利用巴鲁(Dipteryx alata)内果皮提取物绿色合成铁纳米颗粒,通过异相芬顿过程高效去除水中的罗丹明 B 和咖啡因

Cassiano Ricardo Reinehr Corrêa, A. B. De Siqueira, Paulo Renato Matos Lopes, J. A. Ambrósio, A. R. Simioni, L. D. de Vasconcelos, Eduardo Beraldo de Morais
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引用次数: 0

摘要

本研究首次利用巴鲁果(Dipteryx alata)内果皮的水提取物合成了铁纳米粒子(FeNPs)。通过扫描电子显微镜和动态光散射进行表征后发现,铁纳米粒子呈球形,平均直径为 419.2 纳米。傅立叶变换红外光谱法用于鉴定巴鲁果提取物中的植物化学物质。这些植物化学物质既是还原剂,又是稳定剂。X 射线衍射证实了 FeNPs 的无定形性质。研究了 FeNPs 对罗丹明 B(RhB)和咖啡因降解的芬顿催化效率。评估了 pH 值、H2O2 用量、纳米粒子浓度和温度等关键参数对降解过程的影响。在 pH 值为 3.0、FeNPs 含量为 1.0 g L-1、H2O2 含量为 1%、温度为 45 ℃ 的条件下,RhB 和咖啡因的降解率分别达到 99.14% 和 92.01%。咖啡因的催化反应动力学遵循伪一阶模型,而 RhB 的催化反应动力学遵循伪二阶模型。对 Cucumis sativus 的植物毒性研究证实了 RhB 和咖啡因降解产物的无毒性。这些发现凸显了从巴鲁果皮提取物中合成的 FeNPs 作为催化剂去除有机污染物的潜力。这表明在环境修复和相关领域的应用前景广阔。
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Green synthesis of iron nanoparticles from the baru (Dipteryx alata) endocarp extract for the efficient removal of rhodamine B and caffeine from water through the heterogeneous Fenton process
This study presents the first-time synthesis of iron nanoparticles (FeNPs) using an aqueous extract from the baru fruit endocarp (Dipteryx alata). Characterization through scanning electron microscopy and dynamic light scattering revealed spherical shapes with an average diameter of 419.2 nm. Fourier transform infrared spectroscopy was used to identify phytochemicals in the baru fruit extract. These phytochemicals act as both reducing and stabilizing agents. X-ray diffraction confirmed the amorphous nature of the FeNPs. The Fenton-like catalytic efficiency of FeNPs was investigated for the degradation of rhodamine B (RhB) and caffeine. The impact of crucial parameters such as pH, H2O2 dosage, nanoparticle concentration, and temperature on the degradation process was assessed. At pH 3.0, with 1.0 g L−1 of FeNPs, 1% H2O2, and 45 °C, RhB and caffeine degradation reached 99.14 and 92.01%, respectively. The catalytic reaction kinetics followed a pseudo-first-order model for caffeine and a pseudo-second-order model for RhB. Phytotoxicity studies on Cucumis sativus confirmed the non-toxic nature of the degraded products of RhB and caffeine. These findings highlight the potential of FeNPs, synthesized from the baru endocarp extract, as a catalyst for removing organic pollutants. This suggests promising applications in environmental remediation and related fields.
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