This work presents a green synthesis approach using the aqueous extract of
Silybum marianum
leaves—an approach less explored than those using seeds or callus—for the production of zinc oxide nanoparticles (
ZnO-NPs
) with potential biomedical applications. The method offers a potentially advantageous route due to its cost-effectiveness, simplicity, and non-toxicity. The characterization and evaluation of
ZnO-NPs
were performed using various spectroscopic and microscopic techniques, including X-ray powder diffraction (XRD), fourier-transform infrared (FT-IR), ultraviolet-visible (UV–vis), and transmission electron (TEM) microscopy. FT-IR analysis of the leaf extract by revealed the presence of functional groups that potentially contribute to the formation, stabilization, and capping of the green-synthesized
ZnO-NPs
. A high-intensity absorption peak at 373 nm, characteristic of
ZnO-NPs
, appeared in the UV–vis analysis, confirming their successful production. The optical band gap (E
g
) was estimated using the Tauc plot, and found to be 2.77 eV. The XRD analysis confirmed the presence of a well-crystalline hexagonal wurtzite structure of
ZnO-NPs
, with an average crystalline size of 42 nm. TEM analysis revealed that the nanoparticles (NPs) are predominantly uniform, non-agglomerated, spherical, with particle diameters of (19 – 58) nm.
ζ-
potential analysis indicated good colloidal stability of the
ZnO-NPs
which are predominantly non-agglomerated, and homogeneously distributed, with an average particle diameter of 60 nm. The antimicrobial activity of the
ZnO-NPs
was evaluated using the agar diffusion method against a panel of microbial strains: four fungal strains, four Gram-positive, and three Gram-negative bacterial strains. The green-synthesized
ZnO-NPs
exhibited a measurable inhibitory activity against
Staphylococcus hominis,
while only a weak antimicrobial effect against the other strains was recorded. The minimum inhibitory concentration (MIC) and minimum bactericidal concentration (MBC) of the ZnO-NPs against S.
hominis
were found to be 12.5 μg/mL and 25 μg/mL, respectively. This work demonstrates the feasibility of employing plant-based extracts for synthesizing metal NPs and contributes to the advancement of green nanotechnology and its promising applications in biomedicine.