WO2012076853A1 - Particulate materials, composites comprising them, preparation and uses thereof - Google Patents
Particulate materials, composites comprising them, preparation and uses thereof Download PDFInfo
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- WO2012076853A1 WO2012076853A1 PCT/GB2011/001707 GB2011001707W WO2012076853A1 WO 2012076853 A1 WO2012076853 A1 WO 2012076853A1 GB 2011001707 W GB2011001707 W GB 2011001707W WO 2012076853 A1 WO2012076853 A1 WO 2012076853A1
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- C—CHEMISTRY; METALLURGY
- C01—INORGANIC CHEMISTRY
- C01B—NON-METALLIC ELEMENTS; COMPOUNDS THEREOF; METALLOIDS OR COMPOUNDS THEREOF NOT COVERED BY SUBCLASS C01C
- C01B32/00—Carbon; Compounds thereof
- C01B32/20—Graphite
- C01B32/21—After-treatment
- C01B32/22—Intercalation
- C01B32/225—Expansion; Exfoliation
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
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- B01J19/00—Chemical, physical or physico-chemical processes in general; Their relevant apparatus
- B01J19/08—Processes employing the direct application of electric or wave energy, or particle radiation; Apparatus therefor
- B01J19/087—Processes employing the direct application of electric or wave energy, or particle radiation; Apparatus therefor employing electric or magnetic energy
- B01J19/088—Processes employing the direct application of electric or wave energy, or particle radiation; Apparatus therefor employing electric or magnetic energy giving rise to electric discharges
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B82—NANOTECHNOLOGY
- B82Y—SPECIFIC USES OR APPLICATIONS OF NANOSTRUCTURES; MEASUREMENT OR ANALYSIS OF NANOSTRUCTURES; MANUFACTURE OR TREATMENT OF NANOSTRUCTURES
- B82Y30/00—Nanotechnology for materials or surface science, e.g. nanocomposites
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- B82Y40/00—Manufacture or treatment of nanostructures
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- C01B32/15—Nano-sized carbon materials
- C01B32/158—Carbon nanotubes
- C01B32/168—After-treatment
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- C01B32/15—Nano-sized carbon materials
- C01B32/158—Carbon nanotubes
- C01B32/168—After-treatment
- C01B32/174—Derivatisation; Solubilisation; Dispersion in solvents
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- C09—DYES; PAINTS; POLISHES; NATURAL RESINS; ADHESIVES; COMPOSITIONS NOT OTHERWISE PROVIDED FOR; APPLICATIONS OF MATERIALS NOT OTHERWISE PROVIDED FOR
- C09C—TREATMENT OF INORGANIC MATERIALS, OTHER THAN FIBROUS FILLERS, TO ENHANCE THEIR PIGMENTING OR FILLING PROPERTIES ; PREPARATION OF CARBON BLACK ; PREPARATION OF INORGANIC MATERIALS WHICH ARE NO SINGLE CHEMICAL COMPOUNDS AND WHICH ARE MAINLY USED AS PIGMENTS OR FILLERS
- C09C1/00—Treatment of specific inorganic materials other than fibrous fillers; Preparation of carbon black
- C09C1/44—Carbon
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01J—ELECTRIC DISCHARGE TUBES OR DISCHARGE LAMPS
- H01J37/00—Discharge tubes with provision for introducing objects or material to be exposed to the discharge, e.g. for the purpose of examination or processing thereof
- H01J37/32—Gas-filled discharge tubes
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- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05H—PLASMA TECHNIQUE; PRODUCTION OF ACCELERATED ELECTRICALLY-CHARGED PARTICLES OR OF NEUTRONS; PRODUCTION OR ACCELERATION OF NEUTRAL MOLECULAR OR ATOMIC BEAMS
- H05H1/00—Generating plasma; Handling plasma
- H05H1/24—Generating plasma
- H05H1/2406—Generating plasma using dielectric barrier discharges, i.e. with a dielectric interposed between the electrodes
- H05H1/2431—Generating plasma using dielectric barrier discharges, i.e. with a dielectric interposed between the electrodes using cylindrical electrodes, e.g. rotary drums
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- B01J2219/00—Chemical, physical or physico-chemical processes in general; Their relevant apparatus
- B01J2219/08—Processes employing the direct application of electric or wave energy, or particle radiation; Apparatus therefor
- B01J2219/0803—Processes employing the direct application of electric or wave energy, or particle radiation; Apparatus therefor employing electric or magnetic energy
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- B01J2219/0809—Processes employing the direct application of electric or wave energy, or particle radiation; Apparatus therefor employing electric or magnetic energy giving rise to electric discharges involving electrodes employing two or more electrodes
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- B01J2219/00—Chemical, physical or physico-chemical processes in general; Their relevant apparatus
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- B01J2219/0803—Processes employing the direct application of electric or wave energy, or particle radiation; Apparatus therefor employing electric or magnetic energy
- B01J2219/0805—Processes employing the direct application of electric or wave energy, or particle radiation; Apparatus therefor employing electric or magnetic energy giving rise to electric discharges
- B01J2219/0807—Processes employing the direct application of electric or wave energy, or particle radiation; Apparatus therefor employing electric or magnetic energy giving rise to electric discharges involving electrodes
- B01J2219/0816—Processes employing the direct application of electric or wave energy, or particle radiation; Apparatus therefor employing electric or magnetic energy giving rise to electric discharges involving electrodes involving moving electrodes
- B01J2219/0818—Rotating electrodes
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- B01J2219/0803—Processes employing the direct application of electric or wave energy, or particle radiation; Apparatus therefor employing electric or magnetic energy
- B01J2219/0805—Processes employing the direct application of electric or wave energy, or particle radiation; Apparatus therefor employing electric or magnetic energy giving rise to electric discharges
- B01J2219/0807—Processes employing the direct application of electric or wave energy, or particle radiation; Apparatus therefor employing electric or magnetic energy giving rise to electric discharges involving electrodes
- B01J2219/0824—Details relating to the shape of the electrodes
- B01J2219/0826—Details relating to the shape of the electrodes essentially linear
- B01J2219/083—Details relating to the shape of the electrodes essentially linear cylindrical
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- B01J2219/00—Chemical, physical or physico-chemical processes in general; Their relevant apparatus
- B01J2219/08—Processes employing the direct application of electric or wave energy, or particle radiation; Apparatus therefor
- B01J2219/0803—Processes employing the direct application of electric or wave energy, or particle radiation; Apparatus therefor employing electric or magnetic energy
- B01J2219/0805—Processes employing the direct application of electric or wave energy, or particle radiation; Apparatus therefor employing electric or magnetic energy giving rise to electric discharges
- B01J2219/0807—Processes employing the direct application of electric or wave energy, or particle radiation; Apparatus therefor employing electric or magnetic energy giving rise to electric discharges involving electrodes
- B01J2219/0837—Details relating to the material of the electrodes
- B01J2219/0841—Metal
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- B01J2219/08—Processes employing the direct application of electric or wave energy, or particle radiation; Apparatus therefor
- B01J2219/0803—Processes employing the direct application of electric or wave energy, or particle radiation; Apparatus therefor employing electric or magnetic energy
- B01J2219/0805—Processes employing the direct application of electric or wave energy, or particle radiation; Apparatus therefor employing electric or magnetic energy giving rise to electric discharges
- B01J2219/0845—Details relating to the type of discharge
- B01J2219/0847—Glow discharge
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- B01J2219/0869—Feeding or evacuating the reactor
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- B—PERFORMING OPERATIONS; TRANSPORTING
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- B01J2219/08—Processes employing the direct application of electric or wave energy, or particle radiation; Apparatus therefor
- B01J2219/0873—Materials to be treated
- B01J2219/0881—Two or more materials
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- C01P2002/80—Crystal-structural characteristics defined by measured data other than those specified in group C01P2002/70
- C01P2002/84—Crystal-structural characteristics defined by measured data other than those specified in group C01P2002/70 by UV- or VIS- data
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- C01P—INDEXING SCHEME RELATING TO STRUCTURAL AND PHYSICAL ASPECTS OF SOLID INORGANIC COMPOUNDS
- C01P2004/00—Particle morphology
- C01P2004/01—Particle morphology depicted by an image
- C01P2004/03—Particle morphology depicted by an image obtained by SEM
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- C01P2004/62—Submicrometer sized, i.e. from 0.1-1 micrometer
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- C01P2004/00—Particle morphology
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- C01P2004/64—Nanometer sized, i.e. from 1-100 nanometer
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- C01P2006/60—Optical properties, e.g. expressed in CIELAB-values
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10—TECHNICAL SUBJECTS COVERED BY FORMER USPC
- Y10T—TECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
- Y10T428/00—Stock material or miscellaneous articles
- Y10T428/29—Coated or structually defined flake, particle, cell, strand, strand portion, rod, filament, macroscopic fiber or mass thereof
- Y10T428/2982—Particulate matter [e.g., sphere, flake, etc.]
Definitions
- This invention has to do with particulate materials, treatment and preparation of particulate materials,
- composite materials comprising such particulate materials, articles and devices comprising such composites, methods for their preparation and uses thereof.
- preferred embodiments relate to carbon or carbon-containing materials, in which the mentioned component particles or structures may be special allotropes of carbon such as fullerenes (notably tubular fullerenes, i.e. nanotubes) , or graphene comprised in graphitic or stacked-graphene bodies.
- the special proposals herein contribute to disaggregating or separating the component particles or structures, such as disentangling and
- Carbon nanotubes (CNTs) , their remarkable properties and potential properties, and methods of making them have been known for many years . However their industrial uses are still very limited, largely because of processing and handling issues. They can be made by various processes but the main ones are arc discharge from carbon-containing electrodes, and vapour-phase deposition of carbon, by laser ablation or CVD, onto metal catalyst particles. These methods can make CNTs of single-wall and multi-wall types (S CNTs and M CNTs) and are well-known to the skilled
- the resulting CNTs are usually contaminated with residues of one or more of catalyst, amorphous carbon and 5 (usually undesired) closed fullerenes and these residues
- CNTs like most nanoparticles , have a strong tendency to agglomerate under the influence of van der aals' forces, because of their extremely high specific surface area. With CNTs this is
- CNTs complex metal-oxide-semiconductor
- a liquid vehicle such as water or organic
- dispersions can be formed these tend to be dispersions of agglomerates, so that the properties of the CNTs themselves are scarcely made available.
- the dispersion can be any suitable material that contaminants and functionalise the carbon surface, and breaking apart the aggregates using high-shear methods such as milling, grinding or ultrasonication.
- the dispersion can be any suitable material that contaminants and functionalise the carbon surface, and breaking apart the aggregates using high-shear methods such as milling, grinding or ultrasonication.
- the dispersion can be any suitable material that contaminants and functionalise the carbon surface, and breaking apart the aggregates using high-shear methods such as milling, grinding or ultrasonication.
- CNTs also present a real or perceived health hazard if inhaled or in general if they contact permeable body
- graphene is known as the single- layer hexagonal form of carbon, corresponding to a single layer of the graphite structure but with properties exceeding
- Graphene layers can be made to quite large sizes by careful mechanical "exfoliation” or intercalation utilising an oxidant such as concentrated sulphuric acid and nitric acid, from graphite, by reduction of exfoliated graphene oxide, or by epitaxial growth on substrates of other materials .
- an oxidant such as concentrated sulphuric acid and nitric acid
- a step of intercalating to enable exfoliation may bee chemical intercalating, electrochemical intercalating, gas phase intercalating, liquid phase intercalating,
- Chemical intercalating may expose the graphite to sulphuric acid, sulphonic acid, nitric acid, a carboxylic acid, a metal chloride solution, a metal-halogen compound, halogen liquid or vapor, potassium permanganate, alkali nitrate, alkali perchlorate, an oxidizing agent, or a combination thereof.
- Halogens may also be used to intercalate, e.g.
- Electrochemical intercalating may use nitric acid or a carboxylic acid as both electrolyte and intercalate source, with a current density in the range of 50 to 600 A/m 2 at the graphite, which is used as an electrode.
- the step of exfoliating the intercalated graphite may comprise exposing the intercalated structure to a
- the exfoliating typically comprises exposing the intercalated graphite to a temperature in the range of 600°C to 1,100°C.
- intercalating uses a halogen or halogen compound the
- exfoliating typically comprises exposing the intercalated graphite to a temperature in the range of 50°C to 350°C.
- the aim herein is to provide new and useful particulate materials, composite materials comprising such particulate materials, articles and devices comprising such composites, methods for their preparation and uses thereof.
- a first aspect is a particle treatment method for disaggregating, deagglomerating, exfoliating, cleaning or functional!sing particles, in which the particles for treatment are subject to plasma treatment in a treatment chamber containing or comprising multiple electrically- conductive solid contact bodies or contact formations, the particles being agitated with said contact bodies or contact formations and in contact with plasma in the treatment chamber.
- the particles to be treated are preferably carbon particles, such as particles which consist of or comprise graphite, carbon nanotubes (CNTs) or other nanoparticles .
- the treatment chamber may be a drum, preferably a rotatable drum, in which a plurality of the contact bodies are tumbled or agitated with the particles to be treated.
- the wall of the treatment vessel can be
- glow plasma forms on the surfaces of the contact bodies or contact formations .
- Suitable contact bodies are metal balls or metal-coated balls .
- the contact bodies or contact formations may be shaped to have a diameter, and the diameter is desirably at least 1 mm and not more than 60 mm.
- the pressure in the treatment vessel is usually less than 500 Pa.
- gas is fed to the treatment chamber and gas is removed from the treatment chamber through a filter. That is to say, it is fed through to maintain chemical composition if necessary and/or to avoid build up of any contamination.
- the treated material that is, the particles or
- Plasma-forming gas in the treatment chamber may be or comprise e.g. any of oxygen, water, hydrogen peroxide, alcohol, nitrogen, ammonia, amino- bearing organic compound, halogen such as fluorine,
- halohydrocarbon such as CF 4 and noble gas.
- the particles being treated consist of or comprise graphitic carbon, such as mined graphite, which is exfoliated by the treatment.
- the treated material may comprise or consist of discrete graphitic or graphene platelets having a platelet thickness less than 100 nm and a major dimension
- the treatment may be continued for at least 30 minutes and/or until the treated carbon material comprises by weight at least 90% of platelets less than 100 nm thick and in which the major dimension is at least 10 times the
- the treatment is continued until the treated carbon material comprise by weight at least 80%, preferably at least 90%, of platelets less than 30 nm thick, preferably less than 20 nm thick, and in which the major dimension is at least 10 times the thickness, preferably at least 100 times the thickness.
- a further aspect herein is a method of preparing a particle dispersion or a composite material, comprising
- the particles may be dispersed in a said matrix
- polymeric material which is polymeric, for example epoxy resin, polyolefin, polyurethane, polyester, polyamide or poly (meth) acrylic material or mixture or copolymer of such polymer types, or is a precursor, e.g. oligomer or monomer, of such polymer.
- the treated material may comprise carbon nanotubes, or graphitic or graphene
- platelets as defined in any aspect or preferred aspect herein, dispersed in a said polymeric matrix material, preferably at less than 10% by weight of the composite material, to make an electrically-conductive composite material .
- a further aspect herein is novel particulate carbon material as described in any aspect, such as material obtained or obtainable by any method defined or described herein, comprising discrete graphitic platelets and/or carbon nanotubes .
- a further aspect is a particle dispersion or a
- composite material comprising any particulate carbon
- a liquid vehicle or matrix material dispersed in a liquid vehicle or matrix material.
- this may be in a matrix material which is polymeric, for example an epoxy resin, polyolefin, polyurethane, polyester, polyamide or poly (meth) acrylic material or mixture or copolymer of such polymer types, or is a precursor, e.g. oligomer or monomer, of such polymer.
- a further aspect is an article or device comprising an electrically-conductive element or layer comprising or consisting of a composite material as defined above, or obtained by a method as defined or described herein, such as a photovoltaic device, field emission device, hydrogen storage device, battery or battery electrode.
- a starting graphitic material can be separated effectively and at good yields into platelets containing not more than a few layers, and sometimes a single graphene layer. It is essentially a dry method at moderate temperatures.
- the product materials thereby available in significant quantities at reasonable cost, are found to provide many or most of the highly desirable characteristics associated with true synthetic graphene.
- the nanomaterials produced can indeed, especially because of the controllable and relatively uniform degrees of functionalisation thereof, be dispersed in matrix
- particulate carbon materials novel composite materials containing particulate materials, products and devices containing, comprising or made from such composite materials and methods of making and using all of these.
- the invention provides a
- particulate carbon material comprising or consisting of discrete graphitic or graphene platelets having a platelet thickness less than lOOnm and a major dimension (length or width) perpendicular to the thickness.
- the platelet thickness is preferably less than 70nm, preferably less than 50nm, preferably less than 30nm, preferably less than 20nm, preferably less than lOnm, preferably less than 5nm.
- the major dimension is preferably at least 10 times, more preferably at least 100 times, more preferably at least 1,000 times, more preferably at least
- the length may be at least 2 times, at least 3 times, at least 5 times or at least 10 times the width, e.g.
- the particulate material may comprise particles other than such platelets, e.g. nanotubes or nanorods mixed with them.
- the mass or population of the particulate carbon material comprises - by weight - at least 10%, more preferably at least 20%, more preferably at least 30%, more preferably at least 40%, more preferably at least 50%, more preferably at least 60%, more preferably at least 70%, more preferably at least 80% and perhaps at least 90%, all or substantially all of platelets having any combination of the general and preferred dimensions and dimension relationships specified above, provided that said percentage is assessed only on particles wherein the major dimension is at least 10 times, more preferably only on particles wherein the major dimension is at least 50 times or at least 100 times, the thickness. Additionally or alternatively it may be assessed only on particles whose major dimension is at least 500nm.
- the platelets are less than lOOnm thick, more preferably less than 70nm thick.
- the percentages may alternatively be determined on the basis of the numbers of particles rather than the weight, if a counting method is used for measurement.
- diffractometry is well known as a means of measuring
- particles on electron microscope images e.g. on at least 20, 50 or at least 100 measured particles.
- the present invention can make the particles by
- the material comprises particles with varied thicknesses and major dimensions, indicative of its being obtained or obtainable by such a process.
- it includes at least some single-layer graphene sheets for which the major
- perpendicular dimension is at least 10 times, more
- Graphitic/graphene sheets may be flat, curved or rolled.
- the particles may carry functional groups on the surfaces and/or edges of the platelets. These may be e.g. oxygen-containing functional groups such as carboxy, carbonyl or hydroxy, nitrogen-containing groups such as amine or amide, or halogen such as F. Desirably however the material contains at least 80%, more preferably at least 85%, more preferably at least 90% carbon.
- Another aspect of the present invention is a process of making a particulate carbon material according to any of the general or preferred definitions set out above, by treating a fibrous or particulate carbon starting material,
- a graphite starting material (which might be natural graphite) in a plasma according to any method described below, thereby separating layers of the graphite structure by intercalation of plasma species and/or by exfoliation in the plasma environment.
- the gas in which the plasma is formed can be selected to cause corresponding functionalisation of the platelet surfaces, e.g. as described above.
- Relevant components of the plasma- forming gas for this purpose may be e.g. oxygen, water, hydrogen peroxide, alcohols, nitrogen, ammonia, amino-bearing organic compounds such as ethylene diamines, halogens, or halohydrocarbons such as CF 4 .
- Noble gas such as Ar can be used to prevent or limit the degree of
- exfoliation is mechanically driven by milling or grinding after the chemical treatment with acid that functionalises only the surfaces exposed at that time.
- the processed material may be subject to size or form classification to select particles of particularly desired form, e.g. the thinnest.
- This classification may be by e.g. a settling method.
- a further aspect of the present proposals is a
- particulate carbon material as defined above dispersed as a discontinuous or substantially discontinuous phase in a continuous matrix material, desirably a solid matrix
- the matrix is preferably polymeric, thermosetting or thermoplastic. It may be for example epoxy resin,
- polyolefin e.g. polyethylene or polypropylene
- polyurethane polyester, polyamide, poly (meth) acrylic or other polymer. It may be petroleum-based polymer or
- Plasma-functionalised nanoscale carbon particulates with high aspect ratios have a high specific surface area, providing superior reinforcing properties when compared with traditional fillers.
- an interphase region of decreased mobility surrounding each plasma- functionalised nanofiller results in a percolating interphase network in the composite, which may play an important role in improving the properties.
- Plasma-functionalised nanoscale carbon particulates can improve mechanical and barrier properties of polymers. When incorporated into polymer matrices, they can provide active or smart properties to packaging systems, potentially improving food safety/stability or information about the safety/stability status of a product.
- Electrically-conductive plasma-induced nanoplatelet composites are particularly useful for shielding of
- EMI electromagnetic interference
- RFID radio frequency interference
- the amount of plasma-functionalised carbon particulates blended with the matrix polymer naturally depends on
- the very fine structure of the nanoplatelets generally provides a large effect for a small amount added.
- the amount is usually less than 20% by weight of the composite, preferably less than 10%, less than 5% or even less than 1%.
- the invention also provides a nanocomposite material enhancing filler comprising the above-mentioned platelets with a high length-to-width ratio.
- a nanocomposite can become electrically conductive with a small weight fraction of platelets.
- Conductive composites are particularly useful for shielding of sensitive electronic equipment against electromagnetic interference (EMI) or radio frequency interference (RFI) , and for electrostatic charge
- Another use is in photovoltaic devices, e.g. of the dye-sensitized type.
- Carbon tetrafluoride (CF 4) treatment followed by ammonia (NH 3 ) can be substituted for amino (contains an amine and carboxylic acid group) .
- XPS XPS
- Fluorinating before treating with NH 3 increases the NH 3 functionalisation by providing access sites for
- the fluorine is also expected to react with epoxy hardener at high temperatures with a catalyst .
- Fluorine + oxygen fluorine can readily be displaced by carboxylic acid groups. Argon and nitrogen are known to show 10% nitrogen and 8% oxygen, amine peak (3.9%) .
- Oxygen and amidation (COOH) + NH 2 -R-NH 2 e.g. ethylene diamine
- the plasma treatments allow ready control of the % functionalisation of available sites on the carbon, by adjusting the gas concentrations and treatment times. This is very important in achieving practical dispersibility of a given material in a given polymer.
- the effect of admixture of a given particulate by way of viscosity change in the polymer matrix depends very strongly on both its specific surface area and the % functionalisation of its surface.
- ITO indium tin oxide
- Graphene or few-layer graphitic platelets will naturally offer excellent conductivity in-plane, provided that they can be dispersed in the polymer matrix.
- the few- layer graphitic platelet materials of our invention in fact also offer satisfactory transparency, so they can be used in this very important technical area e.g. as a
- nanoscale particles particles having at least one dimension less than lOOnm
- CNTs such as SWCNTs or MWCNTs
- nanorods non-hollow
- nanosheets or nanoplatelets such as graphitic platelets
- a matrix material such as a matrix polymer.
- these are desirably carbon or carbon-based.
- the nanoscale particles are sufficiently deagglomerated or non-cohering that they can be initially dispersed in the matrix, and also that the
- discontinuous and/or substantially uniformly dispersed phase and desirably without significant agglomeration or re-agglomeration of the particulate in the composite. Again this may require controllable functionalisation of the particle surfaces.
- the treated particles have a wide range of uses.
- the particles, treated or produced by the present methods are incorporated into a polymeric matrix.
- This polymeric matrix may be, or may form the basis of, a specialised functional component such as a conductive plastics component, or an electro-functional organic
- a component or material such as a photovoltaic element or layer, or a structural component in which the dispersed nanoparticles such as graphitic platelets and/or CNTs provide additional strength.
- a masterbatch of a corresponding liquid containing the particles may be
- a liquid introduced into the vessel for dispersal of the particles may be a curable polymer composition, or component or precursor thereof .
- liquid An alternative to the use of liquid is to store the particles at low temperature, e.g. under liquid nitrogen, to minimise chemical reaction with the activated particles. This may be done in the same vessel .
- Particles are put into a vessel, the vessel is closed and the particles are subject to plasma treatment by
- the plasma treatment involves positioning electrodes at opposing positions in relation to an interior space of the vessel, and generating plasma between the electrodes in a region inside the vessel.
- one electrode extends into an interior space of the vessel to be surrounded by the space, e.g. as a central or axial electrode, and another electrode is an outer or surrounding electrode.
- the outer wall of the vessel is desirably cylindrical, or circular in cross- section. It may be or may comprise the counter-electrode.
- the vessel is desirably in the form of a drum.
- an interior e.g. axial electrode is, or comprises, or is positioned in, a re- entrant portion or socket formation of the vessel wall.
- a re-entrant portion of the vessel wall may extend axially, as a hollow formation, through the middle of the vessel space. It may be (or comprise) a dielectric vessel wall portion, or a conductive vessel wall portion.
- a central electrode connected to an
- a electrical driver can be connected to or inserted into this central re-entrant electrode or electrode cover of the vessel.
- a counter-electrode is positioned around, outside or surrounding the vessel wall. Application of an electric field between the electrodes generates plasma in the vessel.
- the plasma treatment is by means of low-pressure plasma of the "glow discharge” type, usually using DC or low- frequency RF (less than 100 kHz) .
- the pressure in the vessel for the treatment is desirably less than 1000 Pa, more preferably less than 500 Pa, less than
- pressures in the range 0.05 - 5 mbar (5 - 500 Pa) are usually suitable, more preferably 0.1 - 2 mbar (10 - 200 Pa) .
- An evacuation port may be provided for this purpose, and in the present method is connected to an evacuation means via a suitable filter for retaining the particles.
- the filter should be selected as regards its pore size to retain the particles in question, and as regards its material to withstand the processing conditions and to avoid undesirable chemical or physical contamination of the product, depending on the intended use thereof.
- HEPA filters, ceramic, glass or sintered filters may be suitable depending on the size of the particles.
- the evacuation port may be in a main vessel wall or in a lid or cover.
- the vessel is desirably agitated or rotated to cause relative movement of the particles inside. This may include movement of the
- the treatment vessel (defining the treatment chamber) may be rotated around an axis, e.g. an axis of an internally-projecting electrode as mentioned above.
- a low-pressure plasma treatment system application of vacuum is desirably combined with a feed of gas for plasma formation, so that the treatment atmosphere can be controlled and, if necessary, contaminated or spent
- this gas feed may be through a particle-retaining filter built into the wall of the vessel.
- a gas feed filter is in a re-entrant electrode or electrode cover portion as mentioned above.
- the above-mentioned internally-projecting electrode portion, or electrode cover portion into which an external electrode is inserted may itself be detachably inserted into the vessel body. This may be by means of a screw thread, ground joint, plug fit or other suitable sealed union. The joint should be able to prevent escape of particles.
- This electrode portion or electrode cover portion may be generally tubular. It may be cantilevered, or may bridge between opposed walls. When cantilevered, a gas inlet filter may be positioned at a distal end thereof.
- the vessel may be provided with a removable or openable sealable lid or closure, e.g. to cover a main opening through which particles may be loaded into and/or unloaded from the vessel interior.
- the vessel wall e.g. lid may incorporate a port for the application of vacuum, e.g.
- the vessel wall e.g. lid may incorporate a port for the injection of reagent or gas for chemical treatment.
- An electrode or electric supply of the plasma treatment apparatus may be inserted into or connected to a re-entrant electrode or electrode cover formation of the vessel. If the re-entrant formation is itself conductive, then it constitutes an electrode when the system electrode is connected to it. If the re-entrant formation of the vessel comprises or constitutes an electrode cover of dielectric material, e.g. glass, then the inserted system electrode needs to fit closely within it to avoid the generation of undesired plasma in gaps between these components. A system electrode in rod or tube form is then desirable, fitting into an elongate tubular cover.
- An external or counter-electrode may be an external conductive drum or housing. It may be or be incorporated into an outer wall of the treatment vessel itself, e.g. a drum wall. Or, it may be a separate rotatable treatment drum for a plasma apparatus, inside which the treatment vessel containing the particles can be supported to rotate with the drum.
- the wall of the treatment vessel or drum may have lifter formations, such as paddles, vanes, baffles,
- These formations may be integral with or fixed to the vessel wall. They may be of conductive or of non-conductive (dielectric) material. However when contact bodies or contact formations are used they may be unnecessary, because the contact bodies/formations may have their own plasma "haloes", and with heavy or dense bodies falling may be undesirable. Mild agitation of a mass of the contact bodies with the particles for treatment, e.g. at the bottom of a rotating,
- the size of the particle charge in the drum is not critical. Typically it occupies less than 25% and
- a further proposal relates to a manner of feeding gas to a treatment chamber for the formation of low-pressure discharge plasma adjacent the elongate electrode. It is desired to provide conditions in which the treatment chamber is subjected to ongoing, and preferably continuous,
- evacuation of gas e.g. to a vacuum pump via a suitable filter to retain particles in the chamber and protect the pump.
- This can have the important function of progressively clearing from the treatment chamber the products of chemical degradation and volatilisation, which otherwise tend to accumulate on the product or on the apparatus components.
- a feed of clean gas is needed to compensate for the evacuated gas in this flushing operation.
- the specific nature of the gas is not critical provided that it can sustain plasma. Oxygen-containing gases and especially air are suitable and economical .
- Fresh gas may be injected into the chamber through a gas injection structure or distributor, e.g. on or adjacent an electrode in the interior e.g. along an axis of the chamber.
- the axial electrode be removable, e.g. detachable from an opening in an end wall of the treatment drum, to facilitate cleaning and processing.
- the size of the treatment drum is not particularly limited. We envisage that it may be anything from 1 litre upwards .
- the treatment time is not particularly limited, and can readily be determined and optimised by testing according to the materials involved, the plasma conditions and the intended end-use.
- a treatment time that is to say, for operation of the drum with the plasma active and the particles moving in it
- a treatment time of from 30 to 500 seconds is often effective.
- more time is needed and generally the longer the better: usually at least 10, at least 20 or at least 30 minutes and maybe an hour or more.
- graphitic sheets from graphitic particles e.g. particles as produced by the known “bulk” methods such as vapour- deposition onto catalyst and arc discharge, or (for
- graphene natural graphite particles, or graphite fibres.
- the above-defined particles to be treated are subject to plasma treatment under agitation, e.g. as described above, in a treatment chamber having a plasma zone where plasma is formed in use.
- the treatment chamber contains or comprises multiple solid contact bodies or contact formations.
- electrically conductive or have electrically conductive surfaces, and contact the particles as they are agitated.
- the contact bodies are movable or mobile, preferably freely movable, in the chamber and are agitated together with the particles. This may be agitation by rotation and/or tumbling in a treatment drum as proposed above. Or it may be non- fully-rotatory e.g. reciprocating agitation.
- the contact bodies may gather electrical charge at their surfaces by contact with an electrode comprised in the treatment chamber e.g. in an outer vessel or drum wall, or assume the voltage thereof relative to another electrode, and/or by passing through the plasma zone.
- the contact bodies may be of any suitable shape. Balls are preferred because the symmetry of the surface gives an even distribution of electrical field-related phenomena.
- the field intensity can be greater.
- the material of the bodies is not critical .
- a conductive coating such as a metal coating on an insulating body will serve. However this accumulates less charge, so the adjacent field is less in use.
- Bodies made entirely of conductive material generally give a higher field. They may be of metal or of conductive compound such as metal carbide or metalloid.
- Simple steel balls are very effective, although they are liable to corrosion in air after having been exposed to plasma.
- Use of more chemically inert conductive materials, such as non-ferrous carbides can reduce this issue.
- Conductive ceramics are a further possibility.
- the material of the contact bodies should be selected so as not be substantially destroyed or disintegrated by the treatment environment. Equally materials are preferably avoided which contain substantial levels of components liable to vaporise from the bodies' surface under the treatment conditions and deposit on or otherwise contaminate the liberated particles of the product, unless this is intended for some special reason.
- the co-agitation of the contact bodies provides mixing, promoting contact of substantially all particles in the charge with the active charged surfaces of the bodies during the treatment period.
- the number of bodies depends as might be expected on their size, material, the treatment time, the amount of material to be treated etc. Desirably they form a bed - at least when static and preferably also when agitated - deep enough to incorporate the charge of particles being treated, at least at the beginning of the treatment (graphite
- agglomerated CNT particles for example expand very greatly during the treatment as they are disaggregated or exfoliated and may rise above the contact bodies after having previously been lost among them) .
- agitated particles is with contact formations connected to the treatment vessel or mounted at a fixed position therein, e.g. an array of inward finger projections from the wall thereof through which the particles tumble, or a grid or lattice or other fine structure in which the particles can mix and move under agitation, and which are connected so as to be electrostatically charged or to assume the relative voltage of the adjacent vessel wall or electrode component, desirably plasma glow forms at the surfaces of the contact bodies or contact formations and this treats the particles.
- contact formations connected to the treatment vessel or mounted at a fixed position therein, e.g. an array of inward finger projections from the wall thereof through which the particles tumble, or a grid or lattice or other fine structure in which the particles can mix and move under agitation, and which are connected so as to be electrostatically charged or to assume the relative voltage of the adjacent vessel wall or electrode component, desirably plasma glow forms at the surfaces of the contact bodies or contact formations and this treats the particles.
- the first aspect above requires conductive bodies.
- the disaggregated particulate product After treatment the disaggregated particulate product has been found to exhibit various advantageous properties .
- One important property is specific surface area, which can be determined by the standard BET or MR methods .
- CNT granules treated by the present methods can give materials with BET specific surface areas of at least 300, at least 500, at least 800 or at least 1000 m 2 g. These materials are believed to be new per se in the context of bulk production methods, and they are an aspect of the present invention. Methods comprising synthesising CNTs or graphitic particles and then applying the present methods to disaggregate or exfoliate the
- particle product are a further aspect of the invention.
- dispersion may involve the use of one or more dispersants such as
- Fig. 1 is a perspective view of a treatment vessel
- Fig. 2 is a schematic view of a central electrode formation in one version
- Fig. 3 is a schematic view of a central electrode formation in another version
- Fig. 4 is a schematic end view of the treatment vessel operating in plasma-generating apparatus
- Fig. 5 is a side view of the same thing
- Fig. 6 is a perspective view of a further embodiment of treatment drum.
- Fig. 7 is an axial cross-section thereof.
- Figs 8 to 16 show details of actual carbon materials before and after treatment in accordance with the new proposals : -
- Figs 8 and 9 are SEM images of a MWCNT material before treatment ;
- Figs 10 and 11 are SEM images of the same MWCNT
- Figs 12(a) and 12(b) are particle size data for the MWCNT material before and after treatment
- Figs 13 and 14 are SEM images of a disordered graphitic or graphene material made by arc discharge, before and after treatment;
- Figs 15 and 16 are SEM images of a natural graphite material before and after treatment.
- Figs 17 and 18 are SEM images of a disordered graphitic or graphene material made by arc discharge, before and after treatment;
- Figs 19 and 20 are SEM images of a natural graphite material before and after treatment
- Figs 21 and 22 are face views and an edge view of product obtained in Example 6;
- Fig 23 shows a selected nanoplatelet material obtained in Example 7;
- Fig 24 shows a further version of treatment drum (3rd apparatus embodiment) ;
- Figs 25 and 26 are ESCA (XPS) results showing the surface elemental analysis of CNTs functionalised by the present treatment methods .
- a generally cylindrical glass vessel or drum 4 has an integral glass rear end wall 43 and a front opening 41. Quartz or borosilicate glass is
- Axially-extending rib formations 44 are provided.
- drum wall 42 distributed circumferentially and project inwardly from the interior surfaces of the drum wall 42. They may be formed integrally with the glass of the wall, or be bonded-on plastics components.
- the rear wall 43 has a central re-entrant portion or socket 431 forming an insulative locating support for an electrode formation extending forward axially through the drum interior.
- This formation may be a fixed metal
- Fig. 2 is a tubular electrode with a gas feed port via a fine filter disc 32 closing off its front (free) end e.g. clamped by a screw ring cap 33. Its open rear end is sealingly bonded, or more preferably sealingly but removably connected (e.g. by a thread or tapered plug as shown), into a central opening of the glass socket 431.
- the interior electrode formation may be or comprise a dielectric electrode cover, e.g. an integral tubular forward extension 3' of the glass wall itself as shown in Fig. 3, having a fine particle filter 32' e.g. of sintered glass or ceramics at its front end.
- a discrete tubular dielectric electrode cover element fixed or bonded in, like the electrode of Fig. 2.
- An advantage of removable electrodes/electrode covers is ease of cleaning, replacement or substitution with different ones e.g. of different size, material, filter type etc .
- a plastics sealing lid 5 is provided for the open front end of the glass treatment vessel. This lid has a
- peripheral sealing skirt 53 to plug tightly into the drum opening 41, a filter port 52 incorporating a HEPA filter element, for pressure equalisation with a vacuum system, and a fluid injection port 51 having a sealing cover, for the introduction of liquid.
- the lid 5 is sealed.
- the HEPA filter 52 is sufficiently fine that the particles cannot escape, and can in any case be covered with a seal as a precaution against damage.
- the particle- loaded vessel is sent for plasma treatment using plasma-generating apparatus having a treatment chamber with vacuum generation, plasma- forming gas feed, means for rotating the vessel and system electrode drive for
- a suitable electric field for plasma generation e.g. RF energy .
- a suitable connector e.g. a threaded element 6 with a gas feed conduit 70, to the electrical drive.
- this connector could alternatively extend further into or all along inside the tubular electrode 3.
- the connector is in any case removably or releasably connected.
- a central gas feed channel 70 can be provided inside the connector 6 or electrode 7, for feed of gas to the vessel interior via the filter 32,32' at the front end of the electrode.
- Figs . 4 and 5 show a plasma treatment apparatus
- a support container 8 is mounted rotatably in a fixed sealable housing 9. Either of these or part thereof may comprise the counter-electrode .
- the counter-electrode should be shaped and positioned in relation to the axial electrode to enable stable glow plasma to form substantially all along the axial electrode inside the treatment chamber.
- the particle treatment vessel 4 is loaded into the support container 8 through a front hatch 81, and held axially in position by locating pads 82, and by connection of the axial electrode at its rear end.
- the housing 9 is evacuated via an evacuation port V, and the vacuum applies through the system via container vacuum port 83 and the front filter port 52 of the treatment vessel. Gas is fed in axially via the filter 32,32' in the electrode formation.
- Application of RF or other suitable power creates plasma in the vessel 4, especially in the region adjacent the axial electrode formation 3.
- the internal vanes 44 carry the
- nanoparticles up and cast them down selectively through this plasma-rich zone.
- the treatment atmosphere may be chosen freely provided that it will sustain plasma.
- An oxygen-containing substance may be chosen freely provided that it will sustain plasma.
- atmosphere is an example, and is effective to produce oxygen-containing functional groups on the particles, thereby activating them.
- the treatment vessel 4 can be plugged into a plasma apparatus and operated to plasma-activate the
- the liquid introduction port 51 can be used for the injection of a suitable liquid to disperse and/or carry the particles. This might be e.g. a solvent vehicle, water or polymer material .
- the treatment chamber may be provided with more than one gas injection point (e.g. different points in the housing or drum and/or different options for injecting gas at or along the central
- the appropriate point can then be selected to produce effective treatment according to the material to be treated.
- the rotation speed of the treatment drum is adjustable so that the particles can be made to fall selectively through the glow plasma region.
- the drum may be formed in various ways .
- a conductive drum wall itself forming a counter-electrode for plasma formation.
- Front and back end plates may be dielectric.
- a further possibility is a fully dielectric drum, with a separate counter-electrode structure or other plasma energising structure. This structure may be an external housing.
- Glass is a suitable and readily available dielectric material for forming any of the baffles, drum end plates and drum wall. Plastics or ceramic materials may also be used.
- Figs. 6 and 7 show a further treatment drum suitable for treatment of particles comprising CNTs, or graphitic granules. It has a cylindrical drum wall 2004 of metal e.g. steel or aluminium to act as counter-electrode. It is to be mounted for rotation in a vacuum chamber, e.g. on support rollers .
- the end walls are insulative.
- a rear end wall is of glass or inert plastics e.g. PTFE and comprises inner and outer layers 2432,2431 between which a filter layer (not shown) is clamped.
- This end wall filter module has large windows 2111 occupying more than half its area so that gas flow speed through the filter is low. This is found to improve plasma stability i.e. inhibit arcing.
- the centre of the rear end wall has a holder for the axial electrode, not shown.
- the electrode is a tubular metal electrode along which process gas is fed in use. It may be housed in a sheath.
- the front end wall has a simple insulating sealing wall or lid held on by a tight collar which may optionally - as may the module at the rear end - be screwed onto the metal drum end.
- Fig 24 shows a third embodiment of the treatment drum, in slightly more detail.
- This is a larger drum, volume about 60 litres and without interior baffles or lifters i.e. so that the bed of contact bodies e.g. steel balls will reside at the bottom during treatment.
- the tubular central electrode is used for feeding gas, through a brass sintered plug at the front end (not shown) .
- the front wall is formed into a cone with a limited opening (having a window plug, not shown) to facilitate emptying out of product after treatment.
- the rear wall is a filter, as before. Elements of the mechanical drive, vacuum communication and gas feed are also shown, to assist the skilled reader.
- the gas flow through the large volume of the system is relatively slow, and we find there is no tendency for the very fine
- particulate product to escape through the filter i.e. the product is not "carried out” by gas flow.
- Carbon sample materials used in Examples 1 to 3 were as follows .
- Particle sizes were measured in water dispersion (using the standard laser diffraction method) by a MasterSizer 2000 machine (Malvern Instruments, UK) . (The skilled person will appreciate that this gives only relative measurements, because of the high aspect ratio of the product.)
- the SEM images are from a Hitachi S-4800.
- the MWCNT material as supplied, i.e. as manufactured, is seen in the SEM images Figs 8 and 9 and its particle size distribution is in Fig 12(a). These are large, tightly aggregated granules approaching 1 mm (1000 pm) in size.
- the treated material is seen in the SEM images of Figs 10 and 11 and its particle size distribution is in Fig 12 (b) . It can readily be seen that the particle size has been drastically reduced to a range between 1 and 10 ⁇ , i.e. there has been substantial de-aggregation, and also that the treated material has a substantial proportion of discrete, liberated CNTs, visible in the SEM images.
- the starting material consisting primarily of
- the starting material was powdered natural graphite.
- Fig. 15 shows a typical particle: a graphite platelet with multiple layers which will not show the special properties of graphene.
- Fig. 16 shows the material after treatment. There has been substantial exfoliation, producing a large number of single graphene flakes. These can be
- the starting material consisting primarily of
- the starting material was powdered natural graphite.
- Fig. 19 shows a typical particle: a graphite platelet with multiple layers which will not show the special properties of graphene.
- Fig. 20 shows the material after treatment. There has been substantial exfoliation, producing a large number of single graphene flakes. These can be
- the starting material was powdered natural graphite of
- Fig 21 is a representative view of the treated product, with fully separated platelets. No measured platelet was thicker than 57nm. Most were less than 25nnm thick. The thinnest was 2.7nm.
- This material which carries oxygen-containing
- Exfoliated graphite obtained as in Example 6 was subjected to classification by dispersion in water and ultrasonication, whereupon only the finest particles remained at the top of the jar. These were separated physically and recovered.
- Fig. 23 shows that they are remarkably small and uniformly very thin platelets; a very high-value material obtained by a simple and economical process .
- Figs 25 and 26 show XPS (ESCA) surface analysis for treated carbon nanotubes (BaytubesTM) .
- the untreated tubes showed 96% carbon, 4% oxygen.
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Abstract
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Priority Applications (12)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| BR112013014376-2A BR112013014376B1 (en) | 2010-12-08 | 2011-12-08 | PARTICLE TREATMENT METHOD IN WHICH PARTICLES FOR TREATMENT ARE SUBMITTED TO PLASMA TREATMENT IN A TREATMENT CHAMBER, METHOD OF PREPARING A PARTICLE DISPERSION OR A COMPOSITE MATERIAL AND METHOD OF MAKING AN ARTICLE OR DEVICE |
| DK11810859.6T DK2649136T3 (en) | 2010-12-08 | 2011-12-08 | Particulate materials, composites comprising them, their preparation and applications |
| EP11810859.6A EP2649136B1 (en) | 2010-12-08 | 2011-12-08 | Particulate materials, composites comprising them, preparation and uses thereof |
| ES11810859.6T ES2560466T3 (en) | 2010-12-08 | 2011-12-08 | Particle-shaped materials, composite materials that comprise them, preparation and uses thereof |
| AU2011340316A AU2011340316B2 (en) | 2010-12-08 | 2011-12-08 | Particulate materials, composites comprising them, preparation and uses thereof |
| CA2819999A CA2819999C (en) | 2010-12-08 | 2011-12-08 | Particulate materials, composites comprising them, preparation and uses thereof |
| PL11810859T PL2649136T3 (en) | 2010-12-08 | 2011-12-08 | Particulate materials, composites comprising them, preparation and uses thereof |
| US13/992,201 US9764954B2 (en) | 2010-12-08 | 2011-12-08 | Particulate materials, composites comprising them, preparation and uses thereof |
| JP2013542602A JP6124796B2 (en) | 2010-12-08 | 2011-12-08 | Granular materials, composite materials containing them, their preparation and use |
| CN201180067150.9A CN103476878B (en) | 2010-12-08 | 2011-12-08 | Preparation of granular materials, composite materials including granular materials and their applications |
| GBGB1210623.3A GB201210623D0 (en) | 2011-12-08 | 2012-06-14 | Applications of particulate materials |
| AU2015238859A AU2015238859B2 (en) | 2010-12-08 | 2015-10-08 | Particulate materials, composites comprising them, preparation and uses thereof |
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| GBGB1020836.1A GB201020836D0 (en) | 2010-12-08 | 2010-12-08 | Particle processing and products thereof |
| GB1020836.1 | 2010-12-08 | ||
| GB1117129.5 | 2011-10-03 | ||
| GBGB1117129.5A GB201117129D0 (en) | 2011-10-03 | 2011-10-03 | Particulate materials, composites, preparation and uses thereof |
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| US (1) | US9764954B2 (en) |
| EP (2) | EP2649136B1 (en) |
| JP (1) | JP6124796B2 (en) |
| CN (2) | CN103476878B (en) |
| AU (1) | AU2011340316B2 (en) |
| BR (1) | BR112013014376B1 (en) |
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| DK (1) | DK2649136T3 (en) |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
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| US12078154B1 (en) | 2017-10-05 | 2024-09-03 | The Board Of Trustees Of The University Of Alabama, For And On Behalf Of The University Of Alabama In Huntsville | Microplasma-based heaterless, insertless cathode |
| CN107715789B (en) * | 2017-10-23 | 2023-10-03 | 中国石油大学(北京) | Novel method and device for preparing polymer particles |
| US10875809B2 (en) * | 2018-01-12 | 2020-12-29 | Massachusetts Institute Of Technology | Electron conducting carbon-based cement |
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| GB2588960B (en) * | 2019-11-15 | 2024-07-24 | Toraphene Ltd | Reinforced biodegradable polymer nanocomposite and method of manufacture thereof |
| KR102377106B1 (en) * | 2019-12-23 | 2022-03-21 | 한국세라믹기술원 | Graphite surface modification method, graphite surface modification apparatus, and method for producing graphite composite |
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| JP7542964B2 (en) * | 2020-02-21 | 2024-09-02 | リンテック株式会社 | Method for producing organic particles, organic particles, composition, coating film, and laminate |
| GB202012895D0 (en) | 2020-08-18 | 2020-09-30 | Univ Durham | Composition |
| CN112591739A (en) * | 2020-12-14 | 2021-04-02 | 衢州晶洲科技发展有限公司 | Preparation method of graphene |
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| CN112724710A (en) * | 2021-01-15 | 2021-04-30 | 贵州玖碳科技有限公司 | Plasma graphene powder surface modification process |
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Citations (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JPH06365A (en) * | 1992-06-22 | 1994-01-11 | Ii C Kagaku Kk | Plasma treatment of powder |
| WO2004099490A1 (en) * | 2003-05-05 | 2004-11-18 | Commonwealth Scientific And Industrial Research Organisation | Plasma treatment apparatus and method |
| WO2010142953A1 (en) | 2009-06-09 | 2010-12-16 | Haydale Limited | Methods and apparatus for particle processing with plasma |
Family Cites Families (74)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JPS57177342A (en) * | 1981-04-23 | 1982-11-01 | Toshiba Corp | Plasma treating apparatus of powder |
| JPH0757314B2 (en) * | 1986-06-20 | 1995-06-21 | 日本ペイント株式会社 | Powder processing method and apparatus |
| US5234723A (en) | 1990-10-05 | 1993-08-10 | Polar Materials Inc. | Continous plasma activated species treatment process for particulate |
| US5414324A (en) | 1993-05-28 | 1995-05-09 | The University Of Tennessee Research Corporation | One atmosphere, uniform glow discharge plasma |
| JP3462552B2 (en) * | 1994-01-10 | 2003-11-05 | 株式会社巴川製紙所 | Powder surface modification method |
| EP0880562B1 (en) | 1996-02-06 | 2000-12-06 | E.I. Du Pont De Nemours And Company | Treatment of deagglomerated particles with plasma-activated species |
| DE19612270C1 (en) | 1996-03-28 | 1997-09-18 | Schnabel Rainer Prof Dr Ing Ha | Low pressure plasma treatment of polymer powder, for automatic quasi-continuous operation |
| JPH1015380A (en) * | 1996-07-03 | 1998-01-20 | Fuji Electric Co Ltd | Plasma type fluidized bed furnace |
| EP0928345B1 (en) | 1996-09-17 | 2004-09-15 | Hyperion Catalysis International, Inc. | Plasma-treated carbon fibrils and method of making same |
| US6147452A (en) | 1997-03-18 | 2000-11-14 | The Trustees Of The Stevens Institute Of Technology | AC glow plasma discharge device having an electrode covered with apertured dielectric |
| US6383301B1 (en) | 1998-08-04 | 2002-05-07 | E. I. Du Pont De Nemours And Company | Treatment of deagglomerated particles with plasma-activated species |
| US20020054995A1 (en) | 1999-10-06 | 2002-05-09 | Marian Mazurkiewicz | Graphite platelet nanostructures |
| US6413487B1 (en) | 2000-06-02 | 2002-07-02 | The Board Of Regents Of The University Of Oklahoma | Method and apparatus for producing carbon nanotubes |
| US6428861B2 (en) | 2000-06-13 | 2002-08-06 | Procter & Gamble Company | Apparatus and process for plasma treatment of particulate matter |
| JP3625197B2 (en) | 2001-01-18 | 2005-03-02 | 東京エレクトロン株式会社 | Plasma apparatus and plasma generation method |
| JP2003300715A (en) * | 2001-11-14 | 2003-10-21 | Toray Ind Inc | Multilayer carbon nanotube, dispersion liquid, solution, composition, method for manufacturing these, and powdery carbon nanotube |
| JP3951896B2 (en) * | 2001-11-14 | 2007-08-01 | 東レ株式会社 | A method for treating a carbonaceous material, a carbon nanotube dispersion, and a solution. |
| JP4209612B2 (en) | 2001-12-19 | 2009-01-14 | 東京エレクトロン株式会社 | Plasma processing equipment |
| JP4420611B2 (en) | 2003-03-03 | 2010-02-24 | 独立行政法人産業技術総合研究所 | Titanium oxide powder surface modification method |
| JP2008069015A (en) | 2003-04-04 | 2008-03-27 | Canon Inc | Flake carbon particles and method for producing the same |
| JP2004323593A (en) | 2003-04-22 | 2004-11-18 | Toyota Industries Corp | Fluororesin powder and modification method therefor |
| JP2005135736A (en) | 2003-10-30 | 2005-05-26 | Nippon Spindle Mfg Co Ltd | Plasma processing device for particulates |
| EP1786443B1 (en) | 2004-07-19 | 2018-06-06 | Celator Pharmaceuticals, Inc. | Particulate constructs for release of active agents |
| CN1304631C (en) | 2004-08-18 | 2007-03-14 | 吉林大学 | Technology for preparing nano tube of carbon by direct current glow plasma chemical vapour phase deposition process |
| WO2006040398A1 (en) | 2004-10-12 | 2006-04-20 | Amroy Europe Oy | Novel hybride materials and related methods and devices |
| WO2006051153A2 (en) | 2004-11-09 | 2006-05-18 | Nanolab Systems Oy | Methods and devices for facile fabrication of nanoparticles and their applications |
| DE102004054959A1 (en) | 2004-11-13 | 2006-05-18 | Bayer Technology Services Gmbh | Catalyst for producing carbon nanotubes by decomposition of gaseous carbon compounds on a heterogeneous catalyst |
| FR2884113B1 (en) | 2005-04-06 | 2007-05-25 | Air Liquide | PROCESS FOR MODIFYING THE HYGIENIC, CHEMICAL AND SENSORY QUALITIES OF A CHEESE BY REDOX POTENTIAL CONTROL |
| CN2780327Y (en) * | 2005-04-07 | 2006-05-17 | 华南理工大学 | Corona plasma auxiliary high energy ball mill |
| EP1937404B1 (en) | 2005-08-10 | 2012-05-23 | Directa Plus S.p.A. | Process for the production of catalyst-coated support materials |
| CA2618806A1 (en) | 2005-08-10 | 2007-02-22 | Directa Plus Patent & Technology Limited | Process and apparatus for the production of engineered catalyst materials |
| CA2618824A1 (en) | 2005-08-10 | 2007-11-29 | Directa Plus Patent & Technology Limited | Process for the use of metal carbonyls for the production of nano-scale metal particles |
| US20090289396A1 (en) | 2005-09-02 | 2009-11-26 | Ian Walters | Processing of particulate materials, recycling methods, especially for rubber |
| US7658901B2 (en) | 2005-10-14 | 2010-02-09 | The Trustees Of Princeton University | Thermally exfoliated graphite oxide |
| US7754184B2 (en) | 2006-06-08 | 2010-07-13 | Directa Plus Srl | Production of nano-structures |
| DE102006038934A1 (en) | 2006-08-18 | 2008-02-21 | Evonik Degussa Gmbh | Preparation of α-hydroxyketones via carbene-catalyzed umpolung reaction of aldehydes |
| US8519130B2 (en) | 2006-12-08 | 2013-08-27 | Universal Display Corporation | Method for synthesis of iriduim (III) complexes with sterically demanding ligands |
| US7892514B2 (en) | 2007-02-22 | 2011-02-22 | Nanotek Instruments, Inc. | Method of producing nano-scaled graphene and inorganic platelets and their nanocomposites |
| US8828481B2 (en) | 2007-04-23 | 2014-09-09 | Applied Sciences, Inc. | Method of depositing silicon on carbon materials and forming an anode for use in lithium ion batteries |
| DE102007029008A1 (en) | 2007-06-23 | 2008-12-24 | Bayer Materialscience Ag | Process for the preparation of a conductive polymer composite |
| JP2009022895A (en) * | 2007-07-20 | 2009-02-05 | Toyota Motor Corp | Powder processing equipment |
| US7824741B2 (en) | 2007-08-31 | 2010-11-02 | Micron Technology, Inc. | Method of forming a carbon-containing material |
| US7993780B2 (en) | 2007-10-05 | 2011-08-09 | Nanotek Instruments, Inc. | Process for producing carbon anode compositions for lithium ion batteries |
| KR20100117570A (en) | 2008-01-03 | 2010-11-03 | 내셔널 유니버시티 오브 싱가포르 | Functionalized Graphene Oxide |
| EP2240405A4 (en) | 2008-02-05 | 2011-06-15 | John M Crain | Coatings containing functionalized graphene sheets and articles coated therewith |
| CN102318450B (en) | 2008-02-05 | 2016-10-19 | 普林斯顿大学理事会 | Printed Electronics |
| EP2262727A2 (en) | 2008-02-28 | 2010-12-22 | Basf Se | Graphite nanoplatelets and compositions |
| EP2276698A1 (en) | 2008-04-14 | 2011-01-26 | Dow Global Technologies Inc. | Lithium metal phosphate/carbon nanocomposites as cathode active materials for secondary lithium batteries |
| WO2009158117A2 (en) | 2008-05-30 | 2009-12-30 | The Regents Of The University Of California | Chemical modulation of electronic and magnetic properties of graphene |
| WO2009153051A1 (en) | 2008-06-20 | 2009-12-23 | MAX-PLANCK-Gesellschaft zur Förderung der Wissenschaften e.V. | Use of a superfine expanded graphite and preparation thereof |
| US20110112234A1 (en) * | 2008-06-24 | 2011-05-12 | Basf Se | Pigment mixtures |
| US8257867B2 (en) | 2008-07-28 | 2012-09-04 | Battelle Memorial Institute | Nanocomposite of graphene and metal oxide materials |
| GB0820342D0 (en) | 2008-11-06 | 2008-12-17 | Haydale Ltd | Processing of waste materials |
| US8487296B2 (en) | 2008-11-26 | 2013-07-16 | New Jersey Institute Of Technology | Graphene deposition and graphenated substrates |
| WO2010065518A1 (en) | 2008-12-01 | 2010-06-10 | The Trustees Of Columbia University In The City Of New York | Methods for graphene-assisted fabrication of micro- and nanoscale structures and devices featuring the same |
| US9093693B2 (en) | 2009-01-13 | 2015-07-28 | Samsung Electronics Co., Ltd. | Process for producing nano graphene reinforced composite particles for lithium battery electrodes |
| FI122511B (en) | 2009-02-26 | 2012-02-29 | Valtion Teknillinen | Graphene-containing flakes and procedure for exfoliating the graphene |
| KR101074027B1 (en) | 2009-03-03 | 2011-10-17 | 한국과학기술연구원 | Graphene composite nanofiber and the preparation method thereof |
| EP2414286A4 (en) | 2009-04-03 | 2014-10-29 | Vorbeck Materials Corp | POLYMER COMPOSITIONS CONTAINING GRAPHENE SHEETS AND GRAPHITE |
| EP2256087A1 (en) | 2009-05-26 | 2010-12-01 | Belenos Clean Power Holding AG | Stable dispersions of single and multiple graphene layers in solution |
| CN101717083A (en) | 2009-12-29 | 2010-06-02 | 北京大学 | Graphene and preparation method thereof |
| CN101867046A (en) | 2010-04-15 | 2010-10-20 | 上海交通大学 | Graphene nanosheet-cobalt hydroxide composite negative electrode material for lithium ion battery and preparation method thereof |
| CN101800302A (en) | 2010-04-15 | 2010-08-11 | 上海交通大学 | Graphene nanometer sheet-cobaltous oxide composite negative electrode material of lithium ion battery and preparation method thereof |
| SG10201503599WA (en) | 2010-06-25 | 2015-06-29 | Univ Singapore | Methods of forming graphene by graphite exfoliation |
| CN102054869B (en) | 2010-09-17 | 2012-12-19 | 中国科学院微电子研究所 | Graphene device and manufacturing method thereof |
| KR101788285B1 (en) | 2010-10-22 | 2017-10-20 | 삼성디스플레이 주식회사 | Organic light emitting diode display |
| KR101060463B1 (en) | 2010-10-22 | 2011-08-29 | 인제대학교 산학협력단 | A method of manufacturing a counter electrode prepared by depositing graphene by electrophoresis, a counter electrode manufactured by the method, and a dye-sensitized solar cell including the same |
| JP5664119B2 (en) | 2010-10-25 | 2015-02-04 | ソニー株式会社 | Transparent conductive film, method for manufacturing transparent conductive film, photoelectric conversion device, and electronic device |
| KR20120044541A (en) | 2010-10-28 | 2012-05-08 | 엘지전자 주식회사 | Conductive film, solar cell panel with the same and manufacturing method thereof |
| US20120105046A1 (en) | 2010-10-28 | 2012-05-03 | Texas Instruments Incorporated | Current mirror using ambipolar devices |
| KR20120044545A (en) | 2010-10-28 | 2012-05-08 | 삼성엘이디 주식회사 | Semiconductor light emitting device |
| US20140014495A1 (en) | 2011-04-19 | 2014-01-16 | High Temperature Physics, Llc | System and Process for Functionalizing Graphene |
| US8167190B1 (en) | 2011-05-06 | 2012-05-01 | Lockheed Martin Corporation | Electrically conductive polymer compositions containing metal particles and a graphene and methods for production and use thereof |
| EP2562766A1 (en) | 2011-08-22 | 2013-02-27 | Bayer MaterialScience AG | Dispersions containing carbon nanotubes and graphene platelets |
-
2011
- 2011-12-08 CN CN201180067150.9A patent/CN103476878B/en active Active
- 2011-12-08 AU AU2011340316A patent/AU2011340316B2/en active Active
- 2011-12-08 DK DK11810859.6T patent/DK2649136T3/en active
- 2011-12-08 PL PL11810859T patent/PL2649136T3/en unknown
- 2011-12-08 CN CN201510509686.1A patent/CN105148818B/en active Active
- 2011-12-08 WO PCT/GB2011/001707 patent/WO2012076853A1/en not_active Ceased
- 2011-12-08 BR BR112013014376-2A patent/BR112013014376B1/en active IP Right Grant
- 2011-12-08 EP EP11810859.6A patent/EP2649136B1/en active Active
- 2011-12-08 JP JP2013542602A patent/JP6124796B2/en active Active
- 2011-12-08 ES ES11810859.6T patent/ES2560466T3/en active Active
- 2011-12-08 EP EP15191861.2A patent/EP3000849B1/en active Active
- 2011-12-08 US US13/992,201 patent/US9764954B2/en active Active
- 2011-12-08 CA CA2819999A patent/CA2819999C/en active Active
Patent Citations (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JPH06365A (en) * | 1992-06-22 | 1994-01-11 | Ii C Kagaku Kk | Plasma treatment of powder |
| WO2004099490A1 (en) * | 2003-05-05 | 2004-11-18 | Commonwealth Scientific And Industrial Research Organisation | Plasma treatment apparatus and method |
| WO2010142953A1 (en) | 2009-06-09 | 2010-12-16 | Haydale Limited | Methods and apparatus for particle processing with plasma |
Non-Patent Citations (2)
| Title |
|---|
| BRUSER V ET AL: "Surface modification of carbon nanofibres in low temperature plasmas", DIAMOND AND RELATED MATERIALS, ELSEVIER SCIENCE PUBLISHERS, AMSTERDAM, NL, vol. 13, no. 4-8, 1 April 2004 (2004-04-01), pages 1177 - 1181, XP004507940, ISSN: 0925-9635, DOI: 10.1016/J.DIAMOND.2003.10.061 * |
| KIM J A ET AL: "Effects of surface modification on rheological and mechanical properties of CNT/epoxy composites", CARBON, ELSEVIER, OXFORD, GB, vol. 44, no. 10, 1 August 2006 (2006-08-01), pages 1898 - 1905, XP025011148, ISSN: 0008-6223, [retrieved on 20060801], DOI: 10.1016/J.CARBON.2006.02.026 * |
Cited By (39)
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|---|---|---|---|---|
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| CN105934407A (en) * | 2013-11-12 | 2016-09-07 | 佩尔佩图斯研究与发展有限公司 | Treating particles |
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| WO2015150830A1 (en) | 2014-04-02 | 2015-10-08 | Haydale Graphene Industries Plc | Method of characterising surface chemistry |
| WO2016012367A1 (en) | 2014-07-22 | 2016-01-28 | Basf Se | Modification of carbon particles |
| WO2016102689A1 (en) | 2014-12-23 | 2016-06-30 | Haydale Graphene Industries Plc | Piezoresistive device |
| WO2017129663A1 (en) | 2016-01-26 | 2017-08-03 | Haydale Graphene Industries Plc. | Heatable garment, fabrics for such garments, and methods of manufacture |
| US11918061B2 (en) | 2016-01-26 | 2024-03-05 | Haydale Graphene Industries Plc | Heatable garment, fabrics for such garments, and methods of manufacture |
| CN107777674B (en) * | 2017-09-26 | 2019-11-29 | 深圳先进技术研究院 | A method of two-dimensional material is prepared using atmospheric plasma |
| EP3710402A4 (en) * | 2017-11-15 | 2021-06-23 | 2D Fluidics Pty Ltd | Devices and methods for thin film chemical processing |
| WO2019197454A1 (en) * | 2018-04-11 | 2019-10-17 | Fraunhofer-Gesellschaft zur Förderung der angewandten Forschung e.V. | Barrier layers and compositions for producing same |
| DE102018108588B4 (en) | 2018-04-11 | 2024-07-11 | Fraunhofer-Gesellschaft zur Förderung der angewandten Forschung e.V. | Composition, barrier coating obtained therefrom and process for producing the barrier coating and use of the composition |
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Also Published As
| Publication number | Publication date |
|---|---|
| ES2560466T3 (en) | 2016-02-19 |
| BR112013014376A2 (en) | 2016-09-27 |
| CN105148818B (en) | 2018-02-06 |
| AU2011340316A1 (en) | 2013-07-25 |
| CN105148818A (en) | 2015-12-16 |
| EP3000849A1 (en) | 2016-03-30 |
| CA2819999C (en) | 2018-09-04 |
| CN103476878A (en) | 2013-12-25 |
| JP6124796B2 (en) | 2017-05-10 |
| DK2649136T3 (en) | 2016-02-08 |
| EP2649136A1 (en) | 2013-10-16 |
| JP2014504316A (en) | 2014-02-20 |
| PL2649136T3 (en) | 2016-04-29 |
| EP3000849B1 (en) | 2018-04-04 |
| US20130320274A1 (en) | 2013-12-05 |
| EP2649136B1 (en) | 2015-11-04 |
| BR112013014376B1 (en) | 2020-12-15 |
| AU2011340316B2 (en) | 2015-07-09 |
| CA2819999A1 (en) | 2012-06-14 |
| US9764954B2 (en) | 2017-09-19 |
| CN103476878B (en) | 2015-09-16 |
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