Energy storage devices

US9412998B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-9412998-B2
Application numberUS-201213725969-A
CountryUS
Kind codeB2
Filing dateDec 21, 2012
Priority dateFeb 25, 2009
Publication dateAug 9, 2016
Grant dateAug 9, 2016

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  1. Title

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  2. Abstract

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  4. Key dates

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  5. First independent claim

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Abstract

Official abstract text for this publication.

A novel hybrid lithium-ion anode material based on coaxially coated Si shells on vertically aligned carbon nanofiber (CNF) arrays. The unique cup-stacking graphitic microstructure makes the bare vertically aligned CNF array an effective Li + intercalation medium. Highly reversible Li + intercalation and extraction were observed at high power rates. More importantly, the highly conductive and mechanically stable CNF core optionally supports a coaxially coated amorphous Si shell which has much higher theoretical specific capacity by forming fully lithiated alloy. The broken graphitic edges at the CNF sidewall ensure good electrical connection with the Si shell during charge/discharge processes.

First claim

Opening claim text (preview).

What is claimed is: 1. An energy storage system comprising: a conductive substrate; a plurality of carbon nanofibers on the substrate, the carbon nanofibers including a plurality of multi-walled carbon nanotubes; an electrolyte including one or more charge carriers, wherein the carbon nanofibers include a stacked-cone structure; and a layer of intercalation material on the carbon nanofibers, the layer of intercalation material having a structure resulting from the stacked-cone structure. 2. An energy storage system comprising: a conductive substrate; a plurality of carbon nanofibers on the substrate, the carbon nanofibers including a plurality of multi-walled carbon nanotubes; an electrolyte including one or more charge carriers; and a layer of intercalation material on the carbon nanofibers, the layer of intercalation material comprising structures of silicon coated by surface electrolyte interphase. 3. The system of claim 2 , wherein the intercalation material has a nominal thickness of between 0.01 and 5 μm. 4. The system of claim 3 , wherein the layer of intercalation material includes nanofiber/intercalation material complexes, some of the nanofiber/intercalation material complexes including one nanofiber and some of the nanofiber/intercalation material complexes including two nanofibers. 5. The system of claim 2 , wherein the silicon has a nominal thickness of between approximately 0.01 μm and 40 μm. 6. The system of claim 2 , wherein the carbon nanofibers are between 1.0 and 200 μm in length. 7. The system of claim 6 , wherein the silicon covers less than 25% of the carbon nanofibers. 8. An energy storage system comprising: a conductive substrate; a plurality of connected carbon nanofibers on the substrate; and a layer of intercalation material disposed on the plurality of carbon nanofibers and configured to have a lithium ion storage capacity of between approximately 750 and 4,000 mAh per gram of intercalation material at a charging rate of 10 C. 9. The system of claim 8 , wherein a lithium ion storage capacity of between approximately 1,500 and 4,000 mAh per gram of intercalation material is achieved at a charging rate of 1 C and at a charging rate of 10 C. 10. The system of claim 8 , wherein the lithium ion storage capacity of between approximately 750 and 4,000 mAh per gram of intercalation material is achieved at a charging rate of 1 C and at a charging rate of 10 C. 11. The system of claim 8 , wherein a lithium ion storage capacity of between approximately 1,500 and 4,000 mAh per gram of intercalation material is achieved after 100 charge-discharge cycles. 12. The system of claim 8 , wherein a lithium ion storage capacity of between 2,000 and 4,000 mAh per gram of silicon is achieved at a charging rate of C/2 and at a charging rate of 10 C. 13. The system of claim 12 , wherein the intercalation material includes silicon. 14. An energy storage system comprising: a conductive substrate; a plurality of carbon nanofibers on the substrate; and a layer of intercalation material disposed on the plurality of carbon nanofibers and configured such that an ion storage capacity of the intercalation material is approximately the same at charging rates of 1 C and 3 C. 15. The system of claim 14 , wherein the ion storage capacity increases as the charging rate is increased from 3 C to 10 C. 16. The system of claim 14 , wherein the ion storage capacity changes by less than 25% between charging rates of 0.3 C and 3 C. 17. The system of claim 2 , wherein the carbon nanofibers each include graphitic edges along sides of the carbon nanofibers. 18. The system of claim 2 , wherein the carbon nanofibers are vertically aligned and grown on the substrate. 19. The system of claim 2 , wherein the intercalation material being disposed to cover less than 25% of the carbon nanofibers. 20. The system of claim 2 , further comprising an overlayer partially or fully encapsulating the intercalation material, the intercalation material including silicon and the overlayer including SiO 2 . 21. The system of claim 20 , wherein the intercalation material is disposed to cover less than 25% of the carbon nanofibers. 22. The system of claim 8 , wherein the carbon nanofibers include multi-walled carbon nanotubes. 23. The system of claim 8 , wherein the carbon nanofibers are connected by a part of the intercalation material that envelops more than one carbon nanofiber. 24. An energy storage system comprising: a conductive substrate; a plurality of carbon nanofibers on the substrate, the carbon nanofibers including graphitic edges along a sidewall of the carbon nanofibers; and a layer of intercalation material disposed on the plurality of carbon nanofibers and including silicon, wherein a structure of the intercalation material is responsive to the graphitic edges. 25. The system of claim 24 , wherein the carbon nanofibers are grown on the conductive substrate. 26. The system of claim 24 , wherein the carbon nanofibers are configured for Li + intercalation between the graphitic edges. 27. The system of claim 24 , wherein the intercalation material is configured such that a volume change in the intercalation material is dominated by radial expansion, perpendicular to axes of the carbon nanofibers, during charge carrier intercalation. 28. The system of claim 24 , further comprising an overlayer partially or fully encapsulating the intercalation material, the intercalation material including silicon and the overlayer including SiO 2 . 29. The system of claim 2 , wherein the carbon nanofibers are entangled. 30. The system of claim 2 , wherein the surface electrolyte interphase has a feather-like structure. 31. The system of claim 1 , wherein the structure is a feather-like structure. 32. The system of claim 2 , wherein the structures are feather-like structures. 33. The system of claim 2 , wherein the structures result from a structure of each of the multi-walled carbon nanotubes. 34. The system of claim 8 , wherein the intercalation material includes silicon particles and is disposed to cover less than 25% of the carbon nanotubes. 35. The system of claim 28 , wherein the intercalation material is disposed to cover less than 25% of the carbon nanofibers. 36. A system comprising: an electrode disposed in a first region of electrolyte and including a substrate, a plurality of support filaments, and an ion absorbing material attached to the support filaments and including silicon, the ion adsorbing material covering less than 25% of the support filaments; a separator configured to separate the first region and a second region of electrolyte; and a cathode disposed in the second region of electrolyte, the cathode, anode and separator configured to operate as a rechargeable battery. 37. The system of claim 36 , wherein the support filaments comprise a carbon nano-tube (CNT), a carbon nano-fiber (CNF), or a nano-wire (NW). 38. The system of claim 36 , wherein the ion absorbing material is attached to the support filaments by a binder. 39. the system of claim 36 , wherein the ion absorbing material includes silicon particles.

Assignees

Inventors

Classifications

  • Nanotechnology for materials or surface science, e.g. nanocomposites · CPC title

  • Rocking-chair batteries, i.e. batteries with lithium insertion or intercalation in both electrodes; Lithium-ion batteries · CPC title

  • Cross-Sectional Technologies · mapped topic

  • Subject matter not provided for in other groups of this subclass · CPC title

  • Processes of manufacture · CPC title

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What does patent US9412998B2 cover?
A novel hybrid lithium-ion anode material based on coaxially coated Si shells on vertically aligned carbon nanofiber (CNF) arrays. The unique cup-stacking graphitic microstructure makes the bare vertically aligned CNF array an effective Li + intercalation medium. Highly reversible Li + intercalation and extraction were observed at high power rates. More importantly, the highly conductive and …
Who is the assignee on this patent?
Rojeski Ronald A, Klankowski Steven, Li Jun
What technology area does this patent fall under?
Primary CPC classification H01M4/133. Mapped technology areas include Electricity.
When was this patent published?
Publication date Tue Aug 09 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).