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Chinese Journal of Ecology ›› 2026, Vol. 45 ›› Issue (8): 2643-2653.doi: 10.13292/j.1000-4890.202608.010

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The driving mechanism of artificial grass cover duration on N2O emissions from citrus orchard soils.

YANG Hongbing1,2, ZENG Lixiong1,2, LEI Lei1,2, ZHANG Jiajia1,2, YANG Xin1,2, HUANG Zhilin1,2, XIAO Wenfa1,2*   

  1. (1Key Laboratory of Forest Ecology and Environment of National Forestry and Grassland Administration, Ecology and Nature Conservation Institute, Chinese Academy of Forestry, Beijing 100091, China; 2National Observation and Research Station of Forest Ecosystem in the Three Gorges Reservoir Area, Zigui 443699, Hubei, China).

  • Online:2026-08-10 Published:2026-08-17

Abstract: To assess the potential of soil greenhouse gas emissions in citrus orchards of the Three Gorges Reservoir Region and to inform management optimization, we examined fertilized non-rhizosphere topsoil (0-10 cm) under four treatments: clean tillage (CK) and cover cropping with smooth vetch (Vicia villosa) established for 4, 7, and 11 years. Gas fluxes from soils were determined by the field in-situ measurement method, and soil physicochemical properties and microbial characteristics were analyzed to explore the driving mechanism of smooth vetch cover duration on nitrous oxide (N2O) emissions. Smooth vetch cover significantly increased N2O emission by 42.7%, and enhanced soil capillary porosity, β-glucosidase activity, and CO2 emission. The N2O emission presented a dynamic trend of rising first and then declining with increasing cover duration. Cover duration significantly affected soil pH and the mean weight diameter of water-stable aggregates (W_MWD). N2O flux was negatively correlated with NH3 and CH4 fluxes but positively correlated with CO2 flux (P<0.05). The primary drivers of N2O flux were soil moisture, W_MWD, and N-acetyl-glucosaminidase activity. Partial least squares path modeling (PLS-PM) indicated that the duration of smooth vetch cover modulated N2O emission by influencing soil moisture, enhancing aggregate stability, and optimizing the microbial threshold elemental carbon-to-phosphorus ratio (TER C∶P ratio). The synergistic effect of core driving factors explained 95.8% of the variation in N2O emission. Overall, extending the duration of smooth vetch cover can effectively suppress N2O emission by strengthening soil aggregate stability and optimizing TER C∶P ratio, providing a scientific basis for N2O mitigation in citrus orchards of the Three Gorges Reservoir Region.


Key words: Three Gorges Reservoir Region, duration gradient, N2O emission, smooth vetch cover, element threshold ratio