Department of Phytochemistry, Medicinal Plants and Drugs Research Institute, Shahid Beheshti University, Evin, Tehran, Iran.
Department of Medicinal Chemistry, Faculty of Pharmacy, Tehran University of Medical Sciences, Tehran, Iran.
Ultrason Sonochem. 2022 Jun;87:106037. doi: 10.1016/j.ultsonch.2022.106037. Epub 2022 May 18.
There are many problems associated with the synthesis of nanocatalysts and catalytic reduction of nitroarenes - e.g., high temperatures, costs, long reaction/synthesis process times, the toxicity of chemicals/solvents, undesirable byproducts, the toxic/harmful wastes, low efficiency/selectivity, etc. This study represents an attempt to overcome these challenges. To this purpose, biocompatible and highly efficient AgSe quantum dots (QDs) catalysts with antibacterial activity were synthesized in a very rapid (30 sec, rt), simple, inexpensive, sustainable/green, and one-pot strategy in water using ultrasonic irradiation. Characterization of the QDs was performed using different techniques. UV-Vis absorption and fluorescence spectroscopic studies showed an absorption peak at 480-550 nm and a maximum emission peak around 675 nm, which confirmed the successful synthesis of AgSe QDs via the applied biosynthetic method. Subsequently, catalytic reduction of nitroarenes by them was carried out under safe conditions (HO, rt, air atmosphere) in ∼ 60 min with excellent yield and selectivity (>99%). Their catalytic activity in the reduction of various toxic nitroarenes to aminoarenes under green conditions was investigated. Thus, a rapid and safe ultrasound-based method was employed to prepare stable and green AgSe QDs phyto-catalysts with unique properties, including exquisite monodispersity in shape (orthorhombic) and size (∼7 nm), air-stability, and good purity and crystallinity. Importantly, instead of various toxic chemicals, the plant extract obtained by rapid ultrasonic method (10 min, rt) was used as natural reducing, capping, and stabilizing agents. Moreover, antibacterial assays results showed that AgSe-QDs catalysts at low concentrations (ppm) have high activity against all tested bacteria, especially E. coli (MIC:31.25 ppm, MBC:125 ppm) which were significantly different from those of Fig extract (MIC = MBC:500 ppm). The data reflect the role of these bio-synthesized AgSe-QDs catalysts in the development of versatile and very safe catalysts with biomedical properties.
纳米催化剂的合成和硝基本的催化还原存在许多问题,例如高温、成本、反应/合成时间长、化学品/溶剂的毒性、不理想的副产物、有毒/有害废物、效率/选择性低等。本研究旨在克服这些挑战。为此,采用超声辐射法,在水介质中,通过一种非常快速(30 秒,室温)、简单、廉价、可持续/绿色、一锅法,合成了具有抗菌活性的生物相容性和高效的 AgSe 量子点(QD)催化剂。采用不同的技术对 QD 进行了表征。紫外-可见吸收和荧光光谱研究表明,在 480-550nm 处有一个吸收峰,在 675nm 左右有一个最大发射峰,这证实了通过所应用的生物合成方法成功合成了 AgSe QD。随后,在安全条件(HO,室温,空气气氛)下,在约 60 分钟内,通过它们对硝基本进行催化还原,产率和选择性均>99%。在绿色条件下,研究了它们对各种有毒硝基本还原为氨基本的催化活性。因此,采用一种快速、安全的基于超声的方法,制备了具有独特性能的稳定、绿色的 AgSe QD 植物催化剂,这些性能包括形状(正交)和尺寸(~7nm)的精细单分散性、空气稳定性、良好的纯度和结晶度。重要的是,与各种有毒化学品不同,通过快速超声法(10 分钟,室温)获得的植物提取物被用作天然的还原、封端和稳定剂。此外,抗菌试验结果表明,AgSe-QD 催化剂在低浓度(ppm)时对所有测试的细菌都具有高活性,特别是大肠杆菌(MIC:31.25ppm,MBC:125ppm),与 Fig 提取物(MIC=MBC:500ppm)有显著差异。这些数据反映了这些生物合成的 AgSe-QD 催化剂在开发具有生物医学特性的多功能和非常安全的催化剂方面的作用。