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© Thünen-Institut/AK
[Translate to English:]
Institute of

AK Climate-Smart Agriculture

Peer-reviewed scientific paper by Marcus Schiedung

  1. 0

    Sriskandarajah N, Wüst-Galley C, Heller S, Leifeld J, Määttä T, Ouyang Z, Runkle BRK, Schiedung M, Schmidt MWI, Malhotra A (2024) Belowground plant allocation regulates rice methane emissions from degraded peat soils. Sci Rep 14:14593, DOI:10.1038/s41598-024-64616-1

    https://literatur.thuenen.de/digbib_extern/dn068430.pdf

  2. 1

    Schiedung M, Ascough P, Bellè S-L, Bird MI, Bröder L, Haghipour N, Hilton RG, Lattaud J, Abiven S (2024) Millennial-aged pyrogenic carbon in high-latitude mineral soils. Comm Earth Environ 5:177, DOI:10.1038/s43247-024-01343-5

    https://literatur.thuenen.de/digbib_extern/dn067914.pdf

  3. 2

    Poeplau C, Begill N, Liang Z, Schiedung M (2023) Root litter quality drives the dynamic of native mineral-associated organic carbon in a temperate agricultural soil. Plant Soil 491(1-2):439-456, DOI:10.1007/s11104-023-06127-y

    https://literatur.thuenen.de/digbib_extern/dn066491.pdf

  4. 3

    Schiedung M, Don A, Beare MH, Abiven S (2023) Soil carbon losses due to priming moderated by adaptation and legacy effects. Nature Geosci 16(10):909-914, DOI:10.1038/s41561-023-01275-3

  5. 4

    Schiedung M, Tregurtha CS, Beare MH, Thomas SM, Don A (2019) Deep soil flipping increases carbon stocks of New Zealand grasslands. Global Change Biol 25(7):2296-2309, DOI:10.1111/gcb.14588

    https://literatur.thuenen.de/digbib_extern/dn060906.pdf

  6. 5

    Schiedung M, Don A, Wordell-Dietrich P, Alcantara V, Kuner P, Guggenberger G (2017) Thermal oxidation does not fractionate soil organic carbon with differing biological stabilities. J Plant Nutr Soil Sci 180:18-26, DOI:10.1002/jpln.201600172

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