Contribution of forests to the carbon sink via biologically-mediated silicate weathering: A case study of China.
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[1] F. Blanckenburg,et al. Quantifying nutrient uptake as driver of rock weathering in forest ecosystems by magnesium stable isotopes , 2017 .
[2] J. Hartmann,et al. Temperature dependence of basalt weathering , 2016 .
[3] Mark R. Lomas,et al. Enhanced weathering strategies for stabilizing climate and averting ocean acidification , 2015 .
[4] P. Renforth,et al. The dissolution of olivine added to soil: Implications for enhanced weathering , 2015 .
[5] Z. Gu,et al. Regional soil erosion assessment from remote sensing data in rehabilitated high density canopy forests of southern China , 2014 .
[6] R. W. Lucas,et al. Intensive forest harvesting and pools of base cations in forest ecosystems: A modeling study using the Heureka decision support system , 2014 .
[7] S. Hamburg,et al. Rates of sustainable forest harvest depend on rotation length and weathering of soil minerals , 2014 .
[8] P. Renforth,et al. Carbon dioxide efficiency of terrestrial enhanced weathering. , 2014, Environmental science & technology.
[9] C. Chamberlain,et al. Hydrologic Regulation of Chemical Weathering and the Geologic Carbon Cycle , 2014, Science.
[10] D. Montgomery,et al. Rapid Soil Production and Weathering in the Southern Alps, New Zealand , 2014, Science.
[11] D. Cressey. Rock’s power to mop up carbon revisited , 2014, Nature.
[12] D. Manning,et al. Carbonate precipitation in artificial soils produced from basaltic quarry fines and composts: An opportunity for passive carbon sequestration , 2013 .
[13] Hongyan Liu,et al. The production of phytolith‐occluded carbon in China's forests: implications to biogeochemical carbon sequestration , 2013, Global change biology.
[14] P. Jiang,et al. [Uptake and accumulation characteristics of silicon and other nutritional elements in different age Phyllostachys praecox plants]. , 2013, Ying yong sheng tai xue bao = The journal of applied ecology.
[15] P. Renforth,et al. Enhanced chemical weathering as a geoengineering strategy to reduce atmospheric carbon dioxide, supply nutrients, and mitigate ocean acidification , 2013 .
[16] O. Ovaskainen,et al. Roots and Associated Fungi Drive Long-Term Carbon Sequestration in Boreal Forest , 2013, Science.
[17] D. Manning,et al. Passive sequestration of atmospheric CO2 through coupled plant-mineral reactions in urban soils. , 2013, Environmental science & technology.
[18] P. Strong,et al. Plant impact on the coupled terrestrial biogeochemical cycles of silicon and carbon: Implications for biogeochemical carbon sequestration , 2012 .
[19] Jonathan Corcoran,et al. Disaggregate GIS modelling to track spatial change: exploring a decade of commuting in South East Queensland, Australia , 2012 .
[20] H. Laudon,et al. Uncertainty in silicate mineral weathering rate estimates: source partitioning and policy implications , 2012 .
[21] David Labat,et al. High sensitivity of the continental-weathering carbon dioxide sink to future climate change , 2012 .
[22] R. B. Jackson,et al. A Large and Persistent Carbon Sink in the World’s Forests , 2011, Science.
[23] Hongya Wang,et al. Comparing mineral magnetic properties of sediments in two reservoirs in “strongly” and “mildly” eroded regions on the Guizhou Plateau, southwest China: A tool for inferring differences in sediment sources and soil erosion , 2011 .
[24] Guomo Zhou,et al. Review of Carbon Fixation in Bamboo Forests in China , 2011, The Botanical Review.
[25] Zhaoliang Song,et al. Plant Impact on CO2 Consumption by Silicate Weathering: The Role of Bamboo , 2011, The Botanical Review.
[26] J. Parr,et al. Carbon bio‐sequestration within the phytoliths of economic bamboo species , 2010 .
[27] Jens Hartmann,et al. Geoengineering potential of artificially enhanced silicate weathering of olivine , 2010, Proceedings of the National Academy of Sciences.
[28] B. Hagedorn,et al. Climatic and lithologic controls on the temporal and spatial variability of CO2 consumption via chemical weathering: An example from the Australian Victorian Alps , 2009 .
[29] D. Beerling,et al. Biological weathering and the long‐term carbon cycle: integrating mycorrhizal evolution and function into the current paradigm , 2009, Geobiology.
[30] F. Street-Perrott,et al. Biogenic silica: a neglected component of the coupled global continental biogeochemical cycles of carbon and silicon , 2008 .
[31] Deane Wang,et al. Chemical weathering and chemical denudation dynamics through ecosystem development and disturbance , 2008 .
[32] S. Gíslason,et al. Direct Evidence of the Feedback Between Climate and Weathering in Glaciated River Catchments , 2007 .
[33] R. Schuiling,et al. Enhanced Weathering: An Effective and Cheap Tool to Sequester Co2 , 2006 .
[34] Kurt S. Pregitzer,et al. Carbon cycling and storage in world forests: biome patterns related to forest age , 2004 .
[35] Wolfgang Ludwig,et al. Worldwide distribution of continental rock lithology: Implications for the atmospheric/soil CO2 uptake by continental weathering and alkalinity river transport to the oceans , 2003 .
[36] C. Peng,et al. Changes in Forest Biomass Carbon Storage in China Between 1949 and 1998 , 2001, Science.
[37] R. Berner,et al. Solute flux and mineral mass balance approaches to the quantification of plant effects on silicate weathering , 2000 .
[38] B. Dupré,et al. Global silicate weathering and CO2 consumption rates deduced from the chemistry of large rivers , 1999 .
[39] R. April,et al. Rapid, plant-induced weathering in an aggrading experimental ecosystem , 1998 .
[40] Harald Sverdrup,et al. Long-term base cation mass balances for Swedish forests and the concept of sustainability , 1998 .
[41] Robert A. Berner,et al. The Rise of Plants and Their Effect on Weathering and Atmospheric CO2 , 1997, Science.
[42] J. Drever. THE EFFECT OF LAND PLANTS ON WEATHERING RATES OF SILICATE MINERALS , 1994 .
[43] M. Meybeck. Global chemical weathering of surficial rocks estimated from river dissolved loads , 1987 .
[44] Pamela A. Matson,et al. HUMAN APPROPRIATION OF THE PRODUCTS OF PHOTOSYNTHESIS , 1986 .
[45] Jianhou Zhang,et al. [Biomass and net primary productivity of artificial tropical rainforest in Xishuangbanna]. , 1977, Ying yong sheng tai xue bao = The journal of applied ecology.
[46] Zhongwu Li,et al. Soil erosion, organic carbon and nitrogen dynamics in planted forests: A case study in a hilly catchment of Hunan Province, China , 2016 .
[47] S. Gíslason,et al. The effect of gross primary production, net primary production and net ecosystem exchange on the carbon fixation by chemical weathering of basalt in northeastern Iceland , 2006 .
[48] Ren Hai,et al. BIOMASS AND NET PRIMARY PRODUCTIVITY OF THE FORESTS IN DIFFERENT CLIMATIC ZONES OF CHINA , 2004 .
[49] Qiu Dong-sheng. Estimation of Carbon Sink Capacity Caused by Rock Weathering in China , 2004 .