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Die Messung von Tagesgängen der Kohlenstoffdioxid-Flüsse mit manuellen Hauben startet vor Sonnenaufgang (Großes Moor bei Gifhorn, 04:45 Uhr).
Die Messung von Tagesgängen der Kohlenstoffdioxid-Flüsse mit manuellen Hauben startet vor Sonnenaufgang (Großes Moor bei Gifhorn, 04:45 Uhr).
Institut für

AK Agrarklimaschutz

Referierte Publikationen von Marcus Schiedung

  1. 0

    Fujisaki K, Ferchaud F, Clivot H, Bruni E, Guenet B, Pichot C, Versini A, Baudin F, Bispo A, Peylin P, Martin MP, Jensen JL, Eriksen J, Chenu C, Gregory AS, Glendining MJ, Merbach I, Beaudoin N, Schiedung M, Poeplau C, et al (2026) Data from long-term experiments in temperate croplands to evaluate soil organic carbon models. Sci Data: Online First, Feb 2026, DOI:10.1038/s41597-026-06863-7

    https://literatur.thuenen.de/digbib_extern/dn070861.pdf

  2. 1

    Schiedung M, Harrington KJ, Dupla X, Möller B, Facq E, Sweere T, Don A, Hilton RG, Doetterl S, Hemingway JD (2026) Uncertainties of enhanced rock weathering for climate-change mitigation. Nat Rev Earth Environ: Online First, Feb 2026, DOI:10.1038/s43017-026-00761-7

  3. 2

    Lattaud J, Eglinton TI, Haghipour N, Schiedung M, Bröder L (2025) Biomarker 14C evidence for sources and recycling of pre-aged organic carbon in Arctic permafrost regions. Geochim Cosmochim Acta 393:75-85, DOI:10.1016/j.gca.2025.02.010

    https://literatur.thuenen.de/digbib_extern/dn069525.pdf

  4. 3

    Edlinger A, Herzog C, Garland G, Walder F, Banerjee S, Keel SG, Mayer J, Philippot L, Romdhane S, Schiedung M, Schmidt MWI, Seitz B, Wüst-Galley C, van der Heijden MGA (2025) Compost application enhances soil health and maintains crop yield : insights from 56 farmer-managed arable fields. J Sustain Agric Environ 4(1):e70041, DOI:10.1002/sae2.70041

    https://literatur.thuenen.de/digbib_extern/dn069412.pdf

  5. 4

    Begill N, Schweizer SA, Don A, Hoeschen C, Schiedung M, Guggenberger G, Poeplau C (2025) Increased retention of litter-derived organic carbon with increasing initial carbon content in temperate agricultural soils. Global Change Biol 31(12):e70646, DOI:10.1111/gcb.70646

    https://literatur.thuenen.de/digbib_extern/dn070858.pdf

  6. 5

    Pacini L, Schiedung M, Stojanova M, Roudier P, Arbelet P, Barré P, Baudin F, Cambou A, Cécillon L, Heinonsalo J, Karhu K, McNally SR, Omondiagbe P, Poeplau C, Saby NPA (2025) Predicting the proportion of centennially stable soil organic carbon using mid-infrared spectroscopy. Geoderma 462:117536, DOI:10.1016/j.geoderma.2025.117536

    https://literatur.thuenen.de/digbib_extern/dn070234.pdf

  7. 6

    Schiedung M, Barré P, Poeplau C (2025) Separating fast from slow cycling soil organic carbon - a multi-method comparison on land use change sites. Geoderma 453:117154, DOI:10.1016/j.geoderma.2024.117154

    https://literatur.thuenen.de/digbib_extern/dn069339.pdf

  8. 7

    Zong M, Abalos D, Chen J, Liang Z, Li Y, Elsgaard L, Poeplau C, Schiedung M, Jørgensen U (2025) Ten-year effects of perennial cropping systems on soil organic carbon stock and stability in sandy soils : mechanisms and biochemical drivers. Eur J Agron 168:127639, DOI:10.1016/j.eja.2025.127639

    https://literatur.thuenen.de/digbib_extern/dn069675.pdf

  9. 8

    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

  10. 9

    Poeplau C, Riefling T, Schiedung M, Anlauf R (2024) Land use and soil property effects on aggregate stability assessed by three different slaking methods. Eur J Soil Sci 75(4):e13549, DOI:10.1111/ejss.13549

    https://literatur.thuenen.de/digbib_extern/dn069075.pdf

  11. 10

    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

  12. 11

    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

  13. 12

    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

  14. 13

    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

  15. 14

    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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