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Patent · US10283280B2 · B2 · US

Process for flexible and shape-conformal rope-shape supercapacitors

(11) Publication number
US10283280B2
(21) Application number
15/398,421
(22) Filing date
2017-01-04
(30) Priority date
2017-01-04
(43) Publication date
2019-05-07
(45) Date of grant
2019-05-07
(51) IPC
H01G 11/06; H01G 11/24; H01G 11/26; H01G 11/36; H01G 11/42; H01G 11/46; H01G 11/48; H01G 11/50; H01G 11/52; H01G 11/58; H01G 11/74; H01G 11/84; H01G 9/00; H01G 9/04
(52) CPC
  • H01G Capacitors; capacitors, rectifiers, detectors, switching devices, light-sensitive or temperature-sensitive devices of the electrolytic type: 11/06, 11/24, 11/26, 11/36, 11/42, 11/46, 11/48, 11/50, 11/52, 11/58, 11/74, 11/84, 9/0029, 9/04
  • Y02E Reduction of greenhouse gas [ghg] emissions, related to energy generation, transmission or distribution: 60/13
(73) Assignee
Nanotek Instruments Inc
(72) Inventors
Aruna Zhamu; Bor Z. Jang
(54) Title
Process for flexible and shape-conformal rope-shape supercapacitors
(57) Abstract

Provided is a process for producing a rope-shaped supercapacitor comprising: (a) impregnating a first mixture of a first electrode active material (e.g. activated carbon or isolated graphene sheets) and a first electrolyte into pores of a first porous rod to form a first electrode; (b) encasing a porous separator around the first electrode to form a separator-protected first electrode; (c) impregnating a second mixture of a second electrode active material and a second electrolyte into pores of a second conductive porous rod to form a second electrode; (d) combining the separator-protected first electrode and second electrode form a braid or twist yarn; and (e) wrapping or encasing a protective sheath around the braid or yarn to form the supercapacitor.

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Claims (24)

  1. A process for producing a rope-shaped supercapacitor, said process comprising: (a) impregnating a first mixture of a first electrode active material and a first electrolyte into pores of a first electrically conductive porous rod to form a first electrode; (b) wrapping or encasing a porous separator around said first electrode to form a separator-protected first electrode; (c) impregnating a second mixture of a second electrode active material and a second electrolyte into pores of a second electrically conductive porous rod to form a second electrode; (d) combining or interlacing said separator-protected first electrode and said second electrode together to form a braid or a twist yarn; and (e) wrapping or encasing a protective casing or sheath around said braid or twist yarn to form said rope-shaped supercapacitor; wherein said first and/or said second electrode active material contains multiple particles of a carbon material and/or multiple graphene sheets, wherein said multiple graphene sheets contain single-layer graphene or few-layer graphene each having from 1 to 10 graphene planes and said multiple particles of carbon material or graphene sheets have a specific surface area no less than 500 m 2 /g when measured in a dried state.
  2. The process of claim 1, comprising a procedure of combining a plurality of said first electrodes and/or a plurality of said second electrodes to form said supercapacitor, wherein at least one of said electrodes is an anode and at least one is a cathode.
  3. The process of claim 1, further comprising a step of wrapping or encasing a porous separator around said second electrode to form a separator-protected second electrode.
  4. The process of claim 3, further comprising a step of disposing a third electrolyte between said braid or yarn and said protective sheath.
  5. The process of claim 1, wherein the first or the second electrode active material contains particles of activated carbon or isolated graphene sheets having a length or width smaller than 1 μm to impregnate into the pores of the first or the second electrode, wherein said graphene sheets are selected from pristine graphene, graphene oxide, reduced graphene oxide, fluorinated graphene, nitrogenated or nitrogen-doped graphene, hydrogeneated or hydrogen-doped graphene, boron-doped graphene, chemically functionalized graphene, or a combination thereof.
  6. A process for producing a rope-shaped supercapacitor having a length-to-diameter or length-to-thickness aspect ratio greater than 10; said process comprising: (a) providing a first electrode comprising a first electrically conductive rod and a first mixture of a first electrode active material and a first electrolyte, wherein said first mixture is deposited on or in said first rod; (b) wrapping or encasing a porous separator around said first electrode to form a separator-protected first electrode; (c) impregnating a second mixture of a second electrode active material and a second electrolyte into pores of a second electrically conductive porous rod to form a second electrode; (d) combining or interlacing said separator-protected first electrode and said second electrode in a twist or spiral manner to form a braid or yarn; and (e) wrapping or encasing a protective casing or sheath around said braid or yarn to form said supercapacitor; wherein said first active material and/or said second active material contains multiple particles of a carbon material and/or multiple graphene sheets, wherein said multiple graphene sheets contain single-layer graphene or few-layer graphene each having from 1 to 10 graphene planes and said multiple particles of carbon material or graphene sheets have a specific surface area no less than 500 m 2 /g when measured in a dried state.
  7. The process of claim 6, further comprising a step of wrapping or encasing a porous separator around said second electrode to form a separator-protected second electrode.
  8. The process of claim 1, wherein said rope-shaped battery has a first end and a second end and said process further contains a step of connecting a first terminal connector to said first electrode, wherein said first terminal connector comprises at least one metallic wire, conductive carbon/graphite fiber, or conductive polymer fiber that is embedded in, connected to, or integral with said first electrode.
  9. The process of claim 8, wherein said at least one metallic wire, conductive carbon/graphite fiber, or conductive polymer fiber runs approximately from said first end to said second end.
  10. The process of claim 1, wherein said first or second electrically conductive porous rod contains a porous foam selected from a metal foam, metal web, metal fiber mat, metal nanowire mat, conductive polymer fiber mat, conductive polymer foam, conductive polymer-coated fiber foam, carbon foam, graphite foam, carbon aerogel, carbon xerogel, graphene aerogel, graphene foam, graphene oxide foam, reduced graphene oxide foam, carbon fiber foam, graphite fiber foam, exfoliated graphite foam and combinations thereof.
  11. The process of claim 1, wherein said supercapacitor has a rope shape having a length/thickness or length/diameter aspect ratio greater than 10.
  12. The process of claim 5, wherein said first or second electrode further contains a redox pair partner material selected from a metal oxide, a conducting polymer, an organic material, a non-graphene carbon material, an inorganic material, or a combination thereof, wherein said partner material, in combination with graphene or activated carbon, forms a redox pair for pseudo-capacitance.
  13. The process of claim 12, wherein said metal oxide is selected from RuO 2, IrO 2, NiO, MnO 2, VO 2, V 2 O 5, V 3 O 8, TiO 2, Cr 2 O 3, Co 2 O 3, Co 3 O 4, PbO 2, Ag 2 O and combinations thereof.
  14. The process of claim 12, wherein said inorganic material is selected from a metal carbide, metal nitride, metal boride, metal dichalcogenide and combinations thereof.
  15. The process of claim 12, wherein said metal oxide or inorganic material is selected from an oxide, dichalcogenide, trichalcogenide, sulfide, selenide, or telluride of niobium, zirconium, molybdenum, hafnium, tantalum, tungsten, titanium, vanadium, chromium, cobalt, manganese, iron, or nickel in a nanowire, nano-disc, nano-ribbon, or nano platelet form.
  16. The process of claim 12, wherein said inorganic material is selected from nano discs, nano platelets, nano-coating, or nano sheets of an inorganic material selected from the group comprising bismuth selenide, bismuth telluride, transition metal dichalcogenide, transition metal trichalcogenide, sulfide of niobium, zirconium, molybdenum, hafnium, tantalum, tungsten, titanium, cobalt, manganese, iron, nickel or a transition metal, selenide of niobium, zirconium, molybdenum, hafnium, tantalum, tungsten, titanium, cobalt, manganese, iron, nickel or a transition metal, telluride of niobium, zirconium, molybdenum, hafnium, tantalum, tungsten, titanium, cobalt, manganese, iron, nickel or a transition metal, boron nitride, and combinations thereof; wherein said discs, platelets, or sheets have a thickness less than 100 nm.
  17. The process of claim 1, wherein said first or second electrode active material contains nano discs, nano platelets, nano-coating, or nano sheets of an inorganic material selected fromselected from the group comprising bismuth selenide, bismuth telluride, transition metal dichalcogenide, transition metal trichalcogenide, sulfide of niobium, zirconium, molybdenum, hafnium, tantalum, tungsten, titanium, cobalt, manganese, iron, nickel or a transition metal, selenide of niobium, zirconium, molybdenum, hafnium, tantalum, tungsten, titanium, cobalt, manganese, iron, nickel or a transition metal, telluride of niobium, zirconium, molybdenum, hafnium, tantalum, tungsten, titanium, cobalt, manganese, iron, nickel or a transition metal, boron nitride, and combinations thereof, wherein said discs, platelets, coating, or sheets have a thickness less than 100 nm and a specific surface area no less than 200 m 2 /g when measured in a dried state.
  18. The process of claim 1, wherein said first or second electrically conductive porous rod has from 70% to 99% by volume of pores.
  19. The process of claim 1, wherein said step (a) includes (i) an operation of continuously feeding said electrically conductive porous rod to a first electrode active material impregnation zone, wherein said electrically conductive porous rod contains interconnected electron-conducting pathways and has at least one porous surface; and (ii) an operation of impregnating said first mixture into said electrically conductive porous rod from said at least one porous surface to form said first electrode.
  20. The process of claim 19, wherein said step (a) includes delivering, continuously or intermittently on demand, said first mixture to said at least one porous surface through spraying, printing, coating, casting, conveyor film delivery, and/or roller surface delivery.
  21. The process of claim 1, wherein said step (c) includes (i) an operation of continuously feeding said electrically conductive porous rod to an impregnation zone for said second electrode active material, wherein said electrically conductive porous rod contains interconnected electron-conducting pathways and has at least one porous surface; and (ii) an operation of impregnating said second mixture into said electrically conductive porous rod from said at least one porous surface to form said second electrode.
  22. The process of claim 21, wherein said step (c) includes delivering, continuously or intermittently on demand, said second mixture to said at least one porous surface through spraying, printing, coating, casting, conveyor film delivery, and/or roller surface delivery.
  23. The process of claim 1, wherein said step (b) contains wrapping around said first electrode with a porous separator band in a coiled or spiral manner to form said porous separator-protected first electrode.
  24. The process of claim 1, wherein said step (b) contains spraying an electrically insulating material to encase said first electrode, forming a porous shell structure covering said first electrode to form said porous separator-protected structure.

Description

The present invention relates generally to the field of supercapacitors or ultracapacitors, and more particularly to the rope-shape supercapacitors that are flexible and shape-conformal.

Conventional supercapacitors and batteries (e.g. 18650-type cylindrical cells, rectangular pouch cells, and prismatic cells) are mechanically rigid and this non-flexibility feature has severely constrained their adaptability or feasibility of being implemented in confined spaces or for use in wearable devices. Flexible and shape-conformable power sources can be used to overcome these design limitations. These new power sources will enable the development of next-generation electronic devices, such as smart mobile gadgets, roll-up displays, wearable devices, and biomedical sensors. Flexible and conformable power sources will also save weight and space in electric vehicles.

Electrochemical capacitors (ECs), also known as ultracapacitors or supercapacitors, are being considered for uses in hybrid electric vehicles (EVs) where they can supplement a battery used in an electric car to provide bursts of power needed for rapid acceleration, the biggest technical hurdle to making battery-powered cars commercially viable. A battery would still be used for cruising, but supercapacitors (with their ability to release energy much more quickly than batteries) would kick in whenever the car needs to accelerate for merging, passing, emergency maneuvers, and hill climbing. The EC must also store sufficient energy to provide an acceptable driving range.

Citations (16)

  • US4522897A
  • US7759008B2
  • US7071258B1
  • US20050271574A1
  • US7623340B1
  • US20100222482A1
  • US20090061312A1
  • US20090059474A1
  • US20100021819A1
  • US20120015233A1
  • US20120015239A1
  • US20120009331A1
  • US20140098461A1
  • US9905856B1
  • US10008747B1
  • US10083799B2
Record as JSON
{
  "publication_number": "US10283280B2",
  "country": "US",
  "kind": "B2",
  "title": "Process for flexible and shape-conformal rope-shape supercapacitors",
  "abstract": "Provided is a process for producing a rope-shaped supercapacitor comprising: (a) impregnating a first mixture of a first electrode active material (e.g. activated carbon or isolated graphene sheets) and a first electrolyte into pores of a first porous rod to form a first electrode; (b) encasing a porous separator around the first electrode to form a separator-protected first electrode; (c) impregnating a second mixture of a second electrode active material and a second electrolyte into pores of a second conductive porous rod to form a second electrode; (d) combining the separator-protected first electrode and second electrode form a braid or twist yarn; and (e) wrapping or encasing a protective sheath around the braid or yarn to form the supercapacitor.",
  "claims": [
    "1. A process for producing a rope-shaped supercapacitor, said process comprising: (a) impregnating a first mixture of a first electrode active material and a first electrolyte into pores of a first electrically conductive porous rod to form a first electrode; (b) wrapping or encasing a porous separator around said first electrode to form a separator-protected first electrode; (c) impregnating a second mixture of a second electrode active material and a second electrolyte into pores of a second electrically conductive porous rod to form a second electrode; (d) combining or interlacing said separator-protected first electrode and said second electrode together to form a braid or a twist yarn; and (e) wrapping or encasing a protective casing or sheath around said braid or twist yarn to form said rope-shaped supercapacitor; wherein said first and/or said second electrode active material contains multiple particles of a carbon material and/or multiple graphene sheets, wherein said multiple graphene sheets contain single-layer graphene or few-layer graphene each having from 1 to 10 graphene planes and said multiple particles of carbon material or graphene sheets have a specific surface area no less than 500 m 2 /g when measured in a dried state.",
    "2. The process of claim 1, comprising a procedure of combining a plurality of said first electrodes and/or a plurality of said second electrodes to form said supercapacitor, wherein at least one of said electrodes is an anode and at least one is a cathode.",
    "3. The process of claim 1, further comprising a step of wrapping or encasing a porous separator around said second electrode to form a separator-protected second electrode.",
    "4. The process of claim 3, further comprising a step of disposing a third electrolyte between said braid or yarn and said protective sheath.",
    "5. The process of claim 1, wherein the first or the second electrode active material contains particles of activated carbon or isolated graphene sheets having a length or width smaller than 1 μm to impregnate into the pores of the first or the second electrode, wherein said graphene sheets are selected from pristine graphene, graphene oxide, reduced graphene oxide, fluorinated graphene, nitrogenated or nitrogen-doped graphene, hydrogeneated or hydrogen-doped graphene, boron-doped graphene, chemically functionalized graphene, or a combination thereof.",
    "6. A process for producing a rope-shaped supercapacitor having a length-to-diameter or length-to-thickness aspect ratio greater than 10; said process comprising: (a) providing a first electrode comprising a first electrically conductive rod and a first mixture of a first electrode active material and a first electrolyte, wherein said first mixture is deposited on or in said first rod; (b) wrapping or encasing a porous separator around said first electrode to form a separator-protected first electrode; (c) impregnating a second mixture of a second electrode active material and a second electrolyte into pores of a second electrically conductive porous rod to form a second electrode; (d) combining or interlacing said separator-protected first electrode and said second electrode in a twist or spiral manner to form a braid or yarn; and (e) wrapping or encasing a protective casing or sheath around said braid or yarn to form said supercapacitor; wherein said first active material and/or said second active material contains multiple particles of a carbon material and/or multiple graphene sheets, wherein said multiple graphene sheets contain single-layer graphene or few-layer graphene each having from 1 to 10 graphene planes and said multiple particles of carbon material or graphene sheets have a specific surface area no less than 500 m 2 /g when measured in a dried state.",
    "7. The process of claim 6, further comprising a step of wrapping or encasing a porous separator around said second electrode to form a separator-protected second electrode.",
    "8. The process of claim 1, wherein said rope-shaped battery has a first end and a second end and said process further contains a step of connecting a first terminal connector to said first electrode, wherein said first terminal connector comprises at least one metallic wire, conductive carbon/graphite fiber, or conductive polymer fiber that is embedded in, connected to, or integral with said first electrode.",
    "9. The process of claim 8, wherein said at least one metallic wire, conductive carbon/graphite fiber, or conductive polymer fiber runs approximately from said first end to said second end.",
    "10. The process of claim 1, wherein said first or second electrically conductive porous rod contains a porous foam selected from a metal foam, metal web, metal fiber mat, metal nanowire mat, conductive polymer fiber mat, conductive polymer foam, conductive polymer-coated fiber foam, carbon foam, graphite foam, carbon aerogel, carbon xerogel, graphene aerogel, graphene foam, graphene oxide foam, reduced graphene oxide foam, carbon fiber foam, graphite fiber foam, exfoliated graphite foam and combinations thereof.",
    "11. The process of claim 1, wherein said supercapacitor has a rope shape having a length/thickness or length/diameter aspect ratio greater than 10.",
    "12. The process of claim 5, wherein said first or second electrode further contains a redox pair partner material selected from a metal oxide, a conducting polymer, an organic material, a non-graphene carbon material, an inorganic material, or a combination thereof, wherein said partner material, in combination with graphene or activated carbon, forms a redox pair for pseudo-capacitance.",
    "13. The process of claim 12, wherein said metal oxide is selected from RuO 2, IrO 2, NiO, MnO 2, VO 2, V 2 O 5, V 3 O 8, TiO 2, Cr 2 O 3, Co 2 O 3, Co 3 O 4, PbO 2, Ag 2 O and combinations thereof.",
    "14. The process of claim 12, wherein said inorganic material is selected from a metal carbide, metal nitride, metal boride, metal dichalcogenide and combinations thereof.",
    "15. The process of claim 12, wherein said metal oxide or inorganic material is selected from an oxide, dichalcogenide, trichalcogenide, sulfide, selenide, or telluride of niobium, zirconium, molybdenum, hafnium, tantalum, tungsten, titanium, vanadium, chromium, cobalt, manganese, iron, or nickel in a nanowire, nano-disc, nano-ribbon, or nano platelet form.",
    "16. The process of claim 12, wherein said inorganic material is selected from nano discs, nano platelets, nano-coating, or nano sheets of an inorganic material selected from the group comprising bismuth selenide, bismuth telluride, transition metal dichalcogenide, transition metal trichalcogenide, sulfide of niobium, zirconium, molybdenum, hafnium, tantalum, tungsten, titanium, cobalt, manganese, iron, nickel or a transition metal, selenide of niobium, zirconium, molybdenum, hafnium, tantalum, tungsten, titanium, cobalt, manganese, iron, nickel or a transition metal, telluride of niobium, zirconium, molybdenum, hafnium, tantalum, tungsten, titanium, cobalt, manganese, iron, nickel or a transition metal, boron nitride, and combinations thereof; wherein said discs, platelets, or sheets have a thickness less than 100 nm.",
    "17. The process of claim 1, wherein said first or second electrode active material contains nano discs, nano platelets, nano-coating, or nano sheets of an inorganic material selected fromselected from the group comprising bismuth selenide, bismuth telluride, transition metal dichalcogenide, transition metal trichalcogenide, sulfide of niobium, zirconium, molybdenum, hafnium, tantalum, tungsten, titanium, cobalt, manganese, iron, nickel or a transition metal, selenide of niobium, zirconium, molybdenum, hafnium, tantalum, tungsten, titanium, cobalt, manganese, iron, nickel or a transition metal, telluride of niobium, zirconium, molybdenum, hafnium, tantalum, tungsten, titanium, cobalt, manganese, iron, nickel or a transition metal, boron nitride, and combinations thereof, wherein said discs, platelets, coating, or sheets have a thickness less than 100 nm and a specific surface area no less than 200 m 2 /g when measured in a dried state.",
    "18. The process of claim 1, wherein said first or second electrically conductive porous rod has from 70% to 99% by volume of pores.",
    "19. The process of claim 1, wherein said step (a) includes (i) an operation of continuously feeding said electrically conductive porous rod to a first electrode active material impregnation zone, wherein said electrically conductive porous rod contains interconnected electron-conducting pathways and has at least one porous surface; and (ii) an operation of impregnating said first mixture into said electrically conductive porous rod from said at least one porous surface to form said first electrode.",
    "20. The process of claim 19, wherein said step (a) includes delivering, continuously or intermittently on demand, said first mixture to said at least one porous surface through spraying, printing, coating, casting, conveyor film delivery, and/or roller surface delivery.",
    "21. The process of claim 1, wherein said step (c) includes (i) an operation of continuously feeding said electrically conductive porous rod to an impregnation zone for said second electrode active material, wherein said electrically conductive porous rod contains interconnected electron-conducting pathways and has at least one porous surface; and (ii) an operation of impregnating said second mixture into said electrically conductive porous rod from said at least one porous surface to form said second electrode.",
    "22. The process of claim 21, wherein said step (c) includes delivering, continuously or intermittently on demand, said second mixture to said at least one porous surface through spraying, printing, coating, casting, conveyor film delivery, and/or roller surface delivery.",
    "23. The process of claim 1, wherein said step (b) contains wrapping around said first electrode with a porous separator band in a coiled or spiral manner to form said porous separator-protected first electrode.",
    "24. The process of claim 1, wherein said step (b) contains spraying an electrically insulating material to encase said first electrode, forming a porous shell structure covering said first electrode to form said porous separator-protected structure."
  ],
  "description_excerpt": "The present invention relates generally to the field of supercapacitors or ultracapacitors, and more particularly to the rope-shape supercapacitors that are flexible and shape-conformal.\n\nConventional supercapacitors and batteries (e.g. 18650-type cylindrical cells, rectangular pouch cells, and prismatic cells) are mechanically rigid and this non-flexibility feature has severely constrained their adaptability or feasibility of being implemented in confined spaces or for use in wearable devices. Flexible and shape-conformable power sources can be used to overcome these design limitations. These new power sources will enable the development of next-generation electronic devices, such as smart mobile gadgets, roll-up displays, wearable devices, and biomedical sensors. Flexible and conformable power sources will also save weight and space in electric vehicles.\n\nElectrochemical capacitors (ECs), also known as ultracapacitors or supercapacitors, are being considered for uses in hybrid electric vehicles (EVs) where they can supplement a battery used in an electric car to provide bursts of power needed for rapid acceleration, the biggest technical hurdle to making battery-powered cars commercially viable. A battery would still be used for cruising, but supercapacitors (with their ability to release energy much more quickly than batteries) would kick in whenever the car needs to accelerate for merging, passing, emergency maneuvers, and hill climbing. The EC must also store sufficient energy to provide an acceptable driving range.",
  "cpc": [
    "H01G 11/06",
    "H01G 11/24",
    "H01G 11/26",
    "H01G 11/36",
    "H01G 11/42",
    "H01G 11/46",
    "H01G 11/48",
    "H01G 11/50",
    "H01G 11/52",
    "H01G 11/58",
    "H01G 11/74",
    "H01G 11/84",
    "H01G 9/0029",
    "H01G 9/04",
    "Y02E 60/13"
  ],
  "ipc": [
    "H01G 11/06",
    "H01G 11/24",
    "H01G 11/26",
    "H01G 11/36",
    "H01G 11/42",
    "H01G 11/46",
    "H01G 11/48",
    "H01G 11/50",
    "H01G 11/52",
    "H01G 11/58",
    "H01G 11/74",
    "H01G 11/84",
    "H01G 9/00",
    "H01G 9/04"
  ],
  "assignees": [
    "Nanotek Instruments Inc"
  ],
  "inventors": [
    "Aruna Zhamu",
    "Bor Z. Jang"
  ],
  "filing_date": "2017-01-04",
  "publication_date": "2019-05-07",
  "grant_date": "2019-05-07",
  "priority_date": "2017-01-04",
  "application_number": "US-201715398421-A",
  "family_id": "63104743",
  "cited_by_count": 3,
  "citations": [
    "US4522897A",
    "US7759008B2",
    "US7071258B1",
    "US20050271574A1",
    "US7623340B1",
    "US20100222482A1",
    "US20090061312A1",
    "US20090059474A1",
    "US20100021819A1",
    "US20120015233A1",
    "US20120015239A1",
    "US20120009331A1",
    "US20140098461A1",
    "US9905856B1",
    "US10008747B1",
    "US10083799B2"
  ]
}

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