We apply advanced electrochemical, trace analytical, microbial and biochemical techniques to determine
- the redox state and its seasonal dynamics in floodplain sediments
- the decisive reactive soil components that control the redox dynamics and redox buffering
- the speciation, sorption and mobilization of glyphosate and its major transformation product AMPA as affected by the redox conditions
- the dynamics of microbial communities and microbially driven nitrogen and sulfur cycles
- the transport and transformation the herbicides in sediments under simulated water-logging and redox dynamics
The work comprises field coring campaigns (in close collaboration with P3) as well as detailed laboratory studies to decipher and quantify the links between geochemistry, redox dynamics, microbial activity and pollutant fate.