Mehler, K.; Schöning, I.; Berli, M.: The importance of rock fragment density for the calculation of soil bulk density and soil organic carbon stocks. Soil Science Society of America 78 (4), pp. 1186 - 1191 (2014)
Meyer, A.; Focks, A.; Radl, V.; Welzl, G.; Schöning, I.; Schloter, M.: Influence of land use intensity on the diversity of ammonia oxidizing bacteria and archaea in soils from grassland ecosystems. Microbial Ecology 67 (1), pp. 161 - 166 (2014)
Alt, F.; Oelmann, Y.; Schöning, I.; Wilcke, W.: Phosphate release kinetics in calcareous grassland and forest soils in response to H+ addition. Soil Science Society of America 77 (6), pp. 2060 - 2070 (2013)
Klaus, V. H.; Hölzel, N.; Prati, D.; Schmitt, B.; Schöning, I.; Schrumpf, M.; Fischer, M.; Kleinebecker, T.: Organic vs. conventional grassland management: do 15N and 13C isotopic signatures of hay and soil samples differ? PLoS One 8 (10), e78134 (2013)
Solly, E.; Schöning, I.; Boch, S.; Müller, J.; Socher, S. A.; Trumbore, S. E.; Schrumpf, M.: Mean age of carbon in fine roots from temperate forests and grasslands with different management. Biogeosciences 10 (7), pp. 4833 - 4843 (2013)
Grüneberg, E.; Schöning, I.; Hessenmöller, D.; Schulze, E.-D.; Weisser, W. W.: Organic layer and clay content control soil organic carbon stocks in density fractions of differently managed German beech forests. Forest Ecology and Management 303, pp. 1 - 10 (2013)
Socher, S. A.; Prati, D.; Boch, S.; Müller, J.; Baumbach, H.; Gockel, S.; Hemp, A.; Schöning, I.; Wells, K.; Buscot, F.et al.; Kalko, E. K.V.; Linsenmair, K. E.; Schulze, E.-D.; Weisser, W. W.; Fischer, M.: Interacting effects of fertilization, mowing and grazing on plant species diversity of 1500 grasslands in Germany differ between regions. Basic and Applied Ecology 14 (2), pp. 126 - 136 (2013)
Wubet, T.; Christ, S.; Schöning, I.; Boch, S.; Gawlich, M.; Schnabel, B.; Fischer, M.; Buscot, F.: Differences in soil fungal communities between european beech (Fagus sylvatica L.) dominated forests are related to soil and understory vegetation. PLoS One 7 (10), e47500 (2012)
The BIOMASS satellite was successfully launched into orbit on 29 April 2025. The BIOMASS mission is designed to map and monitor global forests. It will map the structure of different forest types and provide data on above-ground biomass.
Thanks to FLUXCOM-X, the next generation of data driven, AI-based earth system models, scientists can now see the Earth’s metabolism at unprecedented detail – assessed everywhere on land and every hour of the day.
Extreme climate events endanger groundwater quality and stability, when rain water evades natural purification processes in the soil. This was demonstrated in long-term groundwater analyses using new analytical methods.
Extreme precipitation should increase with warmer temperatures. Data from tropical regions show that this correlation is obscured by the cooling effect of clouds. When cloud effects are corrected, the increase in extreme precipitation with rising temperatures becomes apparent.
More frequent strong storms are destroying ever larger areas of the Amazon rainforest. Storm damage was mapped between 1985 and 2020. The total area of affected forests roughly quadrupled in the period studied.
David Hafezi Rachti was awarded twice: for his EGU poster with this year’s “Outstanding Student and PhD candidate Presentation” (OSPP) and for his Bachelor thesis, he received the 1st prize of the “Young Climate Scientist Award 2024”.
The Global Carbon Project shows that fossil CO2 emissions will continue to rise in 2024. There is no sign of the rapid and substantial decline in emissions that would be needed to limit the impact of climate change
The Chinese Academy of Sciences (CAS) and the German National Academy of Sciences Leopoldina will hold a joint conference on the challenges of achieving carbon neutrality in Berlin on October 29-30, 2024.
Experts from science, journalism, local authorities and non-governmental organizations consider a change of course in communication on climate issues to be urgently needed. The appeal was published on the occasion of the K3 Congress on Climate Communication with around 400 participants in Graz.
A recent study by scientists from the Max Planck Institute for Biogeochemistry and the University of Leipzig suggests that increasing droughts in the tropics and changing carbon cycle responses due to climate change are not primarily responsible for the strong tropical response to rising temperatures. Instead, a few particularly strong El Niño events could be the cause.