Journal of Hazardous Materials
, vol. 398, pp. 122840, 2020.
[63]
X. Yu, X. Fan, Y. Guo, T. Deng, “Recovery of Lithium from Underground Brine by Multistage Centrifugal Extraction using Tri-
Isobutyl Phosphate,”
Seperation and Purification Technology,
vol.
211, pp. 790, 2019.
[64]
J. Wang, G. Wang, Y. Wang, L. Li, Y. Ma, C. Li, S. Dai, “Hierarchicallyporous Polyacrylonitrile (PAN) 3D Architectures with
Anchored Lattice-Expanded Lambda-Mno
2
Nanodots as Freestanding Adsorbents for Superior Lithium Separation,”
Industrial
and Engineering Chemistry Research
, vol. 59, pp. 13239, 2020.
[65]
Wang H, Cui J, Li M, Guo Y, Deng T, Yu X, “Selective Recovery of Lithium from Geothermal Water by EGDE Cross-Linked
Spherical CTS/LMO,”
Chemical Engineering Journal
, vol. 389, pp. 124410, 2020.
[66]
D. Liu, S. Sun, J. Yu, “A New High-Efficiency Process for Lirecovery from Solutions Based on Limn
2
o
4
/Lambda-Mno
2
Materials,”
Chemical Engineering Journal
, vol. 377, pp. 119825, 2019.
[67]
J. Jiang, K. Li, J. Mao, N, Jiang, J, Luo, G. Ding, Y. Li, F. Sun, B. Dai, Y. Li, “Sandwich-Like Prussian Blue/Graphene Oxide
Composite Films as Ion-Sieves for Fast and Uniform Li Ionic Flux in Highly Stable Li Metal Batteries,”
Chemical Engineering
Journal,
vol.
385, pp. 123398, 2020.
[68]
Saif H. M, Huertas R. M, Pawlowski S, Crespo J. G, Velizarov S, “Development of Highly Selective Composite Polymeric
Membranes for Li
+
/Mg
2+
Separation,”
Journal of Membrane Science
, vol. 620, pp. 118891, 2021.
[69]
Liu G, Zhao Z, He L, “Highly Selective Lithium Recovery from High Mg/Li Ratio Brines,”
Desalination
, vol. 474, pp.
114185, 2020.
[70]
Pramanik B. K, Nghiem L. D, Hai F. I, “Extraction of Strategically Important Elements from Brines: Constraints and
Opportunities,”
Water Research,
vol. 168, pp. 115149, 2019.
[71]
Guo Y, Ying Y, Mao Y, Peng X, Chen B, “Polystyrene Sulfonate Threaded through a Metal-Organic Framework Membrane for
Fast and Selective Lithium-Ion Separation,”
Angewandte Chemie International Edition
, vol. 55, no. 48, pp. 15120, 2016.
[72]
Palagonia M. S, Brogioli D, La Mantia F, “Lithium Recovery from Diluted Brine by Means of Electrochemical Ion Exchange in a
Flow-Through-Electrodes Cell,”
Desalination
, vol. 475, pp. 114192, 2020.
[73]
Cheng X.B, Hou T.Z, Zhang R, Peng H.J, Zhao C.Z, Huang J.Q, Zhang Q, “Dendrite-Free Lithium Deposition Induced by
Uniformly Distributed Lithium Ions for Efficient Lithium Metal Batteries,”
Advanced Materials
, vol. 28, no. 15, pp. 2888, 2016.
[74]
Battistel A, Palagonia M. S, Brogioli D, La Mantia F, Trócoli R, “Electrochemical Methods for Lithium Recovery: A
Comprehensive and Critical Review,”
Advanced Materials
, vol. 32, pp. 1905440, 2020.
[75]
Xu X, Chen Y, Wan P, Gasem K, Wang K, He T, Adidharma H, Fan M, “Extraction of Lithium with Functionalized Lithium Ion-
Sieves,”
Progress in Materials Science
, vol. 84, pp. 276, 2016.
Bakhodir Abdullayev
et al. / IJETT, 70(9), 319-329, 2022
328
[76]
Wei S, Wei Y, Chen T, Liu C, Tang Y, “Porous Lithiumion Sieves Nanofibers: General Synthesis Strategy and Highly Selective
Recovery of Lithium from Brine Water,”
Chemical Engineering Journal
, vol. 379, pp. 122407, 2019.
[77]
BazrgarBajestani M, Moheb A, Masigol M, “Simultaneous Optimization of Adsorption Capacity and Stability of Hydrothermally
Synthesized Spinel Ion-sieve Composite Adsorbents for Selective Removal of Lithium from Aqueous Solutions,”
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