- Alves, W. S., Manoel, E. A., Santos, N. S., Nunes, R. O., Domiciano, G. C. and Soares, M. R., 2018. Phytoremediation of polycyclic aromatic hydrocarbons (PAH) by cv. Crioula: A Brazilian alfalfa cultivar. International Journal of Phytoremediation, 20:747-755.
- Anigboro, A. and Tonukari, N., 2008. Effect of crude oil on invertase and amylase activities in cassava leaf extract and germinating cowpea seedlings. Asian Journal of Biological Sciences, 1: 56-60.
- Chouychai, W., Thongkukiatkul, A., Upatham, S., Pokethitiyook, P., Kruatrachue M. and Lee, H., 2012. Effect of corn plant on survival and phenanthrene degradation capacity of pseudomonas sp. UG14Lr in Two Soils, International Journal of Phytoremediation, 14(6): 585-595.
- Chupakhina, G. N. and Maslennikov, P. V., 2004. Plant adaptation to oil stress. Russian Journal of Ecology, 35:290-295. Translated from Ekologiya; 330-335.
- Dai, C., Hu, Y., Liu, X., Wen, J. and Zhong, C., 2011. Multi-system phytoremediation on oil-contaminated chernozem soilin daqing oilfield. The 1st International Conference on Environmental and Agriculture Engineering, Chengdu, China.
- Dasanna, A. "How to make Alfalfa sprouts".2016. Vegetarian recipes of India, Retrieved 25 October.
- D’Orazio, V., Ghanem, A. and Senesi, N., 2013. Phytoremediation of pyrene contaminated soils by different plant species. CLEAN - Soil, Air, Water, 41(4):377-382.
- Gee, G.W. and Bauder, J.W., 1990. Particle size analisis. P. 383-411. In: A. Klute (ed.) Methods of soil analysis. Part 1. Physical and mineralogical properties. Monograph No. 9. 2nd ed. Medison, WI: SSSA.
- Ghaderi, G. R., Gazanchian, A. and Yousefi, M., 2008. The forage production comparison of alfalfa and wheatgrass as affected by seeding rate on mixed and pure cropping. Iranian journal of Range and Desert Reseach, 15(2): 256-268.
- Ghorbanian, D., Sharafieh, H., Mozaffari, M., Amirjan, M. and Mirakhorli, R., 2018. Investigating the possibility of the establishment of the two species of the genus Atriplex (Atriplex canescens and Atriplex verrocifera( and comparing their forage production in saline and low yield soils. Iranian Journal of Range and Desert Research, 25(4): 761-769.
- Guarino, C., Marziano, M., Tartaglia, M., Prigioniero, A., Postiglione, A., Scarano, P. and Sciarrillo, R., 2020. Poaceae with PGPR bacteria and arbuscular mycorrhizae partnerships as a model system for plant microbiome manipulation for phytoremediation of petroleum hydrocarbons contaminated agricultural soils. Agronomy Journal, https://doi.org/10. 547.10.3390/agronomy10040547.
- Gouda, A. H., El-Gendy, A. S., Abd El-Razek, T. M. and El-Kassas, H. I., 2017. Evaluation of phytoremediation and bioremediation for sandy soil contaminated with petroleum hydrocarbons. International Journal of Environmental Science and Development, 7: 826-
- Khan, S., Hesham, AE-L., Qing, G., Shuang, L. and He, J., 2009. Biodegradation of pyrene and catabolic genes in contaminated soils cultivated with Lolium multiflorum Journal of Soils and Sediments, 9(5):482-91.
- Kord, B., Safikhani, F., Khademi, A. and Pourabbasi, S., 2018. Investigating the role of rangeland plants in remediation of soils contaminated with lead and zinc. Iranian journal of Range and Desert Reseach, 25(1): 78-88.
- Magdalena, P., Grażyna, A. and Zofia, P., 2016. Monitoring the changes in a bacterial community in petroleum-polluted soil bioaugmented with hydrocarbon-degrading strains. Applied Soil Ecology, 105: 76–85.
- Glick, B., 2010. Using soil bacteria to facilitate phytoremediation. Biotechnology Advances, 28(3): 67-74.
- Liu, S. H., Zeng, G. M., Niu, Q. Y., Liu, Y., Zhou, L., Jiang, L. H., Tan, X. F., Xu, P., Zhang, C. and Cheng, M., 2017. Bioremediation mechanisms of combined pollution of PAHs and heavy metals by bacteria and fungi: a mini review. Bioresource Technology, 224:25–33.
- McLean, E. O., 1982. Soil pH and lime requirement. Methods of soil analysis. Part 2. Chemical and microbiological properties, (methodsofsoilan2). 199-224.
- Mokhtarian, N., Talaie, A. R., Jaafarzadeh, N., Talaie, M. R. and Beheshti, M., 2010. Producing biosurfactants from purified microorganisms obtained from oil-contaminated soil. Journal of Water and Wastewater, 3: 20-27.
- Nelson, D. W., Sommers, L. E., Sparks, D. L., Page, A. L., Helmke, P. A., Loeppert, R. H. and Sumner, M. E., 1996. Total carbon, organic carbon, and organic matter. Methods of Soil Analysis: Part 3 Chemical Methods. 961-1010.
- Page, A. L., Miller, R. H. and Keeney, D. R., 1992. Method of Soil Analysis. Part 2 Chemical and Mineralogical Properties. 2nd. SSSA pub., Madison, Wis.
- Panchenko, L., Muratova, A. and Olga Turkovskaya, O., 2017. Comparison of the phytoremediation potentials of Medicago falcata And Medicago sativa L. in aged oil sludge-contaminated soil. Environmental Science and Pollution Research, 24: 3117–3130.
- Pawar, A. N., Ugale, S. S., More, M. G., Kokani, M. F. and Khandelwal, S. R., 2013. Biological degradation of naphthalene: A New Era. Journal of Bioremediation and Biodegradation, 4(7): 1-5.
- Rajaei, S. and Seyedi, S. M., 2018. Phytoremediation of Petroleum-Contaminated Soils by Vetiveria zizanioides (L.) Nash. Clean-Soil, Air and Water, 46 (8): 568-580.
- Richards, L. A., 1954. Diagnosis and improvement of saline and alkali soils. Soil Science, 78(2): 154.
- Schwartz, G., Ben-Dor, E. and Eshel, G., 2012. Quantitative analysis of total petroleum hydrocarbons in soils: comparison between reflectance spectroscopy and solvent extraction by 3 certified laboratories. Applied and Environmental Soil Science, DOI: 10.1155/2012/751956.
- Saraeian, Z., Haghighi, M., Etemadi, N., HajAbbasi, M. A. and Afyuni, M., 2018. Phytoremediation effect and growth responses of Cynodon and Agropyron desertorum in a petroleum-contaminated soil. Soil and Sediment Contamination, An International Journal. 27(5): 393-407.
- Soleimani, M., Afyuni, M., Hajabbasi, M. A., Nourbakhsh, F., Sabzalian, M. R. and Christen, J. H., 2010. Phytoremediation of on aged petroleum contaminated soil using endophyte infected and non-infected grasses. Chemosphere, 81: 1084-1090.
- Valeria, D., Alaa, G. and Senesi, N., 2013. Phytoremediation of pyrene contaminated soils by different plant species. Clean - Soil, Air, Water, 41 (4): 377–382.
- Xiao, N., Liu, R., Jin, C. and Dai, Y., 2015. Efficiency of five ornamental plant species in the phytoremediation of polycyclic aromatic hydrocarbon (PAH)-contaminated soil. Ecological Engineering., 75: 384–391.
- Yang, Y., Liu, Y., Li, Z., Wang, Z., Li, C. and Wei, H., 2020. Significance of soil microbe in microbial-assisted phytoremediation: an effective way to enhance phytoremediation of contaminated soil. nternational Journal of Environmental Science and Technology, 17(4): 2477–2484.
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