IP Library › Granted Patent US 12,573,656
Granted Patent B2
US 12,573,656 · App. 17/391,094 · Granted Mar 10, 2026

Sintering aid mixture, solid-state ion conductor, and method for producing solid-state ion conductors

Inventors: Jörg Schuhmacher (Kornwestheim, DE); Miriam Kunze (Seelze, DE); Hans-Joachim Schmitt (Ockenheim, DE); Philipp Treis (St. Aldegund, DE); Meike Schneider (Taunusstein, DE); Andreas Roters (Mainz, DE); Jochen Drewke (Bechtolsheim, DE)
Assignee: SCHOTT AG
H01M10/0562H01M10/052H01M2300/0068H01M2300/0071
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Quick Facts
Patent No.
US 12,573,656
App. No.
17/391,094
Granted
Mar 10, 2026
Kind
B2
Abstract

A sintering aid mixture for sintering solid-state ion conductors, electrode materials, or the like for solid-state batteries is provided. The mixture includes at least one sol-gel precursor and/or at least one sol-gel direct precursor produced from at least one sol-gel precursor.

Claims (10)

1 . A sintering aid mixture comprising a sintering precursor selected from a group consisting of a sol-gel precursor, a sol-gel direct precursor prepared from the sol-gel precursor, and any combinations thereof to provide a sol-gel preliminary product and/or a sol-gel, wherein the sol-gel precursor comprises at least one organometallic compound selected from the group consisting of an alkoxide, an acetate, and any combination thereof, and a compact including at most 15% of the sintering aid mixture that when compacted achieves a densification at a sintering temperature at least 5% lower than the same compaction without the sintering aid mixture and has a conductivity increase of a factor of at least 1.5 as compared to the same compaction without the sintering aid mixture.

2 . The sintering aid mixture of claim 1 , wherein the sintering aid mixture is adapted for a use selected from a group consisting of a use for a solid-state ion conductor, a use for an electrode material, and a use for a solid-state battery component.

3 . The sintering aid mixture of claim 1 , wherein the sol-gel direct precursor is a powder.

4 . The sintering aid mixture of claim 3 , wherein the sol-gel direct precursor is a stoichiometric mixture of at least two sol-gel precursors.

5 . The sintering aid mixture of claim 1 , wherein the sintering precursor comprises lithium.

6 . The sintering aid mixture of claim 1 , wherein the sol-gel precursor is free of non-oxidic anions.

7 . The sintering aid mixture of claim 6 , wherein the sol-gel precursor comprises lithium acetate.

8 . The sintering aid mixture of claim 7 , wherein the sol-gel precursor further comprises a nitrate.

9 . The sintering aid mixture of claim 1 , wherein the sintering precursor has a sintering temperature selected from a group consisting of less than 1100° C., less than 1000° C., less than 900° C., less than 850° C., less than 840° C., less than 800° C., and less than 700° C.

10 . The sintering aid mixture according to claim 1 , wherein the sol-gel precursor comprises a lithium and aluminum-containing organometallic compound.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 24, 2022
From: SCHUHMACHER, JÖRG, DR.; KUNZE, MIRIAM, DR.; SCHMITT, HANS-JOACHIM; TREIS, PHILIPP; SCHNEIDER, MEIKE, DR.; ROTERS, ANDREAS, DR.; DREWKE, JOCHEN
To: SCHOTT AG
Reel/Frame 059384/0474 →
Priority Claims (1)
DE 10 2020 209 708.9 · Jul 31, 2020 · national
Continuity (1)
Related Publication 20220037694A1 · Feb 3, 2022
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