科研速览 · Science Skim继续刷下去 · Keep skimming →
◆ Frontiers in plant science2026-01-01

Optimizing phosphate fertilizer rate and sources for enhancing yield and grain zinc of maize under saline conditions.

Wei Yan, Shuaibing Wu, Zhonghua Wang, Qi Maio, Yinshan Xie, Houhua Liu, Rixin Gao, Lingxiao Zhang, Xiao Sun, Yanfang Xue, Zhenling Cui

原始摘要(英文原文)· Original abstract
Crops grown on coastal saline-alkali soils in China often receive excessive phosphorus (P) fertilization to overcome low P availability. However, it often leads to reduced grain zinc (Zn) concentration-a critical micronutrient for human and animal health. The interactive effects of P application rates and fertilizer sources on maize (Zea mays L.) yield and grain Zn accumulation under saline stress remain unclear. This study aims to identify optimal P fertilizer rates and sources to reduce the P-Zn antagonism while sustaining high yield. A three-year field experiment was conducted to test five P rates (0, 13, 26, 39, and 78 kg P ha-1) and three P fertilizer sources including single superphosphate (SSP), monoammonium phosphate (MAP), and ammonium polyphosphate (APP). Measurements included maize yield, grain and straw concentrations of P and micronutrients, soil Olsen-P, DTPA-Zn. Linear-plateau regression and structural equation modeling were used to identify optimal P management. Results showed that a yield plateau of 9.14 Mg ha-1 was attained at an optimal P fertilizer rate of 24.1 kg P ha-1, which closely matched the treatment level of 26 kg P ha-1. At this rate, the three-year average yield was highest with SSP, intermediate with APP, and lowest with MAP. Compared to no P supply, increasing P application rates significantly reduced grain Zn concentrations by 13.1-26.4% and straw Zn concentrations by 27.9-47.2%, even though it increased Zn harvest index. Compared to APP, SSP and MAP resulted in 8.7% and 9.7% of increase in grain Zn concentration, respectively. Structural equation modeling revealed that aboveground biomass, grain yield, soil Olsen-P, and soil pH negatively affected grain Zn concentration. At the yield plateau, grain and straw Zn concentrations were 14.1 and 9.5 mg kg-1, respectively, with soil DTPA-Zn around 0.81 mg kg-1. These results suggest that applying SSP at 26 kg P ha-1 significantly improved maize yield compared with MAP, while also maintaining higher grain Zn concentration compared to APP. The optimizing P rates and sources and rates can partially mitigate P-Zn antagonism while sustaining high maize yields in the coastal saline soil.
读原文 · Read the paper ↗

AI 追问PRO

登录后使用 AI 追问

讨论区

登录后参与讨论

相关论文 · Related

Optimizing phosphate fertilizer rate and sources for enhancing yield and grain zinc of maize under saline conditions. — 科研速览 Science Skim