[1] Tejada, L., Buendía-Moreno, L., Villegas, A., Cayuela, J. M., Bueno-Gavilá, E., Gómez, P., & Abellán, A. (2020). Nutritional and sensorial characteristics of zucchini (Cucurbita pepo L.) as affected by freezing and the culinary treatment. International Journal of Food Properties, 23(1), 1825-1833.
[2] Canton, H. (2021). Food and agriculture organization of the United Nations—FAO. In The Europa directory of international organizations 2021 (pp. 297-305). Routledge.
[3] Ilic, J., Tomasevic, I., & Djekic, I. (2022). Purple eggplant and zucchini color, mechanical properties, mastication, and sensory perception influenced by steaming and Sous-vide. International Journal of Gastronomy and Food Science, 28, 100549.
[4] Farooq, M., Rehman, A., & Pisante, M. (2019). Sustainable agriculture and food security. In Innovations in sustainable agriculture (pp. 3-24). Cham: Springer International Publishing.
[5] Umesha, S., Manukumar, H. M., & Chandrasekhar, B. (2018). Sustainable agriculture and food security. In Biotechnology for sustainable agriculture (pp. 67-92). Woodhead Publishing.
[6] Liu, R., & Lal, R. (2015). Potentials of engineered nanoparticles as fertilizers for increasing agronomic productions. Science of the total environment, 514, 131-139.
[7] Battacharyya, D., Babgohari, M. Z., Rathor, P., & Prithiviraj, B. (2015). Seaweed extracts as biostimulants in horticulture. Scientia horticulturae, 196, 39-48.
[8] Mahmoud, A. R. K., & Muhammad, K. A. A. A. (2000). Design and analysis of agricultural experiments. University of Mosul-Ministry of Higher Education and Scientific Research, Dar Al Kutub for Printing and Publishing/Iraq.
[9] Calvo, P., Nelson, L., & Kloepper, J. W. (2014). Agricultural uses of plant biostimulants. Plant and soil, 383(1), 3-41.
[10] Zamani, S., Khorasaninejad, S., & Kashefi, B. (2013). The importance role of seaweeds of some characters of plant.
[11] Khan, M. R., & Rizvi, T. F. (2017). Application of nanofertilizer and nanopesticides for improvements in crop production and protection. In Nanoscience and plant–soil systems (pp. 405-427). Cham: Springer International Publishing.
[12] Hassan, M. A. F., Kamil, Y. S., Abood, R. H., AlRubaei, S. M., Jasim, M. M., & Qasim, F. A. (2024, July). Root Growth of Olive Seedlings Olea europaea (Khastawi cultivar) by the Effect of Spraying with Garlic Extract and Yeast Extracts. In IOP Conference Series: Earth and Environmental Science (Vol. 1371, No. 4, p. 042029). IOP Publishing.
[13] Alam, M. Z., Braun, G., Norrie, J., & Hodges, D. M. (2013). Effect of Ascophyllum extract application on plant growth, fruit yield and soil microbial communities of strawberry. Canadian Journal of Plant Science, 93(1), 23-36.
[14] Taiz, L., & Zeiger, E. (2006). Plant physiology sinauer associates. Inc., Sunderland, MA.
[15] Craigie, J. S. (2011). Seaweed extract stimuli in plant science and agriculture. Journal of applied phycology, 23(3), 371-393.
[16] Mattner, S. W., Wite, D., Riches, D. A., Porter, I. J., & Arioli, T. (2013). The effect of kelp extract on seedling establishment of broccoli on contrasting soil types in southern Victoria, Australia. Biological agriculture & horticulture, 29(4), 258-270.
[17] Singh, A. (1980). Fruit physiology and production.
[18] Al-Araji, Jassim Mohammed, Raeda Ismail Al-Hamdani and Mona Hussein Sharif (2005) Effect of foliar spraying with urea on the growth of three olive cultivars (Olea europaea L.) Rafidain Journal of Agriculture, 33(4):40-46.
[19] Kamil, Y. S., Shamran, H. M., Abd-Jabbar, E. A., & Al-Safaar, A. H. A. (2024). Effect of foliar application of NPK and amino acid on the growth and yield-related traits of broccoli (Brassica oleracea var. Italica). SABRAO J. Breed. Genet, 56(3), 0-0.
[20] Purquerio, L. F. V., Demant, L. A. R., Goto, R., & Villas Boas, R. L. (2007). Effect of side dressing nitrogen fertilization and distance between plants on yield of rocket salad. Horticultura Brasileira, 25, 464-470.
[21] Misra, P., Shukla, P. K., Pramanik, K., Gautam, S., & Kole, C. (2016). Nanotechnology for crop improvement. In Plant nanotechnology: principles and practices (pp. 219-256). Cham: Springer International Publishing.
[22] Kumari, A., & Yadav, S. K. (2014). Nanotechnology in agri-food sector. Critical reviews in food science and nutrition, 54(8), 975-984.
[23] Naderi, M. R., & Danesh-Shahraki, A. (2013). Nanofertilizers and their roles in sustainable agriculture.
[24] Elsherif, M. H., El-Sawy, S. S., & Hassan, A. S. (2021). Impact of foliar application with seaweed extract and amino acids on growth, yield and quality of snap bean (Phaseolus vulgaris L.). Bulletin of the National Research Centre, 45(1), 185.
[25] Rouphael, Y., & Colla, G. (2020). Biostimulants in agriculture. Frontiers in Plant Science, 11, 40.
[26] García-Gaytán, V., Hernández-Mendoza, F., Coria-Téllez, A. V., & García-Morales, S. (2017). Seaweed extracts: A sustainable biostimulant for enhanced nutrient uptake and fruit quality in tomato. Journal of Applied Phycology, 29(1), 367-375.
[27] Di Stasio, E., Cirillo, V., Raimondi, G., Giordano, M., Esposito, M., & Maggio, A. (2018). The role of plant biostimulants in improving nutrient use efficiency and alleviating abiotic stress in horticultural crops. Chemical and Biological Technologies in Agriculture, 5(1), 9.
[28] Shahrajabian, M. H., Chaski, C., Polyzos, N., & Petropoulos, S. A. (2021). Biostimulants application: A low input cropping management tool for sustainable farming of vegetables. Biomolecules, 11(5), 698.