Direct production of lithium hydroxide from brine by electrochemical flow cells
Disclosed are a system and methods for producing lithium hydroxide directly from natural brine by an electrochemical approach. In one example version of the system, an electrochemical cell operates in two states. In one state, lithium cations (Li + ) intercalate into a first electrode from the brine, and sodium cations (Na + ) deintercalate from a second electrode into the brine. In another state, lithium cations deintercalate from the first electrode into a dilute lithium hydroxide (LiOH) solution, and sodium cations intercalate to the second electrode from a concentrated sodium hydroxide (NaOH) solution. Hydroxide anions (OH − ) transport through an anion exchange membrane to combine with lithium cations (Li + ) to form LiOH, continuously increasing its concentration.
1 . A system for recovery of a first cation from a liquid containing the first cation, the system comprising:
a first electrode comprising a first cation host material;
a second electrode comprising a second cation host material, the first electrode and the second electrode being spaced apart to define a flow channel between the first electrode and the second electrode;
an anion exchange membrane including an openable portion for shifting the anion exchange membrane into a first state and a second state, wherein in the first state, the flow channel is separated into a first subchannel of the flow channel and a second subchannel of the flow channel such that the first subchannel and the second subchannel are not in fluid communication, wherein in the first state, the first subchannel is in fluid communication with the first electrode, and wherein in the first state, the second subchannel is in fluid communication with the second electrode, and wherein in the second state, the first subchannel and the second subchannel are in fluid communication;
a first tank in fluid communication with an inlet and an outlet of the first subchannel, the first tank storing a first solution containing the first cation, the first solution being transported through the first subchannel;
a second tank in fluid communication with an inlet and an outlet of the second subchannel, the second tank storing a second solution containing a second cation, the second solution being transported through the second subchannel; and
an electrical device in electrical communication with the first electrode and the second electrode to supply a current to the first electrode and the second electrode,
wherein the first cation and the second cation are different.
2 . The system of claim 1 wherein:
the liquid is brine.
3 . The system of claim 1 wherein:
the liquid is a geothermal brine.
4 . The system of claim 1 wherein:
the first cation is lithium, and
the first cation host material is a lithium host material.
5 . The system of claim 4 wherein:
the lithium host material comprises lithium manganese oxide or lithium titanium oxide.
6 . The system of claim 4 wherein:
the second cation is sodium, and
the second cation host material is a sodium host material.
7 . The system of claim 6 wherein:
the sodium host material comprises sodium manganese oxide or sodium titanium oxide.
8 . The system of claim 1 wherein:
the first solution is lithium hydroxide.
9 . The system of claim 1 wherein:
the second solution is sodium hydroxide.
10 . A system for recovery of a first cation from a liquid containing the first cation, the system comprising:
a first electrode comprising a first cation host material;
a second electrode comprising a second cation host material, the first electrode and the second electrode being spaced apart to define a flow channel between the first electrode and the second electrode;
an anion exchange membrane including an openable portion for shifting the anion exchange membrane into a first state and a second state, wherein in the first state, the flow channel is separated into a first subchannel of the flow channel and a second subchannel of the flow channel such that the first subchannel and the second subchannel are not in fluid communication, wherein in the second state, the first subchannel and the second subchannel are in fluid communication, wherein the first subchannel is in fluid communication with the first electrode, and wherein the second subchannel is in fluid communication with the second electrode,
a first tank in fluid communication with an inlet and an outlet of the first subchannel, the first tank storing a first solution containing the first cation, the first solution being transported through the first subchannel when the anion exchange membrane is in the first state;
a second tank in fluid communication with an inlet and an outlet of the second subchannel, the second tank storing a second solution containing a second cation, the second solution being transported through the second subchannel when the anion exchange membrane is in the first state;
a third tank in fluid communication with an inlet and an outlet of the flow channel, the third tank storing the liquid containing the first cation, the liquid containing the first cation being transported through the flow channel when the anion exchange membrane is in the second state; and
an electrical device in electrical communication with the first electrode and the second electrode to supply a current to the first electrode and the second electrode.
11 . The system of claim 10 further comprising:
a fourth tank in fluid communication with the first electrode, the second electrode, the flow channel, the first subchannel, and the second subchannel, the fourth tank storing a wash fluid, the wash fluid being transported through the first electrode, the second electrode, the flow channel, the first subchannel, and the second subchannel after the liquid containing the first cation is transported through the flow channel.
12 . The system of claim 10 wherein:
the openable portion comprises a door in the anion exchange membrane.
13 . The system of claim 10 wherein:
the anion exchange membrane allows hydroxide anions to pass though the anion exchange membrane.
14 . The system of claim 10 wherein:
the system generates electricity when the liquid containing the first cation is transported through the flow channel, and
the system consumes electricity when the first solution is transported through the first subchannel, and the second solution is transported through the second subchannel.
15 . The system of claim 10 wherein:
the electrical device comprises a storage battery,
the system generates electricity that is stored in the storage battery when the liquid containing the first cation is transported through the flow channel, and
the system consumes electricity from the storage battery when the first solution is transported through the first subchannel, and the second solution is transported through the second subchannel.
16 . The system of claim 10 wherein:
the electrical device comprises a resistive load and a power supply to supply the current to the first electrode and the second electrode,
the system generates electricity that is provided to the resistive load when the liquid containing the first cation is transported through the flow channel, and
the system consumes electricity from the power supply when the first solution is transported through the first subchannel, and the second solution is transported through the second subchannel.
17 . A system comprising a plurality of systems according to claim 10 .
18 . The system of claim 17 wherein:
one of the plurality of systems generates electricity during a time period, and
another of the plurality of systems consumes electricity generated by the one of the plurality of systems during the time period.
19 . The system of claim 1 wherein:
the openable portion comprises a door in the anion exchange membrane.