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Suyatno Sutoyo
Department of Chemistry, Faculty of Mathematics and Natural Science, Universitas Negeri Surabaya

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Nanoherbal from Ethanol Extract of Dutch Teak Leaves (Guazuma ulmifolia Lamk.) and Antibacterial Potential Against Echerichia coli Widya Dwi Larasati; Suyatno Sutoyo; Radita Yuniar Arizandy; Wahyu Setyarini
Jurnal Pijar MIPA Vol. 21 No. 1 (2026)
Publisher : Department of Mathematics and Science Education, Faculty of Teacher Training and Education, University of Mataram. Jurnal Pijar MIPA colaborates with Perkumpulan Pendidik IPA Indonesia Wilayah Nusa Tenggara Barat

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.29303/jpm.v21i1.11533

Abstract

Guazuma ulmifolia Lamk. leaves, commonly known as Dutch teak leaves, are a medicinal plant traditionally used to treat diarrhea, infections, obesity, diabetes, and hypertension. Dutch teak leaves contain secondary metabolite compounds, including alkaloids, flavonoids, saponins, steroids, triterpenoids, tannins, phenolics, and glycosides. The presence of these compounds suggests that Dutch teak leaves have potential antibacterial activity. Herbal extracts have a limitation: low bioavailability. Therefore, nanoherbal formulations are used to improve their bioavailability. Nanoherbal is a nanoparticle made from plants. Nanoherbal can increase the surface area of medicinal herbs, thereby enhancing the solubility of compounds in the body. This study aims to determine the characteristics of nanoherbal derived from the ethanol extract of Dutch teak leaves and its antibacterial activity against Escherichia coli. The nanoherbal was synthesized using the ionic gelation method, employing alginate as the polyelectrolyte polymer and calcium chloride (CaCl₂) as the crosslinking agent. Four CaCl₂ concentrations were used: F1 (0.005%), F2 (0.01%), F3 (0.02%), and F4 (0.03%). Nanoherbal characterization, including particle size, zeta potential, and functional groups. The optimal nanoherbal formulation (F4) exhibited a particle size of 314.06 nm, a polydispersity index (PDI) of 0.0990, and a zeta potential of -131 mV. The FTIR spectra of nanoherbal showed a decrease in transmittance in the O-H, symmetric, and asymmetric COO- bands. The antibacterial activity was evaluated using the disc diffusion method. All treatments were conducted in triplicate, and results were expressed as average inhibition zone diameters (mm) and analyzed descriptively. The antibacterial activity test showed that the synthesized nanoherbal exhibited very strong activity against Escherichia coli, with an inhibition zone diameter of 23.65 mm. The synthesized nanoherbal showed a larger inhibition zone compared to the extract and alginate.
Green Synthesis of Zinc Oxide Nanoparticles (ZnONPs) Using Illicium verum Flower Extract as a Bioreductor and Its Antibacterial Activity Against Escherichia coli Bagus Ramadhani; Suyatno Sutoyo; Radita Yuniar Arizandy; Wahyu Setyarini
Jurnal Pijar MIPA Vol. 21 No. 4 (2026)
Publisher : Department of Mathematics and Science Education, Faculty of Teacher Training and Education, University of Mataram. Jurnal Pijar MIPA colaborates with Perkumpulan Pendidik IPA Indonesia Wilayah Nusa Tenggara Barat

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.29303/jpm.v21i4.11985

Abstract

Zinc oxide nanoparticles (ZnONPs) have attracted considerable attention as antibacterial agents due to their superior physicochemical properties. This study aimed to synthesize ZnONPs via a green synthesis approach using Illicium verum flower extract, which is rich in phytochemical compounds, as a natural bioreductant, as well as to determine the optimal synthesis conditions and characterize the resulting nanoparticles. The synthesis was carried out using zinc acetate dihydrate, with variations in the precursor-to-extract volume ratio (1:1–1:4) and pH (7–11). Characterization was performed using UV–Vis spectrophotometry, Fourier Transform Infrared Spectroscopy (FTIR), and Particle Size Analysis (PSA), while antibacterial activity against Escherichia coli was evaluated using the disk diffusion method. The results showed that the optimal conditions were achieved at a volume ratio of 1:2 and a pH of 10, with a maximum absorption wavelength of 385 nm. The synthesized ZnONPs exhibited an average particle size of 18.27 nm with a low polydispersity index (0.1769), and the presence of Zn–O functional groups was confirmed by FTIR analysis. Furthermore, ZnONPs demonstrated very strong antibacterial activity against Escherichia coli, with an inhibition zone diameter of 32.49 mm, which was higher than that of the Illicium verum extract. These findings indicate that Illicium verum extract is an effective natural bioreductant for the green synthesis of ZnONPs and highlight the potential of the synthesized nanoparticles as efficient and environmentally friendly antibacterial agents. This study also demonstrates the feasibility of utilizing Illicium verum flower extract for ZnONP synthesis and antibacterial applications against Escherichia coli.