A rechargeable lithium air battery is provided. The battery contains a ceramic separator forming an anode chamber, a molten lithium anode contained in the anode chamber, an air cathode, and a non-aqueous electrolyte. The cathode has a temperature gradient comprising a low temperature region and a high temperature region, and the temperature gradient provides a flow system for reaction product produced by the battery.

Patent
   RE49205
Priority
Jan 22 2016
Filed
Jun 11 2019
Issued
Sep 06 2022
Expiry
Jan 18 2037
Assg.orig
Entity
Small
0
350
currently ok
17. A rechargeable lithium air battery comprising a ceramic separator forming an anode chamber, a molten lithium anode and a heater contained in the anode chamber, an air cathode, and a non-aqueous electrolyte, wherein the cathode has a temperature gradient comprising a low temperature region and a high temperature region, and wherein the temperature gradient provides a flow system for reaction product produced by the battery.
1. A rechargeable lithium air battery comprising a ceramic separator forming an anode chamber, a molten lithium anode contained in the anode chamber, an air cathode, a non-aqueous electrolyte, and an electrolyte reservoir adjacent to the cathode, wherein the cathode has a temperature gradient comprising a low temperature region and a high temperature region, and wherein the temperature gradient provides a flow system for reaction product produced by the battery.
18. A rechargeable lithium air battery comprising a ceramic separator forming an anode chamber, a molten lithium anode contained in the anode chamber, an air cathode, and a non-aqueous electrolyte, wherein the cathode has a temperature gradient comprising a low temperature region and a high temperature region, the temperature gradient provides a flow system for reaction product produced by the battery, wherein the cathode comprises a core adjacent to the ceramic separator and at least one fin extending radially outward from the core, and wherein the core is the high temperature region of the cathode and the at least one fin is the low temperature region of the cathode.
19. A rechargeable lithium air battery comprising a ceramic separator forming an anode chamber, a molten lithium anode contained in the anode chamber, an air cathode, a non-aqueous electrolyte, an electrolyte reservoir adjacent to the cathode, a pump and a temperature control system, wherein the temperature control system controls temperatures of the cathode and the electrolyte reservoir, the temperature of the electrolyte reservoir is about 200° C. to about 450° C., the cathode has a temperature gradient comprising a low temperature region and a high temperature region, and wherein the temperature gradient provides a flow system for reaction product produced by the battery.
0. 41. A rechargeable lithium air battery comprising:
a supply of air flow,
an air cathode,
an electrolyte pump,
a temperature control system,
a lithium ion conductive solid ceramic electrolyte
a lithium reservoir,
a molten salt electrolyte reservoir,
a molten lithium anode contained in the lithium reservoir, and
a molten inorganic salt electrolyte contained within the molten salt electrolyte reservoir,
wherein the solid ceramic electrolyte conducts lithium ions from the lithium reservoir to the molten inorganic salt electrolyte for reaction with oxygen supplied by air flow to the cathode, and the electrolyte pump promotes electrolyte flow to contact the cathode and to remove and carry lithium oxygen reaction product to the electrolyte reservoir.
0. 39. A rechargeable lithium air battery comprising:
a supply of oxygen flow,
a ceramic lithium ion conductive electrolyte,
a pump,
a lithium reservoir,
an inorganic electrolyte reservoir,
a molten lithium anode,
a cathode, and
an inorganic electrolyte contained within the electrolyte reservoir,
wherein the ceramic electrolyte is coupled between the lithium anode and the cathode, lithium is supplied to the anode from the lithium reservoir, oxygen is supplied to the cathode, and lithium ions are conducted by the ceramic electrolyte to the cathode, whereby lithium reacts with oxygen at the cathode, the pump circulates the electrolyte between the cathode and the reservoir, and the electrolyte washes reaction product from the cathode during discharge and supplies reaction product to the cathode during recharge.
0. 20. A rechargeable lithium air battery comprising a lithium reservoir, a reaction chamber, an air cathode, a temperature control system, and an electrolyte reservoir adjacent to the air cathode, wherein the lithium reservoir includes a ceramic separator and the electrolyte reservoir contains an inorganic non-aqueous electrolyte, the ceramic separator extends into the reaction chamber whereby lithium flows into the reaction chamber from the lithium reservoir and contacts the ceramic separator in the reaction chamber, the ceramic separator couples lithium to the inorganic non-aqueous electrolyte supplied from the electrolyte reservoir, and the inorganic non-aqueous electrolyte couples the reaction chamber to the electrolyte reservoir and carries reaction product therebetween whereby reaction product within the reaction chamber is removed.
0. 37. A rechargeable lithium air battery comprising:
a supply of air flow,
a heat exchanger,
a pump,
a cathode,
a temperature control system,
a reaction chamber,
a lithium reservoir,
a molten salt electrolyte reservoir,
a molten lithium anode contained in the lithium reservoir, and
a molten inorganic salt electrolyte contained within the molten salt electrolyte reservoir,
wherein lithium is supplied to the reaction chamber from the lithium reservoir, molten inorganic salt is supplied to the reaction chamber from the molten salt electrolyte reservoir and air is supplied to the reaction chamber by the heat exchanger, the heat exchanger transfers heat from oxygen-depleted air leaving the cathode to ambient air flowing to the cathode, and wherein lithium oxygen reaction product accumulates within the molten salt electrolyte reservoir.
0. 40. A rechargeable lithium air battery comprising:
a supply of oxygen flow,
a cathode,
a ceramic lithium ion conductive electrolyte,
a heat exchanger for transferring heat to air flowing to the cathode from air leaving the cathode,
a lithium reservoir,
an inorganic electrolyte reservoir,
a molten lithium anode,
a pump for supplying air to the cathode, and
an inorganic electrolyte contained within the electrolyte reservoir,
wherein the ceramic electrolyte is coupled between the lithium anode and the cathode, lithium is supplied to the anode from the lithium reservoir, oxygen is supplied to cathode with air supplied by the pump, and lithium ions are conducted by the ceramic electrolyte to the cathode, whereby lithium reacts with oxygen at the cathode, and wherein lithium oxygen reaction product accumulates within the inorganic electrolyte reservoir.
0. 35. A rechargeable lithium air battery comprising:
a supply of air flow,
an air cathode,
a heat exchanger for transferring heat to air flowing to the air cathode from air leaving the air cathode,
a pump for supplying air to the air cathode,
a temperature control system,
a lithium ion conductive solid ceramic electrolyte
a lithium reservoir,
an inorganic electrolyte reservoir,
a molten lithium anode contained in the lithium reservoir, and
an inorganic electrolyte contained within the inorganic electrolyte reservoir,
wherein lithium flows to the lithium anode from the lithium reservoir during charge and from the lithium anode to the lithium reservoir during recharge, the solid ceramic electrolyte conducts lithium ions from the lithium reservoir to the inorganic electrolyte for reaction with oxygen supplied by air flow to the air cathode, and wherein lithium oxygen reaction product is accumulated within the electrolyte reservoir.
2. The battery according to claim 1, further comprising a pump and a temperature control system.
3. The battery according to claim 2, wherein the pump controls movement of the electrolyte between the cathode and the electrolyte reservoir.
4. The battery according to claim 2, wherein the temperature control system controls temperatures of the cathode and the electrolyte reservoir.
5. The battery according to claim 1, wherein during discharge the reaction product moves from the high temperature region of the cathode to the low temperature region of the cathode.
6. The battery according to claim 1, wherein the electrolyte comprises a molten inorganic salt.
7. The battery according to claim 1, wherein the electrolyte comprises a silane or siloxane compound.
8. The battery according to claim 1, wherein the cathode comprises a porous ceramic material.
9. The battery according to claim 8, wherein the cathode is impregnated with a metal nitride or a carbon material.
10. The battery according to claim 1, wherein the cathode comprises an electrically conductive sintered metal oxide, metal nitride, carbon, or silicon carbide.
11. The battery according to claim 1, wherein the cathode comprises carbon, a polymer binder, and a metal oxide.
12. The battery according to claim 8, wherein the porous ceramic material comprises lithium lanthanum zirconium oxide.
13. The battery according to claim 1, where the anode chamber is maintained at about 20° C. to 200° C.
14. The battery according to claim 1, wherein the ceramic separator comprises a lithium ion conducting glass.
15. The battery according to claim 14, wherein the lithium ion conducting glass is selected from lithium beta alumina, lithium phosphate glass, lithium lanthanum zirconium oxide, Al2O3:Li7La3Zr2O12, lithium aluminum germanium phosphate, and lithium aluminum titanium phosphate.
16. The battery according to claim 1, wherein the battery has an operating temperature of about 200° C. to about 450° C.
0. 21. The battery according to claim 20, wherein the temperature control system controls temperatures of the cathode and the electrolyte reservoir.
0. 22. The battery according to claim 20, wherein the cathode comprises a core adjacent to the ceramic separator and at least one fin extending radially outward from the core.
0. 23. The battery according to claim 22, and wherein the core is a high temperature region of the cathode and the at least one fin is a low temperature region of the cathode.
0. 24. The battery according to claim 20, wherein the electrolyte comprises a molten inorganic salt.
0. 25. The battery according to clam 20, wherein the electrolyte comprises a silane or siloxane compound.
0. 26. The battery according to claim 20, wherein the cathode comprises a ceramic material.
0. 27. The battery according to claim 20, wherein the cathode is impregnated with a metal nitride or a carbon material.
0. 28. The battery according to claim 20, wherein the cathode comprises an electrically conductive sintered metal oxide, metal nitride, carbon, or silicon carbide.
0. 29. The battery according to claim 20, wherein the cathode comprises carbon, a polymer binder, and a metal oxide.
0. 30. The battery according to claim 26, wherein the ceramic material comprises lithium lanthanum zirconium oxide.
0. 31. The battery according to claim 20, where the anode chamber is maintained at about 20° C. to 200° C.
0. 32. The battery according to claim 20, wherein the ceramic separator comprises a lithium ion conducting glass.
0. 33. The battery according to claim 32, wherein the lithium ion conducting glass is selected from lithium beta alumina, lithium phosphate glass, lithium lanthanum zirconium oxide, Al2O3:Li7La3Zr2O12, lithium aluminum germanium phosphate, and lithium aluminum titanium phosphate.
0. 34. The battery according to claim 20, wherein the battery has an operating temperature of about 200° C. to about 450° C.
0. 36. The battery according to clam 35, wherein the lithium oxygen reaction product has at least limited solubility in the inorganic salt electrolyte.
0. 38. The battery according to clam 37, wherein the reaction chamber surrounds an air cathode and a solid ceramic lithium ion conductive electrolyte, wherein the solid ceramic lithium ion conductive electrolyte is coupled between the lithium reservoir and the molten inorganic salt electrolyte, isolating lithium from the molten inorganic salt electrolyte, interfacing lithium to the molten salt electrolyte or cathode, and conducting lithium ions from the lithium reservoir to the molten salt electrolyte for reaction with oxygen supplied to the cathode with air flow from the heat exchanger.

This application
LiNO3+2e→LiNO2+O−−  (Equation 2)

This work with molten nitrates was not performed with lithium air cells in mind; however, the effective operating voltage window for the electrolyte is suitable for such an application. As indicated by the reaction potential line in FIG. 1, applying a recharge voltage of 4.5V referenced to the lithium anode can cause lithium nitrate to decompose to lithium nitrite, releasing oxygen. On the other hand, lithium can reduce LiNO3 to Li2O and LiNO2. This reaction occurs when the LiNO3 voltage drops below 2.5V relative to lithium. As long as there is dissolved oxygen in the electrolyte, the reaction kinetics will favor the lithium oxygen reactions over LiNO3 reduction. Oxide ions are readily converted to peroxide (O22−) and aggressive superoxide (O2) ions in NaNO3 and KNO3 melts (M. H. Miles et al., J. Electrochem. Soc., 127,1761 (1980)).

A need remains for a lithium air cell which overcomes problems associated with those of the prior art.

A rechargeable lithium air battery comprises a ceramic separator forming an anode chamber, a molten lithium anode contained in the anode chamber, an air cathode, and a non-aqueous electrolyte, wherein the cathode has a temperature gradient comprising a low temperature region and a high temperature region, and wherein the temperature gradient provides a flow system for reaction product produced by the battery.

The foregoing summary, as well as the following detailed description of the invention, will be better understood when read in conjunction with the appended drawings. For the purpose of illustrating the invention, there are shown in the drawings embodiments which are presently preferred. It should be understood, however, that the invention is not limited to the precise arrangements and instrumentalities shown.

In the drawings:

FIG. 1 is a diagram depicting electrochemical reaction potentials in molten lithium nitrate at 300° C.;

FIG. 2 is a schematic of a battery cell according to one embodiment of the present invention;

FIG. 3 is a schematic of a battery cell according to another embodiment of the present invention in discharge;

FIG. 4 is a schematic of the battery cell of FIG. 3 in recharge;

FIG. 5 is a schematic of a high performance battery cell according to a further embodiment of the invention in discharge;

FIG. 6 is a schematic of a high performance battery cell of FIG. 5 in recharge;

FIG. 7 is a schematic of a battery cell according to a further embodiment of the invention; and

FIG. 8 is an Arrhenius plot showing lithium ion conductivities of several solid ceramic electrolytes.

This invention relates generally to energy storage, and more particularly to a lithium air electrochemical cell. For the purposes of this disclosure, the terms lithium air cell, lithium air electrochemical engine and lithium oxygen battery are used interchangeably.

The present invention provides a rechargeable lithium air cell having a high rate of cell charge/discharge with limited capacity fade, high energy density, high power density, and the ability to operate on oxygen from ambient air. As such, it removes significant barriers that have prevented the commercialization of lithium air cells. For example, the formation of mossy lithium powder and dendrites at the anode-electrolyte interface during cell recharge are eliminated by the use of molten lithium supplied as a flow reactant to the anode side of a stable solid state ceramic electrolyte. The battery according to the invention also includes a flow system for removing reaction product from the cathode.

The reactions of lithium with oxygen are as follows:
2Li+O2→Li2O2 Eo=3.10 V
4Li+O2→2Li2O Eo=2.91V
To avoid problems associated with past approaches to lithium air cells, a lithium air cell according to the invention may be operated at a wide range of temperatures in the range of 20° C. to 700° C., which include elevated temperatures, such as the preferred temperatures of about 200° C. to 450° C., more preferably about 200° to about 250° C. The solvent in the electrolyte may be selected based on the preferred operating temperature of the specific battery. Operation at elevated temperature enables faster kinetics for higher power density, thus eliminating a major issue associated with lithium air technology. Further, operation at elevated temperature also allows for the use of high temperature organic electrolytes and inorganic, molten salt electrolyte solutions that have high electrochemical stability, thus avoiding another of the major problems that has plagued conventional approaches to lithium air cells. Selected inorganic molten salts have good solubility of lithium/oxygen reaction products, thus allowing better control of cell kinetics.

The rechargeable air battery according to the invention contains a ceramic separator which forms an anode chamber, a molten lithium anode contained in the anode chamber, an air cathode, and a non-aqueous electrolyte. Each of these components will be described in more detail below.

The cell further comprises a flow system which is provided by a temperature gradient across the cathode. More specifically, the cathode has two temperature regions: a high temperature region (preferably located near the anode, where the reaction takes place) and a low temperature region which is located further away from the anode. As the electrolyte circulates through the cell during discharge, the reaction product produced by the battery migrates from the high temperature region to the low temperature region.

The anode chamber is preferably formed by a sealed ceramic enclosure that is lithium ion conductive and which functions as the separator for the battery. Preferably, the ceramic material is stable in contact with lithium metal and protects the anode from ambient oxygen and moisture. Preferred materials include lithium ion conducting glasses such as lithium beta alumina, lithium phosphate glass, lithium lanthanum zirconium oxide (LLZO), Al2O3:Li7La3Zr2O12, lithium aluminum germanium phosphate (LAGP), and lithium aluminum titanium phosphate (LATP). In a preferred embodiment, the anode chamber is maintained at about 20° C. to about 200° C., more preferably at about 175° C. to about 200° C., most preferably about 175° C. to about 195° C.

The anode comprises metallic lithium in a molten state; lithium has a melting point of about 180° C. The benefit of the molten lithium anode is that it limits undesirable dendrite growth in the cell.

The non-aqueous electrolyte is chosen for stability in contact with lithium. Thus, a breach in the ceramic enclosure will not result in rapid reactions, particularly because air ingress into the cell will be controlled. Preferred electrolytes include molten inorganic salts, for example, alkali nitrates such as lithium and sodium nitrate, alkali chlorides and bromides such as lithium, potassium and sodium chlorides and bromides, alkali carbonates such as sodium and lithium carbonates, as well as sodium nitrate-potassium nitrate (NaNO3—KNO3) eutectic mixtures and silane and siloxane-based compounds including, for example, hexamethylcyclotrisiloxane, octamethylcyclotetrasiloxane, decamethylcyclopentasiloxane, and dodecamethylhexatetrasiloxane with or without polyethylene oxide groups.

The inorganic salt, silane, or siloxane in the electrolyte is present in a solvent. The solvent is not limited, and may be selected based on the preferred operating temperature of the battery. A preferred solvent is LiCl—KCl eutectic, which works at a temperature of 350° C. to 450° C. The temperature of the electrolyte may be controlled with a heater and is preferably about 200° C. to 450° C.

The air cathode or positive electrode is porous so that oxygen can penetrate through the pores and form lithium peroxide as the reaction product; electrolyte also flows through the porous cathode. The cathode is preferably formed from a porous ceramic material which is lithium conductive and which is infiltrated or impregnated with a metal nitrate such as silver nitrate or a carbon material such as carbon fibers, carbon black, or carbon foam. Preferred porous ceramic materials include LLZO, LAGP, LATP, and lithium oxyanions such as lithium carbonate; most preferred is LLZO. In another preferred embodiment, the cathode contains a carbon material, a heat resistance polymer binder such as polyimide, and a metal oxide catalyst. An exemplary cathode material of this type contains about 60% by weight vapor grown carbon fibers, about 30% polyimide binder, and about 10% manganese dioxide. The cathode may also be constructed of electrically conductive sintered metal oxide powder, sintered metal nitride, carbon, or sintered silicon carbide.

As a preferred example, porous lithium lanthanum zirconium oxide (LLZO) ceramic substrates are prepared by pressing 10-15 grams of LLZO powder into a disc at 1000 psi. The disc is densified by placing in a furnace at 1000° C. for a period of 1 hour. The disc is then impregnated with a metal nitrate such as silver nitrate to form the cathode.

A thermodynamic process is employed to remove and supply electrolyte to cathode reaction sites. In its basic configuration, a temperature gradient is maintained across the structure of the cathode wetted by the electrolyte. The active charge/discharge reaction region of the cell forms the higher temperature region of the gradient. As a result of the temperature gradient, during discharge, reaction product accumulated within the electrolyte at the higher temperature region migrates to the lower temperature region where it precipitates/solidifies. The configuration of the cell is such that reaction product can accumulate within the lower temperature region physically away from the higher temperature reaction region of the cell. Accumulation of reaction product in the lower temperature region prevents it from significantly affecting the charge/discharge cell kinetics occurring in the higher temperature cathode reaction region. Ultimately, the cooled and settled reaction product will become re-dissolved in the electrolyte. This flow system is a key attribute of the inventive batteries.

In an alternative embodiment, the cell contains a pump to circulate the electrolyte across the temperature gradient. Such a cell contains a molten or another appropriate electrolyte reservoir and a temperature control system for controlling the relative temperatures of the cathode and the reservoir. Further, a heating element is employed for electrolyte temperature control. The pump system cycles electrolyte between the cathode and the electrolyte reservoir, which are adjacent to and in fluid communication with each other. Operation is such that during discharge, the cathode is maintained at a temperature that is elevated above that of the electrolyte reservoir. Reaction product dissolved in the electrolyte at high temperature in the cathode is carried to the electrolyte reservoir where it precipitates due to the lower temperature therein. In contrast, during charge, heat is supplied to the reservoir to maintain solubility of reaction product into the electrolyte. During charge, the electrolyte carries dissolved reaction product from the reservoir to the cathode, where it is electrolyzed. Oxygen is released and lithium ions are conducted through the ceramic separator such that lithium metal is plated at the anode. Electrolyte depleted of reaction product circulates back to the reservoir where it dissolves and carries more reaction product to the cathode as the charge process continues. The configuration is such that the reaction product is temporarily stored as a solid in the electrolyte reservoir as opposed to the cathode. Operation in this manner enables the cathode to be maintained in an optimum configuration for maximum charge and discharge performance.

FIG. 2 is a schematic drawing of a molten lithium electrochemical cell according to an embodiment of the invention. The cell is cylindrical in shape with fins running lengthwise along the cylinder and radiating outward away from the core of the cell. The basic structure is supported by hollow solid electrolyte cylinder (anode chamber) 2 which extends the length of the cell and functions as the cell separator. Molten lithium metal 14 is contained within reservoir 18 at the top of the cell and inside annular cavity 4 such that molten lithium is free to flow down from reservoir 18 into annular cavity 4. The top level of the molten anode 16 is not expected to totally fill the headspace 20 of the cell. Electrical heater element 6 runs the length of the cell and is positioned to maintain the lithium in a molten state. Heater 6 is part of the core structure that forms annular cavity 4 between the heater and the inner wall of the solid electrolyte 2 where molten lithium 14 is contained. Lithium 14 serves as the anode of the cell. Fined cathode cylinder 8 is positioned over the outer surface of electrolyte cylinder 2. The core of the fin is shown by 9. Cathode 8 is a porous structure containing liquid electrolyte which, due to its finned structure, is configured to have a wicking effect to maintain distribution of electrolyte therein. The reaction in the cell occurs at the interface where the cathode touches the separator, which is the hotter (high temperature) region of the cathode. The reaction product will not settle in this hot portion of the cathode, but rather on the colder side of the cathode (low temperature region). This allows for deeper cathode access. The cell preferably operates at 250° C. to 700° C. such that the eutectic salt mixture or other electrolyte is maintained in a molten state. Fins 10 extend into the surrounding air to facilitate heat transfer to the air such that heat supplied to the core induces a temperature gradient radially outward that is maintained between tips 12 of the fins 10 and the molten lithium at the core of the cell.

Dissolved reaction product 11 generated during discharge will preferentially precipitate in the lower temperature regions of the fins as opposed to the warmer core region. Molten electrolyte reservoir 1 contains excess electrolyte 3 and electrolyte that has been displaced by reaction product as it is produced and deposited within fins 10. Reservoir 1 may be maintained at a temperature that is lower than the core of the cell such that the reaction product preferentially precipitates therein as well. The temperature of the reservoir is controlled by heater element 5. During recharge, reaction product re-dissolves into the molten salt electrolyte to maintain concentration equilibrium as product is electrolyzed and lithium is re-plated at the anode. Heater 5 is used during recharge to heat the electrolyte to redissolve reaction product. The heat source for core 6 of the cell is not shown but would maintain temperature for operation during both charge and discharge.

Reservoir 18 supplies lithium 14 to annular cavity 4 so that the cavity does not become depleted as the lithium is consumed during discharge. Similarly, as lithium is reduced into the annular section during recharge, lithium is resupplied and accumulated in the reservoir.

FIGS. 3 and 4 show expanded views of radial plane cross section 26 of the cell in FIG. 2 and illustrate the operation of the cell. These Figs. show heater/spacer 6 including heater element 7, finned cathode 8, annular lithium cavity 4, solid electrolyte cylinder 2 and molten lithium anode 14. Referring to FIG. 3, oxygen 47 dissolves into the molten salt electrolyte from the cell's environment. During discharge, lithium 44 is oxidized and conducted through electrolyte separator 2 into the molten salt contained within cathode 8, giving rise to electric current flow 45 through load 40 to cathode 8. The electrons 43 oxidize molecular oxygen that is dissolved in the molten salt electrolyte, producing oxygen ions 46 to complete the reaction, with the resulting reaction product being either lithium peroxide (Li2O2 as 2Li+ and O2−−) and/or lithium oxide (Li2O as 2Li+ and O−−) ions suspended in the molten salt electrolyte solution. The two lithium ions 42 are anticipated to be individually dispersed within the electrolyte. The illustration is not intended to convey a diatomic pair bonded to each other. When the molten salt becomes saturated with reaction product, lithium peroxide 48 and/or lithium oxide begins to precipitate out of solution.

Heater element 7 located in the center region of the cell maintains the lithium anode and the electrolyte salt contained in the cathode in a molten state. Because of its location and because of the loss of heat from the cathode fins to the air surrounding the cell, a decreasing temperature exists between the core of the cell 6 and fin tips 12. The molar equilibrium of dissolved lithium/oxygen reaction product in the molten salt will be lower at the lower temperature fin tips 12 than at the high temperature cathode material 45 that is closest to the core of the cell. As such, reaction product 48 will tend to precipitate out of solution in the region of fin tips 12, resulting in a buildup of reaction product 41 in that location. Although reaction kinetics will favor the high temperature region, creation of reaction product in high temperature region 14 will cause over saturation and precipitation of reaction product in lower temperature fin tip region 12. Migration to fin tips 12 will occur because the molar concentration of reaction product in the salt is continuous between the two regions. The salt level will naturally be uniformly distributed, limited only by mass transport rate across the concentration gradients of the dissolved product within the molten salt. Further production of reaction products in the solution in the higher temperature regions will cause precipitation of reaction product in the lower temperature region since the increase would cause over saturation in the low temperature region.

Having the reaction product accumulate in the fin tip regions of the cell is important because precipitation in this region has only very limited adverse impacts on operation of the cell. The invention thus avoids over accumulation of reaction product in the active region of the cell which could cause a reduction of ionic conductivity and could block access and diffusion of oxygen to reaction sites.

FIG. 4 depicts recharge operation of the cell. For recharge, power source 50 is connected in the circuit in place of the load. Dissolved lithium/oxygen reaction product 52, 54, 56 is electrolyzed as electrons 53 are stripped by the power source and coupled to the anode side of the cell. During the process, molecular oxygen 57 is released to the environment and lithium ions 54 are conducted through the solid state separator 2 to the anode side of the cell where electrons 53 reduce it to lithium metal.

As reaction product 58 is consumed from the molten salt electrolyte solution, its molar concentration level in the electrolyte eutectic tends lower, thus allowing additional reaction product precipitant 41 to dissolve into the electrolyte. The re-dissolved reaction product naturally migrates toward the core region of the cell due to the concentration gradient created as reaction product in the core region is removed by the recharge process. Continuous dissolving of reaction product 41 maintains a molar equilibrium concentration level of the reaction product in the electrolyte in fin tip region 12 until all of discharge reaction product 41 is re-dissolved and electrolyzed, whereby the cell will be fully charged.

FIG. 5 is a schematic diagram of a high performance lithium oxygen or lithium air cell according to a further embodiment of the invention. Lithium reservoir 62 contains molten lithium 64 at a preferred temperature of 350° C. A portion 72 of lithium reservoir 62 extends into reactor reaction chamber and molten salt electrolyte reservoir 68 where separator 71 interfaces with the contents of reaction chamber and molten salt electrolyte reservoir 68. Reservoir 62 optionally includes ullage pressurized gas 66 to ensure flow of molten lithium into contact with solid state electrolyte separator 71. Reservoir 62 maintains the supply 101 of lithium to separator 71 as the cell is discharged. Separator 71 is a solid lithium ion conductive material and may be lithium beta alumina or lithium lanthanum zirconium oxide (LLZO). It is preferably a solid ceramic and/or a glass electrolyte. Cathode 98 and embedded current collector 74 are coupled to the surface of separator 71 on the external side of reservoir 62. Cathode 98 includes lithium/oxygen reaction sites for charge and discharge of the cell. Current collector 74 is connected to positive terminal 69 which allows electrons 81 to travel. Power is applied to terminals 82. Reactor Reaction chamber and molten salt electrolyte reservoir 68 contains molten salt electrolyte 78. Pump 75 supplies molten salt electrolyte solution 78 through supply tube 76 to nozzle 80. Nozzle 80, tube 85 and port 87 comprise a jet pump whereby fluid supplied by pump 75 creates a low pressure region that draws air 84 into port 87 such that it flows through conduit 86 to port 87. The fluid injection process creates a turbulent mixture region of air and molten electrolyte. It produces a washing effect as the resulting spray 104 exits the jet pump and impinges on cathode 98. This process creates an electrochemical potential between the lithium inside reservoir 62 on one side of electrolyte 71 (electrode terminal 70) and the oxygen dissolved and dispersed within electrolyte/air mixture washing through cathode 98 on the other side.

Operation of the cell is such that molten salt electrolyte 102 washing through cathode 98 dissolves lithium-air reaction products produced therein as the cell is discharged. Oxygen depleted air 99 exits the reactor chamber through port 100. Air 84 enters the cell at port 91 and passes through heat exchanger 90, heat exchanger 105 and heat exchanger 92 prior to entering reaction chamber and molten salt electrolyte reservoir 68. The flow rate can be controlled by valve 108. The heat exchangers preheat air 84 to a level such that it enters nozzle 87 near the temperature of molten salt electrolyte 78 exiting nozzle 80. Air entering the reaction chamber and molten salt electrolyte reservoir 68 is heated within heat exchangers 90 and 92 by oxygen depleted air 99 exiting the reaction chamber through conduit 88. Air passing through heat exchanger 105 inside reactor reaction chamber and molten salt electrolyte reservoir 68 is heated by molten electrolyte salt 78. Extraction of heat from electrolyte 78 in the electrolyte reservoir maintains its temperature below the temperature of the electrolyte 102 that is washing through cathode 98. Electric heater 96 is thermally coupled to separator 71 and supplies energy as needed to maintain the temperature of cathode 98 above the temperature the reservoir electrolyte 78 that is thermally coupled to heat exchanger 105. The effect of the thus maintained temperature difference is that electrolyte 102 washing through cathode 98 is raised to a higher temperature than electrolyte 78 that is in the reservoir. Continuous flow of electrolyte continuously dissolves and washes away reaction product being produced in cathode 98. On the other hand, when the electrolyte leaves cathode 98 and is cooled by heat exchanger 105 in the reservoir, its saturation limit for dissolved reaction product decreases, which causes a portion of the reaction product to precipitate, 97. The electric heater 94 is used to control the temperature of the electrolyte. The discharge process continues as pump 75 resupplies electrolyte 78, now depleted of reaction product, to nozzle 80 where it entrains more air and carries it to cathode 98, is reheated, and dissolves more reaction product as it occurs from lithium air reactions ongoing therein.

FIG. 6 illustrates operation of the cell under recharge conditions. Power is supplied to heater 94 to increase the solubility level of reaction product 107 in electrolyte 78. The dissolving of reaction product 107 in electrolyte 78 increases with temperature. Pump 75 pumps electrolyte 78 containing dissolved reaction product to nozzle 80 whereby it is sprayed 114 onto cathode 98. Power is applied to terminals 82 to electrolyze lithium/air reaction product in cathode 98. With the extraction of electrons 59 by a positive voltage applied to terminal 69 relative to terminal 70, reaction product is electrolyzed with oxygen 110 being released to escape reactor reaction chamber and molten salt electrolyte reservoir 68 via port 100. It exits the cell through port 78 106 after passing through heat exchanger 92 and 90 to preheat incoming air. During the recharge process, lithium ions are conducted through solid electrolyte separator 71 into reservoir 62 where it is reduced to lithium by electron flow via terminal 70. The recharge process continuously electrolyzes dissolved reaction product from molten salt in cathode 98 as reaction product depleted electrolyte 112 returns to reaction chamber and molten salt electrolyte reservoir 78 68, dissolves more reaction product, 107, and is pumped back to cathode 98. Molten lithium is re-supplied to reservoir 62 as indicated by arrow 103. Under recharge condition, valve 108 may optionally be closed since air intake into the reaction chamber is not needed.

In an exemplary cell shown in FIG. 7, solid electrolyte cylinder 2 with terminals 122 and 19 has an inner diameter of 2.54 cm and length of 50 cm. The volume of lithium would be 0.253 L (π(2.54(D)/2)2*50 cm(L)=253.35 cm3). The electrochemical potential for the lithium/oxygen reaction is 3.14V. Assuming an under load operating output voltage of 2.5V to allow for internal impedances, the energy capacity can be determined considering the Amp-Hour capacity of lithium being 3,860 Ah/kg (2,084 Ah/ltr). At an output voltage of 2.5V, the energy available from the cell would be 9650 Wh/kg (5210 Wh/ltr). Given the 0.253 L lithium volume in the example, the cell could supply 1.3 kWh of energy.

In a cell operating at 300° C. with NaNO3—KNO3 molten salt eutectic electrolyte, the conductivity of the electrolyte is 0.66 S/cm. Similarly, the conductivity of the solid electrolyte containment cylinder 2 at 300° C. is 0.1 S/cm as shown in FIG. 7. Assuming that the thickness 74 in FIG. 7 of the porous cathode 8 on the surface of the solid cylinder electrolyte 2 is 0.2 cm and that the thickness 72 of the solid electrolyte is 0.1 mm, the area specific resistance of the solid electrolyte plus the liquid can be calculated as 0.403 Ohm-cm2 (1/(0.66 S/cm)*0.2 cm+1/(0.1 S/cm)*0.01 cm). Given the 0.7 Volt allowance for internal IR loss, the net output current under load would be 1.73 A assuming other polarization losses are negligible. In such a case, the area specific power of the cell would be 4.34 Watts. This example cell has a surface area of 399 cm2(π*2.54*50), therefor its power output capability would be 1.73 kW.

FIG. 8 is an Arrhenius plot showing the conductivity of several solid state ionic conductive materials that would be suitable for use as the electrolyte cylinder 2. Impedance line 83 is for lithium beta alumina (data from J. L. Briant, J. Electrochem. Soc.: Electrochemical Science And Technology; 1834 (1981)) and line 84 is for lithium phosphate glass (data from B. Wang, Journal of Non-Crystalline Solids, Volume 183, Issue 3, 2; 297-306 (1995). Conductivity values 82 for aluminum oxide doped lithium lanthanum zirconium oxide (Al2O3:Li7La3Zr2O12) are from M Kotobuki, et. al.; Journal of Power Sources 196 7750-7754 (2011)).

Sintered LLZO electrolyte had been demonstrated to be stable with lithium in all solid state batteries. (See T. Yoshida, et. al.; Journal of The Electrochemical Society, 157-10, A1076-A1079 (2010)). The cyclic voltammogram of the Li/LLZO/Li cell showed that the dissolution and deposition reactions of lithium occurred reversibly without any reaction with LLZO. This indicates that a Li metal anode can be employed in contact with LLZO electrolyte.

In an exemplary embodiment, a 1 kWh battery is designed to operate at a discharge rate of 1 C, i.e. battery totally discharged in 1 hour. Lithium has a specific energy of 11,580 Wh/kg. If the mass of the oxygen is included, the net energy density is 5,200 Wh/kg. For a 1 kWh battery, 86 g of lithium would be needed. Lithium has a discharge current capacity of 3.86 Ah/g. At a discharge rate of 1 C, the required discharge current would be 332 A (86 g*3.86 Ah/g/1 hr). In this example, the area of the separator may be defined as 100 cm2 and the solid separator as LLZO or other suitable substitute thereof. In this example the use of a 100 cm2 separator results in a net current density of 3.32 A/cm2. As indicated in FIG. 8, the lithium ion conductivity, σ, of LLZO is approximately 0.1 S/cm. A separator made of this material and at a thickness, t, of 100 um would have an impedance of 0.1 Ohm-cm2, (1/σ*t). The output current supplied at 1 C would have a maximum drop in voltage of 0.4V relative to the cell's open circuit voltage. The primary reaction product of the cell is Li2O2. The amount of air flow required to sustain a 1 C discharge rate can be determined from the required oxygen flow.

The atomic mass of lithium is 6.9 g/mole. The primary discharge reaction for the cell is 2Li+O2>Li2O2, 1 mole of oxygen is required for per mole of lithium. The number of moles of lithium in the reaction is 12.46, (86 g/6.9 g/mole). Therefore, 6.23 moles or 199.4 grams (6.23 moles *32 grams/mole) of oxygen are required to balance the reaction. Air is 23% oxygen by mass so that the total amount of air needed for the reaction is 866 g, (199.4 g O2/(0.23 g O2/gAir). For the 1 C discharge, the air mass flow rate is 866 g/hr or 0.24 g/sec. The density of air is 0.00123 g/cm3. This gives a volumetric flow rate of 195 cm3/sec.

It will be appreciated by those skilled in the art that changes could be made to the embodiments described above without departing from the broad inventive concept thereof. It is understood, therefore, that this invention is not limited to the particular embodiments disclosed, but it is intended to cover modifications within the spirit and scope of the present invention as defined by the appended claims.

Johnson, Lonnie G., Campbell, Tedric D.

Patent Priority Assignee Title
Patent Priority Assignee Title
10566611, Dec 21 2015 JOHNSON IP HOLDING, LLC Solid-state batteries, separators, electrodes, and methods of fabrication
10686224, Apr 19 2017 Arizona Board of Regents on behalf of Arizona State University Battery with aluminum-containing cathode
10693170, Apr 08 2016 Hyundai Motor Company; IUCF-HYU (Industry-University Cooperation Foundation Hanyang University) Lithium air battery having multi-layered electrolyte membrane and manufacturing method thereof
10734686, Apr 17 2015 FIELD UPGRADING USA, INC Sodium-aluminum battery with sodium ion conductive ceramic separator
10797340, Sep 04 2017 Hyundai Motor Company; Kia Motors Corporation Lithium air battery
3237078,
3393355,
4299682, Feb 27 1979 Asahi Glass Company, Ltd. Gas diffusion electrode
4303877, May 05 1978 Brown, Boveri & Cie Aktiengesellschaft Circuit for protecting storage cells
4352068, Jun 28 1979 Max-Planck-Gesellschaft zur Forderung der Wissenschaften e.V. Method of measuring activities by means of solid ion conductors
4386020, May 10 1979 Max Planck Gesellschaft zur Forderung der Wissenschaften E.V. Process for the production of thermodynamically stable solid ion conductor materials
4419421, Jan 15 1979 Max-Planck-Gesellschaft zur Forderung der Wissenschaften e.V. Ion conductor material
4495078, Jul 14 1981 Max-Planck-Gesellschaft zur Foerderung der Wissenschaften e.V. Solid proton conductors and their use
4513069, Jul 14 1981 Max-Planck-Gesellschaft zur Foederung der Wissenschaften e.V. Galvanic cell comprising solid proton conductor as electrolyte
4526855, May 10 1979 Max-Planck-Gesellschaft zur Foerderung der Wissenschaften e.V. Process for the production of thermodynamically stable solid ion conductor materials
4614905, Oct 12 1982 Emerson Energy Systems AB Charging regulator
4654281, Mar 24 1986 Minnesota Mining and Manufacturing Company Composite cathodic electrode
4704341, Mar 29 1985 Max-Planck Gesellschaft Zur Foerderung Der Wissenschaften E.V. Lithium ion conductor
4710848, Aug 16 1985 Max-Planck-Gesellschaft zur Forderung der Wissenschaften e.V. Solid state cell
4719401, Dec 04 1985 Powerplex Technologies, Inc. Zener diode looping element for protecting a battery cell
4728590, Jul 28 1986 University of Chicago Electrochemical cell with high discharge/charge rate capability
4777119, Jan 29 1986 Hughes Electronics Corporation Method for developing poly(methacrylic anhydride) resists
4792752, Dec 12 1985 Drager AG; Max-Planck-Gesellschaft zur Forder/u/ ng der Wissenschaften e.v. Sensor for measuring partial pressures of gases
4803134, Jun 24 1987 Eltron Research, Inc. High energy density lithium-oxygen secondary battery
4885267, Sep 03 1984 Nippon Telegraph and Telephone Corporation Perovskite ceramic and fabrication method thereof
4931214, Oct 05 1984 Max-Planck-Gesellschaft zur Foerderung der Wissenschaften e.V. Oxidic bodies with ionic and electronic conductivity
5023153, Feb 07 1980 Max-Planck-Gesellschaft zur Forderung der Wissenschafter e.V. Solid electrode in an electrolytic cell
5202788, Aug 07 1990 WEPPNER, WERNER Electrochromic device with ionically or mixed ionically-electronically conductive electrolyte
5238761, Jul 29 1991 The United States of America as represented by the Secretary of the Air Cathode material for electrochemical cells
5260821, Apr 12 1991 SCHUCO INTERNATIONAL KG, A GERMAN CORP Electrochromic system
5270635, Apr 11 1989 Solid State Chargers, Inc. Universal battery charger
5291116, Jan 27 1992 ZINCFIVE POWER, INC Apparatus for charging alkaline zinc-manganese dioxide cells
5314765, Oct 14 1993 Martin Marietta Energy Systems, Inc. Protective lithium ion conducting ceramic coating for lithium metal anodes and associate method
5322601, Apr 15 1991 Max-Planck-Gesellschaft zur Forderung der Wissenschaften e.V. Amperometric gas sensor to selectively determine the partial pressures of a gas
5336573, Jul 20 1993 W R GRACE & CO -CONN Battery separator
5338625, Jul 29 1992 Martin Marietta Energy Systems, Inc.; MARTIN MARIETTA ENERGY SYSTEMS, INC , A DE CORP Thin film battery and method for making same
5362581, Apr 01 1993 W R GRACE & CO -CONN Battery separator
5387857, Feb 08 1991 Honda Giken Kogyo Kabushiki Kaisha Battery charging apparauts
5411592, Jun 06 1994 CHEVRONTEXACO TECHNOLOGY VENTURES LLC Apparatus for deposition of thin-film, solid state batteries
5432026, Mar 24 1993 Daimler-Benz AG Cooling system for high temperature battery
5445906, Aug 03 1994 Martin Marietta Energy Systems, Inc. Method and system for constructing a rechargeable battery and battery structures formed with the method
5455126, Jul 29 1992 Martin Marietta Energy Systems, Inc. Electra-optical device including a nitrogen containing electrolyte
5474959, Jul 08 1991 Max-Planck-Gesellschaft zur Forderung der Wissenschafter e.V. Process for the production of K- or Rb-β"- or -β- aluminum oxide ion conductors
5512147, Jul 29 1992 Martin Marietta Energy Systems, Inc. Method of making an electrolyte for an electrochemical cell
5522955, Jul 07 1994 Valence Technology, Inc Process and apparatus for producing thin lithium coatings on electrically conductive foil for use in solid state rechargeable electrochemical cells
5561004, Feb 25 1994 MARTIN MARIETTA ENERGY SYSTEMS, INC Packaging material for thin film lithium batteries
5567210, Jul 29 1992 Martin Marietta Energy Systems, Inc. Method for making an electrochemical cell
5569520, Jan 12 1994 Martin Marietta Energy Systems, Inc. Rechargeable lithium battery for use in applications requiring a low to high power output
5597660, Jul 29 1992 Martin Marietta Energy Systems, Inc. Electrolyte for an electrochemical cell
5612152, Jan 12 1994 Martin Marietta Energy Systems, Inc. Rechargeable lithium battery for use in applications requiring a low to high power output
5654084, Jul 22 1994 Martin Marietta Energy Systems, Inc. Protective coatings for sensitive materials
5677081, Sep 21 1994 Matsushita Electric Industrial Co., Ltd. Solid-state lithium secondary battery
5705293, Jan 09 1997 Lockheed Martin Energy Research Corporation Solid state thin film battery having a high temperature lithium alloy anode
5778515, Apr 11 1997 Valence Technology, Inc.; Valence Technology, Inc Methods of fabricating electrochemical cells
5783333, Nov 27 1996 Johnson Controls Technology Company Lithium nickel cobalt oxides for positive electrodes
5783928, Apr 03 1992 NANTONG JIANGHAI CAPACITOR CO , LTD Storage capacitor power supply
5811205, Dec 28 1994 Saft Bifunctional electrode for an electrochemical cell or a supercapacitor and a method of producing it
5821733, Feb 22 1994 NEC Corporation Multiple cell and serially connected rechargeable batteries and charging system
6022642, Dec 26 1996 GS YUASA INTERNATIONAL LTD Lithium ion battery containing an electrically insulative film
6136472, Jun 26 1998 Lithium Werks Technology BV Lithium-containing silicon/phosphates, method of preparation, and uses thereof including as electrodes for a battery
6139986, Jun 16 1998 NGK Insulators, Ltd. Lithium secondary battery
6168884, Apr 02 1999 Lockheed Martin Energy Research Corporation Battery with an in-situ activation plated lithium anode
6182340, Oct 23 1998 Face International Corp. Method of manufacturing a co-fired flextensional piezoelectric transformer
6201123, Jul 08 1998 Tosoh Corporation Catalyst composition, catalyst solution and process for preparing optically active epoxide
6242129, Apr 02 1999 JOHNSON IP HOLDING, LLC Thin lithium film battery
6255122, Apr 27 1999 GLOBALFOUNDRIES Inc Amorphous dielectric capacitors on silicon
6387563, Mar 28 2000 JOHNSON IP HOLDING, LLC Method of producing a thin film battery having a protective packaging
6413285, Nov 01 1999 PolyPlus Battery Company Layered arrangements of lithium electrodes
6413672, Dec 03 1998 Kao Corporation Lithium secondary cell and method for manufacturing the same
6541161, Sep 10 2001 The United States of America as represented by the Secretary of the Air Force Lithium ion conducting channel via molecular self-assembly
6679926, Jun 11 1999 Kao Corporation Lithium secondary cell and its producing method
6827921, Feb 01 2001 Nanopowder Enterprises Inc. Nanostructured Li4Ti5O12 powders and method of making the same
6852139, Jul 11 2003 JOHNSON IP HOLDING, LLC System and method of producing thin-film electrolyte
6886240, Jul 11 2003 JOHNSON IP HOLDING, LLC Apparatus for producing thin-film electrolyte
6887612, Jun 26 2001 BASF Aktiengesellschaft Fuel cell
7230404, Mar 24 2003 Panasonic EV Energy Co., Ltd. Battery pack apparatus with heat supply and discharge
7276308, Jan 31 2003 GM Global Technology Operations LLC Fuel cell system with recuperative heat exchanger
7510800, Feb 24 2006 NGK Insulators, Ltd.; KYUSHU UNIVERSITY All-solid-state battery
7524580, Oct 29 1999 FRAUNHOFER-GESELLSCHAFT ZUR FORDERUNG DE ANGEWANDTEN FORSCHUNG E V Films for electrochemical components and method for producing the same
7540886, Oct 11 2005 JOHNSON IP HOLDING, LLC Method of manufacturing lithium battery
7557055, Sep 20 2004 NXP USA, INC Tunable low loss material composition
7674559, Apr 27 2005 SAMSUNG SDI CO , LTD Lithium secondary battery including a separator
7691536, Feb 20 2004 JOHNSON IP HOLDING, LLC Lithium oxygen batteries and method of producing same
7732096, Apr 24 2003 U Chicago Argonne LLC Lithium metal oxide electrodes for lithium batteries
7776478, Jul 15 2005 Cymbet Corporation Thin-film batteries with polymer and LiPON electrolyte layers and method
7824795, Nov 14 2006 TOKYO METROPOLITAN PUBLIC UNIVERSITY CORPORATION Solid electrolyte structure for all-solid-state battery, all-solid-state battery, and their production methods
7901658, Mar 06 2004 BASF SE Chemically stable solid lithium ion conductor
7914932, Feb 24 2006 NGK Insulators, Ltd.; KYUSHU UNIVERSITY All-solid-state battery
7998622, Dec 02 2004 Kabushiki Kaisha Ohara All solid lithium ion secondary battery and a solid electrolyte therefor
8092941, Mar 06 2004 BASF SE Chemically stable solid lithium ion conductor
8173292, Jan 31 2008 Ohara Inc. Solid battery and a method for manufacturing an electrode thereof
8192869, Jan 31 2008 Ohara Inc. Lithium ion secondary battery and a method for manufacturing the same
8211496, Jun 29 2007 JOHNSON IP HOLDING, LLC Amorphous lithium lanthanum titanate thin films manufacturing method
8221916, Jan 31 2008 Ohara Inc. Method for manufacturing lithium ion secondary battery
8313721, Sep 21 2007 UChicago Argonne, LLC Lithium-oxygen (AIR) electrochemical cells and batteries
8383268, Nov 29 2002 Kabushiki Kaisha Ohara Lithium ion secondary battery and a method for manufacturing the same
8431287, Sep 25 2007 Ohara Inc. Lithium ion conductive solid electrolyte and method for producing the same
8476174, Oct 31 2008 Ohara, Inc. Glass and glass-ceramics
8568921, Aug 18 2004 Excellatron Solid State, LLC Regenerative ion exchange fuel cell
8778546, May 12 2009 Lawrence Livermore National Security, LLC. Air breathing lithium power cells
8795868, Mar 13 2013 Rechargeable lithium-air and other lithium-based batteries using molten nitrates
8808407, Jan 31 2008 Ohara Inc. Method of manufacturing a solid lithium ion secondary battery with an electrolyte layer and/or positive electrode layer containing a crystallite having a lithium ion conducting property
8822077, Apr 27 2007 Ohara Inc. Lithium secondary battery and electrode for lithium secondary battery
8852816, Mar 15 2011 Ohara Inc. All-solid secondary battery
8883355, Mar 19 2008 Ohara, Inc. Battery including lithium ion conductive solid electrolyte and method for producing the same
8951681, Mar 19 2008 Ohara Inc. Lithium ion battery with catalytic material
9034525, Jun 27 2008 JOHNSON IP HOLDING, LLC Ionically-conductive amorphous lithium lanthanum zirconium oxide
9153838, May 30 2011 Ohara Inc. Lithium ion conductive inorganic substance
9159989, Sep 17 2009 Ohara Inc. All-solid battery and method of manufacturing the same
9178255, Jun 20 2008 University of Dayton Lithium-air cells incorporating solid electrolytes having enhanced ionic transport and catalytic activity
9203123, Sep 23 2010 HE3DA S R O Lithium accumulator
9263770, Nov 05 2009 FIELD UPGRADING USA, INC Method for providing electrical potential from a sodium-based secondary cell
9266780, Jan 19 2010 Ohara Inc. All solid state battery with densification additive
9379375, Jun 23 2010 NGK Insulators, Ltd Lithium secondary battery and cathode of the lithium secondary battery
9385405, Nov 25 2011 Toyota Jidosha Kabushiki Kaisha; Denso Corporation Power storage device and battery temperature regulating method
9413033, Sep 19 2012 OHARA INC All-solid lithium ion secondary battery
9413036, Sep 06 2012 FIELD UPGRADING USA, INC Sodium-halogen secondary cell
9425454, Jun 23 2010 NGK Insulators, Ltd Lithium secondary battery and cathode of the lithium secondary battery with conductive bonding layer
9450278, Dec 20 2012 International Business Machines Corporation; Volkswagen AG Cathode material for lithium—oxygen battery
9680191, Oct 27 2011 Samsung Electronics Co., Ltd; NATIONAL UNIVERSITY CORPORATION MIE UNIVERSITY Electrolyte for lithium air battery and lithium air battery including the same
9711822, Apr 25 2012 TOHO TITANIUM CO , LTD ; NAKASHIMA SANGYO CO , LTD ; THE GAKUSHUIN SCHOOL CORPORATION Lithium-lanthanum-titanium oxide sintered material, solid electrolyte containing the oxide, and lithium air battery and all-solid lithium battery including the solid electrolyte
9917304, Dec 21 2012 Samsung Electronics Co., Ltd.; NATIONAL UNIVERSITY CORPORATION MIE UNIVERSITY Protected anode, lithium air battery including the same, and method of preparing ion conductive protective layer
9954260, Mar 16 2015 THUNDER POWER NEW ENERGY VEHICLE DEVELOPMENT COMPANY LIMITED Battery system with heat exchange device
9997813, Feb 18 2014 SK Innovation Co., Ltd. Lithium air battery
20010014505,
20010036578,
20020000541,
20020008706,
20020119375,
20030012996,
20030030039,
20030118897,
20030157407,
20040081888,
20040101761,
20040111874,
20040118700,
20040151986,
20040191617,
20050084758,
20050095506,
20050100793,
20050147890,
20050266150,
20060046149,
20060068282,
20060093916,
20060165578,
20060246355,
20060287188,
20070031323,
20070048617,
20070087269,
20070148545,
20070148553,
20070231704,
20070264579,
20080131781,
20080220334,
20080241698,
20080268346,
20090004371,
20090068563,
20090081554,
20090081555,
20090092903,
20090098281,
20090142669,
20090162755,
20090194222,
20090197178,
20090197182,
20090214957,
20090274832,
20100028782,
20100047696,
20100104948,
20100203383,
20100291443,
20100308278,
20110053001,
20110059369,
20110076542,
20110086274,
20110133136,
20110177397,
20110209859,
20110223460,
20110223467,
20110223487,
20110300451,
20110318650,
20120100433,
20120141881,
20120196189,
20120237834,
20120251882,
20120264021,
20120270115,
20130011751,
20130011752,
20130017454,
20130095394,
20130157149,
20130164616,
20130230777,
20130273437,
20130309551,
20130344416,
20140008006,
20140011080,
20140011095,
20140023933,
20140038058,
20140065456,
20140099538,
20140099556,
20140287305,
20150037688,
20150056518,
20150056520,
20150099187,
20150099197,
20150333307,
20160028133,
20160036109,
20160149261,
20160164153,
20160181657,
20160329539,
20160336583,
20170179521,
20170214106,
20170222287,
20190296276,
20190372148,
20210218091,
20210265616,
CN101434417,
CN101494299,
CN102013536,
CN102214827,
CN102934279,
CN104245624,
CN107437636,
CN1866583,
CN206048735,
CN206921981,
CN207413450,
DE102004010892,
DE102007030604,
DE102010019187,
DE102015220354,
DE4309070,
EP33935,
EP70020,
EP177062,
EP190605,
EP206339,
EP226955,
EP227996,
EP232513,
EP243975,
EP249802,
EP408039,
EP470597,
EP693581,
EP1237212,
EP1271683,
EP1431422,
EP1431423,
EP2037527,
EP2086040,
EP2181971,
EP238383,
EP2685551,
EP2706598,
EP2903060,
FR2466107,
GB1329688,
GB1599792,
GB2226441,
JP2000311710,
JP2000331680,
JP2000331684,
JP2001126757,
JP2001126758,
JP2001243954,
JP2003132921,
JP2004127613,
JP2006260887,
JP2006261008,
JP2006310295,
JP2008505458,
JP2009176741,
JP2010067499,
JP2010080426,
JP2010129190,
JP2010132533,
JP2010244729,
JP2011134675,
JP2011150817,
JP2011249254,
JP2012003940,
JP2012099315,
JP2012146479,
JP2013037992,
JP2013157084,
JP2013532359,
JP2015013775,
JP2015138741,
JP2015144061,
JP2015204215,
JP2015230801,
JP5310417,
JP628452,
JP7235291,
KR20140006046,
RU2126192,
WO2005085138,
WO2006005066,
WO2006019245,
WO2007004590,
WO2007075867,
WO2009003695,
WO2009029746,
WO2011007445,
WO2011125481,
WO2011150528,
WO2011154869,
WO2011156392,
WO2012008422,
WO2012016606,
WO2012018831,
WO2012128374,
WO2012144553,
WO2013049460,
WO2013085557,
WO2013130983,
WO2013131005,
WO2014058683,
WO2014058684,
WO2015007680,
WO2015104538,
WO2015128982,
WO2015151144,
WO2016102373,
WO2016116400,
WO2016141765,
WO2020225313,
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