Liquid-liquid extraction of cerium using synergist extractant

Authors

  • N.N. Hidayah Faculty of Chemical & Natural Resources Engineering, Universiti Malaysia Pahang, 26300 Gambang, Pahang, Malaysia
  • M.F.S. Nurihan Faculty of Chemical & Natural Resources Engineering, Universiti Malaysia Pahang, 26300 Gambang, Pahang, Malaysia
  • S.Z. Abidin Faculty of Chemical & Natural Resources Engineering, Universiti Malaysia Pahang, 26300 Gambang, Pahang, Malaysia

DOI:

https://doi.org/10.15282/jmes.12.1.2018.2.0296

Keywords:

Rare earth elements; liquid-liquid extraction; ionic liquid; cerium; synergist extractant.

Abstract

This work studies on the performance of synergist extractants on the extraction of Cerium (Ce) alone. Conventional extractant, 4,4,4-trifluoro-1-(2-thienyl)-1,3- butanedione (HTTA) was combined with 3-methylimidazolium bis(triflouromethylsulfonyl)imide [Cnmim][NTf2], n=2,4 at different ratios to identify the best mixing ratio between HTTA and ionic liquid respectively. The effect of pH and temperature were also investigated on synergist extractant. Liquid-liquid extraction (LLE) was conducted by mixing synergist extractant with aqueous phase of Ce in the ratio of 1:1. The studies on pH and temperature were conducted in a range of 1.5 – 5.5 and 25 – 45oC respectively. synergist extractant of HTTA-[C4mim][NTf2] was found to have better extraction efficiency compared to HTTA-[C2mim][NTf2] under the optimum pH of 4.5 – 5.5 and temperature of 45°C. HTTA-[C4mim][NTf2] also exhibits better Ce extraction when the extractant was at independent mode i.e. HTTA or [C4mim][NTf2]. In conclusion, the synergist extractant is more efficient at extraction of Ce compared to independent extractant under the pH value of 5 at 45°C.

References

JS Norbakyah, C H Fung, W H Atiq, M Z Daud, and A R Salisa. An optimal lithium ion battery for plug-in hybrid electric recreational boat in discharging condition. Journal of Mechanical Engineering and Sciences. 2016;10(3):2363–2374.

H M Hajar, N Ismail, F Zulkifli, M G M Sabri, and W B WanNik. Non-destructive tests on eco-friendly anti-corrosion paint. Journal of Mechanical Engineering and Sciences.2017:11(3):2825–2833.

E E Supeni, J A Epaarachchi, M M Islam, and K T Lau. Development of artificial neural network model in predecting performance of the smart wind turbine blade. Journal of Mechanical Engineering and Sciences.2014;6:734–745.

T Joseph and S Anand. Nickel as an alternative automotive body mateial. Journal of Mechanical Engineering and Sciences. 2012;2:187–197.

MC Math and M S Manjunath. Development and characterization of cerium oxide catalyst supported on ceramic honeycomb substrate to reduce emissions of spark ignition engine. Journal of Mechanical Engineering and. Sciences. 2016; 10( 2):1956–1967.

NN Hidayah and S Z Abidin. The evolution of mineral processing in extraction of rare earth elements using solid-liquid extraction over liquid-liquid extraction: A review.Minerals Engineering.2017;112:103–113.

F Zhang, W Wu, X Bian, and W Zeng.Synergistic extraction and separation of lanthanum (III) and cerium (III) using a mixture of 2-ethylhexylphosphonic mono-2-ethylhexyl ester and di-2-ethylhexyl phosphoric acid in the presence of two complexing agents containing lactic acid and citric acid.Hydrometallurgy, 2014;149:238–243.

M E Nasab, A Sam, and SA Milani. Determination of optimum process conditions for the separation of thorium and rare earth elements by solvent extraction. Hydrometallurgy;2011;106(3-4):141–147.

C. Liao, S Wu, F Cheng,S. Wang, Y Liu, B Zhang, C Yan. Clean separation technologies of rare earth resources in China. Journal of Rare Earths.2013;31(4): 331–336.

Y Liu, J Chen, and D Li. Application and perspective of ionic liquids on rare earths green separation. Separation Science and Technology.2012;47(2):223–232.

J Park, Y Jung, P Kusumah, J Lee, K Kwon, and C Lee. Application of ionic liquids in hydrometallurgy. International Journal of Molecular Sciences. 2014; 15(9):15320–15343.

G Durga, D Goyal, and Anuradha Mirsha. Application of Ionic Liquids in Metal Extraction. In: Green Materials for Sustainable Water Remediation and Treatment. A. Mishra and J. H. Clark, Eds. RSC Green Chemistry: 2013;155–180.

F Kubota, Y Shimobori, Y Baba, Y Koyanagi, K Shimojo, N Kamiya, M Goto. Application of ionic liquids to extraction separation of rare earth metals with an fective diglycol amic acid extractant.Journal of Chemical Engineering of Japan.2011;44(5):307–312.

M Regel-Rosocka, Ł Nowak, and M Wiśniewski.Removal of zinc(II) and iron ions from chloride solutions with phosphonium ionic liquids. Separation and Purifification Technology. 2012;97:158–163.

JM Lee. Extraction of noble metal ions from aqueous solution by ionic liquids,” Fluid Phase Equilibria.2012;319:30–36.

X Sun, B Peng, Y Ji, J Chen, and D Li. The solid-liquid extraction of yttrium from rare earths by solvent (ionic liquid) impreganated resin coupled with complexing method. Separation and Purification Technology.2008;63:61–68.

A. Rout and K. Binnemans.Liquid–liquid extraction of europium(III) and other trivalent rare- earth ions using a non-fluorinated functionalized ionic liquid.Dalton Transaction. 2014;43(4):1862–1872.

B Pospiech and W Kujawski. Ionic liquids as selective extractants and ion carriers of heavy metal ions from aqueous solutions utilized in extraction and membrane separation. Reviews in Chemical Engineering.2015;31(2):179–191.

Q. Yang, H Xing, B Su,K Yu, Z Bao, Y Yang, Q Ren, Improved separation efficiency using ionic liquid–cosolvent mixtures as the extractant in liquid–liquid extraction: A multiple adjustment and synergistic effect. Chemical Engineering Journal.2012;181–182:334–342.

X Sun, Y Ji, F Hu, B He, J Chen and D Li. The inner synergistic effect of bifunctional ionic liquid extractant for solvent extraction.Talanta.2010;81:1877–1883.

M Atanassova, V Kurteva, L Lubenov, and I. Billard. Solvent extraction and separation of light lanthanoids with mixtures of two chelating extractants : Benzene vs . ionic liquid. Separation Sciences Technology.2015;51(2):290–299.

K Nakashima, F Kubota, T Maruyama, and M. Goto, Ionic liquids as a novel solvent for lanthanide extraction. Analytical Science. 2003;19(8):1097–1098.

Y Liu, X Sun, F Luo, and J Chen. The preparation of sol-gel materials doped with ionic liquids and trialkyl phosphine oxides for Yttrium(III) uptake. Analytica Chimica Acta. 2007; 604(2):107–113.

A. Walters, P. Lusty, and A. Hill, “Rare Earth Elements,” 2011.

N Haque, A Hughes, S Lim, and C Vernon.Rare earth elements: Overview of mining, mineralogy, uses, sustainability and environmental impact, resources.2014;3(4):614–635.

C. K. Gupta, Chemical Metallurgy. Principles and Practice.Wiley-VCH. 1981.

N Van Nguyen, A Iizuka, E Shibata, and T Nakamura. Recovery of Scandium from chloride media using the novel ion exchange resin.Proceedings of the World Congress on Mechanical, Chemical, and Material Engineering. Barcelona, Spain, 2015;338:3381–3384.

N Van Nguyen, A Iizuka, E Shibata, and T Nakamura. Study of adsorption behavior of a new synthesized resin containing glycol amic acid group for separation of scandium from aqueous solutions. Hydrometallurgy. 2016;165 (1): 51–56.

N Hirayama, H Okamura, K Kidani, and H Imura. Ionic liquid synergistic cation-exchange system for the selective extraction of lanthanum(III) using 2-thenoyltrifluoroacetone and 18-crown-6.Analytical Sciences. 2008;24(6):697–699.

M I Saleh, M F Bari, and B Saad.Solvent extraction of lanthanum(III) from acidic nitrate-acetato medium by Cyanex 272 in toluene. Hydrometallurgy.2002;63(1): 75–84.

Y Sasaki, Y Sugo, K Morita, and K L Nash. The effect of alkyl substituents on actinide and lanthanide extraction by diglycolamide compounds. Solvent Extraction and. Ion Exchange.2015;33(7):625–641.

A Cieszynska and M Wisniewski. Extraction of palladium(II) from chloride solutions with Cyphos®IL 101/toluene mixtures as novel extractant.Separation and. Purification Technology.2010;73(2):202–207.

Published

2018-03-31

How to Cite

[1]
N. Hidayah, M. Nurihan, and S. Abidin, “Liquid-liquid extraction of cerium using synergist extractant”, J. Mech. Eng. Sci., vol. 12, no. 1, pp. 3302–3312, Mar. 2018.