Subhan Md Abdus, Chandra Saha Pallab, Hossain Md Anwar, Alam M M, Asiri Abdullah M, Rahman Mohammed M, Al-Mamun Mohammad, Rifat Tanjila Parvin, Raihan Topu, Azad A K
Department of Chemistry, School of Physical Sciences, Shah Jalal University of Science and Technology Sylhet-3114 Bangladesh
Department of Chemical Engineering and Polymer Science, Shah Jalal University of Science and Technology Sylhet 3100 Bangladesh.
RSC Adv. 2020 Aug 19;10(51):30603-30619. doi: 10.1039/d0ra05008c. eCollection 2020 Aug 17.
In this work, a tri-metal based nanocomposite was synthesized and characterized. A detailed investigation of the photocatalytic dye degradation efficiency of the nanocomposite under visible light showed promising results in a wide pH range, both acidic and basic medium. Studies on anti-bacterial activity against seven pathogenic bacteria, including both Gram positive and Gram negative species, were conducted in the presence and absence of light and compared with the standard antibiotic gentamicin. The minimum inhibitory concentration (MIC) values of Ag·NiMnO against multidrug-resistant (MDR) pathogens ranged from 0.008 to 0.65 μg μL, while the minimum bactericidal concentration (MBC) was found to be 0.0016 μg μL. The nanomaterial, Ag·NiMnO was deposited onto the surface of a glassy carbon electrode (GCE; 0.0316 cm) as a thin film to fabricate the chemical sensor probe. The proposed sensor showed linear current ( concentration) response to -THyd (-tolyl hydrazine) from 1.0 pM to 0.01 mM, which is denoted as the linear dynamic range (LDR). The estimated sensitivity and detection limit of the -THyd sensor were found to be 47.275 μA μM cm and 0.97 ± 0.05 pM, respectively. As a potential sensor, it is reliable due to its good reproducibility, rapid response, higher sensitivity, working stability for long duration and efficiency in the analysis of real environmental samples.
在这项工作中,合成并表征了一种三金属基纳米复合材料。对该纳米复合材料在可见光下的光催化染料降解效率进行了详细研究,结果表明在较宽的pH范围(酸性和碱性介质)内都有良好的效果。研究了该纳米复合材料在有光和无光条件下对包括革兰氏阳性和革兰氏阴性菌在内的七种病原菌的抗菌活性,并与标准抗生素庆大霉素进行了比较。Ag·NiMnO对多重耐药(MDR)病原体的最低抑菌浓度(MIC)值范围为0.008至0.65μg/μL,而最低杀菌浓度(MBC)为0.0016μg/μL。将纳米材料Ag·NiMnO作为薄膜沉积在玻碳电极(GCE;0.0316 cm)表面,以制备化学传感器探针。所提出的传感器对-THyd(对甲苯肼)的线性电流(浓度)响应范围为1.0 pM至0.01 mM,这被称为线性动态范围(LDR)。-THyd传感器的估计灵敏度和检测限分别为47.275μA/μM·cm和0.97±0.05 pM。作为一种潜在的传感器它具有良好的重现性、快速响应、更高的灵敏度、长时间的工作稳定性以及在实际环境样品分析中的效率,因此是可靠的。