Area of research
Soil Science · Plant Science
Research interest
Research interests include Soil Carbon and Nitrogen Dynamics, Plant responses to elevated CO2, Mycorrhizal Fungi and Plant Interactions, and Peatlands and Wetlands Ecology.
Aridity drives the response of soil total and particulate organic carbon to drought in temperate grasslands and shrublands
Prolonged drought moderates flood effects on soil nutrient pools across a rainfall gradient
Carbon-phosphorus cycle models overestimate CO <sub>2</sub> enrichment response in a mature <i>Eucalyptus</i> forest
Altered rainfall greatly affects enzyme activity but has limited effect on microbial biomass in Australian dryland soils
Ensuring planetary survival: the centrality of organic carbon in balancing the multifunctional nature of soils
Relative contributions of fungi and bacteria to litter decomposition under low and high soil moisture in an Australian grassland
A trade-off between plant and soil carbon storage under elevated CO2
Drought-induced and seasonal variation in carbon use efficiency is associated with fungi:bacteria ratio and enzyme production in a grassland ecosystem
Microbial functional genes commonly respond to elevated carbon dioxide
Soil Properties Drive Microbial Community Structure in a Large Scale Transect in South Eastern Australia
Elevated <scp>CO</scp><sub>2</sub> and warming cause interactive effects on soil carbon and shifts in carbon use by bacteria
Faster turnover of new soil carbon inputs under increased atmospheric <scp>CO</scp> <sub>2</sub>
Plant traits, stoichiometry and microbes as drivers of decomposition in the rhizosphere in a temperate grassland
Challenging terrestrial biosphere models with data from the long‐term multifactor Prairie Heating and <scp>CO</scp><sub>2</sub> Enrichment experiment
Quantifying global soil carbon losses in response to warming
Impacts of warming and elevated <scp>CO</scp><sub>2</sub> on a semi‐arid grassland are non‐additive, shift with precipitation, and reverse over time
Soil microbial community resistance to drought and links to C stabilization in an Australian grassland
Water, nitrogen and phosphorus use efficiencies of four tree species in response to variable water and nutrient supply
Plant rhizosphere influence on microbial C metabolism: the role of elevated CO2, N availability and root stoichiometry
Disentangling root responses to climate change in a semiarid grassland
Rhizosphere priming: a nutrient perspective
Rhizosphere stoichiometry: are C : N : P ratios of plants, soils, and enzymes conserved at the plant species‐level?
Warming Reduces Carbon Losses from Grassland Exposed to Elevated Atmospheric Carbon Dioxide
Climate change alters stoichiometry of phosphorus and nitrogen in a semiarid grassland