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1. Smith, M. N., Stark, S. C., Taylor, T. C., Ferreira, M. L., de Oliveira, E., Restrepo‐Coupe, N., ... & Saleska, S. R. (2019). Seasonal and drought‐related changes in leaf area profiles depend on height and light environment in an Amazon forest. New Phytologist222(3), 1284-1297.
 
https://doi.org/10.1111/nph.15726

2. Wu, D., Zhao, X., Liang, S., Zhou, T., Huang, K., Tang, B., & Zhao, W. (2015). Time‐lag effects of global vegetation responses to climate change. Global change biology21(9), 3520-3531.
 
https://doi.org/10.1111/gcb.12945

3. Wu, X., Liu, H., Li, X., Ciais, P., Babst, F., Guo, W., ... & Ma, Y. (2018). Differentiating drought legacy effects on vegetation growth over the temperate Northern Hemisphere. Global change biology24(1), 504-516.
 
https://doi.org/10.1111/gcb.13920
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Schenk, H. J., Jansen, S., & Hölttä, T. (2020). Positive pressure in xylem and its role in hydraulic function.New Phytologist. https://nph.onlinelibrary.wiley.com/doi/pdf/10.1111/nph.17085
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Differential determinants of growth rates in subtropical evergreen and deciduous juvenile trees: carbon gain, hydraulics and nutrient-use efficiencies Jin-Hua Qi,Ze-Xin Fan,Pei-Li Fu,Yong-Jiang Zhang,Frank Sterck Tree Physiology, Volume 41, Issue 1, January 2021, Pages 12–23,https://doi.org/..