WO2006137943A2 - Pure-chirality carbon nanotubes and methods - Google Patents

Pure-chirality carbon nanotubes and methods Download PDF

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WO2006137943A2
WO2006137943A2 PCT/US2005/041829 US2005041829W WO2006137943A2 WO 2006137943 A2 WO2006137943 A2 WO 2006137943A2 US 2005041829 W US2005041829 W US 2005041829W WO 2006137943 A2 WO2006137943 A2 WO 2006137943A2
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nanotubes
chirality
swnts
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Stephen R. Wilson
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Luna Innovations Incorporated
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    • DTEXTILES; PAPER
    • D01NATURAL OR MAN-MADE THREADS OR FIBRES; SPINNING
    • D01FCHEMICAL FEATURES IN THE MANUFACTURE OF ARTIFICIAL FILAMENTS, THREADS, FIBRES, BRISTLES OR RIBBONS; APPARATUS SPECIALLY ADAPTED FOR THE MANUFACTURE OF CARBON FILAMENTS
    • D01F9/00Artificial filaments or the like of other substances; Manufacture thereof; Apparatus specially adapted for the manufacture of carbon filaments
    • D01F9/08Artificial filaments or the like of other substances; Manufacture thereof; Apparatus specially adapted for the manufacture of carbon filaments of inorganic material
    • D01F9/12Carbon filaments; Apparatus specially adapted for the manufacture thereof
    • D01F9/127Carbon filaments; Apparatus specially adapted for the manufacture thereof by thermal decomposition of hydrocarbon gases or vapours or other carbon-containing compounds in the form of gas or vapour, e.g. carbon monoxide, alcohols
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B82NANOTECHNOLOGY
    • B82YSPECIFIC USES OR APPLICATIONS OF NANOSTRUCTURES; MEASUREMENT OR ANALYSIS OF NANOSTRUCTURES; MANUFACTURE OR TREATMENT OF NANOSTRUCTURES
    • B82Y10/00Nanotechnology for information processing, storage or transmission, e.g. quantum computing or single electron logic
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B82NANOTECHNOLOGY
    • B82YSPECIFIC USES OR APPLICATIONS OF NANOSTRUCTURES; MEASUREMENT OR ANALYSIS OF NANOSTRUCTURES; MANUFACTURE OR TREATMENT OF NANOSTRUCTURES
    • B82Y30/00Nanotechnology for materials or surface science, e.g. nanocomposites

Definitions

  • This invention relates to pure-chirality carbon nanotubes (PC-SWNT) in industrially relevant quantities, as well as their production and use in solutions and/or dispersions. Additionally, this invention relates to a new composition of carbon nanotubes consisting essentially of pure-chirality carbon nanotubes of substantially one chirality. Also, this invention relates to perfluorocarbon surfactants that can be used for dissolving and dispersing nanotubes in perfluorocarbon solvents.
  • Nanotubes originated with studies of fullerenes (C 6 o), also known as “buckyballs.” Tubular relatives of the buckyballs are so-called single-walled nanotubes (hereinafter "SWNT” or “nanotubes” generally), which can be formed in tubular or cylindrical form. Nanotubes, generally, can conduct electricity better than copper and can be 100 times stronger than steel at 1/6 the weight.
  • SWNT single-walled nanotubes
  • Nanotubes generally, can conduct electricity better than copper and can be 100 times stronger than steel at 1/6 the weight.
  • nanotubes are conventionally formed as nanotube batches consisting of mixtures of different chiralities or different lattice orientations.
  • a milligram sized nanotube batch can include many different chirality nanotubes therein. The properties of each nanotube in the batch can have a different chirality than the other nanotubes in the batch, wherein the electrical conductivity and optical properties, as well as other properties of each nanotube would be based upon the particular chir
  • a bulk nanotube batch product contains a ratio of about two- thirds semi-conductive chirality nanotubes to about one-third metallically conductive ⁇ i.e., highly conductive) chirality nanotubes.
  • the electrical and mechanical properties of each nanotube depends directly on the chirality of each tube, the specific characterization of the chirality of each nanotube, as well as the separation and/or production of batches or bulk product nanotubes with predetermined chiralities are desired.
  • the chirality can be defined by the nomenclature "(n,m)," wherein “n” relates generally to the size of the nanotube, while “m” relates generally to the inclination of twist, also known as helicity.
  • Figure Ia schematic structure for a graphene sheet is shown, wherein nanotubes can be made by folding the sheet along lattice vectors.
  • lattice vectors are shown corresponding (from right to left in Figure Ia) to an armchair (8,8) (see Figure Ib), a zigzag (8,8) (see Figure Ic) and a chiral (10,-2) (see Figure Id) lattice vector.
  • the nanotubes corresponding to the different lattice vectors have different helicities based upon their lattice vectors.
  • Another exemplary graphene sheet is illustrated in Figure 2, wherein the lattice vector is (6,3) and is rolled along the "tube axis" to form a (6,3) nanotube.
  • the nanotubes have metallically conductive or highly electrically conductive properties.
  • I is not zero or any positive integer ⁇ i.e., all other nanotubes)
  • the nanotubes have semi- conductive electrically conductive properties.
  • Nanotube electrical conductivity is a function of the "fundamental gap,” “gap” or “E gap .”
  • the “gap” is defined as the difference between the HOMO (Highest Occupied Molecular Orbital), which is the highest- energy orbital with one or two electrons, and the LUMO (Lowest Unoccupied Molecular Orbital), which is the lowest-energy orbital with no electrons).
  • the size of the gap is determined by small variations of the diameter and bonding angle.
  • semi-conductive chirality hereinafter “semi-conductive” nanotubes can have a gap on the order of 0.5 eV.
  • highly electrically conductive chirality hereinafter “metallic” nanotubes can have a gap on the order of 0.0 eV.
  • the gap can be modeled by the function: d
  • y 0 is the C-C tight bonding overlap energy (2.7 - 0.1 eV)
  • ace is the nearest neighbor C-C distance (0.142 nm)
  • d is the diameter.
  • the conductivity is believed to be a function of the wrapping angle and circumference (n,m). Therefore, since the conductivity can be predetermined based upon the chirality of a nanotube, the isolation of macroscopic quantities of a single (n,m) type or pure-chirality nanotubes can be useful for providing predetermined properties on an extremely small scale.
  • Challenges to pure-chirality nanotube production include: (1) large scale production, and (2) processing issues, such as purification and identification of batch mixed chirality nanotubes into single chirality, or pure chirality nanotubes.
  • a bulk product comprising at least 10,000 nanotubes, wherein the nanotubes comprise at least 50% nanotubes of one (n,m) chirality.
  • a bulk product comprising at least 1 milligram of at least 50% pure- chirality nanotubes, wherein the at least 1 milligram of nanotubes includes more than 10,000 nanotubes.
  • SWNTs pure-chirality single- walled carbon nanotubes
  • PC-SWNTs pure-chirality single-walled carbon nanotubes
  • a method for growing pure-chirality single-walled carbon nanotubes comprising: cutting bulk sample/product of PC-SWNT into suitable lengths to provide PC-SWNT seeds for nanotube growth; adding a metal catalyst to one or both ends of the PC-SWNT seeds; exposing the PC-SWNT seeds and the metal catalyst to a carbon feedstock at a predetermined pressure and a predetermined temperature; and growing PC-SWNTs to form bulk quantities of PC- SWNTs with substantially the same chirality as the PC-SWNT seeds.
  • components for transistors, optical devices, coded- security tagging materials, and/or medical devices and/or applications comprising single-walled carbon nanotubes, wherein the single-walled carbon nanotubes comprise at least 50% nanotubes with the same (n,m) chirality.
  • methods for identifying, characterizing and/or forming nanotubes for example separating and distinguishing between (4,5) SWNTs from (9,10) SWNTs, as well as selecting semi-conductive or metallic SWNTs are provided herein, including one or more of the following:
  • Figures Ia- Id illustrate lattice vectors and their corresponding nanotube types, wherein Figure Ia illustrates lattice vectors corresponding (from right to left) graphene sheets folded along the lattice vectors along an armchair (8,8) lattice vector
  • Figure 2 illustrates an exemplary (n,m) carbon nanotube formed by wrapping a graphene sheet with a defined chirality angle.
  • Figure 3 illustrates electronic properties of a metallic nanotube vs. a semiconducting nanotube.
  • Figure 4 illustrates an exemplary graphene sheet showing (n,m) chirality numbering for exemplary nanotubes.
  • Figure 5 illustrates an exemplary graphene sheet showing pure-chirality
  • FIGS. 6-10 illustrate exemplary molecular structures of pure-chirality
  • Figure 11 illustrates screws representing mixed chirality nanotubes.
  • Figure 12 illustrates a (n,m) chirality map for exemplary HiPCO nanotubes.
  • Figure 13 illustrates a (n,m) chirality map for exemplary CoMoCAT nanotubes.
  • Figure 14 illustrates exemplary nanotube growth from seeded nanotubes with the same chirality.
  • Figure 15 illustrates exemplary fluorescence signatures of: (A) exemplary mixed chirality nanotubes; and (B) exemplary pure-chirality nanotubes.
  • Figure 16 illustrates exemplary dispersion surfactants for dissolving nanotubes in solvents or solutions.
  • PC-SWNT Pure-chirality single-walled nanotubes
  • EMI electromagnetic interference
  • pure-chirality nanotubes include nanotubes with the same (n,m) chirality as primarily or substantially all of the other nanotubes in a bulk product of nanotubes or a plurality of at least 10,000 nanotubes.
  • nanotubes with at least 50%, 90%, or 98% of nanotubes with the same (n,m) chirality as the (n,m) chirality of the remainder of the bulk, as well as nanotubes which are substantially all one, single (n,m) chirality are pure-chirality nanotubes and can be used to provide the high-end applications listed above, hi addition, individual PC-SWNT molecules can be used as seeds to induce growth of additional PC-SWNT materials of the same chirality.
  • SWNTs single- walled carbon nanotubes
  • the methods can provide for identifying, separating, characterizing and/or forming of the different helical forms based on their spectral and other properties.
  • a pure composition of matter for a number of carbon nanotubes of type (n,m), wherein the helical wrapping angle is determined and the molecules can be made in substantially pure form.
  • n relates generally to the size of the tube
  • m relates generally to the inclination of twist.
  • Larger diameter tubes can also be prepared, purified, and identified with n from 1 to 100 or m from 1 to 100.
  • composition of matter of pure-chirality SWNTs refers to helical twist rather than length.
  • SWNT can be tubes wrapped from graphite sheets and can be named (n,m), wherein a chiral vector is defined by n and m.
  • chirality refers to the angle of wrapping. This does not mean left or right handedness in the usual sense of chirality but would be better termed helicity that refers to the pitch or the helix angle of wrapping normal "as-produced" carbon nanotubes.
  • the tube wrapped from the sheet therein would have a chiral vector C with (6,3) for (n,m). Additionally, it is noted that when tubes are formed, a mixture of different sizes and helical angles, much like ajar of different sizes of screws, as illustrated in Figure 11.
  • a bulk sample of HiPCO nanotubes which contain a mixture of at least 26 different chiralities, can be purified to greater than
  • Exemplary pure-chirality nanotube bulk product compositions include those (n,m) chiralities illustrated in Figure 12. These pure-chirality nanotube bulk product compositions can each have a unique chemical "molecular graphs" (i.e., formulae are chemical structures as shown in Figures 6-10).
  • these molecular graphs of pure-chirality (n,m) angles of pure-chirality nanotube bulk product compositions are similar to polymeric monomers, wherein the actual nanotubes can be much longer but are composed of repeating units of these twisted pure-chirality (n,m) graphene sheets. It is further noted that the properties of the pure-chirality nanotube bulk product compositions are believed to be directly related to the pure-chirality (n,m) wrapping angles.
  • SWNTs are discussed herein, it is noted that double walled or multi- walled tubes can also be subjected to the same methods of identifying, separating, characterizing and/or forming different helical forms. For example, SWNTs of different chiralities can be nested, i.e., a (5,5) SWNT can be nested within a (10,10) SWNT to form a double or nested tube.
  • a chiral surface of known chirality such as crystals of tartaric acid, peptides or amino acids, sugars, etc. can be used to catalyze the formation of one helical form of nanotube.
  • crystals of tartaric acid, peptides or amino acids, sugars, etc. can be used to catalyze the formation of one helical form of nanotube.
  • An improved chiral nanotube method can include creating a selective chiral surface in bulk by lithographic techniques. For example, this method could be done by imaging lines on an oriented graphite surface.
  • SWNT pure-chirality single walled nanotubes
  • SWNTs can be generated by catalytic chemical vapor deposition (CVD) by using alcohol as the carbon source.
  • CVD catalytic chemical vapor deposition
  • high-purity SWNTs can be generated at relatively low CVD temperatures from metal catalytic particles supported on zeolite or directly dispersed on flat substrates, such as mesoporous silica, quartz and silicon.
  • a zeolite support can be provided for bulk generation of SWNTs, wherein direct growth of SWNTs on zeolites as a film on a substrate can be used for optical or semi-conductor applications.
  • low-temperature CVD preparation can be used to synthesize SWNTs near armchair nanotubes.
  • the near armchair nanotubes can be produced from low-temperature CVD because of the stability of nanorube cap structure for thin nanotubes. Additionally, the growth process of SWNTs simulated by molecular dynamics method also appears to suggest this chirality-selective generation of SWNTs.
  • ethanol can be used as the alcohol carbon source.
  • a CVD apparatus can be used to form a vertically aligned SWNTs mat with a couple of microns grown on quartz substrates by employing the activation of catalytic metals.
  • SWNTs include CoMoCATTM, a method developed by SouthWest NanoTechnologies, Inc. (SWeNTTM) of Norman, Oklahoma and High-Pressure CO Conversion (HiPCO).
  • SWeNTTM SouthWest NanoTechnologies, Inc.
  • HiPCO High-Pressure CO Conversion
  • the SWNTs formed by CoMoCAT and HiPCO provide mixed chirality SWNTs rather than PC-SWNTs.
  • Individual PC-SWNT molecules can be used as seeds to induce growth of additional PC-SWNT materials of the same chirality, as illustrated in Figure 14.
  • seeds processes that would ordinarily result in mixed chirality nanotube formation can be used for form PC-SWNTs.
  • bulk PC-SWNT products can be formed using seed PC-SWNT molecules with a HiPCO process using metal catalyst and carbon feedstock.
  • bulk PC-SWNT products can be formed by broadly applying any growth process including H-K arc processes, laser ablation processes, and/or RF-induced processes with PC-SWNT molecular structure seeds, wherein carbons can be added or grown on an existing PC-SWNT molecular structure seeds to form bulk PC-SWNTs.
  • IR fluorescence Using near infrared (IR) fluorescence to decode the fingerprint of helical nanotubes in order to determine chiralities of a sample, and to establish the purity of a sample of a single type of (n,m) SWNT.
  • the chirality distribution of bulk and individual SWNTs can be determined using near infrared (IR) fluorescence to decode the "fingerprint” and thus the chirality of individual nanotubes.
  • IR fluorescence near infrared
  • the chirality distribution of bulk and individual SWNTs can be determined using near infrared (IR) fluorescence to decode the "fingerprint” and thus the chirality of individual nanotubes.
  • IR fluorescence can be utilized to identify individual nanotubes based upon their fingerprints.
  • this method can be used to determine the exact (n,m) number of a one or more SWNTs, and thus the can be used to determine the precise chiral structure.
  • a near IR fluorescence of a HiPCO nanotube bulk mixture with about 27 SWNTs with different chiral angles is observed in "A" of Figure 15.
  • the different chiral angles appear as different peaks with different fluorescence signatures.
  • the near IR fingerprint of a bulk of pure-chirality nanotubes or PC-SWNTs is observed in "B” of Figure 15, which illustrates a single primary peak with a single primary signature for the bulk of nanotubes.
  • the spectral lines of the near IR fluorescence spectrum allow the fingerprints for each (n,m) SWNT to be determined based upon helical angle of each peak from the spectrum.
  • PC-SWNTs can be attained, wherein the pure-chirality aspect can be confirmed using near IR fluorescence. Therefore, by utilizing the methods described herein, industrially relevant amounts of PC-SWNT compounds can be produced and confirmed.
  • Perfluorocarbon molecules resemble hydrocarbons but with all hydrogen atoms replaced by fluorine atoms.
  • perfluorocarbons liquids and gases
  • surfactants can be used for dispersion of carbon nanotubes.
  • fluorocarbon solvents can be used, wherein one or more carbon nanotubes can be solubilized within the solvents.
  • Liquid-liquid biphase systems can be used in synthetic, catalytic and separation processes.
  • the formation of a liquid-liquid biphase system is due to significantly different intermolecular forces of two liquids, which can result in limited or negligible solubility of the two solvents in each other.
  • aqueous biphase systems which employ water as one phase and a hydrocarbon (or organic or other low polarity solvent) as the other, can result in limited solubility of the two solvents in one another.
  • the aqueous phase can be used to recover water-soluble reagents and catalysts, while the organic phase can be used to accumulate products of the reaction that are not water-soluble.
  • aqueous biphasic processes cannot employ water-sensitive reagents or catalysts.
  • the low solubility of organic substrates in water is also a potential limitation of aqueous biphasic systems in catalysis.
  • a fluorous biphase system can be used to mix otherwise immiscible perfluoroalkyl solvents with water and many common organic solvents (see Table 2 below). See also, Horvath, I. T.; Rabai, J. Science 1994, 266, 72-75, which is incorporated herein by reference in its entirety. These systems include perfluorinated or highly fluorinated fluorous solvent and a second organic or inorganic solvent that is insoluble or poorly soluble in former.
  • PFCs Perfluorocarbons
  • SWNTs can be solubilized in liquid phases for solubilization testing. While water and organic surfactants can be used for solubilization of SWNTs, the presence of water can adversely affect many potential electronic applications of carbon nanotubes and organic solvents can cause SWNTs to aggregate into ropes or bundles. Thus, the use of water and organic surfactants can yield undesirable results. However, dispersion of SWNTs can also be accomplished through the use of organic-fluorous surfactants. For example, organic-fluorous surfactants can be mixed with fluorous solvents, such as C 6 F 14 , and SWNTs to form micelles.
  • organic-fluorous surfactants By utilizing organic-fluorous surfactants to solubilize SWNTs in a fluorous phase and forming micelles, separation of pure-chirality nanotubes from one another can be achieved, as well as chiral separation, as desired.
  • exemplary organic-fluorous surfactants include hybrid perfluorocarbon-organic surfactants.
  • An exemplary a surfactant for water/organic dispersions is SDS (Sodium Dodecyl Sulfate), which is "A" as illustrated in Figure 16.
  • SDS sodium Dodecyl Sulfate
  • an exemplary hybrid perfluorocarbon-organic surfactant which is "B” as also illustrated in Figure 16.
  • SWNTs can be solubilized in a PFC/organic dispersion and can form micelles to separate pure-chirality nanotubes as desired.

Abstract

A method of providing bulk products of pure-chirality single walled nanotubes having substantially one chirality, and bulk products of pure-chirality nanotubes having at least 50 % one chirality. By providing bulk products of pure-chirality nanotubes, the electrical conductivity of the nanotubes can be predetermined and can be made more electrically conductive or more semi-conductive, as desired. Also provided are methods of purifying bulk products of multiple chirality nanotubes into pure-chirality nanotube bulk products, as well as methods of identifying chiralities of bulk product nanotubes. Moreover, fluorocarbon surfactant systems capable of solubilizing nanotubes in perfluorocarbon solvents and facilitating purification and processing are also provided.

Description

PURE-CHIRALITY CARBON NANOTUBES AND METHODS
BACKGROUND OF THE INVENTION
[0001] This application claims priority under 35 U. S. C. § 119 to U.S. Provisional Application No. 60/628,204 entitled PURE-CHIRALITY CARBON NANOTUBES AND METHODS and filed on Nov. 17, 2004, the entire content of which is hereby incorporated by reference.
FIELD OF THE INVENTION
[0002] This invention relates to pure-chirality carbon nanotubes (PC-SWNT) in industrially relevant quantities, as well as their production and use in solutions and/or dispersions. Additionally, this invention relates to a new composition of carbon nanotubes consisting essentially of pure-chirality carbon nanotubes of substantially one chirality. Also, this invention relates to perfluorocarbon surfactants that can be used for dissolving and dispersing nanotubes in perfluorocarbon solvents.
DESCRIPTION OF THE RELATED ART
[0003] Fullerene nanotubes originated with studies of fullerenes (C6o), also known as "buckyballs." Tubular relatives of the buckyballs are so-called single-walled nanotubes (hereinafter "SWNT" or "nanotubes" generally), which can be formed in tubular or cylindrical form. Nanotubes, generally, can conduct electricity better than copper and can be 100 times stronger than steel at 1/6 the weight. [0004] As conventional nanotubes are made in batch processes, nanotubes are conventionally formed as nanotube batches consisting of mixtures of different chiralities or different lattice orientations. For example, a milligram sized nanotube batch can include many different chirality nanotubes therein. The properties of each nanotube in the batch can have a different chirality than the other nanotubes in the batch, wherein the electrical conductivity and optical properties, as well as other properties of each nanotube would be based upon the particular chirality of the individual nanotube.
[0005] Typically, a bulk nanotube batch product contains a ratio of about two- thirds semi-conductive chirality nanotubes to about one-third metallically conductive {i.e., highly conductive) chirality nanotubes. However, as the electrical and mechanical properties of each nanotube depends directly on the chirality of each tube, the specific characterization of the chirality of each nanotube, as well as the separation and/or production of batches or bulk product nanotubes with predetermined chiralities are desired.
[0006] For nanotubes, as illustrated Figures 1 and 2, the chirality can be defined by the nomenclature "(n,m)," wherein "n" relates generally to the size of the nanotube, while "m" relates generally to the inclination of twist, also known as helicity. As illustrated in Figure Ia schematic structure for a graphene sheet is shown, wherein nanotubes can be made by folding the sheet along lattice vectors. For example, in Figure Ia lattice vectors are shown corresponding (from right to left in Figure Ia) to an armchair (8,8) (see Figure Ib), a zigzag (8,8) (see Figure Ic) and a chiral (10,-2) (see Figure Id) lattice vector. As shown in Figures Ib-Id, the nanotubes corresponding to the different lattice vectors have different helicities based upon their lattice vectors. Another exemplary graphene sheet is illustrated in Figure 2, wherein the lattice vector is (6,3) and is rolled along the "tube axis" to form a (6,3) nanotube.
[0007] For nanotubes of type (n,m), the conductivity of the nanotube can be determined by the equation: n - m = 3 x I or (n - m) / 3 = I
As a result, if I is zero or any positive integer the nanotubes have metallically conductive or highly electrically conductive properties. On the other hand, if I is not zero or any positive integer {i.e., all other nanotubes), then the nanotubes have semi- conductive electrically conductive properties.
[0008] As illustrated in Figure 3, the electronic properties of a metallic nanotube vs. a semiconducting nanotube is shown, wherein the density of states, as well as the differential conductance are clearly different for the different types of nanotubes. As such, it is expected that based upon the electronic properties of a nanotube, certain density of states and differential conductance can be realized. [0009] Nanotube electrical conductivity, as with any material, is a function of the "fundamental gap," "gap" or "Egap." The "gap" is defined as the difference between the HOMO (Highest Occupied Molecular Orbital), which is the highest- energy orbital with one or two electrons, and the LUMO (Lowest Unoccupied Molecular Orbital), which is the lowest-energy orbital with no electrons). For nanotubes, the size of the gap is determined by small variations of the diameter and bonding angle. For example, semi-conductive chirality (hereinafter "semi-conductive") nanotubes can have a gap on the order of 0.5 eV. On the other hand, highly electrically conductive chirality (hereinafter "metallic") nanotubes can have a gap on the order of 0.0 eV. The gap can be modeled by the function:
Figure imgf000005_0001
d
Where y0 is the C-C tight bonding overlap energy (2.7 - 0.1 eV), ace is the nearest neighbor C-C distance (0.142 nm), and d is the diameter. This shows that the gap for a nanotube can range from around 0.4 eV - 0.7 eV for semi-conductive nanotubes, which generally corresponds to gap values obtained from one- dimensional dispersement relations.
[0010] In general, based upon the results mentioned above, while not wishing to be bound by theory, the conductivity is believed to be a function of the wrapping angle and circumference (n,m). Therefore, since the conductivity can be predetermined based upon the chirality of a nanotube, the isolation of macroscopic quantities of a single (n,m) type or pure-chirality nanotubes can be useful for providing predetermined properties on an extremely small scale. [0011] Challenges to pure-chirality nanotube production include: (1) large scale production, and (2) processing issues, such as purification and identification of batch mixed chirality nanotubes into single chirality, or pure chirality nanotubes.
SUMMARY OF THE INVENTION
[0012] A new composition of matter, single-walled carbon nanotubes of specific helical forms on bulk scale and a method for their identification based on their -A-
spectral and other properties is provided herein. The "pure composition of matter" is a single type of chirally oriented (n,m) or "pure-chirality" nanotube, wherein n = 1 to 100 and m = 1 to 100 and n and m are the same for each (n,m) nanotube in the "pure composition of matter" or "pure-chirality" nanotubes. [0013] Also provided is a bulk product comprising at least 10,000 nanotubes, wherein the nanotubes comprise at least 50% nanotubes of one (n,m) chirality. Also provided is a bulk product comprising at least 1 milligram of at least 50% pure- chirality nanotubes, wherein the at least 1 milligram of nanotubes includes more than 10,000 nanotubes.
[0014] Also provided is a method of reducing aggregation of pure-chirality single- walled carbon nanotubes (SWNTs) during storage, comprising: mixing pure- chirality SWNTs with an inert perfluorocarbon-hydrocarbon hybrid surfactant additive.
[0015] Also provided is a method for growing pure-chirality single-walled carbon nanotubes (PC-SWNTs) comprising: cutting bulk sample/product of PC-SWNT into suitable lengths to provide PC-SWNT seeds for nanotube growth; adding a metal catalyst to one or both ends of the PC-SWNT seeds; exposing the PC-SWNT seeds and the metal catalyst to a carbon feedstock at a predetermined pressure and a predetermined temperature; and growing PC-SWNTs to form bulk quantities of PC- SWNTs with substantially the same chirality as the PC-SWNT seeds. [0016] Also provided are components for transistors, optical devices, coded- security tagging materials, and/or medical devices and/or applications comprising single-walled carbon nanotubes, wherein the single-walled carbon nanotubes comprise at least 50% nanotubes with the same (n,m) chirality. [0017] As discussed herein, methods for identifying, characterizing and/or forming nanotubes, for example separating and distinguishing between (4,5) SWNTs from (9,10) SWNTs, as well as selecting semi-conductive or metallic SWNTs are provided herein, including one or more of the following:
1. Generating SWNTs using catalytic chemical vapor deposition (CVD) by using a carbon source, wherein a pure-chirality nanotube can be used as a seed for self growth; 2. Using near IR fluorescence to decode the fingerprint of helical nanotubes in order to determine chiralities of a sample, and to establish the purity of a sample of a single type of (n,m) SWNT;
3. Using hybrid perfluorocarbon-hydrocarbon surfactants and using organic-fluorous phase liquid-liquid separations, such as counter-current chromatography; and
4. Using isolated single (n,m) type SWNT to prepare solutions and/or dispersions for production purposes.
BRIEF DESCRIPTION OF THE DRAWING FIGURES
[0018] Figures Ia- Id illustrate lattice vectors and their corresponding nanotube types, wherein Figure Ia illustrates lattice vectors corresponding (from right to left) graphene sheets folded along the lattice vectors along an armchair (8,8) lattice vector
(see Figure Ib), a zigzag (8,8) lattice vector (see Figure Ic) and a chiral (10,-2) lattice vector (see Figure Id).
[0019] Figure 2 illustrates an exemplary (n,m) carbon nanotube formed by wrapping a graphene sheet with a defined chirality angle.
[0020] Figure 3 illustrates electronic properties of a metallic nanotube vs. a semiconducting nanotube.
[0021] Figure 4 illustrates an exemplary graphene sheet showing (n,m) chirality numbering for exemplary nanotubes.
[0022] Figure 5 illustrates an exemplary graphene sheet showing pure-chirality
(n,m) nanotubes.
[0023] Figures 6-10 illustrate exemplary molecular structures of pure-chirality
(n,m) nanotubes.
[0024] Figure 11 illustrates screws representing mixed chirality nanotubes.
[0025] Figure 12 illustrates a (n,m) chirality map for exemplary HiPCO nanotubes.
[0026] Figure 13 illustrates a (n,m) chirality map for exemplary CoMoCAT nanotubes.
[0027] Figure 14 illustrates exemplary nanotube growth from seeded nanotubes with the same chirality. [0028] Figure 15 illustrates exemplary fluorescence signatures of: (A) exemplary mixed chirality nanotubes; and (B) exemplary pure-chirality nanotubes. [0029] Figure 16 illustrates exemplary dispersion surfactants for dissolving nanotubes in solvents or solutions.
DETAILED DESCRIPTION
[0030] Pure-chirality single-walled nanotubes (PC-SWNT) can be uniquely suited to many high-end applications, such as molecular electronics and computing, optical devices (photonic crystals and solar cell materials), electromagnetic interference (EMI) shielding, transistors, such as field effect transistors, coded-security tagging materials, medical devices and/or applications, etc.
[0031] As used herein, pure-chirality nanotubes include nanotubes with the same (n,m) chirality as primarily or substantially all of the other nanotubes in a bulk product of nanotubes or a plurality of at least 10,000 nanotubes. For example, in bulk products, nanotubes with at least 50%, 90%, or 98% of nanotubes with the same (n,m) chirality as the (n,m) chirality of the remainder of the bulk, as well as nanotubes which are substantially all one, single (n,m) chirality, are pure-chirality nanotubes and can be used to provide the high-end applications listed above, hi addition, individual PC-SWNT molecules can be used as seeds to induce growth of additional PC-SWNT materials of the same chirality.
[0032] Methods for identifying, separating and/or characterizing different helical forms of single- walled carbon nanotubes (SWNTs) on a bulk scale are described herein. The methods can provide for identifying, separating, characterizing and/or forming of the different helical forms based on their spectral and other properties. [0033] As identification of different helical forms of carbon nanotubes can be achieved, a pure composition of matter for a number of carbon nanotubes of type (n,m), wherein the helical wrapping angle is determined and the molecules can be made in substantially pure form. The pure (n,m) chirality nanotubes can preferentially have n = 1 to 20 and m = 1 to 20. It is noted, as mentioned above, that n relates generally to the size of the tube, while m relates generally to the inclination of twist. Larger diameter tubes can also be prepared, purified, and identified with n from 1 to 100 or m from 1 to 100.
[0034] AQ exemplary graphene sheet showing (n,m) numbering for SWNTs is illustrated in Figure 4. It is noted that armchairs are shown (n,m, wherein n = m) along the lower left diagonal, while the zigzags (n,0) are shown with along the top horizontal and the chiral are the (n,m) numbers between the armchair and zigzag numbers.
[0035] An example of Pure-chirality SWNTs is illustrated in Figure 5, wherein the pure-chirality SWNTs are numbered with (n,m) numbers. A few of the molecular structures of the pure-chirality SWNTs of Figure 5 are further illustrated in Figures
6-10, wherein these representative examples allows for those skilled in the art to understand that the composition of matter of pure-chirality SWNTs refers to helical twist rather than length.
[0036] SWNT can be tubes wrapped from graphite sheets and can be named (n,m), wherein a chiral vector is defined by n and m. The term in common use is chirality which refers to the angle of wrapping. This does not mean left or right handedness in the usual sense of chirality but would be better termed helicity that refers to the pitch or the helix angle of wrapping normal "as-produced" carbon nanotubes.
[0037] As illustrated in Figure 2, for example, the tube wrapped from the sheet therein would have a chiral vector C with (6,3) for (n,m). Additionally, it is noted that when tubes are formed, a mixture of different sizes and helical angles, much like ajar of different sizes of screws, as illustrated in Figure 11.
[0038] In an exemplary embodiment, a bulk sample of HiPCO nanotubes, which contain a mixture of at least 26 different chiralities, can be purified to greater than
50% of a single pure-chirality. This bulk sample of HiPCO nanotubes can be purified to give bulk quantities of single pure-chirality nanotube bulk products.
Exemplary pure-chirality nanotube bulk product compositions include those (n,m) chiralities illustrated in Figure 12. These pure-chirality nanotube bulk product compositions can each have a unique chemical "molecular graphs" (i.e., formulae are chemical structures as shown in Figures 6-10).
[0039] It is noted that these molecular graphs of pure-chirality (n,m) angles of pure-chirality nanotube bulk product compositions are similar to polymeric monomers, wherein the actual nanotubes can be much longer but are composed of repeating units of these twisted pure-chirality (n,m) graphene sheets. It is further noted that the properties of the pure-chirality nanotube bulk product compositions are believed to be directly related to the pure-chirality (n,m) wrapping angles. [0040] While SWNTs are discussed herein, it is noted that double walled or multi- walled tubes can also be subjected to the same methods of identifying, separating, characterizing and/or forming different helical forms. For example, SWNTs of different chiralities can be nested, i.e., a (5,5) SWNT can be nested within a (10,10) SWNT to form a double or nested tube.
[0041] Additionally, a chiral surface of known chirality such as crystals of tartaric acid, peptides or amino acids, sugars, etc. can be used to catalyze the formation of one helical form of nanotube. However, it is possible to use chiral surfaces crystals of tartaric acid, peptides or amino acids, sugars, etc to chromato graphically separate one helical form of nanotube.
[0042] An improved chiral nanotube method can include creating a selective chiral surface in bulk by lithographic techniques. For example, this method could be done by imaging lines on an oriented graphite surface.
[0043] Other methods are reported for the purification, solubilization, and formation of pure-chirality single walled nanotubes (SWNT). These methods include the use of antibodies and phage display to create affinity purification methods for pure-chirality SWNT, the use of hybrid perfluorocarbon-hydrocarbon block copolymers, and the use of organic-fluorous phase liquid-liquid separations, such as counter-current chromatography.
1. Generating SWNTs using catalytic chemical vapor deposition (CVD) by using alcohol or other carbon source, wherein a pure-chirality nanotube can be used as a seed for self growth.
[0044] SWNTs can be generated by catalytic chemical vapor deposition (CVD) by using alcohol as the carbon source. For example, high-purity SWNTs can be generated at relatively low CVD temperatures from metal catalytic particles supported on zeolite or directly dispersed on flat substrates, such as mesoporous silica, quartz and silicon. In exemplary embodiments, a zeolite support can be provided for bulk generation of SWNTs, wherein direct growth of SWNTs on zeolites as a film on a substrate can be used for optical or semi-conductor applications. For example, low-temperature CVD preparation can be used to synthesize SWNTs near armchair nanotubes. It is believed that the near armchair nanotubes can be produced from low-temperature CVD because of the stability of nanorube cap structure for thin nanotubes. Additionally, the growth process of SWNTs simulated by molecular dynamics method also appears to suggest this chirality-selective generation of SWNTs.
[0045] Additionally, ethanol can be used as the alcohol carbon source. By using ethanol for the catalytic CVD, a CVD apparatus can be used to form a vertically aligned SWNTs mat with a couple of microns grown on quartz substrates by employing the activation of catalytic metals.
[0046] Approaches to forming SWNTs include CoMoCAT™, a method developed by SouthWest NanoTechnologies, Inc. (SWeNT™) of Norman, Oklahoma and High-Pressure CO Conversion (HiPCO). However, the SWNTs formed by CoMoCAT and HiPCO provide mixed chirality SWNTs rather than PC-SWNTs. By using these CoMoCAT™ and HiPCO for synthesizing SWNTs, comparisons of the resolved spectral intensities, and thus an example of the selectivity of different SWNT synthesis processes can be compared. Comparing the two approaches, the % of (n,m) chirality compounds are shown in Table 1, wherein the (n,m) map of HiPCO SWNTs is shown in Figure 12 (the darkened chiralities being present in the sample) and the (n,m) map of CoMoCAT SWNTs is shown in Figure 13 (the thicknesses of the cell being proportional to the observed intensity for that structure). Tablβ 1 fo.m)-Rβsoiv$d Spectral Intensities from SWMT Samples fractional fractional diamster cital intensity (1Ki, intensity f£) tut) angle iύtφ CeMoWT HiPoo
SA 0.620 263 0.3 « 0
6,4 0.692 23.4 2.S 03
%l 0.757 Sl O.S Θ.2
6,5 0.75" 27.0 28 3.7
S3 0.7S2 IS.j 11 2.0
0.806 9.8 1.7 0.4
7,5 0.82« 24.5 28 4.9
8,4 0.840 19.1 14 4.2 icα 0.SS4 9.0 0.0 4.5
7,6 0.895 27.5 8.5 7.1
9,4 0.916 17.5 2.3 7.6
10.3 0.936 12.7 0.0 4.3
S.6 253 0.8 S.J
9.5 2».6 0.3 5.7
9.5 o.y?t> 20.0 0.0 S."?
12,1 0ΛW5 4.0 0.0 3.8
I U 1.014 11." 0.0 4.0
SJ 1.032 27.S OJ 5.6
I OJ 1.050 19.1 0.0 4.6
[0047] Individual PC-SWNT molecules can be used as seeds to induce growth of additional PC-SWNT materials of the same chirality, as illustrated in Figure 14. By using seeds, processes that would ordinarily result in mixed chirality nanotube formation can be used for form PC-SWNTs. For example, bulk PC-SWNT products can be formed using seed PC-SWNT molecules with a HiPCO process using metal catalyst and carbon feedstock. Alternatively, bulk PC-SWNT products can be formed by broadly applying any growth process including H-K arc processes, laser ablation processes, and/or RF-induced processes with PC-SWNT molecular structure seeds, wherein carbons can be added or grown on an existing PC-SWNT molecular structure seeds to form bulk PC-SWNTs.
2. Using near infrared (IR) fluorescence to decode the fingerprint of helical nanotubes in order to determine chiralities of a sample, and to establish the purity of a sample of a single type of (n,m) SWNT.
[0048] In addition to generating PC-SWNTs using the methods described above, the chirality distribution of bulk and individual SWNTs can be determined using near infrared (IR) fluorescence to decode the "fingerprint" and thus the chirality of individual nanotubes. Because individual chiralities have individual fluorescence signatures and because each of the individual fluorescence signatures for each type of (n,m) SWNT is known, near IR fluorescence can be utilized to identify individual nanotubes based upon their fingerprints. Thus, this method can be used to determine the exact (n,m) number of a one or more SWNTs, and thus the can be used to determine the precise chiral structure.
[0049] As illustrated in Figure 15, a near IR fluorescence of a HiPCO nanotube bulk mixture with about 27 SWNTs with different chiral angles is observed in "A" of Figure 15. As illustrated, the different chiral angles appear as different peaks with different fluorescence signatures. On the other hand, the near IR fingerprint of a bulk of pure-chirality nanotubes or PC-SWNTs is observed in "B" of Figure 15, which illustrates a single primary peak with a single primary signature for the bulk of nanotubes. As illustrated in Figure 15, the spectral lines of the near IR fluorescence spectrum allow the fingerprints for each (n,m) SWNT to be determined based upon helical angle of each peak from the spectrum.
[0050] Thus, by utilizing purification techniques, bulk quantities of PC-SWNTs can be attained, wherein the pure-chirality aspect can be confirmed using near IR fluorescence. Therefore, by utilizing the methods described herein, industrially relevant amounts of PC-SWNT compounds can be produced and confirmed.
3. Using hybrid perfluorocarbon-hydrocarbon surfactants and using organic-fluorous phase liquid-liquid separations.
A. Perfluorocarbon molecules
[0051] Perfluorocarbon molecules resemble hydrocarbons but with all hydrogen atoms replaced by fluorine atoms. Despite such a structural resemblance, perfluorocarbons (liquids and gases) include a separate class of compounds due to their unique physical and chemical properties, such as high density, low viscosity, overall inertness, high gas dissolving capability, excellent electrical insulating characteristics and immiscibility with water and most of organic solvents. Several extremely interesting fields of application arise from such properties. In particular, surfactants can be used for dispersion of carbon nanotubes. For example, fluorocarbon solvents can be used, wherein one or more carbon nanotubes can be solubilized within the solvents.
B. Use of Perfluoroalkylated Solvents in Catalysis and Organic
Chemistry
[0052] Liquid-liquid biphase systems can be used in synthetic, catalytic and separation processes. The formation of a liquid-liquid biphase system is due to significantly different intermolecular forces of two liquids, which can result in limited or negligible solubility of the two solvents in each other. For example, aqueous biphase systems, which employ water as one phase and a hydrocarbon (or organic or other low polarity solvent) as the other, can result in limited solubility of the two solvents in one another.
[0053] hi an aqueous biphase system, the aqueous phase can be used to recover water-soluble reagents and catalysts, while the organic phase can be used to accumulate products of the reaction that are not water-soluble. Unfortunately, aqueous biphasic processes cannot employ water-sensitive reagents or catalysts. The low solubility of organic substrates in water is also a potential limitation of aqueous biphasic systems in catalysis.
[0054] A fluorous biphase system (FBS) can be used to mix otherwise immiscible perfluoroalkyl solvents with water and many common organic solvents (see Table 2 below). See also, Horvath, I. T.; Rabai, J. Science 1994, 266, 72-75, which is incorporated herein by reference in its entirety. These systems include perfluorinated or highly fluorinated fluorous solvent and a second organic or inorganic solvent that is insoluble or poorly soluble in former.
Figure imgf000014_0001
Figure imgf000015_0001
ins. = insoluble = less than Ig per lOOg of solvent s. s = slightly soluble = 1 to 5g per lOOg of solvent sol. = soluble = 5 to 25g per lOOg of solvent v.s. = very soluble = greater than 25g per 10Og of solvent m. = miscible in all proportions
Table 2. Solubility of commercial fluorous solvents in common organic solvents. (Source : 3M Inc.)
[0055] Perfluorocarbons (PFCs) are commercially available at modest cost and are nontoxic and biologically compatible, consistent with the extensive experience with fluorocarbon coatings in cookware and artificial organ implants.
C. Examples of Fluorous Separation
[0056] SWNTs can be solubilized in liquid phases for solubilization testing. While water and organic surfactants can be used for solubilization of SWNTs, the presence of water can adversely affect many potential electronic applications of carbon nanotubes and organic solvents can cause SWNTs to aggregate into ropes or bundles. Thus, the use of water and organic surfactants can yield undesirable results. However, dispersion of SWNTs can also be accomplished through the use of organic-fluorous surfactants. For example, organic-fluorous surfactants can be mixed with fluorous solvents, such as C6F14, and SWNTs to form micelles. By utilizing organic-fluorous surfactants to solubilize SWNTs in a fluorous phase and forming micelles, separation of pure-chirality nanotubes from one another can be achieved, as well as chiral separation, as desired. Exemplary organic-fluorous surfactants include hybrid perfluorocarbon-organic surfactants. [0057] An exemplary a surfactant for water/organic dispersions is SDS (Sodium Dodecyl Sulfate), which is "A" as illustrated in Figure 16. On the other hand, an exemplary hybrid perfluorocarbon-organic surfactant, which is "B" as also illustrated in Figure 16. By using the exemplary hybrid perfluorocarbon-organic surfactant, SWNTs can be solubilized in a PFC/organic dispersion and can form micelles to separate pure-chirality nanotubes as desired.
[0058] While the invention has been described in detail with reference to preferred embodiments thereof, it will be apparent to one skilled in the art that various changes can be made, and equivalents employed, without departing from the scope of the invention.

Claims

WHAT IS CLAIMED IS:
1. A bulk product comprising at least 10,000 nanotubes, wherein the nanotubes comprise at least 50% nanotubes of one (n,m) chirality.
2. The bulk product of claim 1, wherein the bulk product is a solution or dispersion.
3. The bulk product of claim 2, wherein the bulk product consists essentially of: a liquid consisting of dispersant, solvent and/or solution; and nanotubes comprising at least 90% of one (n,m) chirality.
4. The bulk product of claim 3, wherein the liquid comprises perfluorocarbon solvent, and wherein the dispersion or solution comprises at least one milligram of nanotubes consisting essentially of a single, pure (n,m) chirality.
5. The bulk product of claim 4, wherein the perfluorocarbon solvent comprises a hybrid organic-perfluorocarbon molecule.
6. The bulk product of claim 1, wherein the nanotubes comprise at least 90% metallic or highly electrically conductive nanotubes, wherein: n - m = 3 x I, wherein I is zero or any positive integer.
7. The bulk product of claim 1 , wherein the nanotubes comprise at least 90% semi-conductive nanotubes, wherein: n - m = 3 x I, wherein I is not zero or any positive integer.
8. The bulk product of claim 1, wherein the nanotubes comprise at least 90% nanotubes of one (n,m) chirality.
9. The bulk product of claim 1, wherein the nanotubes comprise at least 98% nanotubes of one (n,m) chirality.
10. The bulk product of claim 1, wherein the nanotubes comprise substantially all nanotubes of one (n,m) chirality.
11. The bulk product of claim 1 , wherein the bulk product comprises at least one milligram of at least 50% pure-chirality nanotubes.
12. A method of reducing aggregation of pure-chirality single-walled carbon nanotubes (SWNTs) during storage, comprising: mixing pure-chirality SWNTs with an inert perfluorocarbon-hydrocarbon hybrid surfactant additive.
13. A method for growing pure-chirality single-walled carbon nanotubes (PC-SWNTs) comprising: cutting bulk sample/product of PC-SWNT into suitable lengths to provide PC-SWNT seeds for nanotube growth; adding a metal catalyst to one or both ends of the PC-SWNT seeds; exposing the PC-SWNT seeds and the metal catalyst to a carbon feedstock at a predetermined pressure and a predetermined temperature; and growing PC-SWNTs to form bulk quantities of PC-SWNTs with substantially the same chirality as the PC-SWNT seeds.
14. The method of claim 13, wherein the growing PC-SWNTs step comprises catalyzing growth of PC-SWNTs by a high pressure carbon monoxide (HiPCO) process and/or a chemical vacuum deposition (CVD) to form bulk quantities of PC-SWNTs with substantially the same chirality as the PC-SWNT seeds.
15. The method of claim 13, wherein the exposing the PC-SWNT seeds and the metal catalyst to a carbon feedstock comprises exposing the PC-SWNT seed and the metal catalyst to methane or carbon monoxide.
16. Components for transistors, optical devices, coded-security tagging materials, and/or medical devices and/or applications comprising single-walled carbon nanotubes, wherein the single-walled carbon nanotubes comprise at least 50% nanotubes with the same (n,m) chirality.
17. The components of claim 16, wherein the single-walled carbon nanotubes comprise at least 90% nanotubes with the same (n,m) chirality.
18. The components of claim 16, wherein the single-walled carbon nanotubes comprise at least 98% nanotubes with the same (n,m) chirality.
19. The components of claim 16, wherein the single-walled carbon nanotubes comprise nanotubes with substantially all the same (n,m) chirality.
20. The components of claim 16, wherein the components comprise field effect transistors.
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Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7662298B2 (en) 2005-03-04 2010-02-16 Northwestern University Separation of carbon nanotubes in density gradients
US9926195B2 (en) 2006-08-30 2018-03-27 Northwestern University Monodisperse single-walled carbon nanotube populations and related methods for providing same

Families Citing this family (25)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1483202B1 (en) * 2002-03-04 2012-12-12 William Marsh Rice University Method for separating single-wall carbon nanotubes and compositions thereof
KR100635546B1 (en) * 2004-12-24 2006-10-17 학교법인 포항공과대학교 Probe of scanning probe microscope having a field effect transistor channel and Fabrication method thereof
US20080274036A1 (en) * 2005-06-28 2008-11-06 Resasco Daniel E Microstructured catalysts and methods of use for producing carbon nanotubes
CA2613203C (en) * 2005-06-28 2013-08-13 The Board Of Regents Of The University Of Oklahoma Methods for growing and harvesting carbon nanotubes
CN101842446A (en) 2007-08-29 2010-09-22 西北大学 Transparent electrical conductors prepared from sorted carbon nanotubes and methods of preparing same
CN101752477A (en) * 2008-11-28 2010-06-23 清华大学 Light emitting diode
EP2419553A4 (en) 2009-04-17 2014-03-12 Seerstone Llc Method for producing solid carbon by reducing carbon oxides
WO2010151307A1 (en) * 2009-06-26 2010-12-29 Trustees Of Boston College Nanostructures and methods for chemically synthesizing nanostructures
WO2013158158A1 (en) 2012-04-16 2013-10-24 Seerstone Llc Methods for treating an offgas containing carbon oxides
CN104271498B (en) 2012-04-16 2017-10-24 赛尔斯通股份有限公司 The method and structure of oxycarbide is reduced with non-iron catalyst
MX354526B (en) 2012-04-16 2018-03-07 Seerstone Llc Methods and systems for capturing and sequestering carbon and for reducing the mass of carbon oxides in a waste gas stream.
WO2013158160A1 (en) 2012-04-16 2013-10-24 Seerstone Llc Method for producing solid carbon by reducing carbon dioxide
NO2749379T3 (en) 2012-04-16 2018-07-28
US9896341B2 (en) 2012-04-23 2018-02-20 Seerstone Llc Methods of forming carbon nanotubes having a bimodal size distribution
US10815124B2 (en) 2012-07-12 2020-10-27 Seerstone Llc Solid carbon products comprising carbon nanotubes and methods of forming same
US9604848B2 (en) 2012-07-12 2017-03-28 Seerstone Llc Solid carbon products comprising carbon nanotubes and methods of forming same
JP6025979B2 (en) 2012-07-13 2016-11-16 シーアストーン リミテッド ライアビリティ カンパニー Methods and systems for forming ammonia and solid carbon products
US9779845B2 (en) 2012-07-18 2017-10-03 Seerstone Llc Primary voltaic sources including nanofiber Schottky barrier arrays and methods of forming same
MX2015006893A (en) 2012-11-29 2016-01-25 Seerstone Llc Reactors and methods for producing solid carbon materials.
EP3113880A4 (en) 2013-03-15 2018-05-16 Seerstone LLC Carbon oxide reduction with intermetallic and carbide catalysts
WO2014151119A2 (en) 2013-03-15 2014-09-25 Seerstone Llc Electrodes comprising nanostructured carbon
EP3129133A4 (en) 2013-03-15 2018-01-10 Seerstone LLC Systems for producing solid carbon by reducing carbon oxides
WO2014151138A1 (en) 2013-03-15 2014-09-25 Seerstone Llc Reactors, systems, and methods for forming solid products
WO2014150944A1 (en) 2013-03-15 2014-09-25 Seerstone Llc Methods of producing hydrogen and solid carbon
US11752459B2 (en) 2016-07-28 2023-09-12 Seerstone Llc Solid carbon products comprising compressed carbon nanotubes in a container and methods of forming same

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20020110513A1 (en) * 1998-09-18 2002-08-15 Margrave John L. Chemical derivatization of single-wall carbon nanotubes to facilitate solvation thereof; and use of derivatized nanotubes to form catalyst-containing seed materials for use in making carbon fibers
US20030168385A1 (en) * 2001-12-20 2003-09-11 Fotios Papadimitrakopoulos Separation of single wall carbon nanotubes
US20040222413A1 (en) * 2002-09-24 2004-11-11 Che-Hsiung Hsu Water dispersible polyanilines made with polymeric acid colloids for electronics applications

Family Cites Families (15)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5269953A (en) * 1991-07-08 1993-12-14 Whewell Christopher J Synthetic carbon allotropes: graphite intercalated with buckminsterfullerenes
US5172278A (en) * 1991-10-24 1992-12-15 Hughes Aircraft Company Buckminsterfullerenes for optical limiters
US5453413A (en) * 1993-06-08 1995-09-26 Nanotechnologies, Inc. Phototransformation of fullerenes
US5805326A (en) * 1994-05-06 1998-09-08 The United States Of America As Represented By The Secretary Of The Navy Optical limiter structure and method
US6063243A (en) * 1995-02-14 2000-05-16 The Regents Of The Univeristy Of California Method for making nanotubes and nanoparticles
WO2000017101A1 (en) * 1998-09-18 2000-03-30 William Marsh Rice University Chemical derivatization of single-wall carbon nanotubes to facilitate solvation thereof; and use of derivatized nanotubes
US6793967B1 (en) * 1999-06-25 2004-09-21 Sony Corporation Carbonaceous complex structure and manufacturing method therefor
US6303760B1 (en) * 1999-08-12 2001-10-16 Virginia Tech Intellectual Properties, Inc. Endohedral metallofullerenes and method for making the same
CA2376887A1 (en) * 2000-04-18 2001-10-25 Masafumi Ata Method and system for producing fullerene
JP2001348215A (en) * 2000-05-31 2001-12-18 Fuji Xerox Co Ltd Manufacturing method of carbon nanotube and/or fullerene and manufacturing device therefor
EP1209714A3 (en) * 2000-11-21 2005-09-28 Futaba Corporation Method for manufacturing nano-tube, nano-tube manufactured thereby, apparatus for manufacturing nano-tube, method for patterning nano-tube, nano-tube material patterned thereby, and electron emission source
US6580027B2 (en) * 2001-06-11 2003-06-17 Trustees Of Princeton University Solar cells using fullerenes
US6669918B2 (en) * 2001-08-07 2003-12-30 The Mitre Corporation Method for bulk separation of single-walled tubular fullerenes based on chirality
US7358343B2 (en) * 2002-09-17 2008-04-15 Virginia Tech Intellectual Properties, Inc. Endohedral metallofullerene derivatives
US7347981B2 (en) * 2003-09-25 2008-03-25 The Penn State Research Foundation Directed flow method and system for bulk separation of single-walled tubular fullerenes based on helicity

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20020110513A1 (en) * 1998-09-18 2002-08-15 Margrave John L. Chemical derivatization of single-wall carbon nanotubes to facilitate solvation thereof; and use of derivatized nanotubes to form catalyst-containing seed materials for use in making carbon fibers
US20030168385A1 (en) * 2001-12-20 2003-09-11 Fotios Papadimitrakopoulos Separation of single wall carbon nanotubes
US20040222413A1 (en) * 2002-09-24 2004-11-11 Che-Hsiung Hsu Water dispersible polyanilines made with polymeric acid colloids for electronics applications

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7662298B2 (en) 2005-03-04 2010-02-16 Northwestern University Separation of carbon nanotubes in density gradients
US8110125B2 (en) 2005-03-04 2012-02-07 Northwestern University Separation of carbon nanotubes in density gradients
US9926195B2 (en) 2006-08-30 2018-03-27 Northwestern University Monodisperse single-walled carbon nanotube populations and related methods for providing same

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