Department of Chemistry, University College of Science, Saifabad, Osmania University, Hyderabad, 500004, Telangana State, India.
Department of Chemistry, South campus, Telangana University, Nizamabad, 503322, Telangana State, India.
J Fluoresc. 2022 Nov;32(6):2363-2378. doi: 10.1007/s10895-022-03026-w. Epub 2022 Sep 30.
In recent days, the usage of biological and non-biological pollutants increased which poses a significant threat to environmental and biological systems. Therefore, the present aim is to develop effective methods to treat such pollutants by using highly stable and small-sized Schiff base ligand capped silver nanoparticles (AgNPs) with a face-centered cubic (fcc) crystalline structure and the size range is 5-10 nm. The potent role of the resulting synthesized AgNPs was found to be on multiple platforms such as catalyst, sensor, antioxidant, and antimicrobial disinfectant. The synthesized AgNPs were characterized through UV-vis spectroscopy, PL, FTIR, XRD, SEM, and TEM. The FTIR spectrum of AgNPs exhibited the interacted functional groups of Schiff base and size was estimated by XRD and TEM. AgNPs were able to catalytically degrade approximately 95% of methylene blue (MB), rhodamine B (RhB), and eosin Y (EY) dyes within 80 min of reaction time using NaBH. The fluorometric sensor studies of synthesized AgNPs showed selective sensing of the potentially hazardous Fe ion in water. As an antimicrobial agent, the AgNPs are effective against both Gram-positive and Gram-negative bacteria; as well as fungi, with the zones of clearance as approximately compatible with standard drugs. The AgNPs displayed a greater ability to scavenge free radicals, especially DPPH when compared with AgNPs and ascorbic acid. Thus, the results of this study validate the triple role of AgNPs derived via a simple synthesis as a catalyst, sensor, antioxidant, and antimicrobial agent for effective environmental remediation.
最近,生物和非生物污染物的使用增加,这对环境和生物系统构成了重大威胁。因此,目前的目标是开发有效的方法来处理这些污染物,使用高度稳定和尺寸小的席夫碱配体包覆的银纳米粒子(AgNPs),具有面心立方(fcc)晶体结构,尺寸范围为 5-10nm。结果表明,所合成的 AgNPs 在多个平台上具有作用,如催化剂、传感器、抗氧化剂和抗菌消毒剂。通过紫外可见光谱、PL、FTIR、XRD、SEM 和 TEM 对合成的 AgNPs 进行了表征。AgNPs 的 FTIR 光谱显示了席夫碱的相互作用官能团,通过 XRD 和 TEM 估算了尺寸。AgNPs 能够在 NaBH 的作用下在 80 分钟的反应时间内催化降解约 95%的亚甲基蓝(MB)、罗丹明 B(RhB)和曙红 Y(EY)染料。合成 AgNPs 的荧光传感器研究表明,它们能够选择性地感应水中潜在危险的 Fe 离子。作为一种抗菌剂,AgNPs 对革兰氏阳性和革兰氏阴性细菌以及真菌均有效,其清除区域与标准药物相当。AgNPs 显示出比 AgNPs 和抗坏血酸更强的清除自由基的能力,特别是 DPPH。因此,这项研究的结果验证了通过简单合成得到的 AgNPs 作为催化剂、传感器、抗氧化剂和抗菌剂的三重作用,可有效进行环境修复。