基于蜂胶介导合成过程中 pH 值变化的氧化铜纳米颗粒:结构、光学特性、紫外线阻隔能力和孔雀石绿光降解研究

IF 3.674 4区 工程技术 Q1 Engineering Applied Nanoscience Pub Date : 2024-03-10 DOI:10.1007/s13204-024-03035-0
Mohammad N. Murshed, Mansour S. Abdul Galil, Samir Osman Mohammed, Mohamed E. El Sayed, Mohyeddine Al‑qubati, Ebkar Abdo Ahmed Saif
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引用次数: 0

摘要

在第三世界国家,生物合成多用途纳米氧化铜颗粒是解决污染问题的关键,但通过内部结构控制其特性的研究仍然有限。这项研究利用蜂胶作为还原剂和封盖剂,采用一种无害生态、简单、廉价和经济的技术生成了纳米氧化铜颗粒(CONPs)。这种生物合成的 pH 值是变化的(6.4、7.8、9.2、10.4 和 11.7)。研究计算了生物合成的 CONP 样品的各种结构和光学参数,揭示了其随 pH 值的非线性变化,包括单胞、Cu-O 键长度、晶体尺寸、微应变、能带间隙、厄巴赫能等。目前的研究在有效阻挡紫外线方面取得了可喜的成果。通过计算 CONPs 样品的阻挡参数,发现 pH 值为 8 的样品在 A 区和 B 区的阻挡能力最好(分别为 90.31% 和 91.31%)。该研究有效考察了 CONPs 作为催化剂提高染料光降解的潜力。pH 值为 6.4 的样品降解率最高(94.15%)。利用结构和光学参数解释了 CONPs 样品的紫外线阻隔和光降解特性。
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The study of copper oxide nanoparticles based on the pH varying during propolis-mediated synthesis: structure, optical properties, UV-block ability, and malachite green photodegradation

In third-world countries, the biosynthesis of multi-purpose copper oxide nanoparticles is a crucial solution for pollution, but studies on controlling their properties through internal structure are still limited. This work generated copper oxide nanoparticles (CONPs) using bee propolis as a reducing and capping agent, employing an ecologically benign, simple, inexpensive, and economical technique. The pH of this biosynthesis was varied (6.4, 7.8, 9.2, 10.4, and 11.7). The study computed various structural and optical parameters of biosynthesized CONP samples, revealing nonlinear changes with pH, including unit cell, Cu–O bond length, crystal size, microstrain, energy band gap, Urbach energy, and more. The current research has shown promising results in blocking ultraviolet rays effectively. The blocking parameters were calculated for CONPs samples, and it was found that the pH 8 sample had the best blocking capacity at both regions A and B (90.31 and 91.31%, respectively). The study effectively investigated CONPs’ potential as a catalyst for increasing dye photodegradation. The pH 6.4 sample showed the highest degradation rate (94.15%). The UV-blocking and photodegradation properties of the CONPs samples were explained using the structural and optical parameters.

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来源期刊
Applied Nanoscience
Applied Nanoscience Materials Science-Materials Science (miscellaneous)
CiteScore
7.10
自引率
0.00%
发文量
430
期刊介绍: Applied Nanoscience is a hybrid journal that publishes original articles about state of the art nanoscience and the application of emerging nanotechnologies to areas fundamental to building technologically advanced and sustainable civilization, including areas as diverse as water science, advanced materials, energy, electronics, environmental science and medicine. The journal accepts original and review articles as well as book reviews for publication. All the manuscripts are single-blind peer-reviewed for scientific quality and acceptance.
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