Pallandt, M.; Schrumpf, M.; Lange, H.; Reichstein, M.; Yu, L.; Ahrens, B.: Modelling the effect of climate–substrate interactions on soil organic matter decomposition with the Jena soil model. Biogeosciences 22 (7), S. 1907 - 1928 (2025)
de Broek, M. V.; Govers, G.; Schrumpf, M.; Six, J.: A microbially driven and depth-explicit soil organic carbon model constrained by carbon isotopes to reduce parameter equifinality. Biogeosciences 22 (5), S. 1427 - 1446 (2025)
Nair, R.; Luo, Y.; El-Madany, T. S.; Rolo, V.; Pacheco-Labrador, J.; Caldararu, S.; Morris, K. A.; Schrumpf, M.; Carrara, A.; Moreno, G.et al.; Reichstein, M.; Migliavacca, M.: Nitrogen availability and summer drought, but not N:P imbalance, drive carbon use efficiency of a Mediterranean tree-grass ecosystem. Global Change Biology 30 (9), e17486 (2024)
Wutzler, T.; Reimers, C.; Ahrens, B.; Schrumpf, M.: Optimal enzyme allocation leads to the constrained enzyme hypothesis: the Soil Enzyme Steady Allocation Model (SESAM; v3.1)). Geoscientific Model Development 17 (7), S. 2705 - 2725 (2024)
Wilcke, W.; Zimmer, V.; Bauhus, J.; Schöning, I.; Schrumpf, M.; Michalzik, B.; Siemen, J.: Disentangling the effects of region, forest‑management intensity and plant diversity on litterfall quantity, quality and turnover in temperate forests. Plant and Soil 497, S. 397 - 412 (2024)
Brandt, L.; Poll, C.; Ballauff, J.; Schrumpf, M.; Bramble, D. S.; Schöning, I.; Ulrich, S.; Kaiser, K.; Mikutta, R.; Mikutta, C.et al.; Polle, A.; Kandeler, E.: Mineral type versus environmental filters: What shapes the composition and functions of fungal communities in the mineralosphere of forest soils? Soil Biology and Biochemistry 190, 109288 (2024)
Neyret, M.; Le Provost, G.; Boesing, A. L.; Schneider, F. D.; Baulechner, D.; Bergmann, J.; de Vries, F.; Fiore-Donno, A. M.; Geisen, S.; Goldmann, K.et al.; Merges, A.; Saifutdinov, R. A.; Simons, N. K.; Tobias, J. A.; Zaitsev, A. S.; Gossner, M. M.; Jung, K.; Kandeler, E.; Krauss, J.; Penone, C.; Schloter, M.; Schulz, S.; Staab, M.; Wolters, V.; Apostolakis, A.; Birkhofer, K.; Boch, S.; Boeddinghaus, R. S.; Bolliger, R.; Bonkowski, M.; Buscot, F.; Dumack, K.; Fischer, M.; Gan, H. Y.; Heinze, J.; Hölzel, N.; John, K.; Klaus, V. H.; Kleinebecker, T.; Marhan, S.; Müller, J.; Renner, S. C.; Rillig, M.; Schenk, N. V.; Schöning, I.; Schrumpf, M.; Seibold, S.; Socher, S.; Solly, E. F.; Teuscher, M.; van Kleunen, M.; Wubet, T.; Manning, P.: A slow-fast trait continuum at the whole community level in relation to land-use intensification. Nature Communications 15, 1251 (2024)
Bramble, D. S.; Ulrich, S.; Schöning, I.; Mikutta, R.; Brandt, L.; Poll, C.; Kandeler, E.; Mikutta, C.; Konrad, A.; Siemens, J.et al.; Yang, Y.; Polle, A.; Schall, P.; Ammer, C.; Kaiser, K.; Schrumpf, M.: Formation of mineral-associated organic matter in temperate soils is primarily controlled by mineral type and modified by land use and management intensity. Global Change Biology 30 (1), e17024 (2024)
Stoner, S.; Trumbore, S. E.; González-Pérez, J. A.; Schrumpf, M.; Sierra, C. A.; Hoyt, A. M.; Chadwick, O.; Doetterl, S.: Relating mineral–organic matter stabilization mechanisms to carbon quality and age distributions using ramped thermal analysis. Philosophical Transactions of the Royal Society of London - Series A: Mathematical Physical and Engineering Sciences 381 (2261), 20230139 (2023)
Stoner, S.; Schrumpf, M.; Hoyt, A. M.; Sierra, C. A.; Doetterl, S.; Galy, V.; Trumbore, S. E.: How well does ramped thermal oxidation quantify the age distribution of soil carbon? Assessing thermal stability of physically and chemically fractionated soil organic matter. Biogeosciences 20 (15), S. 3151 - 3163 (2023)
Brandt, L.; Stache, F.; Poll, C.; Bramble, D. S.; Schöning, I.; Schrumpf, M.; Ulrich, S.; Kaiser, K.; Mikutta, R.; Mikutta, C.: Mineral type and land-use intensity control composition and functions of microorganisms colonizing pristine minerals in grassland soils. Soil Biology and Biochemistry 182, 109037 (2023)
Wutzler, T.; Yu, L.; Schrumpf, M.; Zaehle, S.: Simulating long-term responses of soil organic matter turnover to substrate stoichiometry by abstracting fast and small-scale microbial processes: the Soil Enzyme Steady Allocation Model (SESAM; v3.0). Geoscientific Model Development 15 (22), S. 8377 - 8393 (2022)
Baumann, K.; Eckhardt, K.-U.; Schöning, I.; Schrumpf, M.; Leinweber, P.: Clay fraction properties and grassland management imprint on soil organic matter composition and stability at molecular level. Soil Use and Management 38 (4), S. 1578 - 1596 (2022)
Akinyede, R.; Taubert, M.; Schrumpf, M.; Trumbore, S. E.; Küsel, K.: Temperature sensitivity of dark CO2 fixation in temperate forest soils. Biogeosciences 19 (17), S. 4011 - 4028 (2022)
Morris, K. A.; Richter, A.; Migliavacca, M.; Schrumpf, M.: Growth of soil microbes is not limited by the availability of nitrogen and phosphorus in a Mediterranean oak-savanna. Soil Biology and Biochemistry 169, 108680 (2022)
Die Klimaerwärmung lässt in der Arktis den Permafrost auftauen und Gletscher schmelzen, sie führt zu Vegetationsveränderungen, extremer Trockenheit und Feuern. All dies hängt stark vom Energieaustausch zwischen Atmosphäre und Boden ab.
A new study shows that future ecosystem functioning will increasingly depend on water availability. Using recent simulations from climate models, an international team of scientists found several “hot spot regions” where increasing water limitation strongly affects ecosystems. These include Central Europe, the Amazon, and western Russia.
You can't see them with the naked eye, but our forest ground is littered with microorganisms. They decompose falling leaves, thereby improving soil quality and counteracting climate change. But how do these single-celled organisms coordinate their tasks? An international research team has been looking into this little-understood process. The results of the study were recently published in Scientific Reports.
Scientists have succeeded in detecting changes in carbon dioxide emissions from fossil fuels much faster than before. Using a new method, they combined atmospheric measurements of carbon dioxide (CO2) and oxygen (O2) from the north coast of the United Kingdom. The study, with the participation of the Max Planck Institute for Biogeochemistry, was published Apr. 22 in Science Advances.
International researchers found a pattern of extreme climate conditions leading to forest dieback. To do this, the team had collected worldwide records of climate-related tree and forest dieback events over the past nearly five decades. The results, recently published in Nature Communications, reveal an ominous scenario for forests in the context of ongoing global warming.
International forest experts analyzed major tree and forest dieback events that occurred globally in the last decades in response to climate extremes. To their surprise many forests were strongly affected that were not considered threatened based on current scientific understanding. The study, led by the MPI-BGC and published in Annual Reviews in Plant Biology, underscores also that further tree and forest dieback is likely to occur.
Die dauerhaft gefrorenen Böden vor allem am nördlichen Polarkreis speichern mehr als eine Billion Tonnen Kohlenstoff. Doch mit dem Klimawandel tauen sie mehr und mehr auf. Ob dadurch große Mengen Treibhausgase freigesetzt werden, ist eine der wichtigen ungelösten Fragen der Klimaforschung
An international research team succeeded in identifying global factors that explain the diversity of form and function in plants. Led by the University of Zurich, the Max Planck Institute for Biogeochemistry in Jena and the University of Leipzig, the researchers collected and analyzed plant data from around the world.
Precisely how does a forest system and the individual plants within it react to extreme drought? Understanding the processes involved is crucial to making forests more resilient in the increasingly dry climate that will result from climate change, and also important for refining climate models. A research team led by Prof. Dr. Christiane Werner from the University of Freiburg has conducted the most extensive experiment to date into this subject using stable isotopes to trace flows of water and carbon through a forest.
The increasing amount of greenhouse gases in the atmosphere is causing our climate to warm at an alarming rate. Information is vital for societies who must decide on pathways to climate neutrality. The European ICOS research structure, including Max-Planck Institute for Biogeochemistry, provides this information, as described in a recent article.
Ecosystems provide multiple services for humans. However, these services depend on basic ecosystem functions which are shaped by natural conditions like climate and species composition, and human interventions. A large international research team, led by the Max Planck Institute for Biogeochemistry, Jena, identified three key indicators that together summarize the integrative function of terrestrial ecosystems.