DOI: 10.3390/agriculture16161739 ISSN: 2077-0472

Smaller Nano-Silica Particles Promote Ammonium Dominance and Mitigate N2O Emissions in Flooded Tropical Paddy Soil

Xiaomeng Sun, Junjie Feng, Rui Zhang, Yu Zhang, Yunxing Wan, Tao Li, Siyi Xu, Mengru Kong, Yanzheng Wu, Lei Meng, Jinbo Zhang, Ahmed Salah Elrys

Silicon (Si)-based amendments can regulate soil nitrogen (N) cycling and reduce gaseous N losses, but the effect of nano-Si particle size on mineral N dynamics and nitrous oxide (N2O) emissions under flooded tropical paddy soil conditions remains unclear. This study aimed to elucidate how nano-Si particle size regulates mineral N dynamics and N2O emissions, with particular emphasis on whether smaller particles promote ammonium N (NH4+-N) dominance and more effectively mitigate N2O emissions than larger particles. A 30-day flooded incubation experiment was conducted using tropical paddy soil amended with 15 or 50 nm nano-Si particles, each applied at 67 mg kg−1 dry soil, alongside an unamended control. Mineral N dynamics, extracellular enzyme activities, N-cycling functional genes, and N2O emissions were evaluated. Compared with the control, 15 nm and 50 nm nano-Si significantly increased NH4+-N concentration by 16.4% and 5.25% while reducing nitrate N (NO3−-N) concentration by 40.8% and 23.0%, respectively. The NO3−-N/NH4+-N ratio decreased significantly by 49.8% and 22.1%, indicating a particle-size-dependent shift toward NH4+ dominance. The 15 nm treatment significantly enhanced β-N-acetylglucosaminidase and leucine aminopeptidase activities, supporting organic N turnover and NH4+-N accumulation. It also significantly reduced the abundance of the nitrite reductase gene nirS, involved in denitrification, whereas the N2O reductase gene nosZ, responsible for N2O reduction, showed no consistent treatment-specific response. Consistently, cumulative N2O emissions decreased significantly by 33.6% and 18.2% under 15 nm and 50 nm treatments, respectively. These results indicate that both nano-Si treatments significantly shifted mineral N dynamics toward NH4+-N dominance and reduced cumulative N2O emissions compared with the control. These responses were consistently stronger under the 15 nm treatment than under the 50 nm treatment, demonstrating that smaller nano-Si particles more effectively limit NO3−-N accumulation, promote NH4+-N retention, and mitigate N2O emissions in flooded tropical paddy soil. Nevertheless, direct measurements of N-transformation rates, comparisons with conventional Si sources, and field-scale validation are required before practical application.

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