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Fu Xiao-Feng, Wang Li-Shan, Zhu Yuan, Xu Qian, Wang Ling-Hui, Teng Wei-Chao. Effects of different fertilization treatments on the growth and physiological characteristics of Horsfieldia hainanensis Merr. Seedlings[J]. Plant Science Journal, 2018, 36(2): 273-281. DOI: 10.11913/PSJ.2095-0837.2018.20273
Citation: Fu Xiao-Feng, Wang Li-Shan, Zhu Yuan, Xu Qian, Wang Ling-Hui, Teng Wei-Chao. Effects of different fertilization treatments on the growth and physiological characteristics of Horsfieldia hainanensis Merr. Seedlings[J]. Plant Science Journal, 2018, 36(2): 273-281. DOI: 10.11913/PSJ.2095-0837.2018.20273

Effects of different fertilization treatments on the growth and physiological characteristics of Horsfieldia hainanensis Merr. Seedlings

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This work was supported by grants from the Guangxi Forestry Science and Technology Project (Guilin Branch[2014] No.07), "Innovative Entrepreneurship Training Program" Innovative Training Program (201610593262), and Forestry Department of Guangxi Zhuang Autonomous Region Science and Technology Project (Guilin Research[2015] No.25).

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  • Received Date: October 09, 2017
  • Available Online: October 31, 2022
  • Published Date: April 27, 2018
  • Orthogonal experimental methods were used to study the effects of different fertilization treatments on the growth and physiological characteristics of Horsfieldia hainanensis Merr. seedlings. Results showed that the growth indexes of the seedlings differed under different fertilization treatments, with plant height, ground diameter, biomass, and root indices of the non-fertilizer group found to be lower than those of the fertilizer treatment groups. There were significant differences in the contents of soluble sugar, soluble protein, and chlorophyll content in the leaves among fertilization treatments. Net photosynthetic rate, stomatal conductance, transpiration rate, and intercellular CO2 concentration (Pn, Gs, Tr, and Ci, respectively) were all higher than those in the non-fertilizer group, indicating that photosynthetic performance of the seedlings was improved. After comprehensive evaluation using membership functions, the optimum treatment group was determined to be T6, N2P2K2 (N 3.80 g/individual, P 0.48 g/individual, K 1.46 g/individual).
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