Improved lithium-ion batteries using high surface area nanotubes

High surface area carbon nanotubes, produced via targeted oxidation and shear, address the conductivity and mechanical weaknesses in energy storage devices by enhancing binder materials and electrolytes, improving device performance and safety.

JP7759727B2Active Publication Date: 2025-10-24MOLECUALR REBAR DESIGN LLC
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Patent Information

Application Number
JP2020564914
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2018-05-22
Filing Date
2019-05-23
Publication Date
2025-10-24
Estimated Expiration
2039-05-23

AI Technical Summary

Technical Problem

Existing energy storage devices, such as lithium-ion batteries, suffer from low electrical conductivity, low electrochemical stability, and mechanical weaknesses due to poor binder performance, leading to issues like swelling, deswelling, and increased internal resistance, which can cause excessive heat generation and safety hazards.

Method used

The use of high surface area carbon nanotubes, produced through targeted oxidation and shear forces, to enhance binder materials, electrolytes, and separator films, increasing the interaction between nanotube surfaces and surrounding materials, thereby improving electrical and mechanical properties.

Benefits of technology

The high surface area carbon nanotubes enhance electrical conductivity, mechanical strength, and ion transport, reducing internal resistance and improving the safety and performance of energy storage devices.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

High surface area carbon nanotubes with targeted or selective oxidation levels and / or contents on the inside and outside of the tube layer are provided. [Solution] The carbon nanotubes may have little or no oxidation on the inner surface of the tube, or may have different amounts and / or types of oxidation between the inner and outer surfaces of the tube. Additionally, such high surface area carbon nanotubes may have larger lengths and diameters to develop useful mechanical, electrical, and thermal properties. [Selected Figure] Figure 1
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Description

[Technical Field]

[0001] The present invention relates to novel carbon nanotube compositions having increased surface area, targeted oxidation levels and / or content, and formulations thereof for improved energy storage devices. [Background technology]

[0002] Many energy storage devices, such as batteries, capacitors, and photovoltaic cells, could utilize improved performance in particle size control processes, improved conductivity of powders used in cathodes or electrodes, and binders and / or electrolytes and separator films that provide electronic or photoactive materials and ionic transport in the electrolyte.

[0003] Lithium-ion batteries are widely used for portable electronic devices, and batteries such as lithium-ion and lead-acid batteries are increasingly being used to provide electrical backup for wind and solar energy. Salts for cathode materials in lithium-ion batteries are generally known to have low electrical conductivity and low electrochemical stability, resulting in low cycling (charge / discharge) capabilities. Both the cathode and anode materials in many battery types, such as lithium-ion batteries, exhibit swelling and deswelling as the battery is charged and discharged. This spatial migration leads to further separation of some particles and increased electrical resistance. Specifically, the high internal resistance of the batteries in large arrays of lithium-ion batteries, such as those used in electric vehicles, can result in excessive heat generation due to runaway chemical reactions and fires caused by organic liquid electrolytes.

[0004] Lithium primary batteries, for example, consist of lithium, poly(carbon monofluoride), and lithium tetrafluoroborate with a solvent such as gamma-butyrolactone as the electrolyte. These lithium primary batteries have excellent shelf life but suffer from low current delivery, with capacities about one-tenth of their theoretical potential. This is due to the low electrical conductivity of poly(carbon monofluoride). In some cases, manganese dioxide is added to the lithium battery to aid its electrical conductivity and power.

[0005] Attempts to overcome the drawback of poor adhesion to current collectors and prevent microcracks during expansion and contraction of rechargeable batteries have included the development of binders. Binders such as polyacrylic acid (PAA) for the cathode, poly(styrene-butadiene), carboxymethyl cellulose (CMC), and styrene-butadiene (SBR) for the anode, and especially polyvinylidene fluoride (PVDF) for the cathode and anode, are used in lithium-based batteries to hold active material particles together and maintain contact with the current collector, i.e., aluminum (Al) or copper (Cu) foil. PAA and SBR are used as aqueous suspensions or solutions and are considered more environmentally benign than organic solvent-based systems such as n-methyl-2-pyrrolidone (NMP) with PVDF.

[0006] Cathode electrodes for lithium-ion batteries are typically fabricated by mixing an active material powder, such as lithium iron phosphate, a binder powder (i.e., high-molecular-weight PVDF), a solvent, such as NMP, and additives, such as carbon black, into a slurry (paste) and then feeding the resulting slurry into a coating machine. Anode electrodes for lithium-ion batteries are typically fabricated similarly by mixing graphite or other materials, such as silicon, as the active material along with the binder, solvent, and additives. The coating machine spreads the mixed slurry (paste) on both sides of an Al foil for the cathode and a Cu foil for the anode. The coated foils are then polished to make the electrode thickness more uniform, and then slit for proper electrode sizing and drying.

[0007] For zinc-carbon batteries, the positive electrode can consist of a wet powder mixture of manganese dioxide, powdered carbon black, and an electrolyte such as ammonium chloride and water. Carbon black can add electrical conductivity to the manganese dioxide particles, but is required in high weight percentages, ranging from about 10 to 50 weight percent of the manganese dioxide. These large amounts of carbon black required to improve electrical conductivity or reduce battery impedance lower the battery's capacity per unit volume, as less manganese dioxide can be employed per unit volume of the positive paste mix. Therefore, it is generally necessary to maximize the amount of active material per unit volume while improving the battery's impedance.

[0008] For lead-acid batteries, the anode may be made from carbon particles with a binder to provide a higher specific capacity (capacity per unit weight). Zinc-carbon battery anodes are often carbon rods, typically made from compressed carbon particles, graphite, and a binder such as pitch. Carbon particle anodes tend to have low mechanical strength, which leads to failure under conditions of vibration and mechanical shock.

[0009] Binder material properties are important for both battery fabrication and performance. Some of these relevant properties are electrical and ionic conductivity, tensile strength and extensibility, adhesion to particles as well as foils, and electrolyte swelling. Improved electrical and ionic conductivity is required to improve battery capacity and power. Materials such as lithium manganese oxide for cathodes and silicon particles for anodes exhibit practical specific capacities significantly lower than theoretically possible. Binder materials with higher electrical and ionic conductivity may be most beneficial for achieving specific capacities closer to their theoretical values. It is desirable to improve the binder's tensile and cohesive strength, thereby allowing the use of less binder material and improving the battery's cycle life. The addition of conductive particles such as carbon black reduces the binder's tensile strength and extensibility. Controlling binder swelling in the electrolyte is also important. Excessive swelling can separate particles and significantly increase interparticle ohmic resistance. Additionally, because the anode or cathode particles are coated with a binder, the binder layer can be as thick as 50 to 100 nanometers. This thickness prevents the uniform distribution of particles larger than the binder layer thickness. For example, multi-walled carbon nanotubes, typically produced in gas-phase reactors, consist of bundles with diameters ranging from about 50 to 500 microns, and therefore exist only in the interstitial spaces between particles.

[0010] Binder impurities, such as non-lithium salts, iron, and manganese, to name a few, can be significantly detrimental to battery performance. Typically, high-purity binder materials and other additives, such as carbon black, that enhance electrical conductivity, are important factors in minimizing adverse side reactions during electrochemical processing. For example, in alkaline-manganese dioxide batteries, the total iron content in the manganese dioxide is less than 100 ppm to prevent hydrogen gassing at the anode. Commercially available carbon nanotubes, such as NC7000™ (Nanocyl) or Graphistrength® (Arkema), contain 10 weight percent or more of residual metal catalyst, and these impurity levels are not considered effective in batteries. Generally, the residual impurities of nanotubes employed herein should be less than about 5 weight percent, less than about 2 weight percent, or less than about 1 weight percent.

[0011] For photovoltaics, lines of conductive paste ink made from a solvent, binder, metal powder, and glass frit are screen printed onto the solar panel module. The binder is typically polymer-based for improved printability, such as ETHOCEL™ (Dow Chemical Company). During dissipation and cooling of the polymer, the lines crack due to contraction forces, increasing impedance. To prevent cracking during heating and cooling, it would be highly desirable to have a more robust conductive paste ink.

[0012] Efforts to improve the safety of lithium-ion batteries have sometimes involved the use of additional additives, for example, polyethylene oxide with titanium dioxide nanoparticles, or inorganic solid electrolytes such as glass-ceramic type ceramics or glasses, such as LiTiAl x Si y P3-yO 12This involves the use of non-flammable liquids such as ionic liquids, e.g., ethyl-methyl-imidazolium-bis-(trifluoromethanesulfonyl)-imide (EMI-TFSI), and solid polymers together with (LTAP). The electrical conductivity values ​​of organic liquid electrolytes are 10 -2 ~10 -1 The polymer electrolyte has a temperature-dependent capacitance of approximately 10 -7 ~10 -4 Although inorganic solid electrolytes generally have electrical conductivity values ​​in the range of 10 -8 ~10 -5 Most polymer electrolytes have a capacitance in the range of about 10 S / cm at room temperature. -5 They have electrical conductivity values ​​of 0.1 S / cm. The low ionic conductivity of polymeric and inorganic solid electrolytes currently limits their general use in energy storage and collection devices. Therefore, improving the electrolyte conductivity, particularly in polymeric and inorganic electrolytes, is highly desirable due to their improved flammability characteristics relative to organic liquids. It is also desirable to improve the mechanical strength of solid electrolytes for battery applications requiring durability in environments of high vibration or mechanical shock, as well as their ease of device fabrication.

[0013] In alkaline batteries, the electrolyte is usually potassium hydroxide. Alkaline batteries are known to have lower capacity at high current discharge than at low current discharge. Limitations in electrolyte ion transport as well as polarization of the zinc anode are known to be the reasons for this. Increasing electrolyte ion transport is highly desirable.

[0014] Among the new generation of thin-film solar cell technologies, dye-sensitized solar cells (DSSCs) have one of the most promising future prospects in terms of their cost-performance ratio. One of the most serious drawbacks of this DSSC technology is the use of liquid and corrosive electrolytes, which severely limits their commercial development. An example of an electrolyte currently used in DSSCs is potassium iodide / iodine. While replacement of currently used electrolytes is desirable, candidate electrolytes have poor ion transport.

[0015] Typical electrolytic capacitors are made from tantalum, aluminum, or ceramic with a liquid electrolyte system such as boric acid or sulfuric acid, or a solid electrolyte such as polypyrrole. Desired improvements include faster charge and discharge rates, which are limited by the ionic transport of the electrolyte.

[0016] Separator films are often added to batteries or capacitors with liquid electrolytes to perform the function of electrical insulation between the electrodes and also allow ion transport. Typically, in lithium batteries, the separator film is a porous polymer film, the polymer being, for example, polyethylene, polypropylene, or polyvinylidene fluoride. Porosity can be introduced, for example, by using a spun fiber mat or by solvent and / or film stretching techniques. In lead-acid batteries, the separator film used is traditionally a glass fiber mat. The polymer separator film comprising the high surface area carbon nanotubes of the present invention can improve ion transport while still providing the necessary electrical insulation between the electrodes.

[0017] Carbon nanotubes can be classified according to the number of tube walls: single-walled, double-walled, and multi-walled. Carbon nanotubes are currently produced as balls, bundles, or forests of aggregated nanotubes attached to a substrate. Once removed from the substrate, the produced nanotubes often form rigid, "tree-trunk"-like arrangements. The use of carbon nanotubes as reinforcing agents in composites is an area where carbon nanotubes are expected to have great utility. However, the utilization of carbon nanotubes in these applications has been hindered by the general inability to reliably produce high surface area carbon nanotubes and the ability to disperse carbon nanotubes in a matrix.

[0018] The present invention comprises improved binders, electrolyte separator films, and composites for energy storage and collection devices, such as batteries, capacitors, and photovoltaic cells, comprising high surface area carbon nanotubes, methods for their production, and resulting products. High surface area carbon nanotubes are formed by fibrillation of manufactured or purchased nanotubes. This nanotube fibrillation is caused by a combination of targeted oxidation and shear forces, such as those generated by sonication. Fibrillation of tree trunk aggregates liberates the nanotubes, exposing the nanotube surface or multiple nanotubes and / or a greater portion of the nanotube surface to the surrounding environment. This can increase the interaction between the surrounding material and the exposed nanotube surface. [Brief explanation of the drawings]

[0019] [Figure 1] Figure 1 is an optical microscope measurement showing the progression from wet cake to rotor shear. [Figure 2] FIG. 2 shows the effect of oxidation and treatment on capacity versus cycling. [Figure 3] FIG. 3 shows optical micrographs of various compositions. [Figure 4] Figure 4A and Figure 4B are photomicrographs showing the effect of shear. [Figure 5] FIG. 5 shows micrographs of the dry powder and a particular dispersion. [Figure 6] FIG. 6 shows a micrograph of the defibrillated ribbons. [Figure 7] FIG. 7 shows a micrograph of the mixture. [Figure 8-9] Figure 8 shows the nanotubes of Example 6 before shearing, and Figure 9 shows the nanotubes of Example 6 after shearing. [Figure 10-11] Figure 10 shows the nanotubes of Example 8 before shearing, and Figure 11 shows the nanotubes of Example 8 after shearing. [Figure 12-13]Figure 12 shows the nanotubes of Example 9 before shearing, and Figure 13 shows the nanotubes of Example 9 after shearing. [Figure 14-15] Figure 14 shows the nanotubes of Example 10 before shearing, and Figure 15 shows the nanotubes of Example 10 after shearing. [Figure 16-17] Figure 16 shows the nanotubes of Example 11 before shearing, and Figure 17 shows the nanotubes of Example 11 after shearing. DETAILED DESCRIPTION OF THE INVENTION

[0020] In the following description, certain details are set forth, such as specific quantities, sizes, etc., to provide a thorough understanding of the presently disclosed embodiments. However, it will be apparent to those skilled in the art that the present disclosure may be practiced without such specific details. In many cases, details regarding such considerations and the like are omitted, as the details are not necessary to obtain a complete understanding of the present disclosure and are within the understanding of those skilled in the art.

[0021] While many of the terms used herein will be recognizable to those skilled in the art, it should be understood that unless expressly stated, terms should be construed to adopt the meaning currently accepted by those skilled in the art. Where the construction of a term could render it meaningless or substantially meaningless, the definition should be taken from Webster's Dictionary, Third Edition, 2009. Definitions and / or interpretations should not be incorporated from other patent specifications, patents, or publications, related or unrelated.

[0022] Functionalized carbon nanotubes of the present disclosure generally refer to any chemical modification of the carbon nanotube types described above. Such modifications may involve the ends, sidewalls, or both of the nanotubes. Chemical modifications may include, but are not limited to, covalent bonding, ionic bonding, chemisorption, intercalation, surfactant interactions, polymer wrapping, scission, solvation, and combinations thereof. In some embodiments, carbon nanotubes may be functionalized before, during, or after partial or total exfoliation.

[0023] In various embodiments, a plurality of carbon nanotubes are disclosed, including single-walled, double-walled, or multi-walled carbon nanotubes having an aspect ratio of at least about 50, at least about 100, at least about 250, at least about 500, at least about 700, at least about 1000, at least about 1500, at least about 2000, up to about 6000, or up to about 5000, and an overall oxidation level of about 0.1 weight percent to about 15 weight percent, preferably about 0.5 weight percent to about 10 weight percent, more preferably about 1 weight percent to about 5 weight percent, and more preferably about 1 weight percent to about 3 weight percent, or about 0.1 weight percent to about 5 weight percent. The oxidation level is defined as the weight of oxygen-containing species covalently bonded to the carbon nanotube. In some embodiments, the oxidation level can be 0 or at least about 0.01 weight percent and up to about 2 weight percent. In other embodiments, the oxidation level can be at least about 2 weight percent to about 5 weight percent. A thermogravimetric method for determining the weight percent of oxygenated species in carbon nanotubes involves heating approximately 7-15 mg of dry oxidized carbon nanotubes from 100 to 700 degrees Celsius at 5°C / min under a dry nitrogen atmosphere. The percent weight loss from 200 to 600 degrees Celsius is taken as the percent weight loss of the oxygenated species. The oxygenated species can also be determined by spectroscopy, specifically in the wavelength range 1730-1680 cm. -1 It can also be quantified using Fourier transform infrared spectroscopy (FTIR) at 1000 K. In some embodiments, the oxidation level can be 0%.

[0024] Carbon nanotubes can have oxidized or derivative carbonyl-containing species, including carboxylic acids, which can include phenols, ketones, quaternary amines, amides, esters, acyl halides, and monovalent metal salts, and can vary between the inner and outer surfaces of the tubes.

[0025] For example, one or more types of acid can be used to oxidize the outer surface of the tubes, followed by water washing and induced shearing, thereby breaking and / or partially separating the tubes. If desired, nanotubes or high surface area bundles formed with essentially no (or no) oxidation on the inner tube wall can be further oxidized with a different oxidizing agent, or an oxidizing agent similar to that used on the outer layer surface of the tube, but at a different concentration, resulting in different amounts—and / or types—of interior and surface oxidation.

[0026] As-prepared carbon nanotubes are treated with shear force and / or oxidation to at least partially defibrillate the tightly bundled nanotube "tree trunk." This treatment exposes more of the individual nanotube surface area to the surrounding environment. In some embodiments, the high surface area nanotubes have at least about 10% greater surface area after treatment than before treatment. In other embodiments, the high surface area nanotubes have at least about 20%, at least about 30%, at least about 50%, at least about 75%, or at least about 100% greater surface area after treatment than before treatment. In some embodiments, the high surface area nanotubes have at least about 2.5 times, at least about 3 times, at least about 5 times, at least about 7 times, at least about 10 times, or at least about 20 times greater surface area after treatment than before treatment.

[0027] The BET surface area of ​​the nanotubes can be measured using the N2 BET isotherm according to ASTM D6556-16. The BET surface area of ​​the nanotubes herein can vary depending on the type of nanotube, the treatment method, and the desired application. Typically, single-walled and double-walled nanotubes treated with shear, oxidation, or both as described herein generally have a surface area of ​​at least about 400 m. 2 / g, at least about 500m 2 / g, at least about 550m 2 / g, at least about 600m 2 / g, at least about 650m 2 / g, at least about 700m 2 / g, at least about 750m 2 / g, at least about 800m 2 / g, at least about 850m 2 / g, at least about 900m 2 / g, at least about 1000m 2 / g, at least about 1100m 2 / g, at least about 1200m 2 / g, at least about 1300m 2 / g, at least about 1400m 2 / g, at least about 1500m 2 / g or at least about 1600m 2 / g, and the maximum is about 2000m 2 / g, maximum approx. 2000m 2 / g, maximum approx. 1900m 2 / g, maximum approx. 1800m 2 / g or a maximum of approximately 1700m 2 / g BET surface area.

[0028] The surface area of ​​the nanotubes can be measured using known methods, including, but not limited to, BET analysis and gas adsorption techniques such as nitrogen, argon, and / or carbon dioxide adsorption. These measurements can be performed isothermally. In certain embodiments, the high surface area nanotubes have a measured surface area after treatment that is about 25%, about 40%, about 55%, about 80%, or about 95% greater than the measured surface area before treatment. In other embodiments, the high surface area nanotubes have a measured surface area that is about 2 times, about 3 times, about 4 times, about 5 times, about 7 times, about 10 times, or about 15 times greater than the measured surface area before treatment.

[0029] In certain embodiments, the high surface area carbon nanotubes are about 300 m 2 / g, approx. 500m 2 / g, approx. 700m 2 / g, approx. 1000m 2 / g, approx. 1500m 2 / g, approx. 2000m 2 / g, approx. 2500m 2 / g, approx. 3000m 2 / g, approx. 4000m 2 / g, approx. 5000m 2 / g, approx. 7000m2 / g or approximately 10,000m 2 / g. In other embodiments, the high surface area carbon nanotubes have a surface area of ​​about 500 m 2 / g, approx. 700m 2 / g, approx. 1000m 2 / g, approx. 1500m 2 / g, approx. 2000m 2 / g, approx. 2500m 2 / g, approx. 3000m 2 / g, approx. 4000m 2 / g, approx. 5000m 2 / g, approx. 7000m 2 / g or approximately 10,000m 2 / g.

[0030] As-prepared carbon nanotubes using metal catalysts such as iron, aluminum, or cobalt can retain significant amounts of catalyst bound or encapsulated within the carbon nanotube structure, on the order of 5 weight percent or more. These residual metals can be detrimental in applications such as electronics through accelerated corrosion or can inhibit the vulcanization process during curing of elastomer composites. Furthermore, these divalent or polyvalent metal ions can bind with carboxylic acid groups on the carbon nanotubes and inhibit the release and / or dispersion process. In some embodiments, the oxidized carbon nanotubes have residual metal concentrations of less than about 10,000 parts per million ppm, less than about 5,000 ppm, less than about 3,000 ppm, or less than about 1,000 ppm, or are substantially free of residual metals. Metals can be determined using energy dispersive X-ray analysis or thermogravimetry, as appropriate.

[0031] Bosnyak et al., in various patent applications (e.g., U.S. Patent Application Publication No. 2012-0183770 and U.S. Patent Application Publication No. 2011-0294013), have produced discrete carbon nanotubes through the careful and nearly simultaneous use of oxidation and shear forces, thereby oxidizing both the interior and exterior surfaces of the nanotubes, typically to approximately equal oxidation levels on the interior and exterior surfaces, resulting in individual or discrete tubes.

[0032] In many embodiments, the present invention differs from the earlier applications and disclosures of Bosnyak et al. The present invention describes compositions of high surface area carbon nanotubes with targeted or selective oxidation levels and / or contents on the exterior and / or interior of the tube layers. Such novel carbon nanotubes may have little or no oxidation on the interior tube surface, or may have different amounts and / or types of oxidation between the interior and exterior surfaces of the tube. These novel nanotubes are useful in numerous applications, including binder materials, electrolyte materials, separator film materials and / or compositions for energy storage devices for improved mechanical, electrical, and thermal properties.

[0033] One embodiment of the present invention is a composition comprising a plurality of high surface area carbon nanotubes, the high surface area carbon nanotubes having inner and outer surfaces, each surface having an inner surface oxidized species content and an outer surface oxidized species content, the inner surface oxidized species content differing from the outer surface oxidized species content by at least 20%, preferably by as much as 100%, and the inner surface oxidized species content being less than the outer surface oxidized species content.

[0034] The interior surface oxidized species content can be up to 3 weight percent based on the weight of the carbon nanotube, preferably from about 0.01 to about 3 weight percent based on the weight of the carbon nanotube, more preferably from about 0.01 to about 2, and most preferably from about 0.01 to about 1. A particularly preferred interior surface oxidized species content is from zero to about 0.01 weight percent based on the weight of the carbon nanotube.

[0035] The outer surface oxidized species content can be from about 1 to about 6 weight percent based on the weight of the carbon nanotubes, preferably from about 1 to about 4, and more preferably from about 1 to about 2 weight percent based on the weight of the carbon nanotubes, as determined by comparing the outer oxidized species content of a given plurality of nanotubes to the total weight of the plurality of nanotubes.

[0036] The combined inner and outer surface oxidized species content can be from about 1 to about 9 weight percent based on the weight of the carbon nanotubes.

[0037] Another embodiment of the present invention is a composition comprising a plurality of high surface area carbon nanotubes, the high surface area carbon nanotubes having inner and outer surfaces, each surface having an inner surface oxidized species content and an outer surface oxidized species content, the inner surface oxidized species content being less than about 0.01 to about 1 percent by weight of the carbon nanotubes, and the outer surface oxidized species content being greater than about 1 to about 3 percent by weight of the carbon nanotubes.

[0038] In one embodiment, the invention is a composition comprising a plurality of high surface area carbon nanotubes, at least a portion of which are open-terminated, the composition comprising a binder material, an electrolyte material, a separator film, or a composite for an energy storage and collection device.

[0039] In another embodiment, the composition comprises a plurality of high surface area carbon nanotubes, at least a portion of which are open-ended and ionically conductive. The composition may further comprise at least one polymer. The polymer is selected from the group consisting of vinyl polymers, preferably poly(styrene-butadiene), partially or fully hydrogenated poly(styrene-butadiene) including copolymers, functionalized poly(styrene-butadiene) copolymers such as carboxylated poly(styrene-butadiene), poly(styrene-isoprene), poly(methacrylic acid), poly(acrylic acid), poly(vinyl alcohol) and poly(vinyl acetate), fluorinated polymers, preferably poly(vinylidine difluoride) and poly(vinylidene difluoride) copolymers, conductive polymers, preferably poly(acetylene), poly(phenylene), poly(pyrrole) and poly(acrylonitrile), polymers derived from natural sources, preferably alginates, polysaccharides, lignosulfonates and cellulose-based materials, polyethers, polyolefins, polyesters, polyurethanes, polyamides, homopolymers, graft, block or random copolymers or terpolymers, and copolymers and mixtures thereof. Other polymers that can be employed include, for example, carboxymethylcellulose or its salts, such as the alkali metal or alkaline earth metal salts, and particularly the sodium salt; cellulose-based polymers; hydrophilic polymers with an aqueous solubility greater than 1% w / v; polystyrene sulfonic acid or its salts, such as the alkali metal or alkaline earth metal salts, and particularly the sodium salt. Hydrophilic polymers may be suitable in some embodiments.

[0040] In yet another embodiment of the present invention, the plurality of high surface area carbon nanotubes are further functionalized, preferably with functional groups comprising molecules with a mass greater than 50 g / mol, more preferably with functional groups comprising carboxylate, hydroxyl, ester, ether or amide moieties, or mixtures thereof.

[0041] Further embodiments of the present invention comprising a plurality of high surface area carbon nanotubes further comprise at least one dispersing aid.

[0042] In yet a further embodiment of the present invention, the plurality of carbon nanotubes further comprise additional inorganic structures comprising an element from Groups 2-14 of the Periodic Table of the Elements. These inorganic structures may be in the form of particles, layers, or continuous media. Suitable inorganic structures include, but are not limited to, electrically conductive inorganic structures such as silver or copper, magnetic inorganic structures such as, but not limited to, iron oxide, and low melting point inorganic structures such as, but not limited to, indium-tin alloys.

[0043] Another embodiment of the invention comprises a plurality of carbon nanotubes, wherein the composition has a flexural strength that is at least about 10 percent greater than a comparative composition made without the plurality of high surface area carbon nanotubes.

[0044] Yet another embodiment of the present invention is a binder, electrolyte, or separator film composition comprising a plurality of high surface area carbon nanotubes, with some of the carbon nanotubes being open-ended and ionically conductive. In some embodiments, the composition further comprises other carbon structures. The other carbon structures may comprise a component selected from the group consisting of carbon black, graphite, graphene, graphene oxide, fullerenes, and mixtures thereof. Preferably, the graphene or graphene oxide has at least some of the high surface area carbon nanotubes interspersed between platelets of graphene or graphene oxide.

[0045] Yet a further embodiment of the present invention is a binder material having a molecular weight of about 1 billion (1×10 9 ) ohm-m or less, and the electrolyte material has an impedance of about 10 million (1×10 7 ) A composition comprising a plurality of high surface area carbon nanotubes having a charge transfer resistance of ohm-m or less.

[0046] Another embodiment of the present invention comprises an electrolyte or separator film composition comprising a plurality of high surface area carbon nanotubes, wherein the carbon nanotubes are aligned. The alignment can be achieved by manufacturing techniques such as sheet, microlayer, microlayer with perpendicular film alignment, film, molding, extrusion, or spinning manufacturing methods. Orientation can also be achieved through post-manufacturing methods such as tentering, uniaxial stretching, biaxial stretching, and thermoforming. Orientation can also be introduced by 3-D printing techniques. The aligned carbon nanotubes of the present invention can be extracted from oriented fibers or sheets containing aligned carbon nanotubes by removal of the matrix material, including, but not limited to, the use of a liquid solvent to dissolve a polymer matrix or an auxiliary to dissolve an inorganic matrix, or by chemically degrading the matrix.

[0047] A further embodiment of the present invention is a composition comprising a plurality of high surface area carbon nanotubes, wherein the open-ended tube portions can comprise an electrolyte. For electrolytes comprising a polymer, the polymer preferably has a polymer molecular weight of less than 10,000 daltons, allowing the polymer to penetrate into the tubes. The electrolyte can comprise a liquid.

[0048] Additional embodiments of the invention include compositions comprising a plurality of high surface area carbon nanotubes, at least some of which are open-ended. The disclosed high surface area nanotubes include bundles of increased length and diameter, with at least about 5% of the nanotubes having a portion of their outer surface exposed to the surrounding environment. Such high surface area nanotubes include defibrillated bundles. The bundles may have an average length of at least about 400 nm, 800 nm, 1 μm, 10 μm, 50 μm, 100 μm, 500 μm, 1000 μm, 1250 μm, 1400 μm, 1500 μm, 1600 μm, 1800 μm, 2000 μm, 3000 μm, or 5000 μm. Such bundles can have diameters of about 1 μm, about 3 μm, about 5 μm, about 7 μm, about 8 μm, about 9 μm, about 10 μm, or about 12 μm. In preferred embodiments, the high surface area carbon nanotubes are bundles of single-walled nanotubes with individual aspect ratios of at least about 50, at least about 100, at least about 300, at least about 500, at least about 700, at least about 900, at least about 1000, at least about 1200, at least about 1500, or at least about 2000.

[0049] In statistics, a bimodal distribution is a continuous probability distribution with two distinct modes. These appear as distinct peaks (maxima) in a probability density function. More generally, a bimodal distribution is a continuous probability distribution with more than two modes. High surface area carbon nanotubes can have unimodal, bimodal, or bimodal distributions of diameters and / or lengths for both the individual nanotubes that make up the high surface area bundles and for the high surface area bundles themselves. These compositions are useful in the binders and electrolytes of the present invention.

[0050] In yet another embodiment, the present invention provides an electrode paste, preferably an anode paste, for a lead-acid battery, comprising high-surface-area carbon nanotubes having an average length and / or high-surface-area bundle length of at least about 1 μm, about 5 μm, about 10 μm, about 50 μm, about 100 μm, about 500 μm, about 1000 μm, about 1250 μm, about 1400 μm, or about 1500 μm. The embodiment further comprises a dispersing agent, such as, but not limited to, polyvinyl alcohol, water, lead oxide, and / or sulfuric acid. Preferably, the carbon nanotubes, dispersing agent, and water form a dispersion, which is then contacted with lead oxide and subsequently with sulfuric acid to form the electrode paste. Other suitable solvents include renewable solvents, such as, for example, silane (dihydrolevoglucosenone), or solvents miscible with, for example, deionized water.

[0051] Another embodiment of the present invention is a composition comprising high surface area carbon nanotubes coated with water, oil, wax, nitric acid, or sulfuric acid, which reduces and / or prevents the formation of van der Waals, electric, or electrostatic forces between the carbon nanotubes, thereby preventing the high surface area carbon nanotubes from agglomerating into tight bundles, thereby reducing the exposed surface area of ​​the carbon nanotubes (CNTs).

[0052] In some embodiments, the composition may comprise as much as 99% by weight of the composite and as little as about 0.025% by weight of carbon nanotubes or as little as about 1% by weight of carbon nanotubes. In other embodiments, the composition may comprise as much as 2% by weight of many CNTs, as much as 3% by weight of many CNTs, as much as 5% by weight of many CNTs, as much as 7% by weight of many CNTs, as much as 10% by weight of many CNTs, as much as 15% by weight of many CNTs, or as much as 25% by weight of many CNTs. Removal of water or other coating materials from the composition by drying may result in the formation of anhydride, van der Waals, electrostatic, or other bonds between the carbon nanotubes. The formation of these bonds may result in the re-aggregation and termination of the CNTs into high-surface-area carbon nanotubes. Surprisingly, the use of surfactants may not be required to form the disclosed compositions, as little or no surfactant is included within the compositions. This allows for the incorporation of high-surface-area carbon nanotubes into a matrix without the use of surfactants, which may reduce the connectivity or cross-linking of the matrix or inhibit the desired mechanical properties of the matrix.

[0053] The high surface area carbon nanotubes of any of the above composition embodiments preferably comprise a plurality of open-ended tubes, more preferably a plurality of open-ended tubes. Particularly preferred are the high surface area carbon nanotubes of any of the above composition embodiments, wherein the difference between the oxidation of the inner and outer surfaces is at least about 0.2 weight percent.

[0054] The compositions described herein can be used as ion transporters. Various species or classes of compounds / drugs / chemicals that exhibit this ion transport effect can be used, including ionic compounds, some non-ionic compounds, hydrophobic compounds, or hydrophilic compounds.

[0055] The novel carbon nanotubes disclosed herein are also useful for groundwater remediation.

[0056] Compositions comprising the novel targeted oxidized high surface area carbon nanotubes can also be used as components in or as sensors.

[0057] The compositions disclosed herein can also be used as components in or as drug delivery or controlled release formulations.

[0058] The presently disclosed compositions can be used as structural scaffolds for catalysts. As discussed, catalysts, enzymes, proteins, peptides, or other small or large molecules can be attached to the exterior of the disclosed carbon nanotubes. The disclosed nanotube scaffolds can be useful for positioning attached catalysts within a matrix, positioning multiple catalytic proteins or molecules relative to each other.

[0059] Magnetic particles can be bound or attached to the carbon nanotubes disclosed herein. The bound magnetic particles can be used to influence the orientation, location, or position of the carbon nanotubes to which they are attached. By applying a magnetic field to carbon nanotubes bound to magnetic particles, the carbon nanotubes can be moved to a specific location. The magnetic field can be generated by a natural magnet or an electromagnetic device, including at least an MRI, fMRI, or pulsed electromagnetic field generator. Furthermore, a single magnetic field generator can be utilized, or multiple magnetic field generators can be used. In some embodiments, an array of EMF generators can be used to move CNTs bound to magnetic particles and / or vibrate, rotate, oscillate, or direct such CNTs from one location to another.

[0060] More than one species of magnetic particle can be attached to a single carbon nanotube. In some embodiments, different species of magnetic particles may behave differently in the same magnetic field, providing increased versatility for influencing the behavior of a carbon nanotube attached to more than one species of magnetic particle.

[0061] The magnetic particles bound to the carbon nanotubes may comprise about 0.001 weight percent of the carbon nanotubes, about 0.01 weight percent of the carbon nanotubes, about 0.1 weight percent of the carbon nanotubes, about 1 weight percent of the carbon nanotubes, about 10 weight percent of the carbon nanotubes, about 50 weight percent of the carbon nanotubes, or about 90 weight percent of the carbon nanotubes.

[0062] Carbon nanotubes bound to magnetic particles may further include payload molecules, as described above, or may have peptides, small molecules, nucleic acids, or other drugs or molecules attached to their exterior. These combinations may allow the nanotubes, with their associated payloads or substantially non-magnetically attached molecules, to be directed to specific locations where the attached molecules' payload molecules may be desired. In this way, targeted molecules can be delivered to specific locations using controlled magnetic fields.

[0063] In some embodiments, magnetic fields can be used to bend or deform carbon nanotubes, or carbon nanotube networks, matrices, or scaffolds. When open-ended payload carrying nanotubes are bent or deformed as described, this can increase the rate at which internal payload molecules can enter the surrounding environment, thereby enabling controlled, targeted, and / or timed sustained release of the payload molecules. Similarly, the described bending of a carbon nanotube network can increase the rate at which payload molecules can be loaded inside the open-ended nanotubes, or allow molecules to reside outside any particular nanotube while being encapsulated within the interior space of the nanotube network itself.

[0064] Batteries containing the compositions disclosed herein are also useful. Such batteries include lithium, nickel-cadmium, or lead-acid types.

[0065] Formulations comprising the compositions disclosed herein may further comprise molecules comprising epoxy moieties, urethane moieties, ether moieties, amide moieties, alkane moieties, or vinyl moieties. The molecules may be rigid, elastomeric, or fluid at room temperature. Such formulations may be in the form of a dispersion. The formulations may also comprise nanoplate structures.

[0066] The composition may further comprise at least one hydrophobic material in contact with at least one interior surface.

[0067] The present invention relates to a composition comprising a plurality of high surface area carbon nanotubes and a plasticizer, wherein the high surface area carbon nanotubes are functionalized at their outermost surfaces with oxygen species. The high surface area carbon nanotubes have an inner surface and an outer surface, each surface having an inner surface and an outer surface oxidized species content, the inner surface oxidized species content comprising from about 0.01 to less than about 1 percent by weight of the carbon nanotubes, and the outer surface oxidized species content comprising from about 1 to greater than about 3 percent by weight of the carbon nanotubes. The oxygen species may comprise a carboxylic acid, a phenol, or a combination thereof.

[0068] The composition may further comprise a plasticizer selected from the group consisting of dicarboxylic / tricarboxylic esters, trimellitates, adipates, sebacates, maleates, glycols and polyethers, polymeric plasticizers, bio-based plasticizers, and mixtures thereof. The composition may comprise a plasticizer comprising a process oil selected from the group consisting of naphthenic oils, paraffinic oils, paraben oils, aromatic oils, vegetable oils, seed oils, and mixtures thereof.

[0069] The composition may further comprise a plasticizer selected from the group of water-insoluble solvents consisting of, but not limited to, xylene, pentane, methyl ethyl ketone, hexane, heptane, ethyl acetate, ether, dichloromethane, dichloroethane, cyclohexane, chloroform, carbon tetrachloride, butyl butanol acetate, benzene, cresol, or mixtures thereof.

[0070] In yet another embodiment, the composition further comprises an inorganic filler selected from the group consisting of silica, nanoclay, carbon black, graphene, glass fiber, and mixtures thereof.

[0071] In other embodiments, the composition is in the form of free-flowing particles.

[0072] In another embodiment, the composition comprises a plurality of high surface area carbon nanotubes and a plasticizer, wherein the high surface area carbon nanotubes comprise from about 10 weight percent to about 90 weight percent, preferably from 10 weight percent to 40 weight percent, and most preferably from 10 to 20 weight percent.

[0073] Another embodiment is a composition of high surface area carbon nanotubes in a plasticizer further mixed with at least one rubber, which may be natural or synthetic rubber, and is preferably selected from the group consisting of natural rubber, polyisobutylene, polybutadiene and styrene-butadiene rubber, butyl rubber, polyisoprene, styrene-isoprene rubber, styrene-isoprene rubber, ethylene, propylene diene rubber, silicone, polyurethane, polyester-polyether, hydrogenated and non-hydrogenated nitrile rubber, halogen-modified elastomers, fluoro-elastomers, and combinations thereof.

[0074] Another embodiment is a composition of high surface area carbon nanotubes in a plasticizer further mixed with at least one thermoplastic polymer or at least one thermoplastic elastomer. The thermoplastic may be selected from, but is not limited to, acrylic, polyamide, polyethylene, polystyrene, polycarbonate, methacrylic, phenolic, polypropylene, polyolefins such as polyolefin plastomers and elastomers, EPDM, and copolymers of ethylene, propylene, and functional monomers.

[0075] Yet another embodiment is a composition of high surface area carbon nanotubes in a plasticizer further mixed with at least one thermosetting polymer, preferably an epoxy or polyurethane. The thermosetting polymer may be selected from, but is not limited to, an epoxy resin, a polyurethane resin, or an unsaturated polyester resin.

[0076] A general process for producing high surface area carbon nanotubes with targeted oxidation Disclosed are embodiments of compositions comprising high surface area carbon nanotubes for improved performance of energy storage devices, including, but not limited to, lithium-ion battery technology. In certain disclosed embodiments, single-walled pouch cells in silicon containing anodes exhibit significant cycle life improvements when carbon nanotubes, such as those produced by OCSiAl, are treated according to the disclosed processes to form high surface area single-walled nanotubes. Other manufacturers of nanotubes that may be suitable for use in the applications described herein include, for example, Southwest Nanotechnologies, Zeonano or Zeon, CNano Technology, Nanocyl, ACS Materials, American Elements, Chasm Technologies, Haoxin Technology, Hanwha Nanotech Group, Hyperion Catalysis, KH Chemical, Klean Commodities, LG Chem, Nano-C, NTP Shenzhen Nanotech Port, Nikkiso, Raymor, Saratoga Energy, SK Global, Solid Carbon Products, Sigma Aldrich, Sun Nanotech, Thomas Swan, TimesNano, Tokyo Chemical Industry, XF Nano, and OCSiAl.

[0077] The following data details both the oxidation treatment of the tubes and the subsequent shear or crushing force treatment. The samples were subjected to 10 6 ~10 8 joule / m 3These carbon nanotubes can be subjected to extreme destructive forces generated by shear (turbulence) and / or cavitation from processing equipment capable of generating energy densities of up to 100 times higher than those encountered in conventional nanotube processing. Equipment meeting these specifications includes, but is not limited to, ultrasonicators, cavitators, mechanical homogenizers, pressure homogenizers, and microfluidizers (Table 3). One such homogenizer is shown in U.S. Pat. No. 756,953, the disclosure of which is incorporated herein by reference. Additional shearing equipment includes, but is not limited to, HAAKE™ mixers, Brabender mixers, Omni mixers, Silverson mixers, Gaullin homogenizers, and / or twin-screw extruders. After shearing, the carbon nanotube bundles are liberated, thereby exposing a greater number of nanotube surfaces and / or a greater portion of the nanotube surface to the surrounding environment. Typically, based on a given starting amount of entangled as-received and as-prepared carbon nanotubes, a plurality of high surface area carbon nanotubes will be produced by this process, preferably at least about 60%, more preferably at least about 75%, most preferably at least about 95%, and as much as 100%, along with a small amount of tubes, generally in tight bundles, and a substantially inaccessible nanotube surface area due to such tight bundles.

[0078] Example 1 - Oxidation of Tuball™ (OCSiAl) Thirty-five grams of >64% nitric acid was heated to 95°C. Fifteen grams of as-received single-walled carbon nanotubes (Tuball™) were added to the acid. The as-received tubes had a tightly bundled tree trunk morphology. The acid and carbon nanotube mixture was mixed while maintaining the solution at approximately 95°C for 5 hours and is designated "oSWCNT82-2." At the end of the reaction period, oSWCNT82-2 was filtered to remove the acid and washed with reverse osmosis (RO) water to a pH of 3-4. The resulting CNTs were approximately 3.6% oxidized and contained approximately 4.4% metal residues.

[0079] Variations on this process were also performed using slightly different parameters as shown in Table 1 below. Samples oxidized by MAO treatment: e.g., 35 g HNO3 (65%) / 15 g Tuball™, oxidation at 95°C. 23.33 g HNO3 (65%) + 10.01 g CNT. T = 95 °C, initial large plume of NO upon addition of CNT. X . [Table 1] The sample was washed to pH 3.6. 25.17g was recovered at 27.1% solids.

[0080] Sample 82-2 34.98g HNO3, 15g Tuball™ [Table 2] Wash to pH 3.75, 37.26g recovered at 27.5% solids

[0081] Sample 82-3 23.3g HNO3, 10g Tuball™ CNT. 5h oxidation = 2.5% Ox, 9.95% residue, 20.2% solids. 31g recovered @ 20.2% solids.

[0082] Example 2 - Shear Treatment of Oxidized and Unoxidized OCSiAl Tubes

[0083] Example 2A - Shear Treatment of Oxidized OCSiAl Tube Sample volume ~1200 mL. Use a 1.5 L stainless steel vessel for rotor / stator (R / S) work. Oxide OCSiAl ~ 0.15% Oxide OCSiAl Source: 82-Final (pH 3.61, 27.1% solids) 1200g x 0.15% = 1.8g dry equivalent = 6.64g wet cake. 6.65g wet cake was used. Check the viscosity through the rotor-stator R / S as shown below. [Table 2-1] [Table 2-2]

[0084] Optical microscopy measurements, shown in Figure 1, show the progression of the wet cake through eight cycles of rotor shearing in a high shear rate mixer. The R / S performs an initial breakdown of the bundles, which is greatly enhanced by passing through the shear device. The experimental results described throughout are believed to be obtainable using multiple shear devices, including those described in Table 3, as well as a HAAKE™ mixer, a Brabender mixer, an Omni mixer, a Silverson mixer, a Gaullin homogenizer, a twin-screw extruder, a Notzch Omcga® Economic Dispersionizer, and / or a Sonolator by Sonic Corp. [Table 3]

[0085] Example 2B - Shear Treatment of Unmodified OCSiAl Tube 600mL solids @ 0.4% = 2.4g OCSiAl. OCSiAl source: Tuball™ single-walled carbon nanotubes. Batch number 01RW01.N1.257, production date: December 20, 2016. [Table 3-1] [Table 3-2]

[0086] Example 2C - Oxidation of OCSiAl / MA14 by Shear Device An 80 / 20 ratio of MA14 / OCSiAl oxide was prepared to see if an early stage could be produced by taking a wet cake of both of these components and passing it through a rotor / stator followed by a shearing procedure. Thus, the OCSiAl oxide is simultaneously decomposed while converting the o-CNTs into Molecular Rebar® to further improve lithium-ion battery performance. 600 mL sample size, 1.5% MR. Molecular Rebar® source MA-14 (12.95% solids). Oxide OCSiAl ("82-Final", solid content 27.1%) 600 x 0.015 = 9g / 0.1295 = 69.498g of MA14. 0.8g MA-14 / 0.02g OCSiAl oxide = 9g MA-14 / 0.225g OCSiAl oxide. 0.225g of oxide OCSiAl = 0.225 / 0.271 = 0.83g of 82-final. [Table 3-3] [Table 3-4]

[0087] Example 3 - Performance in Li-ion battery pouch cells The oxidized and unoxidized OCSiAl cells are formed into a Li-ion battery monolayer pouch cell - the cell details are as follows: NCM523 Cathode / Anode Anode Details: 20% SiOx + 71% graphite + 1% CMC + 1.5% SBR + 1% C65 + XP as shown in Figure 2. Loading: ~10mg / cm 2 Cathode loading: 4.2mAh / cm 2 Separator: Glass fiber - Whatmann GF / F Housing: 40mAh single-layer pouch

[0088] FIG. 2 shows a comparison of the effects of oxidation and treatment (shear, sonication, etc.) on the control versus the OCSiAl Tuball™ Batt product (PVP dispersion).

[0089] The control (no carbon nanotubes) exhibits a very poor cycle life. The end of cycle life in the industry is generally considered the point at which capacity has weakened to 80% of its original capacity, i.e., the cell can now only be charged to 80% of its initial capacity and will no longer accept further charges. The reasons for this are many, but the primary cause is not the silicon-based anode; it is the loss of electrical connectivity due to cracking of the silicon particles, which swell upon charging (loading lithium from the cathode) and discharging (Li migrates back to the cathode). When they swell, they push the graphite particles closer together, but they do not migrate back upon de-swelling, resulting in electrically isolated gaps and particles.

[0090] Subjecting OCSiAl to a shearing treatment clearly improves the cycle life relative to untreated OCSiAl. Further improvement is achieved with oxidation and shearing. This is due to fibrillation, which can widen the gap, and increased surface area. With fibrillation, there are more connected particles than with non-fibrillation.

[0091] Figure 3 shows optical microscopy measurements (all images are at approximately the same magnification). The electron micrograph in the center shows the "as-received" OCSiAl dry powder. It is ribbons with very little fibrillation and low surface area, i.e., a tree-trunk type structure. In this structure, most of the tube surface area is not exposed because it is protected by the surrounding tubes. The top left image shows the effect of passing a dilute solution (approximately 0.15%) in water through the rotor / stator at 9900 rpm for 10 minutes. Clearly, this treatment has some effect on the breakdown of the ribbons and causes some level of fibrillation, thus increasing the surface area (SA).

[0092] The bottom left image in Figure 3 shows the effect of shearing the material, further increasing fibrillation and therefore the exposed surface area. The top right shows OCSiAl that has been oxidized through shearing, also increasing fibrillation and therefore surface area. Oxidation introduces functionality to the material and significantly reduces the amount of residual metal contamination. The bottom right shows the effect of adding a surfactant to the oxidized sheared material, followed by ultrasonication. Ultrasonication resulted in fibrillation and a further increase in surface area.

[0093] The electron micrographs in Figures 4A and 4B show side-by-side comparisons of oxidized sheared OCSiAl with unoxidized material. Figure 4A shows 2500x magnification, while Figure 4B shows 25000x magnification. Both levels of magnification show significantly more fibrillation in the oxidized versus unoxidized sheared material.

[0094] FIG. 5 shows a comparison of the oxidized OCSiAl dispersion in PPS (polystyrene sulfonic acid) with the dry powder OCSiAl.

[0095] FIG. 6 shows that in some instances it is possible to defibrillate ribbons into single tubes.

[0096] The electron micrograph in Figure 7 shows oxidized carbon nanotubes and O-OCSiAl mixed and sheared together to create an intimate Molecular Rebar® (MR) mixture. This micrograph demonstrates the synergistic effect of the MR of the "tree trunk" Ox-OCSiAl, which is long enough to extend the length of the SiOx particles and to span gaps too large for the MR to bridge, while simultaneously forming a coating on the SiOx particles and intimately interacting with the carbon black. Figure 7 shows the tree trunk coating the entire length of the SiOx particles. Such a length can easily span the gap between the SiOx and graphite. While the MR particles may be too short to accomplish this, as shown in Figure 7, the MR particles coat the surface of the SiOx in a "cage-type" structure. The oxidized OCSiAl structure can have an electroactive material, such as Li, attached to the functional groups. Electroactive materials include, but are not limited to, graphite, lithium cobalt oxide, lithium iron phosphate, and / or lithium manganese oxide.

[0097] Example 4 - Electrical Property Test: Tables 4 and 5 below provide a summary of the readings collected using the parallel plate apparatus. [Table 4] [Table 5] As can be seen from the data in Tables 4 and 5, the oxidized samples exhibit lower resistance.

[0098] Example 5 - BET Surface Area Measurement The BET surface area was measured using the N2BET isotherm according to ASTM D6556-16 and the results are given below. [Table 6]

[0099] Example 6 - High purity OCSiAl Tuball SWCNTs through a shearing device The high-purity OCSiAl SWCNTs had a 1.3% oxidation level and 0.6% residual (metallic impurities) as determined by TGA analysis, compared to the as-received low-purity OCSiAl SWCNTs, which had a 0.6% oxidation level and 17.7% residual (metallic impurities). A 2.8 g sample of high-purity OCSiAl SWCNTs was diluted with deionized water to a total of 650 g (0.43% solids) and processed using a rotor / stator for 10 minutes. The material was then subjected to a shear force of 2000 psi for a single pass through the shearing device. The applied pressure was increased to 8000 psi and passed through the shearing device eight more times. Optical images of the sheared and post-rotator treatment samples are shown in Figure 8, which shows the high-purity OCSiAl SWCNTs before shearing, and Figure 9, which shows the high-purity OCSiAl SWCNTs after extensive shearing. Both Figures 8 and 9 are at 112.5x magnification.

[0100] Example 7 - Oxidation of SWCNTs in High Purity OCSiAl Tuballs A total of 15 grams of high-purity grade OCSiAl SWCNTs were added to 35 grams of 65% aqueous nitric acid solution and heated at 90°C for 5 hours in a round-bottom flask connected to a condenser cooled with deionized water. At 30 minutes and every hour, samples were taken from the flask, washed with deionized water to pH 3.9, and dried. The samples were then analyzed by TGA for oxidation level and residue (metallic impurities). The results are given in the table below. Table of TGA results for SWCNTs of high purity OCSiAl Tuball after oxidation [Table 7]

[0101] Following the same procedure, a series of different SWCNTs were oxidized, and the oxidation level and residue were measured by the same TGA procedure. The starting material before oxidation was also evaluated. The results of these experiments are given in the table below. Oxidation and residue levels of various SWCNTs before and after oxidation treatment [Table 8]

[0102] Example 8 - Aqueous Dispersion of High Purity OCSiAl Tuball SWCNTs and Sodium Carboxymethylcellulose A total of 2 grams of high-purity OCSiAl Tuball SWCNTs were diluted with deionized water to 0.4% solids. The mixture was run through a rotor / stator at 10,000 rpm for 5 minutes. The sample was then diluted to 0.2% solids and sheared twice through the shearer at 8,500-9,000 psi. At that point, 105 grams of Walocel CRT 30 PA sodium carboxymethylcellulose (CMC) at 3.79% solids in deionized water was added. The mixture was then run through the shearer eight more times, maintaining the mixture at a temperature below 40°C. Optical micrographs of the rotor / stator SWCNTs compared to the final dispersion are shown in Figures 10 and 11. Figure 10 shows the high-purity OCSiAl Tuball SWCNTs before shearing, and Figure 11 shows the high-purity OCSiAl Tuball SWCNTs after shearing and CMC addition. Both images are at 11.25x magnification. The lack of any obvious particles in the optical image after dispersion means that the fibrils are less than 1 millimeter in size (scale bar is 1 millimeter).

[0103] Example 9 - Aqueous Dispersion of Oxidized Zeonano SWCNTs and Sodium Carboxymethylcellulose An aqueous mixture of 0.77% oxidized Zeonano SWCNTs in deionized water was processed using a rotor / stator at 10,000 rpm for 25 minutes. The oxidation was as described above. The mixture was maintained at 27–31°C throughout the process. The material was diluted to 0.17% solids. The mixture was passed through the shearer five times. The first pass was sheared at 6,000 psi, and subsequent passes were sheared at 8,000–9,000 psi. The pH was adjusted to pH 7 after the fourth pass. After the fifth pass, Walocel CRT 30 PA sodium carboxymethylcellulose (CMC) was added at a mass ratio of 1 part CMC to 1 part SWCNT. The mixture was then passed through the shearer 11 more times at 8,000–9,000 psi, while maintaining the mixture temperature below 40°C. An additional surfactant was added at a ratio of 2.25 parts CMC to 1 part SWCNT. For the 16th pass, additional surfactant was added at a ratio of 2.75 parts CMC to 1 part SWCNT. Figure 12 shows the oxidized Zeonano SWCNTs before shearing, and Figure 13 shows it after the shearing device and CMC addition (11.25x magnification).

[0104] Example 10 - Aqueous Dispersion of Unoxidized Zeonano SWCNTs and Sodium Carboxymethylcellulose A total of 2 grams of as-received unoxidized Zeonano SWCNTs were mixed with 698 grams of deionized water and processed using a rotor / stator at 10,000 rpm for 20 minutes. An additional 195 grams of deionized water was then added. The mixture was passed through the shearer six times at 8,000-9,000 psi. A total of 105.8 grams of Walocel CRT 30 PA sodium carboxymethylcellulose solution at 3.78% solids was then added to the mixture. The mixture was then passed through the shearer an additional 14 times, while maintaining the mixture temperature below 40°C. Figure 14 shows the unoxidized Zeonano SWCNTs after five passes through the shearer (35x magnification), and Figure 15 shows the results after 20 passes through the shearer and the addition of CMC (140x magnification).

[0105] Example 11 - Dispersion of High Purity OCSiAl in Silene High-purity OCSiAl was added to silane at a concentration of 0.3% and sonicated in an ultrasonic bath for 150 minutes to produce a dispersion of SWCNTs in silane. Figure 16 shows the SWCNTs in high-purity OCSiAl after 30 minutes of sonication (magnification 169x). Figure 17 shows the SWCNTs in high-purity OCSiAl after 150 minutes of sonication (magnification 169x).

[0106] Embodiment 1. A composition for use as a binder material, electrolyte material, or separator film material in an energy storage or collection device, the composition comprising a plurality of high surface area carbon nanotubes, at least a portion of the high surface area carbon nanotubes being open-terminated.

[0107] 2. The composition of embodiment 1, wherein said plurality of high surface area carbon nanotubes are single-walled nanotubes.

[0108] 3. The composition of embodiment 1, further comprising at least one polymer.

[0109] 4. The composition of embodiment 1, wherein said carbon nanotubes are further functionalized.

[0110] 5. The composition of embodiment 1, further comprising at least one dispersing aid.

[0111] 6. The composition of embodiment 3, wherein the polymer is selected from the group consisting of vinyl polymers, poly(styrene-butadiene), partially or fully hydrogenated poly(styrene-butadiene) including copolymers, functionalized poly(styrene-butadiene) copolymers such as carboxylated poly(styrene-butadiene), poly(styrene-isoprene), poly(methacrylic acid), poly(methyl methacrylate), poly(acrylic acid), poly(vinyl alcohol), poly(vinyl acetate), fluorinated polymers, polyvinylpyrrolidone, conductive polymers, polymers derived from natural sources, polyethers, polyesters, polyurethanes, and polyamides, and homopolymers, graft, block, or random copolymers or terpolymers, and mixtures thereof.

[0112] 7. The composition of embodiment 2, further comprising an additional inorganic structure comprising an element from groups 2-14 of the periodic table of the elements.

[0113] 8. The binder composition of embodiment 2, further comprising a carbon structure selected from the group consisting of carbon black, graphite, graphene, graphene oxide, fullerenes, and mixtures thereof.

[0114] 9. The composition of embodiment 1, further comprising at least a portion of discrete carbon nanotubes.

[0115] 10. The composition of embodiment 1, wherein the binder material has an impedance of about 1 billion ohm-m or less.

[0116] 11. The composition of embodiment 1, wherein the electrolyte material or separator film has a charge transfer resistance of about 10 million ohm-m or less.

[0117] 12. An electrode paste for a lead-acid battery comprising high surface area carbon nanotubes having an average length of about 1 μm to about 1500 μm and a polymeric surfactant comprising polyvinyl alcohol.

[0118] 13. A composition comprising a plurality of high surface area carbon nanotubes, the carbon nanotubes having inner and outer surfaces, the improvement comprising the inner surface having an inner surface oxidized species content and the outer surface having an outer surface oxidized species content, the inner surface oxidized species content differing from the outer surface oxidized species content by at least 20% and by as much as 100%.

[0119] 14. The improvement of embodiment 13, wherein the inner surface oxidized species content is less than the outer surface oxidized species content.

[0120] 15. The improvement of embodiment 13, wherein the outer surface oxidized species content comprises about 1 to about 6 weight percent based on the weight of the carbon nanotubes.

[0121] 16. The improvement of embodiment 13, wherein the oxygen species is selected from the group consisting of carboxylic acids, phenols, aldehydes, ketones, ether linkages, and combinations thereof.

[0122] 17. A composition for use as a binder material, electrolyte material or separator film material in an energy storage or collection device, comprising a plurality of high surface area carbon nanotube bundles, the plurality of high surface area bundles comprising individual carbon nanotubes, the individual nanotubes having an aspect ratio of about 700 to about 1500, and the average length of the high surface area carbon nanotube bundles being about 800 microns to about 1500 microns.

[0123] 18. The composition of embodiment 17, wherein the nanotubes are oxidized.

[0124] 19. The composition of embodiment 18, wherein the carbon nanotubes are further functionalized. The present invention includes the following aspects. Section 1. 1. A composition for use as a binder material, an electrolyte material, or a separator film material in an energy storage or collection device, comprising: a plurality of high surface area carbon nanotubes; at least one dispersing aid; Including, at least a portion of the high surface area carbon nanotubes are open-terminated; the plurality of high surface area nanotubes are oxidized single-walled nanotubes; The BET surfaces of the plurality of high surface area nanotubes are 550 mm by ASTM D6556-16. 2 / g~1500m 2 / g, the carbon nanotubes are further functionalized; The composition, wherein the energy storage or collection device is a lithium ion battery. Section 2. Item 1. The composition according to item 1, further comprising at least one polymer. Section 3. Item 3. The composition according to item 2, wherein the polymer is selected from the group consisting of vinyl polymers, poly(styrene-butadiene), partially or fully hydrogenated poly(styrene-butadiene) including copolymers, functionalized poly(styrene-butadiene) copolymers such as carboxylated poly(styrene-butadiene), poly(styrene-isoprene), poly(methacrylic acid), poly(methyl methacrylate), poly(acrylic acid), poly(vinyl alcohol), poly(vinyl acetate), fluorinated polymers, polyvinylpyrrolidone, conductive polymers, polymers derived from natural sources, polyethers, polyesters, polyurethanes, and polyamides, and homopolymers, graft, block, or random copolymers or terpolymers, and copolymers and mixtures thereof. Section 4. Item 1. The composition according to item 1, further comprising a carbon structure selected from the group consisting of carbon black, graphite, graphene, graphene oxide, fullerene, and mixtures thereof. Section 5. Item 1. The composition according to item 1, further comprising at least a portion of discrete carbon nanotubes. Section 6. Item 1. The composition according to item 1, further comprising a cellulose-based polymer or a salt thereof. Section 7. Item 1. The composition according to item 1, further comprising a polystyrene sulfonate or a salt thereof. Section 8. Item 1. The composition according to item 1, further comprising a hydrophilic polymer. Section 9. Item 10. The composition of claim 1, wherein the plurality of oxidized high surface area carbon nanotubes have an oxidation level of 0.01 to 2 weight percent. Section 10. Item 10. The composition of claim 1, wherein the plurality of oxidized high surface area carbon nanotubes have an oxidation level of 2 to 5 weight percent. Section 11. Item 10. The composition of claim 1, wherein the plurality of high surface area carbon nanotubes have less than about 25 weight percent impurity residue.

Claims

1. 1. A composition for use as a binder material, an electrolyte material, or a separator film material in an energy storage or collection device, comprising: a plurality of high surface area carbon nanotubes; at least one dispersing aid; Including, at least a portion of the high surface area carbon nanotubes are open-terminated; the plurality of high surface area carbon nanotubes are single-walled carbon nanotubes; The plurality of high surface area carbon nanotubes have a BET specific surface area of ​​550 m according to ASTM D6556-16. 2 / g~1500m 2 / g, the energy storage or collection device is a lithium ion battery; and The composition, wherein the plurality of high surface area carbon nanotubes have a bimodal or multimodal distribution of diameters, lengths, or both.

2. The composition of claim 1 further comprising at least one polymer.

3. 3. The composition of claim 2, wherein the polymer is selected from the group consisting of vinyl polymers, poly(styrene-butadiene), partially or fully hydrogenated poly(styrene-butadiene) including copolymers, functionalized poly(styrene-butadiene) copolymers such as carboxylated poly(styrene-butadiene), poly(styrene-isoprene), poly(methacrylic acid), poly(methyl methacrylate), poly(acrylic acid), poly(vinyl alcohol), poly(vinyl acetate), fluorinated polymers, polyvinylpyrrolidone, conductive polymers, polymers derived from natural sources, polyethers, polyesters, polyurethanes, and polyamides, as well as homopolymers, graft, block, or random copolymers or terpolymers, and copolymers and mixtures thereof.

4. 10. The composition of claim 1, further comprising a carbon structure selected from the group consisting of carbon black, graphite, graphene, graphene oxide, fullerenes, and mixtures thereof.

5. 10. The composition of claim 1, further comprising at least a portion of discrete carbon nanotubes.

6. The composition of claim 1 further comprising a cellulose-based polymer or a salt thereof.

7. The composition of claim 1 further comprising polystyrene sulfonic acid or a salt thereof.

8. The composition of claim 1 further comprising a hydrophilic polymer.

9. 10. The composition of claim 1, wherein at least a portion of the plurality of high surface area carbon nanotubes comprises high surface area single-walled carbon nanotubes having an oxidation level of 0.01 to 2 weight percent as measured by thermogravimetry (TGA).

10. 10. The composition of claim 1, wherein at least a portion of the plurality of high surface area carbon nanotubes comprises high surface area single-walled carbon nanotubes having an oxidation level of 2 to 5 weight percent as measured by thermogravimetry (TGA).

11. 10. The composition of claim 1, wherein the plurality of high surface area carbon nanotubes has less than about 25 weight percent impurity residue.

Citation Information

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