Area of research
Atmospheric Science · Global and Planetary Change
Research interest
Research interests include Climate change, Environmental science, Ecology, Dendrochronology, Mediterranean climate, and Biology.
Patterns, dynamics and drivers of alpine treelines and shrublines
The importance of tropical tree-ring chronologies for global change research
Pantropical tree rings show small effects of drought on stem growth
Soil nitrogen drives inverse acclimation of xylem growth cessation to rising temperature in Northern Hemisphere conifers
Climate-driven patterns of global tree longevity
A single-tree approach to determine climate-growth patterns of European beech and their seasonality in the species southern distribution area
Warming increases the phenological mismatch between carbon sources and sinks in conifers
Accelerated succession in Himalayan alpine treelines under climatic warming
No Future Growth Enhancement Expected at the Northern Edge for European Beech due to Continued Water Limitation
Partial asynchrony of coniferous forest carbon sources and sinks at the intra-annual time scale
Density‐dependent species interactions modulate alpine treeline shifts
High preseason temperature variability drives convergence of xylem phenology in the Northern Hemisphere conifers
Identifying drivers of non-stationary climate-growth relationships of European beech
Facilitation drives tree seedling survival at alpine treelines
Masting is uncommon in trees that depend on mutualist dispersers in the context of global climate and fertility gradients
Recent summer warming over the western Mediterranean region is unprecedented since medieval times
Bioavailability of Macro and Micronutrients Across Global Topsoils: Main Drivers and Global Change Impacts
Linking seed size and number to trait syndromes in trees
Global tree growth resilience to cold extremes following the Tambora volcanic eruption
An earlier start of the thermal growing season enhances tree growth in cold humid areas but not in dry areas
Tropical tree growth driven by dry-season climate variability
Wood density and hydraulic traits influence species’ growth response to drought across biomes
Limits to reproduction and seed size-number trade-offs that shape forest dominance and future recovery
Warming-induced tipping points of Arctic and alpine shrub recruitment
A critical thermal transition driving spring phenology of Northern Hemisphere conifers
Timing and Order of Extreme Drought and Wetness Determine Bioclimatic Sensitivity of Tree Growth
Tree growth response to drought partially explains regional‐scale growth and mortality patterns in Iberian forests
Globally, tree fecundity exceeds productivity gradients
Species richness is a strong driver of forest biomass along broad bioclimatic gradients in the Himalayas
Jet stream position explains regional anomalies in European beech forest productivity and tree growth