Covetic Materials

The plasma spray torch apparatus with microwave energy dissociates hydrocarbon gas to form graphene on molten metal, addressing variability issues and producing covetic materials with enhanced properties for diverse applications.

JP7853469B2Active Publication Date: 2026-04-28LYTEN INC
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
LYTEN INC
Filing Date
2025-02-28
Publication Date
2026-04-28

AI Technical Summary

Technical Problem

Conventional methods for producing covetic materials face challenges such as inconsistent conversion yields, variability in carbon distribution, unpredictable bonding mechanisms, and difficulty in achieving desired physical, chemical, and electrical properties, leading to premature defects and limited applicability.

Method used

A plasma spray torch apparatus using microwave energy to dissociate hydrocarbon gas into carbon atoms, forming single-layer or multi-layer graphene on molten metal particles, followed by controlled cooling and collection, resulting in uniformly dispersed carbon-metal nanoscale particles with tunable properties.

Benefits of technology

The method produces covetic materials with improved mechanical, thermal, and electrical properties, enabling scalable and versatile applications in high-density thin-film implants, coatings, and industrial components with predictable deformation and stability.

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Patent Text Reader

Abstract

To provide a microwave plasma torch reactor for manufacturing a covetic material.SOLUTION: A reactor has an energy source configured to provide microwave energy to the reactor, a first inlet through which a hydrocarbon gas flows into the reactor, an inner tube disposed in fluid communication with the first inlet, the inner tube configured to dissociate the hydrocarbon gas into a plasma based on the microwave energy, the plasma comprising carbon and carbon radicals, an annular region surrounding the inner tube, a second inlet disposed downstream of the first inlet and coupled to the annular region, the second inlet configured to receive metal particles entrained in a carrier gas, a heat source disposed in thermal communication with the reactor, the heat source configured to melt the metal particles, and an outlet configured to produce a carbon-metal composite based on at least a portion of the melted metal particles and the plasma.SELECTED DRAWING: Figure 18B
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Description

Technical Field

[0001] Related Applications This application is a continuation-in-part of U.S. Patent Application No. 16 / 460,177, filed on July 2, 2019, with the title "PLASMA SPRAY SYSTEMS AND METHODS", which claims the priority of U.S. Provisional Application No. 62 / 720,677, filed on August 21, 2018, with the title "PLASMA SPRAY SYSTEMS AND METHODS", and claims the priority of U.S. Provisional Application No. 62 / 714,030, filed on August 2, 2018, with the title "PLASMA SPRAY DEPOSITION", and this application claims the priority of U.S. Provisional Application No. 62 / 903,649, filed on September 20, 2019, and this application claims the priority of U.S. Provisional Application No. 62 / 868,493, filed on June 28, 2019, and this application claims the priority of U.S. Provisional Application No. 62 / 839,995, filed on April 29, 2019, and this application claims the priority of U.S. Provisional Application No. 62 / 797,306, filed on January 27, 2019. All of these applications are hereby incorporated by reference in their entirety.

[0002] The present disclosure generally relates to the production and use of covetic materials.

Background Art

[0003] The term "covetic material" refers to a metal fused with carbon particles of nanoscale dimensions. Covetic materials are desirable in various applications because they have many physical, chemical, and electrical properties that exceed the capabilities of conventional non-carbon-fused materials. However, covetic materials obtained from conventional covetic material manufacturing techniques are unable to achieve many of the above physical, chemical, and electrical properties.

[0004] Even in the face of a strong demand for materials exhibiting the physical, chemical, and electrical properties described above, numerous technical difficulties have hindered the development of technologies for the fabrication and use of covetic materials. Such technical difficulties stem from multiple areas, including: (1) the difficulty of combining analytical methods necessary to measure the carbon content of individual compounds with methods for characterizing microstructures or nanostructures; (2) the relatively high variability of carbon content distribution observed in samples fabricated to date; (3) variability and potential unpredictability in characterization; and (4) uncertainty regarding the scientific mechanism that is precisely responsible for the strong bonding observed between carbon particles and the surrounding matrix.

[0005] Conventional metal melting methods used in the production of Covetic carbon-metal composite alloys suffer from inconsistent conversion yields, which contribute to the wide variability observed in the properties of the resulting materials. For example, irregularities in the dispersion of carbon in the melt often lead to undesirable agglomeration and clustering. Such irregularities in the dispersion of carbon in the metal can lead to the formation of cracks and pores, which ultimately cause premature defects in the resulting material. Furthermore, the high solubility of carbon in the metal can lead to uneven carbon growth (e.g., thickening) on ​​the metal surface as the metal cools and solidifies. In addition, the solubility of carbon may be higher near the free surface than in the bulk of the metal, and this higher solubility, combined with the interfacial energy at the melt-air interface, favors undesirable precipitation at the melt-air interface.

[0006] Conventional heat-based metal melting methods for producing covetic carbon-metal composite alloys currently do not allow for easy adjustment of process conditions so that the resulting covetic material exhibits a desired set of tuned or targeted properties. The inability to control process conditions to produce a covetic material exhibiting a tuned set of properties leads to the inability to apply the covetic material to specific applications that require such a particular set of properties. What is needed is a technology to produce covetic material products that exhibit a range of tuneable properties. Furthermore, what is needed are covetic material products that can be used in a wide range of end-use areas and applications (e.g., inter-company or inter-company-consumer use, ranging from material strengthening to improved longevity performance). [Overview of the Initiative]

[0007] This summary is provided to introduce the selected concepts in a simplified form, which are further described in the detailed description below. This summary is not intended to identify any important or essential features of the claimed invention, nor is it intended to limit the scope of the subject matter of the claimed invention. Furthermore, each of the systems, methods, and devices of this disclosure has multiple innovative aspects, and none of them alone constitutes the desired attributes disclosed herein.

[0008] Various embodiments of the subject matter of the invention disclosed herein generally relate to apparatus, methods, and various compositions of carbon-metal composite materials. Controlled use of plasma spray torch apparatus and related apparatus for producing various carbon-metal bonded compositions is shown and examined. These carbon-metal bonded compositions are generally and hereafter referred to as “Covetic materials”.

[0009] One configuration of a plasma spray torch is materialized as a device comprising: a reaction chamber configured to receive a hydrocarbon process gas mixed with multiple molten metal nanoscale particles; a microwave energy source operablely connected to the reaction chamber to supply power to the reaction chamber; and a controller that adjusts the microwave energy source to create conditions in the reaction chamber such that the hydrocarbon process gas dissociates into its constituent carbon atoms, and single-layer graphene (SLG) or multi-layer graphene (FLG) grows from the carbon atoms on the molten metal nanoscale particles to form multiple carbon-metal nanoscale particles. In some configurations, the conditions in the reaction chamber result in: (i) a first temperature at which carbon atoms dissolve in the molten metal nanoscale particles; and (ii) a second temperature at which at least some of the dissolved carbon atoms bond with the molten metal in a crystallographic arrangement. Depending on the configuration of the device, a cooling zone is utilized to cool the multiple carbon-metal nanoscale particles into a powder, which is collected and stored in a containment vessel positioned adjacent to the reaction chamber.

[0010] Details of one or more embodiments of the subject matter of the invention described herein are described in the following accompanying drawings and description. Other features, aspects, and advantages will become apparent from the description, drawings, and claims. Note that the relative dimensions in the following drawings may not be to scale.

[0011] Embodiments of the subject matter of the invention disclosed herein are illustrated as examples, but are not intended to be limited by the figures in the accompanying drawings. Throughout the drawings and specification, similar numbers indicate similar components. Note that the relative dimensions in the following drawings may not be to scale. Copies of this patent or publication of the patent application, accompanied by color drawings, can be obtained from the United States Patent and Trademark Office upon request and payment of the applicable fees. [Brief explanation of the drawing]

[0012] [Figure 1A]This is a comparative diagram showing two different Covetic material formation techniques, and for each, examples of materials obtained from each according to certain embodiments. [Figure 1B] High-resolution transmission electron microscope images 114 and high-resolution energy-dispersive X-ray analysis images 116 from some embodiments are presented. [Figure 2] The disclosed embodiments describe a manufacturing process for growing graphene on small molten particles. [Figure 3] A plasma energy phase diagram is depicted illustrating how a pulsed microwave energy source is used to grow graphene on small molten particles according to one or more of the disclosed embodiments. [Figure 4] One or more of the disclosed embodiments describe an electronic temperature control technique used to grow graphene on small molten particles. [Figure 5] A dual plasma torch apparatus used for growing graphene on small molten particles, according to one or more of the disclosed embodiments, is illustrated. [Figure 6] The disclosed embodiments illustrate a pulsed microwave plasma spray torch apparatus tuned to grow graphene on small molten particles. [Figure 7] This figure depicts a common set of common areas of the subject matter of the invention relating to Covetic bodies (or related materials), plasma torch spraying, and / or rigidly synthesized composite carbon coatings, as shown in one or more of the disclosed embodiments. [Figure 8A] This is a schematic diagram illustrating a plasma spraying process used to spray carbon particles onto small molten particles, according to one or more of the disclosed embodiments. [Figure 8B] This is a schematic diagram illustrating a plasma spraying process used to spray carbon particles onto small molten particles, according to one or more of the disclosed embodiments. [Figure 9]A scanning electron microscope image showing the effect of spraying carbon particles onto small molten particles according to one or more of the disclosed embodiments. [Figure 10] A diagram showing a graphene growth temperature profile and a binary phase diagram according to one or more of the disclosed embodiments. [Figure 11] A cross-sectional view of a plasma torch device according to one or more of the disclosed embodiments. [Figure 12] Describes the flow of a pulsed microwave process used when growing graphene on small molten particles according to one or more of the disclosed embodiments. [Figure 13] A perspective view of a pulsed microwave plasma spraying waveguide device used to grow graphene on small molten particles according to one or more of the disclosed embodiments. [Figure 14] A schematic diagram of a micro-welding technique used to grow graphene on small molten particles according to one or more of the disclosed embodiments. [Figure 15] A schematic diagram of a plasma spraying device with a coaxial configuration according to one or more of the disclosed embodiments. [Figure 16] A schematic diagram of a plasma spraying device showing the progress of a material by processing through a series of non-equilibrium energy states according to one or more of the disclosed embodiments. [Figure 17] Describes a surface wave plasma system for growing graphene on molten particles according to one or more of the disclosed embodiments. [Figure 18A1] Describes various configurations of a plasma spraying reactor according to one or more of the disclosed embodiments. [Figure 18A2] Describes various configurations of a plasma spraying reactor according to one or more of the disclosed embodiments. [Figure 18B] Describes various configurations of a plasma spraying reactor according to one or more of the disclosed embodiments. [Figure 18C]Various configurations of a plasma spray reactor are described by one or more of the disclosed embodiments. [Figure 18D] Various configurations of a plasma spray reactor are described by one or more of the disclosed embodiments. [Figure 19] This is a diagram illustrating the energy versus the time between pulse-on and pulse-off states in one or more of the disclosed embodiments. [Figure 20A1] This figure illustrates the organometallic bonding that occurs when carbon and copper are combined using a plasma spray torch, according to one or more of the disclosed embodiments. [Figure 20A2] This figure depicts a gradient composition applied to a substrate material according to one or more of the disclosed embodiments, along with a plurality (e.g., three) of material property zones. [Figure 20B] This is a material evolution diagram depicting a multi-layer structure resulting from the addition of carbon to bulk aluminum, according to one or more of the disclosed embodiments. [Figure 21A] An apparatus for thermal spraying a molten mixture of materials onto a substrate is described according to one embodiment. [Figure 21B-1] The disclosed embodiments describe a method for thermal spraying a Covetic material onto a substrate. [Figure 21B-2] Figure 21B-1 follows Figure 21B-1, which depicts a method of thermal spraying a Covetic material onto a substrate according to one or more of the disclosed embodiments. [Figure 21C] This is a schematic diagram of a plasma spraying process used to spray a coating, according to one or more of the disclosed embodiments. [Figure 22A] The disclosed embodiments describe an apparatus for encapsulating carbon particles in molten metal. [Figure 22B-1] A method for encapsulating carbon particles in molten metal, according to one or more of the disclosed embodiments, is described. [Figure 22B-2] Figure 22B-1 follows, illustrating a method for encapsulating carbon particles in molten metal according to one or more of the disclosed embodiments. [Figure 23A] An exemplary deposition technique is illustrated by one or more of the disclosed embodiments. [Figure 23B] An exemplary deposition technique is illustrated by one or more of the disclosed embodiments. [Figure 23C] An exemplary deposition technique is illustrated by one or more of the disclosed embodiments. [Figure 23D] An exemplary deposition technique is illustrated by one or more of the disclosed embodiments. [Figure 24] A and B depict a conventional deposition technique for placing a material onto a substrate, according to one or more of the disclosed embodiments. [Figure 25] A and B illustrate exemplary deposition techniques that result in covalent bonding on a substrate surface, according to one or more of the disclosed embodiments. [Figure 26A] This is a schematic diagram illustrating how covalent bonds are formed between the square regions of the face-centered cubic structure of aluminum and the hexagonal regions that occur in certain crystallographic structures of carbon. [Figure 26B] This is a schematic diagram illustrating how covalent bonds are formed between the square regions of the face-centered cubic structure of aluminum and the hexagonal regions that occur in certain crystallographic structures of carbon. [Figure 26C] This is a schematic diagram illustrating how covalent bonds are formed between the square regions of the face-centered cubic structure of aluminum and the hexagonal regions that occur in certain crystallographic structures of carbon. [Figure 26D] This is a schematic diagram illustrating how covalent bonds are formed between the square regions of the face-centered cubic structure of aluminum and the hexagonal regions that occur in certain crystallographic structures of carbon. [Figure 26E] This is a schematic diagram illustrating how covalent bonds are formed between the square regions of the face-centered cubic structure of aluminum and the hexagonal regions that occur in certain crystallographic structures of carbon. [Figure 27A] The disclosed embodiments describe exemplary apparatus for producing powdered Covetic material. [Figure 27B1]An exemplary fluidized bed apparatus for cooling and handling powdered Covetic material in a fluid, according to one or more of the disclosed embodiments, is depicted. [Figure 27B2] An exemplary fluidized bed apparatus for cooling and handling powdered Covetic material in a fluid, according to one or more of the disclosed embodiments, is depicted. [Figure 27C] This is a schematic diagram of a plasma spraying process used for manufacturing powder covetic materials, according to one or more of the disclosed embodiments. [Figure 28-1] A method for fabricating components from powdered Covetic material using injection molding techniques is described according to some embodiments. [Figure 28-2] This figure, following Figure 28-1, illustrates a method for fabricating components from powdered Covetic material using injection molding techniques, according to some embodiments. [Figure 29] This exhibits various properties of covetic material. [Modes for carrying out the invention]

[0013] Aspects of this disclosure relate to approaches for producing copetic materials using thermal spraying techniques rather than by mixing carbon-based materials into a bulk molten metal slurry. Some embodiments relate to techniques for reducing the dimensions of interstitial carbon structures to the nanometer (nm) scale. The accompanying drawings and discussions herein provide exemplary environments, exemplary systems, and exemplary methods for producing “covetic” materials, which implicitly indicate that high concentrations (>6 wt%) of carbon are included, as commonly understood and defined herein, and that the carbon is incorporated into the metal (or metal-containing material) in a manner that does not separate during melting or magnetron sputtering. The resulting material has many unique and improved properties compared to the base metal from which the material is made. The carbon is dispersed in the metal matrix in several ways that contribute to improved material properties. The carbon often bonds very strongly with the copetic material and withstands many standard methods for detecting and characterizing its shape. The inclusion of nanoscale carbon increases the melting point and surface tension. Covetic material has higher warm work strength and cold work strength.

[0014] Identification of problems and opportunities and their significance Metal matrix composites can be constructed by combining a matrix of (at least) metal or metal alloy (particularly metals made by combining two or more metal elements to enhance strength or corrosion resistance) with stronger elastic ceramics, carbon-based reinforcing agents, or microfillers in the form of continuous or intermittent fibers, whiskers, or particles. The size of the reinforcing agent is important, as micron-sized reinforcing metals can exhibit improved strength and stiffness to an acceptable level superior to the base alloy. Nevertheless, such reinforcing agents may also exhibit undesirable poor ductility and undesirable low yield strength, machinability, and fracture toughness at the load limit due to undesirable agglomeration between particles during processing. To avoid premature cracking and other drawbacks of metal matrix composites containing unsuitable micron-sized reinforcing agents, it may be essential to reduce the size of the reinforcing phase to the nanometer scale. Furthermore, methods are needed to incorporate the reinforcing phase into the metal alloy matrix.

[0015] Significant increases in mechanical, thermal, electrical, and tribological properties (representing the science and engineering of interacting surfaces in relative motion) have been observed in correspondence with the addition of the carbon-based reinforcement described above. Notably, as the size of the reinforcement decreases from the micron scale to the nanoscale (e.g., <100 nm), such properties may change and / or improve due to increased cohesive forces between the matrix and particles. This improvement in properties may be due to the formation of strong interfaces that facilitate efficient strengthening mechanisms. Improvements in tensile and yield strength have been reported in comparison between nanoscale particles (approximately 20 nm) and micronscale particles (approximately 3.5 μm), although, given the same order of magnitude, the volume of nanoscale particles added is smaller than that of micronscale particles. Therefore, past techniques may not be able to provide reinforcement at the nanometer scale. Thus, it is currently necessary to reduce carbon structures containing interlattice vacancies to the nanometer scale.

[0016] Microwave (MW) plasma torch reactor Using a microwave (MW) plasma torch reactor, primitive 3D multi-layer graphene (FLG) particles can be continuously nucleated, for example in flight, in an atmospheric pressure vapor stream of a carbon-containing species such as methane gas, in which case such nucleation arises from initially synthesized carbon-based or carbon-containing "seed" particles. As densely packed, highly structured, tunable 3D mesoporous carbon-based particles, composed of multiple layers of FLG (e.g., 5 to 15 layers), grow from a carbon-containing species, the simultaneous incorporation of metallic elements or metallic alloys occurs, forming carbon-metallic composites that are at least partially covalently bonded (and at least partially metallicly or ionically bonded). These carbon-metallic composites are also referred to herein as "covetic" particle structures. In some embodiments, "primitive" graphene (representing graphene with few or no defects) is supplied to or generated in the MW torch reactor described, which is unoxidized or contains only a small amount of oxygen (e.g., <1%). In some embodiments, the metals are anchored to each other by metallic bonds (in the resulting covetic material), and the carbons are anchored to each other by covalent bonds (primarily) by covalent bonds (broadly in graphene or some other organized carbon-based 2D or 3D structures, e.g., in matrices or lattices). The composite carbon-metal structure may include covalent bonds between carbon atoms and metal atoms that arise at the metal-carbon interface.

[0017] The microwave plasma reactor process of this disclosure provides a reaction and processing environment in which gas-solid reactions can be controlled under non-equilibrium conditions (a non-equilibrium state refers to a physical system that is not in thermodynamic equilibrium but can be described in units of variables that represent extrapolations of the variables used to define a system in thermodynamic equilibrium. Non-equilibrium thermodynamics concerns transfer processes and chemical reaction rates, and the initial melting of metal powders can be controlled independently by ionization potential and momentum, along with thermal energy). After nucleation in situ (indicating that it is in place within the reactor or reaction chamber), solid, substantially solid, or semi-solid carbon-based particles can be deposited on a temperature-controlled substrate (such as a drum) in a layer-by-layer manner as they exit the plasma torch. The emerging particles can be sprayed onto a specific substrate and bonded to or within the substrate. In some cases, instead of using a substrate, the emerging semi-solid particles are aggregated to form one or more directionally organized, self-supporting structures. Unlike standard plasma torches, which are limited in terms of operating flow, power, and configuration, the microwave plasma torch of this disclosure, by incorporating control mechanisms (e.g., flow control, power control, temperature control, etc.), allows for independent control of the temperature and gas-solid reaction chemistry of one or more constituent materials to create a unique, densely packed, highly organized covalent carbon-metal structure with advantageous and remarkably high levels of uniformity.

[0018] The Covetic materials produced by the MW reactor technique of this disclosure offer various competitive advantages that cannot be obtained with current materials or products outside of this disclosure. One such advantage relates to the inherent scalability and versatility that allows for the formulation of unique, physically and chemically stable, general-purpose metal-carbon composites, which exhibit predictable deformation (stress, strain, elasticity, or some other verifiable physical characteristics) in various configurations and / or constructs, including, but not limited to, (1) high-density thin-film implants, (2) coatings, (3) thick strip materials, and (4) powder particles that can undergo subsequent remelting and casting and / or are used to form industrial metal alloy components. Any of the carbon-based metal composite implants, and / or coatings, and / or strip materials, and / or powder particles produced in the high-density thin-film MW reactor described above exhibit improved physical, chemical, and electrical properties compared to existing matrix metal alloy formulations.

[0019] overview The disclosure herein describes the integration of metals with low-amount nanofiller carbon-based materials such as graphene. Graphene is known for its inherent structural features, such as a high aspect ratio and a "2D" planar structure. Graphene has in-plane sp 2 The C=C bond (which results in a 2D planar shape) gives graphene surprisingly favorable mechanical, physical, thermal, and electrical properties. Therefore, graphene appears to function as an ideal reinforcing agent for metal matrix composites compared to alternatives such as polyacrylonitrile (PAN) carbon fibers used as microfillers. Furthermore, even at low graphene nanoplatelet content (amount added), an anisotropic 3D network is formed (indicating that the object or material exhibits different properties when measured in different directions), resulting in significant improvements in thermal and electrical conductivity as well as mechanical properties.

[0020] One problem encountered when using carbon nanofillers in metal matrix composites is the difficulty in dispersion due to poor wetting (the ability of a liquid to maintain contact with a solid surface, arising from intermolecular interactions when the two are in contact; the degree of wetting is called wettability, which is determined by the balance of forces between adhesion and tackiness). The increase in surface area provided by nanofillers causes particles to aggregate and cluster, and twisting due to van der Waals forces between carbon atoms. Aggregation and clustering of nanofillers in metal matrix composites can lead to the formation of undesirable cracks and pores, which can ultimately impair the structural integrity of the resulting material and lead to premature failure under high load or heavy use conditions.

[0021] Although numerous processing approaches have been (and may still be) used to manufacture metal matrix composites, such as conventional powder metallurgy, hot rolling, casting, and additive manufacturing, uniform dispersion of nanofillers remains a challenge. Damage to nanofillers due to stress during compaction, as well as undesirable or uncontrollable chemical reactions with the matrix at high temperatures during sintering and casting, are just some examples of the problems encountered in attempts to achieve nanofiller dispersion.

[0022] The defect-free basal surface of graphene exhibits exceptionally favorable chemical stability compared to the sides and edges of a graphene sheet. The sides and edges interact more readily with metals than the basal surface, potentially leading to carbide formation (which is thermodynamically favorable due to Gibbs free energy). However, defects can easily form on the basal surface during processing, potentially leading to adverse effects on carbide formation and composite properties. Therefore, relatively harsh processing conditions, such as high temperature and high pressure, can adversely affect the quality of the interface between carbon nanofillers and the surrounding metal matrix. Specifically, high temperature and high pressure can adversely affect wettability and structural integrity, potentially leading to undesirable effects on carbide formation and other harmful interfacial reactions.

[0023] By using an alternative process called the Covetic process (as introduced earlier), we successfully incorporated carbon nanofillers into a metal matrix. The Covetic process has shown that by using an applied electric field, a network of graphene "ribbons" and nanoparticles is formed within the liquid metal. This network exhibits exceptional stability within the metal matrix, even after remelting. Consequently, the composite structure conducts heat and electricity more efficiently than the base metal.

[0024] Uniform dispersion One of the challenges in incorporating graphene into a metal matrix was achieving uniform dispersion. Covetic material processing overcomes this problem through the accompanying delamination and wetting of graphene ribbons and / or particles within an applied electric field (either from carbon electrodes or from the breakdown of carbon adducts). Impurities such as oxygen and hydrogen can be controlled through redox reactions on the particle surface, and assuming the induced voltage on the surface is appropriate, wetting / dispersion can be promoted. The challenges include controlling the structural integrity and uniformity of the graphene ribbons and / or particles (e.g., uniformity with respect to dimensions, defects, etc.), controlling the chemical reactivity with the metal at high temperatures, and controlling the distribution of particles in the bulk and on the molten surface.

[0025] Further complexity The basic mode of energy conduction in metals (both thermal and electrical) can be (at least partially) carried out by electrons, and the thermal conductivity of the metal-matrix composite can be improved by controlling the crystallinity and degree of impurities of fillers such as graphene (when conduction is mediated by electrons in graphene). This requires either some degree of connectivity (registry) and / or coherence (e.g., integrally bonded nanoscale carbon) with the metal lattice (additionally or alternatively referred to as the scaffold, matrix, or structure) or a minimum platelet spacing (e.g., proximity or network) that limits conduction between platelets (for example, graphene would need to be a single layer or only a few layers, and its length would need to be around 10 nanometers). However, with respect to strengthening the metal matrix, graphene may need to chemically bond (and in some cases, physically bond) with the matrix for proper load transfer (note that for maximum load transfer, the length of graphene can exceed approximately 0.5 μm). Solid solution strengthening relies on the adhesion and / or semi-adhesive elastic strain between carbon (graphene) nanofillers and the metal lattice, but separately, discrete graphene nanoparticles can act as a barrier against dislocation deposition or pinning at grain boundaries (such as Hall-Petch grain refinement, which demonstrates a method of strengthening materials by changing the average crystallite (grain) size. This method is based on the understanding that grain boundaries are insurmountable boundaries for dislocations, and that the number of dislocations within a grain affects how stress is constructed in adjacent grains, which ultimately activates dislocation sources and thus allows dislocations in adjacent grains. Therefore, by changing the grain size, it is possible to influence the number of dislocations deposited at grain boundaries and thus bring strength), and both of these improve mechanical properties.

[0026] Once again, graphene, in addition to its alignment along slip surfaces within the metal structure, can be aligned along regions at grain boundaries thanks to its 2D properties and large surface area. Regardless of whether the properties of interest are chemical, mechanical, thermal, or electrical, the greater the alignment of the nanofiller and the degree of connectivity (registry) with the surrounding metal matrix crystal structure (at the atomic level), the greater the stability and improvement of the properties of the metal matrix composite structure.

[0027] Fundamentally, whether carbon grows on the metal surface (heterogeneous) or precipitates from the molten metal (homogeneous) depends on the solubility of carbon in the metal (as shown in the binary phase diagram on the right side of Figure 10). The solubility of carbon in pure transition metals (and generally many pure metals) is very low, for example, near the melting point of the metal, but increases when the temperature rises sufficiently above the melting point of the metal (e.g., above 2,000°C). The solubility of carbon in nickel is, for example, around 2.5% near the hypereutectic point, which is one of the higher levels of carbon solubility in pure metals. Note that adding interstitial impurities, such as oxygen, boron, or nitrogen, or substitution atoms to the metal can affect the solubility of carbon (for example, it may increase). It has been shown that the higher the solubility of carbon in the metal, or the higher the temperature of the molten metal, the thicker the carbon precipitate on the metal surface when the metal cools and solidifies. A key point to note is that carbon solubility is higher near the free surface, and this, combined with the interfacial energy of the liquid-air interface, is favorable for the deposition of solid carbon at the molten metal-air interface. The equipment and operating techniques for resolving the problems associated with this phenomenon will be discussed in conjunction with the drawings and corresponding explanations.

[0028] Use of definitions and drawings For ease of reference, some of the terms used in this description are defined below. The terms and their individual definitions presented are not strictly limited to those definitions. Some terms may be further defined by how they are used within this disclosure. The term “exemplary” is used herein to mean an example, case, or illustration. Any embodiment or design described herein as “exemplary” should not necessarily be construed as being preferable or advantageous to any other embodiment or design. Rather, the use of the word “exemplary” is intended to present a concept in a specific form. Where used in this application and the attached claims, the term “or” is intended to mean compatible “or” rather than exclusive “or.” That is, unless otherwise stated or evident from the context, “X utilizes A or B” is intended to mean any variation, including all of the above. That is, if X utilizes A, X utilizes B, or X utilizes both A and B, then “X utilizes A or B” is satisfied in any of the above examples. Where used herein, "at least one of A or B" means "at least one of A, or at least one of B, or at least one of both A and B." In other words, this phrase is disjunctive. Where used in this application and the appended claims, the articles "a" and "an" should generally be interpreted as meaning "one or more" unless otherwise specified or the context clearly indicates a singular form.

[0029] Various embodiments are described herein with reference to the drawings. The drawings are not necessarily to scale, and components of similar structures or functions may be represented by similar reference letters throughout the drawings. Similarly, the drawings are intended solely to facilitate the illustration of the disclosed embodiments. The disclosed embodiments are not exhaustive or representative of all possible embodiments, nor are they intended to impose any limitations on the claims. Furthermore, the illustrated embodiments do not necessarily depict all aspects or advantages of use in any particular environment.

[0030] Aspects or advantages described in conjunction with a particular embodiment are not necessarily limited to that embodiment and are applicable in any other embodiment, even if not described as such. Throughout this specification, references to “certain embodiments” or “other embodiments” indicate that a particular feature, structure, or characteristic described in relation to an embodiment is included in at least one embodiment. That is, occurrences of the phrase “in certain embodiments” or “in other embodiments” in various places throughout this application do not necessarily refer to the same embodiment (one or more). The disclosed embodiments are not intended to limit the scope of the claims.

[0031] Description of Embodiments Figure 1A is a comparative figure 1A00 showing two different Covetic material formation techniques 102 and example materials obtained by using each of them.

[0032] In conventional metal melting methods 103 for producing covetic materials, solid carbon is added to the molten metal. This conventional metal melting technique is controlled by the dynamics of carbide formation and interdiffusion across the solid-liquid (e.g., carbon-metal) interface under an applied current, where the applied current provides additional energy to eliminate stacking fault energy between carbon atoms and metal atoms. Thus, conventional metal melting techniques for forming covetic materials are not significantly different from other composite processing methods such as powder metallurgy and / or hot rolling. These composite processing methods involve consolidating second-phase particles into a metal matrix. Such conventional composite processing methods face many problems related to dispersion and / or distribution, reactivity, and variability of material properties. Furthermore, conventional covetic processing is batch-dependent and often suffers from inconsistent conversion rates and wide variability in the resulting properties.

[0033] As depicted in agglomeration image 105, when using the conventional metal melting method 103, the resulting material is plagued by the problem of extreme carbon agglomeration, which consequently (1) limits the role of carbon in reinforcing the lattice and (2) limits the possibility of adjusting the surface morphology for surface functionalization. In contrast, when using the technique of the present disclosure, the resulting material exhibits nearly uniform homogeneity (e.g., no agglomerates), which results from the uniform dispersion of carbon within the lattice. This is shown in homogeneity image 106.

[0034] Covetic materials, as depicted in homogeneous image 106, can be characterized by many desirable material properties 108, such as uniformity, high carbon content, and low carbon content on the surface. These properties are highly desirable and not exhibited in materials formed using conventional metal melting methods 103. Therefore, what is being pursued is an improved approach that overcomes the shortcomings of conventional metal melting methods 103.

[0035] One such improved approach involves the plasma spray torch method 104. The plasma spray torch method provides a consistent yield of Covetic material, thereby overcoming the yield shortcomings of conventional metal melting methods. Furthermore, the use of the plasma spray torch method yields Covetic material that retains the improved mechanical, thermal, and electrical properties mentioned above, thereby overcoming the shortcomings of materials obtained by conventional metal melting methods.

[0036] Improved approach As shown in the figure, the plasma spray torch method 104 can be configured to use the input material as introduced (providing a gaseous carbon-containing raw material such as methane, and adding energy to the raw material by applying MW energy toward the methane gas, etc.). However, at high temperatures, the carbon-containing gas (such as methane or other hydrocarbon sources) dissociates, and self-limiting monolayers of carbon, and more specifically, primordial graphene, can grow on or within a metal (e.g., copper, gold, zinc, tin, and lead) lattice. The number of monolayers depends, at least in part, on the solubility of carbon in the metal. The growth dynamics, bonding, and final structure of the graphene film on the metal substrate depend on the valence electrons and symmetry (closest-packed plane) of the metal. Similarly, when the metal grows on carbon, it may preferentially nucleate and grow at carbon defect sites, or selectively at oxygen or hydrogen-terminated sites. Subsequently, alternating layers of carbon and metal monolayers are formed, resulting in the improved properties of the graphene-reinforced metal composite structure.

[0037] By using a microwave plasma reactor, the nucleation and growth of primitive 3D multi-layer graphene particles can be continuously performed from a hydrocarbon gas source. Furthermore, by adding selected elements to the plasma gas flow, they can be incorporated into the 3D graphene particle scaffold. The microwave plasma reactor process provides a unique reaction environment in which gas-solid reactions can be controlled under non-equilibrium conditions (for example, ionization potential and momentum can be combined with thermal energy to independently control the chemical reaction). By introducing reactants into the plasma reactor zone as solids, liquids, or gases, the nucleation and growth dynamics of unique non-equilibrium structures (e.g., graphene on a metal, and metal on graphene) can be independently controlled.

[0038] For example, to fabricate integrated graphene-metal composites on a nanometer scale, fine nanometer-scale metal particles can be introduced into a microwave plasma torch along with a hydrocarbon gas such as methane. The methane dissociates into hydrogen and carbon (for example, by using an ideal-energy microwave plasma to form C and C2), which then nucleate on the semi-molten surface of the metal particles to grow regular graphene. Non-equilibrium energy states can be created by adjusting process conditions to independently control the metal temperature with respect to the reactivity and delivery of carbon to the metal surface. Ionized hydrogen (or other ions) in a controlled low-energy state can be used to act on / sputter the growing graphene surface and the metal surface without damaging the structure of the graphene-metal composition. This then promotes further growth of alternating graphene-metal layers. Furthermore, depending on the residence time and energy in the plasma reaction zone, metallic graphene structures with specific properties can be fabricated, and these specific properties are retained even when the metallic graphene structure is rapidly cooled during thermal spraying onto a substrate at a controlled temperature. By forming metallic graphene structures within a plasma with controlled energy and under controlled substrate temperature, independent control of the energy state is achieved throughout the entire evolution of these covetic materials.

[0039] Graphene can be applied (and / or deposited) onto a metal or metal-containing layer of a material by "sputtering" (a phenomenon in which microscopic particles of a material are ejected from its surface after the solid material itself is struck by energy particles of plasma or gas. The fact that sputtering can act on extremely thin layers of a material has been frequently utilized in science and industry, where it is used to perform precise etching, execute analytical techniques, and deposit thin film layers in the manufacture of optical coatings, semiconductor devices, and nanotechnology products). When such sputtering is used with the MW plasma reactor of this disclosure, the sputtering can be controlled by controlling the residence time and energy in the plasma reaction zone, as described, to promote the growth of alternating graphene metal layers. Such alternating graphene metal layers are organized on coherent planes of atoms in a regularly (e.g., crystallographic) arrangement. This crystallographic arrangement is also maintained when the graphene metal layer is rapidly quenched on a lower temperature substrate (in the field of materials science, quenching, or rapid / rapid quenching, refers to the rapid, controlled cooling of a workpiece in water, oil, or air to obtain certain material properties. Quenching, a type of heat treatment, prevents or controls unwanted low-temperature processes, such as phase transformations, by narrowing the time frame in which unwanted reactions become thermodynamically preferred and kinetically attainable. For example, quenching can reduce the grain size of both metallic and plastic materials and increase their hardness). Rapid quenching, as described, functions to essentially "freeze" the graphene with respect to the metal in the desired crystallographic arrangement formed in the plasma reactor (indicating that it is substantially maintained as a solid, rather than merely defined as a conventional phase change from liquid to solid). The homogeneity within and on the resulting material is extremely uniform. This extremely uniform homogeneity can be used to distinguish materials formed using the metal melting method 104. This is because the metal melting method 104 cannot control ion energy independently of thermal energy.More specifically, because the metal melting method 104 cannot raise the ionic energy as desired independently of the thermal energy, the temperature of the metal melting reaction chamber may become too high for the graphene metal layer, preventing the organization of the graphene metal layer on coherent planes of atoms in the desired crystallographic arrangement.

[0040] Therefore, when using the metal melting method 104, the desired crystallographic arrangement of the graphene metal can never be achieved, and thus, the desired crystallographic arrangement cannot be maintained even when the graphene metal layer is quenched on a lower temperature substrate. Instead, when using the metal melting method 104, unwanted carbon precipitation occurs (e.g., carbon precipitates from the melt), which then leads to unwanted aggregates, which in turn introduce heterogeneity into the product. This heterogeneity in the product can result in the chemical and / or physical (mechanical) properties of the resulting material falling short of the ideal, potentially leading to, for example, early mechanical defects, though not limited to these.

[0041] Figure 1B shows a high-resolution transmission electron microscope image 114 and a high-resolution energy-dispersive X-ray analysis image 116. For convenience, the homogeneous image 106 from Figure 1A is also shown here.

[0042] As depicted in this set of illustrative images, carbon is uniformly distributed throughout the metal lattice. This is highlighted in the high-resolution transmission electron microscope image 114. Furthermore, the extremely high carbon content in the metal lattice is clearly shown in the high-resolution energy-dispersive X-ray analysis image 116. In this example, the carbon content accounts for approximately 60% of the entire copper-carbon lattice. This is shown in the high-resolution energy-dispersive X-ray analysis image 116. In this particular image, the dark areas are carbon, and the bright areas (appearing as dots) are copper.

[0043] As can be seen from the image, and more specifically from the pattern of the high-resolution energy-dispersive X-ray analysis image 116, the carbon and the base metal (e.g., copper in this case) are uniformly dispersed. This uniform lattice-level dispersion is present on the surface, as shown in the figure, and furthermore, this uniform lattice-level dispersion is also present in the deeper parts of the base metal. Further images of the Covetic material are shown in Figures 20A1, 20A2, and 20B, which are after consideration of (1) the material propagation process, (2) the plasma spray torch apparatus, and (3) various configurations of the plasma spray torch.

[0044] In one use scenario, the Covetic material shown in Figure 1B can be manufactured using a tunable microwave plasma torch that rapidly and in large quantities produces integrated graphene-metal composite coatings. One specific manufacturing process in which graphene grows on molten metal particles is briefly described below.

[0045] Figure 2 illustrates a manufacturing process 200 for growing graphene on small molten particles. Optionally, one or more variations of manufacturing process 200 or any embodiment thereof can be implemented in the context of the constructs or functionalities of the embodiments described herein. Manufacturing process 200 or any embodiment thereof can be implemented in any environment.

[0046] One possible method involves using a "non-equilibrium energy" microwave plasma torch to control the metal temperature in a non-equilibrium manner, independently of carbon formation. This plasma torch energy is then directed towards the surface of molten and / or semi-molten metal particles. This technique allows time for growth to occur in the molten state. Growth in the molten (or semi-molten or core-shell material) generated in the torch flows through the main plasma plume to the metal surface where it grows, and is then rapidly quenched. This technique provides a means of growing thick films, which can be laminated to grow into homogeneous, thick ingots and / or grown in or on component parts that will later be machined or remelted for use.

[0047] Furthermore, Figure 2 is presented to illustrate the effect of independently controlling the constituent material temperature and gas-solid reaction chemistry when growing graphene on small molten particles. Figure 2 shows the progress through multiple processes of covetic material manufacturing and presents the processes used in the formation of covetic materials using a plasma torch.

[0048] As shown in the figure, the semi-solid particles emerging from the plasma torch can be deposited layer by layer onto a temperature-controlled substrate. Unlike standard plasma torches, which have limitations on the controllable flow as well as power and other configurations, the microwave plasma torch discussed here can be operated to independently control the constituent material temperature and the gas-solid reaction chemistry.

[0049] As can be seen from the above disclosure, microwave plasma sources can result in (for example) (1) higher plasma density, (2) ionic energy with a narrower ion energy distribution, and (3) improved coating properties. This is at least in part due to improved power coupling and (electromagnetic energy) absorption at 2.45 GHz. Depending on the pressure, the typical electron temperature is on the order of 1 eV to 15 eV, and >10 11 cm -3This results in a low plasma density. Such a low electron temperature is advantageous not only for controlling plasma chemical reactions but also for limiting ion energy, as well as for ion energy for argon-based coaxial microwave plasmas. Ion energy for argon-based coaxial microwave plasmas is typically in the range of 5 eV to 80 eV. As a result of the narrow plasma sheath formed using such high-density plasmas, collisional spreading of the ion energy distribution is suppressed, resulting in a sharper ion energy distribution, which helps in the precise control of certain film deposition processes. Furthermore, non-equilibrium energy can be formed and controlled by utilizing pulsed power in microwave plasmas. During the application of microwave energy, the power is delivered throughout the entire volume in which the plasma is to be formed, and therefore the energy is accumulated in a stepwise collisional energy type.

[0050] The above study in Figure 2 includes a technique for applying microwave energy power, which will be disclosed in more detail below.

[0051] Figure 3 shows a plasma energy phase diagram 300 illustrating how a pulsed microwave energy source is used to grow graphene on small molten particles.

[0052] Microwave plasma sources have the potential to achieve higher plasma density, narrower ion energy distribution, and improved coating properties as a result of improved power coupling and absorption at 2.45 GHz. Depending on the pressure, the typical electron temperature is on the order of 1 eV to 15 eV, and >10 11 cm -3This results in a high plasma density. Such a low electron temperature is advantageous not only for controlling plasma chemical reactions but also for limiting the ion energy, which is typically in the range of 5 eV to 80 eV for argon-based coaxial microwave plasmas. As a result of the narrow plasma sheath formed using such high-density plasmas, collisional spreading of the ion energy distribution is suppressed, resulting in a sharper ion energy distribution, which is necessary for the precise control of some film deposition processes. Furthermore, plasma non-equilibrium energy can be formed and controlled by using pulsed power for the power delivered to the microwave reactor. During the application of microwave energy, the power is delivered throughout the entire volume in which the plasma is to be formed, and therefore the energy is accumulated in a stepwise collisional energy type.

[0053] Once the initial plasma is formed in most of the volume, the energy is maximum at the delivery antenna and continues to increase in a very localized manner. The nearby plasma density decreases slightly until the plasma contracts. Further details regarding a general approach to fabricating and using pulsed microwave energy sources are described in U.S. Patent Publication No. 10,332,726, issued June 25, 2019, which is incorporated herein by reference in its entirety.

[0054] Figure 3 shows that the initial plasma energy is very high in the non-equilibrium state until it drops significantly at the stable temperature. More specifically, the plasma energy phase diagram depicts the transition from the initial high-energy non-equilibrium state to the lower-energy stable equilibrium state. Once the initial plasma is formed, the energy is maximum at the delivery antenna and continues to increase in a highly localized manner until the plasma contracts and energy is lost in the rest of the chamber due to energy shielding.

[0055] The pulsed microwave energy source can be controlled to optimize the electron temperature for growing graphene on small molten particles. This is particularly effective when the pressure is >>20 Torr. The chamber environment must be controlled to ensure that the chemical dissociation by the plasma is homogeneous, and that the coating of the material is also homogeneous.

[0056] As shown in Figure 3, the energy profile indicates a high initial energy level, followed by a decrease to a lower level, which remains at that level until the power is removed. The plasma then extinguishes and, upon reactivation, follows this energy cycle again. By shortening the time between initial plasma ignition and plasma stabilization, the plasma can remain primarily in the bulk of the system, causing a more homogeneous dissociation of the material in the bulk of the system. Shortening the time between initial plasma ignition and plasma stabilization can be achieved by controlling the pulse frequency and duty cycle.

[0057] One technique for controlling the electron temperature in a pulsed microwave reactor is shown and explained in relation to Figure 4.

[0058] Figure 4 illustrates an electronic temperature control technique 400 used to grow graphene on small molten particles. Optionally, one or more variations of the electronic temperature control technique 400 or any embodiment thereof are applicable in the context of the constructs or functionalities of the embodiments described herein. The electronic temperature control technique 400 or any embodiment thereof is applicable in any environment.

[0059] Figure 4 illustrates an embodiment relating to growing several layers of graphene on molten nanoscale particles, rather than mixing carbon into the bulk of the molten slurry. Specifically, this figure is presented in relation to the contribution of this technique to controlling the plasma temperature through the control of microwave pulse frequency.

[0060] Control of plasma temperature via pulse frequency control As depicted in Figure 3 above, the energy profile shows a high initial energy, followed by a suppression to a lower level, where it remains until the power is removed. The plasma then extinguishes and, upon reactivation, follows this energy cycle again. By shortening the time between initial plasma ignition and stabilization, the plasma can remain primarily in the bulk of the system, causing a more homogeneous dissociation of the material in the bulk of the system.

[0061] As shown in Figure 4, this effect is substantially dependent on the timing of the on / off cycle of the microwave energy source. By controlling the pulse frequency, optimal chemical dissociation and uniform coating can be achieved. Furthermore, the average temperature of the plasma can also be controlled by setting the pulse frequency.

[0062] Plasma temperature control in microwave plasma torches The integrated microwave plasma torch described herein is used to handle the formation of integrated, second-phase carbon-metal composite structures with improved mechanical, thermal, and electronic properties compared to existing metal alloys and conventional composite processing methods. Furthermore, the microwave plasma torch can be used to directly form carbon-metal composite coatings and particles on high-value asset components. Moreover, the above method and apparatus meet many clean energy objectives related to improved power distribution, efficient voltage transformation, and heat exchanger performance.

[0063] Practical applications of microwave plasma torches Integrated microwave plasma torch technology allows for the rapid and economical (e.g., highly cost-effective) deposition and / or formation of materials, enabling applications in a wide variety of configurations. Benefiting sectors of this technology include various energy production industries, particularly those related to power transmission and storage, the transportation industry, the military equipment industry, and many other manufacturing industries. One specific practical application is the use of plasma spraying to treat metal surfaces on aircraft, creating covetic material at the metal-air interface. This makes the metal surface more resistant to corrosion. Furthermore, carbon atoms near the surface allow other materials to chemically bond with and / or adhere to the surface. These other materials capable of chemically bonding with carbon atoms can be selected based on the requirements arising from various practical applications.

[0064] Another concrete example of practical application is the ability to treat the metal surfaces of flying vehicles (e.g., airplanes, helicopters, drones, projectiles, missiles, etc.) by plasma spraying to create a copetic material coating that acts as an infrared obscurant (e.g., as a countermeasure against detection).

[0065] Figure 5 illustrates a dual plasma torch apparatus 500 used for growing graphene on small molten particles. Optionally, one or more variants of the dual plasma torch apparatus 500 or any embodiment thereof are applicable in the context of the constructs or functionalities of the embodiments described herein. The dual plasma torch apparatus 500 or any embodiment thereof is applicable in any environment.

[0066] The following equipment configuration is used: (1) a metal plasma spray torch for spraying molten metal onto the surface of a heated substrate (such as Al, Cu, or Ag), and (2) a microwave plasma torch for delivering ionized carbon and plasma radicals to the molten surface so as to induce the growth of covetic bodies on the molten metal.

[0067] The system is placed in an inert gas environment or an atmospherically controlled chamber to provide better control over material oxidation. In one embodiment, the torch setup and operation shown in Figure 5 are as shown in Table 1, and their details are discussed below. [Table 1]

[0068] Step D1: Identification and selection of reactant materials Nanocarbon-metal composite structures can be formed by simultaneously plasma spraying any number of metals together with metastable carbon species. When forming 2D graphene at concentrations exceeding the thermodynamic solubility limit, different metals with high electrical and thermal conductivity can be used. In some cases, two different metals having different carbon solubility limits and / or different melting points and / or different densities and / or different crystalline structures can be selected.

[0069] Process D2: Selection, modification, and verification of microwave plasma torches and "standard" plasma spray torches. The apparatus in Figure 5 can be substantially composed of a “standard” readily available plasma spray torch and microwave plasma torch (in a particular embodiment). Having two torches allows for two different processing steps: (1) initial melting of a metal, and (2) nucleation / growth of graphene platelets from a hydrocarbon source. Each of the two torches can be controlled independently of the other.

[0070] As shown in Figure 5, the two torches are arranged for simultaneous or sequential operation. Specifically, a microwave plasma with a low electron temperature and high electron density can be used to optimize graphene formation (including nucleation rates at the carbon supersaturation limit), while a standard plasma spray torch can be used to heat metal powder / particles to a melted or semi-molten state, and then accelerate the particles (along with the nucleated ionized carbon / graphene) toward the substrate. The two independent flows can be harmonized to achieve fine-scale graphene growth on the surface of the semi-molten particles. In some cases, the dual-torch configuration includes means of maintaining an inert atmosphere (e.g., cover gas) in or near the torch outlet flow and in or around the impact region on the substrate surface. This is because contaminants from the ambient air (e.g., oxygen, nitrogen, and moisture) can affect the bonding between carbon atoms and metal atoms. Therefore, in certain embodiments, the dual-torch system is configured to be inserted into a fully controlled inert gas environment (e.g., a chamber) to provide effective control of material oxidation.

[0071] Process D3: Theoretical basis and definition of plasma processing parameters The reactants (e.g., hydrocarbons), inert gases, and flow are selected to ensure plasma stability and control the nucleation and growth processes within the plasma (e.g., the supersaturation limit and flow velocity of a given gas mixture). The acceleration and temperature of the metastable carbon are controlled during its motion from the plasma to the substrate. Accordingly, the process conditions of the standard plasma spray torch are set to produce a compacted thin film in which the carbon can collide and react. The surface temperature and local gas phase environment are controlled to promote the interaction and growth of the metastable carbon phase.

[0072] Process D4: Operation of dual (metallic and microwave) plasma torch Various parameters of both the metal and microwave plasma torch process frames are configured to be controlled independently, or, in some embodiments, to be controlled in conjunction with each other. One or more of the metal and microwave plasma torches (hereinafter referred to as the “dual plasma torch”) process frames for integrated carbon metal formation are characterized before, during, or after the operation. Furthermore, one or more parameters or combinations of parameters are selected, the deposition of carbon metal is observed, and the as-deposited sample can be characterized for various differences, including (but not limited to) morphology (e.g., using a scanning electron microscope (SEM)), structure (e.g., by X-ray diffraction (XRD) and Raman spectroscopy), and / or physical and chemical composition.

[0073] Figure 6 illustrates a pulsed microwave plasma spray torch apparatus 600 that is adjustable for growing graphene on small molten particles. As an example, one or more variants of the pulsed microwave plasma spray torch apparatus 600 (or any embodiment thereof) are applicable in the context of the constructs or functionalities of the embodiments described herein. The pulsed microwave plasma spray torch apparatus 600 (or any embodiment thereof) is applicable in any environment.

[0074] In this configuration, transverse electrical (TE) microwave power means are coupled on (or, in some embodiments, substantially through) the central dielectric tube to propagate microwave energy throughout the entire central dielectric tube. The gas supplied to the central region (in this example) can be a hydrocarbon gas such as methane that absorbs microwave radiation. Metal powder is supplied (carried by a substantially inert carrier gas) and heated within the body (or main chamber) of the pulsed microwave plasma spray torch apparatus 600 by a combination of plasma-derived energy and supplied thermal energy. Upon exposure to such energy, the metal powder reaches its melting point and melts, producing a viscous, fluid liquid material, or droplets (which may contain semi-solid material), or any other possible dispersion (highly dependent on the accompanying melting conditions).

[0075] As hydrocarbon gases decompose into their constituent elemental species, carbon radicals nucleate on the exposed surface of molten metal droplets. A combination of microwave energy control settings and thermal plume temperature settings allows for different temperatures between the melting temperature and the plasma decomposition / ionization temperature in the central region of the pulsed microwave plasma spray torch apparatus 600. The non-equilibrium state (indicating temperature, heat, etc.) within the central chamber or region of the plasma spray torch apparatus allows (or facilitates) graphene / carbon to occupy space within the lattice (meaning the synthesized lattice structure of the carbon material is positioned so that individual carbon and metal atoms can at least partially align with any input metal(s)), while rapid quenching creates conditions that promote the growth of covetic material. Figures 8A-8B, 12, 26C, and 26D show the internal lattice where the carbon and metal lattices are oriented so that carbon and metal atoms are at least partially aligned, and these figures are also presented in corresponding textual descriptions below.

[0076] The single integrated microwave plasma torch shown in Figure 6 can be configured and operated as described in Table 2 below. Details are described below. [Table 2]

[0077] Process S1: Deploy a single integrated microwave plasma torch. Figure 6 depicts a single, integrated microwave plasma torch. The torch has the capability to process solid, liquid, and vapor reactant species using small amounts of inert gas or differential exhaust vacuum (e.g.) to control the gas flow. The torch can be deployed in any environment (e.g., a laboratory, research facility, or large industrial company).

[0078] Step S2: Operate a single integrated microwave plasma torch to form a graphene-doped metal composite ("Covetic") alloy. Microwave energy is delivered via a collinear waveguide configuration with a centralized gas supply system for efficient microwave energy absorption. The microwave energy source is used to heat the metal to a semi-molten state. As CH4 (or other hydrocarbon source) decomposes (becoming its constituent species) in the exhaust plume directed into the surface wave plasma gas dissociation tube, carbon radicals can nucleate (e.g., in an organized, layer-by-layer manner) on the surface of the metal droplets via excitation by plasma radicals (directed towards the metal droplets). By adjusting the microwave thermal plume temperature and plasma energy, the temperature can be independently controlled between melting and plasma decomposition / ionization occurring within the central region of the pulsed microwave plasma spray torch apparatus 600.

[0079] Process conditions are measured and optimized. The desired process conditions are controlled by or for an integrated microwave plasma torch, thereby allowing the graphene-doped metal composite material to form directly within a single or multi-stage plasma reaction torch. By modulating the plasma torch within different regions of the surface wave plasma, the resonance (modulation) time can be improved and the formation of the desired metal-carbon structure can be optimized.

[0080] In addition to the process gas ports indicated in the depicted locations (e.g., for introducing hydrocarbon process gas 605), additional ports 604 may be provided at different locations. Such additional ports can be used to control how the process gas is introduced into the microwave field and to introduce other process gases. For example, the process gas may be SiH4 or NH3. In some embodiments, there may be multiple gas inlets or multiple particle inlets (e.g., one for carbon and one for metal), and the inlet locations may be positioned in different bands of the plasma torch.

[0081] By optimizing the above settings and conditions, as well as other conditions, a state is created on the substrate surface in which impact particles can be compacted to form a film. The deposited film is then analyzed and characterized according to the method outlined in step S3 below.

[0082] Process S3: Verify / characterize graphene (secondary phase) metal particles. The characterization of deposited integrated carbon-metal composite structures is achieved using multiple techniques. For example, X-ray photoelectron spectroscopy (XPS) and / or scanning electron microscope (SEM-EDS) can be used to determine the chemical composition, binding energy (nanoscale carbon detection), and distribution. Similarly, energy-dispersive X-ray spectroscopy (EDS) and / or scanning electron microscope (SEM), and / or Raman spectroscopy, and / or XRD can be used to determine the morphology and / or measure the particle size and structural characteristics. The electrical and thermal properties, as well as the tensile strength and elasticity of the composite material, can be evaluated using any known technique.

[0083] result The above technique uses a microwave plasma torch to continuously fabricate metal matrix composites. This process involves nucleation and growth zone formation of material within the plasma, followed by acceleration and collision zones for consolidation of the material on the substrate. Each zone provides unique control over the synthesis / composition and integration of different materials. In other words, the selective and unique formation of alloy particles within the plasma, followed by control of momentum (primarily velocity) and thermal energy during collisions with the substrate, enables a unique additional process for controlling consolidation parameters such as porosity, defect density, residual stress, chemical and thermal gradients, phase transformation, and anisotropy.

[0084] A variety of materials are selected for use across a wide range of growth dynamics within a plasma operating environment. Specifically, different hydrocarbon gas sources containing specific ratios of carbon to oxygen and hydrogen, as well as solid metal (or metal alloy) particle sources with different carbon solubility, melting points, and crystalline structures, can be processed through a pulsed energy plasma torch processing system. Therefore, specific plasma processing parameters can be identified in relation to the initial surface melting of the particles, nucleation / growth, 2D graphene incorporation, and re-sputtering of the metal on the metal surface.

[0085] When graphene is incorporated into a metal via a microwave plasma torch, the deposited material / film is characterized with respect to "covetic-like" properties. For example, such covetic-like properties can be characterized with respect to (e.g.) (1) chemical composition (e.g., for the detection of impurities or the shape of carbon), (2) carbon distribution (e.g., interstitial, indicating the position of carbon atoms or carbon species within the metal matrix or lattice, intragranular or intergranular), (3) electrical conductivity, and (4) mechanical strength of the material. Characterization may involve comparison between the graphene-added material and the non-alloy base metal. Furthermore, and strictly as an example, when deposited using a microwave plasma torch, the deposited material may exhibit a carbon-to-metal ratio across the entire range of approximately 3% to 90% (including these values). In some situations, the carbon-to-metal ratio may range across the entire range of approximately 10% to approximately 40% (including these values). In some situations, the carbon-to-metal ratio may range across the entire range of approximately 40% to approximately 80% (including these values). Depending on the circumstances, the carbon-to-metal ratio can range from approximately 80% to 90% (including these values). In some circumstances, the carbon-to-metal ratio can exceed 90% (including this value). The carbon-to-metal ratio may be influenced (or further influenced) by parameters or specifications defining the coating process (e.g., temperature, thickness, homogeneity, etc.).

[0086] Figure 7 is a diagram illustrating the coating process. This diagram shows a metal substrate which is subjected to plasma torch spraying of a covetic material, resulting in the synthesis of a composite carbon coating. The metal substrate may contain any one or more of copper, aluminum, or other bulk metallic materials. The covetic material may contain one or more of the following: carbon, graphene, nanoonions, carbon nanotubes (CNTs), carbide-injected materials, etc.

[0087] Plasma torch spraying works by coating the input material with a deposit material and can be operated using pulsed energy. As shown in the figure, the deposited material (e.g., by sputtering layer by layer) can be any one or more of carbon, metals (e.g., Al, Cu, Ti, Ta, etc.), and / or oxides or nitrides.

[0088] Several advantages emerge from using the torch described above. Among them, particularly, is the scalability and versatility of the process for compounding unique stable metal-carbon composites into various structures. These structures range from sufficiently dense thin-film coatings to thick strips or particles that are subsequently remelted and cast / formed into processed metal alloy components. Each of the chemical species across this range exhibits unexpectedly favorable (and desirable) improved mechanical, thermal, and electrical properties compared to existing base metal alloy compoundings. Furthermore, the controllability of the concentration and distribution of covalent 2D graphene in the metal alloy matrix beyond the thermodynamic solubility limit, as well as the lamination in a non-equilibrium environment, enables a novel class of composite materials that can be processed to meet specific application and / or specific property requirements. Moreover, this can be done at significantly reduced manufacturing costs compared to other techniques.

[0089] The improved mechanical, thermal, and electrical properties can be applied to the vast majority of applications using copper and aluminum alloys. Examples of such applications include (but are not limited to): conductive wires and high-voltage transmission cables, microelectronic temperature control and heat exchangers, and numerous applications using thin-film conductors, such as batteries, fuel cells, and photovoltaics. In detail, the combination of microwave plasma torch processes and feasible carbon-metal alloy manufacturing results in a significant reduction in energy consumption during manufacturing, as well as increased thermal efficiency and reduced electrical losses in end-use performance.

[0090] The plasma spraying techniques described above represent only one branch of the methods for producing copetic materials. Another branch includes spraying carbon particles onto molten metal particles. Such branch and the various chemical species included therein are shown and discussed with reference to Figures 8A–8B, 9, 10, 11, 12, 13, and 14, as well as in the descriptions of the drawings herein.

[0091] Figures 8A and 8B are schematic diagrams illustrating a plasma spraying process 800 used to spray carbon particles onto small molten particles. Optionally, one or more variations of the plasma spraying process 800 (or any embodiment thereof) are applicable in the context of the constructs or functionalities of the embodiments described herein. The plasma spraying process 800 or any embodiment thereof is applicable in any environment.

[0092] The plasma spraying technique shown in the figure is used in various coating processes in which heated material is sprayed onto a surface. The raw material (e.g., coating precursor) is heated by electrical means (e.g., plasma or arc) and / or chemical means (e.g., combustion flame). By using such plasma spraying techniques, coatings with thicknesses ranging from approximately 20 μm to approximately 3 mm can be provided, depending on the process and raw material. The coating can be applied over a wide area at a high deposition rate. With the above technique, the deposition rate is significantly faster than that achievable by conventional coating processes, such as electroplating or physical and chemical vapor deposition.

[0093] In addition to (or instead of) the example materials listed above, other types of coating materials usable for plasma spraying include metals, alloys, ceramics, plastics, and composites. These materials are supplied to the spray torch in powder or wire form, then heated to a melted or semi-molten state, and accelerated toward the substrate in the form of micrometer-sized particles. Combustion or electrical arc discharge can be used as the energy source for plasma spraying. The resulting coating is formed by the accumulation of multiple layers of sprayed particles. In many applications, the surface of the substrate is not heated very much, and therefore the coating of many materials, including the most flammable substances, is facilitated.

[0094] Figure 9 is a scanning electron microscope image 900 showing the effect of thermal spraying carbon particles (e.g., with a particle size of 20 nm to 40 microns) onto molten metal particles. The carbon particles sprayed onto molten metal particles can be used in a variety of specialized applications. For example, plasma-aluminum-graphite composites can be specifically designed to provide coatings for turbine engines. Alternative examples include the use of aluminum and titanium alloys. The growth rate of this plasma-sprayed coating material is parabolic. The plasma-sprayed coating material precipitates in a short time, and this precipitation is largely independent of temperature. For the preparation of the material surface, certain processes include preheating the material. In some embodiments, blasting with grit is also performed for the preparation of the material surface. In some embodiments, some of the particles sprayed onto the surface form covetic bonds with the substrate surface while they are still sufficiently hot. In other cases, the molten particles are at a temperature at which they form metal-metallic bonds.

[0095] The use of the microwave plasma torch technique described herein enables the production of materials with improved performance compared to the use of conventional torches. Specifically, the inherent power control limitations and other constructive constraints of conventional plasma torches limit their ability to independently control the input material and other conditions, an ability necessary for producing carbon that is effective in producing covetic materials exhibiting significantly higher quality and homogeneity.

[0096] Figure 10 shows a diagram and a binary phase diagram illustrating the graphene growth temperature profile 1000. Optionally, one or more variants of the graphene growth temperature profile 1000 or any embodiment thereof are applicable in the context of the constructs or functionalities of the embodiments described herein. The graphene growth temperature profile 1000 or any embodiment thereof is applicable in any environment. The figure also shows a binary phase diagram, in which the X-axis represents the carbon concentration in the selected metal (e.g., copper, as shown in the figure) in atomic percent. The temperature of the temperature profile in the figure is also shown in the phase diagram. Various metals are usable (e.g., silver, tin, etc.). In some cases, alloys are formed.

[0097] The concept behind growing single-layer graphene (SLG) or multi-layer graphene (FLG) on molten metal is to dissolve carbon atoms in a transition metal molten liquid at a specific temperature, and then, at a lower temperature, to precipitate the molten carbon (showing the creation of a solid from a solution).

[0098] The schematic diagram illustrates graphene growth from molten nickel as follows (for example): (1) melting nickel in contact with graphite (as a carbon source), (2) dissolving carbon in the molten material at a high temperature, and (3) decreasing the temperature to grow graphene.

[0099] As shown in the diagram, by maintaining the molten liquid in contact with the carbon source at a predetermined temperature, dissolution of carbon atoms into the molten liquid and saturation of carbon atoms in the molten liquid occur based on a metal-carbon binary phase transition. If the temperature is lowered, the solubility of carbon in the molten metal decreases, and an excess amount of carbon precipitates at the top of the molten liquid.

[0100] Figure 11 is a cross-sectional view of a (conventional) plasma flame apparatus 1100. This figure is presented to distinguish it from the use of past plasma flame apparatuses in comparison to the use of microwave plasma torches in this disclosure. Specifically, while the use of past plasma flame apparatuses can produce diamond or diamond-like materials on metal surfaces, this process requires considerable time to dissolve and diffuse the carbon material so that the final material precipitates on the metal surface. When manufacturing metal-carbon composite materials as disclosed herein using embodiments of this disclosure, it is desirable that graphene grows interstitially in the interlayers (or within the lattice or matrix portions) of the metal or metal-containing composite material and is fixed therein. However, to do so, the temperature must be controlled rapidly. Unfortunately, past plasma torches do not provide substantial control of temperature and other conditions (as desired in relation to achieving covetic materials as desired herein) required to reduce the dimensions of the interstitial carbon structure to the nanometer scale.

[0101] In contrast, the pulsed microwave reactor (as related to the embodiments of the present disclosure introduced above) and the corresponding process are shown and described in Figure 12, providing sufficient detail regarding the control of temperature and other conditions required to reduce the dimensions of the interstitial carbon structure to the nanometer scale.

[0102] Figure 12 depicts the pulsed microwave process flow 1200 used when “growing” graphene, where “growing” refers to the orderly deposition or application of graphene layer by layer onto a substantially flat exposed surface of molten metal particles. Optionally, one or more variants of the pulsed microwave process flow 1200 or any embodiment thereof are practicable in the context of the constructs or functionalities of the embodiments described herein. The pulsed microwave process flow 1200 or any embodiment thereof is practicable in any environment.

[0103] When using the pulsed microwave process flow 1200 shown, graphene grows on small molten particles. This is achieved by interactions occurring around the inlet 1204 in the pulsed microwave reactor (e.g., where the metal powder and carrier gas enter the reactor chamber). In addition to the inlet 1204, process gas ports 1202 and additional ports (e.g., additional ports 12031 and 12032) are provided at different heights on the side of the reactor apparatus. Waveguides traverse at least the distance from the location of the process gas port 1202 on the side of the reactor to the location of the inlet 1204 on the side of the reactor. Further details on how the ports are made and used to introduce and continuously supply material into such a reactor for growing graphene on small molten particles are disclosed below. In more detail, certain components of the reactor in Figure 12 are shown and described in relation to Figure 13.

[0104] Figure 13 is a perspective view of a conventional pulsed microwave plasma spray waveguide apparatus 1300 used for growing graphene on small molten particles. Optionally, one or more variations of the pulsed microwave plasma spray waveguide apparatus 1300 or any embodiment thereof are applicable in the context of the constructs or functionalities of the embodiments described herein. The pulsed microwave plasma spray waveguide apparatus 1300 or any embodiment thereof is applicable in any environment.

[0105] In this embodiment, the microwave delivery components and pulsed power supply are integrated to form a "surfaguide" (or similar) gas reactor. As shown in the figure, this combination of components is configured to facilitate the growth of graphene on small molten particles using a microwave plasma torch.

[0106] An alternative approach involves performing micro-welding using a tungsten inert gas (TIG) plasma source to partially or completely melt the metal. Such micro-welding techniques are shown and described in relation to Figure 14.

[0107] Figure 14 is a schematic diagram of micro-welding technique 1400 used to grow graphene on small molten particles. Optionally, one or more variations of micro-welding technique 1400 or any embodiment thereof can be practiced in the context of the structures or functionalities of the embodiments described herein. Micro-welding technique 1400 or any embodiment thereof can be practiced in any environment.

[0108] By effectively utilizing a low-power, low-flow TIG welding machine power supply and a control unit with a custom plasma storage compartment, all types of metal particles can be heated. As shown in the figure, the exhaust plume, when introduced into the surface wave plasma gas dissociation tube, maintains a temperature high enough for graphene growth. This growth mode, which involves controlling plasma radicals composed of hydrocarbons and other additive gases formed under non-equilibrium conditions, provides numerous control opportunities available with microwave plasma spraying systems of diverse configurations. Figures 15, 18A, 18B, 18C, and 18D, as well as other drawings and corresponding descriptions, disclose exemplary configurations of plasma spraying systems.

[0109] Figure 15 is a schematic diagram of a plasma spraying apparatus with a coaxial configuration 1500. Optionally, one or more variations of the coaxial configuration 1500 or any embodiment thereof are applicable in the context of the structures or functionalities of the embodiments described herein. The coaxial configuration 1500 or any embodiment thereof is applicable in any environment.

[0110] In the coaxial configuration, microwave energy delivery is achieved via TEM waves supplied to the antenna, where the outer portion of the antenna's coaxial member is a quartz tube through which powdered metal particles flow. In this example, the gas supplied to the central region is a hydrocarbon gas such as methane, which absorbs microwave radiation. The powder is heated by microwave energy leaking from the central region and by external induction heating, which causes the metal powder (particle shape) to melt near the inclined portion or top of the reaction chamber. As CH4 decomposes (becoming its constituent species, carbon, hydrogen, and / or derivatives), carbon radicals nucleate on the surface of the molten metal droplets via the energy of plasma radicals. Controlling the microwave duty cycle, as well as the induction heating and plasma properties, facilitates the maintenance of a temperature difference between the melting and plasma decomposition / ionization regions. Furthermore, the non-equilibrium temperature enables (and facilitates) the lattice arrangement of graphene / carbon, and the rapid quench creates conditions that promote further growth of the covetic material.

[0111] Figure 16 is a schematic diagram of a plasma spraying apparatus 1600 showing the evolution of a material by processing through a series of non-equilibrium energy states. Optionally, one or more variations of the plasma spraying apparatus 1600 (or any embodiment thereof) are applicable in the context of the structures or functionalities of the embodiments described herein. The plasma spraying apparatus 1600 or any embodiment thereof is applicable in any environment.

[0112] This diagram illustrates how the material evolves as it passes through the apparatus. Specifically, it depicts a region near the tip where a different evolutionary change occurs, causing graphene to grow on small particles of molten metal. This material then deposits onto the substrate.

[0113] Figure 17 depicts a surface wave plasma system 1700 for growing graphene on molten particles. Optionally, one or more variants of the surface wave plasma system 1700 or any embodiment thereof are applicable in the context of the constructs or functionalities of the embodiments described herein. The surface wave plasma system 1700 or any embodiment thereof is applicable in any environment.

[0114] In the configuration shown, the supply gas is supplied to the central region of the apparatus. In this example, a hydrocarbon gas such as methane is used. The hydrocarbon gas absorbs microwave radiation, which provides a heat source for heating the metal powder. Thus, the metal powder is heated by both: (1) microwave energy leaking from the central region, and (2) external inductive heating to melt it near the tip into a molten liquid. As the hydrocarbon gas decomposes, carbon radicals nucleate on the surface of the molten metal droplets via the energy of plasma radicals.

[0115] Figure 18A1 depicts the axial electric field configuration 1810 of a plasma spray torch. The formation of covetic material has been investigated using several different apparatuses and corresponding processes. Any of the above apparatuses and corresponding processes can be adjusted to achieve specific conditions for the formation of covetic material. In the specific axial electric field configuration shown in the figure, the process involves forming an electric field 1804 between electrodes to create a current through the molten metallic and carbon materials. Specifically, as shown in the figure, the specially configured plasma torch has an externally controlled electric field where molten particles form a plasma, which then becomes the meta electrode. The electrode on the opposite side of the electric field is formed by the growth plate 1803 shown. The covetic material is accelerated through an acceleration zone 1821 and then deposited on the surface. The generated alloy and covetic material continue to deposit on the growth plate and / or on the previously deposited material in the impact zone 1823. This deposition technique results in a material with homogeneous and high-concentration carbon doping.

[0116] The input material can be selected and modified to achieve a material exhibiting specific properties. For example, as shown in the figure, the input material to the plasma spray torch can include various input gases 1812 and input metal and / or carbon particles 1818. The above input material can be introduced into one or more input ports 1862. In some cases, the input metal and / or carbon particles are mixed into the flow of input gas 1812. Furthermore, the growth plate can change its dimensions and composition during the progress of deposition. For example, as shown in the figure, the growth plate 1803 can initially be a substrate 1816, on which the torch flow of thermal covetic material is deposited, and as this thermal covetic material is deposited, at least partially melts the substrate. The deposited thermal covetic material is cooled from a molten or partially molten state to form a quenched layer 1824.

[0117] In this configuration, any number of layers can be formed. The temperature of the substrate and / or the uppermost layer, or near it, can be controlled so that when the next layer of material lands on the molten metal of the immediately preceding layer, the newly deposited layer grows laterally to produce a single layer of graphene on the surface of this molten metal. This mechanism is distinguished from other techniques, at least in that respect, by the application of the plasma spray torch method 104 of this disclosure, in contrast to conventional metal melting methods 103, where carbon precipitates from the molten metal slurry, in which case the application of the plasma spray torch method 104 results in a quench so short that it is not sufficient for carbon to precipitate from the matrix. Thus, the covetic bond is maintained throughout the layers. Immediately after the quench has formed a solid consisting of metal and well-dispersed carbon, another layer is sprayed onto the top of that solid, thereby forming stacked single layers of graphene, which grow, are fixed, and rapidly quenched to produce a true covetic material with an extremely high carbon content in the matrix. As one example, using the conventional metal melting method 103 (see Figure 1A), it is possible to achieve a carbon content of 6% in the metal. In contrast, using the plasma spray torch method 104 (see Figure 1A), a carbon content of 60% can be easily achieved. In some cases, by precisely controlling the input and plasma spray torch process parameters and their environment, it is possible to achieve a carbon content approaching 90% in the resulting material.

[0118] Experimental results using a plasma spray torch demonstrated that highly uniform covetic layers with high additive content can be formed by at least two rapid quenching (e.g., "splatting") methods. The first method involves covering metal particles with carbon particles (e.g., in the plasma) and spraying the resulting thermal mixture onto a substrate at a considerably lower temperature. The second method involves generating graphene in the plasma and then covering the graphene with molten metal. In both cases, true covetic bonding (representing a combination of covalent and metal-chemical bonding) is formed while the material is in the plasma plume, and the rapid quenching of the sprayed material acts to fix the mixture within the organometallic lattice.

[0119] The depth or thickness of the quenched layer can be increased or decreased by controlling the distance between the plasma flame 1814 and the substrate, and / or by controlling the temperature of the substrate (e.g., making it either hotter or colder than the ambient temperature), and / or by controlling the pressure in and around the reactor.

[0120] Figure 18B depicts the radial electric field configuration 1820 of a plasma spray torch. In this configuration, molten particles form a plasma within the torch, and this plasma becomes the metaelectrode. The other electrode is formed by the sides of the inner wall.

[0121] The configurations shown in Figures 18A and 18B above are merely examples. Different configurations, including different feed materials and different feed port configurations, are possible without deviating from the concept of the plasma spray torch disclosed herein. Moreover, different configurations, including different feed materials and different feed port configurations, can achieve the same intended results. For example, two different configurations adjusted to obtain the same material product are shown and described in relation to Figures 18C and 18D. Specifically, the exemplary configurations in Figures 18C and 18D can be used to plasma spray torch deposition of ceramic coating material onto carbon-containing particles (e.g., graphene-containing particles).

[0122] In fact, thin film deposition of carbon-containing materials (e.g., via atmospheric pressure chemical vapor deposition (APECVD) and / or other variants of chemical vapor deposition (CVD)) has been utilized in many areas of materials processing. Various composites and coatings containing such carbon-containing materials can exhibit improved physical properties (e.g., strength, corrosion impermeability, etc.). The various morphological features of 2D and 3D carbon, thanks to the molecular-level configuration within the carbon-containing material, allow these improvements in physical properties to be exerted in composites and coatings. In some cases, the use of 2D and 3D carbon in composites and coatings significantly increases the high-temperature impermeability of the resulting carbon-containing material. However, in some cases, these temperatures exceed approximately 2100°C, which is high enough to cause the 2D and 3D carbon itself to burn. Unfortunately, when the 2D and 3D carbon are destroyed, the benefits originally gained from the carbon in the composite or coating are then destroyed. Therefore, deposition techniques (e.g., plasma spray torch configurations) need to produce composites or coatings that are unaffected by temperature, even at temperatures higher than the carbon's combustion temperature.

[0123] Figure 18C depicts such a configuration, but this is strictly an indefinite example. By adjusting the input and various reactor conditions, graphene-containing materials can be coated with a heat-absorbing layer of organically modified silicon (ORMOSIL). Depositing ORMOSIL ceramic material onto graphene-containing materials is achievable by several methods, including through an atmospheric-pressure reactive plasma-assisted chemical vapor deposition process using a silicon-containing precursor 1841 (e.g., hexamethyldisiloxane) and a reactive gas such as oxygen. This particular mixture of silicon-containing precursor and oxygen becomes reactive in the plasma. Molecular dissociation occurring in the plasma flame leads to the deposition of silicon oxide on surfaces such as the growth plate 1803 described above. To achieve this, reactor conditions are controlled so that as carbon-containing particles are formed in the reactor, organically modified silicon ceramics are deposited on their surfaces. Control of reactor growth and deposition (e.g., by controlling the APECVD process) results in a thin quartz coating around the carbon-containing particles, which then deposit onto the substrate. This thin quartz coating acts as a flame retardant layer, protecting the carbon-containing particles from combustion at high temperatures.

[0124] Figure 18D depicts an alternative configuration, which is strictly an example of a non-limiting design. As shown in the figure, a metal and / or carbon-containing material is introduced into the reactor. The microwave energy 1822 is controlled to at least achieve a temperature that dissociates the carbon-containing material (e.g., T(c-dissolution) in Figure 10). A silicon-containing precursor 1841 (e.g., HMDSO, HMDSN, etc.) is introduced into the plasma flame, and the temperature decreases in the plasma afterglow. As the temperature decreases, carbon particles begin to form and are coated with silicon oxide. The silicon oxide-coated carbon particles are then deposited on the substrate.

[0125] In one embodiment, a thin layer of such 3D material, approximately 10 nm thick, can be deposited on a substrate, and this layer will not burn or ignite even at 1200°C. This is because the primitive carbon (e.g., graphene) is crystallized, for example, it is not an amorphous material. Rather, the carbon is simply broken down to a point where it cannot burn any further.

[0126] In one application, the plasma spraying torch technique described above can be used to produce a new type of non-eutectic solder. Alternatively, in another application, the plasma spraying torch can be used to spray a coating material directly onto a substrate to prevent oxidation of the underlying material.

[0127] Placing quartz around a material often offers significant application advantages, in addition to creating a material that will not ignite even at 1200°C under atmospheric pressure.

[0128] Not only organically modified silicon, but other organic substances can be used to coat carbon particles or carbon layers. The properties of the coating are controllable. For example, the pores on the surface of the material being sprayed can be modified to make it hydrodynamically smooth.

[0129] Using a plasma spray torch, glass-coated heat-absorbing, non-flammable graphene can be formed, composed of graphene and silicon, in which case the silicon coats the graphene so that it can withstand temperatures exceeding 1600°C. Such glass-coated heat-absorbing, non-flammable graphene absorbs infrared energy.

[0130] One specific method for producing an organically modified silicon coating includes the following steps (for example): (1) introducing a silicon-containing precursor into a plasma spray torch apparatus; (2) mixing the silicon-containing precursor with a carrier gas containing carbon particles, the carrier gas being accompanied by a precursor gas; and (3) coating the carbon particles with silicon.

[0131] The flame retardant and infrared-canceling properties of materials obtained from the plasma spray torch configurations of Figure 18C and / or Figure 18D can be controlled, at least in part, by controlling the time-temperature path through the reactor. More generally, the properties of materials obtained from the plasma spray torch configurations of Figure 18A, Figure 18B, Figure 18C, or Figure 18D can be controlled, at least in part, by controlling (e.g., pulsing) the microwave energy in the reactor.

[0132] Figure 19 is a diagram illustrating the energy versus time between pulse-on and pulse-off cycles. More specifically, the diagram shows one full time cycle, where the microwave is continuously on from T=0 to 50 microseconds, and the remainder of the cycle depicted then illustrates the time when the microwave is off. The plotted curves illustrate (1) the change in density and (2) the change in temperature over the cycle. At T=0, the temperature is at its lowest point (for example, as drawn at the beginning of the diagram). The temperature rises rapidly and then falls, but in the time leading up to this, the plasma density has reached a relatively stable value. When the microwave is turned off at T=50 microseconds, both the plasma density and the electron temperature over time fall rapidly. The pulse time and duty cycle can be controlled to achieve specific densities and times at any given time.

[0133] Figure 20A1 shows an image illustrating the organometallic bond formed when carbon and copper are combined using a plasma spray torch. As shown in the figure, carbon 2052 is deeply embedded within copper 2054. As is commonly understood and as referred to herein, organometallic chemistry refers to the study of organometallic compounds, i.e., chemical substances that have at least one chemical bond between a carbon atom of an organic molecule and a metal, including alkali metals, alkaline earth metals, and transition metals, and is sometimes expanded to include metalloids such as boron, silicon, and tin. Apart from bonds with organyl fragments or molecules, bonds with "inorganic" carbon such as carbon monoxide (metallic carbonyl), cyanides, or carbides are also generally considered organometallic. Related compounds, such as transition metal hydrides and metal phosphine complexes, may be included in the study of organometallic compounds, but strictly speaking, they are not necessarily organometallic.

[0134] In the field of organometallic chemistry, organocopper compounds are compounds that have a chemical bond between carbon and copper and may possess unique physical properties, synthesis, and reactivity. Organocopper compounds may exhibit diversity in structure and reactivity, but their oxidation state is copper(I), for example, Cu + There is still a slight limitation that it is represented as d. 10 As a metal center, copper(I) is related to Ni(O), but its oxidation state is higher, resulting in less involvement in π-back donation. Organic derivatives of Cu(II) and Cu(III) may appear as intermediates, but these are rarely observed, let alone isolated. Geometrically, copper(I) adopts a symmetric structure in accordance with its spherical electron shell. Typically, it can adopt one of three coordination structures: linear two-coordination, triangular three-coordination, and tetrahedral four-coordination. Organocopper compounds can use a variety of soft ligands, such as alkylphosphines (R3P), thioethers (R2S), and cyanides (CN). - It forms a complex with ).

[0135] By one or more of the above techniques, the carbon depicted in Figures 20A1 and 20A2 chemically bonds with the copper. This is in contrast to merely attaching to the copper by van der Waals forces (e.g., exhibiting distance-dependent interactions between atoms or molecules) when juxtaposed with it. Unlike ionic or covalent bonds, van der Waals forces do not arise from chemical electron bonding. Van der Waals forces are relatively weak and therefore more susceptible to disturbances. Moreover, van der Waals forces quickly disappear as the distance between interacting molecules increases. Instead, the desirable outcome is an organometallic bond between the metal and carbon.

[0136] Figure 20A2 shows an image of a graded composition applied to a substrate material, and the image shows three material property bands. The bulk metal band 2066 is the first of these three material property bands. As shown in the figure, the first material property band contains metal in the first crystallographic configuration, and the first crystallographic configuration has substantial metallic bonds between the metal atoms present in the first material property band. This first material property band is substantially adjacent to the second material property band, and this second material property band overlaps with the first material property band at least partially. The covetic material band 2064 contains at least some carbon atoms in the second crystallographic configuration, and the second crystallographic configuration has at least some covalent bonds between some of the carbon atoms present in the second material property band and some of the metal atoms present in the first material property band. The apex band 2062 is the third material property band, and this third material property band overlaps with the second material property band at least partially. This apex band contains further carbon atoms oriented in the third crystallographic configuration. The third crystallographic arrangement is characterized by having at least several covalent bonds between each of the additional carbon atoms present in the third material property band. In various embodiments, some metal atoms may be present in any of these material property bands, and some carbon atoms may be present in any of these material property bands, but this embodiment is characterized in that the metal-rich band 2074 is adjacent to the bulk metal band 2066. In various embodiments, here some carbon atoms may be present in any of these material property bands, and there some metal atoms may be present in any of these material property bands, but this embodiment is characterized in that the carbon-rich band 2072 is adjacent to the apex band 2062.

[0137] Figure 20B is a material evolution diagram 20B00 depicting a multi-layered structure resulting from the addition of carbon to bulk aluminum. In these embodiments, the material is sprayed onto an existing, carbon-rich covetic substrate or carbide layer to generate carbon-carbon bonds through carbon sintering and / or metal fusion encapsulation, which then lead to adhesion and the formation of a composite film. Material evolution diagram 20B00 is just one example of a composite material (silicon carbide) sprayed onto an aluminum bulk material. The process can be modified to produce a covetic or covetic-like film deposited on the bulk material. The resulting material can then be coated to create a functional top layer. One possible configuration of an apparatus for spraying the composite material onto a substrate is shown in Figure 21A.

[0138] Figure 21A depicts an apparatus for thermal spraying a molten mixture of material onto a substrate. This figure depicts a microwave reactor with multiple regions inside a containment vessel. Pulsed microwave energy is delivered into the containment vessel. Hydrocarbon process gas 605 is supplied through the inlet. The microwave energy heats the process gas to a temperature sufficient to form a plasma. A plasma plume is generated as the material expands within the containment vessel. Continuous addition of material into the containment vessel, coupled with the expansion described above, produces a torch effect in and around the plume. As the plasma plume and its surroundings become hot, carbon dissociates with hydrogen, forming several different hydrocarbon species (e.g., CH3, CH2). As the temperature continues to rise (e.g., in the first region 2104 as shown in the figure), all or almost all carbon atoms dissociate with hydrogen. By using any known technique (e.g., using a gas-solid separator), the hydrogen-only chemical species is separated from the solid carbon species.

[0139] At the interface between the first region 2104 and the second region 2106 of the containment vessel, molten metal or molten metal composite, or molten ceramic metal, or metal matrix, or any kind of metal mixture is introduced into the containment vessel through a second inlet (as shown in the figure). The location of the second inlet is selected based on the dimensions of the plasma plume and / or the temperature of the molten metal at the inlet point into the containment vessel. More specifically, the molten metal 2108 is introduced into the reactor where the molten metal mixes with the carbon species. As the mixture flows through the containment vessel (e.g., at high speed), the temperature of the mixture decreases. The flowing mixture exits the containment vessel at high speed so that the mixture of carbon and molten metal is sprayed from the outlet 2110. The mixture is deposited on the target substrate 2116 (e.g., via spraying of spray material 2112). Various mechanisms for controlling the uniformity of the spray material 2112 and / or the resulting deposited material 2114 are shown and discussed in relation to Figures 23A to 23D.

[0140] The temperature in the second region is low enough for at least some of the carbon to precipitate from the mixture. However, the majority of the dissociated carbon remains in the mixture with the molten metal. The molten metal mixed with the carbon cools to a solid when it reaches the target substrate 2116. During the transition from the molten mixture to the solid deposit, the carbon is trapped between the metal and carbon layers. At a certain temperature, the carbon forms covalent bonds with the metal, resulting in a covetic material. This covetic material exhibits a range of mechanical, thermal, electrical, and tribological properties due to the increased cohesive forces (e.g., covalent bonds) between the metal matrix and the carbon.

[0141] Such Covetic materials are the result of utilizing pulsed microwave energy to control the energy distribution of the material components in the first and second regions of the reactor. More specifically, the energy distribution of the material components in the first and second regions of the reactor can be controlled partly by the use of pulsed microwaves and partly by pre-melting metal particles in the external environment of the reactor chamber (e.g., by introducing fully molten or partially molten metal into the reactor chamber). Any known technique can be used alone or in combination with the melting of metal particles. This allows for control over the degree to which the particles are fully or partially molten and / or their mixing.

[0142] Figure 21B illustrates a method for thermal spraying Covetic material onto a substrate. This method can be used in conjunction with the apparatus shown in Figure 21A. As shown in the figure, this method is carried out using a microwave reactor equipped with an inlet for process gas, an inlet for molten metal, and an outlet. Before the operation, the microwave reactor is positioned (operation 21B02). In operation 21B10, the inlet introduces hydrocarbon process gas into the first region of the reactor. Microwave energy is used to raise the temperature of the first region of the reactor so that the hydrocarbon process gas dissociates into carbon and hydrogen species before reaching the molten metal. A different inlet introduces the molten metal into the second region of the reactor (operation 21B20). The high temperature in the second region is maintained until the dissociated carbon mixes with the molten metal (operation 21B30). The plume effect described above works to move the mixture into the third region of the reactor (operation 21B40). The movement away from the microwave energy source has the effect of lowering the temperature of the mixture until at least some of the carbon is concentrated and released from the mixture (operation 21B50). However, even if the temperature is lowered, the plasma torch effect causes the mixture to move rapidly through the outlet (operation 21B60). The molten mixture is then sprayed onto the substrate (operation 21B70).

[0143] Figure 21C is a schematic diagram illustrating the plasma spraying process used to spray coatings. As shown in the figure, carbon radicals, polycyclic aromatics, graphene sheets, and metal particles are mixed at high temperatures in a plasma reactor (see, for example, region 2104 in the figure). Nucleation occurs at these high temperatures, and as the temperature in the reactor decreases (see, for example, region 2106 in the figure), growth and assembly begin. One possible growth mechanism is described as submicron-sized aluminum particles being coated with several layers of graphene. The submicron-sized aluminum particles are held together by a combination of metallic, covalent, and covetic bonds. More specifically, as shown at the 2nm scale, carbon atoms are bonded to aluminum atoms. The carbon atoms are organized within the coherent graphene plane located in the aluminum matrix. The above study, including aluminum, is merely an example. Other metals can also be used. In fact, coherent graphene planes can be located not only in face-centered cubic (FCC) metal lattices, but also in body-centered cubic (BCC) metal lattices, or hexagonal close-packed (HCC) metal lattices.

[0144] Next, the coated particles are sintered to form particles having a diameter on the order of 100 microns. These semi-molten particles are then accelerated through a reactor and collided with a substrate (e.g., in the first pass) or with a previously deposited layer of colliding particles (e.g., in the second or nth pass).

[0145] Figure 22A shows an apparatus for encasing carbon particles in molten metal. The configuration of the apparatus in Figure 22A differs from that of the apparatus in Figure 21A, at least in that the introduction of molten metal is controlled using melting apparatus 2209. The molten metal is controlled to produce molten metal that encases the carbon particles when introduced into the reactor.

[0146] Figure 22B illustrates a method for encapsulating carbon particles in molten metal. This method differs from the method in Figure 21B, at least in that, in operation 22B30, the temperature is maintained in different regions of the reactor so that some of the carbon particle species are formed from dissociated carbon. In operation 22B50, at least some of the carbon particles are encapsulated in molten metal. Some bonds are formed between the constituent atoms of the carbon particles and the atoms of the molten metal. In operation 21B60, the metal-encapsulated carbon particles move through the outlet, and the temperature decreases further. As the metal-encapsulated carbon particles are deposited on the substrate (operation 21B70), further bonds are formed between the metal-encapsulated carbon particles and the metal of the substrate.

[0147] Figures 23A, 23B, 23C, and 23D illustrate examples of deposition techniques according to certain embodiments.

[0148] As shown in Figure 23A, the deposited material has a curved shape characterized by a raised intermediate region and a lower terminal region. In some cases, this is a desirable shape for material deposited in a spot pattern. In other cases, it is desirable to spray the deposited material over a wider area. This can be achieved by moving the substrate relative to the spray material, or by moving the spray material relative to the substrate. Figure 23B shows a movable substrate 2310 positioned on a feed reel. The movable substrate can be lifted onto or wound onto a hoisting reel. Thus, and in the configuration of Figure 23B, the Covetic material is uniformly deposited on the moving substrate by spraying. When the relative movement between the material being sprayed 2112 and the substrate is controlled, the resulting deposited material has a uniform thickness.

[0149] In some situations, it is desirable to have a uniform pattern on the surface of the deposited material, even if it is not flat. In such cases, the movement of the substrate can be stepped through a series of discrete positions, resulting in the pattern shown in Figure 23C. In addition to or instead of this, a slotted antenna can be placed between the material 2112 to be sprayed and the substrate. The slotted antenna functions by distributing the sprayed material evenly across the lateral distance of the slotted antenna. By using such a slotted antenna, a single sprayed section of material 2112 can have substantially the thickness and surface uniformity shown in Figure 23D.

[0150] Figures 24A and 24B illustrate conventional techniques for depositing materials onto a substrate. As shown in Figure 24A, the carbon aggregates are held together through the use of a binder (e.g., polymer additives). As a result, the bond between the carbon aggregates and the substrate is weak. Figure 24B illustrates the coating of carbon material on a substrate using a binder. Conventional deposition methods using binders are plagued by delamination problems. Moreover, even when the substrate surface is mechanically pretreated and / or pretreated with a deposit of a binder material, the interaction between the substrate and the carbon aggregates remains weak.

[0151] As described above, coatings based on depositing material onto a substrate using a binder and / or coating techniques (such as those shown and described in relation to Figures 24A and 24B) are plagued by problems such as delamination, low strength properties, and other undesirable mechanical properties. Improvements based on plasma spraying techniques are shown and discussed in relation to Figures 25A and 25B.

[0152] Figures 25A and 25B illustrate exemplary deposition techniques that, according to certain embodiments, result in covalent bonding on the surface of a substrate. Specifically, as shown in the figures, when the technique of this disclosure is used, covalent bonding between carbon and the substrate forms a covetic material. Therefore, no binder is required, i.e., none is used. Moreover, many of the bonds formed at the interface between the substrate and the covetic material are strong covalent bonds. In one specific example, the substrate is aluminum, and the covalent bond is formed between atoms in the face-centered cubic structure of aluminum and carbon atoms in the hexahedral structure. A schematic diagram of the interfacial bonding is shown in Figure 25B.

[0153] Figures 26A, 26B, 26C, and 26D present schematic diagrams illustrating how covalent bonds are formed between the square regions of the face-centered cubic structure of aluminum and the hexagonal regions that arise in certain crystallographic structures of carbon.

[0154] Figure 26A is a diagram of orthogonal planes showing the squares in the face-centered cubic structure of aluminum. Figure 26B is a diagram of orthogonal planes showing the hexagons that occur in certain crystallographic structures of aluminum.

[0155] Figure 26C illustrates one possible overlap when hexagons resulting from certain crystallographic structures of carbon are superimposed on the top of the squares in a face-centered cubic structure of aluminum. Figure 26D shows the covalent bonds formed at a specific site. The face-centered cubic structure of aluminum is just one example; it is possible with other materials that have other crystallographic structures.

[0156] Figure 26E shows an example of a laminated Covetic material 26E00, in which a graphene-like structure is sandwiched between layers of metallic material. The lower metallic layer is the substrate layer. The upper metallic layer is formed from quenched material, which was previously molten while in the reactor. The graphene-like structure sandwiched between the metallic layers is trapped between the two metallic layers by the formation of metal-metallic bonds between them. In addition to the metallic bonds, other bonds are formed that confine the graphene-like material between the metallic layers. Defects are present in the carbon lattice at multiple locations. Various types of bonds are formed between or near such defects.

[0157] Any or all of the above techniques for forming Covetic materials can be used in many applications, including a wide variety of substrates. Furthermore, the relative movement between the sprayed material and the substrate can be controlled to result in a deposition of any desired thickness. Relative movement can be controlled using any known technique. For example, the outlet can be moved relative to a fixed substrate. This can be achieved using a handheld device or a mechanically controlled device that moves relative to a fixed substrate. In some cases, a bias voltage can be applied to the substrate so that at least a portion of the material sprayed out of the outlet is electrically attracted to the substrate surface. This can be applied in applications where the substrate does not have uniform flatness. Examples of applications where the substrate does not have uniform flatness include: (1) molded components used in machinery subjected to severe corrosive conditions, (2) turbine blades, and (3) heat exchanger components. Many of these applications will be discussed further below.

[0158] In other situations, the properties of the deposit (e.g., thickness, lateral uniformity, etc.) can be improved through the use of various chemical vapor deposition techniques and / or combinations thereof. Strictly speaking, aspects or parameters of plasma-assisted chemical vapor deposition techniques known in the art can be controlled to optimize the properties of the deposited covetic material layer. Another example is that, instead of depositing the covetic material onto a surface to form a film or coating, the covetic material can be formed into particles (e.g., by thermal spraying in a low-temperature environment), and the particles can be collected as a powder. Various techniques, including the production and use of powdered covetic materials, are briefly discussed below.

[0159] Covetic powder Depending on the circumstances, the Covetic material can be delivered as a powder rather than being formed on or in a substrate as a film or coating. Such powdered Covetic material can be collected by cooling it to a temperature below its melting point where it exits the reactor and collecting it as a powder. This powder can then be handled at room temperature (e.g., stored, transported, poured, mixed, etc.). The powder can then be remelted and compression molded, or remelted and re-sprayed. For example, components used in highly corrosive environments can be formed from such powdered Covetic material using injection molding or extrusion molding. Many apparatuses, either individually or in combination, can be used to form and transport Covetic material powder. Examples of apparatuses are shown and described with reference to Figures 27A and 27B.

[0160] Figure 27A depicts an example apparatus 27A00 for producing powdered Covetic material 2710, in which the sprayed material 2112 is cooled using a cooling region 2702 as the spray material is extruded through the outlet 2110 of a microwave reactor. Any one or more cooling techniques in any combination can be used to lower the temperature of the Covetic material in the cooling region 2702 to a temperature below the melting point of the Covetic material. The cooling region 2702 can accommodate one or more devices to induce cooling. For example, as shown in the figure, one or more devices can be attached to the collection container 2704 to induce a cyclone effect in the collection container, thereby extending the time for lowering the temperature of the Covetic material. In some cases, the cooling time of the Covetic material is controlled so that the Covetic material is annealed with very regular bonding (e.g., by extending or shortening the time). In some cases, controlling the cooling time of the Covetic material allows it to crystallize into a highly regular crystalline structure while remaining in powder form. In some embodiments, a mechanical tumbler agitator can be installed between the outlet 2110 of the microwave reactor and the collection container 2704. The tumbler agitator can be periodically cleaned or replaced.

[0161] Fluidized bed systems can be used alternatively or additionally, and in situations where it is convenient and / or necessary to contain and / or transport powdered Covetic material in a fluid. For example, powdered Covetic material can be kept in a liquid to avoid powder particle agglomeration. In some embodiments, a fluidized bed system can be installed between the outlet 2110 of the microwave reactor and the collection container 2704. One embodiment of such a fluidized bed system is shown and described with reference to Figure 27B.

[0162] Figure 27B illustrates an example fluidized bed apparatus 27B00 for cooling and handling powdered Covetic material in a fluid.

[0163] As shown in the figure, the mixture of molten metal and carbon is pushed out through the outlet of the reactor and into the top of the fluidized bed 2750. As the mixture of molten metal and carbon is pushed out through the outlet, it cools in a manner that forms particles. A downward force of gravity acts on the particles (for example, in the downward direction as shown in the figure), while at the same time, the process fluid 2754 pushes from the bottom of the fluidized bed, creating an upward force. Thus, the particles accelerate towards the bottom of the fluidized bed, but their acceleration is slower than the acceleration due to local gravity. The dynamics of the flow can be partially regulated by the geometric structure of the fluidized bed. For example, as shown in the figure, a certain length of the fluidized bed can be a tapered body 2762, where the first end of the tapered body has a first dimension D1 and the second end of the tapered body has a second dimension D2, where D1 > D2. The temperature within each section of the fluidized bed can be controlled, in part, by a power supply 2752 that provides power to the coils (as shown in the figure) and / or by a heat source 2760 that heats the process fluid 2754, before the process fluid enters the bottom of the fluidized bed.

[0164] The pressure, flow velocity, and other conditions within and at the environmental interface of the fluidized bed function to cause the powder-fluid mixture to behave as a fluid. The mixture exhibits fluid properties and characteristics, such as the ability to flow freely under gravity and / or the ability to be transported using fluid handling techniques.

[0165] In the embodiment shown in Figure 27B, the fluidized bed has multiple ports at various heights of the tapered body. This allows the fluid 27561 containing the first powder to flow out at a specific temperature / pressure, while the fluid 27562 containing the second powder flows out at a second, different specific temperature / pressure. The flow through the multiple ports can be controlled so that the collection container can receive the fluid 27561 containing the first powder and the fluid 27562 containing the second powder in any ratio or quantity.

[0166] Covetic material formation method Table 3 shows some, but not limited, examples of methods for forming powdered copetic materials. [Table 3]

[0167] Method Example 1 In some embodiments of Method 1, structured carbon (e.g., carbon allotropes) is formed in a first region of a microwave reactor (e.g., through the dissociation of a hydrocarbon process gas). In a second region, which is at a lower temperature than the first region, the structured carbon is modified with a metal so that a metallated carbon material (e.g., an organometallic material) is formed. The metallated carbon material is further cooled to a temperature below the melting point of the metal. In some embodiments, the metallated carbon material initially takes the form of metal-modified carbon particles. The particles are further cooled so that a powder is formed. The powder can be collected and transported to a utilization facility. The powder containing the metallated carbon material having covetic bonds can be remelted and used in conjunction with any known technique for forming components from the powder. Strictly speaking, components can be formed from the powder by using stamping followed by remelting, isotropic working followed by remelting, hot casting, metal injection molding, laser sintering, etc.

[0168] Method Example 2 In this method 2, one or more hydrocarbon gases (or possibly gases and liquids) are introduced into the system. Strictly speaking, gases and / or liquids that can be introduced into the system include methane, ethane, methylacetylene-propadienepropane (MAPP), and hexane. In the first region 2104 at a first temperature, carbon atoms dissociate with other atoms (e.g., with hydrogen). Molten metal 2108 is introduced into the reactor as metal particles. Then, in the second region 2106, the carbon produced in the first region combines with the metal particles. The carbon grows on the surface of the metal particles and / or grows inside the metal particles. Under certain circumstances and conditions, the carbon growth includes 2D carbon growth on or within the metal particles. Under other circumstances and / or conditions, the carbon growth includes 3D carbon growth on or within the metal particles. In any of the above growth conditions, the growth can proceed to the maximum extent permitted by the lattice. For example, the molten metal can be aluminum with a face-centered cubic (FCC) crystal structure, and carbon can form a solid solution with aluminum up to a specific concentration. In some embodiments, carbon forms a solution with the metal up to a concentration determined by the metal's properties (e.g., crystal structure), and then precipitates from the metal-carbon solution to form 2D or 3D carbon on and / or within the metal particles.

[0169] Growth in Method 2 is carried out under non-equilibrium temperature conditions. Specifically, various different temperature conditions control the following (for example): (1) a first temperature in the first region (e.g., the high-temperature side) necessary to control the above dissociation, and (2) a second temperature in the second region (e.g., the low-temperature side) to control the initial melting of the metal powder in the second region and / or the formation and properties of the metal-carbon particles. The temperatures in these two zones can be controlled independently. Using this method, the sprayed material is a true covetic material that exhibits true covetic behavior.

[0170] Method Example 3 In more examples, though not limited to these, materials and / or coatings can be generated or deposited on input particles from mixed materials, e.g., trimethylamine (TMA), trimethylglycine (TMG), and methylacetylene-propadienepropane. The particles can be cooled and collected as a powder. Some examples of particles that can be generated from target materials in the first zone include phase carbon, silicon carbide, metal oxides, metal nitrides, or metals. In some cases, the input particles are metals and a compound coating (e.g., metal oxide or metal nitride) coats the input metal particles, while in other cases, the input particles contain a compound material and a metal coating is deposited on the input particles. Some examples of particles that can be generated from input gases in the first zone include carbon allotropes (e.g., intrinsic carbon), silicon, ZnO, AlOx, and NiO.

[0171] In some embodiments, the gas, including various non-hydrocarbon gases or alcohols, is introduced into a first zone, which comprises a sputtering apparatus and a power supply, the sputtering apparatus configured to generate multiple ionic species from a selected target material. The target material and ionic species combine to form multiple particles. The power supply can be AC, DC, RF, or high-power impulse magnetron sputtering (HIPIMS) power supply, and can be configured to generate multiple ionic species from the target material by adjusting the power, voltage, frequency, repetition rate, and / or other characteristics of the power supply.

[0172] Figure 27C is a schematic diagram illustrating the plasma spraying process used in the production of powdered Covetic material.

[0173] Sequence of powder material processing Figure 27C visually illustrates an example of a powder material processing sequence, from hydrocarbon decomposition and particle nucleation (e.g., the first region 2104 in the figure) to graphene growth (e.g., the second region 2106 in the figure), cooling of semi-molten particles (e.g., the cooling region in the figure), and collection of the powder covetic material (e.g., in the collection region and into the collection container 2104). The mechanism underlying the effectiveness of this example of powder material processing sequence is briefly discussed here.

[0174] In the absence of metal precursors (whether in organometallic or particulate form), microwave plasma dissociates methane to form carbon radicals (and polycyclic aromatic / acetylenes), which then each form a multi-layer (FL) graphene (or multilayer lamellar) structure. However, if metal precursors are present in the plasma band (e.g., as shown in the reactors in Figures 21A and 22A), the metal (derived from either organometallic nuclei or particles) can serve as a breeding ground for heterogeneous carbon growth (e.g., ionized radicals, graphene nuclei, or carbon in the form of polycyclic aromatics (acetylenes)).

[0175] When using metals with low solubility, such as Al or Cu, graphene sheets can grow on the metal surface (e.g., either through adsorbed atoms / monomers or as clusters). The growth characteristics depend, at least in part, on the symmetry and interfacial free energy minimization at the metal surface. Thus, carbon growth occurs in the metal particles in parallel with metal atom resputtering events at the surface, producing mixed and / or layered metal / carbon structures. As is known in the art, the radius of the metal particles (e.g., surface curvature) can affect the solubility of carbon in the metal particles. For example, a smaller radius (e.g., corresponding to a higher curvature) increases the solubility to equilibrium (on a flat surface), and this increase in solubility can then affect the thickness of the graphene layer.

[0176] Once the powdered Covetic material 2710 has been collected in the collection container, the powdered Covetic material can be further processed using conventional techniques (e.g., injection molding techniques, other techniques using powdered metals).

[0177] Manufacturing techniques using powdered Covetic materials Figure 28 illustrates a method for fabricating components from powdered Covetic material using injection molding techniques. As shown in the figure, this method begins by assembling a set of properties for a component used in a specific application and / or environment (operation 2810), and then selecting a specific powdered Covetic material based on at least one of the properties for that application or environment (operation 2820). The selection can be based on the mechanical properties desired for the component, and / or the corrosion resistance desired for the component in the environment corresponding to the intended use, and / or other desired properties. The selection can be based on multiple desired properties, and in some cases, the selection tool may be able to optimize the problem based on the set of properties and the objective function.

[0178] Once the Covetic material is selected (operation 2820), the selected powdered Covetic material 2825 is melted (operation 2830) and introduced into the mold (operation 2840). A predetermined temperature and pressure are maintained inside the mold for a predetermined period of time (operation 2850), after which the temperature and pressure inside the mold are reduced to approximately 30°C and approximately atmospheric pressure (operation 2860). The components are released from the mold (operation 2870) and deployed for the intended application (operation 2880).

[0179] As described above, the selection of a particular covetic material may be based on multiple desired properties, some of which may be used as variables in the objective function. In some cases, the selection of a particular covetic material may be based on a specific dominant property (e.g., mechanical strength, weight, corrosion resistance, etc.). In some cases, the property of interest is a ratio to other properties (e.g., strength to weight, specific heat to weight, etc.). In some cases, the dominant property is to be maximized (or minimized) with respect to one or more constraints imposed on the other properties.

[0180] Therefore, powdered Covetic materials can be deployed in a wide range of applications. In many cases, components obtained from powdered Covetic materials are superior to components made from other materials. Some use cases that correlate with certain dominant properties are shown and discussed below in relation to Figure 29.

[0181] Figure 29 illustrates various properties of Covetic materials. The properties shown include mechanical attributes, thermal conductivity, oxidation resistance, durability, resistance to softening at high temperatures, fatigue resistance, and electrical conductivity. Individual parameters and / or combinations of these parameters are dominant when selecting a specific Covetic material for a particular application.

[0182] As a precise example, oxidation resistance may be the dominant parameter when selecting a Covetic material for use in the manufacture of corrosion-resistant valves. Another example is when selecting a specific Covetic material for use in the manufacture of turbine blades for an aircraft engine; mechanical attributes, such as strength-to-weight ratio and the subject of minimum strength constraints, may be the dominant mechanical attributes. These blades may also need to exhibit very high fatigue resistance.

[0183] Typically, Covetic materials not only exhibit the above properties but also have a lower density than the metals or alloys used to produce Covetic powder. Lower density often results in a correspondingly lighter weight of the resulting components compared to the same components made from metals or alloys in the absence of carbon addition. Therefore, truck parts (e.g., cab components as shown in the figure), automotive parts (e.g., doors, fenders, roof panels, etc.), motorcycle parts, bicycle parts, and various components of aircraft, and / or ships, and / or space vehicles or platforms (e.g., structural members) can take advantage of the lower weight-to-strength ratio of Covetic materials compared to the base metals or alloys used to produce Covetic materials.

[0184] As another example, Covetic materials often exhibit exceptional thermal conductivity, making components formed from them suitable for high-temperature applications (e.g., heat sinks for electronic equipment, industrial heat exchangers, etc.).

[0185] As another example, Covetic materials often exhibit exceptional corrosion resistance. More specifically, Covetic laminates fabricated using the techniques described above exhibit exceptionally high corrosion resistance even at the top layer (e.g., the interface between the component and the environment). This property is of particular interest when components made from Covetic materials are exposed to harsh environments.

[0186] As a further example, the surface smoothness of the Covetic material can be controlled. More specifically, Covetic laminates fabricated using the techniques described above exhibit exceptionally high surface smoothness. This surface smoothness is of particular interest when the Covetic material acts as a thermal shield, for example, in applications where friction on the surface (e.g., friction caused when a fluid flows across the surface at high speed) may result in undesirable heat generation at that surface. By using the techniques of the present disclosure, a hydrodynamically smooth surface can be obtained by using certain compositions of the Covetic material and / or by using the specific techniques of the present disclosure for depositing the Covetic material, resulting in a surface suitable for use in aerospace and / or space vehicles.

[0187] In certain embodiments, one set of properties may be dominant over others. For example, the surface of a space vehicle (e.g., a satellite) may be required to be substantially insensitive to a certain range of electromagnetic radiation (e.g., substantially insensitive to visible light), while at the same time being thermally insulating (e.g., thermally nonconductive). The tuning techniques described above address situations where a specific desired property (e.g., nonreflectivity) dominates the tuning of the plasma spray torch to produce a substantially nonreflective surface, even at the expense of other properties.

[0188] The properties shown and described in relation to Figure 29 are illustrative only. Further properties and / or combinations of properties may be required or desirable in various applications, and such further properties will be exhibited in the resulting material based on the adjustment of the input and the control of the plasma spray torch. Strictly speaking, as examples of the further properties described above, such properties and / or combinations of properties may include or be related to strength-to-weight ratio, and / or specific gravity, and / or mechanical toughness, and / or shear strength, and / or flexural strength.

[0189] While the above specification has been written with reference to specific embodiments, it will be evident that various modifications and changes are possible without departing from the broad intent and scope of the disclosure. For example, the above process flow is written with reference to a specific sequence of process actions. However, the order of many of the process actions described can be changed without affecting the scope or practice of the disclosure. The specification and drawings should be taken as illustrative, not restrictive.

Claims

1. It is a reactor, An energy source configured to supply microwave energy to the reactor, The reactor has a first inlet through which hydrocarbon gas flows, A central dielectric tube arranged to be in fluid communication with the first inlet, configured to dissociate the hydrocarbon gas into a plasma based on the microwave energy, wherein the plasma comprises carbon and carbon radicals, and the central dielectric tube, A coaxial tube surrounding the central dielectric tube, which is bounded by the reactor wall, A second inlet, located downstream of the first inlet and coupled to the coaxial tube, is configured to receive metal particles entrained in the carrier gas, A heat source arranged to be in thermal communication with the reactor, and configured to melt the metal particles, An outlet configured to generate a carbon-metal composite based on the molten metal particles and at least a portion of the plasma, A reactor having

2. The reactor according to claim 1, wherein the carbon-metal composite comprises alternating graphene-metal layers organized according to the crystalline structure of the metal particles.

3. The reactor according to claim 1, further comprising an accelerating zone configured to accelerate the flow of the carbon-metal composite through the outlet.

4. The reactor according to claim 3, wherein the carbon-metal composite that has left the acceleration zone is quenched.

5. Furthermore, it has a base material, The reactor according to claim 1, wherein the carbon-metal composite is cooled on the substrate.

6. Furthermore, the reactor according to claim 1, further comprising a mechanical tumbler agitator located downstream of the outlet.

7. Furthermore, the reactor according to claim 1, further comprising a fluidized bed reactor located downstream of the outlet.

8. The reactor according to claim 1, wherein the microwave energy includes pulsed microwave energy.

9. The reactor extends in the vertical direction, The reactor according to claim 8, wherein the pulsed microwave energy is related to the propagation of electromagnetic waves in the horizontal direction.

10. The reactor extends in the vertical direction, The reactor according to claim 8, wherein the pulsed microwave energy is related to horizontal radio wave (TE) propagation.

11. The reactor according to claim 8, wherein the reactor is configured to adjust one or more of the duty cycle of the pulsed microwave energy or the power of the heat source.

12. The reactor according to claim 1, wherein the temperature of the metal particles is controlled independently of the temperature of the plasma.

13. The reactor according to claim 1, wherein the metal particles include one or more of aluminum, nickel, copper, gold, zinc, tin, lead, or silver.

14. The reactor according to claim 1, wherein the molten metal particles consist of one or more fully molten metals or partially molten metals.

15. The reactor according to claim 1, wherein the molten metal particles become molten metal droplets.

Citation Information

Patent Citations

  • Manufacture of metal containing dispersed particle

    JP1983177426A

  • Method for manufacturing metal matrix composites

    JP2012528934A

  • Thermal spray coated reinforced polymer composites

    JP2014111364A

  • Thermal spray assembly and method using thermal spray assembly

    JP2017519111A

  • Process for producing a metal matrix composite material

    US20120077017A1