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Tree ring oxygen isotope in Asia
Xu, C., Huang, R., An, W., Zhao, Q., Zhao, Y., Ren, J., … Guo, Z. (2024). Tree ring oxygen isotope in Asia. Global and Planetary Change, 232, 104348 (23 pp.). https://doi.org/10.1016/j.gloplacha.2023.104348
Declining tree growth resilience mediates subsequent forest mortality in the US Mountain West
Cabon, A., DeRose, R. J., Shaw, J. D., & Anderegg, W. R. L. (2023). Declining tree growth resilience mediates subsequent forest mortality in the US Mountain West. Global Change Biology, 29(17), 4826-4841. https://doi.org/10.1111/gcb.16826
Pre- and post-drought conditions drive resilience of Pinus halepensis across its distribution range
Veuillen, L., Prévosto, B., Alfaro-Sánchez, R., Badeau, V., Battipaglia, G., Beguería, S., … Cailleret, M. (2023). Pre- and post-drought conditions drive resilience of Pinus halepensis across its distribution range. Agricultural and Forest Meteorology, 339, 109577 (12 pp.). https://doi.org/10.1016/j.agrformet.2023.109577
Tree-ring data reveal trees are suffering from severe drought stress in the humid subtropical forest
Zhang, R., Hu, Z., Cherubini, P., Cooper, D. J., Zhu, L., & Lei, P. (2023). Tree-ring data reveal trees are suffering from severe drought stress in the humid subtropical forest. Forest Ecology and Management, 546, 121330 (12 pp.). https://doi.org/10.1016/j.foreco.2023.121330
Phenotypic plasticity of European larch radial growth and wood density along a‐1,000 m elevational gradient
Escobar‐Sandoval, M., Pâques, L., Fonti, P., Martinez‐Meier, A., & Rozenberg, P. (2021). Phenotypic plasticity of European larch radial growth and wood density along a‐1,000 m elevational gradient. Plant-Environment Interactions, 2(2), 45-60. https://doi.org/10.1002/pei3.10040
Setting the tree-ring record straight
Ludescher, J., Bunde, A., Büntgen, U., & Schellnhuber, H. J. (2020). Setting the tree-ring record straight. Climate Dynamics, 55, 3017-3024. https://doi.org/10.1007/s00382-020-05433-w
Using Blue Intensity from drought-sensitive <em>Pinus sylvestris</em> in Fennoscandia to improve reconstruction of past hydroclimate variability
Seftigen, K., Fuentes, M., Ljungqvist, F. C., & Björklund, J. (2020). Using Blue Intensity from drought-sensitive Pinus sylvestris in Fennoscandia to improve reconstruction of past hydroclimate variability. Climate Dynamics, 55, 579-594. https://doi.org/10.1007/s00382-020-05287-2
Physiological and growth responses to increasing drought of an endangered tree species in Southwest China
Zheng, W., Gou, X., Su, J., Fan, H., Yu, A., Liu, W., … Fonti, P. (2019). Physiological and growth responses to increasing drought of an endangered tree species in Southwest China. Forests, 10(6), 514 (17 pp.). https://doi.org/10.3390/f10060514
Structure and function of Intra-Annual Density Fluctuations: mind the gaps
Battipaglia, G., Campelo, F., Vieira, J., Grabner, M., De Micco, V., Nabais, C., … de Luis, M. (2016). Structure and function of Intra-Annual Density Fluctuations: mind the gaps. Frontiers in Plant Science, 7, 595 (8 pp.). https://doi.org/10.3389/fpls.2016.00595
Can tree-ring δ<sup>15</sup>N be used as a proxy for foliar δ<sup>15</sup>N in European beech and Norway spruce?
Tomlinson, G., Buchmann, N., Siegwolf, R., Weber, P., Thimonier, A., Graf Pannatier, E., … Waldner, P. (2016). Can tree-ring δ15N be used as a proxy for foliar δ15N in European beech and Norway spruce? Trees: Structure and Function, 30(3), 627-638. https://doi.org/10.1007/s00468-015-1305-1
Radial growth changes in Norway spruce montane and subalpine forests after strip cutting in the Swiss Alps
Vitali, V., Brang, P., Cherubini, P., Zingg, A., & Simeonova Nikolova, P. (2016). Radial growth changes in Norway spruce montane and subalpine forests after strip cutting in the Swiss Alps. Forest Ecology and Management, 364, 145-153. https://doi.org/10.1016/j.foreco.2016.01.015
Site- and species-specific responses of forest growth to climate across the European continent
Babst, F., Poulter, B., Trouet, V., Tan, K., Neuwirth, B., Wilson, R., … Frank, D. (2013). Site- and species-specific responses of forest growth to climate across the European continent. Global Ecology and Biogeography, 22(6), 706-717. https://doi.org/10.1111/geb.12023
Intra-annual dynamics of non-structural carbohydrates in the cambium of mature conifer trees reflects radial growth demands
Simard, S., Giovannelli, A., Treydte, K. K., Traversi, M. L., King, G. M., Frank, D., & Fonti, P. (2013). Intra-annual dynamics of non-structural carbohydrates in the cambium of mature conifer trees reflects radial growth demands. Tree Physiology, 33(9), 913-923. https://doi.org/10.1093/treephys/tpt075
500 years of regional forest growth variability and links to climatic extreme events in Europe
Babst, F., Carrer, M., Poulter, B., Urbinati, C., Neuwirth, B., & Frank, D. (2012). 500 years of regional forest growth variability and links to climatic extreme events in Europe. Environmental Research Letters, 7(4), 045705 (11 pp.). https://doi.org/10.1088/1748-9326/7/4/045705
Stand structure modulates the long-term vulnerability of <i>Pinus halepensis</i> to climatic drought in a semiarid Mediterranean ecosystem
Moreno-Gutiérrez, C., Battipaglia, G., Cherubini, P., Saurer, M., Nicolás, E., Contreras, S., & Querejeta, J. I. (2012). Stand structure modulates the long-term vulnerability of Pinus halepensis to climatic drought in a semiarid Mediterranean ecosystem. Plant, Cell and Environment, 35(6), 1026-1039. https://doi.org/10.1111/j.1365-3040.2011.02469.x
A pan-European summer teleconnection mode recorded by a new temperature reconstruction from the northeastern Mediterranean (AD 1768-2008)
Trouet, V., Panayotov, M. P., Ivanova, A., & Frank, D. (2012). A pan-European summer teleconnection mode recorded by a new temperature reconstruction from the northeastern Mediterranean (AD 1768-2008). Holocene, 22(8), 887-898. https://doi.org/10.1177/0959683611434225
Temporal and spatial dynamic of stool uprooting in abandoned chestnut coppice forests
Vogt, J., Fonti, P., Conedera, M., & Schröder, B. (2006). Temporal and spatial dynamic of stool uprooting in abandoned chestnut coppice forests. Forest Ecology and Management, 235(1-3), 88-95. https://doi.org/10.1016/j.foreco.2006.08.008