Phytochemical Analysis of Neem Leaves and Bark and their Potentials in the Formulation of Organic Insecticide
DOI:
https://doi.org/10.60787/ijrti.vol3no1.83Keywords:
Phytochemical, Neem Leaves, Organic Insecticide, Alkaloids, FlavonoidsAbstract
The use of chemical synthetic pesticides in agriculture has contributed greatly to food production; however, their continuous application poses significant risks to human health, beneficial organisms, and the environment. This research work analyzed the phytochemical composition of neem leaves and bark and assessed their use in producing an organic insecticide. Phytochemical screening confirmed alkaloids, flavonoids, tannins, glycosides, saponins are present in leaves and bark of Neem plant while phenols, and steroids are present in bark. Proximate analysis revealed clear variations between plant parts: carbohydrate was higher in leaves (46.1%) than bark (1.6%), crude fibre was greater in bark (34.50%) than leaves (16.16%), and crude protein was slightly higher in bark (16.50%) than leaves (13.42%). Similarly, crude fat was higher in leaves (6.07%) than bark (3.18%), ash content was much higher in bark (109.6%) than leaves (4.03%), while moisture was higher in leaves (11.20%) than bark (6.12%). Gas chromatography-Mass spectroscopy (GC–MS) analysis showed that the leaf extract contained major bioactive compounds such as trans-cinnamaldehyde (14.24%), betulin (12.52%), phytol (14.48%), lupeol (8.06%), syringaldehyde (7.16%), coniferyl alcohol (8.34%), phenylpropanoids (8.69%), and stigmasterol (4.56%). Bark extract also contained key constituents including phytol (14.48%), hexadecanoic acid (11.66%), and octadecanoic acid (8.78%). Fourier transform Infrared spectroscopy (FTIR) confirmed functional groups such as O–H, C=O, and aromatic rings linked to pesticidal activity, while X-ray Fluorescence spectroscopy (XRF) detected essential oxides including phosphorus pentoxide (14.62%), calcium oxide (5.75%), and potassium oxide (2.85%), while loss on ignition (64.51%) reflected the high organic content. The results show that neem leaves and bark retain high concentrations of bioactive compounds, making them effective, low-cost, and environmentally safe materials for organic insecticide production.Downloads
References
Ujah, I. I., Nsude, C. A., Ani, O. N., Alozieuwa, U. B., Okpako, I. O., & Okwor, A. E. (2021). Phytochemicals of neem plant (Azadirachta indica) explains its use in traditional medicine and pest control. GSC Biological and Pharmaceutical Sciences, 14(2), 165-171.https://doi.org/10.30574/gscbps.2021.14.2.0394
Azis, A., Syazali, M., & Chaidir, R. R. A. (2024). Analysis of the Phytochemical Performance of the Neem Plant (Azadirachta indica) Sumbawa Phenotype as a Natural Insecticide. Journal Pijar Mipa, 19(4), 682-687.
Raypa, P., Kumar, S., Jadhav, R., Anari, G., Chauhan, P., Chouhan, V., Gupta. S. (2025). Plant secondary metabolites: Natural defence in disease management. CRC Press.
Sahrawat, A., Sharma, J., Rahul, S., Tiwari, S., Joshi, M. D., & Pundhir, A. (2018). Phytochemicalanalysis and Antibacterial properties of Azadirachta indica (Neem) leaves extract against E. coli. Journal of Pharmacognosy and Phytochemistry, 7(4), 1368-1371.
Kumar, S., Vandana, U. K., Agrwal, D. & Hansa, J. (2015). Analgesic, Anti-inflammatory and Anti-pyretic Effects of Azadirachta indica (Neem) Leaf Extract in albino rats. International Journal Scientific Research, 4: 713–721.
Muhammad, A., & Kashere, M. A. (2020). Neem, Azadirachta indica L. (A. Juss): an eco-friendly botanical insecticide for managing farmer insects pest problems-A review. FUDMA Journal of Sciences, 4(4), 484-491.
Tudi, M., Daniel Ruan, H., Wang, L., Lyu, J., Sadler, R., Connell, D., ... & Phung, D. T. (2021). Agriculture development, pesticide application and its impact on the environment. International Journal of Environmental Research and Public Health, 18(3),1112.https://doi.org/10.3390/ijerph18031112.
Endris, Y. A., & Mekonnen, K. D. (2023). Formulation of neem leaf and Croton seed essential oils as a natural insecticide tested on mosquitoes and cockroaches. ACS omega, 8(17), 15052-15061.
Chaudhary, S., Kanwar, R. K., Sehgal, A., Cahill, D. M., Barrow, C. J., Sehgal, R., & Kanwar, J. R. (2017). Progress on Azadirachta indica based biopesticides in replacing synthetic toxic pesticides. Frontiers in Plant Science, 8, 610.https://doi.org/10.3389/fpls.2017.00610
Paragas, D. S., Cruz, K., & Fiegalan, E. R. (2018). Assessment of green solvents and extraction methods for biopesticide preparation from neem Azadirachta indica leaves against Oriental fruit flyBactrocera dorsalis (Hendel).
Ukoroije, R. B., & Bobmanuel, R. B. (2019). Insecticidal activity of leaf powder and ethanolic extracts of Azadirachta indica, Ocimum gratissimum and Dracaena arborea against nymphs of the domestic pest Periplaneta americana (Dictyoptera: Blatellidae). Noble International Journal of Scientific Research, 3(12), 117-135.
Dash, S. P., Dixit, S. & Sahoo, S. (2017). Phytochemical and Biochemical Characterizations from Leaf Extracts from Azadirachta indica: An Important Medicinal Plant. Biochemistry and Analytical Biochemistry, 6(323): 1009-2161.
Modi, G., & Soni, R. K. (2023). Azadirachta indica in Focus: Investigating Neem's Diverse Applications. Journal of Chemical Health Risks, 13(3), 1500-1510.
Boadu, K.O., Tulashie, S.K., Anang, M.A., and Kpan, J.D. (2011). Production of natural isecticide from neem leaves (Azadirachta indica). University of Cape Coast.
Wang H., Wang N., Huo Y. (2020). Multi –tissue transcriptome analysis using hybrid-sequencing reveals potential genes and biologiacal pathways associated with azadirachtin A biosynthesis in neem (Azadirachta indica). BCM Genomics, 21, 749 doi.org/10.1186/s12864-020-07124-6.
AOAC International, (2015). Official methods of analysis of AOAC international (18th ed.) AOAC International.
National Institute of Standard and Technology (2024). NIST Chemistry webBook,SRD 69.webbook,nist.gov
ASTM International. (2023). Standard practice for general techniques of infrared quantitative analysis (ASTME168-23). ASTM International.
Huang, C.Y., and Schute, E.E. (1985). Digestion of plant tissue for analysis ICP emission spectroscopy. Communications in Soils Science and Plant Analysis,16 (19),943-958.
ASTM International. (2021). Standard guide for elemental analysys by wavelength dispersive x-ray fluorescence spectrometry(ASTME1621-21). ASTM International,21).
Rao, S., and Sharma, M. (2020). Methods in Plant biochemistry and biotechnology. Springer.
ASTM International. (2021). Standard test method loss on ignition (LOI) of Solid Combustion Residue (ASTMD7348/D7348-21). ASTM International,21).
Ramadass, N. & Subramanian, N. (2018). Study of phytochemical screening of neem (Azadirachta indica). International Journal of Zoology Studies, 3(1): 209-212.
Sopialena, S., Sila, S., Rosfiansyah, R., & Nurdiana, J. (2018). The role of neem leaves as organic pesticides in chili pepper (Capsicum frutescens). Nusantara Bioscience, 10(4), 246-250.
Abdulkadir, A. R., Mat, N., & Jahan, M. S. (2017). In vitro Antioxidant Potential in Leaf, Stem and Bark of Azadirachta indica. Pertanika Journal of Tropical Agricultural Science, 40(4).
Ferdenache, M., Bezzar-Bendjazia, R., Marion-Poll, F. & Kilani-Morakchi, S. (2019). Transgenerational effects from single larval exposure to azadirachtin on life history and behavior traits of Drosophila melanogaster. Scientific Reports, 9:1, 7015.
Babatunde, D. E., Otusemade, G. O., Efeovbokhan, V. E., Ojewumi, M. E., Bolade, O. P., & Owoeye, T. F. (2019). Chemical composition of steam and solvent crude oil extracts from Azadirachta indica leaves. Chemical Data Collections, 20, 100208. https://doi.org/10.1016/j.cdc.2019.100208.
Usharani, K. V., Dhananjay, N. A. I. K., & Manjunatha, R. L. (2019). Neem as an organic plant protectant in agriculture. Journal of Pharmacognosy and Phytochemistry, 8(3), 4176-(4184).
Ousman, B. M., Mennane, Z., Boussaoudi, I., Otchom, B. B., & Saoud, Y. (2025). First Investigation of Phytochemical Screening, HPLC-MS Characterization, and Antibacterial Activity of Azadirachta indica A. Juss (Mim or Neem) Leaf Extracts, Grown in the Republic of Chad. Natural Product Communications, 20(2).
Chatterjee, S., Bag, S., Biswal, D., Paria, D. S., Bandyopadhyay, R., Sarkar, B., & Dangar, T. K. (2023). Neem-based products as potential ecofriendly mosquito control agents over conventional eco-toxic chemical pesticides-A review. Acta Tropica, 10(6858). https://doi.org/10.1016/j.actatropica.2023.10685
Downloads
Published
Issue
Section
License

This work is licensed under a Creative Commons Attribution-NonCommercial-ShareAlike 4.0 International License.








