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Yıl 2023, Cilt: 6 Sayı: 1, 21 - 34, 31.03.2023
https://doi.org/10.35208/ert.1188385

Öz

Kaynakça

  • [1] J. Barnes, D. Kasen, M.-R. Wu, and G. Martinez-Pinedo, "Radioactivity and thermalization in the ejecta of compact object mergers and their impact on kilonova light curves," The Astrophysical Journal, vol. 829, no. 2, p. 110, 2016.
  • [2] H. Arvela, M. Markkanen, and H. Lemmelä, "Mobile survey of environmental gamma radiation and fall-out levels in Finland after the Chernobyl accident," Radiation Protection Dosimetry, vol. 32, no. 3, pp. 177-184, 1990.
  • [3] A. Camplani, N. Saino, and A. Pape Mø, "Carotenoids, sexual signals and immune function in barn swallow from Chernobyl," Proceedings of the Royal Society of London. Series B: Biological Sciences, vol. 266, no. 1424, pp. 1111-1116, 1999.
  • [4] M. Asif and T. Muneer, "Energy supply, its demand and security issues for developed and emerging economies," Renewable and sustainable energy reviews, vol. 11, no. 7, pp. 1388-1413, 2007.
  • [5] D. Copplestone, M. S. Johnson, S. R. Jones, M. E. Toal, and D. Jackson, "Radionuclide behavior and transport in a coniferous woodland ecosystem: vegetation, invertebrates, and wood mice, Apodemus sylvaticus," Science of the total environment, vol. 239, no. 1-3, pp. 95-109, 1999.
  • [6] V. Grech, "Births and male: female birth ratio in Scandinavia and the United Kingdom after the Windscale fire of October 1957," International journal of risk safety in medicine, vol. 26, no. 1, pp. 45-53, 2014.
  • [7] A. R. d. Oliveira, J. Hunt, N. Valverde, C. Brandao-Mello, and R. Farina, "Medical and related aspects of the Goiânia accident: an overview," Health Physics, vol. 60, no. 1, pp. 17-24, 1991.
  • [8] C. Pietersen, "Analysis of the LPG-disaster in Mexico City," Journal of hazardous materials, vol. 20, pp. 85-107, 1988.
  • [9] J. Eid and B. H. Johnsen, "Acute Stress Reactions after Submarine Accidents," Military Medicine, vol. 167, no. 5, pp. 427-431, 2002.
  • [10] M. Takano et al., "Reactivity Accident of Nuclear Submarine near Vladivostok," Journal of Nuclear Science and Technology, vol. 38, no. 2, pp. 143-157, 2001/02/01 2001.
  • [11] Z. Mian, M. Ramana, and A. Nayyar, "Nuclear submarines in South Asia: New risks and dangers," Journal for Peace Nuclear Disarmament, vol. 2, no. 1, pp. 184-202, 2019.
  • [12] W. M. Arkin and J. Handler, Naval Accidents, 1945-1988 (no. 3). Greenpeace, 1989.
  • [13] C. Tingle, "Submarine accidents a 60-year statistical assessment," Professional Safety, vol. 54, no. 09, 2009.
  • [14] D. Ball, "Nuclear war at sea," International Security, vol. 10, no. 3, pp. 3-31, 1985.
  • [15] K. Maher, J. R. Bargar, and G. E. Brown Jr, "Environmental speciation of actinides," Inorganic chemistry, vol. 52, no. 7, pp. 3510-3532, 2013.
  • [16] G. Sheng et al., "Enhanced removal of uranium (VI) by nanoscale zerovalent iron supported on Na–bentonite and an investigation of mechanism," The Journal of Physical Chemistry, vol. 118, no. 16, pp. 2952-2958, 2014.
  • [17] Y. Sun, C. Ding, W. Cheng, and X. Wang, "Simultaneous adsorption and reduction of U (VI) on reduced graphene oxide-supported nanoscale zerovalent iron," Journal of Hazardous Materials, vol. 280, pp. 399-408, 2014.
  • [18] N. Sethy, V. Jha, P. Ravi, and R. Tripathi, "Assessment of human exposure to dissolved radon in groundwater around the uranium industry of Jaduguda, Jharkhand, India," Current Science, pp. 1855-1860, 2015.
  • [19] R. Konietzka, "Gastrointestinal absorption of uranium compounds–A review," Regulatory toxicology pharmacology, vol. 71, no. 1, pp. 125-133, 2015.
  • [20]S. V. Gudkov, A. V. Chernikov, and V. I. Bruskov, "Chemical and radiological toxicity of uranium compounds," Russian Journal of General Chemistry, vol. 86, no. 6, pp. 1531-1538, 2016/06/01 2016.
  • [21] R. L. Njinga, V. M. Tshivhase, and M. Mathuthu, "Chemical toxicity of surface-based drinking water sources due to natural uranium pollutant around princess gold mine environs in Roodepoort, South Africa," Exposure Health, vol. 8, no. 4, pp. 457-464, 2016.
  • [22] A. S. Saini and J. S. Melo, "Biosorption of uranium by human black hair," Journal of Environmental Radioactivity, vol. 142, pp. 29-35, 2015.
  • [23] L. Yuan, M. Sun, X. Liao, Y. Zhao, Z. Chai, and W. Shi, "Solvent extraction of U (VI) by trioctylphosphine oxide using a room-temperature ionic liquid," Science China Chemistry, vol. 57, no. 11, pp. 1432-1438, 2014.
  • [24] A. Mellah, S. Chegrouche, and M. Barkat, "The precipitation of ammonium uranyl carbonate (AUC): thermodynamic and kinetic investigations," Hydrometallurgy, vol. 85, no. 2-4, pp. 163-171, 2007.
  • [25] T. P. Rao, P. Metilda, and J. M. Gladis, "Preconcentration techniques for uranium (VI) and thorium (IV) prior to analytical determination—an overview," Talanta, vol. 68, no. 4, pp. 1047-1064, 2006.
  • [26] C. Banerjee et al., "Nano-cerium vanadate: A novel inorganic ion exchanger for removal of americium and uranium from simulated aqueous nuclear waste," Journal of Hazardous Materials, vol. 280, pp. 63-70, 2014.
  • [27] Z. Song, W. Huang, Y. Zhou, Z.-Q. Tian, Z.-M. Li, and D.-J. Tao, "Thermally regulated molybdate-based ionic liquids toward molecular oxygen activation for one-pot oxidative cascade catalysis," Green Chemistry, vol. 22, no. 1, pp. 103-109, 2020.
  • [28] W. Hui et al., "Efficient hydrolysis of hemicellulose to furfural by novel superacid SO4H-functionalized ionic liquids," Green Energy Environment, vol. 4, no. 1, pp. 49-55, 2019.
  • [29] D. R. Lovley, E. J. Phillips, Y. A. Gorby, and E. R. Landa, "Microbial reduction of uranium," Nature, vol. 350, no. 6317, pp. 413-416, 1991.
  • [30] N. K. Gupta, A. Sengupta, A. Gupta, J. R. Sonawane, and H. Sahoo, "Biosorption-an alternative method for nuclear waste management: a critical review," Journal of Environmental Chemical Engineering, vol. 6, no. 2, pp. 2159-2175, 2018.
  • [31] X. Liu et al., ""Polyaniline (PANI) modified bentonite by plasma technique for U (VI) removal from aqueous solution"," Applied Surface Science, vol. 411, pp. 331-337, 2017.
  • [32] F. F. Chen, K. Huang, J. P. Fan, and D. Tao, "Chemical solvent in chemical solvent: A class of hybrid materials for effective capture of CO2," AIChE Journal, vol. 64, no. 2, pp. 632-639, 2018.
  • [33] H. Zhao et al., "A study on the degree of amidoximation of polyacrylonitrile fibers and its effect on their capacity to adsorb uranyl ions," Industrial & Engineering Chemistry Research, vol. 54, no. 12, pp. 3101-3106, 2015.
  • [34] X.-C. An, Z.-M. Li, Y. Zhou, W. Zhu, and D.-J. Tao, "Rapid capture and efficient removal of low-concentration SO2 in simulated flue gas by hypercrosslinked hollow nanotube ionic polymers," Chemical Engineering Journal vol. 394, p. 124859, 2020.
  • [35] Y.-Q. Wang, Z.-B. Zhang, Y.-H. Liu, X.-H. Cao, Y.-T. Liu, and Q. Li, "desorption of U (VI) from aqueous solution by the carboxyl-mesoporous carbon," Chemical Engineering Journal, vol. 198, pp. 246-253, 2012.
  • [36] W. Li et al., "Recovery of uranyl from aqueous solutions using amidoximated polyacrylonitrile/exfoliated Na-montmorillonite composite," Chemical Engineering Journal, vol. 279, pp. 735-746, 2015.
  • [37] J. Wang and S. Zhuang, "Removal of cesium ions from aqueous solutions using various separation technologies," Reviews in Environmental Science Bio/Technology, vol. 18, no. 2, pp. 231-269, 2019.
  • [38] J. Wang, S. Zhuang, and Y. Liu, "Metal hexacyanoferrates-based adsorbents for cesium removal," Coordination Chemistry Reviews, vol. 374, pp. 430-438, 2018.
  • [39] S. Zhuang, R. Cheng, and J. Wang, "Adsorption of diclofenac from aqueous solution using UiO-66-type metal-organic frameworks," Chemical Engineering Journal, vol. 359, pp. 354-362, 2019.
  • [40] S. Zhuang, Y. Liu, and J. Wang, "Mechanistic insight into the adsorption of diclofenac by MIL-100: Experiments and theoretical calculations," Environmental Pollution, vol. 253, pp. 616-624, 2019.
  • [41] M. F. Schettini, G. Wu, and T. W. Hayton, "Synthesis and reactivity of a uranyl-imidazolyl complex," Chemical Communications, vol. 48, no. 10, pp. 1484-1486, 2012.
  • [42] D. Shao et al., "Phosphate-functionalized polyethylene with high adsorption of uranium (VI)," ACS omega, vol. 2, no. 7, pp. 3267-3275, 2017.
  • [43] X. Liu, J. Li, X. Wang, C. Chen, and X. Wang, "High performance of phosphate-functionalized graphene oxide for the selective adsorption of U (VI) from acidic solution," Journal of Nuclear Materials, vol. 466, pp. 56-64, 2015.
  • [44] M. Rana, "Radiation Grafting of Polymers for Advanced Application," © University of Dhaka, 2022.
  • [45] J. Wu, K. Tian, and J. Wang, "Adsorption of uranium (VI) by amidoxime modified multiwalled carbon nanotubes," Progress in Nuclear Energy, vol. 106, pp. 79-86, 2018.
  • [46] D. Yuan, L. Chen, X. Xiong, L. Yuan, S. Liao, and Y. Wang, "Removal of uranium (VI) from aqueous solution by amidoxime functionalized superparamagnetic polymer microspheres prepared by a controlled radical polymerization in the presence of DPE," Chemical Engineering Journal, vol. 285, pp. 358-367, 2016.
  • [47] S. Shukla and V. Skhardande, "Column studies on metal ion removal by dyed cellulosic materials," Journal of Applied Polymer Science, vol. 44, no. 5, pp. 903-910, 1992.
  • [48] R. Torkaman, F. Maleki, M. Gholami, M. Torab-Mostaedi, and M. Asadollahzadeh, "Assessing the radiation-induced graft polymeric adsorbents with emphasis on heavy metals removing: A systematic literature review," Journal of Water Process Engineering, vol. 44, p. 102371, 2021/12/01/ 2021.
  • [49] Y. Ho, J. Ng, and G. McKay, "Removal of lead (II) from effluents by sorption on peat using second-order kinetics," Separation Science Technology, vol. 36, no. 2, pp. 241-261, 2001.
  • [50] N. Ünlü and M. Ersoz, "Adsorption characteristics of heavy metal ions onto a low cost biopolymeric sorbent from aqueous solutions," Journal of hazardous materials, vol. 136, no. 2, pp. 272-280, 2006.
  • [51] R. Nazia, D. N. Chandra, S. Shahnaz, A. F. Tasneem, and M. A. Rahim, "Application of Acrylic acid and Sodium Styrene Sulfonate grafted Non-Woven PE Fabric in Methylene Blue Removal," Research Journal of Chemistry Environment, vol. 24, p. 5, 2020.
  • [52] N. Dalalia, M. Kazeraninejada, and A. Akhavan, "Removal of heavy metal ions from wastewater samples using electron beam radiation in the presence of TiO2," Desalin. Water Treat, vol. 71, pp. 136-144, 2017.
  • [53] M. Agarwal and K. Singh, "Heavy metal removal from wastewater using various adsorbents: a review," Journal of Water Reuse and Desalination, vol. 7, no. 4, pp. 387-419, 2017.
  • [54] M. M. Nasef, "Gamma radiation‐induced graft copolymerization of styrene onto poly (ethyleneterephthalate) films," Journal of Applied Polymer Science, vol. 77, no. 5, pp. 1003-1012, 2000.
  • [55] E.-S. A. Hegazy, H. Kamal, N. Maziad, and A. Dessouki, "Membranes prepared by radiation grafting of binary monomers for adsorption of heavy metals from industrial wastes," Nuclear Instruments Methods in Physics Research Section B: Beam Interactions with Materials Atoms, vol. 151, no. 1-4, pp. 386-392, 1999.
  • [56] E. S. A. Hegazy, H. Kamal, N. Khalifa, and G. A. Mahmoud, "Separation and extraction of some heavy and toxic metal ions from their wastes by grafted membranes," Journal of applied polymer science, vol. 81, no. 4, pp. 849-860, 2001.
  • [57] N. Rahman, N. Sato, S. Yoshioka, M. Sugiyama, H. Okabe, and K. Hara, "Selective Cu (II) adsorption from aqueous solutions including Cu (II), Co (II), and Ni (II) by modified acrylic acid grafted PET film," International Scholarly Research Notices, vol. 2013, 2013.
  • [58] H. Abd El-Rehim, E. Hegazy, and A. E.-H. Ali, "Selective removal of some heavy metal ions from aqueous solution using treated polyethylene-g-styrene/maleic anhydride membranes," Reactive and Functional Polymers vol. 43, no. 1-2, pp. 105-116, 2000.
  • [59] H. Asamoto, Y. Kimura, Y. Ishiguro, H. Minamisawa, and K. Yamada, "Use of polyethylene films photografted with 2‐(dimethylamino) ethyl methacrylate as a potential adsorbent for removal of chromium (VI) from aqueous medium," Journal of Applied Polymer Science, vol. 133, no. 18, 2016.
  • [60] D. Guo, X. Song, L. Zhang, W. Chen, D. Chu, and L. Tan, "Recovery of uranium (VI) from aqueous solutions by the polyethyleneimine-functionalized reduced graphene oxide/molybdenum disulfide composition aerogels," Journal of the Taiwan Institute of Chemical Engineers, vol. 106, pp. 198-205, 2020.
  • [61] S. Das et al., "Extracting uranium from seawater: promising AF series adsorbents," Industrial Engineering Chemistry Research, vol. 55, no. 15, pp. 4110-4117, 2016.
  • [62] W. Min et al., "Interaction between uranium and humic acid (I): adsorption behaviors of U (VI) in soil humic acids," Nuclear Science Techniques, vol. 18, no. 5, pp. 287-293, 2007.
  • [63] M. M. Marjub, N. Rahman, N. C. Dafader, F. S. Tuhen, S. Sultana, and F. T. Ahmed, "Acrylic acid-chitosan blend hydrogel: a novel polymer adsorbent for adsorption of lead (II) and copper (II) ions from wastewater," Journal of Polymer Engineering, vol. 39, no. 10, pp. 883-891, 2019.
  • [64] S. Biswas, V. Rupawate, K. Hareendran, S. Roy, and J. Chakravartty, "Novel precipitation technique for uranium recovery from carbonate leach solutions," Journal of Radioanalytical and Nuclear Chemistry, vol. 304, no. 3, pp. 1345-1351, 2015.
  • [65] S. Rengaraj, J.-W. Yeon, Y. Kim, Y. Jung, Y.-K. Ha, and W.-H. Kim, ""Adsorption characteristics of Cu (II) onto ion exchange resins 252H and 1500H: Kinetics, isotherms and error analysis," Journal of Hazardous Materials, vol. 143, no. 1-2, pp. 469-477, 2007.
  • [66] S. K. Yadav, D. K. Singh, and S. Sinha, "Adsorption study of lead (II) onto xanthated date palm trunk: kinetics, isotherm and mechanism," Desalination Water Treatment, vol. 51, no. 34-36, pp. 6798-6807, 2013.
  • [67] A. Abutaleb et al., "Removal and recovery of U (VI) from aqueous effluents by flax fiber: Adsorption, desorption and batch adsorber proposal," Journal of Advanced Research, vol. 22, pp. 153-162, 2020.
  • [68] M. A. Mahmoud, "Adsorption of U (VI) ions from aqueous solution using silicon dioxide nanopowder," Journal of Saudi Chemical Society, vol. 22, no. 2, pp. 229-238, 2018.
  • [69] L. Zhang et al., "Adsorption of U (VI) ions from aqueous solution using nanogoethite powder," Adsorption Science Technology, vol. 37, no. 1-2, pp. 113-126, 2019.
  • [70] A. Hussein and A. Morsy, "Uranium recovery from wet-process phosphoric acid by a commercial ceramic product," Arabian Journal of Chemistry, vol. 10, pp. S361-S367, 2017.
  • [71] X. Zhang, T. Jiang, C. Xie, Y. Peng, M. Li, and Y. Zhong, "Preparation of a phosphate-modified flower-like α-FeOOH composite and its application for aqueous U (VI) removal," Water, Air, Soil Pollution, vol. 229, no. 3, pp. 1-11, 2018.

Diallyl dimethyl ammonium chloride (DADMAC) and acrylic acid (AAc) embedded nonwoven irradiated polyethylene fabric as efficient adsorbent to separate U(VI) from aqueous solution

Yıl 2023, Cilt: 6 Sayı: 1, 21 - 34, 31.03.2023
https://doi.org/10.35208/ert.1188385

Öz

Selective isolation of uranium (VI) from wastewater is now a subject of concern due to its damaging effect on living beings. In this study, the pre-irradiation technique was used to prepare grafted polymeric adsorbent by diallyl dimethyl ammonium chloride (DADMAC) and acrylic acid (AAc) onto nonwoven polyethylene fabric (PE) and the grafted adsorbent was applied for uranium (VI) adsorption from aqueous solution by batch method. After irradiation of the non-woven polyethylene fabrics with 50 kGy radiation dose, the grafting reaction was carried out at 80 ºC with a monomer solution consisting of 20 g DADMAC and 20 g AAc to 110 mL deionized water. The prepared adsorbent was characterized by Fourier Transform Infrared (FTIR), Scanning Electron Microscopy (SEM), and Thermo-gravimetric Analysis (TGA). After treatment with NaOH solution, the adsorption study was analyzed by pH, initial metal ion concentrations, contact time, and temperature on the adsorption of U(VI). The highest graft yield was achieved at 598%. The maximum adsorption capacity achieved at 160 mg/g was found by treating with 0.1M NaOH for 4 minutes with an initial concentration of 1000 ppm, pH 3.3, and a contact time of 48 hours at room temperature (25 °C). Kinetic adsorption data fitted better with the pseudo-second-order equation and a good correlation of experimental data with the Langmuir isotherm model suggested monolayer adsorption. Langmuir equation showed that the maximum adsorption capacity for U(VI) was 333.333 mg/g. The study depicted good results on the desorption and reuse of the adsorbent.

Kaynakça

  • [1] J. Barnes, D. Kasen, M.-R. Wu, and G. Martinez-Pinedo, "Radioactivity and thermalization in the ejecta of compact object mergers and their impact on kilonova light curves," The Astrophysical Journal, vol. 829, no. 2, p. 110, 2016.
  • [2] H. Arvela, M. Markkanen, and H. Lemmelä, "Mobile survey of environmental gamma radiation and fall-out levels in Finland after the Chernobyl accident," Radiation Protection Dosimetry, vol. 32, no. 3, pp. 177-184, 1990.
  • [3] A. Camplani, N. Saino, and A. Pape Mø, "Carotenoids, sexual signals and immune function in barn swallow from Chernobyl," Proceedings of the Royal Society of London. Series B: Biological Sciences, vol. 266, no. 1424, pp. 1111-1116, 1999.
  • [4] M. Asif and T. Muneer, "Energy supply, its demand and security issues for developed and emerging economies," Renewable and sustainable energy reviews, vol. 11, no. 7, pp. 1388-1413, 2007.
  • [5] D. Copplestone, M. S. Johnson, S. R. Jones, M. E. Toal, and D. Jackson, "Radionuclide behavior and transport in a coniferous woodland ecosystem: vegetation, invertebrates, and wood mice, Apodemus sylvaticus," Science of the total environment, vol. 239, no. 1-3, pp. 95-109, 1999.
  • [6] V. Grech, "Births and male: female birth ratio in Scandinavia and the United Kingdom after the Windscale fire of October 1957," International journal of risk safety in medicine, vol. 26, no. 1, pp. 45-53, 2014.
  • [7] A. R. d. Oliveira, J. Hunt, N. Valverde, C. Brandao-Mello, and R. Farina, "Medical and related aspects of the Goiânia accident: an overview," Health Physics, vol. 60, no. 1, pp. 17-24, 1991.
  • [8] C. Pietersen, "Analysis of the LPG-disaster in Mexico City," Journal of hazardous materials, vol. 20, pp. 85-107, 1988.
  • [9] J. Eid and B. H. Johnsen, "Acute Stress Reactions after Submarine Accidents," Military Medicine, vol. 167, no. 5, pp. 427-431, 2002.
  • [10] M. Takano et al., "Reactivity Accident of Nuclear Submarine near Vladivostok," Journal of Nuclear Science and Technology, vol. 38, no. 2, pp. 143-157, 2001/02/01 2001.
  • [11] Z. Mian, M. Ramana, and A. Nayyar, "Nuclear submarines in South Asia: New risks and dangers," Journal for Peace Nuclear Disarmament, vol. 2, no. 1, pp. 184-202, 2019.
  • [12] W. M. Arkin and J. Handler, Naval Accidents, 1945-1988 (no. 3). Greenpeace, 1989.
  • [13] C. Tingle, "Submarine accidents a 60-year statistical assessment," Professional Safety, vol. 54, no. 09, 2009.
  • [14] D. Ball, "Nuclear war at sea," International Security, vol. 10, no. 3, pp. 3-31, 1985.
  • [15] K. Maher, J. R. Bargar, and G. E. Brown Jr, "Environmental speciation of actinides," Inorganic chemistry, vol. 52, no. 7, pp. 3510-3532, 2013.
  • [16] G. Sheng et al., "Enhanced removal of uranium (VI) by nanoscale zerovalent iron supported on Na–bentonite and an investigation of mechanism," The Journal of Physical Chemistry, vol. 118, no. 16, pp. 2952-2958, 2014.
  • [17] Y. Sun, C. Ding, W. Cheng, and X. Wang, "Simultaneous adsorption and reduction of U (VI) on reduced graphene oxide-supported nanoscale zerovalent iron," Journal of Hazardous Materials, vol. 280, pp. 399-408, 2014.
  • [18] N. Sethy, V. Jha, P. Ravi, and R. Tripathi, "Assessment of human exposure to dissolved radon in groundwater around the uranium industry of Jaduguda, Jharkhand, India," Current Science, pp. 1855-1860, 2015.
  • [19] R. Konietzka, "Gastrointestinal absorption of uranium compounds–A review," Regulatory toxicology pharmacology, vol. 71, no. 1, pp. 125-133, 2015.
  • [20]S. V. Gudkov, A. V. Chernikov, and V. I. Bruskov, "Chemical and radiological toxicity of uranium compounds," Russian Journal of General Chemistry, vol. 86, no. 6, pp. 1531-1538, 2016/06/01 2016.
  • [21] R. L. Njinga, V. M. Tshivhase, and M. Mathuthu, "Chemical toxicity of surface-based drinking water sources due to natural uranium pollutant around princess gold mine environs in Roodepoort, South Africa," Exposure Health, vol. 8, no. 4, pp. 457-464, 2016.
  • [22] A. S. Saini and J. S. Melo, "Biosorption of uranium by human black hair," Journal of Environmental Radioactivity, vol. 142, pp. 29-35, 2015.
  • [23] L. Yuan, M. Sun, X. Liao, Y. Zhao, Z. Chai, and W. Shi, "Solvent extraction of U (VI) by trioctylphosphine oxide using a room-temperature ionic liquid," Science China Chemistry, vol. 57, no. 11, pp. 1432-1438, 2014.
  • [24] A. Mellah, S. Chegrouche, and M. Barkat, "The precipitation of ammonium uranyl carbonate (AUC): thermodynamic and kinetic investigations," Hydrometallurgy, vol. 85, no. 2-4, pp. 163-171, 2007.
  • [25] T. P. Rao, P. Metilda, and J. M. Gladis, "Preconcentration techniques for uranium (VI) and thorium (IV) prior to analytical determination—an overview," Talanta, vol. 68, no. 4, pp. 1047-1064, 2006.
  • [26] C. Banerjee et al., "Nano-cerium vanadate: A novel inorganic ion exchanger for removal of americium and uranium from simulated aqueous nuclear waste," Journal of Hazardous Materials, vol. 280, pp. 63-70, 2014.
  • [27] Z. Song, W. Huang, Y. Zhou, Z.-Q. Tian, Z.-M. Li, and D.-J. Tao, "Thermally regulated molybdate-based ionic liquids toward molecular oxygen activation for one-pot oxidative cascade catalysis," Green Chemistry, vol. 22, no. 1, pp. 103-109, 2020.
  • [28] W. Hui et al., "Efficient hydrolysis of hemicellulose to furfural by novel superacid SO4H-functionalized ionic liquids," Green Energy Environment, vol. 4, no. 1, pp. 49-55, 2019.
  • [29] D. R. Lovley, E. J. Phillips, Y. A. Gorby, and E. R. Landa, "Microbial reduction of uranium," Nature, vol. 350, no. 6317, pp. 413-416, 1991.
  • [30] N. K. Gupta, A. Sengupta, A. Gupta, J. R. Sonawane, and H. Sahoo, "Biosorption-an alternative method for nuclear waste management: a critical review," Journal of Environmental Chemical Engineering, vol. 6, no. 2, pp. 2159-2175, 2018.
  • [31] X. Liu et al., ""Polyaniline (PANI) modified bentonite by plasma technique for U (VI) removal from aqueous solution"," Applied Surface Science, vol. 411, pp. 331-337, 2017.
  • [32] F. F. Chen, K. Huang, J. P. Fan, and D. Tao, "Chemical solvent in chemical solvent: A class of hybrid materials for effective capture of CO2," AIChE Journal, vol. 64, no. 2, pp. 632-639, 2018.
  • [33] H. Zhao et al., "A study on the degree of amidoximation of polyacrylonitrile fibers and its effect on their capacity to adsorb uranyl ions," Industrial & Engineering Chemistry Research, vol. 54, no. 12, pp. 3101-3106, 2015.
  • [34] X.-C. An, Z.-M. Li, Y. Zhou, W. Zhu, and D.-J. Tao, "Rapid capture and efficient removal of low-concentration SO2 in simulated flue gas by hypercrosslinked hollow nanotube ionic polymers," Chemical Engineering Journal vol. 394, p. 124859, 2020.
  • [35] Y.-Q. Wang, Z.-B. Zhang, Y.-H. Liu, X.-H. Cao, Y.-T. Liu, and Q. Li, "desorption of U (VI) from aqueous solution by the carboxyl-mesoporous carbon," Chemical Engineering Journal, vol. 198, pp. 246-253, 2012.
  • [36] W. Li et al., "Recovery of uranyl from aqueous solutions using amidoximated polyacrylonitrile/exfoliated Na-montmorillonite composite," Chemical Engineering Journal, vol. 279, pp. 735-746, 2015.
  • [37] J. Wang and S. Zhuang, "Removal of cesium ions from aqueous solutions using various separation technologies," Reviews in Environmental Science Bio/Technology, vol. 18, no. 2, pp. 231-269, 2019.
  • [38] J. Wang, S. Zhuang, and Y. Liu, "Metal hexacyanoferrates-based adsorbents for cesium removal," Coordination Chemistry Reviews, vol. 374, pp. 430-438, 2018.
  • [39] S. Zhuang, R. Cheng, and J. Wang, "Adsorption of diclofenac from aqueous solution using UiO-66-type metal-organic frameworks," Chemical Engineering Journal, vol. 359, pp. 354-362, 2019.
  • [40] S. Zhuang, Y. Liu, and J. Wang, "Mechanistic insight into the adsorption of diclofenac by MIL-100: Experiments and theoretical calculations," Environmental Pollution, vol. 253, pp. 616-624, 2019.
  • [41] M. F. Schettini, G. Wu, and T. W. Hayton, "Synthesis and reactivity of a uranyl-imidazolyl complex," Chemical Communications, vol. 48, no. 10, pp. 1484-1486, 2012.
  • [42] D. Shao et al., "Phosphate-functionalized polyethylene with high adsorption of uranium (VI)," ACS omega, vol. 2, no. 7, pp. 3267-3275, 2017.
  • [43] X. Liu, J. Li, X. Wang, C. Chen, and X. Wang, "High performance of phosphate-functionalized graphene oxide for the selective adsorption of U (VI) from acidic solution," Journal of Nuclear Materials, vol. 466, pp. 56-64, 2015.
  • [44] M. Rana, "Radiation Grafting of Polymers for Advanced Application," © University of Dhaka, 2022.
  • [45] J. Wu, K. Tian, and J. Wang, "Adsorption of uranium (VI) by amidoxime modified multiwalled carbon nanotubes," Progress in Nuclear Energy, vol. 106, pp. 79-86, 2018.
  • [46] D. Yuan, L. Chen, X. Xiong, L. Yuan, S. Liao, and Y. Wang, "Removal of uranium (VI) from aqueous solution by amidoxime functionalized superparamagnetic polymer microspheres prepared by a controlled radical polymerization in the presence of DPE," Chemical Engineering Journal, vol. 285, pp. 358-367, 2016.
  • [47] S. Shukla and V. Skhardande, "Column studies on metal ion removal by dyed cellulosic materials," Journal of Applied Polymer Science, vol. 44, no. 5, pp. 903-910, 1992.
  • [48] R. Torkaman, F. Maleki, M. Gholami, M. Torab-Mostaedi, and M. Asadollahzadeh, "Assessing the radiation-induced graft polymeric adsorbents with emphasis on heavy metals removing: A systematic literature review," Journal of Water Process Engineering, vol. 44, p. 102371, 2021/12/01/ 2021.
  • [49] Y. Ho, J. Ng, and G. McKay, "Removal of lead (II) from effluents by sorption on peat using second-order kinetics," Separation Science Technology, vol. 36, no. 2, pp. 241-261, 2001.
  • [50] N. Ünlü and M. Ersoz, "Adsorption characteristics of heavy metal ions onto a low cost biopolymeric sorbent from aqueous solutions," Journal of hazardous materials, vol. 136, no. 2, pp. 272-280, 2006.
  • [51] R. Nazia, D. N. Chandra, S. Shahnaz, A. F. Tasneem, and M. A. Rahim, "Application of Acrylic acid and Sodium Styrene Sulfonate grafted Non-Woven PE Fabric in Methylene Blue Removal," Research Journal of Chemistry Environment, vol. 24, p. 5, 2020.
  • [52] N. Dalalia, M. Kazeraninejada, and A. Akhavan, "Removal of heavy metal ions from wastewater samples using electron beam radiation in the presence of TiO2," Desalin. Water Treat, vol. 71, pp. 136-144, 2017.
  • [53] M. Agarwal and K. Singh, "Heavy metal removal from wastewater using various adsorbents: a review," Journal of Water Reuse and Desalination, vol. 7, no. 4, pp. 387-419, 2017.
  • [54] M. M. Nasef, "Gamma radiation‐induced graft copolymerization of styrene onto poly (ethyleneterephthalate) films," Journal of Applied Polymer Science, vol. 77, no. 5, pp. 1003-1012, 2000.
  • [55] E.-S. A. Hegazy, H. Kamal, N. Maziad, and A. Dessouki, "Membranes prepared by radiation grafting of binary monomers for adsorption of heavy metals from industrial wastes," Nuclear Instruments Methods in Physics Research Section B: Beam Interactions with Materials Atoms, vol. 151, no. 1-4, pp. 386-392, 1999.
  • [56] E. S. A. Hegazy, H. Kamal, N. Khalifa, and G. A. Mahmoud, "Separation and extraction of some heavy and toxic metal ions from their wastes by grafted membranes," Journal of applied polymer science, vol. 81, no. 4, pp. 849-860, 2001.
  • [57] N. Rahman, N. Sato, S. Yoshioka, M. Sugiyama, H. Okabe, and K. Hara, "Selective Cu (II) adsorption from aqueous solutions including Cu (II), Co (II), and Ni (II) by modified acrylic acid grafted PET film," International Scholarly Research Notices, vol. 2013, 2013.
  • [58] H. Abd El-Rehim, E. Hegazy, and A. E.-H. Ali, "Selective removal of some heavy metal ions from aqueous solution using treated polyethylene-g-styrene/maleic anhydride membranes," Reactive and Functional Polymers vol. 43, no. 1-2, pp. 105-116, 2000.
  • [59] H. Asamoto, Y. Kimura, Y. Ishiguro, H. Minamisawa, and K. Yamada, "Use of polyethylene films photografted with 2‐(dimethylamino) ethyl methacrylate as a potential adsorbent for removal of chromium (VI) from aqueous medium," Journal of Applied Polymer Science, vol. 133, no. 18, 2016.
  • [60] D. Guo, X. Song, L. Zhang, W. Chen, D. Chu, and L. Tan, "Recovery of uranium (VI) from aqueous solutions by the polyethyleneimine-functionalized reduced graphene oxide/molybdenum disulfide composition aerogels," Journal of the Taiwan Institute of Chemical Engineers, vol. 106, pp. 198-205, 2020.
  • [61] S. Das et al., "Extracting uranium from seawater: promising AF series adsorbents," Industrial Engineering Chemistry Research, vol. 55, no. 15, pp. 4110-4117, 2016.
  • [62] W. Min et al., "Interaction between uranium and humic acid (I): adsorption behaviors of U (VI) in soil humic acids," Nuclear Science Techniques, vol. 18, no. 5, pp. 287-293, 2007.
  • [63] M. M. Marjub, N. Rahman, N. C. Dafader, F. S. Tuhen, S. Sultana, and F. T. Ahmed, "Acrylic acid-chitosan blend hydrogel: a novel polymer adsorbent for adsorption of lead (II) and copper (II) ions from wastewater," Journal of Polymer Engineering, vol. 39, no. 10, pp. 883-891, 2019.
  • [64] S. Biswas, V. Rupawate, K. Hareendran, S. Roy, and J. Chakravartty, "Novel precipitation technique for uranium recovery from carbonate leach solutions," Journal of Radioanalytical and Nuclear Chemistry, vol. 304, no. 3, pp. 1345-1351, 2015.
  • [65] S. Rengaraj, J.-W. Yeon, Y. Kim, Y. Jung, Y.-K. Ha, and W.-H. Kim, ""Adsorption characteristics of Cu (II) onto ion exchange resins 252H and 1500H: Kinetics, isotherms and error analysis," Journal of Hazardous Materials, vol. 143, no. 1-2, pp. 469-477, 2007.
  • [66] S. K. Yadav, D. K. Singh, and S. Sinha, "Adsorption study of lead (II) onto xanthated date palm trunk: kinetics, isotherm and mechanism," Desalination Water Treatment, vol. 51, no. 34-36, pp. 6798-6807, 2013.
  • [67] A. Abutaleb et al., "Removal and recovery of U (VI) from aqueous effluents by flax fiber: Adsorption, desorption and batch adsorber proposal," Journal of Advanced Research, vol. 22, pp. 153-162, 2020.
  • [68] M. A. Mahmoud, "Adsorption of U (VI) ions from aqueous solution using silicon dioxide nanopowder," Journal of Saudi Chemical Society, vol. 22, no. 2, pp. 229-238, 2018.
  • [69] L. Zhang et al., "Adsorption of U (VI) ions from aqueous solution using nanogoethite powder," Adsorption Science Technology, vol. 37, no. 1-2, pp. 113-126, 2019.
  • [70] A. Hussein and A. Morsy, "Uranium recovery from wet-process phosphoric acid by a commercial ceramic product," Arabian Journal of Chemistry, vol. 10, pp. S361-S367, 2017.
  • [71] X. Zhang, T. Jiang, C. Xie, Y. Peng, M. Li, and Y. Zhong, "Preparation of a phosphate-modified flower-like α-FeOOH composite and its application for aqueous U (VI) removal," Water, Air, Soil Pollution, vol. 229, no. 3, pp. 1-11, 2018.
Toplam 71 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Su Kaynakları ve Su Yapıları
Bölüm Research Articles
Yazarlar

Shahnaz Sultana 0000-0002-1396-3768

Nazia Rahman 0000-0001-9239-5449

Md Razzak Bu kişi benim 0000-0002-2814-4618

Md Nabul Sardar 0000-0002-7408-8098

Yayımlanma Tarihi 31 Mart 2023
Gönderilme Tarihi 17 Ekim 2022
Kabul Tarihi 1 Şubat 2023
Yayımlandığı Sayı Yıl 2023 Cilt: 6 Sayı: 1

Kaynak Göster

APA Sultana, S., Rahman, N., Razzak, M., Sardar, M. N. (2023). Diallyl dimethyl ammonium chloride (DADMAC) and acrylic acid (AAc) embedded nonwoven irradiated polyethylene fabric as efficient adsorbent to separate U(VI) from aqueous solution. Environmental Research and Technology, 6(1), 21-34. https://doi.org/10.35208/ert.1188385
AMA Sultana S, Rahman N, Razzak M, Sardar MN. Diallyl dimethyl ammonium chloride (DADMAC) and acrylic acid (AAc) embedded nonwoven irradiated polyethylene fabric as efficient adsorbent to separate U(VI) from aqueous solution. ERT. Mart 2023;6(1):21-34. doi:10.35208/ert.1188385
Chicago Sultana, Shahnaz, Nazia Rahman, Md Razzak, ve Md Nabul Sardar. “Diallyl Dimethyl Ammonium Chloride (DADMAC) and Acrylic Acid (AAc) Embedded Nonwoven Irradiated Polyethylene Fabric As Efficient Adsorbent to Separate U(VI) from Aqueous Solution”. Environmental Research and Technology 6, sy. 1 (Mart 2023): 21-34. https://doi.org/10.35208/ert.1188385.
EndNote Sultana S, Rahman N, Razzak M, Sardar MN (01 Mart 2023) Diallyl dimethyl ammonium chloride (DADMAC) and acrylic acid (AAc) embedded nonwoven irradiated polyethylene fabric as efficient adsorbent to separate U(VI) from aqueous solution. Environmental Research and Technology 6 1 21–34.
IEEE S. Sultana, N. Rahman, M. Razzak, ve M. N. Sardar, “Diallyl dimethyl ammonium chloride (DADMAC) and acrylic acid (AAc) embedded nonwoven irradiated polyethylene fabric as efficient adsorbent to separate U(VI) from aqueous solution”, ERT, c. 6, sy. 1, ss. 21–34, 2023, doi: 10.35208/ert.1188385.
ISNAD Sultana, Shahnaz vd. “Diallyl Dimethyl Ammonium Chloride (DADMAC) and Acrylic Acid (AAc) Embedded Nonwoven Irradiated Polyethylene Fabric As Efficient Adsorbent to Separate U(VI) from Aqueous Solution”. Environmental Research and Technology 6/1 (Mart 2023), 21-34. https://doi.org/10.35208/ert.1188385.
JAMA Sultana S, Rahman N, Razzak M, Sardar MN. Diallyl dimethyl ammonium chloride (DADMAC) and acrylic acid (AAc) embedded nonwoven irradiated polyethylene fabric as efficient adsorbent to separate U(VI) from aqueous solution. ERT. 2023;6:21–34.
MLA Sultana, Shahnaz vd. “Diallyl Dimethyl Ammonium Chloride (DADMAC) and Acrylic Acid (AAc) Embedded Nonwoven Irradiated Polyethylene Fabric As Efficient Adsorbent to Separate U(VI) from Aqueous Solution”. Environmental Research and Technology, c. 6, sy. 1, 2023, ss. 21-34, doi:10.35208/ert.1188385.
Vancouver Sultana S, Rahman N, Razzak M, Sardar MN. Diallyl dimethyl ammonium chloride (DADMAC) and acrylic acid (AAc) embedded nonwoven irradiated polyethylene fabric as efficient adsorbent to separate U(VI) from aqueous solution. ERT. 2023;6(1):21-34.