Sugarcane Bagasse and Nano-zeolite based Slow Release Fe Fertiliser Hydrogel: Its Synthesis and Characterization

C. Bharaani Sri, R. Shanmugasundaram, S. Marimuthu, T. Chitdeshwari, A. Senthil, T. Kalaiselvi
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Abstract

Background: Iron (Fe) is an essential micronutrient that plays numerous vital functions in crop growth and development. This study was carried out to synthesise and characterize sugarcane bagasse and nano-zeolite based slow release Fe fertiliser hydrogel. Methods: At the Tamil Nadu Agricultural University in Coimbatore, a laboratory experiment was carried out to synthesize and characterise a slow release Fe fertiliser (SR Fe) hydrogel encompassing sugarcane bagasse and nano-zeolite. A slow-release Fe fertiliser was successfully created using the graft co-polymerization method. The chemical composition and surface morphology of the synthesised slow-release Fe fertiliser were characterised using scanning electron microscopy (SEM), FTIR, and thermogravimetric analysis (TGA). Result: SEM results show the evenly distributed pore space, and EDX data show that the superabsorbent nanocomposite was successfully loaded with fertiliser Fe. The grafting of acrylate-based monomers onto starch molecules, the incorporation of nano zeolite into the polymeric matrix, and the loading of Fe nutrition into the hydrogel network were all effective, according to the results of the FTIR analysis. The superabsorbent nanocomposite's temperature stability was demonstrated by the TGA research findings. The current study's findings demonstrated that the SR Fe fertiliser was successfully synthesised and may be regarded as the most promising option for slowly delivering nutrients to crops in order to meet their nutrient needs and improve nutrient use efficiency.
甘蔗渣纳米沸石缓释铁肥料水凝胶的合成与表征
背景:铁(Fe)是一种必需的微量元素,在作物生长发育中起着许多重要作用。研究了甘蔗渣纳米沸石缓释铁肥料水凝胶的合成及性能。方法:在哥印拜托的泰米尔纳德邦农业大学,进行了一项实验室实验,合成并表征了一种包含甘蔗甘蔗渣和纳米沸石的缓释铁肥料(SR Fe)水凝胶。采用接枝共聚合法制备了一种缓释铁肥料。利用扫描电镜(SEM)、红外光谱(FTIR)和热重分析(TGA)对合成的缓释铁肥料的化学成分和表面形貌进行了表征。结果:SEM结果显示孔空间分布均匀,EDX数据显示高吸水性纳米复合材料成功装载了肥料Fe。根据FTIR分析结果,丙烯酸酯基单体在淀粉分子上的接枝,纳米沸石在聚合物基体中的掺入,以及铁营养物质在水凝胶网络中的负载都是有效的。热重分析结果证实了高吸水性纳米复合材料的温度稳定性。目前的研究结果表明,锶铁肥料是成功合成的,可能被视为最有希望的选择,可以缓慢地向作物输送养分,以满足其养分需求并提高养分利用效率。
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