IP Library Patent Application 18930576
Patent Application
App. No. 18/930,576

ADVANCED ELECTROLYTE SYSTEMS AND THEIR USE IN ENERGY STORAGE DEVICES

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Quick Facts
Patent No.
US None
App. No.
18/930,576
Abstract

An ultracapacitor that includes an energy storage cell immersed in an advanced electrolyte system and disposed within a hermetically sealed housing, the cell electrically coupled to a positive contact and a negative contact, wherein the ultracapacitor is configured to output electrical energy within a temperature range between about −40 degrees Celsius to about 210 degrees Celsius. Methods of fabrication and use are provided.

Claims (31)

1 . An ultracapacitor comprising:

a storage cell electrically coupled to a positive contact and a negative contact;

a housing, where the housing encloses the storage cell and wherein the housing comprises a barrier disposed over a substantial portion of interior surfaces of the housing; wherein the barrier comprises at least one of polytetrafluoroethylene (PTFE), perfluoroalkoxy (PFA), fluorinated ethylene propylene (FEP) or ethylene tetrafluoroethylene (ETFE);

wherein the storage cell comprises:

an electrolyte; and

a pair of electrodes that contact the positive and negative contact respectively; and

wherein the housing comprises at least one glass-to-metal seal; wherein a pin of the glass-to-metal seal provides one of the contacts.

2 . The ultracapacitor of claim 1 , wherein the glass-to-metal seal comprises a feed-through that is comprised of a material selected from the group consisting of an iron-nickel-cobalt alloy, a nickel iron alloy, tantalum, molybdenum, niobium, tungsten, and a form of stainless and titanium.

3 . The ultracapacitor of claim 1 , wherein the glass-to-metal seal comprises a body that is comprised of at least one material selected from the group consisting of nickel, molybdenum, chromium, cobalt, iron, copper, manganese, titanium, zirconium, aluminum, carbon, and tungsten and an alloy thereof.

4 . The ultracapacitor of claim 1 , wherein the electrolyte is operable in the ultracapacitor at temperatures of −40 degrees Celsius to 210 degrees Celsius.

5 . The ultracapacitor of claim 1 , wherein the ultracapacitor exhibits a volumetric leakage current (mA/cc) that is less than about 10 mA/cc while held at a substantially constant temperature of about 100 degrees Celsius to about 150 degrees Celsius.

6 . The ultracapacitor of claim 1 , wherein the ultracapacitor exhibits an ESR increase less than about 1,000 percent after at least 1 hour of use upon cycling the ultracapacitor by alternatively charging and discharging the ultracapacitor at least twice, while maintaining a voltage across the ultracapacitor, while held at a substantially constant temperature within a range of between about −40 degrees Celsius to about 210 degrees Celsius.

7 . The ultracapacitor of claim 1 , wherein the electrolyte is an ionic liquid comprising at least one anion and at least one cation; and wherein the electrolyte has a halide content less than 1,000 ppm and a water content less than 100 ppm.

8 . The ultracapacitor of claim 1 , wherein the electrolyte is an ionic liquid comprising at least one anion and at least one cation and at least one solvent; wherein the electrolyte has a halide content less than 1,000 ppm and a water content less than 1.000 ppm.

9 . The ultracapacitor of claim 1 , wherein the electrodes comprise a current collector and a set of high-aspect ratio carbon elements affixed to the current collector.

10 . The ultracapacitor of claim 1 , wherein the barrier comprises a perfluoroalkoxy based material.

11 . The ultracapacitor of claim 10 , wherein the perfluoroalkoxy based material is cured.

12 . The ultracapacitor of claim 1 , wherein the barrier is substantially free of pinholes.

13 . The ultracapacitor of claim 9 , wherein the set of high aspect ratio carbon elements comprises a plurality of carbon nanotubes.

14 . The ultracapacitor of claim 13 , wherein the plurality of carbon nanotubes are substantially aligned along at least one dimension.

15 . A method comprising:

disposing in a housing a storage cell; where the housing encloses the storage cell and wherein the housing comprises a barrier disposed over a substantial portion of interior surfaces of the housing; wherein the barrier comprises at least one of polytetrafluoroethylene (PTFE), perfluoroalkoxy (PFA), fluorinated ethylene propylene (FEP) or ethylene tetrafluoroethylene (ETFE);

where the storage cell is electrically coupled to a positive contact and a negative contact; and

disposing in the storage cell:

an electrolyte; and

a pair of electrodes that contact the positive and negative contact respectively; and wherein the housing comprises at least one glass-to-metal seal; wherein a pin of the glass-to-metal seal provides one of the contacts.

16 . The method of claim 15 , wherein the glass-to-metal seal comprises a feed-through that is comprised of a material selected from the group consisting of an iron-nickel-cobalt alloy, a nickel iron alloy, tantalum, molybdenum, niobium, tungsten, and a form of stainless and titanium.

17 . The method of claim 15 , wherein the glass-to-metal seal comprises a body that is comprised of at least one material selected from the group consisting of nickel, molybdenum, chromium, cobalt, iron, copper, manganese, titanium, zirconium, aluminum, carbon, and tungsten and an alloy thereof.

18 . The method of claim 15 , wherein the electrolyte is operable in the ultracapacitor at temperatures of −40 degrees Celsius to 210 degrees Celsius.

19 . The method of claim 15 , wherein the barrier comprises a perfluoroalkoxy based material.

20 . The method of claim 15 , wherein the perfluoroalkoxy based material is cured.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 4, 2024
From: SIGNORELLI, RICCARDO; COOLEY, JOHN J.; DEANE, CHRISTOPHER JOHN SIBBALD; EPSTEIN, JAMES; MARTINI, FABRIZIO; WILHELMUS, LINDSAY A.; KUTTIPILLAI, PADMANABAN SASTHAN
To: FASTCAP SYSTEMS CORPORATION
Reel/Frame 069125/0526 →