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新型BiO纳米结构的微波辅助合成方法及其作为高性能纳米催化剂在制备亚苄基巴比妥酸衍生物中的应用。

Microwave-assisted synthetic method of novel BiO nanostructure and its application as a high-performance nano-catalyst in preparing benzylidene barbituric acid derivatives.

作者信息

Yahyazadehfar Mahdieh, Sheikhhosseini Enayatollah, Ahmadi Sayed Ali, Ghazanfari Dadkhoda

机构信息

Department of Chemistry, Kerman Branch, Islamic Azad University, Kerman, Iran.

出版信息

Front Chem. 2022 Oct 7;10:951229. doi: 10.3389/fchem.2022.951229. eCollection 2022.

Abstract

In this study, controllable and optimal microwave irradiation has been used to synthesize the novel nanostructures of BiO under environmental conditions. The final products had a thermal stability of 210°C, an average particle size distribution of 85 nm, and a surface area of 783 m/g. The high thermodynamic stability of BiO nanostructures was confirmed by TG and differential scanning calorimetry (DSC) analyses. The nanostructure nature of compounds, and most importantly, the use of an effective, cost-effective, and rapid synthesis route of microwave have created significant physiochemical properties in the BiO products. These unexpected properties have made the possibility of potential application of these products in various fields, especially in nano-catalyst applications. It is well-documented that, as Lewis acid, bismuth nano-catalyst exhibits a great catalytic activity for the green synthesis of some bio-active barbituric acid derivatives using precursors with electron-donating or electron-withdrawing nature in high yields (80%-98%). After incorporating this catalyst into the aqueous media, all the reactions were completed within 2-3 min at room temperature. The main advantages of this method are practical facility, the availability of starting materials, and low costs besides the catalyst reusability. Additionally, the catalyst synthesis process may be carried out in the aqueous media for a short period with medium to high yields. The obtained results have opened a new window for the development of a novel nano-catalyst with practical application.

摘要

在本研究中,可控且优化的微波辐射已被用于在环境条件下合成新型的BiO纳米结构。最终产物具有210°C的热稳定性、85nm的平均粒径分布以及783m²/g的表面积。通过热重分析(TG)和差示扫描量热法(DSC)分析证实了BiO纳米结构具有高的热稳定性。化合物的纳米结构特性,以及最重要的是,采用有效、经济高效且快速的微波合成路线,赋予了BiO产物显著的物理化学性质。这些意外的性质使得这些产物在各个领域,尤其是纳米催化剂应用中具有潜在应用的可能性。有充分的文献记载,作为路易斯酸,铋纳米催化剂对使用具有供电子或吸电子性质的前体高产率(80%-98%)绿色合成一些生物活性巴比妥酸衍生物表现出极大的催化活性。将该催化剂引入水介质后,所有反应在室温下2-3分钟内即可完成。该方法的主要优点除了催化剂可重复使用外,还包括实验设备实用、起始原料易得且成本低。此外,催化剂合成过程可在水介质中短时间内以中等到高的产率进行。所获得的结果为开发具有实际应用价值的新型纳米催化剂打开了一扇新的窗口。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9b0a/9585179/8e330a329462/fchem-10-951229-g001.jpg

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