Solid battery and method for manufacturing solid battery
09818996 · 2017-11-14
Assignee
Inventors
Cpc classification
H01M10/0585
ELECTRICITY
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
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
Y10T29/4911
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
International classification
H01M10/0585
ELECTRICITY
Abstract
Provided are: a solid battery which has been sealed in an exterior material under a reduced pressure, wherein gas in the exterior material can be fully removed when depressurizing the inside of the exterior material; and a method of manufacturing the solid battery, the solid battery having a single cell having: a laminated body having a cathode layer, an anode layer, and an electrolyte layer disposed between the cathode layer and the anode layer; an insulating part disposed on an outer perimeter of the laminated body in a cross-sectional view of the laminated body in a direction orthogonal to a lamination direction thereof, and a pair of current collectors sandwiching the laminated body and the insulating part, wherein the single cell has been sealed in an exterior material under a reduced pressure; and the insulating part has vent holes.
Claims
1. A method for manufacturing a solid battery comprising the steps of: making a single cell comprising: a laminated body having a cathode layer, an anode layer, and an electrolyte layer disposed between the cathode layer and the anode layer; at least one insulating layer having vent holes formed of a sequence of bubbles and having a characteristic of allowing gas to pass through, the at least one insulating layer being disposed on an outer perimeter of the laminated body in a cross-sectional view of the laminated body in a direction orthogonal to a lamination direction thereof; and a pair of current collectors sandwiching the laminated body and the at least one insulating layer; sealing an exterior material that accommodates the single cell, an inside of the exterior material being under a reduced pressure; and after sealing the exterior material, pressurizing and/or heating the at least one insulating layer such that the vent holes are closed up and lose the characteristic of allowing gas to pass through, and the vent holes become evidence that vent holes used to exist.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
MODE FOR CARRYING OUT THE INVENTION
(6) The functions and the benefits of the present invention described above will be apparent from the following modes for carrying out the invention. Hereinafter, the present invention will be described based on the embodiments shown in the accompanying drawings, but is not limited to these embodiments. In the drawings, for convenience in showing the views and making them easy to understand, the scale, the dimensional ratio of length and width, etc. are sometimes adequately modified from actual ones to highlight the views. In each view, the same components are given the same reference numerals. Moreover, in some cases, in order to make the views easy to see, the views are simplified, the repeating reference numerals are partially omitted, or components not described in detail are not shown.
(7) In the descriptions of the present invention given below, an embodiment in which the solid battery of the present invention is a lithium-ion secondary battery having a solid electrolyte layer will be mainly shown.
(8)
(9) As shown in
(10) (Cathode Current Collector 5a, Anode Current Collector 5b)
(11) In the solid battery 10, the cathode current collector 5a and the anode current collector 5b may be constituted by a known conductive material that can be used as a cathode current collector or an anode current collector of a lithium-ion secondary battery. Examples of such a conductive material are metal materials containing one or more elements selected from the group consisting of Cu, Ni, Al, V, Au, Pt, Mg, Fe, Ti, Co, Cr, Zn, Ge, and In. In addition, the cathode current collector 5a and the anode current collector 5b may be in the form of a metal foil, a metal mesh, or the like, for example.
(12) —(Insulating Part 6)
(13) The insulating part 6 is constituted by the first insulating layer 6a and the second insulating layer 6b. The first insulating layer 6a and the second insulating layer 6b each has vent holes that have been closed up. The “vent holes that have been closed up” refer to holes which had allowed gas to pass through before manufacture of the solid battery 10 and which have been closed up in a manufacturing process of the solid battery 10 as described below and thereby lose the characteristic to allow gas to pass through. The “characteristic to allow gas to pass through” refers to a characteristic of allowing gas to pass from one space to another space separated by the insulating part. Usually, even when a member having such vent holes is pressurized, heated, or the like to close up the vent holes, the evidence that there used to exist the vent holes can be found. The vent holes of a member used for the first insulating layer 6a and the second insulating layer 6b are preferably in such a size that allows gas in the exterior material 7 (a space surrounded by the insulating part 6) to pass through when depressurizing the inside of the exterior material 7 in the manufacturing process of the solid battery 10 described below, and that enables the vent holes to be closed up by pressurizing and/or heating the member. Exemplary configurations of such vent holes include holes formed of a sequence of bubbles, and linear through-holes. The first insulating layer 6a and the second insulating layer 6b as above have gas permeability and can lose it by being pressurized and/or heated, or by some other means. The insulating layers may be constituted by a known insulating material that can endure an environment in which the solid battery 10 is used. Examples of such an insulating material include polyurethane sponges, polyamide-imide resins, epoxy resins, and fluororesins having an open-cell structure.
(14) (Cathode Layer 1)
(15) As a cathode active material to be contained in the cathode layer 1, a known active material that can be contained in a cathode layer of a lithium-ion secondary battery may be adequately employed. Examples of such a cathode active material include lithium cobalt oxide (LiCoO.sub.2). As an electrolyte to be contained in the cathode layer 1, a known electrolyte that can be contained in a cathode layer of a battery may be adequately employed. Examples of such an electrolyte include: inorganic solid electrolytes including oxide solid electrolytes such as Li.sub.3PO.sub.4, Li.sub.3PS.sub.4, and sulfide solid electrolytes made by mixing Li.sub.2S and P.sub.2S.sub.5 such that the ratio thereof is Li.sub.2S:P.sub.2S.sub.5=50:50 to 100:0 (for example, sulfide solid electrolytes made by mixing Li.sub.2S and P.sub.2S.sub.5 such that the ratio thereof is Li.sub.2S:P.sub.2S.sub.5=75:25 at a mass ratio); and organic solid electrolytes such as polyethylene oxide. In addition, the cathode layer 1 may contain a binder to bind the cathode active material and the electrolyte and a conductive material to improve the conductivity. Examples of the binder that can be contained in the cathode layer 1 include butylene rubber. Examples of the conductive material that can be contained in the cathode layer 1 include carbon black. In addition, as a solvent to be used in making the cathode layer 1, a known solvent that can be used in preparing a slurry for making a cathode layer of a lithium-ion secondary battery may be adequately employed. Examples of such a solvent include heptane.
(16) (Anode Layer 2)
(17) As an anode active material to be contained in the anode layer 2, a known active material that can be contained in an anode layer of a lithium-ion secondary battery may be adequately employed. Examples of such an active material include graphite. As an electrolyte to be contained in the anode layer 2, a known electrolyte that can be contained in an anode layer of a lithium-ion secondary battery may be adequately employed. Examples of such an electrolyte include inorganic solid electrolytes and organic solid electrolytes described above that can be contained in the cathode layer 1. In addition, the anode layer 2 may contain a binder to bind the anode active material and the electrolyte and a conductive material to improve the conductivity. Examples of the binder and the conductive material that can be contained in the anode layer 2 include the binder and the conductive material described above that can be contained in the cathode layer 1. In addition, examples of a solvent to be used in making the anode layer 2 include the solvent described above that can be used in making the cathode layer 1.
(18) (Solid Electrolyte Layer 3)
(19) Examples of an electrolyte to be contained in the solid electrolyte layer 3 include the inorganic solid electrolytes and the organic solid electrolytes described above that can be contained in the cathode layer 1. In addition, examples of a solvent to be used in making the solid electrolyte layer 3 include the solvent described above that can be used in making the cathode layer 1.
(20) (Exterior Material 7)
(21) As the exterior material 7, any material that can endure an environment in which a lithium-ion secondary battery is used, that does not allow gas or liquid to pass through, and that can be sealed, may be employed without particular limitations. Examples of such a material to constitute the exterior material 7 include known metal foils represented by aluminum foil and the like; films made of resins represented by polyethylene, polyvinyl fluoride, polyvinylidene chloride, and the like; and metal-deposited films made by depositing metals such as aluminum onto the above films. Although
(22) (Cathode Terminal 8a, Anode Terminal 8b)
(23) The cathode terminal 8a and the anode terminal 8b may be constituted by a material which has favorable electrical conductivity and can endure an environment in which the solid battery 10 is used, and it is preferably constituted by a material which has flexibility and strength sufficient to cope with force applied during use of the solid battery 10. For example, as shown in
(24) Although a method for manufacturing the solid battery 10 described above is not particularly limited, the solid battery 10 may be manufactured through the following steps, for example.
(25)
(26) As shown in
(27) On the other hand, as shown in
(28) Once the anode layer 2 and the second insulating layer 6b are formed in the above manner, an electrolyte slurry made by dispersing at least a solid electrolyte into a solvent is applied on a surface of the anode layer 2 by a known method such as a doctor blade method, with the masking material put on the surface of the second insulating layer 6b, and the solvent is volatilized. Thereby the solid electrolyte layer 3 can be formed on the anode layer 2. In this manner, a second laminated body 4b having the anode layer 2, the anode current collector 5b, and the second insulating layer 6b can be made, as shown in
(29) Next, the masking materials of the first laminated body 4a and the second laminated body 4b made in the above manner are removed, and the first laminated body 4a and the second laminated body 4b are laminated in such a manner that the cathode layer 1 and the solid electrolyte layer 3 face each other as shown in
(30) Thereafter, the first laminated body 4a and the second laminated body 4b are accommodated into the exterior material 7 having an outlet 7a for vacuuming, as shown in
(31) When the pressure inside the exterior material 7 is reduced as described above, the first laminated body 4a and the second laminated body 4b are pressurized by the exterior material 7. At this time, strong compressive force is more likely to be applied on an outer side (an outer perimeter side, an end portion in the right-and-left direction of
(32) At this time, if the first insulating layer 6a and the second insulating layer 6b do not have the vent holes as in the conventional solid batteries, gas in the space S cannot be removed fully. Consequently, the conventional solid batteries are likely to have such problems as expansion of the gas inside the exterior material upon heat generation, and reaction between the gas inside the exterior material and the battery components. Moreover, if the gas in the space S remains, an interface between the solid electrolyte layer and the cathode or anode layer may not be formed sufficiently, thereby likely leading to degradation of the battery performance. On the other hand, in the solid battery of the present invention, the first insulating layer 6a and the second insulating layer 6b have the vent holes, and thereby the gas in the space S can be removed fully as shown in
(33) After the inside of the exterior material 7 is depressurized, the outlet 7a of the exterior material 7 can be sealed by thermal welding for example, as shown in
(34) In this way, according to the solid battery of the present invention, the gas inside the exterior material can be removed fully in the manufacturing process as described above, by constituting the insulating part with the insulating member having vent holes. As such, the solid battery of the present invention can prevent expansion of the gas inside the exterior material upon heat generation or the like, or can prevent reaction between the gas inside the exterior material and the battery components. Further, the solid electrolyte layer and the cathode or anode layer can be contacted with each other closely, leading to improvement of the battery performance. Furthermore, in the solid battery of the present invention, the current collectors can be insulated from each other by closing up the vent holes of the insulating portion in the manufacturing process as described above.
(35) In the above descriptions on the present invention, an embodiment has been shown in which the insulating part 6 is constituted by the first insulating layer 6a formed on the cathode current collector 5a and the second insulating layer 6b formed on the anode current collector 5b in the manufacturing process. However, the solid battery of the present invention is not limited to the embodiment. For example, the insulating part may be constituted by one member, and in this case the insulating part may be formed only on the cathode current collector or the anode current collector in the manufacturing process.
(36) In the above descriptions on the present invention, an embodiment has been shown in which the first insulating layer 6a is formed before the cathode layer 1 is formed and the second insulating layer 6b is formed before the anode layer 2 is formed. However, the solid battery of the present invention is not limited to the embodiment. For example, the insulating layer may be formed on an outer perimeter of the cathode layer after the cathode layer is formed on the current collector; the insulating layer may be formed on an outer perimeter of the anode layer after the anode layer is formed on the current collector; the insulating layer may be formed on an outer perimeter of the cathode layer and the solid electrolyte layer after the cathode layer and the solid electrolyte layer are formed on the current collector; or the insulating layer may be formed on an outer perimeter of the anode layer and the solid electrolyte layer after the anode layer and the solid electrolyte layer are formed on the current collector.
(37) In the above descriptions on the present invention, an embodiment has been shown in which one single cell 8 is accommodated in the exterior material 7, but the present invention is not limited to the embodiment. In the present invention, two or more single cells may be accommodated in one exterior material.
(38) In the above descriptions on the present invention, the single cell 8 having a substantially cuboid shape has been shown, but the single cell employed in the present invention is not limited to the shape. The single cell may have other shapes such as a columnar shape and a shape of hexagonal column.
(39) In the above descriptions on the present invention, an embodiment has been shown in which the single cell 8 being a lithium-ion secondary cell is provided, but the cell that can be employed in the present invention is not limited to the configuration. The single cell in the present invention may be configured such that ions other than lithium ions move between the cathode layer and the anode layer. Examples of such ions include sodium ions and potassium ions. In a configuration where ions other than lithium ions move, a cathode active material, a solid electrolyte, and an anode active material may be adequately selected depending on the ions to move. The single cell in the present invention may also be a primary cell.
INDUSTRIAL APPLICABILITY
(40) The solid battery of the present invention can be used as a power source for mobile devices, electric vehicles, hybrid vehicles, and the like.
DESCRIPTION OF THE REFERENCE NUMERALS
(41) 1 cathode layer 2 anode layer 3 solid electrolyte layer 4a first laminated body 4b second laminated body 4 laminated body 5 current collector 6 insulating part 6a first insulating layer 6b second insulating layer 7 exterior material 8 single cell 10 solid battery 17 exterior material 20 solid battery