Patents by Inventor Jennifer Rupp
Jennifer Rupp has filed for patents to protect the following inventions. This listing includes patent applications that are pending as well as patents that have already been granted by the United States Patent and Trademark Office (USPTO).
-
Patent number: 12261268Abstract: A method of manufacturing a lithium solid electrolyte, the method including: providing a composition including a lithium precursor, a lanthanum precursor, and a zirconium precursor; disposing the composition on a substrate having a temperature of 270° C. to 500° C. to form a film; and heat-treating the film at 300° C. to less than 750° C. for 1 hour to 100 hours to manufacture the lithium solid electrolyte.Type: GrantFiled: July 28, 2023Date of Patent: March 25, 2025Assignees: SAMSUNG ELECTRONICS CO., LTD., MASSACHUSETTS INSTITUTE OF TECHNOLOGYInventors: Yuntong Zhu, Won Seok Chang, Jennifer Rupp, Lincoln Miara
-
Patent number: 12211971Abstract: A lithium ion conductor includes a compound of Formula 1: Li7?a*??(b?4)*??xMa?La3Zr2??Mb?O12?x??XxN???Formula 1 wherein in Formula 1, Ma is a cationic element having a valence of a, Mb is a cationic element having a valence of b, and X is an anion having a valence of ?1, wherein, when Ma comprises H, 0???5, otherwise 0???0.75, and wherein 0???1.5, 0?x?1.5, (a*?+(b?4)?+x)>0, and 0<??6.Type: GrantFiled: March 6, 2023Date of Patent: January 28, 2025Assignees: SAMSUNG ELECTRONICS CO., LTD., MASSACHUSETTS INSTITUTE OF TECHNOLOGYInventors: Won Seok Chang, Zachary Hood, Jennifer Rupp, Lincoln Miara
-
Publication number: 20250023096Abstract: A multi-phase electrolyte film includes a first phase comprising a metal oxide, wherein the metal oxide is amorphous, crystalline, or a glass; and a second phase comprising a lithium salt having a decomposition temperature in air of greater than 200° C. or a lithium halide. The first phase is dispersed in the second phase and has an average particle size of 5 to 200 nanometers. Methods for the manufacture of the electrolyte film are also disclosed.Type: ApplicationFiled: October 1, 2024Publication date: January 16, 2025Inventors: Yuntong Zhu, Jesse Hinricher, Zachary Hood, Lincoln Miara, Heung Chan Lee, Won Seok Chang, Jennifer Rupp
-
Patent number: 12132167Abstract: A multi-phase electrolyte film includes a first phase comprising a metal oxide, wherein the metal oxide is amorphous, crystalline, or a glass; and a second phase comprising a lithium salt having a decomposition temperature in air of greater than 200° C. or a lithium halide. The first phase is dispersed in the second phase and has an average particle size of 5 to 200 nanometers. Methods for the manufacture of the electrolyte film are also disclosed.Type: GrantFiled: July 1, 2021Date of Patent: October 29, 2024Assignees: SAMSUNG ELECTRONICS CO., LTD., MASSACHUSETTS INSTITUTE OF TECHNOLOGYInventors: Yuntong Zhu, Jesse Hinricher, Zachary Hood, Lincoln Miara, Heung Chan Lee, Won Seok Chang, Jennifer Rupp
-
Patent number: 11959166Abstract: Thin films of lithium-containing materials and methods for fabricating them are generally described. In some embodiments, the formation of a first vapor is induced from a first target and the formation of a second vapor is induced from a second target, resulting in the formation of a thin film. In some embodiments, at least a portion of the formation of the first vapor and the formation of the second vapor occurs under vacuum conditions. In some embodiments, the thin film has a relatively high ionic conductivity, mixed ionic/electronic conductivity, or other properties beneficial for applications such as active electrode materials or solid-state electrolytes.Type: GrantFiled: August 13, 2019Date of Patent: April 16, 2024Assignees: Massachusetts Institute of Technology, ETH ZurichInventors: Reto Max Pfenninger, Michal Struzik, Inigo Garbayo, Andreas Nenning, Jennifer Rupp
-
Publication number: 20230387457Abstract: A method of manufacturing a lithium solid electrolyte, the method including: providing a composition including a lithium precursor, a lanthanum precursor, and a zirconium precursor; disposing the composition on a substrate having a temperature of 270° C. to 500° C. to form a film; and heat-treating the film at 300° C. to less than 750° C. for 1 hour to 100 hours to manufacture the lithium solid electrolyte.Type: ApplicationFiled: July 28, 2023Publication date: November 30, 2023Inventors: Yuntong Zhu, Won Seok Chang, Jennifer Rupp, Lincoln Miara
-
Patent number: 11825758Abstract: Resistive switching devices that contain lithium, including resistive switching devices containing a lithium titanate, and associated systems and methods are generally described. In some cases, the resistive switching device contains a lithium titanate-containing domain, a first electrode, and a second electrode. In some cases, the application of an electrical potential to the resistive switching device causes a change in resistance state of the lithium titanate-containing domain. The resistive switching devices described herein may be useful as memristors, and in applications that include Resistive-random access memory and neuromorphic computing.Type: GrantFiled: February 21, 2020Date of Patent: November 21, 2023Assignee: Massachusetts Institute of TechnologyInventors: Jennifer Rupp, Juan Carlos Gonzalez Rosillo
-
Publication number: 20230299340Abstract: A component for a lithium battery including a first layer including a lithium garnet having a porosity of 0 percent to less than 25 percent, based on a total volume of the first layer; and a second layer on the first layer and having a porosity of 25 percent to 80 percent, based on a total volume of the second layer, wherein the second layer is on the first layer and the second layer has a composition that is different from a composition of the first layer.Type: ApplicationFiled: May 23, 2023Publication date: September 21, 2023Inventors: Won Seok Chang, Zachary Hood, Jennifer Rupp, Lincoln Miara
-
Patent number: 11757127Abstract: A method of manufacturing a lithium solid electrolyte, the method including: providing a composition including a lithium precursor, a lanthanum precursor, and a zirconium precursor; disposing the composition on a substrate having a temperature of 270° C. to 500° C. to form a film; and heat-treating the film at 300° C. to less than 750° C. for 1 hour to 100 hours to manufacture the lithium solid electrolyte.Type: GrantFiled: April 28, 2020Date of Patent: September 12, 2023Assignees: SAMSUNG ELECTRONICS CO., LTD., MASSACHUSETTS INSTITUTE OF TECHNOLOGYInventors: Yuntong Zhu, Won Seok Chang, Jennifer Rupp, Lincoln Miara
-
Patent number: 11699811Abstract: A component for a lithium battery including a first layer including a lithium garnet having a porosity of 0 percent to less than 25 percent, based on a total volume of the first layer; and a second layer on the first layer and having a porosity of 25 percent to 80 percent, based on a total volume of the second layer, wherein the second layer is on the first layer and the second layer has a composition that is different from a composition of the first layer.Type: GrantFiled: December 8, 2020Date of Patent: July 11, 2023Assignees: SAMSUNG ELECTRONICS CO., LTD., MASSACHUSETTS INSTITUTE OF TECHNOLOGYInventors: Won Seok Chang, Zachary Hood, Jennifer Rupp, Lincoln Miara
-
Publication number: 20230207870Abstract: A lithium ion conductor includes a compound of Formula 1: Li7?a*??(b?4)*??xM?La3Zr2??Mb?O12?x??XxN???Formula 1 wherein in Formula 1, Ma is a cationic element having a valence of a, Mb is a cationic element having a valence of b, and X is an anion having a valence of ?1, wherein, when Ma comprises H, 0???5, otherwise 0?a?0.75, and wherein 0???1.5, 0?x?1.5, (a*?+(b-4)?+x)>0, and 0<??6.Type: ApplicationFiled: March 6, 2023Publication date: June 29, 2023Inventors: Won Seok Chang, Zachary Hood, Jennifer Rupp, Lincoln Miara
-
Patent number: 11631888Abstract: A lithium ion conductor includes a compound of Formula 1: Li7-a*?-(b-4)*?-xMa?La3Zr2-?Mb?O12-x-?XxN???Formula 1 wherein in Formula 1, Ma is a cationic element having a valence of a, Mb is a cationic element having a valence of b, and X is an anion having a valence of ?1, wherein, when Ma comprises H, 0???5, otherwise 0???0.75, and wherein 0???1.5, 0?x?1.5, (a*?+(b?4)?+x)>0, and 0<??6.Type: GrantFiled: December 8, 2020Date of Patent: April 18, 2023Assignees: SAMSUNG ELECTRONICS CO., LTD., MASSACHUSETTS INSTITUTE OF TECHNOLOGYInventors: Won Seok Chang, Zachary Hood, Jennifer Rupp, Lincoln Miara
-
Publication number: 20220344702Abstract: A multi-phase electrolyte film includes a first phase comprising a metal oxide, wherein the metal oxide is amorphous, crystalline, or a glass; and a second phase comprising a lithium salt having a decomposition temperature in air of greater than 200° C. or a lithium halide. The first phase is dispersed in the second phase and has an average particle size of 5 to 200 nanometers. Methods for the manufacture of the electrolyte film are also disclosed.Type: ApplicationFiled: July 1, 2021Publication date: October 27, 2022Inventors: Yuntong Zhu, Jesse Hinricher, Zachary Hood, Lincoln Miara, Heung Chan Lee, Won Seok Chang, Jennifer Rupp
-
Publication number: 20220059871Abstract: A method of manufacturing a solid-state electrolyte including: providing a solvent; dissolving a precursor compound including lithium, a precursor compound including lanthanum, and a precursor compound including zirconium in the solvent to provide a precursor composition, wherein a content of lithium in the precursor composition is greater than a stoichiometric amount; spraying the precursor composition onto a heated substrate to form a film; and heat-treating the film at 300° C. to 800° C. to manufacture the solid state electrolyte, wherein the solid-state electrolyte includes Li(7-x)Alx/3La3Zr2O12 wherein 0?x?1, and wherein the solid state electrolyte is in a form a film having a thickness of 5 nanometers to 1000 micrometers.Type: ApplicationFiled: November 4, 2021Publication date: February 24, 2022Inventors: Yuntong Zhu, Zachary Hood, Jennifer Rupp, Lincoln J. Miara
-
Patent number: 11251460Abstract: A method of manufacturing a solid-state electrolyte, the method including: providing a substrate; providing a precursor composition including a compound including a compound including lithium, a compound including lanthanum, and a compound including zirconium, and a solvent; disposing the precursor composition on the substrate to provide a coated substrate; treating the coated substrate at a temperature between ?40° C. and 25° C. to form a precursor film on the substrate; and heat-treating the precursor film at a temperature of 500° C. to 1000° C. to manufacture the solid-state electrolyte, wherein the solid-state electrolyte includes Li(7-x)Alx/3La3Zr2O12 wherein 0?x?1, and wherein the solid-state electrolyte in the form of a film having a thickness of 5 nanometers to 1000 micrometers.Type: GrantFiled: December 19, 2018Date of Patent: February 15, 2022Assignees: SAMSUNG ELECTRONICS CO., LTD., MASSACHUSETTS INSTITUTE OF TECHNOLOGYInventors: Yuntong Zhu, Zachary Hood, Jennifer Rupp, Lincoln J. Miara
-
Patent number: 11223066Abstract: A method of manufacturing a solid-state electrolyte including: providing a solvent; dissolving a precursor compound including lithium, a precursor compound including lanthanum, and a precursor compound including zirconium in the solvent to provide a precursor composition, wherein a content of lithium in the precursor composition is greater than a stoichiometric amount; spraying the precursor composition onto a heated substrate to form a film; and heat-treating the film at 300° C. to 800° C. to manufacture the solid state electrolyte, wherein the solid-state electrolyte includes Li(7-x)Alx/3La3Zr2O12 wherein 0?x?1, and wherein the solid state electrolyte is in a form a film having a thickness of 5 nanometers to 1000 micrometers.Type: GrantFiled: December 19, 2018Date of Patent: January 11, 2022Assignees: SAMSUNG ELECTRONICS CO., LTD., MASSACHUSETTS INSTITUTE OF TECHNOLOGYInventors: Yuntong Zhu, Zachary Hood, Jennifer Rupp, Lincoln J. Miara
-
Publication number: 20210332473Abstract: Thin films of lithium-containing materials and methods for fabricating them are generally described. In some embodiments, the formation of a first vapor is induced from a first target and the formation of a second vapor is induced from a second target, resulting in the formation of a thin film. In some embodiments, at least a portion of the formation of the first vapor and the formation of the second vapor occurs under vacuum conditions. In some embodiments, the thin film has a relatively high ionic conductivity, mixed ionic/electronic conductivity, or other properties beneficial for applications such as active electrode materials or solid-state electrolytes.Type: ApplicationFiled: August 13, 2019Publication date: October 28, 2021Applicants: Massachusetts Institute of Technology, ETH ZurichInventors: Reto Max Pfenninger, Michal Struzik, Inigo Garbayo, Andreas Nenning, Jennifer Rupp
-
Publication number: 20210214839Abstract: Lithium-containing thin films and methods for fabricating them are generally described. In some embodiments, the formation of a first vapor is induced from a first target and the formation of a second vapor is induced from a second target, resulting in the formation of a thin film. In some embodiments, at least a portion of the formation of the first vapor and the formation of the second vapor occurs under vacuum conditions. In some embodiments, the thin film has a relatively high ionic conductivity.Type: ApplicationFiled: August 13, 2019Publication date: July 15, 2021Applicants: Massachusetts Institute of Technology, ETH ZurichInventors: Reto Max Pfenninger, Michal Struzik, Inigo Garbayo, Andreas Nenning, Jennifer Rupp
-
Publication number: 20200403269Abstract: A method of manufacturing a lithium solid electrolyte, the method including: providing a composition including a lithium precursor, a lanthanum precursor, and a zirconium precursor; disposing the composition on a substrate having a temperature of 270° C. to 500° C. to form a film; and heat-treating the film at 300° C. to less than 750° C. for 1 hour to 100 hours to manufacture the lithium solid electrolyte.Type: ApplicationFiled: April 28, 2020Publication date: December 24, 2020Applicants: SAMSUNG ELECTRONICS CO., LTD., MASSACHUSETTS INSTITUTE OF TECHNOLOGYInventors: Yuntong Zhu, Won Seok Chang, Jennifer Rupp, Lincoln Miara
-
Publication number: 20200274065Abstract: Resistive switching devices that contain lithium, including resistive switching devices containing a lithium titanate, and associated systems and methods are generally described. In some cases, the resistive switching device contains a lithium titanate-containing domain, a first electrode, and a second electrode. In some cases, the application of an electrical potential to the resistive switching device causes a change in resistance state of the lithium titanate-containing domain. The resistive switching devices described herein may be useful as memristors, and in applications that include Resistive-random access memory and neuromorphic computing.Type: ApplicationFiled: February 21, 2020Publication date: August 27, 2020Applicant: Massachusetts Institute of TechnologyInventors: Jennifer Rupp, Juan Carlos Gonzalez Rosillo