IP Library › Granted Patent US 11,292,729
Granted Patent B2
US 11,292,729 · App. 16/731,218 · Granted Apr 5, 2022

Hydrogen-substituted garnet-type oxide, manufacturing method of sintered body and manufacturing method of hydrogen-substituted garnet-type oxide

Inventors: Shingo Ohta (Nagakute, JP); Masaki Watanabe (Toyota, JP)
Assignee: TOYOTA JIDOSHA KABUSHIKI KAISHA
C01G25/006C04B35/488C04B35/64H01M10/0562C01P2002/72C04B2235/3203C04B2235/3208C04B2235/3217C04B2235/3227C04B2235/656C04B2235/764C04B2235/77H01M2300/0077
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Quick Facts
Patent No.
US 11,292,729
App. No.
16/731,218
Granted
Apr 5, 2022
Kind
B2
Abstract

There is provided a hydrogen-substituted garnet-type oxide containing at least Li, H, La and Zr and has an amount of hydrogen a (moll unit) per one unit of a garnet-type oxide in a range of ≤1.85.

Claims (34)

1. A hydrogen-substituted garnet-type oxide, containing at least Li, H, La and Zr and having an amount of hydrogen a (mol/unit) per one unit of a garnet-type oxide in a range of 0<a≤1.85, and

the hydrogen-substituted garnet-type oxide being expressed by an elemental composition:

(Li 7-a-3b+c-d , H a , M b )(La 3-c , A c )(Zr 2-d , T d )O 12

where

M denotes one or more elements out of Al, Ga and Fe;

A denotes one or more elements out of Ca and Sr; and

T denotes one or more elements out of Nb and Ta,

wherein the amount of hydrogen a (mol/unit) per one unit of the garnet-type oxide is in the range of 0<a≤1.85, 0≤b≤0.22, 0.05≤c≤1.0, and 0≤d≤0.6.

2. The hydrogen-substituted garnet-type oxide according to claim 1 ,

wherein the element M is Al, the element A is Ca and the element T is Nb.

3. The hydrogen-substituted garnet-type oxide according to claim 1 ,

wherein the amount of hydrogen a (mol/unit) is in a range of 0.5≤a.

4. A manufacturing method of a sintered body including a garnet-type oxide,

the manufacturing method of the sintered body comprising;

a molding process of mixing a hydrogen-substituted garnet-type oxide with a Li compound having an equivalent amount of Li to an amount of hydrogen included in the hydrogen-substituted garnet-type oxide to obtain a mixture and molding the mixture to form a molded body; and

a sintering process of sintering the molded body in a temperature range of not lower than 800° C. and not higher than 1200° C., so as to provide a sintered body including a garnet-type oxide that has a half-height width of not larger than 0.17 degrees with regard to 421-diffraction having a peak in a 2θ range of not smaller than 30.5 degrees and not larger than 31.0 degrees in X-ray diffraction analysis; wherein

the hydrogen-substituted garnet-type oxide contains at least Li, H, La and Zr and has an amount of hydrogen a (mol/unit) per one unit of a garnet-type oxide in a range of 0<a≤1.85, and

the hydrogen-substituted garnet-type oxide is expressed by an elemental composition:

(Li 7-a-3b-c-d , H a , M b )(La 3-c , A c )(Zr 2-d , T d )O 12

where

M denotes one or more elements out of Al, Ga and Fe,

A denotes one or more elements out of Ca and Sr, and

T denotes one or more elements out of Nb and Ta,

wherein the amount of hydrogen a (mol/ unit) per one unit of the garnet-type oxide is in the range of 0<a≤1.85, 0≤b≤0.22, 0.05≤c≤1.0, and 0≤d≤0.6.

5. The manufacturing method of the sintered body according to claim 4 ,

wherein the sintered body includes the garnet-type oxide and has the half-height width of 421-diffraction in a range of not smaller than 0.08 degrees and not larger than 0.16 degrees.

6. The manufacturing method of the sintered body according to claim 4 ,

wherein the sintered body has a relative density of not lower than 90%.

7. The manufacturing method of the sintered body according to claim 4 ,

wherein the sintered body has a conductivity of not lower than 1.0×10 −4 (S/cm) at 25° C.

8. A manufacturing method of a hydrogen-substituted garnet-type oxide, comprising:

a firing process including at least a first process that uses and mixes a raw material including at least a Li compound, a La compound and a Zr compound and fires the mixed raw material in a temperature range of not lower than 650° C. and not higher than 900° C. to obtain a fired powdery substance; and a second process that adds and mixes, as appropriate, a Li compound to and with the obtained fired powdery substance to obtain a mixture and fires the mixture in a temperature range of not lower than 650° C. and not higher than 900° C. to obtain a fired powdery substance; and

a hydrogen substitution process of causing the fired powdery substance obtained by the firing process to be immersed in a hydrogen-containing liquid for substitution of Li with H, so as to obtain the hydrogen-substituted garnet-type oxide according to claim 1 .

9. The hydrogen-substituted garnet-type oxide according to claim 1 , wherein the amount of hydrogen a (mol/unit) per one unit of the garnet-type oxide is in the range of 0.7≤a≤1.202.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 31, 2019
From: OHTA, SHINGO; WATANABE, MASAKI
To: TOYOTA JIDOSHA KABUSHIKI KAISHA
Reel/Frame 051391/0404 →
Priority Claims (1)
JP JP2019-029579 · Feb 21, 2019 · national
Continuity (1)
Related Publication 20200270143A1 · Aug 27, 2020