CA3124281C

Li recovery processes and onsite chemical production for li recovery processes

Abstract

In this disclosure, a process of recycling acid, base and the salt reagents required in the Li recovery process is introduced. A membrane electrolysis cell which incorporates an oxygen depolarized cathode is implemented to generate the required chemicals onsite. The system can utilize a portion of the salar brine or other lithium-containing brine or solid waste to generate hydrochloric or sulfuric acid, sodium hydroxide and carbonate salts. Simultaneous generation of acid and base allows for taking advantage of both chemicals during the conventional Li recovery from brines and mineral rocks. The desalinated water can also be used for the washing steps on the recovery process or returned into the evaporation ponds. The method also can be used for the direct conversion of lithium salts to the high value LiOH product. The method does not produce any solid effluent which makes it easy-to-adopt for use in existing industrial Li recovery plants.

CA3124281C, drawing sheet 1
Sheet 1 of 26

Term

13.2 yearsleft in the term

Expires 19 December 2039.

  1. Priority
  2. Filed
  3. Granted
  4. Today
  5. Expires

68 claims: 39 independent, 29 dependent

  1. 1
    A8148263CA -49What is Claimed is:1. A process for recovering Li from a Li source and/or recovering reagent materials used in the process for recovering Li, the process comprising the steps of: receiving, in a membrane electrolysis cell, a salt-containing solution comprising positive salt ions and negative salt ions, and a gas comprising O2, wherein the salt-containing solution is a Li salt-containing solution and/or a salt-containing solution used in the process for recovering Li;and delivering, from the membrane electrolysis cell, recovered Li and/or reagent materials used in the process for recovering Li, wherein the membrane electrolysis cell comprises: an inlet through which the salt-containing solution is received into an interior of the membrane electrolysis cell;an anode positioned to extend within the interior of the membrane electrolysis cell and positioned in an anode compartment;a cathode comprising a gas diffusion electrode positioned to extend within the interior of the membrane electrolysis cell and positioned in a cathode compartment, the gas diffusion electrode including a diffusion layer configured to diffuse gas and a hydrophilic catalyst layer disposed on a surface of the diffusion layer, the hydrophilic catalyst layer having a hydrophilicity greater than that of the diffusion layer and the hydrophilic catalyst layer being configured to transport negative ions;a gas inlet positioned in the cathode compartment through which the gas comprising Oz is introduced into contact with the gas diffusion electrode;a first ion exchange membrane interposed between the anode compartment and the hydrophilic catalyst layer of the gas diffusion electrode, the first ion exchange membrane being configured to exchange ions received from the anode to an opposed surface of the first ion exchange membrane;and at least one outlet through which the recovered Li and/or reagent materials used in the process for recovering Li is removed from the interior of the membrane electrolysis cell;wherein in performing the process the salt-containing solution is received into the anode compartment;and wherein the gas comprising O2 is reduced at the cathode to form OH ;wherein in performing the process the positive salt ions move through the first ion exchange membrane to the opposed surface of the first ion exchange membrane;and Date Reçue/Date Received 2023-03-30 A8148263CA -50wherein the positive salt ions combine with the OH' to form the recovered Li and/or reagent materials used in the process for recovering Li.
  2. 4
    The process any one of claims 1 to 3, wherein the membrane electrolysis cell further comprises:a second ion exchange membrane, the second ion exchange membrane being disposed on the hydrophilic catalyst layer of the gas diffusion electrode and being configured to exchange ions received from the hydrophilic catalyst layer of the gas diffusion electrode to an opposed surface of the second ion exchange membrane;wherein the first and second ion exchange membranes define a base build up compartment interposed between the cathode compartment and the anode compartment;wherein the OH- ions are exchanged through the second ion excharge membrane to the opposed surface of the second ion exchange membrane into the base build up compartment;wherein the OH* ions combine with the positive salt ions in the base build up compartment to form the recovered Li and/or reagent materials used in the process for recovering Li;and wherein the recovered Li and/or reagent materials used in the process for recovering Li is removed from the base buildup compartment.
  3. 5
    The process of any one of claims 1 to 4, wherein the salt-containing solution comprises LiCI. Date Reçue/Date Received 2023-03-30 A8148263CA
  4. 6
    The process of any one of claims 1 to 4, wherein the salt-containing solution comprises L12SO4.
  5. 7
    The process of any one of claims 1 to 4, wherein the salt-containing solution comprises U2CO3 and/or UHCO3-
  6. 8
    The process of any one of claims 1 to 4, wherein the salt-containing solution comprises NaCI.
  7. 9
    The process of any one of claims 1 to 4, wherein the salt-containing solution comprises NazSO4.
  8. 10
    The process of any one of claims 1 to 9, wherein the gas comprising oxygen is air.
  9. 11
    The process of any one of claims 1 to 9, wherein the gas comprising oxygen is humidified air.
  10. 12
    The process of any one of claims 1 to 9, wherein the gas comprising oxygen is a waste stream from a nitrogen producing operation.
  11. 13
    A process for recovering Li from a Li source and/or recovering reagent materials used in the process for recovering Li, the process comprising the steps of:receiving, in a membrane electrolysis cell, a salt-containing solution comprising positive salt ions and negative salt ions, and a gas comprising O2, wherein the salt-containing solution is a Li salt-containing solution and/or a salt-containing solution used in the process for recovering Li;and delivering, from the membrane electrolysis cell, recovered Li and/or reagent materials used in the process for recovering Li, wherein the membrane electrolysis cell comprises: an inlet through which the salt-containing solution is received into an interior of the membrane electrolysis cell;an anode positioned to extend within the interior of the membrane electrolysis cell and positioned in an anode compartment;Date Reçue/Date Received 2023-03-30 A8148263CA -52a cathode comprising a gas diffusion electrode positioned to extend within the interior of the membrane electrolysis cell and positioned in a cathode compartment, the gas diffusion electrode including a diffusion layer configured to diffuse gas and a hydrophilic catalyst layer disposed on a surface of the diffusion layer, the hydrophilic catalyst layer having a hydrophilicity greater than that of the diffusion layer and the hydrophilic catalyst layer being configured to transport negative ions;a gas inlet positioned in the cathode compartment through which the gas comprising O2 is introduced into contact with the gas diffusion electrode;a first ion exchange membrane interposed between the anode compartment and the hydrophilic catalyst layer of the gas diffusion electrode, the first ion exchange membrane being configured to exchange ions to an opposed surface of the first ion exchange membrane;a second ion exchange membrane, the second ion exchange membrane being disposed on the hydrophilic catalyst layer of the gas diffusion electrode and being configured to exchange ions received from the hydrophilic catalyst layer of the gas diffusion electrode to an opposed surface of the second ion exchange membrane, wherein the first and second ion exchange membranes define a base build up compartment interposed between the cathode compartment and the anode compartment;a third ion exchange membrane, the third ion exchange membrane being interposed between the first ion exchange membrane and the anode compartment, wherein the first and third ion exchange membranes define a salt depletion compartment interposed between the anode compartment and the base build up compartment, the third ion exchange membrane being configured to exchange ions received from the salt depletion compartment to an opposed surface of the third ion exchange membrane;wherein in performing the process the salt-containing solution is received into the salt depletion compartment;wherein the gas comprising O2 is reduced at the cathode to form OH and wherein the OH- ions move through the second ion exchange membrane to the opposed surface of the second ion exchange membrane into the base build up compartment;wherein the positive salt ions move through the first ion exchange membrane to the opposed surface of the first ion exchange membrane into the base build up compartment;Date Reçue/Date Received 2023-03-30 A8148263CA -53wherein the positive salt ions combine with the OH* in the base build up compartment;and wherein the negative salt ions are exchanged from the salt depletion compartment to the opposed surface of the third ion exchange membrane.
  12. 16
    The process of any one of daims 13 to 15, wherein the diffusion layer comprises a bi- layer construction formed from a plurality of diffusion sublayers, wherein the diffusion sublayers are hydrophobic and wherein water is transported away from the diffusion sublayers.
  13. 17
    The process of any one of daims 13 to 16, wherein the gas diffusion electrode further comprises a hydrophobic catalyst layer disposed on the surface of the diffusion layer that is opposite from the hydrophilic catalyst layer, the hydrophobic catalyst layer having a hydrophilicity less than that of the diffusion layer and being capable of transporting negative ions, wherein the OH - ions are transported through the hydrophobic catalyst layer. Date Reçue/Date Received 2023-03-30 A8148263CA
  14. 18
    The process of any one of claims 13 to 17, wherein the salt-containing solution comprises LiCI.
  15. 19
    The process of any one of claims 13 to 17, wherein the salt-containing solution comprises IJ2SO4-
  16. 20
    The process of any one of claims 13 to 17, wherein the salt-containing solution comprises U2CO3 and/or LiHCOx
  17. 21
    The process of any one of claims 13 to 17, wherein the salt-containing solution comprises NaCl.
  18. 22
    The process of any one of claims 13 to 17, wherein the salt-containing solution comprises NazSOz.
  19. 23
    The process of any one of claims 13 to 22, wherein the gas comprising oxygen is air.
  20. 24
    The process of any one of claims 13 to 22, wherein the gas comprising oxygen is humidified air.
  21. 25
    The process of any one of claims 13 to 22, wherein the gas comprising oxygen is a waste stream from a nitrogen producing operation.
  22. 26
    A membrane electrolysis cell for processing a salt-containing solution, the membrane electrolysis cell comprising:an inlet through which the salt-containing solution is introduced into an interior of the membrane electrolysis cell;an anode positioned to extend within the interior of the membrane electrolysis cell and positioned in an anode compartment;a cathode comprising a gas diffusion electrode positioned to extend within the interior of the membrane electrolysis cell and positioned in a cathode compartment, the gas diffusion electrode including a diffusion layer configured to diffuse gas and a hydrophilic catalyst layer disposed on a surface of the diffusion layer, the hydrophilic catalyst layer having a hydrophilicity Date Reçue/Date Received 2023-03-30 A8148263CA -55greater than that of the diffusion layer and the hydrophilic catalyst layer being configured to transport negative ions;a gas inlet positioned in the cathode compartment through which a gas comprising O2 is introduced into contact with the gas diffusion electrode;a first ion exchange membrane interposed between the anode compartment and the hydrophilic catalyst layer of the gas diffusion electrode, the first ion exchange membrane being configured to exchange ions received from the anode to an opposed surface of the first ion exchange membrane;and at least one outlet through which a product of the salt solution is removed from the interior of the membrane electrolysis cell. 27, The membrane electrolysis cell of claim 26, further comprising a second ion exchange membrane, the second ion exchange membrane being disposed on the hydrophilic catalyst layer of the gas diffusion electrode and being configured to exchange ions received from the hydrophilic catalyst layer of the gas diffusion electrode to an opposed surface of the third ion exchange membrane;wherein the first and second ion exchange membranes define a base build up compartment interposed between the cathode compartment and the anode compartment.
  23. 27
    28. The membrane electrolysis cell of claim 27, further comprising a third ion exchange membrane, the third ion exchange membrane being interposed between the first ion exchange membrane and the anode compartment, wherein the first and third ion exchange membranes define a salt depletion compartment interposed between the anode compartment and the base build up compartment, the third ion exchange membrane being configured to exchange ions received from the salt depletion compartment to an opposed surface of the third ion exchange membrane.
  24. 28
    29. The membrane electrolysis cell of claim 28, further comprising:a fourth ion exchange membrane, the fourth ion exchange membrane being interposed between the third ion exchange membrane and the anode compartment, wherein the third and the fourth ion exchange membranes define an acid build up compartment interposed between the anode compartment and the salt depletion compartment, the fourth ion exchange membrane Date Reçue/Date Received 2023-03-30 A8148263CA -56being configured to exchange ions received from the anode compartment to an opposed surface of the fourth ion exchange membrane and into the acid build up compartment.
  25. 29
    30. The membrane electrolysis cell of claim 29 wherein the first and fourth ion exchange membranes comprise cation exchange membranes and the second and third ion exchange membranes comprise anion exchange membranes.
  26. 31
    32. A process for producing a base product, the process comprising the steps of:receiving, in a membrane electrolysis cell, a salt-containing solution comprising positive salt ions and negative salt ions, and a gas comprising O2;and delivering the base product from the membrane electrolysis cell, wherein the membrane electrolysis cell comprises: an anode positioned to extend within the interior of the membrane electrolysis cell and positioned in an anode compartment;a cathode comprising a gas diffusion electrode positioned to extend within the interior of the membrane electrolysis cell and positioned in a cathode compartment, the gas diffusion electrode comprising a first diffusion layer configured to diffuse gas and a first catalyst layer disposed on a surface of the first diffusion layer, the first catalyst layer having a hydrophilicity greater than that of the first diffusion layer and the first catalyst layer being configured to transport negative ions;a base build up compartment and a salt depletion compartment interposed between the cathode compartment and the anode compartment, the base build up compartment is interposed between the cathode compartment and the salt depletion compartment, and the salt depletion compartment is interposed between the base build up compartment and the anode compartment;a first anion exchange membrane, the first anion exchange membrane being disposed on the first catalyst layer of the gas diffusion electrode and being Date Reçue/Date Received 2023-03-30 A8148263CA configured to exchange ions received from the first catalyst layer of the gas diffusion electrode to an opposed surface of the first anion ion exchange membrane into the base build up compartment;a cation exchange membrane interposed between the salt depletion compartment and the base build up compartment, the cation exchange membrane being configured to exchange ions received from the salt depletion compartment to an opposed surface of the cation exchange membrane into the base build up compartment;a second anion exchange membrane interposed between the salt depletion compartment and the anode compartment, the second anion exchange membrane being configured to exchange ions received from the salt depletion compartment to an opposed surface of the second anion exchange membrane into the anode compartment;an inlet through which the salt-containing solution is received into the salt depletion compartment;a gas inlet positioned in the cathode compartment through which the gas comprising O2 is introduced into contact with the gas diffusion electrode;and an outlet through which the base product is removed from the base buildup compartment;wherein in performing the process: the salt-containing solution is received into the salt depletion compartment;the positive salt ions migrate through the cation exchange membrane to the opposed surface of the cation exchange membrane into the base build up compartment;the gas comprising O2 is reduced at the cathode to form OH’;the OH- ions migrate through the first anion exchange membrane to the opposed surface of the first anion exchange membrane into the base build up compartment;Date Reçue/Date Received 2023-03-30 A8148263CA -58the OH* ions combine with the positive salt ions in the base build up compartment to produce the base product;and the base product is removed from the base build up compartment.
  27. 32
    33. The process of claim 32, wherein the gas diffusion electrode further comprises a hydrophobic catalyst layer disposed on the opposite side of the first diffusion layer from the first catalyst layer.
  28. 34
    35. The process of claim 34, wherein the second diffusion layer is hydrophobic.
  29. 36
    37. The process of any one of claims 32 to 36, wherein the first diffusion layer is hydrophobic.
  30. 37
    38. The process of any one of claims 32 to 37, wherein the first catalyst layer is hydrophobic or hydrophilic.
  31. 38
    39. The process of any one of claims 32 to 38, wherein the base product comprises NaOH, KOH or LiOH, or a mixture thereof.
  32. 39
    40. The process of any one of claims 32 to 38, wherein the base product comprises NaOH.
  33. 40
    41. The process of claim 40, wherein the salt-containing solution comprises NaCI.
  34. 42
    43. The process of any one of claims 32 to 38, wherein the base product comprises LiOH.
  35. 43
    44. The process of claim 43, wherein the salt-containing solution comprises LiCI.
  36. 45
    46. The process of any one of claims 32 to 45, wherein the gas comprising oxygen is air.
  37. 46
    47. The process of any one of claims 32 to 45, wherein the gas comprising oxygen is humidified air. 48, The process of any one of claims 32 to 45, wherein the gas comprising oxygen is a waste stream from a nitrogen producing operation.
  38. 47
    49. A process for producing a base product, the process comprising the steps of:receiving, in a membrane electrolysis cell, a salt-containing solution comprising positive salt ions and negative salt ions, and a gas comprising O2;and delivering the base product from the membrane electrolysis cell, wherein the membrane electrolysis cell comprises: an anode positioned to extend within the interior of the membrane electrolysis cell and positioned in an anode compartment;a cathode comprising a gas diffusion electrode positioned to extend within the interior of the membrane electrolysis cell and positioned in a cathode compartment, the gas diffusion electrode comprising a first diffusion layer configured to diffuse gas and a first catalyst layer disposed on a surface of the first diffusion layer, the first catalyst layer having a hydrophilicity greater than that of the first diffusion layer and the first catalyst layer being configured to transport negative ions;a base build up compartment, a salt depletion compartment and an acid build up compartment interposed between the cathode compartment and the anode compartment, the base build up compartment is interposed between the Date Reçue/Date Received 2023-03-30 A8148263CA -60cathode compartment and the salt depletion compartment, the salt depletion compartment is interposed between the base build up compartment and the acid build up compartment, and the acid build up compartment is interposed between the salt depletion compartment and the anode compartment;a first anion exchange membrane, the first anion exchange membrane being disposed on the first catalyst layer of the gas diffusion electrode and being configured to exchange ions received from the first catalyst layer of the gas diffusion electrode to an opposed surface of the first anion ion exchange membrane into the base build up compartment;a first cation exchange membrane interposed between the salt depletion compartment and the base build up compartment, the cation exchange membrane being configured to exchange ions received from the salt depletion compartment to an opposed surface of the cation exchange membrane into the base build up compartment;a second anion exchange membrane interposed between the salt depletion compartment and the acid build up compartment, the second anion exchange membrane being configured to exchange ions received from the salt depletion compartment to an opposed surface of the second anion exchange membrane into the acid build up compartment;a second cation exchange membrane interposed between the acid build up compartment and the anode compartment, the second cation exchange membrane being configured to exchange ions received from the anode compartment to an opposed surface of the second cation exchange membrane into the acid build up compartment;an inlet through which the salt-containing solution is received into the salt depletion compartment;a gas inlet positioned in the cathode compartment through which the gas comprising O2 is introduced into contact with the gas diffusion electrode;and an outlet through which the base product is removed from the base buildup compartment;Date Reçue/Date Received 2023-03-30 A8148263CA -61wherein in performing the process: the salt-containing solution is received into the salt depletion compartment;the positive salt ions migrate through the first cation exchange membrane to the opposed surface of the cation exchange membrane into the base build up compartment;the gas comprising O2 is reduced at the cathode to form OH';the OH- ions migrate through the first anion exchange membrane to the opposed surface of the first anion exchange membrane into the base build up compartment;the OH- ions combine with the positive salt ions in the base build up compartment to produce the base product;and the base product is removed from the base build up compartment.
  39. 49
    51. The process of claim 49, wherein the gas diffusion electrode further comprises a second diffusion layer disposed on the opposite side of the first diffusion layer from the first catalyst layer.
  40. 51
    53. The process of claim 51 or 52, wherein the gas diffusion electrode further comprises a hydrophobic catalyst layer disposed on the second diffusion layer.
  41. 52
    54. The process of any one of claims 49 to 53, wherein the first diffusion layer is hydrophobic. Date Reçue/Date Received 2023-03-30 A8148263CA
  42. 53
    55. The process of any one of claims 49 to 54, wherein the first catalyst layer is hydrophobic or hydrophilic.
  43. 54
    56. The process of any one of claims 49 to 55, wherein the negative salt ions migrate through the second anion exchange membrane to the opposed surface of the second anion exchange membrane into the acid build up compartment, H + ions are formed in the anode compartment and migrate through the second cation exchange membrane into the acid build up compartment, the IT ions and the negative ions together form an acid in the acid build up compartment, and the acid is removed from the acid build up compartment.
  44. 55
    57. The process of any one of claims 49 to 56, wherein the base product comprises NaOH, KOH or LiOH, or a mixture thereof.
  45. 56
    58. The process of any one of claims 49 to 56, wherein the base product comprises NaOH.
  46. 61
    63. The process of any one of claims 49 to 56, wherein the base product comprises LiOH.
  47. 66
    68. The process of any one of claims 49 to 67, wherein the gas comprising oxygen is air.
  48. 67
    69. The process of any one of claims 49 to 67, wherein the gas comprising oxygen is humidified air.
  49. 68
    70. The process of any one of claims 49 to 67, wherein the gas comprising oxygen is a waste stream from a nitrogen producing operation. Date Reçue/Date Received 2023-03-30
Independent claims49