Area of research
Ecology · Global and Planetary Change
Research interest
Research interests include Environmental science, Ecosystem, Peat, Transpiration, Methanogenesis, and Temperate climate.
Drought-induced peatland carbon loss exacerbated by elevated CO <sub>2</sub> and warming
Northern peatland microbial communities exhibit resistance to warming and acquire electron acceptors from soil organic matter
Northern peatland microbial networks exhibit resilience to warming and acquire electron acceptor from soil organic matter
Climate warming and elevated CO2 alter peatland soil carbon sources and stability
Climate drivers alter nitrogen availability in surface peat and decouple <scp>N<sub>2</sub></scp> fixation from <scp>CH<sub>4</sub></scp> oxidation in the <i>Sphagnum</i> moss microbiome
The ecosystem wilting point defines drought response and recovery of a <scp> <i>Quercus‐Carya</i> </scp> forest
Thermal acclimation of plant photosynthesis and autotrophic respiration in a northern peatland
Elevated temperature alters microbial communities, but not decomposition rates, during 3 years of <i>in situ</i> peat decomposition
Evaluating alternative ebullition models for predicting peatland methane emission and its pathways via data–model fusion
Compositional stability of peat in ecosystem-scale warming mesocosms
Correction to: Minnesota peat viromes reveal terrestrial and aquatic niche partitioning for local and global viral populations
Review of "Evaluating alternative ebullition models for predicting peatland methane emission and its pathways via data-model fusion" by Ma et al.
Global transpiration data from sap flow measurements: the SAPFLUXNET database
Minnesota peat viromes reveal terrestrial and aquatic niche partitioning for local and global viral populations
Soil metabolome response to whole-ecosystem warming at the Spruce and Peatland Responses under Changing Environments experiment
An Integrative Model for Soil Biogeochemistry and Methane Processes: I. Model Structure and Sensitivity Analysis
Radiocarbon Analyses Quantify Peat Carbon Losses With Increasing Temperature in a Whole Ecosystem Warming Experiment
Correction to: Minnesota peat viromes reveal terrestrial and aquatic niche partitioning for local and global viral populations
Evaluating alternative ebullition models for predicting peatland methane emission and its pathways via data-model fusion
Evaluating alternative ebullition models for predicting peatland methane emission and its pathways via data-model fusion
Supplementary material to "Evaluating alternative ebullition models for predicting peatland methane emission and its pathways via data-model fusion"
Massive peatland carbon banks vulnerable to rising temperatures
Rapid Net Carbon Loss From a Whole‐Ecosystem Warmed Peatland
Rainfall manipulation experiments as simulated by terrestrial biosphere models: Where do we stand?
Minnesota peat viromes reveal terrestrial and aquatic niche partitioning for local and global viral populations
SPRUCE Soil Metabolome Responses to Whole Ecosystem Warming in SPRUCE Experimental Plots Beginning in 2016
Ecosystem warming extends vegetation activity but heightens vulnerability to cold temperatures
Vertical Stratification of Peat Pore Water Dissolved Organic Matter Composition in a Peat Bog in Northern Minnesota
Guidelines and considerations for designing field experiments simulating precipitation extremes in forest ecosystems