Zamani-Hargalani Fariba, Shafaei Faezeh
Department of Natural Resources and Environment, Science and Research Branch, Islamic Azad University, Tehran, Iran.
Department of Chemistry, East Tehran Branch, Islamic Azad University, Tehran, Iran.
Comb Chem High Throughput Screen. 2024 Oct 7. doi: 10.2174/0113862073298128240918110357.
In this research, multicomponent reactions of cefixime, isothiocyanates, and alkyl bromides were carried out for the synthesis of new iminothiazole derivatives with high yields in water as the solvent at room temperature in the presence of catalytic amounts of Cu@KF/CP NPs as catalysts. Also, the ability of Cu@KF/Clinoptilolite nanoparticles (NPs) to adsorb and remove 4-NP and cefixime from water was investigated. The Cu@KF/Clinoptilolite nanoparticles were synthesized by employing a water extract of Petasites hybridus rhizomes.
For this experiment, all of the components obtained from Fluka and Merck were subjected to further purification. The antibiotic used in this investigation, cefixime, was obtained from a pharmaceutical facility situated in Sari, Mazandaran, Iran. The antibiotic factory is located in Sari City, Iran. All solutions were prepared using distilled water. The shape of Cu@KF/CP nanoparticles was analyzed using images obtained from a Holland Philips XL30 scanning electron microscope. An analysis was performed on the crystalline structure of Cu@KF/CP nanoparticles (NPs), and a room temperature X-ray diffraction (XRD) examination was carried out utilizing a Holland Philips Xpert X-ray powder diffractometer. The X-ray diffraction (XRD) examination was conducted using CuK radiation, which has a wavelength of 0.15406 nm. The analysis covered a 2ε angle range from 20 to 80°. The nanostructures that were produced were chemically analyzed using X-ray energy dispersive spectroscopy (EDS) with an S3700N equipment. The morphology and dimensions of Cu@KF/CP nanoparticles were characterized using a Philips EM208 transmission electron microscope operated at an acceleration voltage of 90 kV.
The primary objective of this study was to develop a sustainable approach for producing new iminothiazole derivatives 4. This was achieved using a highly efficient three-component reaction combining cefixime 1, isothiocyanates 2, and alkyl bromides 3. The reaction was carried out in water at ambient temperature, using Cu@KF/CP NPs as a highly effective catalyst, leading to excellent yields. Moreover, the study findings showed that the synthesized compounds demonstrated a significant antioxidant activity compared to conventional antioxidants. The antibacterial efficacy of the synthesized compounds was evaluated against both Gram-positive and Gram-negative bacteria. Furthermore, Cu@KF/CP nanoparticles were utilized to adsorb CFX and 4-NP from water-based solutions.
This study showcases the effective synthesis of innovative iminothiazole derivatives through the use of multicomponent reactions, involving the combination of cefixime, isothiocyanates, and alkyl bromides. The reactions were conducted in a water-based solvent. The reactions were carried out at room temperature, utilizing Cu@KF/CP NPs as catalysts. The Cu@KF/CP nanoparticles, a newly developed heterogeneous nanocatalyst, were synthesized and evaluated utilizing X-ray diffraction (XRD), fieldemission scanning electron microscopy (FESEM), energy-dispersive X-ray spectroscopy (EDX), and transmission electron microscopy (TEM) research techniques. Cu@KF/CP nanoparticles are utilized to adsorb CFX and 4-NP from water-based solutions. The objects were manufactured using a straightforward and uncomplicated approach. The BET surface area of Cu@KF/CP NPs was measured to be 201.8 m2/g. The experimental equilibrium data was evaluated by applying the isotherms of the Langmuir, Freundlich, Dubinin-Radushkevich, and Redlich-Peterson models. Additionally, we examined the catalytic efficiency of Cu@KF/CP nanoparticles (NPs) in reducing various colors in water.
本研究中,在催化量的Cu@KF/CP NPs作为催化剂的情况下,于室温下以水为溶剂进行头孢克肟、异硫氰酸酯和烷基溴的多组分反应,以高产率合成新型亚氨基噻唑衍生物。此外,还研究了Cu@KF/斜发沸石纳米颗粒(NPs)从水中吸附和去除4-硝基苯酚(4-NP)和头孢克肟的能力。Cu@KF/斜发沸石纳米颗粒是采用蜂斗菜根茎的水提取物合成的。
对于本实验,从Fluka和默克公司获得的所有组分都进行了进一步纯化。本研究中使用的抗生素头孢克肟是从位于伊朗马赞德兰省萨里的一家制药厂获得的。抗生素工厂位于伊朗萨里市。所有溶液均用蒸馏水配制。使用从荷兰飞利浦XL30扫描电子显微镜获得的图像分析Cu@KF/CP纳米颗粒的形状。对Cu@KF/CP纳米颗粒(NPs)的晶体结构进行了分析,并利用荷兰飞利浦Xpert X射线粉末衍射仪进行了室温X射线衍射(XRD)检查。X射线衍射(XRD)检查使用波长为0.15406 nm的CuK辐射进行。分析覆盖2θ角范围为20°至80°。使用配备S3700N设备的X射线能量色散光谱(EDS)对所产生的纳米结构进行化学分析。使用在90 kV加速电压下运行的飞利浦EM208透射电子显微镜对Cu@KF/CP纳米颗粒的形态和尺寸进行表征。
本研究的主要目标是开发一种可持续的方法来生产新型亚氨基噻唑衍生物4。这是通过将头孢克肟1、异硫氰酸酯2和烷基溴3进行高效的三组分反应实现的。该反应在室温下于水中进行,使用Cu@KF/CP NPs作为高效催化剂,产率优异。此外,研究结果表明,与传统抗氧化剂相比,合成的化合物表现出显著的抗氧化活性。评估了合成化合物对革兰氏阳性菌和革兰氏阴性菌的抗菌效果。此外,Cu@KF/CP纳米颗粒用于从水基溶液中吸附头孢克肟(CFX)和4-NP。
本研究展示了通过使用多组分反应有效合成创新型亚氨基噻唑衍生物,该反应涉及头孢克肟、异硫氰酸酯和烷基溴的组合。反应在水基溶剂中进行。反应在室温下进行,使用Cu@KF/CP NPs作为催化剂。利用X射线衍射(XRD)、场发射扫描电子显微镜(FESEM)、能量色散X射线光谱(EDX)和透射电子显微镜(TEM)研究技术合成并评估了新开发的多相纳米催化剂Cu@KF/CP纳米颗粒。Cu@KF/CP纳米颗粒用于从水基溶液中吸附CFX和4-NP。这些物质采用简单直接的方法制备。测得Cu@KF/CP NPs的BET表面积为201.8 m²/g。通过应用朗缪尔、弗伦德利希、杜比宁-拉杜舍维奇和雷德利希-彼得森模型的等温线对实验平衡数据进行了评估。此外,我们研究了Cu@KF/CP纳米颗粒(NPs)在还原水中各种颜色方面的催化效率。