Climate change is expected to alter the hydrology and vascular plant communities in peatland ecosystems. These changes may have as yet unexplored impacts on peat mercury (Hg) concentrations and net methylmercury (MeHg) production. In this study, peat was collected from PEATcosm, an outdoor, controlled mesocosm experiment where peatland water table regimes and vascular plant functional groups were manipulated over several years to simulate potential climate change effects. Potential Hg(II) methylation and MeHg demethylation rate constants were assessed using enriched stable isotope incubations at the end of the study in 2015, and ambient peat total Hg (THg) and MeHg concentration depth profiles were tracked annually from 2011 to 2014. Peat T...
Peatlands are globally important ecosystems where inorganic mercury is converted to bioaccumulating ...
11 pages, 6 figures, supplementary material https://doi.org/10.1016/j.jhazmat.2022.130057.-- Data Av...
Northern peatlands provide conditions favourable for sulphate reducing bacteria, microorganisms resp...
Climate change, through hydrological impacts and shifts in vascular plant communities, may significa...
Climate change is likely to significantly affect the hydrology, ecology, and ecosystem function of p...
© 2017 Elsevier Ltd Climate change has the potential to significantly impact the stability of large ...
Peatlands are abundant elements of boreal landscapes where inorganic mercury (IHg) can be transforme...
A geographically constrained chronosequence of peatlands divided into three age classes (young, inte...
Northern peatlands (a type of wetland with large carbon storage) are sinks for atmospheric mercury (...
During most of an annual cycle, we studied the temporal variation of total mercury (Hg-T) and methyl...
Peatlands are globally important ecosystems where inorganic mercury is converted to bioaccumulating ...
Since the beginning of industrialization, emissions of mercury (Hg) from human activities in excess ...
Peatlands are globally important ecosystems where inorganic mercury is converted to bioaccumulating ...
11 pages, 6 figures, supplementary material https://doi.org/10.1016/j.jhazmat.2022.130057.-- Data Av...
Northern peatlands provide conditions favourable for sulphate reducing bacteria, microorganisms resp...
Climate change, through hydrological impacts and shifts in vascular plant communities, may significa...
Climate change is likely to significantly affect the hydrology, ecology, and ecosystem function of p...
© 2017 Elsevier Ltd Climate change has the potential to significantly impact the stability of large ...
Peatlands are abundant elements of boreal landscapes where inorganic mercury (IHg) can be transforme...
A geographically constrained chronosequence of peatlands divided into three age classes (young, inte...
Northern peatlands (a type of wetland with large carbon storage) are sinks for atmospheric mercury (...
During most of an annual cycle, we studied the temporal variation of total mercury (Hg-T) and methyl...
Peatlands are globally important ecosystems where inorganic mercury is converted to bioaccumulating ...
Since the beginning of industrialization, emissions of mercury (Hg) from human activities in excess ...
Peatlands are globally important ecosystems where inorganic mercury is converted to bioaccumulating ...
11 pages, 6 figures, supplementary material https://doi.org/10.1016/j.jhazmat.2022.130057.-- Data Av...
Northern peatlands provide conditions favourable for sulphate reducing bacteria, microorganisms resp...