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January 25, 2026Surfaces0 citationsOpen Access

Biosynthesis, Characterisation, and Antimicrobial Activities of Nickel-Doped Silver Nanoparticles Using Caralluma umbellata Plant Root Extract

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GBGundeti BhagyalaxmiKBK. Suresh BabuKRK. Ramamurthy

Key Points

  • To synthesize and characterize nickel-doped silver nanoparticles using Caralluma umbellata root extract and assess their antimicrobial activities.
  • Utilized Caralluma umbellata root extract for green synthesis.
  • Characterized nanoparticles using FTIR, UV-Vis, XRD, and FE-SEM methods.
  • Measured antibacterial activity against Gram-positive and Gram-negative bacteria.
  • Assessed anti-diabetic potential using alpha-amylase and alpha-glucosidase inhibition assays.
  • The nanoparticles displayed a peak at 396 nm in UV-Vis spectroscopy, confirming synthesis.
  • XRD showed a face-centered cubic structure with varying crystallite sizes.
  • Antibacterial activity was potent with a minimal inhibitory concentration of 1.25 μg/mL against Streptococcus mutans.
  • Demonstrated strong anti-oxidant activity and significant anti-diabetic effects.

Abstract

Greenly synthesised Ni-doped Ag nanoparticles utilising Caralluma umbellata root extracts, and an investigation into their optical properties, biological properties, and characterisation, is the focus of the study. Characterisation was performed using FTIR analysis, UV-Vis, X-ray diffraction, and field emission scanning electron microscopy. The synthesis of Ni-doped Ag nanoparticles was confirmed through UV-Vis spectroscopy, revealing a peak at 396 nm and a band gap energy of 3.24 eV. XRD analysis revealed a face-centred cubic structure with a crystallite size of 55.22 nm (as-prepared) and 18.56 nm (annealed at 200 °C). Reduction and capping were demonstrated by FTIR, as evidenced by the presence of phytochemicals. The Ag NPs demonstrated potent antibacterial activity against both Gram-positive and Gram-negative bacteria, with a minimal inhibitory concentration of 1.25 μg/mL observed against Streptococcus mutans. Their vigorous anti-oxidant activity, as well as in vitro anti-diabetic potential through alpha-amylase and alpha-glucosidase inhibition, also proves suitable for biomedical applications.

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Cite This Study

Bhagyalaxmi et al. (2026) studied this question.

synapsesocial.com/papers/6975b20efeba4585c2d6d932https://doi.org/10.3390/surfaces9010012
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