[1] سازمان بهرهوری انرژی ایران؛ 1389؛ "پروژه امکانسنجی بازیافت انواع لامپ مصرفی". برآورد حجم لامپهای بازیافتی در ایران، گزارش قسمت اول بند 4 شرح خدمات، بخش ششم، ص 58-38.
[2] Rabah, M. A. (2008). “Recyclables recovery of europium and yttrium metals and some salts from spent fluorescent lamps”. Waste Management, 28(2): 318-325.
[3] Binnemans, K., and Jones, P. T. (2014). “Perspectives for the recovery of rare earths from end-of-life fluorescent lamps”. Journal of Rare Earths, 32(3): 195-200
[4] Srinivasan, R., Yogamalar, N. R., Elanchezhiyan, J., Joseyphus, R. J., and Bose, A. C. (2010). “Structural and optical properties of europium doped yttrium oxide nanoparticles for phosphor applications”. Journal of Alloys and Compounds, 496(1-2): 472-477.
[5] Wang, X., Mei, G., Zhao, C. and Lei, Y. (2011). “Notice of retraction: recovery of rare earths from spent fluorescent lamps”. In 2011 5th International Conference on Bioinformatics and Biomedical Engineering, IEEE, 1-4.
[6] Björn-Ola, L., and Selin, H. (2013). “The United Nations Conference on Sustainable Development: forty years in the making”. Environment and Planning C: Government and Policy, 1(6): 971-987.
[7] مصوبات مجلس شورای اسلامی؛ 1394؛ "قانون تصویب کنوانسیون میناماتا در مورد جیوه". در دسترس: http://rrk.ir/Laws/PrintLaw.aspx?Code=5881.
[8] EU Commission. (2017). “Study on the review of the list of critical raw materials”. European Commission: Brussels, Belgium.
[9] Balaram, V. (2019). “Rare earth elements: A review of applications, occurrence, exploration, analysis, recycling, and environmental impact”. Geoscience Frontiers, 1(4): 1285-1303.
[10] Jordens, A., Cheng, Y. P., and Waters, K. E. (2013). “A review of the beneficiation of rare earth element bearing minerals”. Minerals Engineering, 41: 97-114.
[11] Habashi, F. (1985). “The recovery of the lanthanides from phosphate rock”. Journal of Chemical Technology and Biotechnology, Chemical Technology, 35(1): 5-14.
[12] Fava, J., Andre L., and Tognet, P. (1987). “Essentially complete recovery of uranium, yttrium, thorium and rare earth values from phosphate rock during wet-process production of phosphoric acid therefrom”. U.S. Patent 4,636,369.
[13] Feuling, R. J. (1991). “Recovery of scandium, yttrium and lanthanides from titanium ore”. US Patent 5049363.
[14] Deshpande, S. M., L Mishra, S., Gajankush, R. B., Thakur, N. V., and Koppiker, K. S. (1992). “Recovery of high purity Y2O3 by solvent extraction route using organo-phosphorus extractants”. Mineral Processing and Extractive Metullargy Review, 10(1): 267-273.
[15] Jun, T., Jingqun, Y., Guohua, R., Mintao, J., and Ruan, C. (2011). “Extraction of rare earths from the leach liquor of the weathered crust elution-deposited rare earth ore with non-precipitation”. International Journal of Mineral Processing, 98(3-4): 125-131.
[16] Yang, F., Kubota, F., Baba, Y., Kamiya, N., and Goto, M. (2013). “Selective extraction and recovery of rare earth metals from phosphor powders in waste fluorescent lamps using an ionic liquid system”. Journal of hazardous materials, 254: 79-88.
[17] Peelman, S., Sun, Z. H., Sietsma, J., and Yang, Y. (2014). “Leaching of rare earth elements: past and present”. In 1st European Rare Earth Resources Conference, Milos Island, Greece, 4-7 September, 446-456.
[18] Takahashi, T., Takano, A., Saitoh, T., Nagano, N., Hirai, S., and Shimakage, K. (2001). “Separation and recovery of rare earth elements from phosphor sludge of waste fluorescent lamp by pneumatic classification and sulfuric acidic leaching”. In Proceedings of the IEEK Conference, The Institute of Electronics and Information Engineers, 421-426.
[19] De Michelis, I., Ferella, F., Varelli, E. F., and Vegliò, F. (2011). “Treatment of exhaust fluorescent lamps to recover yttrium: Experimental and process analyses”. Waste Management, 31(12): 2559-2568.
[20] Vu, H. N., Pham, T. D., Formánek, J., and Dvorak, P. (2017). “Recovery of Eu and Y from waste fluorescent lamps”. Inżynieria Mineralna, 23-28.
[21] Binnemans, K., and Jones, P. T. (2014). “Perspectives for the recovery of rare earths from end-of-life fluorescent lamps”. Journal of Rare Earths, 32(3): 195-200.
[22] Jang, M., Hong, S. M., and Park, J. K. (2005). “Characterization and recovery of mercury from spent fluorescent lamps”. Waste Management, 25(1): 5-14.
[23] عصار، م. ج.؛ 1394؛ "راهنمای مواجهه با جیوه در محیط کار". وزارت بهداشت درمان و آموزش پزشکی، معاونت بهداشتی، تهران.
[24] Mei, G., Rao, P., Matsuda, M., and Fujita, T. (2009). “Separation of red (Y 2 O 3: Eu 3+), blue (BaMgAl 10 O 17: Eu 2+) and green (CeMgAl 10 O 17: Tb 3) rare earth phosphors by liquid/liquid extraction”. Journal of Wuhan University of Technology, 24(4): 603-607.
[25] Chi, R. A., and Xu, Z. G. (1999). “A solution chemistry approach to the study of rare earth element precipitation by oxalic acid”. Metallurgical and Materials Transactions B, 30(2): 189-195.
[26] Takahashi, T., Takano, A., Saitoh, T., Nagano, N., Hirai, S., and Shimakage, K. (2001). “Separation and recovery of rare earth elements from phosphor sludge in processing plant of waste fluorescent lamp by pneumatic classification and sulfuric acidic leaching”. Journal of the Mining and Materials Processing Institute of Japan(Japan), 117(7): 37-43.
[27] Feng, X., An Zhang, T., Dreisinger, D., and Doyle, F. (2014). “A critical review on solvent extraction of rare earths from aqueous solutions”. Minerals Engineering, 1(56): 10-28.
[28] Han, K. N. (2019). “Effect of anions on the solubility of rare earth element-bearing minerals in acids”. Mining, Metallurgy & Exploration, 36(1): 215-225.