利用阿月浑子树皮提取物作为可回收催化剂,绿色合成 Ag/RGO 纳米杂化物,用于还原有毒硝基芳香族化合物和偶氮染料

IF 2.7 4区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY
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引用次数: 0

摘要

本研究首次报道了利用Terminalia Arjuna树皮提取物绿色合成银纳米粒子(Ag)装饰的还原氧化石墨烯(RGO)纳米杂化物。合成的 Ag/RGO 纳米杂化物被用作一种高活性、可回收的绿色催化剂,用于还原有害的硝基芳烃(对硝基苯酚和对硝基苯胺)和偶氮染料(亚甲基蓝、甲基橙和刚果红),效果显著。在本研究中,硝基芳香族化合物和偶氮染料的催化还原遵循假单分子动力学。值得注意的是,Ag/RGO 纳米杂化物在五次循环运行之前都表现出极佳的重复使用性和稳定性。本研究为人们日益关注的低成本、对环境无害的纳米材料合成方法提供了新的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Green synthesis of Ag/RGO nanohybrid using Terminalia Arjuna bark extract as a recyclable catalyst for the reduction of toxic nitroaromatics and azo dyes

Green synthesis of Ag/RGO nanohybrid using Terminalia Arjuna bark extract as a recyclable catalyst for the reduction of toxic nitroaromatics and azo dyes

In this study, the green synthesis of silver nanoparticle (Ag) decorated reduced graphene oxide (RGO) nanohybrid using Terminalia Arjuna bark extract was reported for the first time. As-synthesized Ag/RGO nanohybrid was used as a highly active and recyclable green catalyst for the reduction of harmful nitroaromatics (p-nitrophenol and p-nitroaniline) and azo dyes (methylene blue, methyl orange and Congo red) with significant efficiency. The catalytic reduction of the nitroaromatics and azo dyes followed pseudo-unimolecular kinetics in the present study. Notably, the Ag/RGO nanohybrid exhibited excellent reusability and stability till five recycle runs. The present study can provide new insights into the growing interest of low-cost and environmentally benign methods for nanomaterial synthesis towards environmental remediation applications.

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来源期刊
Materials Letters
Materials Letters 工程技术-材料科学:综合
CiteScore
5.60
自引率
3.30%
发文量
1948
审稿时长
50 days
期刊介绍: Materials Letters has an open access mirror journal Materials Letters: X, sharing the same aims and scope, editorial team, submission system and rigorous peer review. Materials Letters is dedicated to publishing novel, cutting edge reports of broad interest to the materials community. The journal provides a forum for materials scientists and engineers, physicists, and chemists to rapidly communicate on the most important topics in the field of materials. Contributions include, but are not limited to, a variety of topics such as: • Materials - Metals and alloys, amorphous solids, ceramics, composites, polymers, semiconductors • Applications - Structural, opto-electronic, magnetic, medical, MEMS, sensors, smart • Characterization - Analytical, microscopy, scanning probes, nanoscopic, optical, electrical, magnetic, acoustic, spectroscopic, diffraction • Novel Materials - Micro and nanostructures (nanowires, nanotubes, nanoparticles), nanocomposites, thin films, superlattices, quantum dots. • Processing - Crystal growth, thin film processing, sol-gel processing, mechanical processing, assembly, nanocrystalline processing. • Properties - Mechanical, magnetic, optical, electrical, ferroelectric, thermal, interfacial, transport, thermodynamic • Synthesis - Quenching, solid state, solidification, solution synthesis, vapor deposition, high pressure, explosive
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