[
Abbruzzese, G., Beritognolo, I., Muleo, R., Piazzai, M., Sabatti, M., Mugnozza, G. S. et al., 2009: Leaf morphological plasticity and stomatal conductance in three Populus alba L. genotypes subjected to salt stress. Environmental and Experimental Botany, 66:381–388.
]Search in Google Scholar
[
Beule, L., Lehtsaar, E., Corre, M. D., Schmidt, M., Veldkamp, E., Karlovsky, P., 2020: Poplar rows in temperate agroforestry croplands promote bacteria, fungi, and denitrification genes in soils. Frontiers in Microbiology, 10:3108.
]Search in Google Scholar
[
Bublyk, М. О., Patika, Т. І., Kitaev, О. І. et al., 2013: Laboratory and field methods for determining frost resistance of fruit species and crops: Methodological recommendations. NAAS of Ukraine, Institute of Horticulture, 26 pp. (In Ukrainian).
]Search in Google Scholar
[
Cambours, M. A., Heinsoo, K., Granhall, U., Nejad, P., 2006: Frost related dieback in Estonian energy plantations of willows in relation to fertilisation and pathogenic bacteria. Biomass and Bioenergy, 30:220–230.
]Search in Google Scholar
[
Christersson, L., 2006: Biomass production of intensively grown poplars in the southernmost part of Sweden: Observations of characters, traits and growth potential. Biomass and Bioenergy, 30:497–508.
]Search in Google Scholar
[
De Antonio, A. C., Hoffmann, W. A., Rossatto, D. R., 2021: The role of morpho-physiological traits in frost tolerance of neotropical savanna trees. Trees, 35:1687–1696.
]Search in Google Scholar
[
Dickmann, D. I., 2006: Silviculture and biology of short-rotation woody crops in temperate regions: Then and now. Biomass and Bioenergy, 30:696–705.
]Search in Google Scholar
[
Fang, S., Liu, Y., Yue, J., Tian, Y., Xu, X., 2021: Assessments of growth performance, crown structure, stem form and wood property of introduced poplar clones: Results from a long-term field experiment at a lowland site. Forest Ecology and Management, 479:118586.
]Search in Google Scholar
[
Fuchylo, J. D., Maurer, V. М., Sbitna, М. V., Odartchenko, І. S., Fuchylo, D. J., 2016: Features of Woody Biomass and Planting-stock of Poplar in “Stump” type of Plantation Management. Proceedings of the Forestry Academy of Sciences of Ukraine, 14:134–140. (In Ukrainian).
]Search in Google Scholar
[
Fürtner, D., Perdomo Echenique, E. A., Hörtenhuber, S. J., Schwarzbauer, P., Hesser, F., 2022: Beyond Monetary Cost-Benefit Analyses: Combining Economic, Environmental and Social Analyses of Short Rotation Coppice Poplar Production in Slovakia. Forests, 13:349.
]Search in Google Scholar
[
Gasol, C. M., Martínez, S., Rigola, M., Rieradevall, J., Anton, A., Carrasco, J. et al., 2009: Feasibility assessment of poplar bioenergy systems in the Southern Europe. Renewable and Sustainable Energy Reviews, 13:801–812.
]Search in Google Scholar
[
Goff, S. A., 2011: A unifying theory for general multi-genic heterosis: energy efficiency, protein metabolism, and implications for molecular breeding. New Phytologist, 189:923–937.
]Search in Google Scholar
[
Gusta, L. V., Wisniewski, M., 2013: Understanding plant cold hardiness: an opinion. Physiologia Plantarum, 147:4–14.
]Search in Google Scholar
[
Hänninen, H., 2006: Climate warming and the risk of frost damage to boreal forest trees: identification of critical ecophysiological traits. Tree Physiology, 26:889–898.
]Search in Google Scholar
[
Harfouche, A., Meilan, R., Altman, A., 2014: Molecular and physiological responses to abiotic stress in forest trees and their relevance to tree improvement. Tree Physiology, 34:1181–1198.
]Search in Google Scholar
[
Harvey, J. E., Smiljanić, M., Scharnweber, T., Buras, A., Cedro, A., Cruz‐García, R. et al., 2020: Tree growth influenced by warming winter climate and summer moisture availability in northern temperate forests. Global Change Biology, 26:2505–2518.
]Search in Google Scholar
[
Havryliuk, O. S., Kondratenko, T. J., 2020: The intensity of photosynthesis of the surface of columnar apple-tree in the conditions of Kyiv. Scientific Reports of the National University of Life and Environmental Sciences of Ukraine, 16:142–153. (In Ukrainian).
]Search in Google Scholar
[
Heilig, D., Heil, B., Leibing, C., Röhle, H., Kovács, G., 2021: Comparison of the initial growth of different poplar clones on four sites in western Slovakia – preliminar results. BioEnergy Research, 14:374–384.
]Search in Google Scholar
[
Hu, Y., Thomas, B. R., 2019: Hormones and heterosis in hybrid balsam poplar (Populus balsamifera L.). Forests, 10:143.
]Search in Google Scholar
[
Kots, E. P., 1972: Development of seed rudiments and female archespory in the genus Populus L. Ukrainian Botanical Journal, 29:19–24. (In Ukrainian).
]Search in Google Scholar
[
Kovačević, B., Igić, D., Novčić, Z., Orlović, S., 2020: Survival and growth of white poplar rooted cuttings regarding term of planting. Topola, 205:33–46.
]Search in Google Scholar
[
Kreyling, J., 2010: Winter climate change: a critical factor for temperate vegetation performance. Ecology, 91:1939–1948.
]Search in Google Scholar
[
Krupei, N. S., 1970: Inheritance of crown pyramidal shape in hybrids of pyramidal poplar. Forestry and Agroforestry: Republican Interdepartmental Thematic Scientific Collection, 23:71–79. (In Ukrainian).
]Search in Google Scholar
[
Kutsokon, N. K., Chudoleeva, L. V., Los, S. А., Vysotska, N. J., Torosova, L. О., Tkatch, V. P. et al., 2018: Evaluation of growth characteristics of one-year poplar and willow clones in short rotation plantation in Kharkiv region. Biological Studies, 12:55–64. (In Ukrainian).
]Search in Google Scholar
[
Lazdiņa, D., Šēnhofa, S., Zeps, M., Makovskis, K., Bebre, I., Jansons, Ā., 2016: The early growth and fall frost damage of poplar clones in Latvia. Agronomy Research, 14:109–122.
]Search in Google Scholar
[
Lindner, M., Maroschek, M., Netherer, S., Kremer, A., Barbati, A., Garcia-Gonzalo, J. et al., 2010: Climate change impacts, adaptive capacity, and vulnerability of European forest ecosystems. Forest Ecology and Management, 259:698–709.
]Search in Google Scholar
[
Mirzaei, M. et al., 2018: Effect of climate change on spring frost risk and hybrid poplar productivity in eastern Canada. Regional Environmental Change, 18:1057–1068.
]Search in Google Scholar
[
Niemczyk, M., Kaliszewski, A., Jewiarz, M., Wróbel, M., Mudryk, K., 2018: Productivity and biomass characteristics of selected poplar (Populus spp.) cultivars under the climatic conditions of northern Poland. Biomass and Bioenergy, 111:46–51.
]Search in Google Scholar
[
Niemczyk, M., Hu, Y., Thomas, B. R., 2019: Selection of poplar genotypes for adapting to climate change. Forests, 10:1041.
]Search in Google Scholar
[
Oksantyuk, V., Koldar, L., 2021: Winter resistance and frost resistance of representatives of the genus Cotinus Mill. in the conditions of the Right Bank Forest Steppe of Ukraine. Journal of Native and Alien Plant Studies, 17:164–175. (In Ukrainian).
]Search in Google Scholar
[
Oleksienko, І. М., Zatula, V. І., 2011: Spatial and temporal distribution of the last spring and first autumn frost in the air on the territory of Ukraine for 1991–2010 years. Scientific Works of the Ukrainian Research Institute of Hydrometeorology, 260:67–79. (In Ukrainian).
]Search in Google Scholar
[
Oliveira, N., Pérez-Cruzado, C., Cañellas, I., Rodríguez-Soalleiro, R., Sixto, H., 2020: Poplar short rotation coppice plantations under Mediterranean conditions: The case of Spain. Forests, 11:1352.
]Search in Google Scholar
[
Patlai, І. N., Rudenko, V. N., 1990: Selection of fast-growing tree species in Ukraine. Forestry and Forest Melioration, 81:3–7. (In Ukrainian).
]Search in Google Scholar
[
Pliura, A., Suchockas, V., Sarsekova, D., Gudynaitė, V., 2014: Genotypic variation and heritability of growth and adaptive traits, and adaptation of young poplar hybrids at northern margins of natural distribution of Populus nigra in Europe. Biomass and Bioenergy, 70:513–529.
]Search in Google Scholar
[
Polle, A., Chen, S., 2015: On the salty side of life: molecular, physiological and anatomical adaptation and acclimation of trees to extreme habitats. Plant, Cell & Environment, 38:1794–1816.
]Search in Google Scholar
[
Porro, Z., Odicino, M., Bogliani, G., Chiatante, G., 2021: Intensive forestry and biodiversity: Use of poplar plantations by woodpeckers in a lowland area of Northern Italy. Forest Ecology and Management, 497:119490.
]Search in Google Scholar
[
Rapacz, M., Sasal, M., Wójcik-Jagła, M., 2015: Direct and indirect measurements of freezing tolerance: advantages and limitations. Acta Physiologiae Plan-tarum, 37:1–16.
]Search in Google Scholar
[
Richardson, J., Isebrands, J. G., Ball, J. B, 2014: Ecology and physiology of poplars and willows. In: Isebrands, J. G., Richardson, J. (eds.): Poplars and Willows: Trees for Society and the Environment. Rome, Italy, CAB International and FAO, p. 92–123.
]Search in Google Scholar
[
Rossant, C., 2018: IPython Interactive Computing and Visualization Cookbook: Over 100 hands-on recipes to sharpen your skills in high-performance numerical computing and data science in the Jupyter Notebook. Birmingham, Packt Publishing Ltd., 548 p. Schiberna, E., Borovics, A., Benke, A., 2021: Economic modelling of poplar short rotation coppice plantations in Hungary. Forests, 12:623.
]Search in Google Scholar
[
Schreiber, S. G., Hamann, A., Hacke, U. G., Thomas, B. R., 2013: Sixteen years of winter stress: an assessment of cold hardiness, growth performance and survival of hybrid poplar clones at a boreal planting site. Plant, Cell & Environment, 36:419–428.
]Search in Google Scholar
[
Schiberna, E., Borovics, A., Benke, A., 2021: Economic modelling of poplar short rotation coppice plantations in Hungary. Forests, 12:623.
]Search in Google Scholar
[
Shvidenko, A., Buksha, I., Krakovska, S., 2018: Vulnerability of Ukraine’s forests to climate change: monograph. Kyiv, Nika-Centre, 184 p.
]Search in Google Scholar
[
Sneath, P. H. A., Sokal, R. R., 1973: Numerical taxonomy. The Principles and Practice of Numerical Classification. San Francisco, USA, WF Freeman & Co., 573 p.
]Search in Google Scholar
[
Sperry, J. S., Nichols, K. L., Sullivan, J. E., Eastlack, S. E., 1994: Xylem embolism in ring‐porous, diffuse‐ porous, and coniferous trees of northern Utah and interior Alaska. Ecology, 75:1736–1752.
]Search in Google Scholar
[
Stettler, R. F., Zsuffa, L., Wu, R., 1996: The role of hybridization in the genetic manipulation of Populus. In: Stettler, R. F., Bradshaw, H. D., Heilmann, P. E., Hinckley, T. M. (eds.): Biology of Populus. Ottawa, ON, Canada, NRC Research Press, p. 87–112.
]Search in Google Scholar
[
Sykes, M. T., Prentice, I. C., Cramer, W., 1996: A bio-climatic model for the potential distributions of north European tree species under present and future climates. Journal of Biogeography, 203–233.
]Search in Google Scholar
[
Telenius, B. F., 1999: Stand growth of deciduous pioneer tree species on fertile agricultural land in southern Sweden. Biomass and Bioenergy, 16:13–23.
]Search in Google Scholar
[
Vitasse, Y., Lenz, A., Körner, C., 2014: The interaction between freezing tolerance and phenology in temperate deciduous trees. Frontiers in Plant Science, 5:541.
]Search in Google Scholar
[
Weber, J. C., Stettler, R. F., Heilman, P. E., 1985: Genetic variation and productivity of Populus trichocarpa and its hybrids. I. Morphology and phenology of 50 native clones. Canadian Journal of Forest Research, 15:376–383.
]Search in Google Scholar
[
Yu, Q., Tigerstedt, P. M. A., Haapanen, M., 2001: Growth and Phenology of Hybrid Aspen Clones (Populus tremula L. × Populus tremuloides Michx.). Silva Fennica, 35:15–25.
]Search in Google Scholar
[
Zacchini, M., Pietrini, F., Scarascia Mugnozza, G., Iori, V., Pietrosanti, L., Massacci, A., 2009: Metal tolerance, accumulation and translocation in poplar and willow clones treated with cadmium in hydroponics. Water, Air, and Soil Pollution, 197:23–34.
]Search in Google Scholar
[
Zepner, L., Karrasch, P., Wiemann, F., Bernard, L., 2021: ClimateCharts. net–an interactive climate analysis web platform. International Journal of Digital Earth, 14:338–356.
]Search in Google Scholar