Alkyl-Substituted Aminobis(phosphonates)-Efficient Precipitating Agents for Rare Earth Elements, Thorium, and Uranium in Aqueous Solutions

被引:12
作者
Virtanen, Emilia J. [1 ]
Peramaki, Siiri [2 ]
Helttunen, Kaisa [1 ]
Vaisanen, Ari [2 ]
Moilanen, Jani O. [1 ]
机构
[1] Univ Jyvaskyla, Nanosci Ctr, Dept Chem, FI-40014 Jyvaskyla, Finland
[2] Univ Jyvaskyla, Dept Chem, FI-40014 Jyvaskyla, Finland
来源
ACS OMEGA | 2021年 / 6卷 / 37期
基金
芬兰科学院;
关键词
SYNERGISTIC EXTRACTION; SOLVENT-EXTRACTION; CHLORIDE MEDIUM; BASIS-SETS; SEPARATION; ACID; RECOVERY; NMR; COMPLEXATION; DYSPROSIUM;
D O I
10.1021/acsomega.1c02982
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The efficient and environmentally sustainable separation process for rare earth elements (REE), especially for adjacent lanthanoids, remains a challenge due to the chemical similarity of REEs. Tetravalent actinoids, thorium, and traces of uranium are also present in concentrates of REEs, making their separation relevant. This study reports six simple water-soluble aminobis(phosphonate) ligands, RN[CH2P(O)(OH)(2)](2) (1 R = CH2CH3, 2 R = (CH2)(2)CH3, 3 R = (CH2)(3)CH3, 4 R = (CH2)(4)CH3, 5 R = (CH 2)5CH3, 6 R = CH2CH(C2H5)-(CH2)(3)CH3) as precipitating agents for REEs, Th, and U, as well as gives insight into the coordination modes of the utilized ligands with REEs at the molecular level. Aminobis(phosphonates) 4-6 with longer carbon chains were found to separate selectively thorium, uranium, and scandium from REEs with short precipitation time (15 min) and excellent separation factors that generally range from 100 to 2000 in acidic aqueous solution. Ligands 1-6 also improved separation factors for adjacent lanthanoids in comparison to traditional oxalate precipitation agents. Importantly, precipitated metals can be recovered from the ligands with 3 molar HNO3 with no observed ligand decomposition enabling the possibility of recycling the ligands in the separation process. NMR-monitored pH titrations for 1 showed deprotonation steps at pK(a) 1.3, 5.55, and >10.5, which indicate that the ligands remain in a deprotonated [L](-1) form in the pH range of 0-4 used in the precipitation studies. P-31 NMR titration studies between 1 and M(NO3)(3) (M = Y, La, Lu) gave satisfactory fits for 1:3, 1:2, and 1:1 metal-ligand stoichiometries for Y, La, and Lu, respectively, according to an F-test. Therefore, aminobis(phosphonate) precipitation agents 1-6 are likely to form metal complexes with fewer ligands than traditional separation agents like DEHPA, which coordinates to REEs in 1:6 metal-ligand ratio.
引用
收藏
页码:23977 / 23987
页数:11
相关论文
共 67 条
  • [51] Synergistic Effect between Bifunctional Ionic Liquids and a Molecular Extractant for Lanthanide Separation
    Sun, Xiaoqi
    Waters, Kristian E.
    [J]. ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2014, 2 (12): : 2758 - 2764
  • [52] PRECIPITATION INCIDENCE OF THE LANTHANOID(III) HYDROXIDES
    SUZUKI, Y
    NAGAYAMA, T
    SEKINE, M
    MIZUNO, A
    YAMAGUCHI, K
    [J]. JOURNAL OF THE LESS-COMMON METALS, 1986, 126 : 351 - 356
  • [53] Selective Crystallization of Phosphoester Coordination Polymer for the Separation of Neodymium and Dysprosium: A Thermodynamic Approach
    Tasaki-Handa, Yuiko
    Abe, Yukie
    Ooi, Kenta
    Narita, Hirokazu
    Tanaka, Mikiya
    Wakisaka, Akihiro
    [J]. JOURNAL OF PHYSICAL CHEMISTRY B, 2016, 120 (49) : 12730 - 12735
  • [54] Separation of neodymium and dysprosium by forming coordination polymers
    Tasaki-Handa, Yuiko
    Abe, Yukie
    Ooi, Kenta
    Narita, Hirokazu
    Tanaka, Mikiya
    Wakisaka, Akihiro
    [J]. SEPARATION AND PURIFICATION TECHNOLOGY, 2016, 157 : 162 - 168
  • [55] The IEF version of the PCM solvation method:: an overview of a new method addressed to study molecular solutes at the QM ab initio level
    Tomasi, J
    Mennucci, B
    Cancès, E
    [J]. JOURNAL OF MOLECULAR STRUCTURE-THEOCHEM, 1999, 464 (1-3): : 211 - 226
  • [56] A hydrometallurgical process for the recovery of rare earth elements from fluorescent lamp waste fractions
    Tunsu, Cristian
    Petranikova, Martina
    Ekberg, Christian
    Retegan, Teodora
    [J]. SEPARATION AND PURIFICATION TECHNOLOGY, 2016, 161 : 172 - 186
  • [57] Lanthanum and Cerium Separation Using an Aqueous Two-Phase System with Ionic Liquid
    Vargas, Silvia J. R.
    Quintao, Juan C.
    Ferreira, Guilherme M. D.
    Da Silva, Luis H. M.
    Hespanhol, Maria C.
    [J]. JOURNAL OF CHEMICAL AND ENGINEERING DATA, 2019, 64 (10) : 4239 - 4246
  • [58] Facile and Efficient Decontamination of Thorium from Rare Earths Based on Selective Selenite Crystallization
    Wang, Yaxing
    Lu, Huangjie
    Xing Dai
    Tao Duan
    Bai, Xiaojing
    Cai, Yawen
    Yin, Xuemiao
    Chen, Lanhua
    Juan Diwu
    Du, Shiyu
    Zhou, Ruhong
    Chai, Zhifang
    Albrecht-Schmitt, Thomas E.
    Ning Liu
    Shuao Wang
    [J]. INORGANIC CHEMISTRY, 2018, 57 (04) : 1880 - 1887
  • [60] Synergistic solvent extraction of heavy rare earths from chloride media using mixture of HEHHAP and Cyanex272
    Wei, Haiqin
    Li, Yanling
    Zhang, Zhifeng
    Liao, Wuping
    [J]. HYDROMETALLURGY, 2020, 191 (191)