IL234232A

Advanced electrolyte systems and their use in energy storage devices

Abstract

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33 claims: 13 independent, 20 dependent

  1. 1
    CLAIMS:1. An ultracapacitor comprising: an energy storage cell and an advanced electrolyte system (AES) within an hermetically sealed housing, the cell electrically coupled to a positive contact and a negative contact, wherein the ultracapacitor operates at a temperature within a temperature range between -40 degrees Celsius to 210 degrees Celsius;wherein the advanced electrolyte system comprises a mixture of an ionic liquid and an organic solvent, wherein the operational temperature range of the ultracapacitor is wider than an operational temperature range of an equivalent ultracapacitor that is identical but for replacing the electrolyte composition with an electrolyte comprising the ionic liquid without the organic solvent;wherein the ionic liquid comprises 1-butyl-1-methylpyrrolidinium and tetracyanoborate.
  2. 2
    A method for fabricating an ultracapacitor comprising the steps of:disposing an energy storage cell comprising energy storage media within a housing;and filling the housing with an advanced electrolyte system (AES), such that an ultracapacitor is fabricated to operate within a temperature range between -40 degrees Celsius to 210 degrees Celsius;wherein the advanced electrolyte system comprises a mixture of an ionic liquid and an organic solvent, wherein the operational temperature range of the ultracapacitor is wider than an operational temperature range of an equivalent ultracapacitor that is identical but for replacing the electrolyte composition with an electrolyte comprising the ionic liquid without the organic solvent;wherein the ionic liquid comprises 1-butyl-1methylpyrrolidinium and tetracyanoborate.
  3. 3
    A method of using a high temperature rechargeable energy storage device (HTRESD), the method comprising:obtaining an HTRESD comprising an advanced electrolyte system (AES);and cycling the HTRESD by alternatively charging and discharging the HTRESD at least twice over a duration of 20 hours, while maintaining a voltage across the HTRESD, such that 02304693\201-01 V 5 / Amended 24/7/22 the HTRESD exhibits an initial peak power density between 0.01 W/liter and 150 kW/liter, such that the HTRESD is used for at least 20 hours when operated at an ambient temperature that is in a temperature range of between -40 degrees Celsius to 210 degrees Celsius.
  4. 4
    A method of using an ultracapacitor, the method comprising:obtaining an ultracapacitor of claim 1, wherein the ultracapacitor exhibits a volumetric leakage current (mA/cc) that is less than 10mA/cc while held at a substantially constant temperature within a range of between 100 degrees Celsius and 150 degrees Celsius;and cycling the ultracapacitor by alternatively charging and discharging the ultracapacitor at least twice over a duration of 20 hours, while maintaining a voltage across the ultracapacitor for 20 hours, such that the ultracapacitor exhibits an ESR increase less than 300 percent after 20 hours of use while held at a substantially constant temperature within a range of between -40 degrees Celsius to 210 degrees Celsius.
  5. 5
    A method of providing a high temperature rechargeable energy storage device to a user, the method comprising:selecting a high temperature rechargeable energy storage device (HTRESD) comprising an advanced electrolyte system (AES) that exhibits an initial peak power density between 0.01 W/liter and 100 kW/liter and a durability period of at least 20 hours when exposed to an ambient temperature in a temperature range from -40 degrees Celsius to 210 degrees Celsius;and delivering the storage device, such that the HTRESD is provided to the user.
  6. 6
    A method of providing a high temperature rechargeable energy storage device to a user, the method comprising:obtaining an ultracapacitor of of claim 1 that exhibits a volumetric leakage current (mA/cc) that is less than 10mA/cc while held at a substantially constant 02304693\201-01 V 5 / Amended 24/7/22 temperature within a range of between -40 degrees Celsius and 210 degrees Celsius;and delivering the storage device, such that the HTRESD is provided to the user.
  7. 7
    An ultracapacitor comprising:an energy storage cell and an electrolyte composition within an hermetically sealed housing, the cell electrically coupled to a positive contact and a negative contact, wherein: the ultracapacitor has an operating temperature range between 0 degrees Celsius and 210 degrees Celsius;the electrolyte composition comprises an ionic liquid mixed with an organic solvent, and the ionic liquid comprises 1-butyl-1-methylpyrrolidinium and tetracyanoborate.
  8. 12
    The ultracapacitor of any one of the preceding claim, wherein the organic solvent selected from the group consisting of linear sulfones, linear carbonates, and acetonitrile.
  9. 13
    The ultracapacitor of any one of claims 7-12, wherein operating temperature range comprises 0 degrees Celsius to 250 degrees Celsius.
  10. 14
    The ultracapacitor of any one of claims 7-13, wherein the electrolyte composition configured to provide an eutectic property that modifies the freezing point of the AES.
  11. 15
    The ultracapacitor of any one of claims 7-14, wherein the electrolyte composition is purified such that:wherein the total concentration of impurities in the electrolyte is less than 1,000 parts per million;the content of halide ions in the electrolyte composition is less than 100 parts per million;a total concentration of metallic species in the electrolyte composition is less than 1,000 parts per million, wherein the metallic species is selected from one or more metals selected from the group consisting of Cd, Co, Cr, Cu, Fe, K, Li, Mo, Na, Ni, Pb, and Zn;and the total water content in the electrolyte composition is less than 100 parts per million.
  12. 16
    The ultracapacitor of any one of claims 7-15, wherein the ultracapacitor has:a volumetric leakage current of less than 1 milliAmpere per cubic centimeter when held at a substantially constant temperature;and 02304693\201-01 V 5 / Amended 24/7/22 a volumetric capacitance in the range of between 1 milliFarad per cubic centimeter and 6 Farad per cubic centimeter.
  13. 17
    A method for fabricating an ultracapacitor comprising the steps of:disposing an energy storage cell comprising energy storage media within a housing;pre-treating components of the ultracapacitor comprising at least one of: an electrode, a separator, a lead, an assembled energy storage cell and the housing to reduce moisture therein, wherein the pre-treating comprises heating the selected components substantially under vacuum over a temperature range of 100 degrees Celsius to 150 degrees Celsius or 150 degrees Celsius to 300 degrees Celsius;purifying an advanced electrolyte system (AES), wherein the AES comprises an electrolyte composition selected from the group consisting of: (a) a first ionic liquid mixed with a second ionic liquid, (b) an ionic liquid mixed with an organic solvent, and (c) a first ionic liquid mixed with a second ionic liquid and an organic solvent;filling the housing with the AES by disposing the AES over a fill port in the housing and drawing a vacuum on the fill port in the housing, wherein the vacuum is below 150 milliTorr and the filling is performed in a substantially inert environment;and hermetically sealing the housing, wherein the ultracapacitor is fabricated to have an operating temperature range extending between -40 degrees Celsius or less and 210 degrees Celsius or more.
  14. 18
    An ultracapacitor comprising:an energy storage cell and an electrolyte composition within a hermetically sealed housing, the cell electrically coupled to a positive contact and a negative contact, wherein the ultracapacitor operates at temperatures throughout an operational temperature range without significant changes in performance or durability, and wherein: 02304693\201-01 V 5 / Amended 24/7/22 the operational temperature range comprises -40 degrees Celsius to 125 degrees Celsius;and the electrolyte composition comprises a mixture of an ionic liquid and an organic solvent, wherein the operational temperature range of the ultracapacitor is wider than an operational temperature range of an equivalent ultracapacitor that is identical but for replacing the electrolyte composition with an electrolyte consisting essentially of the ionic liquid without the organic solvent.
  15. 26
    27. An ultracapacitor comprising:02304693\201-01 V 5 / Amended 24/7/22 an energy storage cell and an electrolyte composition within a hermetically sealed housing, the cell electrically coupled to a positive contact and a negative contact, wherein the ultracapacitor operates at temperatures throughout an operational temperature range without significant changes in performance or durability, and wherein: the operational temperature range comprises -40 degrees Celsius to 125 degrees Celsius;and the electrolyte composition comprises a mixture of a first ionic liquid and a second ionic liquid different from the first ionic liquid, wherein the operational temperature range of the ultracapacitor is wider than the operational temperature range of an equivalent ultracapacitor that is identical but for replacing the electrolyte composition with an electrolyte consisting essentially of the first ionic liquid without the second ionic liquid.