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硫化锌纳米粒子(ZnS NPs)中锌的持续释放放大了土壤中锌的生物可利用性:吸附动力学和溶解动力学。

Sustained release of Zn from zinc sulfide nanoparticles (ZnS NPs) amplified the bioaccessibility of Zn in soil: Adsorption dynamics and dissolution kinetics.

机构信息

Department of Chemistry, Punjab Agricultural University, Ludhiana, Punjab, 141004, India.

Department of Soil Science, Punjab Agricultural University, Ludhiana, Punjab, 141004, India.

出版信息

Environ Res. 2024 Jun 15;251(Pt 1):118624. doi: 10.1016/j.envres.2024.118624. Epub 2024 Mar 5.

DOI:10.1016/j.envres.2024.118624
PMID:38447602
Abstract

Controlled-release micronutrient supplementation to provide better bioavailable zinc (Zn) under alkaline soil conditions is a concept of commercial pertinence for sustainable agriculture. High pH stable nano-scaled ZnS is the material under study in the present investigation where the adsorption dynamics and dissolution kinetics of sono-chemically synthesized zinc sulfide nanoparticles (ZnS NPs) were evaluated in comparison to ZnSO in Lufa 2.2 soil for supplementation of Zn. The mechanism of adsorption of ZnS NPs and ZnSO onto Lufa 2.2 soil was well explained by fitting into the Freundlich adsorption model and pseudo-second order equation. ZnS NPs reflected the stronger ability to get adsorbed on the Lufa 2.2 soil as compared to metal ions, due to higher surface reactivity of NPs and higher K value (0.557) than ZnSO (0.463). Time relevant enhancement in extractability of Zn from ZnS NPs amended soil and diminution in extractability of Zn from ZnSO spiked soil was observed in bioavailability studies. The increased labile pool of Zn from ZnS NPs amended soil over time was due to their slow dissolution in soil and could be adjusted to consider as "sustained released ZnS NPs". Dissolution of ZnS nanoparticles (NPs) in Lufa 2.2 soil adhered to the first-order extraction model, exhibiting extended half-lives of 27.72 days (low dose) and 28.87 days (high dose). This supported prolonged stability, increased reactivity, and reduced ecological risk compared to conventional Zn salt fertilizers, promoting enhanced crop productivity.

摘要

在碱性土壤条件下,控释微量营养素补充剂可提供更好的生物可利用锌(Zn),这是可持续农业具有商业相关性的概念。高 pH 值稳定的纳米级 ZnS 是本研究中研究的材料,本研究评估了超声化学合成的硫化锌纳米颗粒(ZnS NPs)在卢法 2.2 土壤中的吸附动力学和溶解动力学,以补充 Zn。ZnS NPs 和 ZnSO 在卢法 2.2 土壤中的吸附机制通过拟合 Freundlich 吸附模型和拟二级方程得到了很好的解释。与金属离子相比,ZnS NPs 对卢法 2.2 土壤的吸附能力更强,这是由于 NPs 的表面反应性更高,K 值(0.557)高于 ZnSO(0.463)。在生物有效性研究中,观察到从添加 ZnS NPs 的土壤中提取 Zn 的可提取性随时间相关增强,而从添加 ZnSO 的土壤中提取 Zn 的可提取性降低。随着时间的推移,添加 ZnS NPs 的土壤中 Zn 的可利用性增加,这是由于它们在土壤中的缓慢溶解,可以将其调整为“持续释放 ZnS NPs”。卢法 2.2 土壤中 ZnS 纳米颗粒(NPs)的溶解符合一级提取模型,表现出 27.72 天(低剂量)和 28.87 天(高剂量)的延长半衰期。与传统 Zn 盐肥料相比,这支持了更长的稳定性、更高的反应性和降低的生态风险,从而促进了作物生产力的提高。

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