ALL-SOLID BATTERY FOR VEHICLE
20220059840 · 2022-02-24
Assignee
Inventors
- Sang Heon Lee (Yongin-si, KR)
- Sang Mo Kim (Seoul, KR)
- Yun Sung Kim (Seoul, KR)
- Oh Min KWON (Nam-gu, KR)
- Jae Min Lim (Suwon-si, KR)
Cpc classification
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
H01M2220/20
ELECTRICITY
International classification
H01M4/58
ELECTRICITY
H01M4/36
ELECTRICITY
Abstract
The present disclosure provides an all-solid battery for a vehicle, which includes a cathode, a solid electrolyte layer disposed on the cathode, and an anode disposed on the solid electrolyte layer. The solid electrolyte layer includes a solid electrolyte and a ceramic which is a nonconductor.
Claims
1. An all-solid battery for a vehicle, comprising: a cathode; a solid electrolyte layer disposed on the cathode; and an anode disposed on the solid electrolyte layer, wherein the solid electrolyte layer comprises: a solid electrolyte; and a ceramic which is a nonconductor, wherein the solid electrolyte layer comprises: a composite electrolyte layer disposed on the cathode and including the solid electrolyte and the ceramic; and a coating layer surrounding the composite electrolyte layer, including the solid electrolyte, and not including the ceramic.
2. The all-solid battery of claim 1, wherein the coating layer comprises: a lower coating layer disposed between the cathode and the composite electrolyte layer; an upper coating layer disposed between the anode and the composite electrolyte layer; a first side coating layer being in contact with one side surface of the composite electrolyte layer and connected to the lower coating layer and the upper coating layer; and a second side coating layer being contact with another side surface of the composite electrolyte layer, being spaced apart from the first side coating layer, and connected to the lower coating layer and the upper coating layer.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0023] The above and other features of the present disclosure will now be described in detail with reference to certain exemplary embodiments thereof, and described in the accompanying drawings which are given hereinbelow by way of illustration only and thus are not limitative of the present disclosure:
[0024]
[0025]
[0026]
[0027]
[0028]
[0029] It should be understood that the appended drawings are not necessarily to scale, presenting a somewhat simplified representation of various preferred features illustrative of the basic principles of the invention. The specific design features of the present disclosure as disclosed herein, including, for example, specific dimensions, orientations, locations, and shapes will be determined in part by the particular intended application and use environment.
[0030] In the figures, reference numbers refer to the same or equivalent parts of the present disclosure throughout the several figures of the drawing.
DETAILED DESCRIPTION
[0031] The above and other objectives, features, and advantages of the present disclosure will become more apparent from the following description of preferred embodiments with reference to the accompanying drawings. However, the present disclosure is not limited to the embodiments disclosed herein and may be implemented in other forms. The embodiments disclosed herein will be provided to make this disclosure thorough and complete, and will fully convey the spirit of the present disclosure to those skilled in the art.
[0032] In describing each drawing, similar reference numerals are assigned similar components. In the accompanying drawings, dimensions of structures are shown in an enlarged scale for clarity of the present disclosure. Although the terms “first,” “second,” and the like may be used herein to describe various components, these components should not be limited by these terms. The terms are used only for the purpose of distinguishing one component from another component. For example, without departing from the scope of the present disclosure, a first component may be referred to as a second component, and similarly, a second component may also be referred to as a first component. Unless the context clearly dictates otherwise, the singular form includes the plural form.
[0033] It should be understood that the terms “comprise,” “include,” and “have” specify the presence of stated herein features, numbers, steps, operations, components, elements, or combinations thereof, but do not preclude the presence or possibility of adding one or more other features, numbers, steps, operations, components, elements, or combinations thereof. Further, when a portion of a layer, a film, a region, a plate, or the like is referred to as being “on” other portion, this includes not only a case in which the portion is “directly on” the other portion but also a case in which another portion is present between the portion and the other portion. Contrarily, when a portion of a layer, a film, a region, a plate, or the like is referred to as being “under” other portion, this includes not only a case in which the portion is “directly under” the other portion but also a case in which another portion is present between the portion and the other portion.
[0034] An all-solid battery for a vehicle according to an embodiment of the present disclosure will be described below.
[0035]
[0036] Referring to
[0037] An electrochemical reaction may occur in the all-solid battery SC. After hydrogen may be supplied to the anode 300, which is an oxidation electrode of the all-solid battery SC, and separated into protons and electrons, the protons move to the cathode 100, which is a deoxidation electrode, through the solid electrolyte layer 200 and the electrons move to the cathode 100 through an outer circuit. Thus, oxygen molecules, the protons, and the electrons react in the cathode 100 to generate electricity and heat. The solid electrolyte layer 200 may be disposed on the cathode 100. The solid electrolyte layer 200 may be disposed between the cathode 100 and the anode 300. The anode 300 may be disposed on the solid electrolyte layer 200. The solid electrolyte layer 200 may be in contact with each of the cathode 100 and the anode 300.
[0038] The all-solid battery SC may be used as an energy source for a vehicle. The vehicle may refer to a device for transporting goods, persons, and the like. For example, the vehicle includes a land vehicle, a water vehicle, an air vehicle. For example, the land vehicle may include automobiles, which contains passenger cars, vans, trucks, trailer trucks, and sports cars, bicycles, motorcycles, trains, and the like. For example, the water vehicle may include ships, submarines, and the like. For example, the air vehicle may include airplanes, hang-gliders, hot-air balloons, helicopters, and small-sized flight vehicles such as a drone and the like.
[0039]
[0040] Referring to
[0041] Referring to
[0042] Referring to
[0043] The composite electrolyte layer 220 is disposed on the first solid electrolyte layer 210. The composite electrolyte layer 220 includes the solid electrolyte 201 and the ceramic 202.
[0044] Referring to
[0045] Referring to
[0046] The composite electrolyte layer 210 is disposed on the cathode 100. The composite electrolyte layer 210 includes the solid electrolyte 201 and the ceramic 202.
[0047] The coating layers 231, 232, 233, and 234 surround the composite electrolyte layer 210. The coating layers 231, 232, 233, and 234 include the solid electrolyte 201. The coating layers 231, 232, 233, and 234 may not include the ceramic 202.
[0048] The coating layers 231, 232, 233, and 234 include a lower coating layer 231, an upper coating layer 232, a first side coating layer 233, and a second side coating layer 234. The lower coating layer 231 is disposed between the cathode 100 and the composite electrolyte layer 210. The upper coating layer 232 is disposed between the anode 300 and the composite electrolyte layer 210. The first side coating layer 233 is brought into contact with one side surface of the composite electrolyte layer 210. The first side coating layer 233 is connected to the lower coating layer 231 and the upper coating layer 232. The second side coating layer 234 is brought into contact with the other side surface of the composite electrolyte layer 210. The second side coating layer 234 is spaced apart from the first side coating layer 233. The second side coating layer 234 is connected to the lower coating layer 231 and the upper coating layer 232.
[0049] The solid electrolyte 201 may be an inorganic-based solid electrolyte. For example, the solid electrolyte 201 may include at least one among Li.sub.3—N, LISICON, LiPON, Thio-LISICON, Li.sub.2S, Li.sub.2S-P.sub.2S.sub.5, Li.sub.2S—SiS.sub.2, Li.sub.2S—GeS.sub.2, Li.sub.2S—B.sub.2S.sub.5, Li.sub.2S—Al.sub.2S.sub.5, and a solid argyrodite-based sulfide electrolyte. The expression “A-B” may refer that each of A and B is contained in a compound and at least a part of A is chemically bonded to at least a portion of B. The term “-based” may refer to including a compound corresponding to a “-based” or a “-based” derivative. The “derivative” refers to a compound which is changed in such a manner that a structure and a property of the parent do not change such as introduction of a functional group, oxidation, reduction, substitution of an atom, and the like by a specific compound as the parent.
[0050] The ceramic 202 may be a nonconductor. The ceramic 202 may include at least one among alumina, zirconium dioxide (ZrO.sub.2), and magnesium hydroxide (Mg(OH).sub.2).
[0051] For example, referring to
[0052] Referring to
[0053]
[0054] Referring to
[0055] The particle size R of the solid electrolyte 201 may be in the range of 0.1 to 10 μm. For example, the particle size R of the solid electrolyte 201 may be measured by an average particle diameter D50. When the particle size R of the solid electrolyte 201 is less than 0.1 μm, slurry production and uniform cell performance are difficult to achieve, and when the particle size R of the solid electrolyte 201 exceeds 10 μm, a porosity of the mixture increases and thus ion conductivity may be degraded, and cell performance may also be degraded.
[0056] The particle size r of the ceramic 202 may be in the range of 0.01 to 5 μm. For example, the particle size r of the ceramic 202 may be measured by an average particle diameter D50. When the particle size r of the ceramic 202 is less than 0.01 μm, slurry production and uniform distribution of slurry are difficult to achieve and thus a safety improvement effect may be insignificant, and when the particle size r of the ceramic 202 exceeds 5 μm, a filling rate in the solid electrolyte layer is lowered and thus ion conductivity may be degraded.
[0057] Unlike a conventional all-solid battery, the all-solid battery according to an embodiment of the present disclosure includes the ceramic in the solid electrolyte layer to have high ion conductivity, such that the all-solid battery is excellent in stability while having a high energy density. Therefore, the all-solid battery according to an embodiment of the present disclosure is suitable for use as an energy source of a vehicle.
[0058] In accordance with an embodiment of the present disclosure, the all-solid battery for a vehicle, which is stable while having a high energy density, can be provided.
[0059] While the embodiments of the present disclosure have been described with reference to the accompanying drawings, those skilled in the art can understand that the present disclosure can be implemented in other specific forms without departing from the technical spirit or the necessary features of the present disclosure. Therefore, it should be understood that the above-described embodiments are not restrictive but illustrative in all aspects.