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Research Articles

Early Access

Green synthesis and characterization of Fe2O3 and MgO nanoparticles

DOI
https://doi.org/10.14719/pst.12262
Submitted
14 October 2025
Published
27-01-2026

Abstract

Despite growing interest in metal oxide nanomaterials, there remains a notable lack of systematically engineered iron oxide (Fe2O3) and magnesium oxide (MgO) nanoparticles with well-defined structural and surface properties tailored for safe, multifunctional use in agriculture and environmental remediation. This study comprehensively evaluates the synthesis and characterization of Fe2O3 and MgO nanoparticles, revealing their successful formation with controlled crystallinity, morphology and surface functional groups. X-ray diffraction (XRD) analysis confirmed the nanocrystalline structures and high purity of both nanoparticles. Magnesium oxide showed sharp, well-defined peaks indexed to the cubic phase (JCPDS card no. 45-0946 with crystallite sizes 18-25 nm) using the Scherrer equation. The Fe2O3 nanoparticles displayed sharp phase-specific peaks with crystallite sizes ranging from 20 to 35 nm, demonstrating their high purity and crystallinity. Fourier-transform infrared (FTIR) spectroscopy identified characteristic functional groups, including surface hydroxyls and metal-oxygen stretching vibrations. Mg-O (~411 cm-1) and Fe-O bands confirmed reactive nanostructures. Transmission electron microscopy (TEM) images revealed
predominantly hexagonal MgO nanoparticles sized 20-40 nm with sharp boundaries indicating low defects, while Fe2O3 nanoparticles exhibited near-spherical to polyhedral morphologies ranging from 23 to 64 nm, with moderate agglomeration attributed to magnetic interactions. These well-controlled nanostructures, with high surface area and reactivity, are promising candidates for agricultural and environmental applications, nanofertilizers, plant virus management, catalysis and remediation.

References

  1. 1. Abiodun AJ, Alamu GA, Adedokun O, Abati SM, Sanusi YK. Enhancing photovoltaic performance of monolithic dye-sensitized solar cells through green-synthesized CuO-FeO nanocomposite counter electrodes. Sustainable Energy Res. 2024;11(1):46. https://doi.org/10.1186/s40807-024-00139-7
  2. 2. Jegadeesan GB, Srimathi K, Srinivas NS, Manishkanna S, Vignesh D. Green synthesis of iron oxide nanoparticles using Terminalia bellirica and Moringa oleifera fruit and leaf extracts: antioxidant, antibacterial and thermoacoustic properties. Biocatal Agric Biotechnol. 2019;21:101354. https://doi.org/10.1016/j.bcab.2019.101354
  3. 3. Poh Yan L. Greener synthesis of nanostructured iron oxide for medical and sustainable agro-environmental benefits. Front Chem. 2022;10:984218. https://doi.org/10.3389/fchem.2022.984218
  4. 4. Jadhav V, Bhagare A, Ali IH, Dhayagude A, Lokhande D, Aher J, et al. Role of Moringa oleifera on green synthesis of metal/metal oxide nanomaterials. J Nanomater. 2022;2022:2147393. https://doi.org/10.1155/2022/2147393
  5. 5. Ahmad S, Ahmad N, Islam MS. Rice seeds biofortification using biogenic iron oxide nanoparticles synthesized by using Glycyrrhiza glabra: a study on growth and yield improvement. Sci Rep. 2024;14(1):12368. https://doi.org/10.1038/s41598-024-62907-1
  6. 6. Kiwumulo HF, Muwonge H, Ibingira C, Lubwama M, Kirabira JB, Sekitoleko RT. Iron oxide nanoparticles in leukemia: design, diagnostic applications and therapeutic strategies. JENCI. 2025;37(1):44.
  7. 7. Fellner P. Preparation of magnesium hydroxide from nitrate aqueous solution. Chem Pap. 2011;65(4):454-9.
  8. 8. Hussain A, Yasar M, Ahmad G, Ijaz M, Aziz A, Nawaz MG, et al. Synthesis, characterization and applications of iron oxide nanoparticles. IJHS. 2023;17(4):3.
  9. 9. Sutapa IW, Wahab AW, Taba P, La Nafie N. Synthesis and structural profile analysis of the MgO nanoparticles produced through the solgel method followed by annealing process. OJC. 2018;34(2):1016.
  10. 10. Rotti RB, Sunitha K, Manjunath M, Roy N, Mayegowda N, Gnanaprakash K, et al. Green synthesis of MgO nanoparticles and its antibacterial properties. Front Chem. 2023;11:1143614. https://doi.org/10.3389/fchem.2023.1143614
  11. 11. Khodair T, Abed H, Majeed G. Synthesis and structural characterization of MgO nanoparticles. IJARSET. 2016;3(7):2400-6.
  12. 12. Munjal S, Singh A, Kumar V. Synthesis and characterization of MgO nanoparticles by orange fruit waste through green method. IJARCS. 2017;4(9):36-42.
  13. 13. Radulescu DM. Green-synthesized MgO nanoparticles: structural insights and antimicrobial applications. IJMS. 2025;26(18):9021.
  14. 14. Daniele V, Volpe AR, Cesare P, Taglieri G. MgO nanoparticles obtained from an innovative and sustainable route and their applications in cancer therapy. Nanomaterials. 2023;13(22):2975.
  15. 15. Abbas IK, Adim KA. Synthesis and characterization of magnesium oxide nanoparticles by atmospheric non-thermal plasma jet. KJS. 2023;50(3):223-30.

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