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Chemical Precipitation Method for the Synthesis of Nb2O5 Modified Bulk Nickel Catalysts with High Specific Surface Area
Published on: February 19, 2018
Tailoring niobium pentoxide nanoparticles via distinct chemical routes: structural characterization and antibacterial
Muhammad Usman Khalid1, Vidas Pakštas2, Arunas Stirke1
1Department of Functional Materials and Electronics, State Research Institute Centre for Physical Sciences and Technology (FTMC), 10257 Vilnius, Lithuania.
Abstract:
Niobium pentoxide (Nb2O5) nanoparticles (NPs) hold promise for biomedical applications owing to their tunable physicochemical properties. Here, Nb2O5NPs were synthesized via two chemical routes: (i) direct dissolution of Nb2O5in hydrofluoric acid (HF), and (ii) reaction of ammonium niobate (V) oxalate hydrate with hydrogen peroxide (H2O2). Characterization by x-ray diffraction, electron microscopy, and dynamic light scattering confirmed route-dependent differences in crystallinity, size, and dispersion. Antibacterial assays againstE. colirevealed highest efficacy for H2O2-derived NPs (12 g l-1), attributed to their ultra-small crystallites (∼4.5 nm), monodispersity (PDI = 0.118), and good colloidal stability. In the HF route, the 5 g l-1sample also showed strong antibacterial activity, likely due to increased particle concentration despite larger size distribution. Mechanistic studies demonstrated that bactericidal effects correlated with enhanced reactive oxygen species (ROS) generation, particularly in H2O2-synthesized NPs with oxygen-defect structures. Inductively coupled plasma mass spectrometry confirmed low but detectable Nb ion release, indicating that ROS production, rather than ion leaching, was the dominant antibacterial mechanism. These findings highlight the importance of synthesis route and precursor concentration in tailoring the antibacterial performance of Nb2O5NPs, supporting their potential as effective nanomaterials for biomedical applications.

