Oxygen supply device
The oxygen supply device addresses size and contamination issues by using a lithium deposition layer with a permeable cover to manage water vapor and prevent foreign matter leakage, achieving enhanced oxygen generation and containment.
Patent Information
- Application Number
- PCT/JP2025/009429
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-03-13
- Filing Date
- 2025-03-12
- Publication Date
- 2025-09-18
AI Technical Summary
Existing oxygen supply devices face challenges in being compact in size while effectively absorbing water vapor and preventing foreign matter leakage, particularly from metal deposits on the negative electrode.
The device incorporates a lithium deposition layer with a lithium sealing portion that allows water vapor entry while preventing foreign matter leakage, using a cover with permeable pores to manage lithium deposition and enhance oxygen generation.
The solution enables a smaller device to generate more oxygen while effectively containing foreign matter and reducing external contaminants, enhancing efficiency and compactness.
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Figure JP2025009429_18092025_PF_FP_ABST
Abstract
Description
Oxygen delivery device
[0001] The present disclosure relates to an oxygen delivery device. This application claims priority to International Application PCT / JP2024 / 009830, filed March 13, 2024, and incorporates by reference the entire disclosure of said international application.
[0002] Oxygen supply devices that supply oxygen to the outside are known (see, for example, Patent Documents 1 and 2 listed below). The oxygen supply device described in Patent Document 1 includes a positive electrode, a negative electrode, and an electrolyte layer. The electrolyte layer contains zinc ions and hydroxide ions. At the negative electrode, zinc is produced based on a reaction of the zinc ions. At the positive electrode, oxygen is produced based on a reaction of the hydroxide ions. The electrolyte layer is located between the positive electrode and the negative electrode. Furthermore, the oxygen supply device described in Patent Document 2 includes a cover. The cover covers the positive electrode, the negative electrode, and the electrolyte layer.
[0003] JP 2023-11956 A JP 2019-46785 A
[0004] Depending on the application and purpose, oxygen supply devices are required to have the ability to absorb (adsorb) water vapor from the outside. Therefore, a tentative plan is to form a relatively large hole in the part of the cover facing the negative electrode. However, with this plan, foreign matter (dust) resulting from metal deposits on the negative electrode leaks out of the device through the hole. In this case, there is a problem in that the foreign matter contaminates the outside. Furthermore, oxygen supply devices are required to be smaller and generate more oxygen.
[0005] An object of the present disclosure is to provide an oxygen supply device that can be made smaller and that can increase the amount of oxygen generated while taking in water vapor outside the oxygen supply device and suppressing leakage of foreign matter to the outside.
[0006] The oxygen supply device according to the present disclosure includes an oxygen generating layer including a first electron conductive material, a first lithium ion conductive material, and a lithium oxide, a lithium deposition layer disposed at a distance from the oxygen generating layer in the thickness direction, the lithium deposition layer including a second electron conductive material, a lithium ion conducting portion disposed between the oxygen generating layer and the lithium deposition layer, the lithium ion conducting portion including the second lithium ion conductive material, and a cover covering the lithium deposition layer. The cover is in contact with the lithium deposition layer and includes a lithium sealing portion that is permeable to water vapor.
[0007] The oxygen supply device according to the present disclosure can be made smaller and generate more oxygen while taking in external water vapor and preventing foreign matter from leaking to the outside.
[0008] Figure 1 is a cross-sectional view of a first embodiment of an oxygen delivery device according to the present disclosure. Figure 2 is a cross-sectional view of a variation of the oxygen delivery device shown in Figure 1.
[0009] An oxygen supply device according to the present disclosure includes an oxygen generating layer including a first electron conductive material, a first lithium ion conductive material, and a lithium oxide, a lithium deposition layer disposed at a distance from the oxygen generating layer in the thickness direction, the lithium deposition layer including a second electron conductive material, a lithium ion conducting portion disposed between the oxygen generating layer and the lithium deposition layer, the lithium ion conducting portion including the second lithium ion conductive material, and a cover covering the lithium deposition layer. The cover is in contact with the lithium deposition layer and includes a lithium sealing portion that is permeable to water vapor.
[0010] This oxygen supplying device can prevent foreign matter resulting from lithium deposited in the lithium deposition layer from leaking to the outside by using a cover. Furthermore, this oxygen supplying device can allow external water vapor to react with the lithium deposited in the lithium deposition layer through the lithium sealing portion. This allows the water vapor to be taken into the device. Furthermore, because lithium has a higher ionization tendency than zinc, the amount of oxygen generated in the oxygen generating layer can be increased despite the device's small size.
[0011] In the oxygen supplying device, the lithium sealing portion may be made of a dense material. In this oxygen supplying device, leakage of foreign matter resulting from lithium precipitated in the lithium precipitate layer to the outside can be further suppressed.
[0012] In the oxygen supply device, the lithium sealing portion may have a plurality of pores with an average pore diameter of 0.4 nm or more and 50 nm or less. Since the average pore diameter of the plurality of pores in the lithium sealing portion is 50 nm or less, leakage of foreign matter resulting from lithium precipitated in the lithium deposition layer to the outside can be suppressed. Since the average pore diameter of the plurality of pores in the lithium sealing portion is 0.4 nm or more, water vapor can be efficiently taken in from the outside. This water vapor can be reacted with lithium more efficiently, reducing the amount of water vapor outside and deactivating the lithium.
[0013] In the oxygen supply device, the lithium sealing portion may be permeable to carbon dioxide. In this oxygen supply device, carbon dioxide that has permeated the lithium sealing portion reacts with lithium in the lithium deposit layer, thereby reducing the amount of external carbon dioxide and deactivating the lithium.
[0014] The oxygen supply device may further include a second cover covering the oxygen generating layer, and the second cover may include an oxygen permeable layer in contact with the oxygen generating layer and through which oxygen can pass. In this oxygen supply device, the second cover can prevent foreign matter from leaking to the outside through the oxygen permeable layer. Oxygen generated in the oxygen generating layer can be reliably discharged to the outside through the oxygen permeable layer.
[0015] In the oxygen supply device, the lithium ion conductive portion may have a sheet shape, and the end face of the peripheral end of the lithium ion conductive portion may be in contact with the lithium sealing portion, thereby preventing lithium from leaking from the end face of the peripheral end of the lithium ion conductive portion.
[0016] [Specific Example of First Embodiment] A specific example of a first embodiment of the oxygen supply device of the present disclosure will be described with reference to Fig. 1. In the following drawings, the same or corresponding parts are designated by the same reference numerals, and the description thereof will not be repeated. Fig. 1 is a cross-sectional view of the first embodiment of the oxygen supply device according to the present disclosure.
[0017] [Basic configuration of the oxygen supply device 1 of the first embodiment] The oxygen supply device 1 extends along a plane P. The oxygen supply device 1 has a thickness. The thickness direction TD of the oxygen supply device 1 is perpendicular to the plane P. The oxygen supply device 1 has, for example, a circular or rectangular shape when viewed in the thickness direction TD. The oxygen supply device 1 has a sheet shape. The oxygen supply device 1 includes an oxygen generating layer 2, a lithium deposition layer 3, a lithium ion conductive section 4, a second cover 5, a cover 6, a first terminal 7, and a second terminal 8.
[0018] [Oxygen Generating Layer 2] The oxygen generating layer 2 extends along the plane P. The oxygen generating layer 2 has a sheet shape. When viewed in the thickness direction TD, the oxygen generating layer 2 has, for example, a circular or rectangular shape. The oxygen generating layer 2 includes a peripheral edge 21 and a central portion 22. When viewed in the thickness direction TD, the peripheral edge 21 includes the outer edge of the oxygen generating layer 2. When viewed in the thickness direction TD, the central portion 22 is located inside the peripheral edge 21. The oxygen generating layer 2 has a first main surface 23, a second main surface 24, and a side surface 25. The second main surface 24 is spaced apart from the first main surface 23 in the thickness direction TD. In other words, the second main surface 24 is located away from the first main surface 23 in the thickness direction TD. The side surface 25 connects the outer edge of the first main surface 23 and the outer edge of the second main surface 24. The side surface 25 is an end face of the peripheral edge 21. The oxygen generating layer 2 may be porous or non-porous. The oxygen generating layer 2 is preferably porous. The oxygen generating layer 2 is capable of generating oxygen.
[0019] The oxygen generating layer 2 includes a first electron conductive material, a first lithium ion conductive material, and a lithium oxide. The first electron conductive material may be a conductive inorganic material. Examples of inorganic materials include metals and conductive carbon. Examples of metals include at least one selected from the group consisting of aluminum, titanium, gold, silver, copper, platinum, chromium, and nickel. The metal may include an alloy. Examples of alloys include stainless steel. Examples of conductive carbon include acetylene black, carbon black, carbon fiber, and graphite. Examples of the first lithium ion conductive material include electrolytes such as oxide-based inorganic lithium ion conductive solid electrolytes, sulfide-based inorganic lithium ion conductive solid electrolytes, halide-based inorganic lithium ion conductive solid electrolytes, and organic-based lithium ion conductive electrolytes. Examples of oxide-based inorganic lithium ion conductive solid electrolytes include Nasicon-type solid electrolytes, garnet-type solid electrolytes, and perovskite-type solid electrolytes. Examples of sulfide-based inorganic lithium ion conductive solid electrolytes include argyrodite-type solid electrolytes and thiolisicone-type solid electrolytes. The sulfide-based inorganic lithium ion conductive solid electrolyte may be crystalline or amorphous. The halide-based inorganic lithium ion conductive solid electrolyte may be, for example, an antiperovskite-type solid electrolyte. The halide-based inorganic lithium ion conductive solid electrolyte may be, for example, a crystalline or amorphous. The organic lithium ion conductive electrolyte may be, for example, a polyethylene oxide compound. The organic lithium ion conductive electrolyte may be either an intrinsic polymer or a gel polymer. The lithium oxide may be lithium peroxide (Li 2 O 2 ) and lithium oxide (Li 2O). The first electron conductive material, the first lithium ion conductive material, and the lithium oxide in the oxygen generating layer 2 are, for example, in the form of a compact. The content of the first electron conductive material in the oxygen generating layer 2 is 20 mass% or more and 70 mass% or less. The content of the lithium oxide in the oxygen generating layer 2 is 10 mass% or more and 50 mass% or less. The content of the first lithium ion conductive material in the oxygen generating layer 2 is the balance of the first electron conductive material and the lithium oxide. When the oxygen generating layer 2 is porous, the porosity of the oxygen generating layer 2 is 10% or more and 50% or less. The thickness of the oxygen generating layer 2 is 100 μm or more and 2000 μm or less.
[0020] [Lithium Deposit Layer 3] The lithium deposit layer 3 is disposed at a distance from the oxygen generating layer 2 in the thickness direction TD. In other words, the lithium deposit layer 3 is located away from the oxygen generating layer 2 in the thickness direction TD. The lithium deposit layer 3 faces the oxygen generating layer 2 in the thickness direction TD. The lithium deposit layer 3 overlaps the oxygen generating layer 2 as viewed in the thickness direction TD. The lithium deposit layer 3 extends along a plane P. The lithium deposit layer 3 has, for example, a circular or rectangular shape as viewed in the thickness direction TD. The lithium deposit layer 3 has a sheet shape. The lithium deposit layer 3 includes a peripheral edge 31 and a central portion 32. The peripheral edge 31 includes the outer edge of the lithium deposit layer 3 as viewed in the thickness direction TD. The central portion 32 is located inside the peripheral edge 31 as viewed in the thickness direction TD. The lithium deposit layer 3 has a third major surface 33, a fourth major surface 34, and a side surface 35. The third major surface 33 faces the second major surface 24. The fourth major surface 34 is disposed at a distance from the third major surface 33 in the thickness direction TD. In other words, the fourth major surface 34 is located away from the third major surface 33 in the thickness direction TD. The side surface 35 connects the outer edge of the third major surface 33 and the outer edge of the fourth major surface 34. The side surface 35 is an end face of the peripheral end portion 31. The side surface 35 overlaps the side surface 25 when viewed in the thickness direction TD. The lithium deposit layer 3 is porous or non-porous. The lithium deposit layer 3 is preferably non-porous.
[0021] The lithium deposit layer 3 contains a second electronic conductive material. Preferably, the lithium deposit layer 3 consists solely of the second electronic conductive material. Examples of the second electronic conductive material include the conductive inorganic materials listed above as the first electronic conductive material. The content of the second electronic conductive material in the lithium deposit layer 3 is 90% by mass or more, preferably 97% by mass or more, and more preferably 99% by mass or more, and the upper limit of the content of the second electronic conductive material in the lithium deposit layer 3 is 100% by mass.
[0022] [Lithium ion conductive portion 4] The lithium ion conductive portion 4 is disposed between the oxygen generating layer 2 and the lithium deposition layer 3. The lithium ion conductive portion 4 is sandwiched between the oxygen generating layer 2 and the lithium deposition layer 3. The oxygen generating layer 2, the lithium ion conductive portion 4, and the lithium deposition layer 3 are arranged in this order in the thickness direction TD. The lithium ion conductive portion 4 has, for example, a circular or rectangular shape when viewed in the thickness direction TD. The lithium ion conductive portion 4 extends along a plane P. The lithium ion conductive portion 4 has a sheet shape. The lithium ion conductive portion 4 includes a peripheral edge portion 41 and a central portion 42. The peripheral edge portion 41 includes the outer edge of the lithium ion conductive portion 4 when viewed in the thickness direction TD. The peripheral edge portion 41 also includes an end face 410, which is a peripheral side surface. The central portion 42 is located inside the peripheral edge portion 41 when viewed in the thickness direction TD. The lithium ion conductive portion 4 includes a fifth main surface 43 and a sixth main surface 44. The fifth main surface 43 and the sixth main surface 44 are in contact with the oxygen generating layer 2 and the lithium deposit layer 3, respectively. The fifth main surface 43 is in contact with the entire second main surface 24 of the oxygen generating layer 2. Specifically, the peripheral edge 41 and the central portion 42 of the fifth main surface 43 are in contact with the peripheral edge 21 and the central portion 22 of the second main surface 24, respectively. The sixth main surface 44 is in contact with the entire third main surface 33 of the lithium deposit layer 3. Specifically, the peripheral edge 41 and the central portion 42 of the sixth main surface 44 are in contact with the peripheral edge 31 and the central portion 32 of the third main surface 33, respectively. The lithium ion conductive portion 4 may be a single layer or a multi-layer.
[0023] The lithium ion conductive portion 4 may or may not have fluidity at 25°C. Preferably, the lithium ion conductive portion 4 does not have fluidity at 25°C, from the viewpoint of preventing leakage of the lithium ion conductive portion 4 to the outside. Specifically, the lithium ion conductive portion 4 is solid at 25°C. The lithium ion conductive portion 4 includes a second lithium ion conductive material. Examples of the second lithium ion conductive material include the electrolytes listed for the first lithium ion conductive material. The lithium ion conductive portion 4 is composed of a lithium ion conductive electrolyte. The lithium ion conductive electrolyte is a solid electrolyte. The lithium ion conductive portion 4 may contain a second lithium ion conductive material and a polymer. The polymer disperses the second lithium ion conductive material that is particulate at 25°C. Examples of the polymer include polyethylene oxide, polyethylene, polypropylene, and polyvinylidene fluoride. The content of the second lithium ion conductive material in the lithium ion conductive portion 4 is 50% by mass or more and 100% by mass or less. The thickness of the lithium ion conductive portion 4 is 10 μm or more and 200 μm or less.
[0024] [Second cover 5] The second cover 5 faces the outside of the oxygen supply device 1. The second cover 5 covers the oxygen generating layer 2. Specifically, the second cover 5 covers the first main surface 23 and the side surface 25 of the oxygen generating layer 2. The second cover 5 contacts the first main surface 23 and the side surface 25. The second cover 5 has a sheet shape. The second cover 5 has, for example, a circular or rectangular shape when viewed in the thickness direction TD. The second cover 5 has a shape that follows the first main surface 23 and the side surface 25. The second cover 5 includes a peripheral edge 51 and a central portion 52. The central portion 52 is located inside the peripheral edge 51. The central portion 52 extends along the plane P. The thickness of the second cover 5 (the central portion 52) is 100 μm or more and 500 μm or less.
[0025] [Cover 6] The cover 6 faces the outside of the oxygen supply device 1. The cover 6 covers the lithium deposit layer 3 and the lithium ion conductive portion 4. Specifically, the cover 6 covers the fourth main surface 34 and the side surface 35 of the lithium deposit layer 3 and the end surface 410 of the lithium ion conductive portion 4. The cover 6 seals the lithium deposit layer 3 and the lithium ion conductive portion 4. In other words, the cover 6 seals the lithium deposit layer 3 and the lithium ion conductive portion 4. The cover 6 conforms to the shapes of the fourth main surface 34 and the side surface 35 of the lithium deposit layer 3 and the end surface 410 of the lithium ion conductive portion 4. The cover 6 contacts the fourth main surface 34, the side surface 35, and the end surface 410. The cover 6 has, for example, a circular or rectangular shape when viewed in the thickness direction TD. The cover 6 includes a peripheral edge portion 61 and a central portion 62. The peripheral edge portion 61 contacts the peripheral edge portion 51. In the present disclosure, the end face of the peripheral edge 61 contacts the end face of the peripheral edge 51. As a result, the second cover 5 and the cover 6 have a structure that seals the oxygen generating layer 2, the lithium deposition layer 3, and the lithium ion conducting portion 4. The central portion 62 is located inside the peripheral edge 61 when viewed in the thickness direction TD. The central portion 62 extends along the plane P. The central portion 62 is disposed at a distance from the central portion 52 of the second cover 5 in the thickness direction TD. In other words, the central portion 62 is located away from the central portion 52 in the thickness direction TD. The thickness of the cover 6 (the central portion 62 of the cover 6) is 10 μm or more and 1000 μm or less.
[0026] The first terminal 7 includes a first end 71 and a second end 72. The first end 71 contacts a portion of the oxygen generating layer 2. The second end 72 is spaced apart from the first end 71. In other words, the second end 72 is located away from the first end 71. The second end 72 is exposed to the outside. The second end 72 can be electrically connected to a power source. The first terminal 7 penetrates the peripheral edge 51 of the second cover 5. The first terminal 7 is made of a conductive material. Examples of conductive materials include copper, nickel, aluminum, and stainless steel.
[0027] The second terminal 8 includes a third end 81 and a fourth end 82. The third end 81 contacts a portion of the lithium deposit layer 3. The fourth end 82 is spaced apart from the third end 81. In other words, the fourth end 82 is located away from the third end 81. The fourth end 82 is exposed to the outside. The second terminal 8 can be electrically connected to the power source described above. The second terminal 8 penetrates the peripheral end 61 of the cover 6. The second terminal 8 is made of a conductive material. Examples of conductive materials include copper, nickel, aluminum, and stainless steel.
[0028] [Details of Cover 6 and Second Cover 5] [Cover 6] The cover 6 includes a lithium sealing portion 60. In the present disclosure, the cover 6 is composed only of the lithium sealing portion 60. In the present disclosure, the entire peripheral edge portion 61 and central portion 62 of the cover 6 are the lithium sealing portion 60. The lithium sealing portion 60 contacts the lithium deposit layer 3. Specifically, the lithium sealing portion 60 contacts the fourth main surface 34 and the side surface 35 of the lithium deposit layer 3. The lithium sealing portion 60 also contacts the peripheral edge portion 41 of the lithium ion conductive portion 4. Specifically, the peripheral edge portion 61 of the lithium sealing portion 60 contacts the end surface 410 of the peripheral edge portion 41. The lithium sealing portion 60 faces the outside.
[0029] The lithium sealing portion 60 is permeable to water vapor. Water vapor is water in a gaseous state at least at 25°C and 1 atmosphere. Furthermore, the lithium sealing portion 60 is permeable to carbon dioxide. That is, the lithium sealing portion 60 is preferably permeable to water vapor and carbon dioxide. The lithium sealing portion 60 is a dense material. The lithium sealing portion 60 may have a plurality of pores with an average pore diameter of 0.4 nm to 50 nm. Preferably, the average pore diameter is 0.4 nm to 10 nm. When the average pore diameter is equal to or greater than the above-mentioned lower limit, the permeability of water vapor (and carbon dioxide) can be improved. When the average pore diameter is equal to or less than the above-mentioned upper limit, leakage of foreign matter resulting from metal precipitated in the lithium deposit layer 3 to the outside of the oxygen supply device 1 can be effectively prevented. The lithium sealing portion 60 is insulating. Examples of materials for the lithium sealing portion 60 include polyurethane, cellulose acetate, nylon, and polymethylpentene. The thickness of the lithium sealing portion 60 is the same as the thickness of the cover 6 .
[0030] [Second cover 5] The second cover 5 includes an oxygen permeable layer 50. In the present disclosure, the second cover 5 consists only of the oxygen permeable layer 50. In the present disclosure, the second cover 5 is the oxygen permeable layer 50. In the present disclosure, the peripheral edge 51 and the central portion 52 of the oxygen permeable layer 50 are entirely made up of the oxygen permeable layer 50. The oxygen permeable layer 50 is in contact with the oxygen generating layer 2. The oxygen permeable layer 50 faces the outside. The oxygen permeable layer 50 is permeable to oxygen. The oxygen permeable layer 50 has insulating properties. Materials for the oxygen permeable layer 50 include silicone resin, ethyl cellulose, polymethylpentene, and polybutadiene.
[0031] [Supply of Oxygen Using the Oxygen Supply Device 1] A method for supplying oxygen using the oxygen supply device 1 will be described. The oxygen supply device 1 is used in applications requiring oxygen supply. Examples of applications include electronic devices that require oxygen in a sealed enclosure, portable oxygen masks, and small oxygen combustion devices. A power source is electrically connected to the second end 72 of the first terminal 7 and the fourth end 82 of the second terminal 8. The power source includes a battery. The positive electrode of the power source and the oxygen generating layer 2 are electrically connected via the first terminal 7. The negative electrode of the power source and the lithium deposit layer 3 are electrically connected via the second terminal 8. Then, a current is passed from the power source to the oxygen generating layer 2 and the lithium deposit layer 3.
[0032] In the oxygen generating layer 2, the reaction represented by the following formula proceeds: Li 2 O x → 2Li + +2e - +x / 20 2 ↑ (x is 1 or 2.)
[0033] In the oxygen generating layer 2, the lithium oxide is oxidized. As a result, oxygen is generated in the oxygen generating layer 2, and lithium ions and electrons are released. The oxygen permeates the oxygen permeation layer 50 and is supplied to the outside of the oxygen supply device 1. The lithium ions pass through the lithium ion conducting portion 4 and reach the lithium deposition layer 3. In other words, the lithium ion conducting portion 4 conducts the lithium ions from the oxygen generating layer 2 to the lithium deposition layer 3. The electrons flow to the power source via the first terminal 7.
[0034] In the lithium deposition layer 3, the reaction represented by the following formula proceeds: Li + +e - → Li In the lithium deposition layer 3, the electrons flowing from the second terminal 8 combine with the lithium ions flowing from the lithium ion conducting portion 4, causing lithium to deposit. That is, lithium is deposited at the contact point between the second electronic conducting material of the lithium deposition layer 3 and the lithium ion conducting portion 4.
[0035] During the above-described deposition of lithium, minute lithium-derived foreign matter (dust) is captured by the cover 6 (lithium sealing portion 60). Therefore, the foreign matter can be kept inside the oxygen supply device 1. Furthermore, the lithium-derived foreign matter reacts efficiently with water that has permeated the lithium sealing portion 60. At the same time, it also reacts with carbon dioxide that has permeated the lithium sealing portion 60. Therefore, the amount of water vapor and carbon dioxide outside can be reduced, and the lithium can be deactivated.
[0036] Foreign matter may also be generated in the lithium ion conductive portion 4. However, in the present disclosure, the cover 6 comes into contact with the end surface 410 of the peripheral end portion 41 of the lithium ion conductive portion 4 to seal the lithium ion conductive portion 4. Therefore, leakage of foreign matter to the outside through the end surface 410 of the peripheral end portion 41 of the lithium ion conductive portion 4 can be suppressed.
[0037] [Modification of First Aspect] A modification of the oxygen supply device of the first aspect will be described with reference to Fig. 2. Fig. 2 is a cross-sectional view of a modification of the oxygen supply device shown in Fig. 1 .
[0038] The cover 6 (lithium sealing portion 60) only needs to cover at least the lithium precipitate layer 3. As in this modification, the cover 6 does not need to cover the lithium ion conductive portion 4. In this modification, the end face 410 of the peripheral end portion 41 of the lithium ion conductive portion 4 is exposed to the outside. The peripheral end portion 61 of the cover 6 does not contact the second cover 5, but contacts the sixth main surface 44 of the peripheral end portion 41 of the lithium ion conductive portion 4.
[0039] Of the first embodiment and the modified example, the first embodiment is preferred. According to the first embodiment, lithium is effectively prevented from leaking to the outside from the end face 410 of the peripheral end 41 of the lithium ion conductive portion 4. Furthermore, the oxygen supply device 1 is easy to manufacture.
[0040] [Other Modifications] The cover 6 may include the lithium sealing portion 60 and another member (not shown). The other member is impermeable to water vapor. For example, the lithium sealing portion 60 contacts the fourth main surface 34, and the other member contacts the side surface 35. Alternatively, the lithium sealing portion 60 contacts the central portion 32, and the other member contacts the peripheral edge portion 31. Of the first embodiment and the other modifications, the first embodiment is preferred. According to the first embodiment, the configuration of the cover 6 can be simplified while increasing the amount of water vapor that can pass through the cover 6.
[0041] [Other Modifications] The second cover 5 may include the oxygen permeable layer 50 and another member (not shown). The other member is not permeable to oxygen.
[0042] It should be understood that the embodiments disclosed herein are illustrative in all respects and are not limiting in any respect. The scope of the present disclosure is defined not by the above description but by the claims, and it is intended to include all modifications within the meaning and scope of the claims.
[0043] 1 oxygen supply device, 2 oxygen generation layer, 3 lithium deposition layer, 4 lithium ion conductive portion, 5 second cover, 6 cover, 7 first terminal, 8 second terminal, 21 peripheral edge portion, 22 central portion, 23 first main surface, 24 second main surface, 25 side surface, 31 peripheral edge portion, 32 central portion, 33 third main surface, 34 fourth main surface, 35 side surface, 41 peripheral edge portion, 410 end surface, 42 central portion, 43 fifth main surface, 44 sixth main surface, 50 oxygen permeable layer, 51 peripheral edge portion, 52 central portion, 60 lithium sealing portion, 61 peripheral edge portion, 62 central portion, 71 first end, 72 second end, 81 third end, 82 fourth end, D thickness direction, P plane, TD thickness direction.
Claims
1. An oxygen supply device comprising: an oxygen generating layer including a first electron conductive material, a first lithium ion conductive material, and a lithium oxide; a lithium deposition layer disposed at a distance from the oxygen generating layer in the thickness direction, the lithium deposition layer including a second electron conductive material; a lithium ion conducting portion disposed between the oxygen generating layer and the lithium deposition layer, the lithium ion conducting portion including a second lithium ion conductive material; and a cover covering the lithium deposition layer, wherein the cover is in contact with the lithium deposition layer and includes the lithium sealing portion that is permeable to water vapor.
2. The oxygen delivery device of claim 1, wherein the lithium seal is a dense material.
3. The oxygen supply device according to claim 1, wherein the lithium sealing portion has a plurality of pores with an average pore diameter of 0.4 nm or more and 50 nm or less.
4. The oxygen delivery device of claim 1, wherein the lithium seal is permeable to carbon dioxide.
5. The oxygen supply device according to any one of claims 1 to 4, further comprising a second cover covering the oxygen generating layer, the second cover being in contact with the oxygen generating layer and including an oxygen permeable layer through which oxygen can pass.
6. The oxygen supply device according to claim 5, wherein the lithium ion conducting portion has a sheet shape, and the end face of the peripheral end of the lithium ion conducting portion is in contact with the lithium sealing portion.
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