利用环境友好方法评估硒纳米粒子降解无公害纺织染料的潜在能力

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引用次数: 0

摘要

本研究采用水热法,利用柚木叶提取物,以绿色方法合成了硒纳米粒子(Se NPs)。X 射线衍射(XRD)分析显示,合成的硒纳米粒子具有高度结晶的三方晶体结构,表明合成的硒纳米粒子性质明确。粒度分析(PSA)结果表明平均粒度为 45 纳米,进一步证实了颗粒的纳米尺寸特性。场发射扫描电子显微镜(FESEM)结果显示出六边形紧密堆积结构,为了解硒 NPs 的形态提供了宝贵的信息。利用陶氏图法进行的光带隙计算得出的值为 1.85 eV,突出了合成硒 NPs 的半导体性质。研究了这些纳米粒子在阳光照射下对各种阳离子和阴离子染料(包括茜素红、水晶紫、活性黑和罗丹明 B)的光催化应用。值得注意的是,由于表面静电荷的相互作用,Se NPs 的降解能力增强,特别是对阳离子染料。在所有染料中,罗丹明 B 的降解效率最高,达到 96%。此外,还通过连续五个光催化降解周期对 Se NPs 的稳定性进行了评估。值得注意的是,纳米粒子保持了稳定性,降解效率(5 个周期后)仅有微小损失,这肯定了它们作为稳定高效的纳米光催化剂在环境修复应用中的潜力。这项综合研究强调了绿色合成硒纳米粒子在推进可持续和有效光催化过程中的重要意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Evaluating the potential capability of Selenium nanoparticles on degradation of hazardess textile dye using environmental friendly approach
This study synthesizes selenium nanoparticles (Se NPs) using a green approach, utilizing Tectona grandis leaf extract in a hydrothermal method. The X-ray diffraction (XRD) analysis provided highly crystalline particles with a trigonal crystal structure, indicative of the well-defined nature of the synthesized Se NPs. Particle size analysis (PSA) results demonstrated a average particle size of 45 nm, further supporting the nano-sized characteristics of the particles. Field emission scanning electron microscopy (FESEM) results exhibited a hexagonal close-packed structure, providing valuable insights into the morphology of the Se NPs. Optical band gap calculations using the Tauc plot method yielded a value of 1.85 eV, highlighting the semiconductor nature of the synthesized Se NPs. The photocatalytic application of these nanoparticles was investigated against various cationic and anionic dyes, including Alizarin Red, Crystal Violet, Reactive Black, and Rhodamine B, under sunlight irradiation. Notably, the Se NPs demonstrated enhanced degradation, particularly for cationic dyes, attributed to electrostatic surface charge interactions. Rhodamine B exhibited the highest degradation efficiency among the dyes, reaching 96%. Furthermore, the stability of the Se NPs was evaluated through five consecutive cycles of photocatalytic degradation. Remarkably, the nanoparticles maintained stability, with only a marginal loss in degradation efficiency (after 5 cycles), affirming their potential as a stable and efficient nano photocatalyst for environmental remediation applications. This comprehensive investigation underscores the significance of green-synthesized Se NPs in advancing sustainable and effective photocatalytic processes.
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