Alipour, L. and Akrami, Gh., 2016. The role of indigenous materials in sustainable architecture from an environmental perspective. Science and Technology. 35(156) 29-48.
Triquet, A., Hamza-Chaffai, A., Cosson, R.P. and El Abed, A., 1995. Physico-chemical forms of storage of metals (Cd, Cu and Zn) and metallothionein-like proteins in gills and liver of marine fish from the Tunisian coast: ecotoxicological consequences. Comparative Biochemistry and Physiology Part C: Pharmacology, Toxicology and Endocrinology. 111(2), 329-341.
Awa, S.H. and Hadibarata, T., 2020. Removal of heavy metals in contaminated soil by phytoremediation mechanism: a review. Water, Air, and Soil Pollution. 231(2), 47.
Balochi, 2015. The effect of different planting media on the physiological and biochemical characteristics of pinto bean (phaseolus vulgaris l) under the stress of heavy metals. Journal of Plant Process and Function. 6(21), 27-40.
Baker, A.J., Reeves, R.D. and Hajar, A.S., 1994. Heavy metal accumulation and tolerance in British populations of the metallophyte Thlaspi caerulescens J & C Presl (Brassicaceae). Journal of New Phyto.127, 61-68.
Barghjelveh, Sh. and Mobarghaee Dinan, N., 2014. Development of indicators of the sustainability of the network of green roads based on "Principles of landscape ecology". Journal of Environmental Science and Technology. 15 (1), 167-184.
Barghjelveh, Sh., Islami, S.Y. and Sayad, N., 2015. The logic of the “ecology of place”, a model of thought for urban landscape development, case study: Tehran’s Farahzad River-valley. Urban Ecosystems. 18(4), 1165–1186.
Blaylock M.J., Salt, D.E., Dushenkov, S., Zakharova, O., Gussman, C. and Kapulnik, Y., 1997. Enhanced accumulation of Pb in Indian mustard by soilapplied chelating agents. Journal of Environmental Science and Technology. 31, 860–865.
Clemens, S., 2001. Molecular mechanisms of plant metal tolerance and homeostasis. Planta. 212(4), 475-486.
Darabi, H., Moareb, Y., Ballist, J. and Naroi, B., 2019. Measuring the effective factors in environmental resilience of the use of plant species for the development of urban green spaces in hot and dry regions)" A case study of Qom. Dry Bom Scientific Journal. 10(2), 19-35.
Fotoohi, O. and Barghjelveh, Sh., 2018. The urban landscape systems' ecological networks “Case study: The city of Tehran”. Journal of Environmental Studies. 44(2), 277-295.
Hassani, S. and Barghjelveh, Sh., 2019. Planning the natural context of ecological networks (A case study of urban landscape of Karaj). Town and Country Planning. 11(2), 263-283.
Jafaranjad, A., Ismailian, M. and Rabia, M., 2013. Evaluation and selection of suppliers in the supply chain in single sourcing mode with fuzzy approach.12(4),127-153.
Jahani, N. and Barghjelveh, Sh., 2021. Urban landscape services planning in an urban river-valley corridor system case study: Tehran’s Farahzad River-valley landscape system. Environment, Development and Sustainability. Springer Netherlands. 24(1), 867-887.
Javadi, N. and Behbodhi, A., 2012. Principles and application of aquatic plant systems in wastewater treatment. Aquatic Plant Treatment Technology. 1.
Kemri, A.H. and Farshadfar, M., 2012. New plant treatment technology to create a sustainable environment. Journal of Biological Safety. 5(2), 107-122.
Lombi, E., Zhao, F., Dunham, S. and McGrath, P., 2001. Phytoremediation of heavy metal-contaminated soils. Journal of Environmental Quality. 30(6),1919-1926.
Li, T.Q., Yang, X.E., Yang, J.Y. and HE, Z.L., 2006. Zn accumulation and subcellular distribution in the Zn hyperaccumulator Sedum alfredii Hance. Pedosphere. 16(5), 616-623.
Mattina, M.J., Lannucci-Berger, W., Musante, C. and White, J.C., 2003. Concurrent plant uptake of heavy metal-and persistent organic pollutants from soil. Journal of Environmental Pollution. 124(3), 375-378.
Meena, M., Sonigra, P. and Yadav, G., 2021. Biological-based methods for the removal of volatile organic compounds (VOCs) and heavy metals. Environmental Science and Pollution Research. 28(3), 2485-2508.
Mirghafari, N., 1384. A survey of lead concentration in a number of natural plant species around the lead and zinc mine in Isfahan, Iran. 58(3), 635-644.
Musafari, M. and Taghipour, N., 2013. Applied waste management. Tehran: Taimaz Publications.
Pulford, I.D. and Watson, C., 2003. Phytoremediation of heavy metal-contaminated land by trees a review. Environment international. 29(4), 529-540.
Raskin, I., Kumar, P.B., Dushenkov, V. and Salt, D.E., 1994. Bio concentration of heavy metals by plants. Curr Opin. Journal of Biotechnology. 5(3), 285–290.
Sarkheil, H., Sadoughi Noughabi, K., Azimi, Y. and Rahbari,
S., 2023.
Fuzzy soil quality index using resistivity and induced polarization for contamination assessment in a lead and zinc drainage irrigation field study. Ecological Indicators. V: 152.
https://doi.org/10.1016/j.ecolind.2023.110362.
Sharifi, Z., 2013. The effect of arsenic pollution on some biological indicators of soil, and the assessment of the ability of native plants in the region to improve it, PhD dissertation of the Faculty of Agriculture, Department of Soil Engineering, Boali Sina University, Hamedan.
Vathghi, S., Shariatmadari, H., Efioni, M. and Mobli, M., 1380. The effect of sewage sludge on the concentration of heavy metals in lettuce and spinach plants in soils with different pH. Iranian Journal of Horticultural Sciences and Techniques, 2(4-3), 125-140. SID. https://sid.ir/paper/381207/fa.
Zonneveld, I.S., 1.994. Landscape ecology and ecological networks. Landscape Planning and Ecological Networks. 3, 13–29.