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319 peer-reviewed articles • 68,314 peer-reviewed citations • Sorted by year • Download PDF (PDF by citations)
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1Empirical evidence and theoretical understanding of ecosystem carbon and nitrogen cycle interactions
New Phytologist, 2025, 245, 49-68
8.130Citations (PDF)
2Fire-Image-DenseNet (FIDN) for predicting wildfire burnt area using remote sensing data
Computers and Geosciences, 2025, 195, 105783
4.26Citations (PDF)
3A unifying principle for global greenness patterns and trends6.811Citations (PDF)
4Hyperspectral sensing of aboveground biomass and species diversity in a long-running grassland experiment
Ecological Informatics, 2025, 86, 103028
5.59Citations (PDF)
5Investigation of factors that affect post-fire recovery of photosynthetic activity at global scale
Ecological Indicators, 2025, 171, 113206
7.29Citations (PDF)
6The Response of Carbon Uptake to Soil Moisture Stress: Adaptation to Climatic Aridity11.113Citations (PDF)
7Incorporating the Acclimation of Photosynthesis and Leaf Respiration in the Noah‐MP Land Surface Model: Model Development and Evaluation3.912Citations (PDF)
8A General Model for the Seasonal to Decadal Dynamics of Leaf Area11.19Citations (PDF)
9Thermal acclimation of stem respiration implies a weaker carbon-climate feedback
Science, 2025, 388, 984-988
36.36Citations (PDF)
10Holocene vegetation dynamics of the Eastern Mediterranean region: Old controversies addressed by a new analysis
Journal of Biogeography, 2024, 51, 294-310
3.25Citations (PDF)
11Reduced global plant respiration due to the acclimation of leaf dark respiration coupled with photosynthesis
New Phytologist, 2024, 241, 578-591
8.123Citations (PDF)
12Modelling the daily probability of wildfire occurrence in the contiguous United States4.915Citations (PDF)
13Incorporating photosynthetic acclimation improves stomatal optimisation models
Plant, Cell and Environment, 2024, 47, 3478-3493
6.55Citations (PDF)
14Contrasting carbon cycle along tropical forest aridity gradients in West Africa and Amazonia13.723Citations (PDF)
15INFERNO-peat v1.0.0: a representation of northern high-latitude peat fires in the JULES-INFERNO global fire model
Geoscientific Model Development, 2024, 17, 3063-3079
3.88Citations (PDF)
16Simple process-led algorithms for simulating habitats (SPLASH v.2.0): robust calculations of water and energy fluxes
Geoscientific Model Development, 2024, 17, 4229-4309
3.86Citations (PDF)
17Global critical soil moisture thresholds of plant water stress13.7154Citations (PDF)
18The global drivers of wildfire3.130Citations (PDF)
19Global patterns of plant functional traits and their relationships to climate4.453Citations (PDF)
20Evidence for widespread thermal acclimation of canopy photosynthesis
Nature Plants, 2024, 10, 1919-1927
11.414Citations (PDF)
21Optimality principles explaining divergent responses of alpine vegetation to environmental change
Global Change Biology, 2023, 29, 126-142
11.164Citations (PDF)
22Coordination of photosynthetic traits across soil and climate gradients
Global Change Biology, 2023, 29, 856-873
11.134Citations (PDF)
23Environmental controls on the light use efficiency of terrestrial gross primary production
Global Change Biology, 2023, 29, 1037-1053
11.147Citations (PDF)
24Leaf economics fundamentals explained by optimality principles
Science Advances, 2023, 9,
10.970Citations (PDF)
25Optimality-based modelling of wheat sowing dates globally
Agricultural Systems, 2023, 206, 103608
5.922Citations (PDF)
26Holocene climates of the Iberian Peninsula: pollen-based reconstructions of changes in the west–east gradient of temperature and moisture
Climate of the Past, 2023, 19, 803-834
2.617Citations (PDF)
27Global leaf‐trait mapping based on optimality theory
Global Ecology and Biogeography, 2023, 32, 1152-1162
5.516Citations (PDF)
28Community Abundance of Resprouting in Woody Plants Reflects Fire Return Time, Intensity, and Type
Forests, 2023, 14, 878
2.28Citations (PDF)
29Towards a universal evapotranspiration model based on optimality principles5.420Citations (PDF)
30Evidence and attribution of the enhanced land carbon sink56.2203Citations (PDF)
31The response of wildfire regimes to Last Glacial Maximum carbon dioxide and climate
Biogeosciences, 2023, 20, 3981-3995
3.110Citations (PDF)
32Global terrestrial nitrogen uptake and nitrogen use efficiency
Journal of Ecology, 2023, 111, 2676-2693
4.519Citations (PDF)
33Pollen-based reconstructions of Holocene climate trends in the eastern Mediterranean region
Climate of the Past, 2023, 19, 2093-2108
2.614Citations (PDF)
34A constraint on historic growth in global photosynthesis due to rising CO2
Nature Climate Change, 2023, 13, 1376-1381
17.6102Citations (PDF)
35Leaf carbon and nitrogen stoichiometric variation along environmental gradients
Biogeosciences, 2023, 20, 4511-4525
3.18Citations (PDF)
36Methane flux from northern wetlands and tundra1.418Citations (PDF)
37A first-order analysis of the potential rôle of CO<sub>2</sub> fertilization to affect the global carbon budget: a comparison of four terrestrial biosphere models1.411Citations (PDF)
38Reconciling apparent inconsistencies in estimates of terrestrial CO<sub>2</sub> sources and sinks1.42Citations (PDF)
39Vegetation responses to climate extremes recorded by remotely sensed atmospheric formaldehyde
Global Change Biology, 2022, 28, 1809-1822
11.138Citations (PDF)
40Global decadal variability of plant carbon isotope discrimination and its link to gross primary production
Global Change Biology, 2022, 28, 524-541
11.124Citations (PDF)
41Ecosystem Photosynthesis in Land‐Surface Models: A First‐Principles Approach Incorporating Acclimation3.946Citations (PDF)
42Atmospheric dryness reduces photosynthesis along a large range of soil water deficits13.7309Citations (PDF)
43Leaf morphological traits as adaptations to multiple climate gradients
Journal of Ecology, 2022, 110, 1344-1355
4.582Citations (PDF)
44CO 2 fertilization of terrestrial photosynthesis inferred from site to global scales7.5151Citations (PDF)
45Accounting for atmospheric carbon dioxide variations in pollen-based reconstruction of past hydroclimates
Global and Planetary Change, 2022, 211, 103790
3.724Citations (PDF)
46Global environmental controls on wildfire burnt area, size, and intensity4.950Citations (PDF)
47Data-driven surrogate model with latent data assimilation: Application to wildfire forecasting3.697Citations (PDF)
48Reconstructing burnt area during the Holocene: an Iberian case study
Climate of the Past, 2022, 18, 1189-1201
2.63Citations (PDF)
49A new method based on surface‐sample pollen data for reconstructing palaeovegetation patterns
Journal of Biogeography, 2022, 49, 1381-1396
3.29Citations (PDF)
50Leaf nitrogen from the perspective of optimal plant function
Journal of Ecology, 2022, 110, 2585-2602
4.544Citations (PDF)
51Parameter Flexible Wildfire Prediction Using Machine Learning Techniques: Forward and Inverse Modelling
Remote Sensing, 2022, 14, 3228
3.751Citations (PDF)
52Past rapid warmings as a constraint on greenhouse-gas climate feedbacks6.84Citations (PDF)
53Global datasets of leaf photosynthetic capacity for ecological and earth system research
Earth System Science Data, 2022, 14, 4077-4093
9.061Citations (PDF)
54Towards a unified theory of plant photosynthesis and hydraulics
Nature Plants, 2022, 8, 1304-1316
11.4150Citations (PDF)
55Critical soil moisture thresholds of plant water stress in terrestrial ecosystems
Science Advances, 2022, 8,
10.9165Citations (PDF)
56The China plant trait database version 2
Scientific Data, 2022, 9,
5.733Citations (PDF)
57Predictability of leaf traits with climate and elevation: a case study in Gongga Mountain, China
Tree Physiology, 2021, 41, 1336-1352
3.538Citations (PDF)
58Global climate and nutrient controls of photosynthetic capacity4.445Citations (PDF)
59The importance of antecedent vegetation and drought conditions as global drivers of burnt area
Biogeosciences, 2021, 18, 3861-3879
3.137Citations (PDF)
60Dry corridors opened by fire and low CO2 in Amazonian rainforest during the Last Glacial Maximum
Nature Geoscience, 2021, 14, 578-585
11.328Citations (PDF)
61Eco‐evolutionary optimality as a means to improve vegetation and land‐surface models
New Phytologist, 2021, 231, 2125-2141
8.1170Citations (PDF)
62Coordination of plant hydraulic and photosynthetic traits: confronting optimality theory with field measurements
New Phytologist, 2021, 232, 1286-1296
8.162Citations (PDF)
63Global variation in the fraction of leaf nitrogen allocated to photosynthesis13.7144Citations (PDF)
64Land-surface evapotranspiration derived from a first-principles primary production model4.921Citations (PDF)
65AusTraits, a curated plant trait database for the Australian flora
Scientific Data, 2021, 8,
5.7173Citations (PDF)
66Optimality-based modelling of climate impacts on global potential wheat yield4.910Citations (PDF)
67Understanding and modelling wildfire regimes: an ecological perspective4.988Citations (PDF)
68 RETRACTED ARTICLE: A constraint on historic growth in global photosynthesis due to increasing CO2
Nature, 2021, 600, 253-258
37.967Citations (PDF)
69Plant respiration: Controlled by photosynthesis or biomass?
Global Change Biology, 2020, 26, 1739-1753
11.1127Citations (PDF)
70Historical changes in the stomatal limitation of photosynthesis: empirical support for an optimality principle
New Phytologist, 2020, 225, 2484-2497
8.158Citations (PDF)
71TRY plant trait database – enhanced coverage and open access
Global Change Biology, 2020, 26, 119-188
11.11,902Citations (PDF)
72Impacts of soil water stress on the acclimated stomatal limitation of photosynthesis: Insights from stable carbon isotope data
Global Change Biology, 2020, 26, 7158-7172
11.149Citations (PDF)
73Forest production efficiency increases with growth temperature13.798Citations (PDF)
74An improved statistical approach for reconstructing past climates from biotic assemblages2.022Citations (PDF)
75N 2 O changes from the Last Glacial Maximum to the preindustrial – Part 2: terrestrial N 2 O emissions and carbon–nitrogen cycle interactions
Biogeosciences, 2020, 17, 3511-3543
3.116Citations (PDF)
76The climatic space of European pollen taxa
Ecology, 2020, 101,
3.37Citations (PDF)
77When and where soil is important to modify the carbon and water economy of leaves
New Phytologist, 2020, 228, 121-135
8.149Citations (PDF)
78P-model v1.0: an optimality-based light use efficiency model for simulating ecosystem gross primary production
Geoscientific Model Development, 2020, 13, 1545-1581
3.8183Citations (PDF)
79A new multivariable benchmark for Last Glacial Maximum climate simulations
Climate of the Past, 2020, 16, 699-712
2.630Citations (PDF)
80Components of leaf‐trait variation along environmental gradients
New Phytologist, 2020, 228, 82-94
8.1202Citations (PDF)
81Acclimation of leaf respiration consistent with optimal photosynthetic capacity
Global Change Biology, 2020, 26, 2573-2583
11.1107Citations (PDF)
82Extending a first-principles primary production model to predict wheat yields5.428Citations (PDF)
83A theory of plant function helps to explain leaf‐trait and productivity responses to elevation
New Phytologist, 2020, 226, 1274-1284
8.145Citations (PDF)
84A Method for Generating Coherent Spatially Explicit Maps of Seasonal Paleoclimates From Site‐Based Reconstructions3.94Citations (PDF)
85Recent trends in gross primary production and their drivers: analysis and modelling at flux-site and global scales4.956Citations (PDF)
86Quantitative assessment of fire and vegetation properties in simulations with fire-enabled vegetation models from the Fire Model Intercomparison Project
Geoscientific Model Development, 2020, 13, 3299-3318
3.8118Citations (PDF)
87Nitrogen and phosphorus constrain the CO2 fertilization of global plant biomass
Nature Climate Change, 2019, 9, 684-689
17.6441Citations (PDF)
88Bridging Drought Experiment and Modeling: Representing the Differential Sensitivities of Leaf Gas Exchange to Drought4.030Citations (PDF)
89Drought impacts on terrestrial primary production underestimated by satellite monitoring
Nature Geoscience, 2019, 12, 264-270
11.3389Citations (PDF)
90Is NPP proportional to GPP? Waring’s hypothesis 20 years on
Tree Physiology, 2019, 39, 1473-1483
3.5154Citations (PDF)
91Observed and modelled historical trends in the water‐use efficiency of plants and ecosystems
Global Change Biology, 2019, 25, 2242-2257
11.1130Citations (PDF)
92Quantifying leaf‐trait covariation and its controls across climates and biomes
New Phytologist, 2019, 221, 155-168
8.1108Citations (PDF)
93Global photosynthetic capacity is optimized to the environment
Ecology Letters, 2019, 22, 506-517
7.5248Citations (PDF)
94The validity of optimal leaf traits modelled on environmental conditions
New Phytologist, 2019, 221, 1409-1423
8.145Citations (PDF)
95Quantifying soil moisture impacts on light use efficiency across biomes
New Phytologist, 2018, 218, 1430-1449
8.1304Citations (PDF)
96A continental‐scale assessment of variability in leaf traits: Within species, across sites and between seasons
Functional Ecology, 2018, 32, 1492-1506
4.167Citations (PDF)
97Ecosystem responses to elevated CO2 governed by plant–soil interactions and the cost of nitrogen acquisition
New Phytologist, 2018, 217, 507-522
8.1190Citations (PDF)
98The China Plant Trait Database: toward a comprehensive regional compilation of functional traits for land plants
Ecology, 2018, 99, 500-500
3.392Citations (PDF)
99Functional trait variation related to gap dynamics in tropical moist forests: A vegetation modelling perspective2.814Citations (PDF)
100Thermal acclimation of leaf photosynthetic traits in an evergreen woodland, consistent with the coordination hypothesis
Biogeosciences, 2018, 15, 3461-3474
3.145Citations (PDF)
101Latitudinal limits to the predicted increase of the peatland carbon sink with warming
Nature Climate Change, 2018, 8, 907-913
17.6282Citations (PDF)
102Frost and leaf‐size gradients in forests: global patterns and experimental evidence
New Phytologist, 2018, 219, 565-573
8.141Citations (PDF)
103The biomass burning contribution to climate–carbon-cycle feedback
Earth System Dynamics, 2018, 9, 663-677
5.946Citations (PDF)
104Changes in biomass allocation buffer low CO2 effects on tree growth during the last glaciation3.41Citations (PDF)
105Reconstructing ice-age palaeoclimates: Quantifying low-CO2 effects on plants
Global and Planetary Change, 2017, 149, 166-176
3.750Citations (PDF)
106Biophysical homoeostasis of leaf temperature: A neglected process for vegetation and land‐surface modelling5.566Citations (PDF)
107Photosynthetic responses to altitude: an explanation based on optimality principles
New Phytologist, 2017, 213, 976-982
8.1110Citations (PDF)
108Modelling the demand for new nitrogen fixation by terrestrial ecosystems
Biogeosciences, 2017, 14, 2003-2017
3.126Citations (PDF)
109The Fire Modeling Intercomparison Project (FireMIP), phase 1: experimental and analytical protocols with detailed model descriptions
Geoscientific Model Development, 2017, 10, 1175-1197
3.8226Citations (PDF)
110Leaf nitrogen from first principles: field evidence for adaptive variation with climate
Biogeosciences, 2017, 14, 481-495
3.192Citations (PDF)
111Simple process-led algorithms for simulating habitats (SPLASH v.1.0): robust indices of radiation, evapotranspiration and plant-available moisture3.883Citations (PDF)
112Carbon–nitrogen interactions in idealized simulations with JSBACH (version 3.10)
Geoscientific Model Development, 2017, 10, 2009-2030
3.855Citations (PDF)
113Towards a universal model for carbon dioxide uptake by plants
Nature Plants, 2017, 3, 734-741
11.4363Citations (PDF)
114Role of zooplankton dynamics for Southern Ocean phytoplankton biomass and global biogeochemical cycles
Biogeosciences, 2016, 13, 4111-4133
3.1105Citations (PDF)
115Climate-driven expansion of blanket bogs in Britain during the Holocene
Climate of the Past, 2016, 12, 129-136
2.627Citations (PDF)
116The status and challenge of global fire modelling
Biogeosciences, 2016, 13, 3359-3375
3.1355Citations (PDF)
117Terrestrial nitrogen cycling in Earth system models revisited
New Phytologist, 2016, 210, 1165-1168
8.147Citations (PDF)
118Vegetation plays an important role in mediating future water resources4.933Citations (PDF)
119Satellite based estimates underestimate the effect of CO2 fertilization on net primary productivity
Nature Climate Change, 2016, 6, 892-893
17.694Citations (PDF)
120What have we learnt from palaeoclimate simulations?2.060Citations (PDF)
121A model analysis of climate and CO 2 controls on tree growth and carbon allocation in a semi-arid woodland
Ecological Modelling, 2016, 342, 175-185
2.97Citations (PDF)
122Recent pause in the growth rate of atmospheric CO2 due to enhanced terrestrial carbon uptake13.7418Citations (PDF)
123Increased light‐use efficiency in northern terrestrial ecosystems indicated by CO2 and greening observations4.155Citations (PDF)
124A test of the ‘one‐point method’ for estimating maximum carboxylation capacity from field‐measured, light‐saturated photosynthesis
New Phytologist, 2016, 210, 1130-1144
8.1205Citations (PDF)
125Long-term water stress leads to acclimation of drought sensitivity of photosynthetic capacity in xeric but not riparianEucalyptusspecies
Annals of Botany, 2016, 117, 133-144
3.174Citations (PDF)
126Terrestrial biosphere changes over the last 120 kyr
Climate of the Past, 2016, 12, 51-73
2.652Citations (PDF)
127Morphological and moisture availability controls of the leaf area‐to‐sapwood area ratio: analysis of measurements on Australian trees
Ecology and Evolution, 2015, 5, 1263-1270
2.039Citations (PDF)
128Reliable, robust and realistic: the three R's of next-generation land-surface modelling4.6198Citations (PDF)
129Effects of fire and CO2 on biogeography and primary production in glacial and modern climates
New Phytologist, 2015, 208, 987-994
8.134Citations (PDF)
130Do land surface models need to include differential plant species responses to drought? Examining model predictions across a mesic-xeric gradient in Europe
Biogeosciences, 2015, 12, 7503-7518
3.185Citations (PDF)
131Responses of leaf traits to climatic gradients: adaptive variation versus compositional shifts
Biogeosciences, 2015, 12, 5339-5352
3.159Citations (PDF)
132Global variability in leaf respiration in relation to climate, plant functional types and leaf traits
New Phytologist, 2015, 206, 614-636
8.1421Citations (PDF)
133Optimal stomatal behaviour around the world
Nature Climate Change, 2015, 5, 459-464
17.6533Citations (PDF)
134Global effects of soil and climate on leaf photosynthetic traits and rates5.5350Citations (PDF)
135The global spectrum of plant form and function
Nature, 2015, 529, 167-171
37.93,078Citations (PDF)
136Reduced streamflow in water-stressed climates consistent with CO2 effects on vegetation
Nature Climate Change, 2015, 6, 75-78
17.6305Citations (PDF)
137Climate versus carbon dioxide controls on biomass burning: a model analysis of the glacial–interglacial contrast
Biogeosciences, 2014, 11, 6017-6027
3.113Citations (PDF)
138Simulation of tree-ring widths with a model for primary production, carbon allocation, and growth
Biogeosciences, 2014, 11, 6711-6724
3.144Citations (PDF)
139Causal relationships versus emergent patterns in the global controls of fire frequency
Biogeosciences, 2014, 11, 5087-5101
3.1141Citations (PDF)
140Biophsyical constraints on gross primary production by the terrestrial biosphere
Biogeosciences, 2014, 11, 5987-6001
3.167Citations (PDF)
141Short-term water stress impacts on stomatal, mesophyll and biochemical limitations to photosynthesis differ consistently among tree species from contrasting climates
Tree Physiology, 2014, 34, 1035-1046
3.5146Citations (PDF)
142Improved simulation of fire–vegetation interactions in the Land surface Processes and eXchanges dynamic global vegetation model (LPX-Mv1)3.834Citations (PDF)
143Where does the carbon go? A model–data intercomparison of vegetation carbon allocation and turnover processes at two temperate forest free‐air CO2 enrichment sites
New Phytologist, 2014, 203, 883-899
8.1306Citations (PDF)
144Evaluation of 11 terrestrial carbon–nitrogen cycle models against observations from two temperate Free‐Air CO2 Enrichment studies
New Phytologist, 2014, 202, 803-822
8.1436Citations (PDF)
145Increased Ratio of Electron Transport to Net Assimilation Rate Supports Elevated Isoprenoid Emission Rate in Eucalypts under Drought    
Plant Physiology, 2014, 166, 1059-1072
5.529Citations (PDF)
146A model of plant isoprene emission based on available reducing power captures responses to atmospheric CO2
New Phytologist, 2014, 203, 125-139
8.1100Citations (PDF)
147Balancing the costs of carbon gain and water transport: testing a new theoretical framework for plant functional ecology
Ecology Letters, 2014, 17, 82-91
7.5472Citations (PDF)
148Comprehensive ecosystem model‐data synthesis using multiple data sets at two temperate forest free‐air CO2 enrichment experiments: Model performance at ambient CO2 concentration2.9107Citations (PDF)
149Isoprene emissions track the seasonal cycle of canopy temperature, not primary production: evidence from remote sensing
Biogeosciences, 2014, 11, 3437-3451
3.19Citations (PDF)
150Volatile isoprenoid emissions from plastid to planet
New Phytologist, 2013, 197, 49-57
8.1165Citations (PDF)
151The optimal stomatal response to atmospheric CO2 concentration: Alternative solutions, alternative interpretations
Agricultural and Forest Meteorology, 2013, 182-183, 200-203
5.470Citations (PDF)
152Multiple greenhouse-gas feedbacks from the land biosphere under future climate change scenarios
Nature Climate Change, 2013, 3, 666-672
17.6252Citations (PDF)
153How should we model plant responses to drought? An analysis of stomatal and non-stomatal responses to water stress
Agricultural and Forest Meteorology, 2013, 182-183, 204-214
5.4334Citations (PDF)
154Forest water use and water use efficiency at elevated CO2: a model‐data intercomparison at two contrasting temperate forest FACE sites
Global Change Biology, 2013, 19, 1759-1779
11.1358Citations (PDF)
155Data-based modelling and environmental sensitivity of vegetation in China
Biogeosciences, 2013, 10, 5817-5830
3.126Citations (PDF)
156The use of dynamic global vegetation models for simulating hydrology and the potential integration of satellite observations3.047Citations (PDF)
157Precipitation scaling with temperature in warm and cold climates: An analysis of CMIP5 simulations
Geophysical Research Letters, 2013, 40, 4018-4024
4.162Citations (PDF)
158Stable isotope and modelling evidence for CO 2 as a driver of glacial–interglacial vegetation shifts in southern Africa
Biogeosciences, 2013, 10, 2001-2010
3.136Citations (PDF)
159A comprehensive benchmarking system for evaluating global vegetation models
Biogeosciences, 2013, 10, 3313-3340
3.1137Citations (PDF)
160Evaluation of biospheric components in Earth system models using modern and palaeo-observations: the state-of-the-art
Biogeosciences, 2013, 10, 8305-8328
3.113Citations (PDF)
161A worldwide analysis of trends in water-balance evapotranspiration4.771Citations (PDF)
162Climate-related changes in peatland carbon accumulation during the last millennium
Biogeosciences, 2013, 10, 929-944
3.1317Citations (PDF)
163Climate model benchmarking with glacial and mid-Holocene climates
Climate Dynamics, 2013, 43, 671-688
2.7192Citations (PDF)
164Relationships between Human Population Density and Burned Area at Continental and Global Scales
PLoS ONE, 2013, 8, e81188
2.393Citations (PDF)
165Modelling terrestrial nitrous oxide emissions and implications for climate feedback
New Phytologist, 2012, 196, 472-488
8.1118Citations (PDF)
166A global model for the uptake of atmospheric hydrogen by soils5.316Citations (PDF)
167Predictability of biomass burning in response to climate changes5.3239Citations (PDF)
168Primary production in forests and grasslands of China: contrasting environmental responses of light- and water-use efficiency models
Biogeosciences, 2012, 9, 4689-4705
3.113Citations (PDF)
169A framework for benchmarking land models
Biogeosciences, 2012, 9, 3857-3874
3.1288Citations (PDF)
170Future global water resources with respect to climate change and water withdrawals as estimated by a dynamic global vegetation model
Journal of Hydrology, 2012, 448-449, 14-29
5.9127Citations (PDF)
171Blanket peat biome endangered by climate change
Nature Climate Change, 2012, 3, 152-155
17.6125Citations (PDF)
172Modeling fire and the terrestrial carbon balance
Global Biogeochemical Cycles, 2011, 25, n/a-n/a
5.3162Citations (PDF)
173Beyond Predictions: Biodiversity Conservation in a Changing Climate
Science, 2011, 332, 53-58
36.31,767Citations (PDF)
174Improving assessment and modelling of climate change impacts on global terrestrial biodiversity6.3297Citations (PDF)
175Evaluation of global continental hydrology as simulated by the Land-surface Processes and eXchanges Dynamic Global Vegetation Model4.746Citations (PDF)
176Constraining global methane emissions and uptake by ecosystems
Biogeosciences, 2011, 8, 1643-1665
3.1226Citations (PDF)
177Reconciling the optimal and empirical approaches to modelling stomatal conductance
Global Change Biology, 2011, 17, 2134-2144
11.11,131Citations (PDF)
178TRY – a global database of plant traits
Global Change Biology, 2011, 17, 2905-2935
11.12,309Citations (PDF)
179Evidence of a universal scaling relationship for leaf CO2 drawdown along an aridity gradient
New Phytologist, 2011, 190, 169-180
8.1135Citations (PDF)
180Global vegetation and terrestrial carbon cycle changes after the last ice age
New Phytologist, 2011, 189, 988-998
8.1270Citations (PDF)
181Herbivores enable plant survival under nutrient limited conditions in a model grazing system
Ecological Modelling, 2011, 222, 381-397
2.97Citations (PDF)
182Large inert carbon pool in the terrestrial biosphere during the Last Glacial Maximum
Nature Geoscience, 2011, 5, 74-79
11.3168Citations (PDF)
183Ecophysiological and bioclimatic foundations for a global plant functional classification2.1214Citations (PDF)
184Corrigendum to "The influence of vegetation, fire spread and fire behaviour on biomass burning and trace gas emissions: results from a process-based model" published in Biogeosciences, 7, 1991-2011, doi:10.5194/bg-7-1991-2010, 2010
Biogeosciences, 2010, 7, 2191-2191
3.16Citations (PDF)
185The influence of vegetation, fire spread and fire behaviour on biomass burning and trace gas emissions: results from a process-based model
Biogeosciences, 2010, 7, 1991-2011
3.1404Citations (PDF)
186From biota to chemistry and climate: towards a comprehensive description of trace gas exchange between the biosphere and atmosphere
Biogeosciences, 2010, 7, 121-149
3.188Citations (PDF)
187Implementation and evaluation of a new methane model within a dynamic global vegetation model: LPJ-WHyMe v1.3.13.8289Citations (PDF)
188Palaeovegetation in China during the late Quaternary: Biome reconstructions based on a global scheme of plant functional types2.5195Citations (PDF)
189Pollen-based continental climate reconstructions at 6 and 21 ka: a global synthesis
Climate Dynamics, 2010, 37, 775-802
2.7611Citations (PDF)
190Bioclimatic envelope model of climate change impacts on blanket peatland distribution in Great Britain
Climate Research, 2010, 45, 151-162
1.5118Citations (PDF)
191Assessing the vulnerability of blanket peat to climate change using an ensemble of statistical bioclimatic envelope models
Climate Research, 2010, 45, 131-150
1.568Citations (PDF)
192Climate change and the British Uplands: evidence for decision-making
Climate Research, 2010, 45, 3-12
1.516Citations (PDF)
193Ecosystem effects of CO 2 concentration: evidence from past climates
Climate of the Past, 2009, 5, 297-307
2.6112Citations (PDF)
194Trends in the sources and sinks of carbon dioxide
Nature Geoscience, 2009, 2, 831-836
11.31,906Citations (PDF)
195Integrating peatlands and permafrost into a dynamic global vegetation model: 1. Evaluation and sensitivity of physical land surface processes5.3199Citations (PDF)
196Integrating peatlands and permafrost into a dynamic global vegetation model: 2. Evaluation and sensitivity of vegetation and carbon cycle processes5.3165Citations (PDF)
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