Soil carbon stocks in stable tropical landforms are dominated by geochemical controls and not by land use
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J. Six | S. Trumbore | M. Reichenbach | P. Fiener | S. Doetterl | A. Hoyt
[1] P. Boeckx,et al. Soil geochemistry - and not topography - as a major driver of carbon allocation, stocks and dynamics in forests and soils of African tropical montane ecosystems. , 2022, The New phytologist.
[2] K. Kalbitz,et al. Microbial properties in tropical montane forest soils developed from contrasting parent material—An incubation experiment , 2022, Journal of Plant Nutrition and Soil Science.
[3] R. Comans,et al. Surface reactivity of the natural metal (hydr)oxides in weathered tropical soils , 2022, Geoderma.
[4] P. Fiener,et al. Heterotrophic soil respiration and carbon cycling in geochemically distinct African tropical forest soils , 2021, SOIL.
[5] J. Six,et al. Organic matter cycling along geochemical, geomorphic, and disturbance gradients in forest and cropland of the African Tropics – project TropSOC database version 1.0 , 2021, Earth System Science Data.
[6] J. Six,et al. The role of geochemistry in organic carbon stabilization against microbial decomposition in tropical rainforest soils , 2021, SOIL.
[7] B. Poulter,et al. Mapping global forest age from forest inventories, biomass and climate data , 2021, Earth System Science Data.
[8] D. Kimaro,et al. Iron oxides and aluminous clays selectively control soil carbon storage and stability in the humid tropics , 2021, Scientific Reports.
[9] V. K. Hgaza,et al. Estimation of soil properties with mid-infrared soil spectroscopy across yam production landscapes in West Africa , 2021 .
[10] J. Six,et al. Filling a key gap: a soil infrared library for central Africa , 2021 .
[11] D. Sonwa,et al. Building a framework towards climate-smart agriculture in the Yangambi landscape, Democratic Republic of Congo (DRC) , 2021, International Journal of Climate Change Strategies and Management.
[12] Ling-ling Zhang,et al. Soil carbon dynamics in different types of subtropical forests as determined by density fractionation and stable isotope analysis , 2020 .
[13] Gifty E. Acquah,et al. Continental-scale controls on soil organic carbon across sub-Saharan Africa , 2020, SOIL.
[14] J. Randerson,et al. The age distribution of global soil carbon inferred from radiocarbon measurements , 2020, Nature Geoscience.
[15] R. Wagai,et al. Iron and aluminum association with microbially processed organic matter via meso-density aggregate formation across soils: organo-metallic glue hypothesis , 2020, SOIL.
[16] O. Phillips,et al. Variations in soil chemical and physical properties explain basin-wide Amazon forest soil carbon concentrations , 2020, SOIL.
[17] Oscar M. Baez-Villanueva,et al. Bias correction of global high-resolution precipitation climatologies using streamflow observations from 9372 catchments , 2019, Journal of Climate.
[18] J. Six,et al. Soil carbon storage informed by particulate and mineral-associated organic matter , 2019, Nature Geoscience.
[19] N. A. M. R. Senaviratna,et al. Diagnosing Multicollinearity of Logistic Regression Model , 2019, Asian Journal of Probability and Statistics.
[20] R. K. Enang,et al. Influence of Clay Minerals on Some Soil Fertility Attributes: A Review , 2019, Open Journal of Soil Science.
[21] T. Rennert. Wet-chemical extractions to characterise pedogenic Al and Fe species – a critical review , 2019, Soil Research.
[22] R. Dalal,et al. Reforestation of agricultural land in the tropics: The relative contribution of soil, living biomass and debris pools to carbon sequestration. , 2019, The Science of the total environment.
[23] Qingpeng Yang,et al. Global synthesis of temperature sensitivity of soil organic carbon decomposition: Latitudinal patterns and mechanisms , 2019, Functional Ecology.
[24] J. A. Anache,et al. Understanding the water dynamics on a tropical forest litter using a new device for interception measurement , 2018, Ecohydrology.
[25] M. Hansen,et al. Congo Basin forest loss dominated by increasing smallholder clearing , 2018, Science Advances.
[26] Pete Smith,et al. Soil erosion is unlikely to drive a future carbon sink in Europe , 2018, Science Advances.
[27] M. Hansen,et al. Classifying drivers of global forest loss , 2018, Science.
[28] K. H. Hartge,et al. Bulk Density , 2018, SSSA Book Series.
[29] J. Six,et al. Links among warming, carbon and microbial dynamics mediated by soil mineral weathering , 2018, Nature Geoscience.
[30] J. Harden,et al. A sequential selective dissolution method to quantify storage and stability of organic carbon associated with Al and Fe hydroxide phases , 2018 .
[31] W. Wieder,et al. Beyond clay: towards an improved set of variables for predicting soil organic matter content , 2018, Biogeochemistry.
[32] D. W. Nelson,et al. Total Carbon, Organic Carbon, and Organic Matter , 1983, SSSA Book Series.
[33] Michael Dixon,et al. Google Earth Engine: Planetary-scale geospatial analysis for everyone , 2017 .
[34] A. Plante,et al. Iron-mediated mineralogical control of organic matter accumulation in tropical soils , 2017 .
[35] F. Kelliher,et al. Soil carbon sequestration potential of permanent pasture and continuous cropping soils in New Zealand , 2017, Global change biology.
[36] Stephen E. Fick,et al. WorldClim 2: new 1‐km spatial resolution climate surfaces for global land areas , 2017 .
[37] B. Ringeval,et al. Soil parent material—A major driver of plant nutrient limitations in terrestrial ecosystems , 2017, Global change biology.
[38] Akihiko Ito,et al. Descriptor : Global distribution of clay-size minerals on land surface for biogeochemical and climatological studies , 2017 .
[39] A. Steinhof,et al. Sample Preparation at the Jena 14C Laboratory , 2017, Radiocarbon.
[40] Xinggang Wang,et al. Decoupled linkage between soil carbon and nitrogen mineralization among soil depths in a subtropical mixed forest , 2017 .
[41] K. Paustian,et al. Assessing labile organic carbon in soils undergoing land use change in Brazil: A comparison of approaches , 2017 .
[42] G. Asner,et al. Deforestation risk due to commodity crop expansion in sub-Saharan Africa , 2017 .
[43] Hans-Jörg Vogel,et al. Modeling Soil Processes: Review, Key Challenges, and New Perspectives , 2016 .
[44] K. Moder. How to keep the Type I Error Rate in ANOVA if Variances are Heteroscedastic , 2016 .
[45] Zhengang Wang,et al. Erosion, deposition and soil carbon: A review of process-level controls, experimental tools and models to address C cycling in dynamic landscapes , 2016 .
[46] M. Sommer,et al. Effects of mineral characteristics on content, composition, and stability of organic matter fractions separated from seven forest topsoils of different pedogenesis , 2016 .
[47] J. Balesdent,et al. Deep soil carbon dynamics are driven more by soil type than by climate: a worldwide meta‐analysis of radiocarbon profiles , 2015, Global change biology.
[48] M. Jackson,et al. Dissolution for Total Elemental Analysis , 2015 .
[49] Y. Kuzyakov,et al. Loss of labile organic carbon from subsoil due to land-use changes in subtropical China , 2015 .
[50] Y. Kuzyakov,et al. Losses of soil carbon by converting tropical forest to plantations: erosion and decomposition estimated by δ13C , 2015, Global change biology.
[51] M. Bernoux,et al. From forest to cropland and pasture systems: a critical review of soil organic carbon stocks changes in Amazonia , 2015, Global change biology.
[52] S. Trumbore,et al. Long-term controls on soil organic carbon with depth and time: A case study from the Cowlitz River Chronosequence, WA USA , 2015 .
[53] D. Sparks,et al. Soil and human security in the 21st century , 2015, Science.
[54] P. Cox,et al. Observing terrestrial ecosystems and the carbon cycle from space , 2015, Global change biology.
[55] R. Hiederer,et al. Global distribution of soil organic carbon – Part 1: Masses and frequency distributions of SOC stocks for the tropics, permafrost regions, wetlands, and the world , 2015 .
[56] Yadvinder Malhi,et al. Measuring tropical forest carbon allocation and cycling , 2015 .
[57] S. Trumbore,et al. Title Long-term controls on soil organic carbon with depth and time : A case study from the Cowlitz River Chronosequence , 2015 .
[58] P. Barré,et al. Impact of phyllosilicate mineralogy on organic carbon stabilization in soils: incomplete knowledge and exciting prospects , 2014 .
[59] A. Raftery,et al. World population stabilization unlikely this century , 2014, Science.
[60] I. Schöning,et al. Controls on soil carbon storage and turnover in German landscapes , 2014, Biogeochemistry.
[61] Deborah Torres,et al. Soil texture analyses using a hydrometer: modification of the Bouyoucos method , 2014 .
[62] Xiaorong Wei,et al. Global pattern of soil carbon losses due to the conversion of forests to agricultural land , 2014, Scientific Reports.
[63] M. Brossard,et al. Conversion of forest to agriculture in Amazonia with the chop-and-mulch method: Does it improve the soil carbon stock? , 2014 .
[64] R Core Team,et al. R: A language and environment for statistical computing. , 2014 .
[65] Olivier Dewitte,et al. Harmonisation of the soil map of Africa at the continental scale , 2013 .
[66] J. Sanderman,et al. Uncertainty in soil carbon accounting due to unrecognized soil erosion , 2013, Global change biology.
[67] P. Vitousek,et al. Long-term effects of agriculture on soil carbon pools and carbon chemistry along a Hawaiian environmental gradient , 2013, Biogeochemistry.
[68] P. Vitousek,et al. Long‐term carbon storage through retention of dissolved aromatic acids by reactive particles in soil , 2012 .
[69] A. Don,et al. Impact of tropical land‐use change on soil organic carbon stocks – a meta‐analysis , 2011 .
[70] B. Elberling,et al. Lability of soil organic carbon in tropical soils with different clay minerals , 2010 .
[71] Damien Sulla-Menashe,et al. MODIS Collection 5 global land cover: Algorithm refinements and characterization of new datasets , 2010 .
[72] Stephen Porder,et al. Terrestrial phosphorus limitation: mechanisms, implications, and nitrogen-phosphorus interactions. , 2010, Ecological applications : a publication of the Ecological Society of America.
[73] G. Eby,et al. Geochemistry and petrogenesis of the Fort Portal, Uganda, extrusive carbonatite , 2009 .
[74] C. Rasmussen,et al. Geologic controls of soil carbon cycling and microbial dynamics in temperate conifer forests , 2009 .
[75] S. Trumbore. Radiocarbon and Soil Carbon Dynamics , 2009 .
[76] O. Chadwick,et al. Biogeochemistry of mineral–organic associations across a long-term mineralogical soil gradient (0.3–4100 kyr), Hawaiian Islands , 2009 .
[77] K. Kitayama,et al. Climate and parent material controls on organic matter storage in surface soils: A three-pool, density-separation approach , 2008 .
[78] E. Veldkamp,et al. Stabilization of recent soil carbon in the humid tropics following land use changes: evidence from aggregate fractionation and stable isotope analyses , 2008 .
[79] W. Silver,et al. Chemical and mineral control of soil carbon turnover in abandoned tropical pastures , 2008 .
[80] Michael J. Crawley,et al. The R book , 2022 .
[81] Ulrike Groemping,et al. Relative Importance for Linear Regression in R: The Package relaimpo , 2006 .
[82] O. P. MEdinA,et al. IRON OXIDE REMOVAL FROM SOILS AND CLAYS BY A DITHIONITE-CITRATE SYSTEM BUFFERED WITH SODIUM BICARBONATE by , 2006 .
[83] Nitesh V. Chawla,et al. Discovering Knowledge in Data: An Introduction to Data Mining , 2005 .
[84] S. Kearns,et al. Melilitite at Fort Portal, Uganda: Another dimension to the carbonate volcanism , 2005 .
[85] I. Kögel‐Knabner,et al. Characteristics of soil organic matter of different Brazilian Ferralsols under native vegetation as a function of soil depth , 2005 .
[86] Michael J. Rogers,et al. Long-term sensitivity of soil carbon turnover to warming , 2005, Nature.
[87] Daniel T. Larose,et al. Discovering Knowledge in Data: An Introduction to Data Mining , 2005 .
[88] A. Lugo,et al. CARBON SEQUESTRATION AND PLANT COMMUNITY DYNAMICS FOLLOWING REFORESTATION OF TROPICAL PASTURE , 2004 .
[89] K. Paustian,et al. Soil organic carbon pool changes following land‐use conversions , 2004 .
[90] K. Paustian,et al. Stabilization mechanisms of soil organic matter: Implications for C-saturation of soils , 2002, Plant and Soil.
[91] M. Kleber,et al. Stabilisation of soil organic matter by interactions with minerals as revealed by mineral dissolution and oxidative degradation , 2003 .
[92] E. Ranst,et al. Land Evaluation for Agricultural Production in the Tropics. A Large-Scale Land Suitability Classification for Rwanda , 2003 .
[93] Petra Perner,et al. Data Mining - Concepts and Techniques , 2002, Künstliche Intell..
[94] Ariel E. Lugo,et al. The Potential for Carbon Sequestration Through Reforestation of Abandoned Tropical Agricultural and Pasture Lands , 2000 .
[95] K. Greer,et al. Carbon distribution and losses: erosion and deposition effects , 1998 .
[96] P. Vitousek,et al. Mineral control of soil organic carbon storage and turnover , 1997, Nature.
[97] E. V. Ranst,et al. Manuel de laboratoire de pédologie : méthodes d'analyse de sols et de plantes, équipement, gestion de stocks de verrerie et de produits chimiques , 1992 .
[98] P. H. Nixon,et al. High-Ca, low-alkali carbonatite volcanism at Fort Portal, Uganda , 1989 .
[99] A. C. Olis. Iron in Soils and Clay Minerals , 1989 .
[100] Robert W. Day,et al. Comparisons of Treatments After an Analysis of Variance in Ecology , 1989 .
[101] A. Klute. Methods of soil analysis. Part 1. Physical and mineralogical methods. , 1988 .
[102] A. Page. Methods of soil analysis. Part 2. Chemical and microbiological properties. , 1982 .
[103] C. L. Bascomb. DISTRIBUTION OF PYROPHOSPHATE‐EXTRACTABLE IRON AND ORGANIC CARBON IN SOILS OF VARIOUS GROUPS , 1968 .
[104] G. Bouyoucos. Hydrometer Method Improved for Making Particle Size Analyses of Soils1 , 1962 .
[105] O. P. Mehra,et al. Iron Oxide Removal from Soils and Clays by a Dithionite-Citrate System Buffered with Sodium Bicarbonate , 1958 .
[106] V. Goldschmidt. Soil geochemistry. , 1947, Science progress.