LITHIUM BATTERY
20180331400 ยท 2018-11-15
Assignee
Inventors
Cpc classification
H01M10/526
ELECTRICITY
H01M4/131
ELECTRICITY
Y02P70/50
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y02E60/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H01M4/525
ELECTRICITY
H01M10/0436
ELECTRICITY
H01M10/0525
ELECTRICITY
International classification
H01M10/52
ELECTRICITY
H01M10/0525
ELECTRICITY
H01M4/525
ELECTRICITY
Abstract
A lithium-metal or lithium-ion battery includes a stack of a cathode layer made of LiCoO.sub.2, an anode layer and an electrolyte layer made of LiPON positioned between anode and cathode layers. An encapsulating layer covers the stack. The battery further includes an interface layer made of a material that is able to capture oxygen generated during charge/discharge cycles of the battery. This interface layer is placed under the encapsulating layer.
Claims
1. A lithium-metal or lithium-ion battery, comprising: a stack including a cathode layer made of LiCoO.sub.2, an anode layer and an electrolyte layer made of LiPON between the anode and cathode layers; an encapsulating layer covering the stack; and an interface layer made of a material that is configured to capture oxygen and which is placed under the encapsulating layer.
2. The battery according to claim 1, wherein the material configured to capture oxygen operates to capture oxygen via an oxidation chemical reaction.
3. The battery according to claim 2, wherein said material is a metal selected from the group consisting of: copper, aluminum, zinc and titanium.
4. The battery according to claim 2, wherein said material is a substoichiometric metal oxide.
5. The battery according to claim 4, wherein said material is aluminum oxide.
6. The battery according to claim 1, wherein the encapsulating layer is adhesively bonded to the stack by an adhesive layer.
7. The battery according to claim 1, wherein the encapsulating layer comprises an aluminum film coated with a film of polyethylene terephthalate.
8. The battery according to claim 1, wherein the encapsulating layer has a thickness smaller than 150 m.
9. The battery according to claim 1, wherein the interface layer is placed between the stack and the encapsulating layer.
10. A method for capturing oxygen generated within a sealed lithium-metal or lithium-ion battery during charge/discharge cycles comprising capturing said oxygen via an oxidation chemical reaction with a material placed within the sealed lithium-metal or lithium-ion battery.
11. The method according to claim 10, wherein said material is a metal selected from the group consisting of: copper, aluminum, zinc and titanium.
12. The method according to claim 10, wherein said material is a sub stoichiometric metal oxide.
13. The method according to claim 12, wherein said material is aluminum oxide.
14. A lithium-metal or lithium-ion battery, comprising: a stack including a cathode layer made of LiCoO2, an anode layer and an electrolyte layer made of LiPON between the anode and cathode layers; an encapsulating layer covering the stack; and an interface layer made of a material that is configured to capture oxygen, said interface layer positioned between the encapsulating layer and the stack; wherein said material is a substoichiometric metal oxide.
15. The battery according to claim 14, wherein the material configured to capture oxygen operates to capture oxygen via an oxidation chemical reaction.
16. The battery according to claim 14, wherein said material is aluminum oxide.
17. The battery according to claim 14, wherein the encapsulating layer is adhesively bonded to the stack by an adhesive layer.
18. The battery according to claim 14, wherein the encapsulating layer comprises an aluminum film coated with a film of polyethylene terephthalate.
19. The battery according to claim 14, wherein the encapsulating layer has a thickness smaller than 150 m.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016] These features and advantages, and others, will be described in detail in the following description of particular embodiments, which description is given without limitation and with reference to the appended figures, in which:
[0017]
[0018]
DETAILED DESCRIPTION
[0019] The figures have not been drawn to scale and, for the sake of clarity, only those elements that are useful to understanding the described embodiments have been shown and described in detail. In particular, the topology, as seen from above, of the anode and cathode contacts of the batteries described below has not been described in detail since it is within the capabilities of a person skilled in the art to adapt this topology to the targeted application and in particular depending on the way in which the battery must be connected.
[0020] In the following description, when the terms left, right, upper, lower, flank, etc. are used, reference is being made to the orientation of the elements in question in the corresponding figures. Unless otherwise specified, the expression about means to within 10% and preferably to within 5%.
[0021] For a battery, the term anode means the negative electrode and the term cathode means the positive electrode.
[0022]
[0023] On most of the carrier 3 (on the right in the figure) is placed a conductive layer 5 that is optionally arranged on a binding layer 7. The conductive layer 5 is made of a metal, for example of platinum, and has a thickness comprised between 50 nm and 10 m and, for example, of about 100 nm. The binding layer 7 is made of lithium cobalt oxynitride (LiCoON) and has a thickness comprised between 50 nm and 10 m and, for example, of about 1 m. The conductive layer 5 is a cathode contact layer. On a small portion of the carrier 3 (on the left in the figure) is placed a conductive layer 9 that is optionally arranged on a binding layer 11. The material of the conductive layer 9 is preferably identical to that of the conductive layer 5. The material of the binding layer 11 is preferably identical to that of the binding layer 7. A metal layer section 13, which is for example made of copper, straddles one end of the conductive layer 9 and the carrier 3. The layer 13 has a thickness comprised between 50 nm and 10 m and is, for example, about 500 nm. The layers 9 and 13 form an anode contact.
[0024] On most of the conductive layer 5 rests a stack 14 comprising a cathode layer 15 made of lithium cobalt oxide (LiCoO.sub.2), an electrolyte layer 17 made of lithium phosphorus oxynitride (LiPON), and an anode layer 19 that is, for example, made of lithium (Li). The lower face of the cathode layer 15 makes contact with the cathode contact layer 5. The cathode layer 15 has a thickness comprised between 2 and 50 m and, for example, of about 10 m. The electrolyte layer 17 is between the cathode layer 15 and the anode layer 19 and separates these layers 15 and 19 from each other. The lower face of the layer 17 makes contact with the layer 15 and the upper face of the layer 17 makes contact with the layer 19. In the example shown, the electrolyte layer 17 juts out from one side of the stack 14 (to the right of the layer 15 in the figure), on the conductive layer 5, and on another side of the stack 14 (to the left of the layer 15 in the figure), on the carrier 3, without making contact with the layer 13. The electrolyte layer 17 has a thickness comprised between 0.5 and 5 m and for example of about 2 m. The anode layer 19 covers most of the electrolyte layer 17. The anode layer 19 juts out from one side of the stack 14 (to the left in the figure) and extends as far as to the copper layer 13. The anode layer 19 has a thickness comprised between 50 nm and 20 m and, for example, of about 5 m.
[0025] An encapsulating layer 21 covers the various elements of the battery and in particular the layers 15, 17 and 19 of the stack 14 in such a way as to leave accessible only a portion of the conductive layer 5 and a portion of the conductive layer 9. The free portion of the layer 5 forms a zone allowing for a cathode contact redistribution 23 and the free portion of the layer 9 forms a zone allowing for an anode contact redistribution 25.
[0026] The encapsulating layer 21, for example, consists of an aluminum film covered with a film of polyethylene terephthalate (PET), also known by the abbreviation PET-alu. When the layer 21 is of PET-alu, the aluminum film is always separated from the anode layer 19 by at least one adhesive layer. For example, the aluminum film is adhesively bonded to the stack 14 by an adhesive film, and the PET film is adhesively bonded to the aluminum film by an adhesive layer. The encapsulating layer 21 is, for example, deposited by lamination. The encapsulating layer 21 has a thickness comprised between 5 and 150 m and for example of about 100 m. Such a PET-alu encapsulating layer 21 is flexible and therefore particularly suitable for lithium batteries intended to conform to the shape of the electronic devices into which they will be integrated.
[0027] As indicated above, during the charging cycles of a battery of the type of that in
[0028]
[0029] The battery 26 comprises the same elements, referenced by the same references, as the battery 1 of
[0030] Tests have shown that oxygen is released by the cathode layer 15 made of LiCoO.sub.2 during battery charging cycles and mainly during the first charging cycle. In the battery 1 of
[0031] The layer 27 is made of a material liable to oxidize. This material is, for example, a metal chosen from the group comprising copper, titanium, aluminum and zinc. By way of example, the thickness of an interface layer 27 made of copper is comprised between 100 nm and 1 m and is, for example, 500 nm. In the case of a metal layer 27 made of copper or titanium of a thickness of 100 nm, tests have shown a decrease of 42% in the number and/or size of the bubbles with respect to the case of a battery of the type of that in
[0032] Particular embodiments have been described. Various variants and modifications will seem obvious to those skilled in the art. In particular, although an embodiment has been described in which the encapsulating layer is of PET-alu, this encapsulating layer could be made of other materials, for example a film of polyvinylidene chloride (PVDC) coated with a film of mica.
[0033] The carrier may either be made of an insulator, for example of mica or of another ceramic such as zirconia or alumina, or be made of a conductor, for example of aluminum or another metal, coated with an insulating layer, or indeed of a semiconductor, for example of silicon, coated with an insulating layer.
[0034] Furthermore, an interface layer 27 such as described with reference to