Phytobiogenic and Bacterial Synthesized Silver Nanoparticles: Structural Differences and Their Impact on Antimicrobial and Photocatalytic Performance
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Antimicrobial resistance and the persistence of synthetic dyes in water represent two pressing challenges that silver nanoparticles (AgNPs), as broad-spectrum biocides and visible-light plasmonic photocatalysts, can address simultaneously. Here, AgNPs were synthesized via two green biological platforms-Levisticum officinale leaf extract (phytobiogenic, Bi-AgNP) and Lacticaseibacillus rhamnosus supernatant (bacterial, Ba-AgNP)-to compare how synthesis-dependent structural differences govern antibacterial, antioxidant, and photocatalytic performance. Nanoparticles were characterized by UV-vis, FTIR, XRD, SEM-EDX, TEM, DLS, and zeta potential analysis. UV-vis confirmed SPR peaks at 418 nm (Ba-AgNP) and 420 nm (Bi-AgNP). Bi-AgNP showed a phenolic/flavonoid biocorona, high fcc crystallinity, and larger size (similar to 100-120 nm), whereas Ba-AgNP exhibited a protein/polysaccharide biocorona, lower crystallinity, and smaller size (similar to 60-80 nm). In both systems colloidal stability was predominantly steric (zeta approximate to -15 and -11 mV). Ba-AgNP displayed markedly higher antibacterial activity against E. coli, stronger DPPH scavenging (63% vs. 54% at 100 & micro;g/mL), and superior methylene blue degradation (similar to 98% at 120 min vs. similar to 86% at 150 min), with both following pseudo-first-order Langmuir-Hinshelwood kinetics. These findings demonstrate that the biosynthetic source critically shapes AgNP surface chemistry, crystallinity, and morphology, modulating their multifunctional outputs and providing a rational basis for application-specific biogenic AgNP design.










