Patel Bhakti, Choudhary Nisha, Dudhagara Dushyant, Shahid Mudassar, Syed Rabbani, Yadav Virendra Kumar, Sahoo Dipak Kumar, Patel Ashish
Department of Life Sciences, Hemchandracharya North Gujarat University Patan 384265 Gujarat India
Department of Life Sciences, Bhakta Kavi Narsinh Mehta University Junagadh Gujarat India
RSC Adv. 2025 Jan 17;15(3):1565-1575. doi: 10.1039/d4ra07541b. eCollection 2025 Jan 16.
The current investigation focuses on synthesizing Ag-Fe bimetallic nanoparticles (AgFe-BMNPs) using cell-free filtrates of the as a novel fungal reducing agent. The optical, morphological, and surface properties of these fungus-fabricated AgFe-BMNPs and their monometallic counterparts (AgNPs and FeNPs) were analyzed using sophisticated nanotechnology instruments. The UV-visible spectrum showed peaks at 231 nm and 415 nm for BMNPs and 450 nm and 386 nm for AgNPs and FeNPs, respectively. XRD diffractograms revealed crystallographic peaks at 32.96°, 35.32°, and 49.32° for AgFe-BMNPs with crystalline size of 10.68 nm. FTIR spectrum indicates peaks at 954 cm (M-O bond) and 599 cm (M-C\M-L bond). Agglomerated, spherical BMNPs with a mean size of 96.76 nm were spotted in SEM micrographs. The BMNPs were tested for anticancer and antibacterial activities, dye removal efficiency, and seed germination enhancement. The anticancer study found that AgFe-BMNPs hold promising potential for application in breast cancer therapy with a 1 μg mL IC value. It also exhibited potent antibacterial activity with a 50 μg mL concentration against ,, , and . A comparative batch adsorption study for methylene blue dye removal over 180 min showed removal capabilities of 89% for BMNPs. Different concentrations (0.02, 0.04, 0.08 mg mL) of BMNPs also demonstrated superior efficiency up to 90% enhanced seed germination at the 6 h mark and 91.87% enhanced water retention capacity in . This research underscores the medical, environmental, and agricultural potential of AgFe-BMNPs, highlighting their multifaceted benefits in nanotechnology.
当前的研究聚焦于利用[具体真菌名称]的无细胞滤液作为一种新型真菌还原剂来合成银铁双金属纳米颗粒(AgFe - BMNPs)。使用先进的纳米技术仪器分析了这些由真菌制备的AgFe - BMNPs及其单金属对应物(AgNPs和FeNPs)的光学、形态和表面性质。紫外可见光谱显示,BMNPs在231 nm和415 nm处有峰,AgNPs和FeNPs分别在450 nm和386 nm处有峰。X射线衍射图谱显示,AgFe - BMNPs在32.96°、35.32°和49.32°处有晶体峰,晶体尺寸为10.68 nm。傅里叶变换红外光谱表明在954 cm(M - O键)和599 cm(M - C\M - L键)处有峰。扫描电子显微镜图像中发现了平均尺寸为96.76 nm的团聚球形BMNPs。对BMNPs进行了抗癌和抗菌活性、染料去除效率以及种子萌发促进方面的测试。抗癌研究发现,AgFe - BMNPs在乳腺癌治疗中具有应用潜力,其IC值为1 μg/mL。它还在浓度为50 μg/mL时对[具体细菌名称]表现出强大的抗菌活性。一项在180分钟内对亚甲基蓝染料去除的对比批次吸附研究表明,BMNPs的去除能力为89%。不同浓度(0.02、0.04、0.08 mg/mL)的BMNPs在6小时标记时也显示出高达90%的优异种子萌发促进效率,在[具体植物名称]中保水能力提高了91.87%。这项研究强调了AgFe - BMNPs在医学、环境和农业方面的潜力,突出了它们在纳米技术中的多方面益处。