WO2016123172A1 - Coke sourced carbon anode for lithium ion capacitor - Google Patents

Coke sourced carbon anode for lithium ion capacitor Download PDF

Info

Publication number
WO2016123172A1
WO2016123172A1 PCT/US2016/015041 US2016015041W WO2016123172A1 WO 2016123172 A1 WO2016123172 A1 WO 2016123172A1 US 2016015041 W US2016015041 W US 2016015041W WO 2016123172 A1 WO2016123172 A1 WO 2016123172A1
Authority
WO
WIPO (PCT)
Prior art keywords
carbon
coke
anode
lithium ion
sourced
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/US2016/015041
Other languages
French (fr)
Inventor
Kishor Purushottam Gadkaree
Rahul Suryakant KADAM
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Corning Inc
Original Assignee
Corning Inc
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Corning Inc filed Critical Corning Inc
Priority to CN201680008083.6A priority Critical patent/CN107210137A/en
Publication of WO2016123172A1 publication Critical patent/WO2016123172A1/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

Links

Classifications

    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01GCAPACITORS; CAPACITORS, RECTIFIERS, DETECTORS, SWITCHING DEVICES, LIGHT-SENSITIVE OR TEMPERATURE-SENSITIVE DEVICES OF THE ELECTROLYTIC TYPE
    • H01G11/00Hybrid capacitors, i.e. capacitors having different positive and negative electrodes; Electric double-layer [EDL] capacitors; Processes for the manufacture thereof or of parts thereof
    • H01G11/22Electrodes
    • H01G11/30Electrodes characterised by their material
    • H01G11/32Carbon-based
    • H01G11/38Carbon pastes or blends; Binders or additives therein
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01GCAPACITORS; CAPACITORS, RECTIFIERS, DETECTORS, SWITCHING DEVICES, LIGHT-SENSITIVE OR TEMPERATURE-SENSITIVE DEVICES OF THE ELECTROLYTIC TYPE
    • H01G11/00Hybrid capacitors, i.e. capacitors having different positive and negative electrodes; Electric double-layer [EDL] capacitors; Processes for the manufacture thereof or of parts thereof
    • H01G11/04Hybrid capacitors
    • H01G11/06Hybrid capacitors with one of the electrodes allowing ions to be reversibly doped thereinto, e.g. lithium ion capacitors [LIC]
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01GCAPACITORS; CAPACITORS, RECTIFIERS, DETECTORS, SWITCHING DEVICES, LIGHT-SENSITIVE OR TEMPERATURE-SENSITIVE DEVICES OF THE ELECTROLYTIC TYPE
    • H01G11/00Hybrid capacitors, i.e. capacitors having different positive and negative electrodes; Electric double-layer [EDL] capacitors; Processes for the manufacture thereof or of parts thereof
    • H01G11/22Electrodes
    • H01G11/24Electrodes characterised by structural features of the materials making up or comprised in the electrodes, e.g. form, surface area or porosity; characterised by the structural features of powders or particles used therefor
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01GCAPACITORS; CAPACITORS, RECTIFIERS, DETECTORS, SWITCHING DEVICES, LIGHT-SENSITIVE OR TEMPERATURE-SENSITIVE DEVICES OF THE ELECTROLYTIC TYPE
    • H01G11/00Hybrid capacitors, i.e. capacitors having different positive and negative electrodes; Electric double-layer [EDL] capacitors; Processes for the manufacture thereof or of parts thereof
    • H01G11/22Electrodes
    • H01G11/30Electrodes characterised by their material
    • H01G11/32Carbon-based
    • H01G11/42Powders or particles, e.g. composition thereof
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01GCAPACITORS; CAPACITORS, RECTIFIERS, DETECTORS, SWITCHING DEVICES, LIGHT-SENSITIVE OR TEMPERATURE-SENSITIVE DEVICES OF THE ELECTROLYTIC TYPE
    • H01G11/00Hybrid capacitors, i.e. capacitors having different positive and negative electrodes; Electric double-layer [EDL] capacitors; Processes for the manufacture thereof or of parts thereof
    • H01G11/22Electrodes
    • H01G11/30Electrodes characterised by their material
    • H01G11/32Carbon-based
    • H01G11/44Raw materials therefor, e.g. resins or coal
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01GCAPACITORS; CAPACITORS, RECTIFIERS, DETECTORS, SWITCHING DEVICES, LIGHT-SENSITIVE OR TEMPERATURE-SENSITIVE DEVICES OF THE ELECTROLYTIC TYPE
    • H01G11/00Hybrid capacitors, i.e. capacitors having different positive and negative electrodes; Electric double-layer [EDL] capacitors; Processes for the manufacture thereof or of parts thereof
    • H01G11/22Electrodes
    • H01G11/30Electrodes characterised by their material
    • H01G11/50Electrodes characterised by their material specially adapted for lithium-ion capacitors, e.g. for lithium-doping or for intercalation
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01GCAPACITORS; CAPACITORS, RECTIFIERS, DETECTORS, SWITCHING DEVICES, LIGHT-SENSITIVE OR TEMPERATURE-SENSITIVE DEVICES OF THE ELECTROLYTIC TYPE
    • H01G11/00Hybrid capacitors, i.e. capacitors having different positive and negative electrodes; Electric double-layer [EDL] capacitors; Processes for the manufacture thereof or of parts thereof
    • H01G11/84Processes for the manufacture of hybrid or EDL capacitors, or components thereof
    • H01G11/86Processes for the manufacture of hybrid or EDL capacitors, or components thereof specially adapted for electrodes
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01GCAPACITORS; CAPACITORS, RECTIFIERS, DETECTORS, SWITCHING DEVICES, LIGHT-SENSITIVE OR TEMPERATURE-SENSITIVE DEVICES OF THE ELECTROLYTIC TYPE
    • H01G11/00Hybrid capacitors, i.e. capacitors having different positive and negative electrodes; Electric double-layer [EDL] capacitors; Processes for the manufacture thereof or of parts thereof
    • H01G11/22Electrodes
    • H01G11/30Electrodes characterised by their material
    • H01G11/32Carbon-based
    • H01G11/34Carbon-based characterised by carbonisation or activation of carbon
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E60/00Enabling technologies; Technologies with a potential or indirect contribution to GHG emissions mitigation
    • Y02E60/13Energy storage using capacitors

Definitions

  • the disclosure relates to a lithium ion capacitor (LIC), to an anode in the LIC, and to a carbon composition in the anode.
  • LIC lithium ion capacitor
  • the disclosure provides an coke sourced carbon composition for an anode in a lithium ion capacitor.
  • the disclosure provides an anode for a lithium ion capacitor having a low surface area carbon obtained from a coke source.
  • Fig. 1 shows a comparison of Raman spectroscopy frequency shifts and intensities of different carbons.
  • Fig. 2 shows discharge capacities for conditioning cycles for carbon based on different raw materials.
  • Fig. 3 shows a Volumetric Ragone plot comparing the rate performances of carbons from different raw materials.
  • Raman structural analysis refers to and rely on the disorder (D) peak, the graphitic (G) peak, and a consideration of the peak intensity ratio I D /I G -
  • the D peak intensity (I D ) relates to the extent of disorder in the carbon whereas the G peak intensity (I G ) relates to the extent of highly oriented graphitic planes.
  • the peak intensity ratio of I D /I G gives a quantification of the carbon structure. The higher the peak ratio of I D /I G the greater the disorder in the carbon.
  • Electrode refers to an electrode through which positive electric charge flows into a polarized electrical device and electrons flow out of the electrode to an outside circuit.
  • Cathode refers to an electrode from which positive electric charge flows out of a polarized electrical device.
  • compositions and methods of the disclosure can include any value or any combination of the values, specific values, more specific values, and preferred values described herein, including explicit or implicit intermediate values and ranges.
  • Lithium ion capacitors are a new class of innovative hybrid energy storage devices. Unlike EDLC's, which store energy based on double layer mechanism on both electrodes, the hybrid lithium ion capacitors store energy on the cathode via the double layer mechanism whereas energy storage on the anode is via Faradaic mechanism. As a result, the energy density in such devices can be, for example, five times greater than an EDLC, while maintaining the power also at a 3 to 4 times greater than an EDLC's power. Despite the Faradaic mechanism of energy storage, these LIC devices still show very high cycle life, for example, in excess of 200,000 cycles, making the devices attractive for many applications.
  • LICs utilize a high surface area (typically greater than 1,000 m 2 /g) carbon on the positive electrode and an intercalating carbon with low porosity and low surface area (typically less than 300 m 2 /g) on the anode, which combination of a high and a low surface area carbon supports fast intercalation and de-intercalation of lithium ions.
  • lithium intercalation and de-intercalation occurs within the bulk of the negative electrode (i.e., the anode), whereas anion adsorption and desorption takes place on the positive electrode (i.e., the cathode).
  • the adsorption and desorption on the positive electrode is a non- Faradaic reaction, which is relatively faster than the lithium ion intercalation and de- intercalation on the negative electrode.
  • the negative electrode (intercalating and de- intercalating) can be pre-doped with lithium metal.
  • the pre-doping of the lithium ion capacitor allows an increase in the voltage to approximately about 3.8 volts.
  • a lithium ion capacitor permits a voltage of about 1.5 times greater than that of an EDLC.
  • the negative electrode stays at a constant or even potential during the charging and discharging of the cell.
  • properties of the anode are significant to the performance of the device. These properties are derived mainly from the materials comprising the anode, such as the carbon material.
  • the properties required for the Li ion capacitor anode are different from properties required for Li ion battery anodes, although both involve insertion of lithium ions in the carbon structure.
  • the Li ion capacitor is a power device and fast intercalation - deintercalation of ions is essential, whereas for Li ion batteries a slow intercalation rate is acceptable.
  • the disclosure provides a carbon for the use in an anode electrode of a lithium ion capacitor. The data provided was obtained at desired high charge -discharge rates.
  • the cathode electrochemical processes are rate controlling whereas in a lithium ion capacitor the anode electrochemical processes are rate controlling.
  • the anode side essentially controls the significant properties such as charge and discharge capacities, which directly affects the energy and power performance of a lithium ion capacitor. These properties are derived mainly from the materials comprising the anode.
  • the carbon materials comprising the anode are significant to the performance of the device.
  • Different types of carbons have been evaluated as anode materials in lithium ion capacitors. Graphite has been a material of choice, but hard carbon materials, i.e., non- graphitic materials having low surface area are also being evaluated. Hard carbon materials show higher discharge capacities than graphite due to structural differences.
  • the disclosure provides an anode in a lithium ion capacitor, comprising:
  • a carbon composition comprising: a coke sourced carbon in from 85 to 95 wt%; a conductive carbon in from 1 to 8 wt%; and a binder in from 3 to 10 wt%, based on the total weight of the carbon composition; and
  • an electrically conductive substrate that supports the carbon composition for example, a copper or aluminum foil or sheet, wherein the coke sourced carbon has a disorder (D) peak to graphitic (G) peak intensity ratio by Raman analysis of from 1.25 to 1.55; a hydrogen content of from 0.01 to 0.25 wt%; a nitrogen content of from 0.03 to 0.75 wt%; and an oxygen content of from 0.05 to 2.0 wt% by elemental analysis.
  • D disorder
  • G graphitic
  • the coke sourced carbon can be present, for example, in from 88 to 92 wt%; the conductive carbon can be present, for example, in from 4 to 7 wt%; and the binder can be, for example, PVDF and can be present, for example, in from 4 to 6 wt% and has a molecular weight of from 300,000 to 1,000,000.
  • the coke sourced carbon can have, for example, a disorder (D) peak to graphitic (G) peak intensity ratio by Raman analysis of from 1.35 to 1.48.
  • D disorder
  • G graphitic
  • the coke sourced carbon can be have, for example, a hydrogen content of from 0.01 to 0.24 wt%; a nitrogen content of from 0.08 to 0.7 wt%; and an oxygen content of from 0.01 to 1.9 wt% by elemental analysis.
  • the coke sourced carbon has a low surface area of from 1 to 100 m 2 /g.
  • the coke sourced carbon can have, for example, a particle size from 1 to 30 microns, 2 to 10 microns, from 2 to 7 microns, and like particle sizes, including intermediate values and ranges.
  • the anode can further comprise, for example, a lithium composite powder coated on at least a portion of the surface of the anode.
  • the disclosure provides a lithium ion capacitor, comprising:
  • the abovementioned anode comprising a carbon composition
  • a carbon composition comprising: a coke sourced carbon in from 85 to 95 wt%; a conductive carbon in from 1 to 8 wt%; and a binder in from 3 to 10 wt%, based on the total weight of the carbon composition; and an electrically conductive substrate that supports the carbon composition, for example, a copper or aluminum foil or sheet, wherein the coke sourced carbon has a disorder (D) peak to graphitic (G) peak intensity ratio by Raman analysis of from 1.25 to 1.55; a hydrogen content of from 0.01 to 0.25 wt%; a nitrogen content of from 0.03 to 0.75 wt%; and an oxygen content of from 0.05 to 2.0 wt% by elemental analysis.
  • D disorder
  • G graphitic
  • the anode can operate at, for example, a high charge -discharge rate of from IC to 4000C.
  • the lithium ion capacitor can further comprise, for example, a cell comprising a stack of: the anode; a cathode comprising a heat and KOH activated wheat flour sourced carbon, for example, 85% Corning carbon), a fluoropolymer, for example, 10% PTFE DuPont 601A Teflon, and a conductive carbon black, for example, 5% Cabot Black Pearl 2000; a separator, for example, an NKK-4425; and at least a portion of the surface of the anode having a coating of the lithium composite powder.
  • a cell comprising a stack of: the anode; a cathode comprising a heat and KOH activated wheat flour sourced carbon, for example, 85% Corning carbon), a fluoropolymer, for example, 10% PTFE DuPont 601A Teflon, and a conductive carbon black, for example, 5% Cabot Black Pearl 2000; a separator, for example, an NKK-4425; and
  • the cell can have, for example, a discharge capacity of from 60 to
  • the disclosure provides a method of making a carbon electrode comprising:
  • a conductive current collector such as copper or aluminum foil, or like foils, having a thickness of 10 to 500 microns, to form the electrode.
  • the method of making can further comprise heat treating the coke particles at from 1000 °C to 1700 °C in an inert atmosphere prior to applying the mixture on the conductive current collector.
  • the method of making can further comprise treating the coke particles with an acid prior to the heat treatment.
  • the method of making can further comprise including a conductive carbon in an amount of from 2 to 10 wt% in the mixture.
  • the coke based or sourced carbon demonstrated superior rate performance, especially at higher currents, over the comparative phenolic resin based carbon and the graphite based carbon.
  • the coke sourced or coke based carbon demonstrated superiority in energy and power density performance over the comparative phenolic resin based carbon and the graphite based carbon.
  • the coke sourced carbon or coke based carbon is expected to be significantly lower in cost than other carbon sources.
  • a coke sourced carbon has been identified, which coke shows high discharge capacities compared to other hard carbons and graphite. Additionally, the coke has superior rate performance especially at high rates leading to higher power and better performance.
  • the coke carbon material, methods of making and using, and device performance results are provided and compared with alternative prior art carbon material materials.
  • the disclosure provides a coke based low surface area carbon as an anode material in a lithium ion capacitor.
  • the coke based carbon was acquired commercially, for example, from ConocoPhillips, and shows higher discharge capacity compared to graphite and phenolic resin based carbon.
  • Charge and Discharge Capacity is a quantitative measure of charge being stored and discharge respectively during the charge-discharge process.
  • Discharge capacity is an intrinsic property of a carbon material. The higher the discharge capacity, the higher the energy density of the device. The discharge capacity of a carbon material depends on the structure of the carbon and the impurity levels present in the carbon material. Additionally, data is also presented on the rate performance of coke based carbon compared to graphite (standard material used in literature studies) and to a phenolic resin (660 °C) (comparative prior art commercial material). The coke based carbon shows superior rate performance especially at higher rates (higher currents). Rate performance is significant in a capacitor device since the device is subjected to high rate charge -discharge cycles, and unlike batteries where the charge discharge rates are orders of magnitude lower.
  • the anode comprises of lithium intercalating carbon such as graphite, mesocarbon microbeads (MCMB), hard carbon or soft carbon and the cathode comprises of materials made from lithium complexed with transition metals.
  • Some prominent cathode material used in the lithium ion battery industry are, for example, L1C0O2 (lithium cobalt oxide), LiMni 5N10.5O4 (lithium manganese nickel oxide), and LiMn 2 0 4 (lithium manganese oxide), and LiFeP0 4 (lithium iron phosphate).
  • a carbonaceous material when used on the anode electrode in a lithium ion capacitor can intercalate and de-intercalate lithium ions.
  • Charge and discharge capacity is a quantitative measure of the carbon materials ability to store or discharge charge.
  • Discharge capacity is an intrinsic property of a carbon material. The discharge capacity of the carbon material depends on the structure of the carbon and the impurity levels present in the carbon material. The discharge capacities can directly reflect on the significant performance aspects of a cell. A higher discharge capacity is a desirable property in a carbon on the anode side as it will directly beneficially affect the packaging volume of a cell, which in turn will beneficially affect the energy and power density in a lithium ion capacitor device.
  • the capacity must be measured at high rates since a capacitor is a power device, unlike an energy device such as a battery, where the rates are significantly lower.
  • the capacity of a material at high rates will be different than at low rates, and will be a function of material structure which controls the diffusion rate of lithium ion into the structure of the material.
  • the disclosure provides a coke based carbon that when used in an anode of a LIC battery has high discharge capacities and superior rate performance.
  • Fig. 2 shows the discharge capacities (normalized on the anode carbon weight, measured at C/2 rate) during the conditioning cycles for coke based carbon, phenolic resin carbon (resin carbonized at 660°C), and graphite. It is apparent that the discharge capacity (Fig. 2) for the coke based carbon is higher than both phenolic resin carbon (carbonized at 660°C) and graphite.
  • the untreated High Density Coke (NPC-15) had a discharge capacity of 67.09 mAh/gm
  • the High Density Coke (NPC-15) treated at 1400 °C had a discharge capacity of 73.164 mAh/gm
  • the High Density Coke (NPC-15) treated at 1600 °C had a discharge capacity of 91.62 mAh/gm.
  • the Conoco Rodeo Green Coke - untreated had a discharge capacity of 5.330 mAh/gm; treated at 1400 °C had a discharge capacity of 96.84 mAh/gm; and treated at 1600 °C had a discharge capacity of 89.22 mAh/gm; compared to the phenolic resin carbonized at 660 °C (39.37 mAh/gm) and the graphite (48.46 mAh/gm) after three conditioning charge- discharge cycles.
  • This desirable trait of the coke sourced carbons, especially the carbons that were heat treated at 1400 °C or 1600 °C, provides a beneficial effect in the energy density and power density (rate performance) for a lithium ion capacitor made with the coke based carbon.
  • Fig. 3 shows the rate performance comparison for eight different carbon sources, i.e., two carbons produced or sourced from a phenolic resin or a graphite, and six coke sourced carbons.
  • the coke sourced carbons heated to 1400°C and 1600°C exhibited superior rate performance at higher C-rates.
  • the coke based carbons overall showed higher energy densities and power densities compared to other two comparative carbons at low, medium, and high rates.
  • Superior high rate performance is significant in a capacitor device because the device is subjected to high rate charge -discharge cycles unlike batteries where the charge discharge rates are orders of magnitude lower.
  • the high density coke (NPC-15)-untreated had an energy density of 49.62 Wh/1 and a power density of 46.96 W/1 at approximately 1C rate.
  • the high density coke (NPC-15)-treated at 1400°C had an energy density of 34.483 Wh/1 and a power density of 36.197 W/1 at approximately 1C rate.
  • the high density coke (NPC-15)-treated at 1600°C had an energy density of 53.702 Wh/1 and a power density of 36.305 W/1 at approximately 1C rate.
  • the Conoco Rodeo Green Coke - untreated had an energy density of 0.477 Wh/1 and a power density of 6.675 W/1 at approximately 1C rate.
  • the Conoco Rodeo Green Coke - treated at 1400°C had an energy density of 52.059 Wh/1 and a power density of 37.063 W/1 at approximately 1C rate.
  • the Conoco Rodeo Green Coke - treated at 1600 °C had an energy density of 48.897 Wh/1 and a power density of 34.416 W/1 at approximately 1C rate.
  • the phenolic resin (carbonized at 660 °C) had an energy density of 29.44 Wh/1 and power density of 24.88 W/1 at approximately a 1C rate, and the graphite had an energy density of 36.67 Wh/1 and power density of 26.27 W/1 at approximately a 1C rate.
  • the coke sourced carbons heated at 1400°C and 1600°C demonstrated superiority and an advantage in energy and power density performance over the phenolic resin and the graphite based carbon.
  • the disclosure provides a coke based or coke sourced carbon as an anode material in a lithium ion capacitor.
  • the disclosure includes the performance comparison of anodes containing coke based carbon with carbons produced from different raw materials such as phenolic resin and graphite.
  • the disclosure addresses aspects of the performance of the lithium ion capacitor having the coke sourced carbon as an electrode material on the anode side, and compares the lithium ion capacitor's performance with other carbons made from phenolic resin and graphite.
  • a phenolic resin plate was also prepared by curing the phenolic resin at 100 to 120 °C and then ground to a fine powder.
  • the powdered resin was then placed in a retort furnace and heated at 50°C/hr to 500 °C. The furnace temperature was then held at 500°C for 1 hr. The furnace was then ramped at 10°C/hr to 660°C. The furnace was then held at 660°C for 1 hr. The furnace was switched off and passively cooled.
  • the resulting carbon was ground to a 5 micron particle size and subjected to Raman spectroscopy for structure analysis. The stacked Raman spectra are shown in Fig. 1.
  • the phenolic resin sourced carbon treated at 660°C had an I D peak (disorder peak) at 1308.83 cm “1 with an intensity of 2339.745 a.u., and an IG peak at about 1601.01 cm “1 with an intensity of 1952.962 a.u. (Table 1).
  • the peak ratio of ID/IG for phenolic resin sourced carbon treated at 660°C was 1.20.
  • the phenolic resin sourced carbon was also subjected to relative percentage elemental analysis. The samples were dried under vacuum at 125°C for 6 hrs prior to the analysis. All the elemental results are reported on a dried basis and are summarized in Table 2.
  • the phenolic resin sourced carbon treated at 660°C consists of C: 95.27%, H:
  • the phenolic resin sourced carbon treated at 660°C was also subjected to BET analysis to probe the surface area of the carbon, which was 426.8621 m 2 /gm.
  • the resulting carbon was used to cast anode electrodes for a lithium ion capacitor.
  • the anode consisted of 90 wt% of the phenolic resin sourced carbon, 5 wt% Timcal Super C- 45 conductive carbon, and 5 wt.% of KYNAR HSV 900 grade PVDF (molecular weight: 1,000,000) as a binder.
  • the anode was prepared as follows. 3.6 grams of the phenolic resin sourced carbon and 0.2 grams of Timcal Super C-45 were balled milled in a Retsch PM-100 ball mill for 15 mins at 350 rpm. 0.2 gram of PVDF was added to the mixture and ball-milled for 15 mins at 350 rpm. Several drops of N-methyl pyrrolidinone (NMP) were added to the mixture to form a paste of the mixture. The paste was then coated on a copper foil (Product number - Oak Mitsui TLB-DS), and passed through a rolling mill to produce a 4 mil thickness. The calendared electrodes were punched to make 14 mm diameter circular electrodes. The punched electrodes were the dried 16 hrs at 120°C under vacuum.
  • NMP N-methyl pyrrolidinone
  • the cathode consisted of 85% of the above mentioned activated Corning carbon, 10 wt% PTFE (DuPont 601A Teflon PTFE), and 5 wt % Cabot Black Pearl 2000 (see for example, US Patent Nos.: 8,318,356, 8,784,764, 8,524,632, and 8,541,338).
  • a Li ion capacitor was built in a CR2032 format cell by stacking in an aluminum clad coin cell, in the order of: the cathode electrode made from 85 wt% of Coming carbon, and 5% Cabot Black Pearl 2000;
  • LiC lithium composite powder
  • the lithium composite powder is an encapsulated lithium particle comprising: a core comprised of at least one of: lithium; a lithium metal alloy; or a combination thereof; and a shell comprised of a lithium salt, and an oil, the shell encapsulates the core, and the particle has a diameter of from 1 to 500 microns (see commonly owned and assigned USSN 13/673019, filed Nov. 9, 2012, entitled "LITHIUM COMPOSITE
  • the Corning carbon was made from a wheat flour precursor.
  • the wheat flour was carbonized at from 650 to 700°C.
  • the carbonized carbon was ground to a particle size of approximately 5 microns.
  • the ground carbonized carbon was then activated at 750°C with KOH (alkali) in a weight ratio of 2.2: 1 KOHxarbon for 2 hrs.
  • the carbon was further washed with water to remove any remaining KOH.
  • the resulting activated carbon was then treated with HC1 to neutralize any trace of KOH and then washed with water to neutralize the carbon to a pH of 7.
  • the activated carbon was then heat-treated under nitrogen and hydrogen forming gas at 900 °C for 2 hrs.
  • the cell was then crimped on a MTI coin cell crimper and conditioned on an Arbin BT 2000 at a constant current charge/discharge at 0.5 raA current from 3.8V to 2.2V.
  • the phenolic resin based carbon was carbonized at 660°C and gave a discharge capacity of 39.374 mAh/gm (based on the anode carbon weight) after the third conditioning cycle (Fig. 2).
  • the cell was subjected to C-Rate performance where the cell was charged at a constant current of 1 raA and discharged at different rates.
  • Fig. 3 shows the C-rate performance of the phenolic resin based carbon carbonized at 600°C) on volume basis. The cell showed a maximum energy density of 29.44 Wh/1.
  • Graphite sourced carbon and electrode performance A Timcal TB-17 graphite powder specially synthesized for Li ion electrode applications was acquired from MTI Corp., and used as received. The received carbon was subjected to Raman spectroscopy for structure analysis. The stacked Raman spectra are shown in Fig. 1. The graphite showed an I D peak (disorder peak) at 1316.33 cm “1 with an intensity of 3019.06 a.u., and an IG peak at approximately 1599.91 cm “1 with an intensity of 2000.583 a.u. (Table 1). The peak ratio of ID/IG was 1.51.
  • the Timcal graphite powder was subjected to elemental analysis as in Comparative Example 1 ; found: C: 99.4%; H: 0.27%; N: 0.02%; and O: less than 0.1%.
  • the graphite was used in casting anode electrodes for a lithium ion capacitor.
  • the anode consisted of 90 wt% Timcal graphite powder, 5 wt% Timcal Super C-45 conductive carbon from MTI Corp., and 5 wt% of KYNAR HSV 900 grade PVDF (molecular weight: 1,000,000) as a binder.
  • Timcal graphite powder carbon 3.6 grams of the Timcal graphite powder carbon and 0.2 grams of the Timcal Super C-45 were balled milled in a Retsch PM-100 ball mill for 15 mins at 350 rpm. 0.2 grams of PVDF was added to the Timcal graphite powder and Timcal Super C-45 mixture and was ball-milled for 15 mins at 350 rpm. A few drops of N-methyl pyrrolidinone (NMP) were added to the mixture to form a paste of the mixture. The paste was then coated on a copper foil (Product number -Oak Mitsui TLB-DS), and passed through a rolling mill to achieve a 4 mil thickness. The calendared electrodes were punched to make 14 mm diameter circular electrodes. The punched electrodes were the dried 16 hrs at 120 °C under vacuum.
  • NMP N-methyl pyrrolidinone
  • a Li ion capacitor was built in a CR2032 format cell.
  • the cathode comprised 85% of the above mentioned Coming carbon, 10% PTFE (DuPont 601A Teflon PTFE), and 5% Cabot Black Pearl 2000.
  • the separator was NKK-4425 separator.
  • the 5 mg of the above mentioned lithium composite powder was coated on an anode made from the Timcal TB-17 graphite powder.
  • the cell was then crimped on a MTI coin cell crimper and conditioned on an Arbin BT 2000 at constant current charge/discharge at 0.5 raA current from 3.8V to 2.2V.
  • the cell with graphite anode gave a discharge capacity of 48.46 mAh/gm (based on the anode carbon weight) after the third conditioning cycle (Fig. 2).
  • the cell was subjected to C-Rate performance where the cell was charged at a constant current of 1 mA and discharged at different rates.
  • Fig. 3 shows the C-rate performance of the Timcal TB-17 Graphite on a volume basis. The cell had a maximum energy density of 36.69 Wh/1.
  • NPC-15 High Density Coke - Untreated A petroleum coke based carbon (NPC- 15 High Density Coke - Untreated, obtained from As bury Carbon) was ground to a 5 micron particle size and subjected to Raman spectroscopy for structure analysis. The stacked Raman spectra are shown in Fig. 1.
  • the coke sourced carbon had an I D peak (disorder peak) at 1330.22 cm “1 with an intensity of 2984.201 a.u., and an IG peak at approximately 1608.98 cm “1 with an intensity of 2029.153 a.u. (Table 1).
  • the ratio of ID/IG for the coke sourced carbon was 1.47.
  • the coke sourced carbon was also subjected to elemental analysis as in Comparative Example 1 ; found: C: 98.72%; H: 0.06%; N: 0.19%; and O: 0.36%.
  • the coke sourced carbon was used in casting anode electrodes for a lithium ion capacitor.
  • the anode consisted of 90 wt% of the above mentioned coke sourced carbon, 5 wt% Timcal Super C-45 conductive carbon, and 5 wt% of KYNAR HSV 900 grade PVDF (molecular weight: 1,000,000) as a binder.
  • a Li ion capacitor was built in a CR2032 format cell.
  • the cathode comprised 85% of the above mentioned Coming carbon, 10% PTFE (DuPont 601A Teflon PTFE), and 5% Cabot Black Pearl 2000.
  • the separator was an NKK-4425 separator. 5 mg of the above mentioned lithium composite powder was coated on an anode made from the untreated NPC- 15 High Density Coke.
  • the cell was then crimped on a MTI coin cell crimper and conditioned on an Arbin BT 2000 at constant current charge/discharge at 0.5 raA current from 3.8V to 2.2V.
  • the untreated NPC-15 High Density Coke carbon had a discharge capacity of 67.09 mAh/gm (based on the anode carbon weight) after the third conditioning cycle (Fig. 2).
  • the cell was subjected to C-Rate performance where the cell was charged at a constant current of 1 raA and discharged at different rates.
  • Fig. 3 shows the C-rate performance of the untreated NPC- 15 High Density Coke sourced carbon on a volume basis.
  • the cell had a maximum energy density of 49.62 Wh/1.
  • NPC-15 High Density Coke heat treated at 1400°C A high density coke sourced carbon (NPC-15 High Density coke) was acquired from Asbury Carbons and ground to 5 micron particle size. The ground carbon was then treated at 1400°C for 2 hrs. The furnace was ramped at 200 °C/hr rate. The carbon was then cooled to ambient temperature. The heated and cooled carbon was subjected to Raman spectroscopic structure analysis and the stacked Raman spectra is shown in Fig. 1. The carbon showed an I D peak (disorder peak) at 1314.70 cm “1 with an intensity of 2793.14 a.u., and an IG peak at approximately 1603.22 cm "1 with an intensity of 2000.950 a.u.
  • the ID/IG ratio was 1.40.
  • the carbon was also subjected to percentage analysis as in Comparative Example 1; found: C: 98.76%; H: 0.05 %; N: 0.18%; and O: 0.1%.
  • the NPC-15 High Density Coke carbon treated at 1400°C was also subjected to BET analysis to probe the surface area of the carbon, which was 8.4131 m 2 /gm.
  • the coke sourced carbon was used in casting anode electrodes for a lithium ion capacitor.
  • the anode consisted of 90 wt% of the above mentioned coke sourced carbon, 5 wt% Timcal Super C-45 conductive carbon, and 5 wt% of KYNAR HSV 900 grade PVDF (molecular weight: 1,000,000) as a binder.
  • a lithium ion capacitor was built in a CR2032 format cell by stacking in the order of: a cathode electrode made from 85% of the above mentioned Corning Carbon, 10% PTFE
  • NPC-15 High Density Coke treated at 1400°C in an aluminum clad coin cell.
  • the cell was then crimped on a MTI coin cell crimper and conditioned on a Arbin BT2000 at constant current charge/discharge at 0.5mA current from 3.8V to 2.2V.
  • the cell including the NPC-15 High Density Coke treated at 1400°C had a discharge capacity of 73.164 mAh/gm (based on the anode carbon weight) after the third conditioning cycle (Fig. 2).
  • the cell was subjected to C-Rate performance where the cell was charged at a constant current of 1 mA and discharged at different rates.
  • Fig. 3 shows the C-rate performance of the cell including the NPC-15 High Density Coke treated at 1400°C sourced carbon on a volume basis.
  • the cell had a maximum energy density of 37.48 Wh/1.
  • NPC-15 High Density Coke heat treated at 1600 °C Example 4 was repeated with the exception that the ground carbon was treated at 1600 °C for 2 hrs.
  • the carbon had an ID peak (disorder) at 1316.51 cm “1 having an intensity of 3447.53 a.u., and an IG peak at approximately 1605.78 cm “1 having an intensity of 2441.87 a.u. (Table 1).
  • the ratio of ID/IG was 1.41.
  • the carbon was also subjected to elemental analysis as in Comparative Example 1 ; found: 99.08%; H: 0.05%; N: 0.09%; and O: 0.1%.
  • NPC-15 High Density Coke treated at 1600°C carbon was also subjected to BET analysis to probe the surface area of the carbon, which was 7.3568 m 2 /gm.
  • the NPC-15 High Density Coke treated at 1600°C carbon was used in casting anode electrodes for lithium ion capacitor and tested as in Example 4.
  • the coke based carbon gave a discharge capacity of 91.62 mAh/gm (based on the anode carbon weight) after the third conditioning cycle (Fig. 2).
  • Fig. 3 shows the C-rate performance of the NPC-15 High Density Coke treated at 1600°C sourced carbon on a volume basis.
  • the cell had a maximum energy density of 53.70 Wh/1.
  • Conoco Green Rodeo Coke- untreated Conoco Green Rodeo coke was acquired from Conoco Phillips and ground to 5 micron particle size.
  • the resulting carbon was subjected to Raman spectroscopy for structure analysis and the stacked Raman spectra are shown in Fig. 1.
  • the Green Rodeo coke showed fluorescence in the Raman Spectra.
  • the carbon had an I D peak (disorder peak) at 1354.76 cm “1 with an intensity of 61590.800 a.u., and an IG peak at approximately 1593.02 cm "1 with an intensity of 65434.60 a.u. (Table 1).
  • the ratio of ID/IG was 0.94.
  • the carbon was also subjected to elemental analysis as in Comparative Example 1 ; found: C: 89.62%; H: 3.92%; N: 2.65%; and O: 1.64%.
  • the untreated Conoco Green Rodeo Coke sourced carbon was used in casting anode electrodes for lithium ion capacitor and tested as in Example 4.
  • the untreated Conoco Green Rodeo Coke sourced carbon gave a discharge capacity of 5.330 mAh/gm (based on the anode carbon weight) after the third conditioning cycle (Fig. 2).
  • Fig. 3 shows the C-rate performance of the untreated Conoco Green Rodeo Coke sourced carbon on a volume basis.
  • the cell had a maximum energy density of 0.477 Wh/1.
  • the carbon was used in casting anode electrodes for lithium ion capacitor and tested as in Example 5.
  • the cell including the Conoco Green Rodeo Coke treated at 1400°C carbon gave a discharge capacity of 96.840 mAh/gm (based on the anode carbon weight) after the third conditioning cycle (Fig. 2).
  • Fig. 3 shows the C-rate performance of the cell including the Conoco Green Rodeo Coke treated at 1400°C carbon on a volume basis.
  • the cell had a maximum energy density of 52.059 Wh/1.
  • the disclosed coke based carbons in the above examples had superior performance compared to the phenolic resin sourced carbon and the graphite sourced carbon, as an anode in a lithium ion capacitor.
  • the disclosed inventive electrodes for lithium ion capacitors can comprise, for example: a coke sourced carbon material characterized by Raman analysis to have an I D to IG peak intensity ratio of from 1.25 and 1.55; and an elemental analysis having H: less than 0.25 wt%, N: greater than 0.10 wt%; and an O: less than 2 wt% for example, from above 0.1 wt% to 1.95 wt%.

Landscapes

  • Engineering & Computer Science (AREA)
  • Power Engineering (AREA)
  • Chemical & Material Sciences (AREA)
  • Materials Engineering (AREA)
  • Microelectronics & Electronic Packaging (AREA)
  • Manufacturing & Machinery (AREA)
  • Electric Double-Layer Capacitors Or The Like (AREA)
  • Battery Electrode And Active Subsutance (AREA)

Abstract

An anode in a lithium ion capacitor, including: a carbon composition comprising: a coke sourced carbon, a conductive carbon, and a binder as defined herein; and an electrically conductive substrate supporting the carbon composition,wherein the coke sourced carbon has a disorder (D) peak to graphitic (G) peak intensity ratio by Raman analysis of from 1.25 to 1.55; a hydrogen content of from 0.01 to 0.25 wt%; a nitrogen content of from 0.03 to 0.75 wt%; and an oxygen content of from 0.05 to 2.0 wt% by elemental analysis. Further, a method of making a carbon electrode comprising the steps of grinding a coke sourced carbon to particles of from 1 to 30 micrometers, mixing the coke particles with a binder, and a solvent to form a mixture, heat treating the coke particles in the mixture at from 1000 to 1700 °C in an inert atmosphere, and applying the mixture on a conductive current collector to form the electrode.

Description

COKE SOURCED CARBON ANODE FOR LITHIUM ION CAPACITOR
CROSS-REFERENCE TO PRIORITY APPLICATION
[0001] This application claims the benefit of priority under 35 U.S.C. § 120 of U.S.
Application Serial No. 14/610,752 filed on January 30, 2015 the content of which is relied upon and incorporated herein by reference in its entirety.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0002] The present application is related commonly owned and assigned USSN
Application Nos., filed concurrently herewith:
14/610782 filed January 30, 2015, entitled "ANODE FOR LITHIUM ION
CAPACITOR";
14/610848 filed January 30, 2015, entitled "PHENOLIC RESIN SOURCED CARBON ANODE IN A LITHIUM ION CAPACITOR";
14/610811 filed January 30, 2015, entitled "POLY-VINYLIDENE DIFLUORIDE ANODE IN A LITHIUM ION CAPACITOR"; and
14/610868 filed January 30, 2015, entitled "CATHODE FOR LITHIUM ION CAPACITOR," but does not claim priority thereto.
[0003] The entire disclosure of each publication or patent document mentioned herein is incorporated by reference.
Background
[0004] The disclosure relates to a lithium ion capacitor (LIC), to an anode in the LIC, and to a carbon composition in the anode.
Summary
[0005] In embodiments, the disclosure provides an coke sourced carbon composition for an anode in a lithium ion capacitor.
[0006] In embodiments, the disclosure provides an anode for a lithium ion capacitor having a low surface area carbon obtained from a coke source.
Brief Description of the Drawings [0007] In embodiments of the disclosure:
[0008] Fig. 1 shows a comparison of Raman spectroscopy frequency shifts and intensities of different carbons.
[0009] Fig. 2 shows discharge capacities for conditioning cycles for carbon based on different raw materials.
[0010] Fig. 3 shows a Volumetric Ragone plot comparing the rate performances of carbons from different raw materials.
Detailed Description
[0011] Various embodiments of the disclosure will be described in detail with reference to drawings, if any. Reference to various embodiments does not limit the scope of the invention, which is limited only by the scope of the claims attached hereto. Additionally, any examples set forth in this specification are not limiting and merely set forth some of the many possible embodiments of the claimed invention.
[0012] Features or aspects recited in any of the claims are generally applicable to all facets of the invention. Any recited single or multiple feature or aspect in any one claim can be combined or permuted with any other recited feature or aspect in any other claim or claims.
Definitions
[0013] "Raman structural analysis," "Raman analysis," or like terms refer to and rely on the disorder (D) peak, the graphitic (G) peak, and a consideration of the peak intensity ratio ID/IG- The D peak intensity (ID) relates to the extent of disorder in the carbon whereas the G peak intensity (IG) relates to the extent of highly oriented graphitic planes. The peak intensity ratio of ID/IG gives a quantification of the carbon structure. The higher the peak ratio of ID/IG the greater the disorder in the carbon.
[0014] "Anode," "anode electrode," "negative electrode," or like terms refers to an electrode through which positive electric charge flows into a polarized electrical device and electrons flow out of the electrode to an outside circuit.
[0015] "Cathode," "cathode electrode," "positive electrode," or like terms refers to an electrode from which positive electric charge flows out of a polarized electrical device.
[0016] "Include," "includes," or like terms means encompassing but not limited to, that is, inclusive and not exclusive.
[0017] "About" modifying, for example, the quantity of an ingredient in a composition, concentrations, volumes, process temperature, process time, yields, flow rates, pressures, viscosities, and like values, and ranges thereof, or a dimension of a component, and like values, and ranges thereof, employed in describing the embodiments of the disclosure, refers to variation in the numerical quantity that can occur, for example: through typical measuring and handling procedures used for preparing materials, compositions, composites, concentrates, component parts, articles of manufacture, or use formulations; through inadvertent error in these procedures; through differences in the manufacture, source, or purity of starting materials or ingredients used to carry out the methods; and like
considerations. The term "about" also encompasses amounts that differ due to aging of a composition or formulation with a particular initial concentration or mixture, and amounts that differ due to mixing or processing a composition or formulation with a particular initial concentration or mixture.
[0018] "Optional" or "optionally" means that the subsequently described event or circumstance can or cannot occur, and that the description includes instances where the event or circumstance occurs and instances where it does not.
[0019] The indefinite article "a" or "an" and its corresponding definite article "the" as used herein means at least one, or one or more, unless specified otherwise.
[0020] Abbreviations, which are well known to one of ordinary skill in the art, may be used (e.g., "h" or "hrs" for hour or hours, "g" or "gm" for gram(s), "mL" for milliliters, and
"rt" for room temperature, "nm" for nanometers, and like abbreviations).
[0021] Specific and preferred values disclosed for components, ingredients, additives, dimensions, conditions, times, and like aspects, and ranges thereof, are for illustration only; they do not exclude other defined values or other values within defined ranges. The composition and methods of the disclosure can include any value or any combination of the values, specific values, more specific values, and preferred values described herein, including explicit or implicit intermediate values and ranges.
[0022] Lithium ion capacitors (LICs) are a new class of innovative hybrid energy storage devices. Unlike EDLC's, which store energy based on double layer mechanism on both electrodes, the hybrid lithium ion capacitors store energy on the cathode via the double layer mechanism whereas energy storage on the anode is via Faradaic mechanism. As a result, the energy density in such devices can be, for example, five times greater than an EDLC, while maintaining the power also at a 3 to 4 times greater than an EDLC's power. Despite the Faradaic mechanism of energy storage, these LIC devices still show very high cycle life, for example, in excess of 200,000 cycles, making the devices attractive for many applications.
LICs utilize a high surface area (typically greater than 1,000 m2/g) carbon on the positive electrode and an intercalating carbon with low porosity and low surface area (typically less than 300 m2/g) on the anode, which combination of a high and a low surface area carbon supports fast intercalation and de-intercalation of lithium ions. During charge and discharge, lithium intercalation and de-intercalation occurs within the bulk of the negative electrode (i.e., the anode), whereas anion adsorption and desorption takes place on the positive electrode (i.e., the cathode). The adsorption and desorption on the positive electrode is a non- Faradaic reaction, which is relatively faster than the lithium ion intercalation and de- intercalation on the negative electrode.
[0023] In the lithium ion capacitor, the negative electrode (intercalating and de- intercalating) can be pre-doped with lithium metal. The pre-doping of the lithium ion capacitor allows an increase in the voltage to approximately about 3.8 volts.
[0024] A lithium ion capacitor permits a voltage of about 1.5 times greater than that of an EDLC. The cell capacitance (C= Q/V) can be stated by the charge-discharge curve. Since the energy density and power are both proportional to square of the voltage there is a significant increase in energy and power density of the device. In addition to the voltage related increase, the Faradaic reaction also has significantly greater energy associated with it and contributes to an increase in the energy and the power density. The negative electrode stays at a constant or even potential during the charging and discharging of the cell.
[0025] Properties of the anode are significant to the performance of the device. These properties are derived mainly from the materials comprising the anode, such as the carbon material. The properties required for the Li ion capacitor anode are different from properties required for Li ion battery anodes, although both involve insertion of lithium ions in the carbon structure. The Li ion capacitor is a power device and fast intercalation - deintercalation of ions is essential, whereas for Li ion batteries a slow intercalation rate is acceptable. In embodiment, the disclosure provides a carbon for the use in an anode electrode of a lithium ion capacitor. The data provided was obtained at desired high charge -discharge rates.
[0026] In a lithium ion battery the cathode electrochemical processes are rate controlling whereas in a lithium ion capacitor the anode electrochemical processes are rate controlling. The anode side essentially controls the significant properties such as charge and discharge capacities, which directly affects the energy and power performance of a lithium ion capacitor. These properties are derived mainly from the materials comprising the anode. The carbon materials comprising the anode are significant to the performance of the device. [0027] Different types of carbons have been evaluated as anode materials in lithium ion capacitors. Graphite has been a material of choice, but hard carbon materials, i.e., non- graphitic materials having low surface area are also being evaluated. Hard carbon materials show higher discharge capacities than graphite due to structural differences.
[0028] In embodiments, the disclosure provides an anode in a lithium ion capacitor, comprising:
a carbon composition comprising: a coke sourced carbon in from 85 to 95 wt%; a conductive carbon in from 1 to 8 wt%; and a binder in from 3 to 10 wt%, based on the total weight of the carbon composition; and
an electrically conductive substrate that supports the carbon composition, for example, a copper or aluminum foil or sheet, wherein the coke sourced carbon has a disorder (D) peak to graphitic (G) peak intensity ratio by Raman analysis of from 1.25 to 1.55; a hydrogen content of from 0.01 to 0.25 wt%; a nitrogen content of from 0.03 to 0.75 wt%; and an oxygen content of from 0.05 to 2.0 wt% by elemental analysis.
[0029] In embodiments, the coke sourced carbon can be present, for example, in from 88 to 92 wt%; the conductive carbon can be present, for example, in from 4 to 7 wt%; and the binder can be, for example, PVDF and can be present, for example, in from 4 to 6 wt% and has a molecular weight of from 300,000 to 1,000,000.
[0030] In embodiments, the coke sourced carbon can have, for example, a disorder (D) peak to graphitic (G) peak intensity ratio by Raman analysis of from 1.35 to 1.48.
[0031] In embodiments, the coke sourced carbon can be have, for example, a hydrogen content of from 0.01 to 0.24 wt%; a nitrogen content of from 0.08 to 0.7 wt%; and an oxygen content of from 0.01 to 1.9 wt% by elemental analysis.
[0032] In embodiments, the coke sourced carbon has a low surface area of from 1 to 100 m2/g.
[0033] In embodiments, the coke sourced carbon can have, for example, a particle size from 1 to 30 microns, 2 to 10 microns, from 2 to 7 microns, and like particle sizes, including intermediate values and ranges.
[0034] In embodiments, the anode can further comprise, for example, a lithium composite powder coated on at least a portion of the surface of the anode.
[0035] In embodiments, the disclosure provides a lithium ion capacitor, comprising:
the abovementioned anode comprising a carbon composition comprising: a coke sourced carbon in from 85 to 95 wt%; a conductive carbon in from 1 to 8 wt%; and a binder in from 3 to 10 wt%, based on the total weight of the carbon composition; and an electrically conductive substrate that supports the carbon composition, for example, a copper or aluminum foil or sheet, wherein the coke sourced carbon has a disorder (D) peak to graphitic (G) peak intensity ratio by Raman analysis of from 1.25 to 1.55; a hydrogen content of from 0.01 to 0.25 wt%; a nitrogen content of from 0.03 to 0.75 wt%; and an oxygen content of from 0.05 to 2.0 wt% by elemental analysis.
[0036] In embodiments, the anode can operate at, for example, a high charge -discharge rate of from IC to 4000C.
[0037] In embodiments, the lithium ion capacitor can further comprise, for example, a cell comprising a stack of: the anode; a cathode comprising a heat and KOH activated wheat flour sourced carbon, for example, 85% Corning carbon), a fluoropolymer, for example, 10% PTFE DuPont 601A Teflon, and a conductive carbon black, for example, 5% Cabot Black Pearl 2000; a separator, for example, an NKK-4425; and at least a portion of the surface of the anode having a coating of the lithium composite powder.
[0038] In embodiments, the cell can have, for example, a discharge capacity of from 60 to
120 mAh/gm, for example, 67.09 mAh/gm based on the anode carbon weight, and a maximum energy density of from 30 to 60 Wh/1, for example, 49.62 Wh/1.
[0039] In embodiments, the disclosure provides a method of making a carbon electrode comprising:
grinding a coke sourced carbon to particles of from 1 to 30 microns;
mixing the coke particles with a binder, and a solvent to form a mixture; and applying the mixture on a conductive current collector such as copper or aluminum foil, or like foils, having a thickness of 10 to 500 microns, to form the electrode.
[0040] In embodiments, the method of making can further comprise heat treating the coke particles at from 1000 °C to 1700 °C in an inert atmosphere prior to applying the mixture on the conductive current collector.
[0041] In embodiments, the method of making can further comprise treating the coke particles with an acid prior to the heat treatment.
[0042] In embodiments, the method of making can further comprise including a conductive carbon in an amount of from 2 to 10 wt% in the mixture.
[0043] The present disclosure is advantaged in several aspects, including for example:
The coke based or sourced carbon demonstrated superior rate performance, especially at higher currents, over the comparative phenolic resin based carbon and the graphite based carbon. The coke sourced or coke based carbon demonstrated superiority in energy and power density performance over the comparative phenolic resin based carbon and the graphite based carbon. The coke sourced carbon or coke based carbon is expected to be significantly lower in cost than other carbon sources.
[0044] In embodiments, a coke sourced carbon has been identified, which coke shows high discharge capacities compared to other hard carbons and graphite. Additionally, the coke has superior rate performance especially at high rates leading to higher power and better performance. The coke carbon material, methods of making and using, and device performance results are provided and compared with alternative prior art carbon material materials.
[0045] In embodiments, the disclosure provides a coke based low surface area carbon as an anode material in a lithium ion capacitor. The coke based carbon was acquired commercially, for example, from ConocoPhillips, and shows higher discharge capacity compared to graphite and phenolic resin based carbon. Charge and Discharge Capacity is a quantitative measure of charge being stored and discharge respectively during the charge-discharge process.
Discharge capacity is an intrinsic property of a carbon material. The higher the discharge capacity, the higher the energy density of the device. The discharge capacity of a carbon material depends on the structure of the carbon and the impurity levels present in the carbon material. Additionally, data is also presented on the rate performance of coke based carbon compared to graphite (standard material used in literature studies) and to a phenolic resin (660 °C) (comparative prior art commercial material). The coke based carbon shows superior rate performance especially at higher rates (higher currents). Rate performance is significant in a capacitor device since the device is subjected to high rate charge -discharge cycles, and unlike batteries where the charge discharge rates are orders of magnitude lower.
[0046] The fundamental function and operation of a lithium ion capacitor is different than a lithium ion battery. In a lithium ion battery, the anode comprises of lithium intercalating carbon such as graphite, mesocarbon microbeads (MCMB), hard carbon or soft carbon and the cathode comprises of materials made from lithium complexed with transition metals. Some prominent cathode material used in the lithium ion battery industry are, for example, L1C0O2 (lithium cobalt oxide), LiMni 5N10.5O4 (lithium manganese nickel oxide), and LiMn204 (lithium manganese oxide), and LiFeP04 (lithium iron phosphate).
[0047] A carbonaceous material when used on the anode electrode in a lithium ion capacitor can intercalate and de-intercalate lithium ions. Charge and discharge capacity is a quantitative measure of the carbon materials ability to store or discharge charge. Discharge capacity is an intrinsic property of a carbon material. The discharge capacity of the carbon material depends on the structure of the carbon and the impurity levels present in the carbon material. The discharge capacities can directly reflect on the significant performance aspects of a cell. A higher discharge capacity is a desirable property in a carbon on the anode side as it will directly beneficially affect the packaging volume of a cell, which in turn will beneficially affect the energy and power density in a lithium ion capacitor device. Notably, the capacity must be measured at high rates since a capacitor is a power device, unlike an energy device such as a battery, where the rates are significantly lower. The capacity of a material at high rates will be different than at low rates, and will be a function of material structure which controls the diffusion rate of lithium ion into the structure of the material.
[0048] In embodiments, the disclosure provides a coke based carbon that when used in an anode of a LIC battery has high discharge capacities and superior rate performance. Fig. 2 shows the discharge capacities (normalized on the anode carbon weight, measured at C/2 rate) during the conditioning cycles for coke based carbon, phenolic resin carbon (resin carbonized at 660°C), and graphite. It is apparent that the discharge capacity (Fig. 2) for the coke based carbon is higher than both phenolic resin carbon (carbonized at 660°C) and graphite.
[0049] The untreated High Density Coke (NPC-15) had a discharge capacity of 67.09 mAh/gm, the High Density Coke (NPC-15) treated at 1400 °C had a discharge capacity of 73.164 mAh/gm, and the High Density Coke (NPC-15) treated at 1600 °C had a discharge capacity of 91.62 mAh/gm.
[0050] The Conoco Rodeo Green Coke - untreated had a discharge capacity of 5.330 mAh/gm; treated at 1400 °C had a discharge capacity of 96.84 mAh/gm; and treated at 1600 °C had a discharge capacity of 89.22 mAh/gm; compared to the phenolic resin carbonized at 660 °C (39.37 mAh/gm) and the graphite (48.46 mAh/gm) after three conditioning charge- discharge cycles. This desirable trait of the coke sourced carbons, especially the carbons that were heat treated at 1400 °C or 1600 °C, provides a beneficial effect in the energy density and power density (rate performance) for a lithium ion capacitor made with the coke based carbon. Fig. 3 shows the rate performance comparison for eight different carbon sources, i.e., two carbons produced or sourced from a phenolic resin or a graphite, and six coke sourced carbons. The coke sourced carbons heated to 1400°C and 1600°C exhibited superior rate performance at higher C-rates. The coke based carbons overall showed higher energy densities and power densities compared to other two comparative carbons at low, medium, and high rates. Superior high rate performance is significant in a capacitor device because the device is subjected to high rate charge -discharge cycles unlike batteries where the charge discharge rates are orders of magnitude lower.
[0051] The high density coke (NPC-15)-untreated had an energy density of 49.62 Wh/1 and a power density of 46.96 W/1 at approximately 1C rate. The high density coke (NPC-15)- treated at 1400°C had an energy density of 34.483 Wh/1 and a power density of 36.197 W/1 at approximately 1C rate. The high density coke (NPC-15)-treated at 1600°C had an energy density of 53.702 Wh/1 and a power density of 36.305 W/1 at approximately 1C rate. The Conoco Rodeo Green Coke - untreated had an energy density of 0.477 Wh/1 and a power density of 6.675 W/1 at approximately 1C rate. The Conoco Rodeo Green Coke - treated at 1400°C had an energy density of 52.059 Wh/1 and a power density of 37.063 W/1 at approximately 1C rate. The Conoco Rodeo Green Coke - treated at 1600 °C had an energy density of 48.897 Wh/1 and a power density of 34.416 W/1 at approximately 1C rate. The phenolic resin (carbonized at 660 °C) had an energy density of 29.44 Wh/1 and power density of 24.88 W/1 at approximately a 1C rate, and the graphite had an energy density of 36.67 Wh/1 and power density of 26.27 W/1 at approximately a 1C rate. The coke sourced carbons heated at 1400°C and 1600°C demonstrated superiority and an advantage in energy and power density performance over the phenolic resin and the graphite based carbon.
[0052] In embodiments, the disclosure provides a coke based or coke sourced carbon as an anode material in a lithium ion capacitor. The disclosure includes the performance comparison of anodes containing coke based carbon with carbons produced from different raw materials such as phenolic resin and graphite. The disclosure addresses aspects of the performance of the lithium ion capacitor having the coke sourced carbon as an electrode material on the anode side, and compares the lithium ion capacitor's performance with other carbons made from phenolic resin and graphite.
EXAMPLES
[0053] The following Examples demonstrate making, use, and analysis of the disclosed coke sourced carbon, a LIC anode including the coke, an LIC including the anode, and methods in accordance with the above general procedures and specific examples below.
Comparative Example 1
[0054] Phenolic resin sourced carbon cabonized at 660°C (mentioned in US
2013/0201606A1) A phenolic resin, GP® 510D50 RESI-SET® phenolic impregnating resin
(from Georgia Pacific) was cured at from 100 to 125°C. A phenolic resin plate was also prepared by curing the phenolic resin at 100 to 120 °C and then ground to a fine powder. The powdered resin was then placed in a retort furnace and heated at 50°C/hr to 500 °C. The furnace temperature was then held at 500°C for 1 hr. The furnace was then ramped at 10°C/hr to 660°C. The furnace was then held at 660°C for 1 hr. The furnace was switched off and passively cooled. The resulting carbon was ground to a 5 micron particle size and subjected to Raman spectroscopy for structure analysis. The stacked Raman spectra are shown in Fig. 1. The phenolic resin sourced carbon treated at 660°C had an ID peak (disorder peak) at 1308.83 cm"1 with an intensity of 2339.745 a.u., and an IG peak at about 1601.01 cm"1 with an intensity of 1952.962 a.u. (Table 1). The peak ratio of ID/IG for phenolic resin sourced carbon treated at 660°C was 1.20. The phenolic resin sourced carbon was also subjected to relative percentage elemental analysis. The samples were dried under vacuum at 125°C for 6 hrs prior to the analysis. All the elemental results are reported on a dried basis and are summarized in Table 2. The phenolic resin sourced carbon treated at 660°C consists of C: 95.27%, H:
1.76%, N: 0.1%, and O: 2.11%. The phenolic resin sourced carbon treated at 660°C was also subjected to BET analysis to probe the surface area of the carbon, which was 426.8621 m2/gm.
[0055] The resulting carbon was used to cast anode electrodes for a lithium ion capacitor. The anode consisted of 90 wt% of the phenolic resin sourced carbon, 5 wt% Timcal Super C- 45 conductive carbon, and 5 wt.% of KYNAR HSV 900 grade PVDF (molecular weight: 1,000,000) as a binder.
[0056] The anode was prepared as follows. 3.6 grams of the phenolic resin sourced carbon and 0.2 grams of Timcal Super C-45 were balled milled in a Retsch PM-100 ball mill for 15 mins at 350 rpm. 0.2 gram of PVDF was added to the mixture and ball-milled for 15 mins at 350 rpm. Several drops of N-methyl pyrrolidinone (NMP) were added to the mixture to form a paste of the mixture. The paste was then coated on a copper foil (Product number - Oak Mitsui TLB-DS), and passed through a rolling mill to produce a 4 mil thickness. The calendared electrodes were punched to make 14 mm diameter circular electrodes. The punched electrodes were the dried 16 hrs at 120°C under vacuum.
[0057] The cathode consisted of 85% of the above mentioned activated Corning carbon, 10 wt% PTFE (DuPont 601A Teflon PTFE), and 5 wt % Cabot Black Pearl 2000 (see for example, US Patent Nos.: 8,318,356, 8,784,764, 8,524,632, and 8,541,338).
[0058] A Li ion capacitor was built in a CR2032 format cell by stacking in an aluminum clad coin cell, in the order of: the cathode electrode made from 85 wt% of Coming carbon, and 5% Cabot Black Pearl 2000;
an NKK-4425 separator; and
5 mg of lithium composite powder (LCP) is coated on the anode made of the phenolic resin sourced carbon (660°C).
[0059] The lithium composite powder (LCP) is an encapsulated lithium particle comprising: a core comprised of at least one of: lithium; a lithium metal alloy; or a combination thereof; and a shell comprised of a lithium salt, and an oil, the shell encapsulates the core, and the particle has a diameter of from 1 to 500 microns (see commonly owned and assigned USSN 13/673019, filed Nov. 9, 2012, entitled "LITHIUM COMPOSITE
PARTICLES," and USSN 14/493886, filed Sept.23, 2014, entitled "ENCAPSULATED LITHIUM PARTICLES AND METHODS OF MAKING AND USE THEREOF"). The LCP is used for pre-doping the anode.
[0060] The Corning carbon was made from a wheat flour precursor. The wheat flour was carbonized at from 650 to 700°C. The carbonized carbon was ground to a particle size of approximately 5 microns. The ground carbonized carbon was then activated at 750°C with KOH (alkali) in a weight ratio of 2.2: 1 KOHxarbon for 2 hrs. The carbon was further washed with water to remove any remaining KOH. The resulting activated carbon was then treated with HC1 to neutralize any trace of KOH and then washed with water to neutralize the carbon to a pH of 7. The activated carbon was then heat-treated under nitrogen and hydrogen forming gas at 900 °C for 2 hrs.
[0061] The cell was then crimped on a MTI coin cell crimper and conditioned on an Arbin BT 2000 at a constant current charge/discharge at 0.5 raA current from 3.8V to 2.2V. The phenolic resin based carbon was carbonized at 660°C and gave a discharge capacity of 39.374 mAh/gm (based on the anode carbon weight) after the third conditioning cycle (Fig. 2). The cell was subjected to C-Rate performance where the cell was charged at a constant current of 1 raA and discharged at different rates. Fig. 3 shows the C-rate performance of the phenolic resin based carbon carbonized at 600°C) on volume basis. The cell showed a maximum energy density of 29.44 Wh/1.
Comparative Example 2
[0062] Graphite sourced carbon and electrode performance A Timcal TB-17 graphite powder specially synthesized for Li ion electrode applications was acquired from MTI Corp., and used as received. The received carbon was subjected to Raman spectroscopy for structure analysis. The stacked Raman spectra are shown in Fig. 1. The graphite showed an ID peak (disorder peak) at 1316.33 cm"1 with an intensity of 3019.06 a.u., and an IG peak at approximately 1599.91 cm"1 with an intensity of 2000.583 a.u. (Table 1). The peak ratio of ID/IG was 1.51. The Timcal graphite powder was subjected to elemental analysis as in Comparative Example 1 ; found: C: 99.4%; H: 0.27%; N: 0.02%; and O: less than 0.1%.
[0063] The graphite was used in casting anode electrodes for a lithium ion capacitor. The anode consisted of 90 wt% Timcal graphite powder, 5 wt% Timcal Super C-45 conductive carbon from MTI Corp., and 5 wt% of KYNAR HSV 900 grade PVDF (molecular weight: 1,000,000) as a binder.
[0064] 3.6 grams of the Timcal graphite powder carbon and 0.2 grams of the Timcal Super C-45 were balled milled in a Retsch PM-100 ball mill for 15 mins at 350 rpm. 0.2 grams of PVDF was added to the Timcal graphite powder and Timcal Super C-45 mixture and was ball-milled for 15 mins at 350 rpm. A few drops of N-methyl pyrrolidinone (NMP) were added to the mixture to form a paste of the mixture. The paste was then coated on a copper foil (Product number -Oak Mitsui TLB-DS), and passed through a rolling mill to achieve a 4 mil thickness. The calendared electrodes were punched to make 14 mm diameter circular electrodes. The punched electrodes were the dried 16 hrs at 120 °C under vacuum.
[0065] A Li ion capacitor was built in a CR2032 format cell. The cathode comprised 85% of the above mentioned Coming carbon, 10% PTFE (DuPont 601A Teflon PTFE), and 5% Cabot Black Pearl 2000. The separator was NKK-4425 separator. The 5 mg of the above mentioned lithium composite powder was coated on an anode made from the Timcal TB-17 graphite powder.
[0066] The cell was then crimped on a MTI coin cell crimper and conditioned on an Arbin BT 2000 at constant current charge/discharge at 0.5 raA current from 3.8V to 2.2V. The cell with graphite anode gave a discharge capacity of 48.46 mAh/gm (based on the anode carbon weight) after the third conditioning cycle (Fig. 2). The cell was subjected to C-Rate performance where the cell was charged at a constant current of 1 mA and discharged at different rates. Fig. 3 shows the C-rate performance of the Timcal TB-17 Graphite on a volume basis. The cell had a maximum energy density of 36.69 Wh/1. Example 3
[0067] NPC-15 High Density Coke - Untreated A petroleum coke based carbon (NPC- 15 High Density Coke - Untreated, obtained from As bury Carbon) was ground to a 5 micron particle size and subjected to Raman spectroscopy for structure analysis. The stacked Raman spectra are shown in Fig. 1. The coke sourced carbon had an ID peak (disorder peak) at 1330.22 cm"1 with an intensity of 2984.201 a.u., and an IG peak at approximately 1608.98 cm"1 with an intensity of 2029.153 a.u. (Table 1). The ratio of ID/IG for the coke sourced carbon was 1.47. The coke sourced carbon was also subjected to elemental analysis as in Comparative Example 1 ; found: C: 98.72%; H: 0.06%; N: 0.19%; and O: 0.36%.
[0068] The coke sourced carbon was used in casting anode electrodes for a lithium ion capacitor. The anode consisted of 90 wt% of the above mentioned coke sourced carbon, 5 wt% Timcal Super C-45 conductive carbon, and 5 wt% of KYNAR HSV 900 grade PVDF (molecular weight: 1,000,000) as a binder.
[0069] 3.6 grams of coke sourced carbon and 0.2 grams of Timcal Super C-45 were balled milled in a Retsch PM-100 ball mill for 15 mins at 350 rpm. 0.2 grams of PVDF was added to the mixture, and ball-milled for 15 mins at 350 rpm. A few drops of N-methyl pyrrolidinone (NMP) were added to the mixture of coke sourced carbon (NPC 15), Timcal Super C-45, and PVDF, to form a paste of the mixture. The paste was then coated on a copper foil (Product number -Oak Mitsui TLB-DS), and passed through a rolling mill to achieve a 4 mil thickness. The calendared electrodes were punched to make 14 mm diameter circular electrodes. The punched electrodes were the dried 16 hrs at 120°C under vacuum.
[0070] A Li ion capacitor was built in a CR2032 format cell. The cathode comprised 85% of the above mentioned Coming carbon, 10% PTFE (DuPont 601A Teflon PTFE), and 5% Cabot Black Pearl 2000. The separator was an NKK-4425 separator. 5 mg of the above mentioned lithium composite powder was coated on an anode made from the untreated NPC- 15 High Density Coke.
[0071] The cell was then crimped on a MTI coin cell crimper and conditioned on an Arbin BT 2000 at constant current charge/discharge at 0.5 raA current from 3.8V to 2.2V. The untreated NPC-15 High Density Coke carbon had a discharge capacity of 67.09 mAh/gm (based on the anode carbon weight) after the third conditioning cycle (Fig. 2). The cell was subjected to C-Rate performance where the cell was charged at a constant current of 1 raA and discharged at different rates. Fig. 3 shows the C-rate performance of the untreated NPC- 15 High Density Coke sourced carbon on a volume basis. The cell had a maximum energy density of 49.62 Wh/1.
Example 4
[0072] NPC-15 High Density Coke heat treated at 1400°C A high density coke sourced carbon (NPC-15 High Density coke) was acquired from Asbury Carbons and ground to 5 micron particle size. The ground carbon was then treated at 1400°C for 2 hrs. The furnace was ramped at 200 °C/hr rate. The carbon was then cooled to ambient temperature. The heated and cooled carbon was subjected to Raman spectroscopic structure analysis and the stacked Raman spectra is shown in Fig. 1. The carbon showed an ID peak (disorder peak) at 1314.70 cm"1 with an intensity of 2793.14 a.u., and an IG peak at approximately 1603.22 cm"1 with an intensity of 2000.950 a.u. (Table 1). The ID/IG ratio was 1.40. The carbon was also subjected to percentage analysis as in Comparative Example 1; found: C: 98.76%; H: 0.05 %; N: 0.18%; and O: 0.1%. The NPC-15 High Density Coke carbon treated at 1400°C was also subjected to BET analysis to probe the surface area of the carbon, which was 8.4131 m2/gm.
[0073] The coke sourced carbon was used in casting anode electrodes for a lithium ion capacitor. The anode consisted of 90 wt% of the above mentioned coke sourced carbon, 5 wt% Timcal Super C-45 conductive carbon, and 5 wt% of KYNAR HSV 900 grade PVDF (molecular weight: 1,000,000) as a binder.
[0074] 3.6 grams of the coke sourced carbon and 0.2 grams of Timcal Super C-45 were balled milled in a Retsch PM-100 ball mill for 10 minutes at 350 rpm. 0.2 grams of PVDF was added to the mixture and ball-milled for 10 mins at 350 rpm. 5 mL of N-methyl pyrrolidinone (NMP) was added to the mixture to form a slurry and the slurry was then coated on a copper foil (Product number -Oak Mitsui TLB-DS) to achieve the desired 2.5 to 2.65 mil thickness. The coated electrodes were dried under vacuum at 60 °C. The electrodes are punched to make 14 mm diameter circular electrodes. The punched electrodes were the dried for 16 hrs at 120°C under vacuum.
[0075] A lithium ion capacitor was built in a CR2032 format cell by stacking in the order of: a cathode electrode made from 85% of the above mentioned Corning Carbon, 10% PTFE
(DuPont 601 A Teflon PTFE), and 5% Cabot Black Pearl 2000; an NKK-4425 separator; and the anode having 3.5 mg of the above mentioned lithium composite powder coated on the
NPC-15 High Density Coke treated at 1400°C, in an aluminum clad coin cell. The cell was then crimped on a MTI coin cell crimper and conditioned on a Arbin BT2000 at constant current charge/discharge at 0.5mA current from 3.8V to 2.2V. The cell including the NPC-15 High Density Coke treated at 1400°C had a discharge capacity of 73.164 mAh/gm (based on the anode carbon weight) after the third conditioning cycle (Fig. 2). The cell was subjected to C-Rate performance where the cell was charged at a constant current of 1 mA and discharged at different rates. Fig. 3 shows the C-rate performance of the cell including the NPC-15 High Density Coke treated at 1400°C sourced carbon on a volume basis. The cell had a maximum energy density of 37.48 Wh/1.
Example 5
[0076] NPC-15 High Density Coke heat treated at 1600 °C Example 4 was repeated with the exception that the ground carbon was treated at 1600 °C for 2 hrs. The carbon had an ID peak (disorder) at 1316.51 cm"1 having an intensity of 3447.53 a.u., and an IG peak at approximately 1605.78 cm"1 having an intensity of 2441.87 a.u. (Table 1). The ratio of ID/IG was 1.41. The carbon was also subjected to elemental analysis as in Comparative Example 1 ; found: 99.08%; H: 0.05%; N: 0.09%; and O: 0.1%.
[0077] The NPC-15 High Density Coke treated at 1600°C carbon was also subjected to BET analysis to probe the surface area of the carbon, which was 7.3568 m2/gm.
[0078] The NPC-15 High Density Coke treated at 1600°C carbon was used in casting anode electrodes for lithium ion capacitor and tested as in Example 4. The coke based carbon gave a discharge capacity of 91.62 mAh/gm (based on the anode carbon weight) after the third conditioning cycle (Fig. 2). Fig. 3 shows the C-rate performance of the NPC-15 High Density Coke treated at 1600°C sourced carbon on a volume basis. The cell had a maximum energy density of 53.70 Wh/1.
Example 6
[0079] Conoco Green Rodeo Coke- untreated Conoco Green Rodeo coke was acquired from Conoco Phillips and ground to 5 micron particle size. The resulting carbon was subjected to Raman spectroscopy for structure analysis and the stacked Raman spectra are shown in Fig. 1. The Green Rodeo coke showed fluorescence in the Raman Spectra. The carbon had an ID peak (disorder peak) at 1354.76 cm"1 with an intensity of 61590.800 a.u., and an IG peak at approximately 1593.02 cm"1 with an intensity of 65434.60 a.u. (Table 1). The ratio of ID/IG was 0.94. The carbon was also subjected to elemental analysis as in Comparative Example 1 ; found: C: 89.62%; H: 3.92%; N: 2.65%; and O: 1.64%. [0080] The untreated Conoco Green Rodeo Coke sourced carbon was used in casting anode electrodes for lithium ion capacitor and tested as in Example 4. The untreated Conoco Green Rodeo Coke sourced carbon gave a discharge capacity of 5.330 mAh/gm (based on the anode carbon weight) after the third conditioning cycle (Fig. 2). Fig. 3 shows the C-rate performance of the untreated Conoco Green Rodeo Coke sourced carbon on a volume basis. The cell had a maximum energy density of 0.477 Wh/1.
Example 7
[0081] Conoco Green Rodeo Coke- treated at 1400 °C Example 6 was repeated with the exception that the ground carbon was then treated at 1400 °C for 2 hrs. The furnace was ramped at 200°C/hr rate. The carbon was then cooled to room temperature. The carbon was subjected to Raman spectroscopy for structure analysis and the stacked Raman spectra are shown in Fig. 1. The carbon had an ID peak (disorder peak) at 1318.57 cm"1 with an intensity of 5837.64 a.u., and an IG peak at approximately 1600.03 cm"1 with an intensity of 4196.67 a.u. (Table 1). The peak ratio of IG was 1.39. The carbon was also subjected to elemental analysis as in Comparative Example 1; found: C: 97.72%; H: 0.13%; N: 0.69%; and O: 0.1 %.
[0082] The carbon was used in casting anode electrodes for lithium ion capacitor and tested as in Example 5. The cell including the Conoco Green Rodeo Coke treated at 1400°C carbon gave a discharge capacity of 96.840 mAh/gm (based on the anode carbon weight) after the third conditioning cycle (Fig. 2). Fig. 3 shows the C-rate performance of the cell including the Conoco Green Rodeo Coke treated at 1400°C carbon on a volume basis. The cell had a maximum energy density of 52.059 Wh/1.
Example 8
[0083] Conoco Green Rodeo Coke - Heat Treated at 1600 °C Example 6 was repeated with the exception that the ground carbon was then treated at 1600 °C for 2 hrs. The furnace was ramped at 200°C/hr rate. The carbon was then cooled to room temperature. The carbon was subjected to Raman spectroscopy for structure analysis and the stacked Raman spectra are shown in Fig. 1. The carbon had an ID peak (disorder peak) at 1315.19 cm"1 with an intensity of 5832.57 a.u., and an IG peak at approximately 1599.04 cm"1 with an intensity of
4269.24 a.u. (Table 1). The peak ratio of ID/IG was 1.37. The carbon was also subjected to elemental analysis as in Comparative Example 1 ; found: C: 98.97%; H: 0.06%; N: 0.16%; and O: 0.1 %. The Conoco Green Rodeo Coke treated at 1600°C carbon was also subjected to BET analysis to probe the surface area of the carbon, which was 2.7987 m2/gm.
[0084] The Conoco Green Rodeo Coke treated at 1600°C carbon was used in casting anode electrodes for lithium ion capacitor and tested as in Example 4, and gave a discharge capacity of 89.220 mAh/gm (based on the anode carbon weight) after the third conditioning cycle (Fig. 2). Fig. 3 shows the C-rate performance of the Conoco Green Rodeo Coke treated at 1600°C carbon on a volume basis. The cell had a maximum energy density of 48.890 Wh/1.
[0085] The disclosed coke based carbons in the above examples had superior performance compared to the phenolic resin sourced carbon and the graphite sourced carbon, as an anode in a lithium ion capacitor.
[0086] The disclosed inventive electrodes for lithium ion capacitors can comprise, for example: a coke sourced carbon material characterized by Raman analysis to have an ID to IG peak intensity ratio of from 1.25 and 1.55; and an elemental analysis having H: less than 0.25 wt%, N: greater than 0.10 wt%; and an O: less than 2 wt% for example, from above 0.1 wt% to 1.95 wt%.
Table 1. Comparison of Raman Intensities (I) for the Disorder (ID) peak, Graphitic peak
(IG), and peak ratio (ID/IG) for different carbons.
Figure imgf000018_0001
Table 2. Comparison of relative carbon, hydrogen, nitrogen, and oxygen weight percentages in different carbons.
Figure imgf000019_0001
[0087] The disclosure has been described with reference to various specific embodiments and techniques. However, it should be understood that many variations and modifications are possible while remaining within the scope of the disclosure.

Claims

What is claimed is:
1. An anode in a lithium ion capacitor, comprising:
a carbon composition comprising: a coke sourced carbon in from 85 to 95 wt%; a conductive carbon in from 1 to 8 wt%; and a binder in from 3 to 10 wt%, based on the total weight of the carbon composition; and
an electrically conductive substrate that supports the carbon composition, wherein the coke sourced carbon has a disorder (D) peak to graphitic (G) peak intensity ratio by Raman analysis of from 1.25 to 1.55 ; a hydrogen content of from 0.01 to 0.25 wt%; a nitrogen content of from 0.03 to 0.75 wt%; and an oxygen content of from 0.05 to 2.0 wt% by elemental analysis.
2. The anode of claim 1 wherein:
the coke sourced carbon in from 88 to 92 wt%;
the conductive carbon in from 4 to 7 wt%; and
the binder is PVDF in from 4 to 6 wt% and has a molecular weight of from 300,000 to 1 ,000,000.
3. The anode of any of claims 1 to 2, wherein the coke sourced carbon has a disorder (D) peak to graphitic (G) peak intensity ratio by Raman analysis of from 1.35 to 1.48.
4. The anode of any of claims 1 to 3, wherein the coke sourced carbon has a hydrogen content of from 0.01 to 0.24 wt%; a nitrogen content of from 0.08 to 0.7 wt%; and an oxygen content of from 0.01 to 1.9 wt%.
5. The anode of any of claims 1 to 4, wherein the coke sourced carbon has a low surface area of from 1 to 100 m2/g.
6. The anode of any of claims 1 to 5, wherein the coke sourced carbon has a particle size from 1 to 30 microns.
7. The anode of any of claims 1 to 6, wherein the coke sourced carbon has a particle size from 2 to 7 microns.
8. The anode of any of claims 1 to 7, further comprising a lithium composite powder coated on at least a portion of the surface of the anode.
9. A lithium ion capacitor, comprising:
the anode of any of claims 1 to 8.
10. The lithium ion capacitor of claim 9 wherein the anode operates at a high charge - discharge rate of from 1 C to 4000C.
1 1. The lithium ion capacitor of any of claims 9 to 10, further comprising:
a cell comprising a stack of: the anode; a cathode comprising a heat and KOH activated wheat flour sourced carbon, a fluoropolymer, and a conductive carbon black; a separator; and a lithium composite powder coated on at least a portion of the surface of the anode.
12. The lithium ion capacitor of claim 1 1 wherein the cell has a discharge capacity of from 60 to 120 mAh/gm and a maximum energy density of from 30 to 60 Wh/1.
13. A method of making a carbon electrode comprising:
grinding a coke sourced carbon to particles of from 1 to 30 microns;
mixing the coke particles with a binder, and a solvent to form a mixture; and applying the mixture on a conductive current collector to form the electrode.
14. The method of claim 13 further comprising heat treating the coke particles at from 1000 °C to 1700 °C in an inert atmosphere prior to applying the mixture on the conductive current collector.
15. The method of claim 14 further comprising treating the coke particles with an acid prior to the heat treatment.
16. The method of claim 15 further comprising including a conductive carbon in an amount of from 2 to 10 wt% in the mixture.
PCT/US2016/015041 2015-01-30 2016-01-27 Coke sourced carbon anode for lithium ion capacitor Ceased WO2016123172A1 (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN201680008083.6A CN107210137A (en) 2015-01-30 2016-01-27 The carbon anode from coke for lithium-ion capacitor

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US14/610,752 2015-01-30
US14/610,752 US9672992B2 (en) 2015-01-30 2015-01-30 Coke sourced anode for lithium ion capacitor

Publications (1)

Publication Number Publication Date
WO2016123172A1 true WO2016123172A1 (en) 2016-08-04

Family

ID=55487048

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/US2016/015041 Ceased WO2016123172A1 (en) 2015-01-30 2016-01-27 Coke sourced carbon anode for lithium ion capacitor

Country Status (4)

Country Link
US (1) US9672992B2 (en)
CN (1) CN107210137A (en)
TW (1) TW201634386A (en)
WO (1) WO2016123172A1 (en)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US10246336B2 (en) 2016-02-29 2019-04-02 Corning Incorporated Method of making alkali activated carbon

Families Citing this family (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US9911545B2 (en) * 2015-01-30 2018-03-06 Corning Incorporated Phenolic resin sourced carbon anode in a lithium ion capacitor
JP7056275B2 (en) * 2018-03-19 2022-04-19 三菱ケミカル株式会社 Coke analysis method

Citations (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1830373A1 (en) * 2004-12-22 2007-09-05 Nippon Oil Corporation Raw material coal composition for carbon material for electrode in electric double layer capacitor
EP1876663A1 (en) * 2005-04-26 2008-01-09 Fuji Jukogyo Kabushiki Kaisha Negative electrode active material for charging device
EP1977998A1 (en) * 2005-12-27 2008-10-08 Nippon Oil Corporation Original coal and stock oil composition for needle coke and for electricity storing carbon material
US8318356B2 (en) 2008-12-15 2012-11-27 Corning Incorporated Activated carbon materials for high energy density ultracapacitors
US20130201606A1 (en) 2010-10-19 2013-08-08 Jm Energy Corporation Lithium ion capacitor
US8524632B2 (en) 2010-01-22 2013-09-03 Corning Incorporated High-capacitance and low-oxygen porous carbon for EDLCs
US8541338B2 (en) 2008-11-04 2013-09-24 Corning Incorporated Highly porous activated carbon with controlled oxygen content
US20140101992A1 (en) * 2011-04-15 2014-04-17 Biogenic Reagents LLC Systems and apparatus for production of high-carbon biogenic reagents
US8784764B2 (en) 2008-12-15 2014-07-22 Corning Incorporated Methods for forming activated carbon material for high energy density ultracapacitors

Family Cites Families (37)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE69602405T2 (en) 1995-10-03 1999-12-16 Kureha Kagaku Kogyo K.K., Tokio/Tokyo Carbon electrode material for secondary battery and method of manufacturing the same
WO2001086674A1 (en) 2000-05-09 2001-11-15 Mitsubishi Chemical Corporation Activated carbon for electric double layer capacitor
JP3870931B2 (en) 2003-01-10 2007-01-24 セイコーエプソン株式会社 Piezoelectric device
EP1715496A4 (en) * 2004-02-03 2010-03-31 Nisshin Spinning ELECTRIC CAPACITOR WITH DOUBLE LAYER
JP2005302300A (en) 2004-03-19 2005-10-27 Sanyo Electric Co Ltd Nonaqueous electrolyte battery
KR20070012385A (en) 2004-03-31 2007-01-25 후지 주코교 카부시키카이샤 Organic Electrolytic Capacitors Using Mesoporous Carbon for Cathode
JP2006004997A (en) * 2004-06-15 2006-01-05 Nippon Oil Corp Carbon for electric double layer capacitor electrode, method for producing the same, and electric double layer capacitor
JP2006086148A (en) 2004-09-14 2006-03-30 Tdk Corp Electric double layer capacitor and its manufacturing method
EP1768141B1 (en) 2005-09-26 2009-09-02 Nisshinbo Industries, Inc. Polarizable electrode for electric double layer capacitor
JP2007180431A (en) * 2005-12-28 2007-07-12 Fuji Heavy Ind Ltd Lithium ion capacitor
JP2008289820A (en) 2007-05-28 2008-12-04 Panasonic Electric Works Co Ltd Washing apparatus and washing method for bedding
CN101911229A (en) * 2008-01-17 2010-12-08 昭和电工株式会社 Electric double layer capacitor
JP4561843B2 (en) 2008-02-26 2010-10-13 ソニー株式会社 Nonaqueous electrolyte battery and negative electrode
JP5357518B2 (en) 2008-11-12 2013-12-04 旭化成株式会社 ELECTRODE BODY FOR STORAGE ELEMENT AND NON-AQUEOUS LITHIUM TYPE STORAGE ELEMENT CONTAINING THE SAME
CN105226284B (en) * 2009-07-01 2017-11-28 巴斯夫欧洲公司 Ultrapure synthetic carbon materials
WO2011028251A2 (en) 2009-08-24 2011-03-10 Sion Power Corporation Release system for electrochemical cells
US8482901B2 (en) 2010-01-22 2013-07-09 Corning Incorporated Microporous activated carbon for EDLCS
CN101847516A (en) * 2010-02-26 2010-09-29 上海奥威科技开发有限公司 Capacitor battery of high-specific-energy organic system
US8593787B2 (en) 2010-04-21 2013-11-26 Corning Incorporated Electrochemical capacitor having lithium containing electrolyte
KR101181841B1 (en) * 2010-07-02 2012-09-11 삼성에스디아이 주식회사 Positive electrode for rechargeable lithium battery with high voltage and rechargeable lithium battery including same
CN103201805B (en) * 2010-11-10 2016-01-27 Jm能源股份有限公司 Lithium-ion capacitor
JP5697954B2 (en) * 2010-11-12 2015-04-08 新日鉄住金化学株式会社 Negative electrode active material for lithium secondary battery and lithium secondary battery using the same
JP2012114374A (en) 2010-11-26 2012-06-14 Taiyo Yuden Co Ltd Electrochemical device
US8652995B2 (en) 2011-07-19 2014-02-18 Corning Incorporated Steam activated non-lignocellulosic based carbons for ultracapacitors
KR20140097099A (en) 2011-11-14 2014-08-06 스미토모덴키고교가부시키가이샤 Electrode for electricity storage devices, electricity storage device, and method for producing electrode for electricity storage devices
US20130171502A1 (en) * 2011-12-29 2013-07-04 Guorong Chen Hybrid electrode and surface-mediated cell-based super-hybrid energy storage device containing same
US20130194721A1 (en) 2012-01-26 2013-08-01 Samsung Electro-Mechanics Co., Ltd. Activated carbon for lithium ion capacitor, electrode including the activated carbon as active material, and lithium ion capacitor using the electrode
US8895189B2 (en) 2012-02-03 2014-11-25 Nanotek Instruments, Inc. Surface-mediated cells with high power density and high energy density
WO2013120009A1 (en) 2012-02-09 2013-08-15 Georgia-Pacific Chemicals Llc Preparation of polymeric resins and carbon materials
CN102642024B (en) * 2012-03-06 2014-07-23 宁德新能源科技有限公司 Lithium ion battery and anode strip thereof and stabilization lithium metal powder
US9108852B1 (en) 2012-10-18 2015-08-18 Corning Incorporated Amorphous activated carbon materials and methods for producing the same
US8920925B2 (en) 2012-11-09 2014-12-30 Corning Incorporated Stabilized lithium composite particles
US9183994B2 (en) 2012-11-28 2015-11-10 Corning Incorporated Lithium ion capacitors and methods of production
KR102097334B1 (en) 2012-12-14 2020-04-06 삼성전기주식회사 Activated carbon, method for preparing thereof and electrochemical capacitor comprising the same
CN104981885A (en) 2013-02-08 2015-10-14 Lg电子株式会社 Graphene lithium ion capacitor
US20160133394A1 (en) 2013-03-14 2016-05-12 Energ2 Technologies, Inc. Energy storage devices based on hybrid carbon electrode systems
US9129756B2 (en) 2013-03-28 2015-09-08 Corning Incorporated Composite electrode for lithium ion capacitor

Patent Citations (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1830373A1 (en) * 2004-12-22 2007-09-05 Nippon Oil Corporation Raw material coal composition for carbon material for electrode in electric double layer capacitor
EP1876663A1 (en) * 2005-04-26 2008-01-09 Fuji Jukogyo Kabushiki Kaisha Negative electrode active material for charging device
EP1977998A1 (en) * 2005-12-27 2008-10-08 Nippon Oil Corporation Original coal and stock oil composition for needle coke and for electricity storing carbon material
US8541338B2 (en) 2008-11-04 2013-09-24 Corning Incorporated Highly porous activated carbon with controlled oxygen content
US8318356B2 (en) 2008-12-15 2012-11-27 Corning Incorporated Activated carbon materials for high energy density ultracapacitors
US8784764B2 (en) 2008-12-15 2014-07-22 Corning Incorporated Methods for forming activated carbon material for high energy density ultracapacitors
US8524632B2 (en) 2010-01-22 2013-09-03 Corning Incorporated High-capacitance and low-oxygen porous carbon for EDLCs
US20130201606A1 (en) 2010-10-19 2013-08-08 Jm Energy Corporation Lithium ion capacitor
US20140101992A1 (en) * 2011-04-15 2014-04-17 Biogenic Reagents LLC Systems and apparatus for production of high-carbon biogenic reagents

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US10246336B2 (en) 2016-02-29 2019-04-02 Corning Incorporated Method of making alkali activated carbon

Also Published As

Publication number Publication date
CN107210137A (en) 2017-09-26
US9672992B2 (en) 2017-06-06
US20160225539A1 (en) 2016-08-04
TW201634386A (en) 2016-10-01

Similar Documents

Publication Publication Date Title
Xu et al. High-energy lithium-ion hybrid supercapacitors composed of hierarchical urchin-like WO 3/C anodes and MOF-derived polyhedral hollow carbon cathodes
JP6790070B2 (en) Silicon particle-containing anode material for lithium-ion batteries
KR101496309B1 (en) Silicon slurry for anode active material and carbon-silicon complex
KR101892177B1 (en) Additive material for high power energy storage device, and high power energy storage device comprising the same
US9653221B2 (en) Method of making a carbon composition for an anode
JP2023554662A (en) Negative electrode active material for lithium secondary batteries, method for producing the same, and lithium secondary batteries containing the same
JP4963675B2 (en) Lithium secondary battery, positive electrode active material thereof, and method of manufacturing the same
US9911545B2 (en) Phenolic resin sourced carbon anode in a lithium ion capacitor
Hou et al. Facile spray-drying/pyrolysis synthesis of intertwined SiO@ CNFs&G composites as superior anode materials for Li-ion batteries
Deng et al. Free-anchored Nb2O5@ graphene networks for ultrafast-stable lithium storage
US9672992B2 (en) Coke sourced anode for lithium ion capacitor
US9679704B2 (en) Cathode for a lithium ion capacitor
KR102323183B1 (en) Hybrid capacitor and method for manufacturing the same
JP7702578B2 (en) Olivine-type composite positive electrode material and its manufacturing method and application, lithium-ion battery
Pawar et al. Ti3C2Tx–Nb2Mo3O14 Composite as Novel Anode to Realize High Power Density Combined with High Stability in a Hybrid Lithium‐Ion Capacitor
JP2001236960A (en) Manufacturing method of secondary power supply
Lee et al. Effect of carbon coating on Li4Ti5O12 of anode material for hybrid capacitor
JP2003017118A (en) Secondary power source
KR20240047128A (en) Anode active material for lithium battery, method for preparing the same, and rechargeable lithium battery comprising the same

Legal Events

Date Code Title Description
121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 16708768

Country of ref document: EP

Kind code of ref document: A1

NENP Non-entry into the national phase

Ref country code: DE

122 Ep: pct application non-entry in european phase

Ref document number: 16708768

Country of ref document: EP

Kind code of ref document: A1