Selective sorbents for recovery of lithium ions by hybrid capacitive deionization

Desalination - Tập 520 - Trang 115324 - 2021
Anna Siekierka1, Marek Bryjak1
1Wroclaw University of Science and Technology, Department of Process Engineering and Technology of Polymer and Carbon Materials, Wyb. St. Wyspiańskiego 27, 50-370 Wrocław, Poland

Tài liệu tham khảo

Zhang, 2020 Choubey, 2017, Advance review on the exploitation of the prominent energy-storage element Lithium. Part II: from sea water and spent lithium ion batteries (LIBs), Miner. Eng., 110, 104, 10.1016/j.mineng.2017.04.008 Meshram, 2014, Extraction of lithium from primary and secondary sources by pre-treatment, leaching and separation: a comprehensive review, Hydrometallurgy, 150, 192, 10.1016/j.hydromet.2014.10.012 Harper, 2019, Recycling lithium-ion batteries from electric vehicles, Nature, 575, 75, 10.1038/s41586-019-1682-5 Choubey, 2016, Advance review on the exploitation of the prominent energy-storage element: lithium. Part I: from mineral and brine resources, Miner. Eng., 89, 119, 10.1016/j.mineng.2016.01.010 Swain, 2017, Recovery and recycling of lithium: a review, Sep. Purif. Technol., 172, 388, 10.1016/j.seppur.2016.08.031 Jiang, 2014, Production of lithium hydroxide from lake brines through electro-electrodialysis with bipolar membranes (EEDBM), Ind. Eng. Chem. Res., 53, 6103, 10.1021/ie404334s Bunani, 2017, Application of bipolar membrane electrodialysis (BMED) for simultaneous separation and recovery of boron and lithium from aqueous solutions, Desalination, 424, 37, 10.1016/j.desal.2017.09.029 Jagur-Grodzinski, 1985, Solvent-polymeric membranes for separation of Li + from other alkali metal and alkaline earth ions, Isr. J. Chem., 26, 65, 10.1002/ijch.198500070 Suss, 2015, Water desalination via capacitive deionization: what is it and what can we expect from it?, Energy Environ. Sci., 8, 2296, 10.1039/C5EE00519A Porada, 2013, Review on the science and technology of water desalination by capacitive deionization, Prog. Mater. Sci., 58, 1388, 10.1016/j.pmatsci.2013.03.005 Singh, 2018, Theory of water desalination with intercalation materials, Phys. Rev. Appl., 9, 10.1103/PhysRevApplied.9.064036 Biesheuvel, 2015, Theory of water desalination by porous electrodes with immobile chemical charge, Colloids Interface Sci. Commun., 9, 1, 10.1016/j.colcom.2015.12.001 Smith, 2017, Theoretical evaluation of electrochemical cell architectures using cation intercalation electrodes for desalination, Electrochim. Acta, 230, 333, 10.1016/j.electacta.2017.02.006 He, 2018, Theory of water treatment by capacitive deionization with redox active porous electrodes, Water Res., 132, 282, 10.1016/j.watres.2017.12.073 Härtel, 2015, Fundamental measure theory for the electric double layer: implications for blue-energy harvesting and water desalination, J. Phys. Condens. Matter., 27, 10.1088/0953-8984/27/19/194129 Tang, 2019, Various cell architectures of capacitive deionization: recent advances and future trends, Water Res., 150, 225, 10.1016/j.watres.2018.11.064 Ratajczak, 2019, Carbon electrodes for capacitive technologies, Energy Storage Mater., 16, 126, 10.1016/j.ensm.2018.04.031 Remillard, 2018, A direct comparison of flow-by and flow-through capacitive deionization, Desalination, 444, 169, 10.1016/j.desal.2018.01.018 Kim, 2018, Semi-continuous capacitive deionization using multi-channel flow stream and ion exchange membranes, Desalination, 425, 104, 10.1016/j.desal.2017.10.012 Suss, 2012, Capacitive desalination with flow-through electrodes, Energy Environ. Sci., 5, 9511, 10.1039/c2ee21498a Farmer, 1996, Capacitive deionization of NaCl and NaNO[sub 3] solutions with carbon aerogel electrodes, J. Electrochem. Soc., 143, 159, 10.1149/1.1836402 Farmer, 1997 Meshram, 2015, Recovery of valuable metals from cathodic active material of spent lithium ion batteries: leaching and kinetic aspects, Waste Manag., 45, 306, 10.1016/j.wasman.2015.05.027 Ryu, 2013, Recovery of lithium by an electrostatic field-assisted desorption process, Ind. Eng. Chem. Res., 52, 13738, 10.1021/ie401977s Ryu, 2015, Lithium recovery system using electrostatic field assistance, Hydrometallurgy, 151, 78, 10.1016/j.hydromet.2014.11.005 Lee, 2017, Selective lithium recovery from aqueous solution using a modified membrane capacitive deionization system, Hydrometallurgy, 173, 283, 10.1016/j.hydromet.2017.09.005 Moazeni, 2015, Hydrothermal synthesis and characterization of titanium dioxide nanotubes as novel lithium adsorbents, Mater. Res. Bull., 61, 70, 10.1016/j.materresbull.2014.09.069 Zhang, 2015, Synthesis of H2TiO3–lithium adsorbent loaded on ceramic foams, Mater. Lett., 145, 351, 10.1016/j.matlet.2015.01.142 Xu, 2014, Effect of Cl- on the properties of Li2TiO3 ceramic powders synthesized by in-situ hydrolysis, Ceram. Int., 40, 7213, 10.1016/j.ceramint.2013.12.060 Siekierka, 2019, Preparation of electrodes for hybrid capacitive deionization and its influence on the adsorption behaviour, Sep. Sci. Technol., 1 Siekierka, 2018, Modification of poly(vinyl chloride) films by aliphatic amines to prepare anion-exchange membranes for cr (VI) removal, Sep. Sci. Technol., 53, 1191, 10.1080/01496395.2017.1358746 Siekierka, 2019, Novel anion exchange membrane for concentration of lithium salt in hybrid capacitive deionization, Desalination, 279, 10.1016/j.desal.2018.10.009 Siekierka, 2018, Lithium capturing from geothermal water by hybrid capacitive deionization, Desalination, 436, 8, 10.1016/j.desal.2018.02.003 Adsorption by Powders and Porous Solids - 2nd Edition, (n.d.). https://www.elsevier.com/books/adsorption-by-powders-and-porous-solids/rouquerol/978-0-08-097035-6 (accessed April 9, 2021). Siekierka, 2018, Lithium dedicated adsorbent for the preparation of electrodes useful in the ion pumping method, Sep. Purif. Technol., 194, 231, 10.1016/j.seppur.2017.11.045 Xu, 2017, Enhanced electrochemical performance of core-shell Li4Ti5O12/PTh as advanced anode for rechargeable lithium-ion batteries, Ceram. Int., 43, 7600, 10.1016/j.ceramint.2017.03.053 Schmitt, 2017, Impedance change and capacity fade of lithium nickel manganese cobalt oxide-based batteries during calendar aging, J. Power Sources, 353, 183, 10.1016/j.jpowsour.2017.03.090 Grey, 2004, NMR studies of cathode materials for lithium-ion rechargeable batteries, Chem. Rev., 104, 4493, 10.1021/cr020734p Bekaert, 2010, 7Li NMR knight shifts in li-sn compounds: MAS NMR measurements and correlation with DFT calculations, J. Phys. Chem. C, 114, 6749, 10.1021/jp100365u Moreau, 2009, Structure and properties of high Li2O-containing aluminophosphate glasses, J. Eur. Ceram. Soc., 29, 1895, 10.1016/j.jeurceramsoc.2008.12.016 Lee, 1998, 6Li and 7Li MAS NMR studies of lithium manganate cathode materials, J. Am. Chem. Soc., 120, 12601, 10.1021/ja9817794 Tucker, 2001, A [sup 7]Li nuclear magnetic resonance study of metal-substituted lithium manganese oxide spinels, J. Electrochem. Soc., 148, A951, 10.1149/1.1383775 Gee, 1998, Supertransferred hyperfine fields at 7Li: variable temperature 7Li NMR studies of LiMn2O4-based spinels, J. Phys. Chem. B, 102, 10142, 10.1021/jp982301p Mustarelli, 1997, Transferred hyperfine interaction and structure i an coexisting phases:mA XRD and NMR-MAS study, Phys. Rev. B: Condens. Matter Mater. Phys., 55, 12018, 10.1103/PhysRevB.55.12018 Weng, 2020, Introduction of manganese based lithium-ion sieve-a review, Prog. Nat. Sci. Mater. Int., 30, 139, 10.1016/j.pnsc.2020.01.017 Ooi, 1991, Mechanism of Li insertion in spinel-type manganese oxide. Redox and ion-exchange reactions, Langmuir., 7, 1167, 10.1021/la00054a025 Feng Siekierka, 2018, The evaluation of the effectiveness of lithium separation by hybrid capacitive deionization from geothermal water with the uncertainty measurement application, Desalin. Water Treat., 128, 259, 10.5004/dwt.2018.22870 Chen, 2017, Dead lithium: mass transport effects on voltage, capacity, and failure of lithium metal anodes, J. Mater. Chem. A, 5, 11671, 10.1039/C7TA00371D Siekierka, 2020, Lithium iron manganese oxide as an adsorbent for capturing lithium ions in hybrid capacitive deionization with different electrical modes, Sep. Purif. Technol., 236, 10.1016/j.seppur.2019.116234 Shang, 2021, LiNi0.5Mn1.5O4-based hybrid capacitive deionization for highly selective adsorption of lithium from brine, Sep. Purif. Technol., 258, 10.1016/j.seppur.2020.118009 Zhao, 2020, Lithium extraction from brine in an ionic selective desalination battery, Desalination, 481, 10.1016/j.desal.2020.114360 Xu, 2021, Lithium extraction from high Mg/Li brine via electrochemical intercalation/de-intercalation system using LiMn2O4 materials, Desalination, 503, 10.1016/j.desal.2021.114935 Zhao, 2017, Study on lithium extraction from brines based on LiMn2O4/Li1-xMn2O4 by electrochemical method, Electrochim. Acta, 252, 350, 10.1016/j.electacta.2017.08.178 Zhao, 2020, Semi-continuous electrochemical extraction of lithium from brine using CF-NMMO/AC asymmetric hybrid capacitors, Electrochim. Acta, 331, 10.1016/j.electacta.2019.135285 Lawagon, 2018, Li1-xNi0.33Co1/3Mn1/3O2/Ag for electrochemical lithium recovery from brine, Chem. Eng. J., 348, 1000, 10.1016/j.cej.2018.05.030 Zhao, 2020, Efficient lithium extraction from brine using a three-dimensional nanostructured hybrid inorganic-gel framework electrode, ACS Sustain. Chem. Eng., 8, 4827, 10.1021/acssuschemeng.9b07644