Hao Wu,et al. Soil organic carbon storage changes in coastal wetlands of the modern Yellow River Delta from 2000 to 2009. , 2012 .
[37] B. Cui,et al. What drives the distribution of crab burrows in different habitats of intertidal salt marshes, Yellow River Delta, China , 2017, Ecological Indicators.
[38] Colin M Beale,et al. Revealing ecological networks using Bayesian network inference algorithms. , 2010, Ecology.
[39] Marten Scheffer,et al. Pattern formation at multiple spatial scales drives the resilience of mussel bed ecosystems , 2014, Nature Communications.