IONIC CONDUCTOR AND ELECTRICITY STORAGE DEVICE
20210104776 · 2021-04-08
Assignee
Inventors
- Yuki TAKEUCHI (Nagoya-shi, JP)
- Manato UCHIDA (Nagoya-shi, JP)
- Yuta IGA (Nagoya-shi, JP)
- Daisuke SHISHIHARA (Nagoya-shi, JP)
- Hideaki HIKOSAKA (Nagoya-shi, JP)
- Hidetoshi MIZUTANI (Nagoya-shi, JP)
Cpc classification
H01M4/62
ELECTRICITY
H01M4/13
ELECTRICITY
H01M12/08
ELECTRICITY
H01G11/50
ELECTRICITY
Y02T10/70
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
C01B6/21
CHEMISTRY; METALLURGY
H01M2220/20
ELECTRICITY
H01M10/0525
ELECTRICITY
H01M2220/30
ELECTRICITY
International classification
H01M10/0525
ELECTRICITY
H01M4/13
ELECTRICITY
Abstract
Provided is an ionic conductor with which adhesion between particles can be enhanced simply by pressure-molding a powder without using sulfide ionic conductors and without performing firing or vapor deposition, and which can exhibit a high lithium ionic conductivity. This ionic conductor contains, in addition to an oxide lithium ionic conductor, a complex hydride.
Claims
1. An ion conductor comprising an oxide-type lithium ion conductor that further contains a complex hydride.
2. The ion conductor according to claim 1, wherein a lithium ion conductivity is 1.0×10.sup.−5 S/cm or higher as determined at 25° C.
3. The ion conductor according to claim 1, wherein a content of oxide-type lithium ion conductor is 85 vol % or less.
4. The ion conductor according to claim 3, wherein a content of oxide-type lithium ion conductor is 20 vol % or more.
5. The ion conductor according to claim 1, wherein the complex hydride includes LiBH.sub.4 and X (wherein X is one or more compounds selected from among LiCl, LiBr, LiI, and LiNH.sub.2).
6. The ion conductor according to claim 1, wherein the complex hydride is a compound having a closo-type structure represented by Li.sub.2(B.sub.nH.sub.n) (wherein n is an integer of 5 to 12).
7. An electricity storage device comprising a solid electrolyte layer, a cathode and an anode, wherein at least one of the solid electrolyte layer, the cathode and the anode contains an ion conductor as recited in claim 1.
8. The ion conductor according to claim 4, wherein a content of oxide-type lithium ion conductor is 30 vol % or more.
9. An ion conductor according to claim 1, wherein a ratio by volume (vol %) of oxide-type lithium ion conductor to complex hydride is between 20:80 and 85:15.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
DETAILED DESCRIPTION OF THE INVENTION
A. Embodiment
A-1. Structure of Complete-Solid Battery 102:
(Entire Structure)
[0025]
[0026] The complete-solid battery 102 includes a battery body 110, a cathode-side collector member 154 disposed on one side (upper side) of the battery body 110, and an anode-side collector member 156 disposed on the other side (lower side) of the battery body 110. Each of the cathode-side collector member 154 and the anode-side collector member 156 is an electrically conductive member having an approximately flat-plate shape, and is formed of, for example, an electrically conductive metal material selected from among stainless steel, Ni (nickel), Ti (titanium), Fe (iron), Cu (copper), Al (aluminum), and alloys of these, or a carbon material. In the following description, the cathode-side collector member 154 and the anode-side collector member 156 may be collectively referred to as “collector members.”
(Structure of Battery Body 110)
[0027] The battery body 110 is a lithium ion secondary battery body in which all battery elements are formed of a solid. As used herein, the phrase “all battery elements are formed of a solid” refers to the case where the skeletons of all battery elements are formed of a solid, but does not exclude the case where, for example, any of the skeletons is impregnated with a liquid. The battery body 110 includes a cathode 114, an anode 116, and a solid electrolyte layer 112 disposed between the cathode 114 and the anode 116. In the following description, the cathode 114 and the anode 116 may collectively be referred to as “electrodes.” The battery body 110 corresponds to an electricity storage device claimed in CLAIMS.
(Structure of Solid Electrolyte Layer 112)
[0028] The solid electrolyte layer 112 is a member having an approximately flat-plate shape, and contains a lithium ion conductor 202 serving as a solid electrolyte. More specifically, the solid electrolyte layer 112 is a molded product (compact) formed by press molding a powder of the lithium ion conductor 202. The structure of the lithium ion conductor 202 contained in the solid electrolyte layer 112 will be described in detail below.
(Structure of Cathode 114)
[0029] The cathode 114 is a member having an approximately flat-plate shape and contains a cathode active material 214. The cathode active material 214 is, for example, S (sulfur), TiS.sub.2, LiCoO.sub.2, LiMn.sub.2O.sub.4, or LiFePO.sub.4. The cathode 114 contains, as a lithium-ion-conducting aid, a lithium ion conductor 204 serving as a solid electrolyte. The cathode 114 may further contain an electron-conducting aid (e.g., electrically conductive carbon, Ni (nickel), Pt (platinum), or Ag (silver)).
(Structure of Anode 116)
[0030] The anode 116 is a member having an approximately flat-plate shape and contains an anode active material 216. The anode active material 216 is, for example, Li metal, Li—Al alloy, Li.sub.4Ti.sub.5O.sub.12, carbon, Si (silicon), or SiO. The anode 116 contains, as a lithium-ion-conducting aid, a lithium ion conductor 206 serving as a solid electrolyte. The cathode 116 may further contain an electron-conducting aid (e.g., electrically conductive carbon, Ni, Pt, or Ag).
A-2. Structure of Lithium Ion Conductor:
[0031] Next will be described the structure of the ion conductor 202 contained in the solid electrolyte layer 112. The lithium ion conductor 204 contained in the cathode 114 and the lithium ion conductor 206 contained in the anode 116 have the same structure as that of the ion conductor 202 contained in the solid electrolyte layer 112. Thus, description of the lithium ion conductors 204 and 206 is omitted.
[0032] In the present embodiment, the lithium ion conductor 202 of the solid electrolyte layer 112 includes an oxide-type lithium ion conductor and a complex hydride. The lithium ion conductivity of the oxide-type lithium ion conductor can be enhanced to a relatively high level by subjecting the powder thereof to sintering or vapor deposition. However, the oxide-type lithium ion conductor in powder form is relatively hard. Thus, the molded product prepared through press molding of the powder exhibits a low level of contact between particles and has low lithium ion conductivity. In contrast, although the lithium ion conductivity of the complex hydride is relatively low, close contact between particles forming the powder can be readily enhanced though pressing of the powder, because the powder is relatively soft. The lithium ion conductor 202 of the present embodiment contains an oxide-type lithium ion conductor and a complex hydride but no sulfide-type ion conductor, which may generate hazardous gas. In addition, close contact between particles can be enhanced through press molding the powder alone, without performing firing or vapor deposition, to thereby attain high lithium ion conductivity.
[0033] The oxide-type lithium ion conductor included in the lithium ion conductor 202 may be selected from various ion conductors. For example, the oxide-type lithium ion conductor included in the lithium ion conductor 202 may be at least one species of an ion conductor having a garnet-type or garnet-like structure, an ion conductor having a NASICON-type structure, and an ion conductor having a perovskite-type structure. In one particularly preferred mode, the lithium ion conductor 202 contains an oxide-type lithium ion conductor which has a garnet-type or a garnet-like structure and which contains Li, La, Zr, and at least one of Mg and A (wherein A represents at least one element selected from the group consisting of Ca, Sr, and Ba) (hereinafter referred to as “LLZ oxide-type lithium ion conductor”), and a complex hydride. Since the LLZ oxide-type lithium ion conductor is harder than other oxide-type lithium ion conductors, difficulty is encountered in attaining enhanced close contact between particles through only press molding the powder. Thus, by adding a relatively soft material such as a complex hydride to the LLZ oxide-type lithium ion conductor, close contact between particles can be enhanced through press molding the powder alone, to thereby attain high lithium ion conductivity. In other words, a mixture of the LLZ oxide-type lithium ion conductor with a complex hydride can provide a remarkable effect of enhancing the lithium ion conductivity, as compared with other oxide-type lithium ion conductors.
[0034] As the ion conductor having a garnet-type or garnet-like structure, an ion conductor at least containing Li, Zr, La, and O may be used. More specifically, the ion conductor may be, for example, Li.sub.7La.sub.3Zr.sub.2O.sub.12 (hereinafter will be referred to as “LLZ”) and a product prepared by substitution of LLZ with elemental Mg (magnesium) and Sr (strontium) (hereinafter the product will be referred to as “LLZ-MgSr”).
[0035] As the ion conductor having a NASICON-type structure, an ion conductor containing at least Li, M (wherein M is at least one of Ti, Zr, and Ge), P, and O may be used. More specifically, the ion conductor may be, for example, Li.sub.1.5Al.sub.0.5Ge.sub.1.5 (PO.sub.4).sub.3 (hereinafter referred to as “LAGP”).
[0036] As the ion conductor having a perovskite-type structure, an ion conductor containing at least Li, Ti, La, and O may be used. More specifically, the ion conductor may be, for example, La.sub.2/3−xLi.sub.3xTiO.sub.3 (hereinafter referred to as “LLT”).
[0037] As the complex hydride included in the lithium ion conductor 202, various hydrides may be used. For example, the complex hydride included in the lithium ion conductor 202 may contain LiBH.sub.4 and X (wherein X is at least one compound selected from among LiCl, LiBr, LiI, and LiNH.sub.2). Examples of the complex hydride including LiBH.sub.4 and X include 3LiBH.sub.4.LiI, LiBH.sub.4.LiNH.sub.2 (═Li.sub.2(BH.sub.4) (NH.sub.2)), and LiBH.sub.4.3LiNH.sub.2 (═Li.sub.4(BH.sub.4) (NH.sub.2).sub.3).
[0038] Alternatively, the complex hydride included in the lithium ion conductor 202 may be a compound having a closo structure and represented by a formula Li.sub.2(B.sub.nH.sub.n) (wherein n is an integer of 5 to 12). Notably, formation of a hydrate in air from a complex hydride having a closo structure is a rate-determining step, thereby avoiding a risk for ignition. Thus, the compound is preferred. More preferably, the complex hydride included in the lithium ion conductor 202 is a compound having a closo structure and is represented by formula Li.sub.2(B.sub.nH.sub.n) (wherein n is an integer of 6 to 12).
[0039] Alternatively, the complex hydride included in the lithium ion conductor 202 may be a compound having a nido structure and represented by formula Li(B.sub.nH.sub.n+3) (wherein n is an integer of 5 to 11).
[0040] The complex hydride included in the lithium ion conductor 202 may be selected from other complex hydrides such as LiBH.sub.4, LiNH.sub.2, LiBH.sub.4.3KI, LiBH.sub.4.PI.sub.2, LiBH.sub.4.P.sub.2S.sub.5, Li.sub.2AlH.sub.6, Li(NH.sub.2).sub.2I, Li.sub.2NH, and LiGd(BH.sub.4).sub.3Cl. Alternatively, the lithium ion conductor 202 may include a plurality species of the aforementioned complex hydrides.
[0041] The amount of the oxide-type lithium ion conductor in the lithium ion conductor 202 is preferably 85 vol % or less. Under the above condition, close contact between particles can be effectively enhanced through press molding the powder of the lithium ion conductor 202 alone, whereby remarkably high lithium ion conductivity can be attained. In the case where the lithium ion conductor 202 contains LLZ-MgSr serving as the oxide-type lithium ion conductor and 3LiBH.sub.4.LiI serving as the complex hydride, when the oxide-type lithium ion conductor content is 85 vol % or less, the lithium ion conductivity is 1.2×10.sup.−5 S/cm or higher as determined at 25° C. In the case where the lithium ion conductor 202 contains LLZ-MgSr serving as the oxide-type lithium ion conductor and Li.sub.2(B.sub.12H.sub.12) serving as the complex hydride, when the oxide-type lithium ion conductor content is 85 vol % or less, the lithium ion conductivity is 1.7×10.sup.−5 S/cm or higher as determined at 25° C.
[0042] The oxide-type lithium ion conductor content of the lithium ion conductor 202 is more preferably 20 vol % to 85 vol %, further preferably 30 vol % to 75 vol %.
[0043] Also, the oxide-type lithium ion conductor content of the lithium ion conductor 202 is preferably 30 vol % to 85 vol %. Under the above condition, deterioration of the capacity of the complete-solid battery 102 fabricated from the lithium ion conductor 202 can be prevented. In order to more effectively prevent deterioration of the capacity of the complete-solid battery 102, the oxide-type lithium ion conductor content of the lithium ion conductor 202 is more preferably 40 vol % to 75 vol %.
[0044] The presence of an oxide-type lithium ion conductor (e.g., LLZ-MgSr) or a complex hydride (e.g., the aforementioned 3LiBH.sub.4.LiI, a complex hydride having a closo structure, or a complex hydride having a nido structure) in the lithium ion conductor 202 can be detected through X-ray diffraction analysis (XRD) of the lithium ion conductor 202.
[0045] The ratio by volume (vol %) of oxide-type lithium ion conductor to complex hydride in the lithium ion conductor 202 can be determined through the following procedure. Specifically, an analysis target (e.g., the solid electrolyte layer 112 formed of the lithium ion conductor 202) is cut to develop a cut surface, which is then polished. Visual fields (×5,000) of the polished surface are selected at random, and the polished surface is analyzed by means of an energy-dispersive X-ray spectrometer (EDS) of a scanning electron microscope (SEM). Through determination of the element profile of the oxide-type lithium ion conductor (La and Zr in the case of LLZ-MgSr above) and the complex hydride (elements included in X in the case of the aforementioned complex hydride including LiBH.sub.4 and X) or through analysis of the contrast in a reflected electron image, the ratio of the area attributed to the oxide-type lithium ion conductor to the area attributed to the complex hydride is determined. The ratio is reduced to the ratio by volume (vol %) of the oxide-type lithium ion conductor to the complex hydride.
A-3. Production Method for Complete-Solid Battery 102:
[0046] Next will be described an exemplary production method for the complete-solid battery 102 of the present embodiment. Firstly, the solid electrolyte layer 112 is formed. Specifically, an oxide-type lithium ion conductor powder and a complex hydride powder are provided, and two powders are mixed at a specific ratio, to thereby prepare a powder mixture. The thus-prepared powder mixture is press-molded at a predetermined pressure, to thereby yield the solid electrolyte layer 112 formed of the lithium ion conductor 202 containing the oxide-type lithium ion conductor and the complex hydride.
[0047] Subsequently, the cathode 114 and the anode 116 are formed. Specifically, a powder of the cathode active material 214, the aforementioned powder mixture, and an optional electron-conducting aid powder are mixed in predetermined proportions, and the resultant powder mixture is pulverized and then subjected to molding, to thereby form the cathode 114. Separately, a powder of the anode active material 216, the aforementioned powder mixture, and an optional electron-conducting aid powder are mixed, and the resultant powder mixture is pulverized and then subjected to molding, to thereby form the anode 116.
[0048] Thereafter, the cathode-side collector member 154, the cathode 114, the solid electrolyte layer 112, the anode 116, and the anode-side collector member 156 are stacked in this order, and then integrated together by pressing. Through the above-described process, the complete-solid battery 102 having the aforementioned structure is produced.
A-4. Performance Evaluation:
[0049] Lithium ion conductors 202, 204, and 206 contained in the respective layers (solid electrolyte layer 112, cathode 114, and anode 116) of a complete-solid battery 102 were evaluated for lithium ion conductivity.
[0050] As shown in
[0051] As shown in
[0052] Methods for preparation and evaluation of the samples in the first and second performance evaluations will be described below.
(First Performance Evaluation)
[0053] Li.sub.2CO.sub.3, MgO, La(OH).sub.3, SrCO.sub.3, and ZrO.sub.2 were weighed so as to achieve a composition of Li.sub.6.95Mg.sub.0.15La.sub.2.75Sr.sub.0.25Zr.sub.2.0O.sub.12 (LLZ-MgSr). In consideration of volatilization of Li during firing, Li.sub.2CO.sub.3 was further added so that the amount of elemental Li was in excess, by about 15 mol %. These raw materials were added to a nylon pot together with zirconia balls, and the resultant mixture was pulverized by means of a ball mill in an organic solvent for 15 hours. Thereafter, the resultant slurry was dried and then calcined on an MgO plate at 1,100° C. for 10 hours. A binder was added to the calcined powder, and the mixture was subjected to pulverization by means of a ball mill in an organic solvent for 15 hours. Thereafter, the resultant slurry was dried, and the dried material was added to a mold having a diameter of 12 mm. The material was press-molded so as to have a thickness of about 1.5 mm, and then the molded product was pressed at an isostatic pressure of 1.5 t/cm.sup.2 by means of a cold isostatic pressing (CIP) machine, to thereby form a compact. The compact was covered with a calcination powder having the same composition as that of the compact and fired in a reducing atmosphere at 1,100° C. for four hours, to thereby yield a sintered body. The sintered body was found to have a lithium ion conductivity of 1.0×10.sup.−3 S/cm. The sintered body was pulverized in a glove box with an argon atmosphere, to thereby prepare a powder of LLZ-MgSr.
[0054] Under argon, the LLZ-MgSr powder prepared through the aforementioned method and a separately provided complex hydride (3LiBH.sub.4.LiI) powder were mixed at a volume ratio predetermined for the corresponding sample (total: 2 g), and the mixture was pulverized by means of a planetary ball mill including a zirconia pot (45 cc) and balls having a diameter of 4 mm (96.5 g) at 200 rpm for 3 hours, to thereby prepare an LLZ-MgSr/3LiBH.sub.4.LiI powder mixture. Notably, as described above, sample S1 contained 3LiBH.sub.4.LiI powder instead of the powder mixture, and sample S8 contained LLZ-MgSr powder instead of the powder mixture.
[0055] Under argon, each of the powder mixture was prepared through the aforementioned method (however, 3LiBH.sub.4.LiI single powder was employed in sample S1, and LLZ-MgSr single powder was employed in sample S8; the same conditions will apply throughout the experiments). The powder mixture was added to a mold having a diameter of 10 mm, and press-molded at a pressure of 500 MPa, to thereby form a molded product (compact) of a lithium ion conductor. The compact was fixed with a force corresponding to 50 MPa by means of a pressing jig, and the lithium ion conductivity of the compact was determined at room temperature.
(Second Performance Evaluation)
[0056] A complex hydride Li.sub.2B.sub.12H.sub.12.4H.sub.2O was heat-dried at 250° C. for 20 hours under vacuum, whereby crystal water was removed. Subsequently, under argon, an aliquot (0.5 g) of the dried powder was taken and pulverized by means of a planetary ball mill including a zirconia pot (45 cc) and zirconia balls at 400 rpm for 5 hours. After pulverization, the powder was dried in vacuum at 160° C. for 12 hours, to thereby yield Li.sub.2B.sub.12H.sub.12 powder.
[0057] Under argon, the LLZ-MgSr powder prepared in the same manner as employed in the first performance evaluation and the separately provided Li.sub.2B.sub.12H.sub.12 powder were mixed at a volume ratio predetermined for the corresponding sample (total: 2 g). The mixture was pulverized by means of a planetary ball mill including a zirconia pot (45 cc) and balls having a diameter of 4 mm (96.5 g) at 200 rpm for 3 hours, to thereby prepare an LLZ-MgSr/Li.sub.2B.sub.12H.sub.12 powder mixture. Notably, as described above, sample S11 contained Li.sub.2B.sub.12H.sub.12 powder instead of the powder mixture, and sample S18 contained LLZ-MgSr powder instead of the powder mixture.
[0058] Under argon, each of the powder mixture was prepared through the aforementioned method (however, Li.sub.2B.sub.12H.sub.12 single powder was employed in sample S11, and LLZ-MgSr single powder was employed in sample S18; the same conditions will apply throughout the experiments). The powder mixture was added to a mold having a diameter of 10 mm, and press-molded at a pressure of 360 MPa, to thereby form a molded product (compact) of a lithium ion conductor. The compact was fixed with a force corresponding to 50 MPa by means of a pressing jig, and the lithium ion conductivity of the compact was determined at room temperature.
(Results of First Performance Evaluation)
[0059] As shown in
[0060] Among samples S2 to S7, samples S2 to S6, having an oxide-type lithium ion conductor LLZ-MgSr content of 85 vol % or less, each exhibited a lithium ion conductivity of a higher value of 1.0×10.sup.−5 S/cm or higher. Thus, the results have proven that when the lithium ion conductor containing the oxide-type lithium ion conductor LLZ-MgSr and the complex hydride 3LiBH.sub.4.LiI has an LLZ-MgSr content of 85 vol % or less, higher lithium ion conductivity can be attained. Among samples S2 to S6, samples S3 to S5, having an oxide-type lithium ion conductor LLZ-MgSr content of 30 vol % to 75 vol %, each exhibited a lithium ion conductivity of a remarkably high value of 1.0×10.sup.−4 S/cm or higher. Thus, the results have proven that when the lithium ion conductor containing the oxide-type lithium ion conductor LLZ-MgSr and the complex hydride 3LiBH.sub.4.LiI has an LLZ-MgSr content of 30 vol % to 75 vol %, remarkably high lithium ion conductivity can be attained.
(Results of Second Performance Evaluation)
[0061] As shown in
[0062] Among samples S12 to S17, samples S12 to S16, having an oxide-type lithium ion conductor LLZ-MgSr content of 85 vol % or less, each exhibited a lithium ion conductivity of a higher value of 1.0×10.sup.−5 S/cm or higher. Thus, the results have proven that when the lithium ion conductor containing the oxide-type lithium ion conductor LLZ-MgSr and the complex hydride Li.sub.2B.sub.12H.sub.12 has an LLZ-MgSr content of 85 vol % or less, higher lithium ion conductivity can be attained. Among samples S12 to S16, samples S13 to S15, having an oxide-type lithium ion conductor LLZ-MgSr content of 30 vol % to 75 vol %, each exhibited a lithium ion conductivity of a remarkably high value of 3.0×10.sup.−5 S/cm or higher. Thus, the results have proven that when the lithium ion conductor containing the oxide-type lithium ion conductor LLZ-MgSr and the complex hydride Li.sub.2B.sub.12H.sub.12 has an LLZ-MgSr content of 30 vol % to 75 vol %, remarkably high lithium ion conductivity can be attained.
[0063] Separately, the performance of the lithium ion conductor included in the complete-solid battery 102 was evaluated in terms of capacity maintenance ratio (hereinafter referred to as “third performance evaluation”).
[0064] As shown in
[0065] Methods for preparation and evaluation of the samples in the third performance evaluation will be described below. Specifically, in the same manner as employed in the second performance evaluation, an LLZ-MgSr/Li.sub.2B.sub.12H.sub.12 powder mixture was obtained by mixing the two components at a volume ratio predetermined for the corresponding sample. Notably, as described above, sample S21 contained Li.sub.2B.sub.12H.sub.12 powder instead of the powder mixture. In the same manner as employed in the second performance evaluation, the powder mixture (however, Li.sub.2B.sub.12H.sub.12 single powder was employed in sample S21, and the same condition will apply throughout the experiments) was press-molded to form a solid electrolyte layer. On one surface of the solid electrolyte layer, a cathode active substance (LiNi.sub.0.8Co.sub.0.15Al.sub.0.05O.sub.2) and the aforementioned LLZ-MgSr/Li.sub.2B.sub.12H.sub.12 powder at a volume ratio predetermined for the corresponding sample were deposited, and the deposit was pressed again to the layer. On the other surface of the solid electrolyte layer, In—Li foil was attached, to thereby fabricate a battery.
[0066] The thus-fabricated battery was subjected to a charge-discharge test under pressurized conditions. The charge-discharge was performed at a current density of 64 μA/cm.sup.2, and cut-off voltages of 3.6 V (upon charging) and 2.4 V (upon discharging). The capacity maintenance ratio (i.e., voltage after 10 charge-discharge cycles/initial voltage) of each battery sample after 10 charge-discharge cycles was determined.
[0067] As shown in
[0068] In contrast, samples S24 to S28, having an oxide-type lithium ion conductor LLZ-MgSr content of 30 vol % to 85 vol %, each exhibited a high capacity maintenance ratio of 80% or higher. A conceivable reason for such a high capacity maintenance ratio is as follows. These samples have a low complex hydride Li.sub.2B.sub.12H.sub.12 content, to thereby prevent generation of the aforementioned high-resistance substance, which would otherwise cause deterioration in battery capacity. Thus, the results have proven that when the lithium ion conductor containing the oxide-type lithium ion conductor LLZ-MgSr and the complex hydride Li.sub.2B.sub.12H.sub.12 has an LLZ-MgSr content of 30 vol % to 85 vol %, deterioration of battery capacity can be prevented. Notably, among samples S24 to S28, samples S25 to S27, having an oxide-type lithium ion conductor LLZ-MgSr content of 40 vol % to 75 vol %, each exhibited a remarkably high capacity maintenance ratio of 85% or higher. Thus, the results have proven that when the lithium ion conductor containing the oxide-type lithium ion conductor LLZ-MgSr and the complex hydride Li.sub.2B.sub.12H.sub.12 has an LLZ-MgSr content of 40 vol % to 75 vol %, deterioration of battery capacity can be effectively prevented.
B. Modifications
[0069] The technique disclosed in the present specification is not limited to the aforementioned embodiment, but may be modified into various other forms without departing from the gist thereof. For example, the technique may be modified as described below.
[0070] In the aforementioned embodiment, the configuration of the complete-solid battery 102 is a mere example, and may be modified into various forms. For example, in the aforementioned embodiment, the lithium ion conductor containing both the oxide-type lithium ion conductor and the complex hydride is contained in all of the solid electrolyte layer 112, the cathode 114, and the anode 116. However, the lithium ion conductor may be contained in at least one of the solid electrolyte layer 112, the cathode 114, and the anode 116.
[0071] The technique disclosed in the present specification is not limited to the solid electrolyte layer or electrode forming the complete-solid battery 102, but can also be applied to a solid electrolyte layer or electrode forming another electricity storage device (e.g., a lithium-air battery, a lithium flow battery, or a solid capacitor).
DESCRIPTION OF REFERENCE NUMERALS
[0072] 102: complete-solid lithium ion secondary battery; 110: battery body; 112: solid electrolyte layer; 114: cathode; 116: anode; 154: cathode-side collector member; 156: anode-side collector member; 202: lithium ion conductor; 204: lithium ion conductor; 206: lithium ion conductor; 214: cathode active material; and 216: anode active material