Soil carbon stocks in stable tropical landforms are dominated by geochemical controls and not by land use.

SOC stabilization SOC turnover soil carbon dynamics tropical biogeochemistry tropical land conversion tropical soils

Journal

Global change biology
ISSN: 1365-2486
Titre abrégé: Glob Chang Biol
Pays: England
ID NLM: 9888746

Informations de publication

Date de publication:
05 2023
Historique:
received: 06 06 2022
accepted: 23 11 2022
medline: 6 4 2023
pubmed: 28 2 2023
entrez: 27 2 2023
Statut: ppublish

Résumé

Soil organic carbon (SOC) dynamics depend on soil properties derived from the geoclimatic conditions under which soils develop and are in many cases modified by land conversion. However, SOC stabilization and the responses of SOC to land use change are not well constrained in deeply weathered tropical soils, which are dominated by less reactive minerals than those in temperate regions. Along a gradient of geochemically distinct soil parent materials, we investigated differences in SOC stocks and SOC (Δ

Identifiants

pubmed: 36847151
doi: 10.1111/gcb.16622
doi:

Substances chimiques

Carbon 7440-44-0
Soil 0

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

2591-2607

Subventions

Organisme : Deutsche Forschungsgemeinschaft
ID : 387472333

Informations de copyright

© 2023 The Authors. Global Change Biology published by John Wiley & Sons Ltd.

Références

Amundson, R., Berhe, A. A., Hopmans, J. W., Olson, C., Sztein, A. E., & Sparks, D. L. (2015). Soil and human security in the 21st century. Science, 348, 647. https://doi.org/10.1126/science.1261071
Augusto, L., Achat, D. L., Jonard, M., Vidal, D., & Ringeval, B. (2017). Soil parent material-A major driver of plant nutrient limitations in terrestrial ecosystems. Global Change Biology, 23, 3808-3824. https://doi.org/10.1111/gcb.13691
Bailey, K., Lloyd, F., Kearns, S., Stoppa, F., Eby, N., & Woolley, A. (2005). Melilitite at Fort Portal, Uganda: Another dimension to the carbonate volcanism. Lithos, 85, 15-25. https://doi.org/10.1016/j.lithos.2005.03.019
Barker, D. S., & Nixon, P. H. (1989). High-Ca, low-alkali carbonatite volcanism at Fort Portal, Uganda. Contributions to Mineralogy and Petrology, 103, 166-177. https://doi.org/10.1007/BF00378502
Barré, P., Fernandez-Ugalde, O., Virto, I., Velde, B., & Chenu, C. (2014). Impact of phyllosilicate mineralogy on organic carbon stabilization in soils: Incomplete knowledge and exciting prospects. Geoderma, 235-236, 382-395. https://doi.org/10.1016/j.geoderma.2014.07.029
Bascomb, C. L. (1968). Distribution of pyrophosphate-extractable iron and organic carbon in soils of various groups. Journal of Soil Science, 19, 251-268. https://doi.org/10.1111/j.1365-2389.1968.tb01538.x
Baumann, P., Lee, J., Frossard, E., Schönholzer, L. P., Diby, L., Hgaza, V. K., Kiba, D. I., Sila, A., Sheperd, K., & Six, J. (2021). Estimation of soil properties with mid-infrared soil spectroscopy across yam production landscapes in West Africa. Soil, 7, 717-731. https://doi.org/10.5194/soil-2020-100
Beck, E., Wood, E. F., McVicar, T. R., Zambrano-Bigiarini, M., Alvarez-Garreton, C., Baez-Villanueva, O. M., Sheffield, J., & Karger, D. N. (2020). Bias correction of global high-resolution precipitation climatologies using streamflow observations from 9372 catchments. Journal of Climate, 33, 1299-1315. https://doi.org/10.1175/jcli-d-19-0332.s1
Beretta, A. N., Silbermann, A. V., Paladino, L., Torres, D., Bassahun, D., Mussell, R., & Garciá-Lamohte, A. (2014). Soil texture analysis using a hydrometer: Modification of the Bouyoucos method. Ciencia e Investigación Agraria, 42, 263-271. https://doi.org/10.4067/S0718-16202014000200013
Besnard, S., Koirala, S., Santoro, M., Weber, U., Nelson, J., Gütter, J., Herault, B., Kassi, J., N'Guessan, A., Neigh, C., Poulter, B., Zhang, T., & Carvalhais, N. (2021). Mapping global forest age from forest inventories, biomass and climate data. Earth System Science Data, 13, 4881-4896. https://doi.org/10.5194/essd-13-4881-2021
Black, C. A. (1965). Method of soil analysis, part 2, chemical and microbiological properties. American Society of Agronomy. https://doi.org/10.2134/agronmonogr9.2.2ed
Blake, G. R., & Hartge, K. H. (1986). Bulk density. In SSSA book series: Methods of soil analysis. Part 1 physical and mineralogical methods (p. 1188). https://doi.org/10.2136/sssabookser5.1.2ed.c13
Bouyoucos, G. J. (1962). Hydrometer method improved for making particle size analyses of soils. Agronomy Journal, 54, 464-465. https://doi.org/10.2134/agronj1962.00021962005400050028x
Bruun, T. B., Elberling, B., & Christensen, B. T. (2010). Lability of soil organic carbon in tropical soils with different clay minerals. Soil Biology and Biochemistry, 42, 888-895. https://doi.org/10.1016/j.soilbio.2010.01.009
Bukombe, B., Bauters, M., Boeckx, P., Cizungu, L., Cooper, M., Fiener, P., Kidinda, L. K., Makele, I., Muhindo, D. I., Rewald, B., Verheyen, K., & Doetterl, S. (2022). Soil geochemistry-And not topography-As a major driver of allocation, stocks and dynamics in forests and soils of African tropical montane ecosystems. New Phytologist, 236, 1617-1690. https://doi.org/10.1111/nph.18469
Bukombe, B., Fiener, P., Hoyt, A. M., Kidinda, L. K., & Doetterl, S. (2021). Heterotrophic soil respiration and carbon cycling in geochemically distinct African tropical forest soils. Soil, 7, 639-659. https://doi.org/10.5194/soil-7-639-2021
Cotrufo, M. F., Ranalli, M. G., Haddix, M. L., Six, J., & Lugato, E. (2019). Soil carbon storage informed by particulate and mineral-associated organic matter. Nature Geoscience, 12, 989-994. https://doi.org/10.1038/s41561-019-0484-6
Coward, E. K., Thompson, A. T., & Plante, A. F. (2017). Iron-mediated mineralogical control of organic matter accumulation in tropical soils. Geoderma, 306, 206-216. https://doi.org/10.1016/j.geoderma.2017.07.026
Crawley, M. J. (2009). The R book (p. 942). Wiley.
Curtis, P. G., Slay, C. M., Harris, N. L., Tyukavina, A., & Hansen, M. C. (2018). Classifying drivers of global forest loss. Science, 361, 1108-1111. https://doi.org/10.1126/science.aau3445
Cusack, D. F., Chadwick, O. A., Ladefoged, T., & Vitousek, P. M. (2013). Long-term effects of agriculture on soil carbon pools and carbon chemistry along a Hawaiian environmental gradient. Biogeochemistry, 112, 229-243. doi:10.1007/s10533-012-9718-z
da Silva Oliveira, D. M., Paustian, K., Cotrufo, M. F., Fjallos, A. R., Cerqeira, A. G., & Cerri, C. E. P. (2017). Assessing labile organic carbon in soils undergoing land use change in Brazil: A comparison of approaches. Ecological Indicators, 72, 411-419. https://doi.org/10.1016/j.ecolind.2016.08.041
Dahlgren, R. A. (1994). Quantification of allophane and imogolite, quantitative methods in soil mineralogy. In J. E. Chais & J. W. Stucki (Eds.), ASA, CSSA and SSSA Books (American Society of Agronomy, Crop Science Society of America, and Soil Science Society of America) (pp. 430-451). Soil Science Society of America Journal.
Day, R. W., & Quinn, G. P. (1989). Comparisons of treatments after an analysis of variance in ecology. Ecological Monographs, 59, 433-463. https://doi.org/10.2307/1943075
Degryze, S., Six, J., Paustian, K., Morris, S. J., Paul, E. A., & Merckx, R. (2004). Soil organic carbon pool changes following land-use conversions. Global Change Biology, 10, 1120-1132. https://doi.org/10.1111/j.1365-2486.2004.00786.x
Dewitte, O., Jones, A., Spaargaren, O., Breuning-Madsen, H., Brossard, M., Dampha, A., Deckers, J., Gallali, T., Hallett, S., Jones, R., Kilasara, M., Le Roux, P., Michéli, E., Montanarella, L., Thiombiano, L., Van Ranst, E., Yemefack, M., & Zougmore, R. (2013). Harmonisation of the soil map of Africa at the continental scale. Geoderma, 211-212, 138-153. https://doi.org/10.1016/j.geoderma.2013.07.007
Dick, D. P., Nunes Gonçalves, C., Dalmolin, R. S., Knicker, H., Klamt, E., Kögel-Knabner, I., Simões, M. L., & Martin-Neto, L. (2005). Characteristics of soil organic matter of different Brazilian Ferralsols under native vegetation as a function of soil depth. Geoderma, 124, 319-333. https://doi.org/10.1016/j.geoderma.2004.05.008
Doetterl, D., Behre, A. A., Nadeu, E., Wang, Z., Sommer, M., & Fiener, P. (2016). Erosion, deposition and soil carbon: A review of process-level controls, experimental tools and models to adress C cycling in dynamic landscapes. Earth-Science Reviews, 154, 102-122. https://doi.org/10.1016/j.earscirev.2015.12.005
Doetterl, S., Asifiwe, R. K., Baert, G., Bamba, F., Bauters, M., Boeckx, P., Bukombe, B., Cadisch, G., Cooper, M., Cizungu, L. N., Hoyt, A., Kabaseke, C., Kalbitz, K., Kidinda, L., Maier, A., Mainka, M., Mayrock, J., Muhindo, D., Mujinya, B. B., … Fiener, P. (2021). Organic matter cycling along geochemical, geomorphic, and disturbance gradients in forest and cropland of the African tropics-Project TropSOC database version 1.0. Earth System Science Data, 13, 4133-4153. https://doi.org/10.5194/essd-13-4133-2021
Doetterl, S., Berhe, A. A., Arnold, C., Bodé, S., Fiener, P., Finke, P., Fuchslueger, L., Griepentrog, M., Harden, J. W., Nadeu, E., Schnecker, J., Six, J., Trumbore, S., van Oost, K., Vogel, C., & Boeckx, P. (2018). Links among warming, carbon and microbial dynamics mediated by soil mineral weathering. Nature Geoscience, 11, 589-593. https://doi.org/10.1038/s41561-018-0168-7
Doetterl, S., Bukombe, B., Cooper, M., Kidinda, L., Muhindo, D., Reichenbach, M., Stegmann, A., Summerauer, L., Wilken, F., & Fiener, P. (2021). TropSOC database, version 1.0. GFZ data services [data set]. Helmholtz Centre Potsdam-GFZ German Research Centre for Geosciences Public Law Foundation. https://doi.org/10.5880/fidgeo.2021.009
Don, A., Schumacher, J., & Freibauer, A. (2011). Impact of tropical land use change on soil organic carbon stocks-A meta-analysis. Global Change Biology, 17, 1658-1670. https://doi.org/10.1111/j.1365-2486.2010.02336.x
Dressée, P. L. C., & Lepersonne, J. (1949). Carte Géologique 1.5000000. Institut Royal Colonial Belge Commission centrale de látlas general du Congo Belge et du Ruanda-Urundi, Index No. 31.
Eby, G. N., Lloyd, F. E., & Woolley, A. R. (2009). Geochemistry and petrogenesis of the Fort Portal, Uganda, extrusive carbonatite. Lithos, 113, 785-800. https://doi.org/10.1016/j.lithos.2009.07.010
Eusterhues, K., Rumpel, C., Kleber, M., & Kögel-Knabner, I. (2003). Stabilisation of soil organic matter by interactions with minerals as revealed by mineral dissolution and oxidative degradation. Organic Geochemistry, 34, 1591-1600. https://doi.org/10.1016/j.orggeochem.2003.08.007
Fick, S. E., & Hijmans, R. J. (2017). WorldClim 2: New 1-km spatial resolution climate surfaces for global land areas. International Journal of Climatology, 37, 4302-4315. https://doi.org/10.1002/joc.5086
Friedl, M. A., Sulla-Menashe, D., Tan, B., Schneider, A., Ramankutty, N., Sibley, A., & Huang, X. (2013). MODIS collection 5 global land cover: Algorithm refinements and characterization of new datasets. Remote Sensing of Environment, 114, 168-182.
Fujisaki, K., Perrin, A.-S., Desjardins, T., Bernoux, M., Balbino, L. C., & Brossard, M. (2015). From forest to cropland and pasture systems: A critical review of soil organic carbon stocks changes in Amazonia. Global Change Biology, 21, 2773-2786. https://doi.org/10.1111/gcb.12906
Gerland, P., Raftery, A. E., Sevčíková, H., Li, N., Gu, D., Spoorenberg, T., Alkema, L., Fosdick, B. K., Chunn, J., Lalic, N., Bay, G., Buettner, T., Heilig, G. K., & Wilmoth, J. (2014). World population stabilization unlikely this century. Science, 346, 234-237. https://doi.org/10.1126/science.1257469
Gorelick, N., Hancher, M., Dixon, M., Ilyushchenko, S., Thau, D., & Moore, R. (2017). Google Earth Enginge: Planetary-scale geospatial analysis for everyone. Remote Sensing of Environment, 202, 18-27. https://doi.org/10.1016/j.rse.2017.06.031
Gregorich, E., Greer, K., Anderson, D., & Liang, B. (1998). Carbon distribution and losses: Erosion and deposition effects. Soil and Tillage Research, 47, 291-302. https://doi.org/10.1016/S0167-1987(98)00117-2
Grömping, U. (2006). Relative importance for linear regression in R: The package relaimpo. Journal of Statistical Software, 17, 1-27. https://doi.org/10.18637/jss.v017.i01
Guillaume, T., Damris, M., & Kuzyakov, Y. (2015). Losses of soil carbon by converting tropical forest to plantations: Erosion and decomposition estimated by δ(13) C. Global Change Biology, 21, 3548-3560. https://doi.org/10.1111/gcb.12907
Han, J., Kamber, M., & Pei, J. (2012). Data mining: Concepts and techniques (p. 703). Elsevier.
Heckman, K., Lawrence, C. R., & Harden, J. W. (2018). A sequential selective dissolution method to quantify storage and stability of organic carbon associated with Al and Fe hydroxide phases. Geoderma, 312, 24-35. https://doi.org/10.1016/j.geoderma.2017.09.043
Heckman, K., Welty-Bernard, A., Rasmussen, C., & Schwartz, E. (2009). Geologic controls of soil carbon cycling and microbial dynamics in temperate conifer forests. Chemical Geology, 267, 12-23. https://doi.org/10.1016/j.chemgeo.2009.01.004
Herold, N., Schöning, I., Michalzik, B., Trumbore, S., & Schrumpf, M. (2014). Controls on soil carbon storage and turnover in German landscapes. Biogeochemistry, 119, 435-451. https://doi.org/10.1007/s10533-014-9978-x
Hossner, L. R. (1996). Dissolution of total elemental analysis. In SSSA book series: Methods of soil analysis. Part 3. Chemical methods (p. 1390). https://doi.org/10.2136/sssabookser5.3.c34
IBM. (2019). IBM: SPSS statistics for windows. IBM Corp.
Ito, A., & Wagai, R. (2017). Global distribution of clay-size minerals on land surface for biogeochemical and climatological studies. Scientific Data, 4, 170103. https://doi.org/10.1038/sdata.2017.103
Kaiser, M., Zederer, D. P., Ellerbrock, R. H., Sommer, M., & Ludwig, B. (2016). Effects of mineral characteristics on content, composition, and stability of organic matter fractions separated from seven forest topsoils of different pedogenesis. Geoderma, 263, 1-7. https://doi.org/10.1016/j.geoderma.2015.08.029
Kassambara, A., & Mundt, F. (2020). Factoextra: Extract and visualize the results of multivariate analysis. R Package Version 1.0.7. https://CRAN.R-project.org/package=factoextra
Kidinda, L. K., Olagoke, F. K., Vogel, C., Bukombe, B., Kalbitz, K., & Doetterl, S. (2022). Microbial properties in tropical montane forest soils developed from contrasting parent material-An incubation experiment. Journal of Plant Nutrition and Soil Science, 185, 807-820. https://doi.org/10.1002/jpln.202100274
Kirsten, M., Mikutta, R., Vogel, C., Thompson, A., Mueller, C. W., Kimaro, D. N., Bergsma, H. L. T., Feger, K.-H., & Kalbitz, K. (2021). Iron oxides and aluminous clays selectively control soil carbon storage and stability in the humid tropics. Scientific Reports, 11, 5076. https://doi.org/10.1038/s41598-021-84777-7
Knorr, W., Prentice, I. C., House, J. I., & Holland, E. A. (2005). Long-term sensitivity of soil carbon turnover to warming. Nature, 433, 298-301. https://doi.org/10.1038/nature03226
Köchy, M., Hiederer, R., & Freibauer, A. (2015). Global distribution of soil organic carbon-Part 1: Masses and frequency distributions of SOC stocks for the tropics, permafrost regions, wetlands, and the world. Soil, 1, 351-365. https://doi.org/10.5194/soil-1-351-2015
Kome, G. K., Enang, R. K., Tabi, F. O., & Yerima, B. P. K. (2019). Influence of clay minerals on some soil fertility attributes: A review. Open Journal of Soil Science, 9, 155-188. https://doi.org/10.4236/ojss.2019.99010
Kramer, M. G., Sanderman, J., Chadwick, O. A., Chorover, J., & Vitousek, P. M. (2012). Long-term carbon storage through retention of dissolved aromatic acids by reactive particles in soil. Global Change Biology, 18, 2594-2605. https://doi.org/10.1111/j.1365-2486.2012.02681.x
Lacrose, D. T. (2004). Discovering knowledge in data. An introduction to data mining (p. 222). John Wiley & Sons.
Lawrence, C. R., Harden, J. W., Xu, X., Schulz, M. S., & Trumbore, S. E. (2015). Long-term controls on soil organic carbon with depth and time: A case study from the Cowlitz River Chronosequence, WA USA. Geoderma, 247-248. https://doi.org/10.1016/j.geoderma.2015.02.005
Lewis, T., Verstraten, L., Hogg, B., Wehr, B. J., Swift, S., Tindale, N., Menzies, N. W., Dalal, R. C., Bryant, P., Francis, B., & Smith, T. E. (2019). Reforestation of agricultural land in the tropics: The relative contribution of soil. Living biomass and debris pools to carbon sequestration. Science of the Total Environment, 649, 1502-1513. https://doi.org/10.1016/j.scitotenv.2018.08.351
Lugato, E., Smith, P., Borrelli, P., Panagos, P., Ballabio, C., Orgiazzi, A., Fernandez-Ugalde, O., Montanarella, L., & Jones, A. (2018). Soil erosion is unlikely to drive a future carbon sink in Europe. Science Advances, 4, eaau3523. https://doi.org/10.1126/sciadv.aau3523
Luo, X., Hou, E., Zhang, L., & Wen, D. (2020). Soil carbon dynamics in different types of subtropical forests as determined by density fractionation and stable isotope analysis. Forest Ecology and Management, 475, 118401. https://doi.org/10.1016/j.foreco.2020.118401
Mangaza, L., Sonwa, D. J., Ebuy, G. B., Ebuy, J., & Kahindo, J.-M. (2021). Building a framework towards climate-smart agriculture in the Yangambi landscape, Democratic Republic of Congo (DRC). International Journal of Climate Change Strategies and Management, 13, 320-338. https://doi.org/10.1108/IJCCSM-08-2020-0084
Marín-Spiotta, E., Swanston, C. W., Torn, M. S., Silver, W. L., & Burton, S. D. (2008). Chemical and mineral control of soil carbon turnover in abandoned tropical pastures. Geoderma, 143, 49-62. https://doi.org/10.1016/j.geoderma.2007.10.001
Marthews, T. R., Riutta, T., Oliveras Menor, I., Urrutia, R., Moore, S., Metcalfe, D., Malhi, Y., Phillips, O., Huaraca Huasco, W., Ruiz Jaén, M., Girardin, C., Butt, N., Cain, R., & RAINFOR and GEM Networks. (2014). Measuring tropical forest carbon allocation and cycling: A RAINFOR-GEM field manual for intensive census plots (v3.0). manual. Global Ecosystems Monitoring Network. http://gem.tropicalforests.ox.ac.uk/
Mathieu, J. A., Hatté, C., Balesdent, J., & Parent, É. (2015). Deep soil carbon dynamics are driven more by soil type than by climate: A worldwide meta-analysis of radiocarbon profiles. Global Change Biology, 21, 4278-4292. https://doi.org/10.1111/gcb.13012
McNally, S. R., Beare, M. H., Curtin, D., Meenken, E. D., Kelliher, F. M., Calvelo Pereira, R., Shen, Q., & Baldock, J. (2017). Soil carbon sequestration potential of permanent pasture and continuous cropping soils in New Zealand. Global Change Biology, 23, 4544-4555. https://doi.org/10.1111/gcb.13720
Mehra, O. P., & Jackson, M. L. (1960). Iron oxide removal from soils and clays by a dithionite-citrate system buffered with sodium bicarbonate. Clays and Clay Minerals, 7, 317-327. https://doi.org/10.1346/CCMN.1958.0070122
Mendez, J. C., van Eynde, E., Hiemstra, T., & Comans, R. N. (2022). Surface reactivity of the natural metal (hydr)oxides in weathered tropical soils. Geoderma, 406, 115517. https://doi.org/10.1016/j.geoderma.2021.115517
Mikutta, R., Schaumann, G. E., Gildemeister, D., Bonneville, S., Kramer, M. G., Chorover, J., Chadwick, O. A., & Guggenberger, G. (2009). Biogeochemistry of mineral-organic associations across a long-term mineralogical soil gradient (0.3-4100 kyr), Hawaiian islands. Geochimica et Cosmochimica Acta, 73, 2034-2060. https://doi.org/10.1016/j.gca.2008.12.028
Moder, K. (2007). How to keep the type I error rate in ANOVA if variances are heteroscedastic. Austrian Journal of Statistics, 36, 179-188. https://doi.org/10.17713/ajs.v36i3.329
Nelson, D. W., & Sommers, L. E. (1996). Total carbon, organic carbon, and organic matter. In SSSA book series: Methods of soil analysis. Part 3 chemical methods (p. 1390). https://doi.org/10.2136/sssabookser5.3.c34
Okalebo, J. R., Gathua, K. W., & Woomer, P. L. (2002). Laboratory methods of soil and plant analysis: A working manual (4th ed., p. 131). SACRED Africa, Nairobi Office.
Ordway, E. M., Asner, G. P., & Lambin, E. F. (2017). Deforestation risk due to commodity crop expansion in sub-Saharan Africa. Environmental Research Letters, 12, 44015. https://doi.org/10.1088/1748-9326/aa6509
Paul, S., Flessa, H., Veldkamp, E., & López-Ulloa, M. (2008). Stabilization of recent soil carbon in the humid tropics following land use changes: Evidence from aggregate fractionation and stable isotope analysis. Biogeochemistry, 87, 247-263. https://doi.org/10.1007/s10533-008-9182-y
Pauwels, J. M., van Ranst, E., & Verloo, M. (1992). Manuel de laboratoire de pédologie: Methods d'analyse de sols et de plantes, équipement, gestion de stocks de verrerie et de produits chimiques. Centre universitaire de Dschang, Department des sciences du sol.
Perrin, A.-S., Fujisaki, K., Petitjean, C., Sarrazin, M., Godet, M., Garric, B., Horth, J.-C., Balbino, L. C., Filho, A. S., de Almeida Machado, P. L. O., & Brossard, M. (2014). Conversion of forest to agriculture in Amazonia with the chop-and-mulch method: Does it improve the soil carbon stock? Agriculture, Ecosystems & Environment, 184, 101-114. https://doi.org/10.1016/j.agee.2013.11.009
Quesada, C. A., Paz, C., Oblitas Mendoza, E., Phillips, O. L., Saiz, G., & Lloyd, J. (2020). Variations in soil chemical and physical properties explain basin-wide Amazon forest soil carbon concentrations. Soil, 6, 53-88. https://doi.org/10.5194/soil-6-53-2020
R Core Team. (2020). A language and environment for statistical computing. R Foundation for Statistical Computing. www.rstudio.com
Rasmussen, C., Heckman, K., Wieder, W. R., Keiluweit, M., Lawrence, C. R., Berhe, A. A., Blankinship, J. C., Crow, S. E., Druhan, J. L., Hicks Pries, C. E., Marin-Spiotta, E., Plante, A. F., Schädel, C., Schimel, J. P., Sierra, C. A., Thompson, A., & Wagai, R. (2018). Beyond clay: Towards an improved set of variables for predicting soil organic matter content. Biogeochemistry, 137, 297-306. https://doi.org/10.1007/s10533-018-0424-3
Reichenbach, M., Fiener, P., Garland, G., Griepentrog, M., Six, J., & Doetterl, S. (2021). The role of geochemistry in organic carbon stabilization against microbial decomposition in tropical rainforest soils. Soil, 7, 453-475. https://doi.org/10.5194/soil-7-453-2021
Rennert, T. (2019). Wet-chemical extractions to characterise pedogenic Al and Fe species-A critical review. Soil Research, 57, 1. https://doi.org/10.1071/SR18299
Rosalem, L. M., Wendland, E. C., & Anache, J. A. (2019). Understanding the water dynamics on a tropical forest litter using a new device for interception measurement. Ecohydrology, 12, e2058. https://doi.org/10.1002/eco.2058
Sanderman, J., & Chappell, A. (2013). Uncertainty in soil carbon accounting due to unrecognized soil erosion. Global Change Biology, 19, 264-272. doi:10.1111/gcb.12030
Schimel, D., Pavlick, R., Fisher, J. B., Asner, G. P., Saatchi, S., Townsend, P., Miller, C., Frankenberg, C., Hibbard, K., & Cox, P. (2015). Observing terrestrial ecosystems and the carbon cycle from space. Global Change Biology, 21, 1762-1776. https://doi.org/10.1111/gcb.12822
Senaviratna, N. A. M. R., & Cooray, T. M. J. A. (2019). Diagnosing multicollinearity of logistic regression model. Asian Journal of Probability and Statistics, 5, 1-9. https://doi.org/10.9734/AJPAS/2019/v5i230132
Sheng, H., Zhou, P., Zhang, Y., Kuzyakov, Y., Zhou, Q., Ge, T., & Wang, C. (2015). Loss of labile organic carbon from subsoil due to land-use changes in subtropical China. Soil Biology and Biochemistry, 88, 148-157. https://doi.org/10.1016/j.soilbio.2015.05.015
Shi, Z., Allison, S. D., He, Y., Levine, P. A., Hoyt, A. M., Beem-Miller, J., Zhu, Q., Wieder, W. R., Trumbore, S., & Randerson, J. T. (2020). The age distribution of global soil carbon inferred from radiocarbon measurements. Nature Geoscience, 13, 555-559. https://doi.org/10.1038/s41561-020-0596-z
Silver, W. L., Kueppers, L. M., Lugo, A. E., Ostertag, R., & Matzek, V. (2004). Carbon sequestration and plant community dynamics following reforestation of tropical pasture. Ecological Applications, 14, 1115-1127. https://doi.org/10.1890/03-5123
Silver, W. L., Ostertag, R., & Lugo, A. E. (2001). The potential for carbon sequestration through reforestation of abandoned tropical agricultural and pasture lands. Restoration Ecology, 8, 394-407. https://doi.org/10.1046/j.1526-100x.2000.80054.x
Six, J., Conant, R. T., Paul, A., & Paustian, K. (2002). Stabilization mechanisms of soil organic matter: Implications for C-saturation of soils. Plant Soil, 241, 155-176. https://doi.org/10.1023/A:1016125726789
Steinhof, A., Altenburg, M., & Machts, H. (2017). Sample preparation at the Jena 14C laboratory. Radiocarbon, 59, 815-830. https://doi.org/10.1017/RDC.2017.50
Stucki, J. W., Goodman, B. A., & Schwertmann, U. (1988). Iron in soils and clay minerals (p. 894). Springer.
Stuiver, M., & Polach, A. H. (1977). Discussion reporting of 14C data. Radiocarbon, 19, 355-363. https://doi.org/10.1017/S0033822200003672
Summerauer, L., Baumann, P., Ramirez-Lopez, L., Barthel, M., Bauters, M., Bukombe, B., Reichenbach, M., Boeckx, P., Kearsley, E., van Oost, K., Vanlauwe, B., Chiragaga, D., Heri-Kazi, A. B., Moonen, P., Sila, A., Shepherd, K., Mujinya, B. B., van Ranst, E., Baert, G., … Six, J. (2021). Filling a key gap: A soil infrared library for Central Africa. Soil, 7, 693-715. https://doi.org/10.5194/soil-7-693-2021
Tian, Q., Wang, X., Wang, D., Wang, M., Liao, C., Yang, X., & Liu, F. (2017). Decoupled linkage between soil carbon and nitrogen mineralization among soil depths in a subtropical mixed forest. Soil Biology and Biochemistry, 109, 135-144. https://doi.org/10.1016/j.soilbio.2017.02.009
Torn, M. S., Trumbore, S. E., Chadwick, O. A., Vitousek, P. M., & Hendricks, D. M. (1997). Mineral control of soil organic carbon storage and turnover. Nature, 389, 170-173. https://doi.org/10.1038/38260
Trumbore, S. (2009). Radiocarbon and soil carbon dynamics. Annual Review of Earth and Planetary Sciences, 37, 47-66. https://doi.org/10.1146/annurev.earth.36.031207.124300
Tyukavina, A., Hansen, M. C., Potapov, P., Parker, D., Okpa, C., Stehman, S. V., Kommareddy, I., & Turubanova, S. (2018). Congo Basin forest loss dominated by increasing smallholder clearing. Science Advances, 4, eaat2993. https://doi.org/10.1126/sciadv.aat2993
Verdoodt, A., & Van Ranst, E. (2003). Land evaluation for agricultural production in the tropics. A large-scale land suitability classification for Rwanda (p. 183). Ghent University.
Vereecken, H., Schnepf, A., Hopmans, J. W., Javaux, M., Or, D., Roose, T., Vanderborght, J., Young, M. H., Amelung, W., Aitkenhead, M., Allison, S. D., Assouline, S., Baveye, P., Berli, M., Brüggemann, N., Finke, P., Flury, M., Gaiser, T., Govers, G., … Young, I. M. (2016). Modeling soil processes: Review, key challenges, and new perspectives. Vadose Zone Journal, 15, 1-57. https://doi.org/10.2136/vzj2015.09.0131
Vitousek, P. M., Porder, S., Houlton, B. Z., & Chadwick, O. (2010). Terrestrial phosphorus limitation: Mechanisms, implications, and nitrogen-phosphorus interactions. Ecological applications, 20, 5-15. https://doi.org/10.1890/08-0127.1
von Fromm, S. F., Hoyt, A. M., Lange, M., Acquah, G. E., Aynekulu, E., Berhe, A. A., Haefele, S. M., McGrath, S. P., Shepherd, K. D., Sila, A. M., Six, J., Towett, E. K., Trumbore, S. E., Vågen, T.-G., Weullow, E., Winowiecki, L. A., & Doetterl, S. (2021). Continental-scale controls on soil organic carbon across sub-Saharan Africa. Soil, 7, 305-332. https://doi.org/10.5194/soil-7-305-2021
Wagai, R., Kajiura, M., & Asano, M. (2020). Iron and aluminum association with microbially processed organic matter via meso-density aggregate formation across soils: Organo-metallic glue hypothesis. Soil, 6, 597-627. https://doi.org/10.5194/soil-6-597-2020
Wagai, R., Mayer, L. M., Kitayama, K., & Knicker, H. (2008). Climate and parent material controls on organic matter storage in surface soils: A three-pool, density-separation approach. Geoderma, 147, 23-33. https://doi.org/10.1016/j.geoderma.2008.07.010
Wang, Q., Zhao, X., Chen, L., Yang, Q., Chen, S., & Zhang, W. (2018). Global synthesis of temperature sensitivity of soil organic carbon decomposition: Latitudinal patterns and mechanisms. Functional Ecology, 33, 514-523. https://doi.org/10.1111/1365-2435.13256
Wei, X., Shao, M., Gale, W., & Li, L. (2014). Global pattern of soil carbon losses due to the conversion of forest to agricultural land. Scientific Reports, 4, 4062. https://doi.org/10.1038/srep04062

Auteurs

Mario Reichenbach (M)

Institute of Geography, Augsburg University, Augsburg, Germany.

Peter Fiener (P)

Institute of Geography, Augsburg University, Augsburg, Germany.

Alison Hoyt (A)

Department of Biogeochemical Processes, Max Planck Institute for Biogeochemistry, Jena, Germany.
Department of Earth System Science, Stanford University, Stanford, California, USA.

Susan Trumbore (S)

Department of Biogeochemical Processes, Max Planck Institute for Biogeochemistry, Jena, Germany.

Johan Six (J)

Department of Environmental Systems Science, ETH Zurich, Zurich, Switzerland.

Sebastian Doetterl (S)

Institute of Geography, Augsburg University, Augsburg, Germany.
Department of Environmental Systems Science, ETH Zurich, Zurich, Switzerland.

Articles similaires

Populus Soil Microbiology Soil Microbiota Fungi
India Carbon Sequestration Environmental Monitoring Carbon Biomass
1.00
Iran Environmental Monitoring Seasons Ecosystem Forests
Nigeria Environmental Monitoring Solid Waste Waste Disposal Facilities Refuse Disposal

Classifications MeSH