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Physiological and anti-oxidative response of biologically and chemically synthesized iron oxide: Zea mays a case study

机译:生物学和化学合成氧化铁的生理和抗氧化反应:Zea可能是一个案例研究

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摘要

The synthesis methodology, particle size and shape, dose optimization, and toxicity studies of nano-fertilizers are vital prior to their field application. This study investigates the comparative response of chemically synthesized and biologically synthesized iron oxide nanorods (NRs) using along with bulk FeCl on summer maize ( ). It is found that FeCl salt and chemically synthesized iron oxides NRs caused growth retardation and impaired plant physiological and anti-oxidative activities at a concentration higher than 25 mg/L due to toxicity by over accumulation. While iron released form biologically synthesized NRs have shown significantly positive results even at 50 mg/L due to their low toxicity, an improved leaf area (13%), number of leaves per plant (26%), total chlorophyll content (80%) and nitrate content (6%) with biologically synthesized NRs are obtained. Moreover, the plant anti-oxidative activity also increased on treatment with biologically synthesized NRs because of their ability to form a complex with metal ions. These findings suggest that biologically synthesized iron oxides NRs are an efficient iron source and can last for a long time. Thus, proving that nanofertilizer are required to have specific surface chemistry to release the nutrient in an appropriate concentration for better plant growth.
机译:合成方法,颗粒尺寸和形状,剂量优化和纳米肥料的毒性研究在其现场应用之前至关重要。本研究研究了在夏季玉米()上使用散装FECL的化学合成和生物合成的氧化铁纳米棒(NRS)的比较响应。发现FECL盐和化学合成的氧化铁NRS由于毒性通过过度积累而导致浓度高于25mg / L的植物生理和抗氧化活性。虽然铁释放形式的生物合成的NRS由于它们的低毒性,改善的叶片面积(13%),每株植物(26%),叶绿素含量(80%)(80%)获得具有生物合成的NRS的硝酸盐含量(6%)。此外,由于其与金属离子形成复合物的能力,植物抗氧化活性也增加了具有生物合成的NRS的处理。这些发现表明,生物合成的氧化铁NRS是一种有效的铁源,并且可以持续很长时间。因此,证明纳米通化器需要具有特异性表面化学,以在适当的浓度下释放营养物以进行更好的植物生长。

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