Integration of energy storage devices onto substrates for microelectronics and mobile devices

US9245695B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-9245695-B2
Application numberUS-201113995138-A
CountryUS
Kind codeB2
Filing dateDec 21, 2011
Priority dateDec 21, 2011
Publication dateJan 26, 2016
Grant dateJan 26, 2016

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

In an embodiment of the invention, an energy storage device is described including a pair of electrically conductive porous structures, with each of the electrically conductive porous structures containing an electrolyte loaded into a plurality of pores. A solid or semi-solid electrolyte layer separates the pair of electrically conductive porous structures and penetrates the plurality of pores of the pair of electrically conductive porous structures. In an embodiment of the invention, an electrically conductive porous structure is formed on a substrate, the electrically conductive porous structure containing a plurality of pores. An electrolyte is then loaded into the plurality of pores, and an electrolyte layer is formed over the electrically conductive porous structure. In an embodiment, the electrolyte layer penetrates the plurality of pores of the electrically conductive porous structure.

First claim

Opening claim text (preview).

What is claimed is: 1. An energy storage device comprising: a pair of porous semiconductor structures, each porous semiconductor structure containing an electrolyte loaded into a plurality of pores; and a solid or semi-solid electrolyte layer separating the pair of porous semiconductor structures and penetrating the pair of porous semiconductor structures. 2. The energy storage device of claim 1 , wherein the electrolyte layer comprises a polymer matrix. 3. The energy storage device of claim 2 , wherein the electrolyte layer further comprises an ionic liquid. 4. The energy storage device of claim 2 , wherein the polymer matrix comprises a co-polymer. 5. The energy storage device of claim 4 , wherein the co-polymer comprises: a first polymer to provide a structural backbone of the polymer matrix; and a second polymer to provide ionic conductivity between the pair of electrically conductive porous structures. 6. The energy storage device of claim 4 , wherein the co-polymer comprises polyimide and polyethylene oxide. 7. The energy storage device of claim 5 , wherein the first polymer has a higher molecular weight than the second polymer. 8. The energy storage device of claim 2 , wherein the pair of porous semiconductor structures comprise a material selected from the group consisting of silicon, germanium, silicon-carbide, and silicon-germanium. 9. The energy storage device of claim 2 , wherein the pair of porous semiconductor structures comprise silicon. 10. The energy storage device of claim 1 , wherein the energy storage device is incorporated within an electronic device, the energy storage device being associated with a microprocessor. 11. The energy storage device of claim 10 , wherein the energy storage device is formed within a casing of a mobile electronic device. 12. The energy storage device of claim 11 , wherein mobile electronic device is selected from the group consisting of a mobile telephone, a laptop computer, and a tablet computer. 13. The energy storage device of claim 1 , wherein the energy storage device is formed on a silicon bridge connecting two die. 14. An energy storage device comprising: a pair of porous semiconductor structures, each porous semiconductor structure containing an electrolyte loaded into a plurality of pores, wherein the pair of porous semiconductor structures comprise silicon, and further wherein the plurality of pores includes multiple channels, with each channel having an opening to a surface of the porous semiconductor structure, and the electrolyte is loaded into the multiple channels; and a solid or semi-solid electrolyte layer separating the pair of porous semiconductor structures and penetrating the pair of porous semiconductor structures, wherein the electrolyte layer comprises a polymer matrix. 15. The energy storage device of claim 14 , further comprising a coating in at least some of the channels, the coating selected from the group consisting of an electrically conductive coating and a dielectric coating. 16. A method of forming an energy storage device comprising: forming an electrically conductive porous structure on a substrate, the electrically conductive porous structure containing a plurality of pores, wherein forming the electrically conductive porous structure on the substrate comprises depositing a gel on the substrate; and extracting a liquid component from the gel through supercritical drying; loading an electrolyte into the plurality of pores; and forming a solid or semi-solid electrolyte layer over the electrically conductive porous structure, wherein the electrolyte layer penetrates the electrically conductive porous structure. 17. The method of 16 , wherein forming the electrically conductive porous structure on the substrate comprises: thermal spraying an electrically conductive layer onto the substrate; and electrochemically etching a porous structure into the electrically conductive layer. 18. The method of claim 17 , wherein thermal spraying the electrically conductive layer onto the substrate comprises thermal spraying silicon onto the substrate. 19. The method of claim 16 , wherein loading the electrolyte into the plurality of pores comprises introducing the electrolyte to the electrically conductive porous structure while compressed, and allowing the electrically conductive porous structure to expand to uptake the electrolyte. 20. The method of claim 16 , wherein loading the electrolyte into the plurality of pores comprises introducing the electrolyte to the electrically conductive porous structure while under vacuum. 21. The method of claim 16 , wherein the electrically conductive porous structure comprises a material selected from the group consisting of silicon, carbon, vanadium, molybdenum, ruthenium, and manganese. 22. The method of claim 16 , further comprising incorporating the energy storage device within an electronic device and in association with a microprocessor. 23. The method of claim 16 , further comprising forming the energy storage device within a casing of a mobile electronic device. 24. The method of claim 16 , wherein forming the electrically conductive porous structure on the substrate comprises: electrospinning conductive nanostructures onto the substrate. 25. The method of claim 16 , wherein the substrate is a flexible substrate. 26. A method of forming an energy storage device comprising: thermal spraying an electrically conductive layer onto a substrate; electrochemically etching a porous structure into the electrically conductive layer, the porous structure including multiple channels, with each channel having an opening to a surface of the porous structure; loading an electrolyte into the multiple channels; and forming a solid or semi-solid electrolyte layer over the surface of the porous structure. 27. The method of claim 26 , wherein the electrolyte layer penetrates the openings to the multiple channels. 28. The method of claim 26 , wherein forming the solid or semi-solid electrolyte layer over the surface comprises forming an electrolyte layer over the surface, followed by polymerizing the electrolyte layer to form the solid or semi-solid electrolyte layer. 29. The method of claim 26 , wherein thermal spraying the electrically conductive layer onto the substrate comprises thermal spraying silicon onto the substrate. 30. A method of forming an energy storage device comprising: providing a pair of electrically conductive porous structures, each electrically conductive porous structure containing a plurality of pores; loading an electrolyte into the plurality of pores for each electrically conductive porous structure; and bringing the pair of electrically conductive porous structures together with an electrolyte layer separating the pair of electrically conductive porous structures; and polymerizing the electrolyte layer to form a solid or semi-solid electrolyte layer. 31. The method of claim 30 , further comprising polymerizing the electrolyte layer after bringing the pair of electrically conductive porous structures together. 32. The method of claim 30 , further comprising depositing the electrolyte layer onto one of the pair of electrically conductive porous structures prior to bringing the pair of electrically conductive porous structures togethe

Assignees

Inventors

Classifications

  • being rough surfaces, e.g. using hemispherical grains · CPC title

  • Energy storage using capacitors · CPC title

  • H01G11/04Primary

    Hybrid capacitors · CPC title

  • characterised by their material · CPC title

  • Electrolytes · CPC title

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What does patent US9245695B2 cover?
In an embodiment of the invention, an energy storage device is described including a pair of electrically conductive porous structures, with each of the electrically conductive porous structures containing an electrolyte loaded into a plurality of pores. A solid or semi-solid electrolyte layer separates the pair of electrically conductive porous structures and penetrates the plurality of pores …
Who is the assignee on this patent?
Gardner Donald S, Pint Cary L, Holzwarth Charles W, and 4 more
What technology area does this patent fall under?
Primary CPC classification H01G11/04. Mapped technology areas include Electricity.
When was this patent published?
Publication date Tue Jan 26 2016 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).