Lab Publications
2024
![Estimating merchantable and non-merchantable wood volume in slash walls using terrestrial and airborne LiDAR](/images/news/2024-08-19-news.jpg)
Estimating merchantable and non-merchantable wood volume in slash walls using terrestrial and airborne LiDAR
Forest Ecology and Management
·
01 Oct 2024
·
doi:10.1016/j.foreco.2024.122211
![Two sub‐annual timescales and coupling modes for terrestrial water and carbon cycles](https://onlinelibrary.wiley.com/cms/asset/3994054d-ac0c-493f-aab0-6c30409f9094/gcb17463-fig-0002-m.jpg)
Two sub‐annual timescales and coupling modes for terrestrial water and carbon cycles
Global Change Biology
·
09 Aug 2024
·
doi:10.1111/gcb.17463
![AppleQSM: Geometry-Based 3D Characterization of Apple Tree Architecture in Orchards](https://spj.science.org/cms/10.34133/plantphenomics.0179/asset/6b661479-27b0-41b8-8371-8afc6ca7301c/assets/graphic/plantphenomics.0179.fig.001.jpg)
AppleQSM: Geometry-Based 3D Characterization of Apple Tree Architecture in Orchards
Plant Phenomics
·
08 May 2024
·
doi:10.34133/plantphenomics.0179
![Global photosynthetic capacity jointly determined by enzyme kinetics and eco-evo-environmental drivers](https://ars.els-cdn.com/content/image/1-s2.0-S2667325824000281-ga1.jpg)
Global photosynthetic capacity jointly determined by enzyme kinetics and eco-evo-environmental drivers
Fundamental Research
·
06 Feb 2024
·
doi:10.1016/j.fmre.2023.12.011
![Constraining long‐term model predictions for woody growth using tropical tree rings](https://onlinelibrary.wiley.com/cms/asset/ed099a2f-4a88-4c0a-8240-00f8f0dd6d21/gcb.v30.1.cover.jpg)
Constraining long‐term model predictions for woody growth using tropical tree rings
Global Change Biology
·
01 Jan 2024
·
doi:10.1111/gcb.17075
2023
![Observed impacts of large wind farms on grassland carbon cycling](https://www.sciengine.com/figures/figures-ad36eaa4f05648238fd7ed8009f67c7e-Graphical%20Abstract.jpg)
Observed impacts of large wind farms on grassland carbon cycling
Science Bulletin
·
19 Dec 2023
·
doi:10.1016/j.scib.2023.10.016
![Exploring the impacts of unprecedented climate extremes on forest ecosystems: hypotheses to guide modeling and experimental studies](https://bg.copernicus.org/articles/20/2117/2023/bg-20-2117-2023-f01-thumb.png)
Exploring the impacts of unprecedented climate extremes on forest ecosystems: hypotheses to guide modeling and experimental studies
Biogeosciences
·
14 Jun 2023
·
doi:10.5194/bg-20-2117-2023
![Leaf angle as a leaf and canopy trait: Rejuvenating its role in ecology with new technology](https://onlinelibrary.wiley.com/cms/asset/69472254-32d9-4587-8050-43392e1a2eda/ele14215-fig-0002-m.png)
Leaf angle as a leaf and canopy trait: Rejuvenating its role in ecology with new technology
Ecology Letters
·
20 Apr 2023
·
doi:10.1111/ele.14215
![Leaf economics fundamentals explained by optimality principles](https://www.science.org/cms/asset/36a2a62d-0e74-4cca-a069-279b7646ca24/sciadv.2023.9.issue-3.largecover.jpg)
Leaf economics fundamentals explained by optimality principles
Science Advances
·
18 Jan 2023
·
doi:10.1126/sciadv.add5667
2022
![Reduced ecosystem resilience quantifies fine‐scale heterogeneity in tropical forest mortality responses to drought](https://onlinelibrary.wiley.com/cms/asset/042eb14c-2513-4972-a3be-5a6ae50edac4/gcb.v28.6.cover.jpg)
Reduced ecosystem resilience quantifies fine‐scale heterogeneity in tropical forest mortality responses to drought
Global Change Biology
·
01 Mar 2022
·
doi:10.1111/gcb.16046
2021
![Plant input does not exert stronger control on topsoil carbon persistence than climate in alpine grasslands](https://onlinelibrary.wiley.com/cms/asset/833d8a1c-38a0-4bdf-a4f2-79eb158daf91/ele.v24.11.cover.jpg)
Plant input does not exert stronger control on topsoil carbon persistence than climate in alpine grasslands
Ecology Letters
·
12 Sep 2021
·
doi:10.1111/ele.13879
![Detecting forest response to droughts with global observations of vegetation water content](https://onlinelibrary.wiley.com/cms/asset/f7d637c2-4488-4969-8e74-d3425c96fcfc/gcb15872-fig-0003-m.png)
Detecting forest response to droughts with global observations of vegetation water content
Global Change Biology
·
03 Sep 2021
·
doi:10.1111/gcb.15872
Natural experiments and long-term monitoring are critical to understand and predict marine host–microbe ecology and evolution
PLOS Biology
·
19 Aug 2021
·
doi:10.1371/journal.pbio.3001322
![Leaf surface water, not plant water stress, drives diurnal variation in tropical forest canopy water content](https://nph.onlinelibrary.wiley.com/pb-assets/assets/page/journal/14698137/14698137/2023/Oct/remotesensingNPH-1698765549.png)
Leaf surface water, not plant water stress, drives diurnal variation in tropical forest canopy water content
New Phytologist
·
01 Jun 2021
·
doi:10.1111/nph.17254
![Recovery: Fast and Slow—Vegetation Response During the 2012–2016 California Drought](https://agupubs.onlinelibrary.wiley.com/cms/asset/cb4bf941-0093-4c82-a056-0c3b4e4e3de7/jgrg21864-fig-0001-m.png)
Recovery: Fast and Slow—Vegetation Response During the 2012–2016 California Drought
Journal of Geophysical Research: Biogeosciences
·
01 Apr 2021
·
doi:10.1029/2020JG005976
![Unraveling the relative role of light and water competition between lianas and trees in tropical forests: A vegetation model analysis](https://besjournals.onlinelibrary.wiley.com/cms/asset/fb1ab1ec-6328-4505-8532-00f080809c8d/jec13540-fig-0001-m.png)
Unraveling the relative role of light and water competition between lianas and trees in tropical forests: A vegetation model analysis
Journal of Ecology
·
03 Mar 2021
·
doi:10.1111/1365-2745.13540
![Monitoring tree-crown scale autumn leaf phenology in a temperate forest with an integration of PlanetScope and drone remote sensing observations](https://ars.els-cdn.com/content/image/1-s2.0-S0924271620X00128-cov150h.gif)
Monitoring tree-crown scale autumn leaf phenology in a temperate forest with an integration of PlanetScope and drone remote sensing observations
ISPRS Journal of Photogrammetry and Remote Sensing
·
15 Jan 2021
·
doi:10.1016/j.isprsjprs.2020.10.017
Trait-Based Modeling of Terrestrial Ecosystems: Advances and Challenges Under Global Change
Current Climate Change Reports
·
12 Jan 2021
·
doi:10.1007/s40641-020-00168-6
2020
![Accelerated terrestrial ecosystem carbon turnover and its drivers](https://onlinelibrary.wiley.com/cms/asset/02e87cc9-8afc-40c5-b78e-f3edcdd5d6b0/gcb.v26.9.cover.jpg)
Accelerated terrestrial ecosystem carbon turnover and its drivers
Global Change Biology
·
30 Aug 2020
·
doi:10.1111/gcb.15224
![Optimal leaf life strategies determine <i>V</i><sub>c,max</sub> dynamic during ontogeny](https://nph.onlinelibrary.wiley.com/cms/asset/247029f2-d0a5-4958-99fb-690c77cd1108/nph16712-fig-0001-m.png)
Optimal leaf life strategies determine Vc,max dynamic during ontogeny
New Phytologist
·
22 Jun 2020
·
doi:10.1111/nph.16712
![A catastrophic tropical drought kills hydraulically vulnerable tree species](https://onlinelibrary.wiley.com/cms/asset/8fa7c833-2587-456a-9ecc-c5f84a876ca1/gcb.v26.5.cover.jpg)
A catastrophic tropical drought kills hydraulically vulnerable tree species
Global Change Biology
·
23 Mar 2020
·
doi:10.1111/gcb.15037
![Allometric scaling laws linking biomass and rooting depth vary across ontogeny and functional groups in tropical dry forest lianas and trees](https://nph.onlinelibrary.wiley.com/cms/asset/2ecf3c4e-0f4e-46d6-b066-fb26715e4b19/nph16275-fig-0004-m.png)
Allometric scaling laws linking biomass and rooting depth vary across ontogeny and functional groups in tropical dry forest lianas and trees
New Phytologist
·
24 Jan 2020
·
doi:10.1111/nph.16275
2019
![Tropical carbon sink accelerated by symbiotic dinitrogen fixation](https://media.springernature.com/lw685/springer-static/image/art%3A10.1038%2Fs41467-019-13656-7/MediaObjects/41467_2019_13656_Fig2_HTML.png?as=webp)
Tropical carbon sink accelerated by symbiotic dinitrogen fixation
Nature Communications
·
02 Dec 2019
·
doi:10.1038/s41467-019-13656-7