Rice rhizospheric effects and mechanism on soil cadmium bioavailability during silicon application

根际 生物利用度 化学 开枪 土壤水分 农学 环境化学 大块土 生物 环境科学 土壤科学 细菌 遗传学 生物信息学 有机化学
作者
Yi Yang,Hua Peng,Kai Deng,Yu Shi,Wei Wei,Saihua Liu,Changjun Li,Jian Zhu,Yanjiao Dai,Min Song,Xionghui Ji
出处
期刊:Science of The Total Environment [Elsevier BV]
卷期号:930: 172702-172702 被引量:9
标识
DOI:10.1016/j.scitotenv.2024.172702
摘要

Exogenous Si mitigates the mobility and bioavailability of Cd in the soil, thereby alleviating its phytotoxicity. This study focused on specific Si-induced immobilisation effects within the rhizosphere (S1), near-rhizosphere (S2), and far-rhizosphere (S3) zones. Based on the rhizobox experiment, we found that applying Si significantly elevated soil pH, and the variation amplitudes in the S3 soil exceeded those in the S1 and S2 soils. Si-induced changes in the rhizosphere also included enhanced dissolved organic carbon and diminished soil Eh, particularly in the Si400 treatment. Meanwhile, the introduction of Si greatly enhanced the Fe2+ and Mn2+ concentrations in the S1 soil, but reduced them in the S2 soil. The rhizosphere effect of Si which enriched Fe2+ and Mn2+ subsequently promoted the formation of Fe and Mn oxides/hydro-oxides near the rice roots. Consequently, the addition of Si significantly reduced the available Cd concentrations in S1, surpassing the reductions in S2 and S3. Moreover, Si-treated rice exhibited increased Fe plaque generation and fixation on soil Cd, resulting in decreased Cd concentrations in rice tissues, accompanied by reduced Cd translocation from roots to shoots and shoots to grains. Structural equation modelling further highlighted that Si is essential in Cd availability in S1 and Fe plaque development, ultimately mitigating Cd accumulation in rice. Si-treated rice also exhibited higher biomass and grain yield than those of control groups. These findings provide valuable insights into Si-based strategies for addressing the Cd contamination of agricultural soils.
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