Patents by Inventor Philippe M. Vereecken
Philippe M. Vereecken 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).
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Patent number: 11827992Abstract: At least one embodiment relates to a method for transforming at least part of a valve metal layer into a template that includes a plurality of spaced channels aligned longitudinally along a first direction. The method includes a first anodization step that includes anodizing the valve metal layer in a thickness direction to form a porous layer that includes a plurality of channels. Each channel has channel walls and a channel bottom. The channel bottom is coated with a first insulating metal oxide barrier layer as a result of the first anodization step. The method also includes a protective treatment. Further, the method includes a second anodization step after the protective treatment. The second anodization step substantially removes the first insulating metal oxide barrier layer, induces anodization, and creates a second insulating metal oxide barrier layer. In addition, the method includes an etching step.Type: GrantFiled: January 12, 2023Date of Patent: November 28, 2023Assignees: Imec vzw, Katholieke Universiteit LeuvenInventors: Stanislaw Piotr Zankowski, Philippe M. Vereecken
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Patent number: 11777143Abstract: A solid electrolyte of the present disclosure includes: a porous dielectric having a plurality of pores interconnected mutually; and an electrolyte including a metal salt and at least one selected from the group consisting of an ionic compound and a bipolar compound and at least partially filling an interior of the plurality of pores. Inner surfaces of the plurality of pores of the porous dielectric are at least partially modified by a functional group containing a halogen atom.Type: GrantFiled: October 1, 2020Date of Patent: October 3, 2023Assignees: IMEC VZW, PANASONIC HOLDINGS CORPORATIONInventors: Xubin Chen, Knut Bjarne Gandrud, Maarten Mees, Philippe M. Vereecken, Akihiko Sagara, Hiroki Yabe, Hidekazu Arase
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Publication number: 20230144037Abstract: At least one embodiment relates to a method for transforming at least part of a valve metal layer into a template that includes a plurality of spaced channels aligned longitudinally along a first direction. The method includes a first anodization step that includes anodizing the valve metal layer in a thickness direction to form a porous layer that includes a plurality of channels. Each channel has channel walls and a channel bottom. The channel bottom is coated with a first insulating metal oxide barrier layer as a result of the first anodization step. The method also includes a protective treatment. Further, the method includes a second anodization step after the protective treatment. The second anodization step substantially removes the first insulating metal oxide barrier layer, induces anodization, and creates a second insulating metal oxide barrier layer. In addition, the method includes an etching step.Type: ApplicationFiled: January 12, 2023Publication date: May 11, 2023Inventors: Stanislaw Piotr Zankowski, Philippe M. Vereecken
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Patent number: 11618966Abstract: Porous solid materials are provided. The porous solid materials include a plurality of interconnected wires forming an ordered network. The porous solid materials may have a predetermined volumetric surface area ranging between 2 m2/cm3 and 90 m2/cm3, a predetermined porosity ranging between 3% and 90% and an electrical conductivity higher than 100 S/cm. The porous solid materials may have a predetermined volumetric surface area ranging between 3 m2/cm3 and 72 m2/cm3, a predetermined porosity ranging between 80% and 95% and an electrical conductivity higher than 100 S/cm. The porous solid materials (100) may have a predetermined volumetric surface area ranging between 3 m2/cm3 and 85 m2/cm3, a predetermined porosity ranging between 65% and 90% and an electrical conductivity higher than 2000 S/cm. Methods for the fabrication of such porous solid materials and devices including such porous solid material are also disclosed.Type: GrantFiled: July 10, 2018Date of Patent: April 4, 2023Assignees: IMEC VZW, Katholieke Universiteit Leuven, KU Leuven R&DInventors: Stanislaw Piotr Zankowski, Philippe M. Vereecken
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Publication number: 20210174982Abstract: Porous solid materials are provided. The porous solid materials include a plurality of interconnected wires forming an ordered network. The porous solid materials may have a predetermined volumetric surface area ranging between 2 m2/cm3 and 90 m2/cm3, a predetermined porosity ranging between 3% and 90% and an electrical conductivity higher than 100 S/cm. The porous solid materials may have a predetermined volumetric surface area ranging between 3 m2/cm3 and 72 m2/cm3, a predetermined porosity ranging between 80% and 95% and an electrical conductivity higher than 100 S/cm. The porous solid materials (100) may have a predetermined volumetric surface area ranging between 3 m2/cm3 and 85 m2/cm3, a predetermined porosity ranging between 65% and 90% and an electrical conductivity higher than 2000 S/cm. Methods for the fabrication of such porous solid materials and devices including such porous solid material are also disclosed.Type: ApplicationFiled: July 10, 2018Publication date: June 10, 2021Inventors: Stanislaw Piotr Zankowski, Philippe M. Vereecken
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Patent number: 11028496Abstract: At least one embodiment relates to a method fabricating a solid-state battery cell. The method includes forming a plurality of spaced electrically conductive structures on a substrate. Forming the plurality of spaced electrically conductive structures on the substrate includes transforming at least part of a valve metal layer into a template that includes a plurality of spaced channels aligned longitudinally along a first direction. Transforming at least part of the valve metal layer into the template includes a first anodization step, a second anodization step, an etching step in an etching solution, and a deposition step. The method also includes forming a first layer of active electrode material on the plurality of spaced electrically conductive structures, depositing an electrolyte layer over the first layer of active electrode material, and forming a second layer of active electrode material over the electrolyte later.Type: GrantFiled: July 13, 2018Date of Patent: June 8, 2021Assignee: IMEC VZWInventors: Stanislaw Piotr Zankowski, Philippe M. Vereecken
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Publication number: 20210020988Abstract: A solid electrolyte of the present disclosure includes: a porous dielectric having a plurality of pores interconnected mutually; and an electrolyte including a metal salt and at least one selected from the group consisting of an ionic compound and a bipolar compound and at least partially filling an interior of the plurality of pores. Inner surfaces of the plurality of pores of the porous dielectric are at least partially modified by a functional group containing a halogen atom.Type: ApplicationFiled: October 1, 2020Publication date: January 21, 2021Inventors: Xubin CHEN, Knut Bjarne GANDRUD, Maarten MEES, Philippe M. VEREECKEN, Akihiko SAGARA, Hiroki YABE, Hidekazu ARASE
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Patent number: 10767263Abstract: A method of producing a metal-organic framework (MOF) film on a substrate is provided. The method includes providing a substrate having a main surface and forming on the main surface a MOF film using an organometallic compound precursor and at least one organic ligand, wherein each of the organometallic compound precursor and the at least one organic ligand is provided only in the vapour phase.Type: GrantFiled: August 31, 2018Date of Patent: September 8, 2020Assignees: IMEC VZW, Katholieke Universiteit Leuven, KU LEUVEN R&D.Inventors: Ivo Stassen, Rob Ameloot, Dirk De Vos, Philippe M. Vereecken
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Publication number: 20200194773Abstract: At least one embodiment relates to a method fabricating a solid-state battery cell. The method includes forming a plurality of spaced electrically conductive structures on a substrate. Forming the plurality of spaced electrically conductive structures on the substrate includes transforming at least part of a valve metal layer into a template that includes a plurality of spaced channels aligned longitudinally along a first direction. Transforming at least part of the valve metal layer into the template includes a first anodization step, a second anodization step, an etching step in an etching solution, and a deposition step. The method also includes forming a first layer of active electrode material on the plurality of spaced electrically conductive structures, depositing an electrolyte layer over the first layer of active electrode material, and forming a second layer of active electrode material over the electrolyte later.Type: ApplicationFiled: July 13, 2018Publication date: June 18, 2020Inventors: Stanislaw Piotr Zankowski, Philippe M. Vereecken
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Publication number: 20200181789Abstract: At least one embodiment relates to a method for forming a layer of functional material on an electrically conductive substrate. The method includes depositing an interlayer on the substrate. The interlayer includes a transition metal oxide, a noble metal, or a noble-metal oxide. The interlayer has a thickness between 0.5 nm and 30 nm. The method also includes depositing a functional material precursor layer on the interlayer. Further, the method includes activating the functional material precursor layer by annealing to form the layer of functional material.Type: ApplicationFiled: July 10, 2018Publication date: June 11, 2020Inventors: Stanislaw Piotr Zankowski, Philippe M. Vereecken
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Publication number: 20200181792Abstract: At least one embodiment relates to a method for transforming at least part of a valve metal layer into a template that includes a plurality of spaced channels aligned longitudinally along a first direction. The method includes a first anodization step that includes anodizing the valve metal layer in a thickness direction to form a porous layer that includes a plurality of channels. Each channel has channel walls and a channel bottom. The channel bottom is coated with a first insulating metal oxide barrier layer as a result of the first anodization step. The method also includes a protective treatment. Further, the method includes a second anodization step after the protective treatment. The second anodization step substantially removes the first insulating metal oxide barrier layer, induces anodization, and creates a second insulating metal oxide barrier layer. In addition, the method includes an etching step.Type: ApplicationFiled: July 10, 2018Publication date: June 11, 2020Inventors: Stanislaw Piotr Zankowski, Philippe M. Vereecken
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Patent number: 10644302Abstract: The disclosure relates to a method for forming a conformal coating on a substrate having a topography presenting a relief. One method of the disclosure includes setting the temperature of the substrate within the range 140-275° C., and coating an aqueous solution including a sol-gel precursor on said substrate. The disclosure also relates to a method for fabricating a battery, a capacitor, a catalyst, a photovoltaic cell or a sensor using such a method, and to an aqueous solution for use in such a method.Type: GrantFiled: May 20, 2015Date of Patent: May 5, 2020Assignees: IMEC VZW, Universiteit HasseltInventors: Sven Gielis, An Hardy, Marlies Van Bael, Philippe M. Vereecken
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Publication number: 20190024235Abstract: A method of producing a metal-organic framework (MOF) film on a substrate is disclosed, the method comprising providing a substrate having a main surface and forming on said main surface a MOF film using an organometallic compound pre-cursor and at least one organic ligand, wherein each of said organometallic compound precursor and said at least one organic ligand is provided only in vapour phase.Type: ApplicationFiled: August 31, 2018Publication date: January 24, 2019Applicants: IMEC VZW, Katholieke Universiteit Leuven, KU LEUVEN R&DInventors: Ivo Stassen, Rob Ameloot, Dirk De Vos, Philippe M. Vereecken
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Patent number: 10094020Abstract: A method of producing a metal-organic framework (MOF) film on a substrate is disclosed, the method comprising providing a substrate having a main surface and forming on said main surface a MOF film using an organometallic compound precursor and at least one organic ligand, wherein each of said organometallic compound precursor and said at least one organic ligand is provided only in vapour phase.Type: GrantFiled: April 29, 2015Date of Patent: October 9, 2018Assignees: IMEC VZW, Katholieke Universiteit Leuven, KU LEUVEN R&DInventors: Ivo Stassen, Rob Ameloot, Dirk De Vos, Philippe M. Vereecken
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Patent number: 9982360Abstract: A method for transferring a graphene layer from a metal substrate to a second substrate is provided comprising: providing a graphene layer on the metal substrate, adsorbing hydrogen atoms on the metal substrate by passing protons through the graphene layer, treating the metal substrate having adsorbed hydrogen atoms thereon in such a way as to form hydrogen gas from the adsorbed hydrogen atoms, thereby detaching the graphene layer from the metal substrate, transferring the graphene layer to the second substrate, and optionally reusing the metal substrate by repeating the aforementioned steps.Type: GrantFiled: September 15, 2014Date of Patent: May 29, 2018Assignee: IMEC VZWInventors: Cedric Huyghebaert, Philippe M. Vereecken, Geoffrey Pourtois
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Publication number: 20170198393Abstract: A method of producing a metal-organic framework (MOF) film on a substrate is disclosed, the method comprising providing a substrate having a main surface and forming on said main surface a MOF film using an organometallic compound precursor and at least one organic ligand, wherein each of said organometallic compound precursor and said at least one organic ligand is provided only in vapour phase.Type: ApplicationFiled: April 29, 2015Publication date: July 13, 2017Applicants: IMEC VZW, Katholieke Universiteit Leuven, KU LEUVEN R&DInventors: Ivo Stassen, Rob Ameloot, Dirk De Vos, Philippe M. Vereecken
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Publication number: 20170092931Abstract: The disclosure relates to a method for forming a conformal coating on a substrate having a topography presenting a relief. One method of the disclosure includes setting the temperature of the substrate within the range 140-275° C., and coating an aqueous solution including a sol-gel precursor on said substrate. The disclosure also relates to a method for fabricating a battery, a capacitor, a catalyst, a photovoltaic cell or a sensor using such a method, and to an aqueous solution for use in such a method.Type: ApplicationFiled: May 20, 2015Publication date: March 30, 2017Applicants: IMEC VZW, Universiteit HasseltInventors: Sven Gielis, An Hardy, Marlies Van Bael, Philippe M. Vereecken
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Publication number: 20150079399Abstract: A method for transferring a graphene layer from a metal substrate to a second substrate is provided comprising: providing a graphene layer on the metal substrate, adsorbing hydrogen atoms on the metal substrate by passing protons through the graphene layer, treating the metal substrate having adsorbed hydrogen atoms thereon in such a way as to form hydrogen gas from the adsorbed hydrogen atoms, thereby detaching the graphene layer from the metal substrate, transferring the graphene layer to the second substrate, and optionally reusing the metal substrate by repeating the aforementioned steps.Type: ApplicationFiled: September 15, 2014Publication date: March 19, 2015Inventors: Cedric Huyghebaert, Philippe M. Vereecken, Geoffrey Pourtois
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Publication number: 20140363744Abstract: A solid-state battery cell includes an anode, a cathode, and a solid electrolyte matrix. At least the anode or the cathode may include an active electrode material having pores. Further, an inner surface of the pores may be coated with a first surface-ion diffusion enhancement coating. The solid electrolyte matrix may further include an electrically insulating matrix for a solid electrolyte. The electrically insulating matrix may have pores or passages and an inner surface of the pores or the passages may be coated with a second surface-ion diffusion enhancement coating.Type: ApplicationFiled: June 4, 2014Publication date: December 11, 2014Applicant: IMEC VZWInventors: Philippe M. Vereecken, Cedric Huyghebaert
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Patent number: 8685877Abstract: A catalyst particle for use in growth of elongated nanostructures, such as e.g. nanowires, is provided. The catalyst particle comprises a catalyst compound for catalyzing growth of an elongated nanostructure comprising a nanostructure material without substantially dissolving in the nanostructure material and at least one dopant element for doping the elongated nanostructure during growth by substantially completely dissolving in the nanostructure material. A method for forming an elongated nanostructure, e.g. nanowire, on a substrate using the catalyst particle is also provided. The method allows controlling dopant concentration in the elongated nanostructures, e.g. nanowires, and allows elongated nanostructures with a low dopant concentration of lower than 1017 atoms/cm3 to be obtained.Type: GrantFiled: December 19, 2007Date of Patent: April 1, 2014Assignee: IMECInventors: Francesca Iacopi, Philippe M. Vereecken