Claims
- 1. An apparatus for use as a fracture absorption layer comprising
a first electrochemical layer having a first side, a second electrochemical layer having a first side, and a third electrochemical layer adapted to stunt fractures, wherein said third electrochemical layer is disposed between at least a portion of said first side of said first electrochemical layer, and at least a portion of said first side of said second electrochemical layer.
- 2. The apparatus of claim 1, wherein said first electrochemical layer comprises an electrolyte layer.
- 3. The apparatus of claim 1, wherein said first electrochemical layer comprises a material selected from the group consisting of a glassy thin-film electrolyte, LiAlF4, Lipon, and a crystalline thin-film electrolyte.
- 4. The apparatus of claim 1, wherein said first electrochemical layer comprises a thickness of between approximately 0.05 to approximately 5 microns.
- 5. The apparatus of claim 1, wherein said first electrochemical layer comprises a thickness of between approximately 0.01 to approximately 2 microns.
- 6. The apparatus of claim 1, wherein said first electrochemical layer comprises a thickness of between approximately 0.5 to approximately 2 microns.
- 7. The apparatus of claim 1, wherein said third electrochemical layer is connected to at least a portion of said first side of said first electrochemical layer by a technique selected from a group consisting of sputter deposition, physical vapor deposition, electron beam evaporation, electron-beam directed vapor deposition, thermal evaporation, plasma assisted thermal evaporation, ion plasma plating, cathodic arc plasma deposition, ion beam deposition, plasma assisted ion beam deposition, pulsed laser deposition, chemical vapor deposition, thermal chemical vapor deposition, plasma enhanced chemical vapor deposition, photo-chemical chemical vapor deposition, molecular beam epitaxy, sol-gel deposition, and spray pyrolysis deposition.
- 8. The apparatus of claim 1, wherein said third electrochemical layer comprises a fracture absorption layer.
- 9. The apparatus of claim 1, wherein said third electrochemical layer comprises a material having the structural characteristic selected from a group consisting of glassy, amorphous, nano-crystalline, ceramic, metallic, and composite.
- 10. The apparatus of claim 1, wherein said third electrochemical layer comprises a thickness of between about 0.005 microns and about 5 microns.
- 11. The apparatus of claim 1, wherein said third electrochemical layer comprises a thickness of between about 0.01 microns and about 0.5 microns.
- 12. The apparatus of claim 1, wherein said third electrochemical layer comprises a thickness of between about 0.05 microns and about 0.1 microns.
- 13. The apparatus of claim 1, wherein said third electrochemical layer comprises a material selected from a group consisting of the following:
an ionic conductor; an electric insulator; a mixed conductor; elemental lithium; alloyed lithium; elemental phosphorus; alloyed phosphorous; elemental tin; alloyed tin; a single phase compound of LiaPSnbOcNd wherein 0<a<100, 0<b<100, 0<c<a/2+5/2+2b−3d/2, and 0<d<a/3+5/3+4b/3−2c/3; a multi-phase compound of LiaPSnbOcNd wherein 0<a<100, 0<b<100, 0<c<a/2+5/2+2b−3d/2, and 0<d<a/3+5/3+4b/3−2c/3; a single phase compound of LiaPMbOcNd wherein 0<a<100, 0<b<100, 0<c<a/2+5/2+b(Valence of M)/2−3d/2, 0<d<a/3+5/3+b(Valence of M)/3−2c/3, and M is an element selected from group 2 through 15 of the periodic table excluding the elements Li, P, and N; a multi-phase compound of LiaPMbOcNd wherein 0<a<100, 0<b<100, 0<c<a/2+5/2+b(Valence of M)/2−3d/2, 0<d<a/3+5/3+b(Valence of M)/3−2c/3, and M is an element selected from group 2 through 15 of the periodic table excluding the elements Li, P, and N; elemental M wherein M is an element selected from group 2 through 15 of the periodic table excluding the elements Li, P, and N; alloyed M wherein M is an element selected from group 2 through 15 of the periodic table excluding the elements Li, P, and N; a single phase compound of LiaPMbOcNdXe wherein 0<a<100, 0<b<100, 0<c<a/2+5/2+b(Valence of M)/2−3d/2−e(Valence of X)/2, 0<d<a/3+5/3+b(Valence of M)/3−2c/3−e/3(Valence of X), 0<e<a/(Valence of X)+5/(Valence of X)+b(Valence of M)/(Valence of X)−2c/(Valence of X)−3d/(Valence of X), M is an element selected from group 2 through 15 of the periodic table excluding the elements Li, P, and N, and X is an element selected from S, Se, Te, F, Cl, Br, and I; a multi-phase compound of LiaPMbOcNdXe wherein 0<a<100, 0<b<100, 0<c<a/2+5/2+b(Valence of M)/2−3d/2−e(Valence of X)/2, 0<d<a/3+5/3+b(Valence of M)/3−2c/3−e/3(Valence of X), 0<e<a/(Valence of X)+5/(Valence of X)+b(Valence of M)/(Valence of X)−2c/(Valence of X)−3d/(Valence of X), M is an element selected from group 2 through 15 of the periodic table excluding the elements Li, P, and N, and X is an element selected from S, Se, Te, F, Cl, Br, and I; Li3N; Li2O; LiF; LiCl; LiBr; LiI; Li2Be2O3; Li4BeO3; Be; BeO; LiBO2; B; B2O3; BN; Li5AlO4; LiAlO2; LiAl5O8; Al; Al2O3; AlN; Li2CO3; Li4SiO4; Li8SiO6; Si; SiO2; Si3N4; Li4GeO4; Ge; GeO2; Ge3N4; Li3PO4; P; P2O5; P2O5; P5N3PN; PON; P4ON6; Li3AsO4; As; As2O3; As2O5; Li2SO4; S; LiClO4; LiScO2; Sc; Sc2O3; LiYO2; Y; Y2O3; YN; Li8ZrO6; Zr; ZrO2; ZrN; LiCeO2; Ce; CeO2; LiAlSiO4; Li9SiAlO8; Li3.6Si0.6P0.4O4; Li3Sc2(PO4)3; LiTi2(PO4)3; Li0.2BPO4-1; Li3BN2; Li3AlN2; LiSi2N3; Li2SiN2; Li5SiN3; Li18Si3N10; Li21Si3N11; Li8SiN4; LiPN2; Li7PN4; LiAlF4; LiAlCl4; LiPF6; LiBF4; Li3SiS3.5; LixV2Oy (0<x=2; 0<y=5); LixMn2O4 (0<x=2); LixMn2-yO4 (0<x<3; 0.2<y<0.5); LixMnO2 (0<x=2.0); LixCoO2 (0<x=1); LixNiO2 (0<x=2); LixSn3Ny (0<x<100; 0<y=4.0); LixInNy (0<x<100; 0<y=1.0); LixZn3Ny (0<x<100; 0<y=2.0); LixZnOy (0<x<100; 0<y=1.0); LixCuNy (0<x<100; 0<y=0.33); LixSiSn0.9ON1.9 (“Siton”; 0<x<100); LixSnOy (0<x<100; 0<y=2.0); LixAl (0<x<100); LixIn (0<x<100); LixC6 (0<x<100); LixSi (0<x<100); LixSn (0<x<100); LixP (0<x<100); and LixZn (0<x<100).
- 14. The apparatus of claim 1, wherein said third electrochemical layer further comprises a polymer matrix.
- 15. The apparatus of claim 14, wherein said polymer matrix comprises a material selected from a group consisting of polyethelyene oxide, polyimide, polytetrafluoroethylene, polyester, and polyvinylpyrrolidone.
- 16. The apparatus of claim 1, further comprising
a fourth electrochemical layer, adapted to stunt fractures, having a first side and a second side, a fifth electrochemical layer having a first side, wherein said second electrochemical layer further comprises a second side, wherein at least a portion of said first side of said fourth electrochemical layer is connected to at least a portion of said second side of said second electrochemical layer, and wherein at least a portion of said first side of said fifth electrochemical layer is connected to at least a portion of said second side of said fourth electrochemical layer.
- 17. An apparatus for use as an electrochemical device comprising
a first electrochemical layer having a first side, a second electrochemical layer having a first side, a third electrochemical layer adapted to stunt fractures, wherein said third electrochemical layer is disposed between at least a portion of said first side of said first electrochemical layer, and at least a portion of said first side of said second electrochemical layer, and a substrate layer, wherein at least a portion of said first electrochemical layer is supported by said substrate layer.
- 18. The apparatus of claim 17, wherein said substrate layer comprises a geometry selected from a group consisting of planar, fibrous, ribbon-like, and cylindrical.
- 19. The apparatus of claim 17, wherein said substrate layer comprises a thickness of between approximately 1 micron and approximately 6.35 millimeters.
- 20. The apparatus of claim 17, wherein said substrate layer comprises a thickness of between approximately 25 microns and approximately 127 microns.
- 21. The apparatus of claim 17, wherein said substrate layer comprises a material selected from a group consisting of ceramic, metal, metal-alloy, glass, silicon, semiconductor, shape memory alloy, carbon, or polymer.
- 22. The apparatus of claim 17, wherein said substrate layer comprises a cylindrical geometry and a diameter of between approximately 1 micron and approximately 6.35 millimeters.
- 23. The apparatus of claim 17, wherein said substrate layer comprises a cylindrical geometry and a diameter of between approximately 10 microns and approximately 381 microns.
- 24. The apparatus of claim 17, wherein said substrate layer comprises a material adapted to be flexible.
- 25. The apparatus of claim 17, wherein said substrate layer comprises a material adapted to be conformable.
- 26. The apparatus of claim 17, further comprising an anode layer.
- 27. The apparatus of claim 26, wherein said anode layer comprises an anode type selected from the group consisting of lithium-metal, lithium-free, and lithium-ion.
- 28. The apparatus of claim 17, further comprising one or more electrode layers.
- 29. The apparatus of claim 28, wherein one or more of said electrode layers comprises a thickness of between approximately 0.05 microns and approximately 10 centimeters.
- 30-43. (canceled)
Government Interests
[0001] This invention may have been made with Government support under Contract No. MDA972-02-C-0021 awarded by DARPA. The Government may have certain rights in this invention.
Divisions (1)
|
Number |
Date |
Country |
| Parent |
10210180 |
Aug 2002 |
US |
| Child |
10840497 |
May 2004 |
US |