Graphene material-metal nanocomposites and methods of making and using same
Graphene-metal nanocomposites, especially graphene-copper composites, address the challenges of high current densities and heat flux in microelectronics by providing enhanced conductivity and heat dissipation, outperforming traditional copper conductors in efficiency and durability.
Patent Information
- Application Number
- JP2021511658
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2018-08-30
- Filing Date
- 2019-08-30
- Publication Date
- 2025-08-28
- Estimated Expiration
- 2039-08-30
AI Technical Summary
Microelectronic devices face challenges with high current densities leading to dielectric breakdown and excessive heat flux, requiring conductors with high current-carrying capacity, improved electrical and thermal conductivity, and efficient heat dissipation without significant cost increase.
Development of graphene-metal nanocomposites, particularly graphene-copper composites, through scalable solution-based growth, interfacial bonding, and shear-assisted processing, which include a metal core coated with graphene layers for enhanced conductivity and heat dissipation.
The graphene-metal nanocomposites exhibit superior thermal conductivity, heat dissipation, and mechanical properties, offering up to 100 times the breakdown current and maintaining conductivity at elevated temperatures compared to pure copper conductors.
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Abstract
Description
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority to U.S. Provisional Application No. 62 / 725,154, filed August 30, 2018, the disclosure of which is incorporated herein by reference.
[0002] The present invention relates generally to nanocomposites. More particularly, the present invention relates generally to graphene-metal nanocomposites. BACKGROUND OF THE INVENTION
[0003] With the burgeoning demand for device miniaturization and nanofabrication, the size of microelectronic devices continues to shrink. This shrinkage is aimed at meeting the growing need for greater efficiency, portability, and versatility. As a result, the dimensions of metal wires (e.g., copper, aluminum) used to deliver the necessary power have been significantly reduced. The resulting high current densities require microdevices to be capable of carrying higher currents without dielectric breakdown. Furthermore, Joule heating (ohmic or resistive heating) of metal conductors accumulates large heat fluxes. If this heat flux is not dissipated in a timely manner, the temperature and resistivity of the metal conductors increase significantly. This further degrades the transport performance and lifetime of microelectronics. Novel conductors with high current-carrying capacity (current-carrying capacity), electrical conductivity, and thermal conductivity are needed.
[0004] The above challenges drive the search for new conductors capable of carrying large amounts of current at the nanoscale. Such conductors should also dissipate as much excess heat as possible to maintain the temperature of microdevices at safe levels. Furthermore, each new generation of microdevices must outperform its predecessor without significantly increasing manufacturing costs. In addition, the manufacturing methods for new conductors must be simple and easy to scale up.
[0005] Recently, composites of carbon nanotubes and copper have been reported to offer high current-carrying capacity along with improved stability. However, van der Waals-induced bundling of high-purity metallic carbon nanotubes significantly reduces their electrical and thermal conductivity. This is likely due to the high junction resistance between overlapping nanotubes created through the electrodeposition approach.
[0006] Based on the above, there is a continuing and unmet need for improved conductors. Summary of the Invention
[0007] The present invention provides a graphene-metal nanocomposite and a method for producing the same. The present invention also provides uses of the graphene-metal nanocomposite.
[0008] The present invention provides methods for producing metal-graphene nanocomposites. In certain embodiments, the nanocomposites may be characterized as a product of the method (wherein the nanocomposite is produced by the method of the present invention). In various examples, the method for producing a graphene material-metal nanocomposite includes forming a layer of graphene material and / or graphene precursor material on at least some or all of the surfaces of metal nanowires. Some methods can use preformed metal nanowires. Some methods can include in situ metal nanowire formation. The dispersion may include one or more additives.
[0009] Some methods may include forming an ink from one or more graphene material-metal nanocomposites (e.g., powders formed from one or more graphene material-metal nanocomposites). The ink can be used to form a graphene material-metal nanocomposite film. The film can be formed using a variety of coating or printing methods.
[0010] The present invention provides graphene material-metal nanocomposites. In various embodiments, the graphene material-metal nanocomposites are produced by the methods of the present invention. The graphene material-metal nanocomposites include a metal core and one or more graphene material layers disposed on at least a portion of the surface of the metal core or on all of the surface of the metal core. The graphene material-metal nanocomposites can have various forms. Non-limiting examples of graphene material-metal nanocomposite forms include wires, films, and bulk forms (e.g., pellets). The films can be free-standing or disposed on a substrate (e.g., for printable electronics). The graphene material-metal nanocomposites can have one or more desirable properties. Non-limiting examples of desirable properties include electrical conductivity, thermal conductivity, heat dissipation, breakdown current, mechanical properties (e.g., Young's modulus), etc., and combinations thereof.
[0011] The present invention provides methods of using the graphene-metal nanocomposites of the present invention. In various examples, inks of the present invention are used to form components of devices (e.g., electrical or electronic devices), for example, by printing.
[0012] The present invention provides uses of the graphene-metal nanocomposites of the present invention. An article of manufacture can include one or more graphene material-metal composites of the present invention. In various embodiments, an article of manufacture includes one or more nanocomposites. The article of manufacture can include one or more components, which may be passive components or components (e.g., conductors, wires, etc., and combinations thereof) and / or active components or components (e.g., antennas, relays, switch reeds, radio frequency (RF) shields, etc., and combinations thereof) that include one or more graphene material-metal composites. The article of manufacture can be an electrical device. The article of manufacture can be an electronic device. The electrical or electronic device can include one or more components that include one or more nanocomposites. [Brief explanation of the drawings]
[0013] For a fuller understanding of the nature and objects of the present invention, reference should be made to the following detailed description taken in conjunction with the accompanying drawings.
[0014] Figure 1 (Figure 1A, Figure 1B) shows the fabrication of graphene-copper nanocomposites. (a) Plots of electrical versus thermal conductivity for various materials, including traditional metals, nanocarbons, and composites. (b) Schematic of the process for fabricating pressed graphene-copper nanocomposites. (c) Pressure versus thickness of graphene-copper films; the inset shows the as-prepared film. (d, e) Scanning electron microscope (SEM) images of copper nanowires (Cu NWs) and graphene-copper composites. The insets show SEM images of graphene nanosheets and cross-sectional images of the graphene-copper composite, respectively. (f) EDS mapping and TEM images of the graphene-copper composite. (g) XRD patterns of as-prepared Cu NWs and the calcined graphene-copper nanocomposite. (h) Load versus displacement response of Cu NWs and graphene-copper nanocomposites. (i, j) Young's modulus mapping of Cu NWs and graphene-copper composites using XPM at small force (100 μN).
[0015] Figure 2 shows the electrical and thermal conductivity of the graphene-copper composite. (a) Dielectric breakdown characteristics of Cu NWs and the graphene-copper composite, showing the relative change in resistance plotted as a function of the square of the current (I2). (b) SEM images of Cu NWs (top) and the graphene-copper composite (bottom) before and after the measurement. (c) Variation of electrical conductivity with temperature for the copper nanowires and the graphene-copper composite, showing the temperature-independent properties of the graphene-copper composite. (d) Thermal image of Cu NWs and the graphene-copper composite simultaneously heated on a hotplate at 363 K (top image); thermal image of Cu NWs (middle image) and the graphene-copper composite (bottom image) operated at a high current density of 4 A, showing the low temperature of the composite due to the fast phonon transmission rate from the graphene. (e) Current density and time-dependent temperature evolution of Cu NWs and the graphene-copper composite.
[0016] Figure 3 shows the influence of various factors on the electrical conductivity of graphene-copper composites. (a) Electrical conductivity with temperature for different graphene concentrations. From left to right, each set of bars represents graphene (2 wt%), graphene (1 wt%), and graphene (4 wt%). (b) SEM image of a 2 wt% graphene-copper composite. (c) Temperature-dependent electrical conductivity of graphene-copper composites under different process conditions. (d) SEM images of samples without pressing (top) and with shear-pressing (bottom).
[0017] The mechanism analysis is shown in Figure 4. (a) Schematic modeling structure of graphene on top of a Cu(111) surface. (b) Projected density of states (PDOS) of graphene on top of a Cu(111) surface, including five layers of Cu atoms, one layer of graphene, and a 15 Å thick vacuum. (c-d) Electron-phonon coupling of the graphene-copper composite, calculated based on density functional perturbation theory (DFPT).
[0018] Figure 5 shows the electrical conductivity of bulk graphene-copper composites. (a) SEM image and photograph of the as-synthesized graphene-copper composite. (b) Electrical conductivity of bulk graphene-copper composite at different sintering temperatures. (c) Electrical conductivity of graphene-copper composites versus temperature. (d) The electrical conductivity decrease rate of the as-synthesized graphene-copper composite and commercial copper.
[0019] Figure 6 is a schematic diagram showing a cost-effective method for the production of high-temperature (hot-pressed) metal / rGO composites for high-performance conductors.
[0020] Preliminary results for the Cu-G conductor are shown in Figure 7: (a) Scanning electron microscope (SEM) image of the Cu-G conductor, (b and c) sintering and testing temperature-dependent conductivity of Cu-G, and projected conductivity based on density.
[0021] Figure 8 shows the role of the reducing agent (tris(trimethylsilyl)silane) and reaction time in controlling the morphology of copper samples. SEM images of copper samples synthesized at 185 °C and reacted with various reducing agents at different times: (a) copper nanoparticles, 0.62 mL / 8 h; (b) copper nanoparticles mixed with nanowires, 0.65 mL / 10 h (h = time (s)); (c) copper nanowires, which were the major part of the final product, 0.68 mL / 12 h.
[0022] Figure 9 shows (a) low and (b) high SEM images of the as-synthesized ink that formed a film at the water / air interface without further protection, with the inset showing the as-synthesized film. The typical copper red color (in the black box in (a)) is still visible in this image, indicating that the as-synthesized sample has good film-forming properties and is stable in water.
[0023] Figure 10 shows (a) SEM images of Cu NW films without calcination and pressing processes; (b) SEM images of Cu NW films calcined at temperatures of 200, 300, 400, and 500 °C for 30 min under a reducing atmosphere (5% H, 95% N); and (e) electrical conductivity of different Cu NW films versus various annealing temperatures, showing that the 400 °C-calcined sample exhibited the highest conductivity. Therefore, this temperature was adopted for the heat treatment of other samples (Cu NWs and graphene-copper composites).
[0024] Figure 11 shows the variation of electrical conductivity with temperature from 373 to 423 K for Cu NWs and graphene–copper composites, indicating that the conductivity of graphene–Cu composites is much higher compared to pure Cu NWs.
[0025] Figure 12 shows (a-f) SEM images of copper nanowires prepared in a hydrothermal reactor for different times (a. 2 h, b. 4 h, c. 6 h, d. 9 h, e. 10.5 h, and f. 16 h).
[0026] FIG. 13 shows the copper thin film conductor before (a) and after dodecanoic acid (ethanol) treatment (b).
[0027] FIG. 14 shows a direct write (printed) copper-nickel ink printed circuit.
[0028] FIG. 15 shows the resistance of 2 μm thick copper nanowire thin films versus treatment time with different concentrations of acetic acid.
[0029] FIG. 16 shows the resistance change of a 2 μm thick copper nanowire thin film versus treatment time with different concentrations of dodecanoic acid (toluene).
[0030] FIG. 17 shows the resistance change of a 2 μm thick copper nanowire thin film versus treatment time with different concentrations of dodecanoic acid (ethanol).
[0031] FIG. 18 shows the resistance over time (high temperature accelerated oxidation test) of a 4 μm thick copper-nickel nanowire thin film.
[0032] FIG. 19 shows the time-dependent resistance (high temperature accelerated oxidation test) of a 4 μm thick copper nanowire thin film.
[0033] FIG. 20 shows the resistance-temperature curve of the copper-graphene bulk conductor annealed at 500°C.
[0034] FIG. 21 shows the resistance-temperature curve of copper-graphene (dopamine-derived) annealed at 500° C.
[0035] Figure 22 shows the resistance-temperature curves of the copper bulk conductor before and after annealing at 1030°C.
[0036] Although the claimed subject matter is described with respect to particular embodiments and examples, other embodiments and examples, including embodiments and examples that do not provide all of the advantages and features described herein, are also within the scope of the present invention. Various structural, logical, and method step changes can be made without departing from the scope of the present invention.
[0037] Every numerical range given throughout this specification includes its upper and lower limits, and every narrower numerical range subsumed therein, and every such narrower numerical range will be included to one decimal place of the lower limit, even if such narrower numerical ranges are specifically expressly stated in the specification.
[0038] As used herein, unless otherwise indicated, the term "alkyl" refers to a branched or unbranched saturated hydrocarbon group.
[0039] As used herein, unless otherwise indicated, the term "nanowire" includes nanowires, nanorods, and combinations thereof.
[0040] The present invention provides a graphene-metal nanocomposite and a method for producing the same. The present invention also provides uses of the graphene-metal nanocomposite.
[0041] Graphene-metal nanocomposites have been developed as potential next-generation metal conductors, for example, with desirable electrical and thermal conductivities and current-carrying capacities. Graphene-Cu composite conductors offer several advantages over traditional pure Cu conductors. For example, the composites have superior thermal conductivity, heat dissipation, breakdown current, mechanical properties, or a combination thereof, compared to pure Cu (e.g., copper nanowires without graphene).
[0042] The present invention specifically includes i) scalable solution-based growth of graphene-Cu composite inks, ii) interfacial bonding of graphene to nanostructured Cu via our templated growth and molecular-level mixing method, and iii) consolidation of graphene-Cu composites via shear-assisted processing and consolidation. While not intending to be bound by any particular theory, our molecular-level organization and interfacial bonding method allows graphene to be uniformly coated onto Cu nanostructures, enabling the fabrication of composite ink solutions for shear-assisted film processing and consolidation.
[0043] The present invention provides methods for producing metal-graphene nanocomposites. In certain embodiments, the nanocomposites may be characterized as product-by-process (where the nanocomposite is produced by the methods of the present invention).
[0044] For all methods of the present invention, the metal may be copper, aluminum, or bronze in various embodiments. In embodiments applicable to all methods of the present invention, the graphene may comprise graphene nanosheets. The graphene nanosheets may be liquid-exfoliated graphene nanosheets. In another embodiment of all methods of the present invention, the graphene may comprise reduced graphene oxide or graphene oxide.
[0045] In various examples, a method for producing a graphene material-metal nanocomposite includes forming a layer of graphene material and / or graphene precursor material on at least some or all of the surfaces of a metal nanowire.
[0046] Some methods can use preformed metal nanowires. The metal nanowires may have dimensions (e.g., diameter) less than 100 nm (e.g., 40-50 nm), including all 0.1 nm values below 100 nm, and / or dimensions (e.g., length) between 1 μm and 1 mm, including all values in the 0.1 μm range and therebetween. Metal nanowires can be produced by methods known in the art. For example, metal nanowires can be formed by hydrothermal reduction (which may be water-based) of metal salts.
[0047] When preformed metal nanowires are used, forming a layer of graphene material and / or graphene precursor material on at least some or all of the surface of the metal nanowires may include forming a dispersion of the metal nanowires and graphene material and / or graphene precursor material, which can be formed using physical mixing (e.g., ultrasonic treatment, such as an ultrasonic method).
[0048] In various embodiments, a method for producing a graphene-metal nanocomposite includes: a) dispersing metal nanowires in a solution; b) dispersing graphene in the solution; c) adding the dispersion of step (a) to the dispersion of step (b) under ultrasonic methods to form a nanocomposite; and d) optionally forming an ink comprising the nanocomposite.
[0049] In certain embodiments applicable to all methods of the present invention, one or more steps of dispersing metal nanowires and / or graphene in a solution can be replaced by one or more steps of obtaining metal nanowires and / or graphene in a solution.
[0050] A variety of metal nanowires can be used. The nanowires have at least one nanometer-scale dimension. Combinations of metal nanowires can be used. Non-limiting examples of metal nanowires include copper nanowires, aluminum nanowires, copper alloy nanowires, and combinations thereof.
[0051] Some methods can include in situ metal nanowire formation. The metal nanowires can be formed in situ by reaction of metal powders or metal precursors. When preformed metal nanowires are formed in situ, forming a layer of graphene material and / or graphene precursor material on at least a portion or all of the surface of the metal nanowires can include forming a dispersion of the metal nanowires and the graphene material and / or graphene precursor material. The dispersion can also include one or more reducing agents. The dispersion can be formed using physical mixing (e.g., ultrasonication, such as an ultrasonic method).
[0052] In various examples, a method for producing a graphene-metal composite includes dispersing graphene and metal powder in a liquid, such as water, ethanol, toluene, etc. In one embodiment, the graphene and metal powder are dispersed in the liquid by ultrasonic methods. In one embodiment, the method further includes collecting the composite.
[0053] A variety of metal powders can be used. Non-limiting examples of metal powders include copper powder, aluminum powder, copper alloy powder, and combinations thereof. Suitable metal powders are commercially available or can be produced by methods known in the art.
[0054] Nano-sized and micron-sized metal powders can be used. In a preferred embodiment, the metal powder is nano-sized. In one example, copper powder with a diameter of about 4 μm is used.
[0055] The metal precursor reacts or decomposes (e.g., thermally reacts or pyrolyzes) to form metal nanowires. Various metal precursors can be used. Non-limiting examples of metal precursors include aluminum precursor powder, copper precursor powder, and optionally one or more powders selected from nickel precursor powder, manganese precursor powder, zinc precursor powder, and combinations thereof. The metal precursor can also be a metal salt. Non-limiting examples of metal salts (e.g., aluminum, copper, nickel, manganese, or zinc salts) include metal chlorides, metal nitrates, metal sulfates, and combinations thereof. Suitable metal precursors are known in the art and are commercially available or can be prepared by methods known in the art.
[0056] The dispersion may include one or more additives. Without intending to be bound by any particular theory, it is believed that the additives improve the interaction between the metal core and the graphene material, and / or improve the fluidity and / or viscosity of the dispersion, allowing the dispersion to be used as an ink, e.g., a printing ink. Generally, when the graphene material nanocomposite is used to form an ink, one or more additives are used. Non-limiting examples of additives include water-soluble primary amines (e.g., C 10 ~C 20 alkylamines (such as hexadecylamine). The additives may be present in the dispersion at 1 to 10% by weight based on the total weight of the dispersion.
[0057] Various amounts of metal nanowires, metal precursor, and graphene material can be used, in various examples, the metal nanowires and / or metal precursor are present in the dispersion at 95 to 99 wt % (based on the total weight of the metal nanowires or metal precursor and the graphene material and / or graphene precursor material), inclusive of 0.1 wt % and all ranges therebetween, and / or the graphene material or graphene precursor material is present in the dispersion at 1 to 5 wt % (based on the total weight of the metal nanowires and / or metal precursor and the graphene material and / or graphene precursor material), inclusive of 0.1 wt % and all ranges therebetween.
[0058] Various ratios of metal nanowires and / or metal precursor weight to graphene material and / or graphene precursor material can be used. In various embodiments, the ratio of metal nanowires weight to graphene material and / or graphene precursor material weight is from 95:5 to 99:1, including all 0.1% values and ranges therebetween.
[0059] Various graphene materials can be used. Combinations of graphene materials can also be used. Non-limiting examples of graphene materials include graphene, reduced graphene, graphene oxide, and combinations thereof. The graphene material can be in exfoliated sheets. Non-limiting examples of exfoliated sheet graphene materials include exfoliated graphene sheets, exfoliated reduced graphene sheets, exfoliated graphene oxide sheets, and combinations thereof. Suitable graphene materials are known in the art and are commercially available or can be produced by methods known in the art.
[0060] The graphene material precursor reacts or decomposes (e.g., thermally reacts or pyrolyzes) to produce the graphene material. A variety of graphene material precursors can be used. Combinations of graphene material precursors can also be used. The graphene material precursor can be an organic small molecule. Non-limiting examples of graphene material precursors include dopamine, aniline, and the like, and combinations thereof.
[0061] Various reducing agents can be used. Non-limiting examples of reducing agents include carbohydrates (e.g., sugars) and combinations thereof. In one example, the reducing agent is glucose (e.g., D-glucose). The amount of reducing agent is sufficient to reduce the metal precursor and form metal nanowires.
[0062] Various liquids, which can be referred to as dispersants or solvents, can be used to form the dispersion of metal nanowires and / or graphene material. In various examples, the liquid is water, an organic liquid, such as a C1-C6 alcohol (e.g., ethanol), or a combination thereof.
[0063] The dispersion can include various amounts of liquid. In various examples, the dispersion includes 5 to 20 weight percent liquid based on the weight of the metal nanowires and / or metal precursor and / or graphene material and / or graphene precursor material. It is desirable to use an amount of liquid that forms a dispersion or slurry of the metal nanowires and / or metal precursor and / or graphene material and / or graphene precursor material.
[0064] The graphene material-metal nanocomposite may be separated from the dispersion of graphene material and metal nanowires. Examples of suitable separation methods are known in the art. In various embodiments of all methods of the present invention, for example, step (c) may further include collecting the nanocomposite.
[0065] Some methods may include forming an ink from one or more graphene material-metal nanocomposites (e.g., powders formed from one or more graphene material-metal nanocomposites). In various examples, the as-formed graphene material-metal nanocomposite dispersion is the ink. In various embodiments of all methods of the present invention, the ink may be formed by dispersing the nanocomposite(s) (which may be individually collected) in a liquid, such as toluene.
[0066] In various embodiments, a method for producing a graphene-metal nanocomposite includes a) dispersing metal nanowires in a solution; b) dispersing graphene in the solution; c) adding the dispersion of step (a) to the dispersion of step (b) under ultrasonic methods to form a nanocomposite; d) forming an ink containing the nanocomposite; and e) forming a film from the ink; and f) optionally calcining the film.
[0067] One or more graphene materials-nanocomposites can be dispersed in ink form. The ink can be used, for example, in microelectronics manufacturing. For example, it can be used to 3D print circuit boards, other electrical circuits, or electrodes. The present invention encompasses all articles of manufacture produced by 3D printing using the inks of the present invention.
[0068] The ink can be used to form a graphene material-metal nanocomposite film. The film can be formed using a variety of coating or printing methods. For example, the film can be formed by coating (e.g., drop casting, dip casting, dip coating, spray coating, spin coating, etc.), printing (e.g., inkjet printing, screen printing, etc.), additive manufacturing (e.g., direct write-based additive manufacturing, etc.), etc. In various embodiments, the method further includes forming a film from the ink including one or more graphene material-metal nanocomposites.
[0069] The metal nanowires (e.g., in wires, films, or pellets) within the graphene material nanocomposite may be aligned. By "aligned," it is meant that some of the individual metal cores in the aligned graphene material nanocomposite are aligned parallel to the longest dimension of the aligned graphene material nanocomposite. In various examples, 60% or more, 70% or more, or 80% or more of the dimensions of the individual metal cores in the aligned graphene material nanocomposite are within 5 degrees or less, 2 degrees or less, or 1 degree or less of the dimensions of the aligned graphene material nanocomposite. Optionally, a step, such as step (e), can further include aligning the nanowires in liquid form (e.g., by liquid flow).
[0070] Additionally or alternatively, a step, e.g., step (e), can optionally further comprise applying a shear force to the film. Any shear force can be applied, such as rolling, sliding (horizontal), or vertical shear. In one embodiment, the shear force can be applied at room temperature. In another embodiment, the shear force can be hot pressed. In one embodiment, the hot pressing is performed at about 300 to about 1000°C.
[0071] In various embodiments, the shear force may range from about 3500 to about 7000 kPa, and all ranges and integers therebetween. In some embodiments, the shear force may be applied for 5 minutes to 30 minutes, and all ranges and integers therebetween. Without intending to be bound by any particular theory, the shear force may be used to align the nanowires as well as to compress the nanowires.
[0072] In one embodiment, the method further comprises applying a shear force to the composite (which may be assembled).
[0073] In a preferred embodiment, the shear force comprises hot pressing. In one embodiment, hot pressing is performed at about 300 to about 1000°C. In another embodiment, the shear force can be applied at room temperature. Any shear force can be used, such as rolling, sliding (horizontal), or vertical shear force.
[0074] In various embodiments, the shear force may range from about 3500 to about 7000 kPa, and all ranges and integers therebetween. In some embodiments, the shear force may be applied for 5 minutes to 30 minutes, and all ranges and integers therebetween.
[0075] In certain embodiments, the application of shear force may be followed by extrusion. In one embodiment, the extrusion is performed at room temperature. In a preferred embodiment, the extrusion is Shear Assisted Processing and Extrusion (ShAPE). In another embodiment, the extrusion is Equal Channel Angular Extrusion (ECAE). In a preferred embodiment, the extrusion is performed following hot pressing of the collected composite after ultrasonic dispersion of graphene and metal powders in a liquid. The extrusion may be used, for example, to make wire or cable. The wire may be used, for example, to wind metal for motors. Wires, cables, etc. made from the nanocomposites of the present invention are within the scope of the present invention.
[0076] The graphene material-metal nanocomposite or a combination of graphene material-metal nanocomposites can be used to form pellets. The pellets can be formed by compacting one or more graphene material-metal nanocomposites, which can be in powder form. In various examples, the pellets can be formed by compacting one or more graphene material-metal nanocomposites, which can be in powder form and / or in a mold, under hydrostatic pressure (e.g., 20 tons). A method can include forming a pellet of the graphene material-metal nanocomposite or a combination of graphene material-metal nanocomposite.
[0077] A graphene material-metal nanocomposite or a combination of graphene material-metal nanocomposites may be used to form a wire. The wire may be formed from (or may include) a plurality of individual wires. A method may include forming the wire from a pellet formed from a graphene material-metal nanocomposite or a combination of graphene material-metal nanocomposite. In various examples, the wire is formed by extrusion of one or more pellets. Suitable extrusion methods are known in the art.
[0078] The graphene material-metal nanocomposite may be calcined. In one embodiment, calcination may be performed at a temperature of about 625 to about 1110 K. In one embodiment, calcination may be performed for a duration of about 30 minutes to about 2 hours. In certain embodiments, calcination may be performed under any inert gas, such as Ar or 5% H balanced with N .
[0079] The present invention provides graphene material-metal nanocomposites. In various embodiments, the graphene material-metal nanocomposites are produced by the methods of the present invention. In various embodiments, the graphene-metal nanocomposites have one or more improved properties compared to pure metals (e.g., metal nanowires lacking one or more graphene material layers).
[0080] A graphene material-metal nanocomposite includes a metal core and one or more graphene material layers disposed on at least a portion of the surface of the metal core or on all of the surface of the metal core. The layer(s) are at least partially continuous or fully continuous. In one example, the one or more graphene material layers are not grown (e.g., by chemical vapor deposition, atomic layer deposition, etc.) on the metal core.
[0081] The layers can have varying thicknesses. Individual layers can have consistent thicknesses or thicknesses that vary across individual regions of the layer. The graphene material layer can be a shell. The shell can be at least partially continuous or completely continuous. The graphene material layer can include one to two layers of graphene, or can have a thickness of 2 nm or less.
[0082] A variety of metal cores can be used. The metal core may be a metal nanowire. The metal core may have dimensions (e.g., diameter) less than 100 nm (e.g., 40-50 nm), including all 0.1 nm values less than 100 nm, and / or dimensions (e.g., length) between 1 μm and 1 mm, including all 0.1 μm ranges and values therebetween. Combinations of metal cores may also be used. Non-limiting examples of metal cores include cores comprising copper, aluminum, copper alloys (e.g., bronze, copper-nickel alloys, etc.), or combinations thereof. In one example, a copper-nickel alloy comprises 2-12 wt. % nickel (based on the total weight of the alloy), including 0.1 wt. % and all ranges therebetween.
[0083] A variety of graphene materials can be used. Combinations of graphene materials can be used. Non-limiting examples of graphene materials include graphene, reduced graphene, graphene oxide, and combinations thereof.
[0084] Graphene material-metal nanocomposites can have various forms. Non-limiting examples of graphene material-metal nanocomposite forms include wires, films, and bulk forms (e.g., pellets). The films can be free-standing or disposed on a substrate (e.g., in the case of printable electronics). In various examples, the wires have a dimension perpendicular to the long axis of the wire (e.g., diameter) of 1 micron to 1 cm (e.g., 1 to 10 microns, 1 micron to 10 mm, and 100 microns to 1 cm), including all 1 micron values and ranges therebetween. In various examples, the films have a dimension perpendicular to the longest dimension of the film (e.g., thickness) of 100 nm to 100 microns (e.g., 100 nm to 50 microns), including all 1 nm values and ranges therebetween. The wires can include multiple wires.
[0085] Graphene material-metal nanocomposites can have one or more desirable properties. Non-limiting examples of desirable properties include electrical conductivity, thermal conductivity, heat dissipation, breakdown current, mechanical properties (e.g., Young's modulus), and the like, and combinations thereof. In various embodiments, graphene material nanocomposites have a densitometric coefficient of electrical conductivity of 4×10 6 ~5.5×10 6 The nanocomposite exhibits an electrical conductivity of 0.15 S / cm, a breakdown current (without the graphene material layer) that is at least 10, 25, 50, 75, or 100 times that of metal nanowires, a Young's modulus (without the graphene material layer) that is at least 2 or 5 times that of metal nanowires, or a combination thereof. In various embodiments, the electrical conductivity of the nanocomposite decreases by 10% or 5% or less at a temperature of 150°C.
[0086] The present invention provides methods of using the graphene-metal nanocomposites of the present invention. In various examples, the inks of the present invention are used to form components of a device (e.g., an electrical or electronic device), for example, by printing.
[0087] In one example, a method for forming a conductive element of an electronic device includes forming a conductive element of an electronic device using an ink of the present invention and contacting the element of the electronic device with an aqueous organic acid or organic solvent acid solution. Without intending to be bound by any particular theory, it is believed that the aqueous acid or organic solvent acid solution removes at least some or all of one or more insulating materials, which may be additives. The conductive element of the electronic device may be formed by the printing methods described herein.
[0088] A variety of aqueous organic acid solutions can be used. The aqueous organic acid solution includes water and one or more organic acids. Non-limiting examples of organic acids include alkyl carboxylic acids (e.g., C1-C5 alkyl carboxylic acids, such as acetic acid).
[0089] Various organic solvent acid solutions can be used. The organic solvent acid solution includes one or more alcohols and one or more organic acids. Non-limiting examples of alcohols include C1 to C5 alcohols (e.g., ethanol, etc., and combinations thereof). Non-limiting examples of organic acids include alkyl carboxylic acids (e.g., C6 to C8). 15 alkylcarboxylic acids, such as dodecanoic acid.
[0090] The present invention provides uses of the graphene-metal nanocomposites of the present invention. An article of manufacture can include one or more graphene material-metal composites of the present invention.
[0091] In various embodiments, an article of manufacture includes one or more nanocomposites. The article of manufacture may include one or more components, which may be one or more passive components (e.g., conductors, wires, etc., and combinations thereof) and / or one or more active components (e.g., antennas, relays, switch leads, RF shields, etc., and combinations thereof) that include one or more graphene material-metal composites.
[0092] The article of manufacture may be an electric device, non-limiting examples of which include an electric motor, a generator, a transformer, a switching regulator, a converter, an inverter, a charging circuit, a discharging circuit, a PCL controller, a distribution unit (which may be a high voltage distribution unit), a circuit breaker, etc.
[0093] The article of manufacture may be an electronic device, non-limiting examples of which include consumer electronic devices (e.g., computers, cell phones, etc.), home appliance devices (e.g., televisions, washers, dryers, etc.), solar cells, sensor devices (e.g., wireless sensor devices), control devices, amplifiers, attenuators, Internet of Things (IOT) devices, audio devices, RFID devices, lighting devices, etc.
[0094] Electrical or electronic devices may include one or more components that include one or more nanocomposites, non-limiting examples of which include antennas, contacts, conductors, relays, switch leads, RF shields, etc.
[0095] The method steps described in the various embodiments and examples disclosed herein are sufficient to carry out the methods of the present invention. Thus, in one embodiment, the method consists essentially of a combination of the method steps disclosed herein. In another embodiment, the method consists of such steps.
[0096] The following describes various non-limiting examples of the graphene material-composite of the present invention, its manufacturing method, and its uses: Statement 1. A method for producing a graphene material-metal nanocomposite of the present invention (e.g., a method comprising forming a layer of graphene material and / or graphene precursor material on at least a portion or all of the surface of a metal nanowire, and optionally calcining the metal nanowire including the layer of graphene precursor material, wherein a graphene material-metal nanocomposite is formed). Statement 2. 2. The method of claim 1, wherein forming a layer of graphene material and / or graphene precursor material on at least a portion or all of the surface of the metal nanowires comprises forming a dispersion of the metal nanowires and the graphene material and / or graphene precursor material. Statement 3. 3. The method of claim 2, wherein the step of forming a dispersion of metal nanowires and graphene material and / or graphene precursor material includes the steps of dispersing metal nanowires in a dispersant, dispersing graphene material or graphene precursor material in a dispersant, and adding the metal nanowire dispersion to the graphene material or graphene precursor material dispersion. Statement 4. 4. The method of claim 2 or 3, wherein the metal nanowires are present in the dispersion at 95 to 99 wt % (based on the total weight of the metal nanowires and the graphene material and / or graphene precursor material). Statement 5. 5. The method of any one of statements 2 to 4, wherein the graphene material or graphene precursor material is present in the dispersion at 1 to 5 wt % (based on the total weight of the metal nanowires and the graphene material and / or graphene precursor material). Statement 6. The method of any one of statements 2 to 5, wherein the dispersant of the dispersion is water, a C1 to C6 alcohol, or a combination thereof. Statement 7. 7. The method of any one of statements 2 to 6, wherein the ratio of the metal nanowire weight to the graphene material and / or graphene precursor material weight is 95:5 to 99:1. Statement 8. The method according to any one of statements 2 to 7, wherein the metal nanowires are selected from copper nanowires, aluminum nanowires, copper alloy wires, and combinations thereof. Statement 9. The method of any one of the preceding statements, wherein forming a layer of graphene material and / or graphene precursor material on at least some or all of the surface of the metal nanowires comprises forming a dispersion of a metal powder or metal precursor and graphene material and / or graphene precursor material. Statement 10. 10. The method of claim 9, wherein forming the dispersion comprises dispersing a metal powder or a metal precursor in a dispersant and dispersing the graphene material and / or graphene precursor material in the dispersant. Statement 11. The method of statements 9 or 10, wherein the dispersion further comprises one or more water-soluble primary amines. Statement 12. 12. The method of any one of statements 9 to 11, wherein the metal powder is a nanopowder. Statement 13. 13. The method of any one of statements 9 to 12, wherein the metal powder is copper powder, aluminum powder, copper alloy powder, or a combination thereof. Statement 14. 14. The method of any one of statements 9-13, wherein the metal precursor is an aluminum precursor powder or a copper precursor powder, and optionally, the one or more powders are selected from a nickel precursor powder, a manganese precursor powder, a zinc precursor powder, and combinations thereof. Statement 15. 16. The method of any one of statements 9 to 15, wherein the metal powder or metal precursor is present in the dispersion at 95 to 99 wt % (based on the total weight of the metal powder or metal precursor and the graphene material). Statement 16. 16. The method of any one of statements 9 to 15, wherein the graphene material is present in the dispersion at 1 to 5 wt % (based on the total weight of metal powder or metal precursor and graphene material). Statement 17. 17. The method of any one of statements 9 to 16, wherein the ratio of metal powder or metal precursor weight to graphene material weight is 95:5 to 99:1. Statement 18. The method of any one of statements 9 to 17, wherein the dispersant is water, a C1 to C6 alcohol, or a combination thereof. Statement 19. The method of any one of the preceding statements, further comprising separating the nanocomposite from the dispersion. Statement 20. The method of any one of the preceding statements, wherein the graphene material is graphene, reduced graphene, graphene oxide, or a combination thereof. Statement 21. The method of any one of the preceding statements, wherein the graphene material is exfoliated graphene sheets, exfoliated reduced graphene sheets, or exfoliated graphene oxide sheets. Statement 22. The method of any one of the preceding statements, wherein the graphene precursor material is a small molecule. Statement 23. The method of any one of the preceding statements, further comprising forming an ink comprising the nanocomposite. Statement 24. 24. The method of claim 23, further comprising forming a film with the ink. Statement 25. 25. The method of claim 24, wherein the film is formed by coating, printing, or additive manufacturing. Statement 26. The method of any one of the preceding statements, further comprising aligning the metal nanowires. Statement 27. 27. The method of claim 26, wherein the aligning comprises applying a shear force to the film. Statement 28. 28. The method according to claim 27, wherein the shear force is 3500 to 7000 kPa. Statement 29. The method of any one of the preceding statements, further comprising calcining the nanocomposite. Statement 30. The method of any one of statements 20 to 29, wherein the calcination is carried out at a temperature of 625 to 1110K. Statement 31. The method of any one of the preceding statements, further comprising forming a pellet comprising said nanocomposite. Statement 32. 32. The method of claim 31, further comprising forming a wire from the pellet. Statement 33. 33. The method of claim 32, wherein forming the wire comprises extruding the pellet. Statement 34. A nanocomposite of the invention (e.g., a nanocomposite including a metal core and a graphene material layer disposed on at least a portion of a surface of the metal core or on all of the surface of the metal core), which can be made by a method of the invention (e.g., the method of any one of statements 1-33). Statement 35. 35. The nanocomposite of statement 34, wherein the metal core comprises copper, aluminum, a copper alloy, or a combination thereof. Statement 36. 36. The nanocomposite of statement 34 or 35, wherein the graphene material is graphene, reduced graphene, graphene oxide, or a combination thereof. Statement 37. 37. The nanocomposite of any one of statements 34 to 36, wherein the graphene material layer comprises 1 to 2 layers of graphene material. Statement 38. 38. The nanocomposite of any one of statements 34 to 37, wherein the graphene material layer has a thickness of 2 nm or less. Statement 39. 39. The nanocomposite of any one of statements 34 to 38, wherein the graphene material layer is at least partially continuous or fully continuous. Statement 40. 40. The nanocomposite of any one of statements 34 to 39, wherein the graphene material layer is a shell, and the shell is at least partially continuous or fully continuous. Statement 41. 41. The nanocomposite of any one of statements 34 to 40, wherein the nanocomposite is a wire, a film, or a pellet. Statement 42. The nanocomposite is one or more of the following: 4×10 6 ~5.5×10 6 42. The nanocomposite of any one of statements 34-41, exhibiting: an electrical conductivity of 0.1 S / cm; a breakdown current at least 10 times, 25 times, 50 times, 75 times, or 100 times that of a metal nanowire (without the graphene material layer); or a Young's modulus at least 2 times or 5 times that of a metal nanowire (without the graphene material layer). Statement 43. A method for making a conductive element of an article of manufacture of the invention (e.g., an electrical or electronic device of the invention) (e.g., a method comprising forming a conductive element of an electronic device using an ink comprising one or more nanocomposites of the invention (e.g., one or more nanocomposites described in any one of statements 34-42) and contacting the element of the electronic device with an aqueous organic acid or an organic solvent acid solution). Statement 44. 44. The method of statement 43, wherein the aqueous organic acid solution comprises an organic acid and water. Statement 45. 45. The method of claim 43 or 44, wherein the organic solvent acid solution comprises an organic acid and a C1 to C5 alcohol. Statement 46. An article of manufacture of the invention (eg, an article of manufacture comprising one or more nanocomposites of the invention (eg, one or more nanocomposites described in any one of statements 34-42)). Statement 47. 47. The article of manufacture of statement 46, wherein the article of manufacture is an electrical device. Statement 48. The article of manufacture of statement 46 or 47, wherein the electric device is an electric motor, a generator, a transformer, a switching regulator, a converter, an inverter, a charging circuit, a discharging circuit, a PCL control device, a transmission unit, a distribution unit, a battery device, or a battery power management device. Statement 49. The article of manufacture of any one of statements 46 to 48, wherein the article of manufacture is an electronic device. Statement 50. The article of manufacture of statement 49, wherein the electronic device is a consumer electronic device, a consumer electronic device or home appliance device, a solar cell, a wireless sensor device, a control device, an amplifier, an attenuator, an Internet of Things (IOT) device, a battery device, a battery charging device, a battery power management device, an audio device, an RFID device, or a lighting device. Statement 51. The article of manufacture of any one of statements 46-50, wherein one or more components of an electrical or electronic device comprises one or more nanocomposites. Statement 52. The article of manufacture of statement 51, wherein the component is an antenna, a contact, a conductor, a relay, a switch lead, or a radio frequency (RF) shield.
[0097] The following examples are presented to illustrate the present invention and are not intended to be limiting in any way. [Example]
[0098] Example 1 This example provides a description of the metal nanocomposite of the present invention, its method of manufacture, and its characteristics.
[0099] We have fabricated a graphene-copper composite with a clean interface between the two components, allowing for synergistic integration (Figure 1b). It combines the unique properties of graphene (high thermal conductivity and electrical conductivity) with copper (high electrical conductivity). Graphene, an allotrope of carbon, is environmentally friendly. It can provide power dissipation of 2,000–4,000 W m -1 K -1 It exhibits a phonon-induced thermal conductivity of 10 8 A cm -2 The current carrying capacity of the conductor is ~10 amperes, which is higher than that of conventional metallic conductors (e.g., Cu).6 A cm -2 ) is 100 times larger than that of copper. Graphene alone cannot replace metallic conductors in electrical circuits due to its limited free electron density. Graphene possesses a large mean free path of up to 28 μm at room temperature, approximately 700 times larger than that of copper. Copper has a relatively small mean free path (~0.04 μm at room temperature) and electron-induced thermal conductivity. This contributes to its much lower thermal conductivity compared to graphene. However, copper possesses high electrical conductivity and fairly good ductility. We integrated phonon-dominated graphene with electron-dominated copper to create an electrically conductive, high-current metal composite with superior thermal management. Figure 1a shows the electrical and thermal conductivity of metal and nanocarbon materials.
[0100] Our scalable graphene-copper conductor (graphene-Cu, Fig. 1a) exhibits high electrical and thermal conductivity and high current carrying capacity over a wide temperature range. Our solution-processed graphene-Cu composite exhibits a current carrying capacity of 3.1 × 10 at 363 K. 5 S cm -1 (3.67 × 10 at 293 K 5 S cm -1 ) and a conductivity of 1.06 A 2 These properties were 63% and 39% higher than those of pure Cu, respectively. Furthermore, first-principles simulations of the carrier transport behavior of the graphene-Cu composite showed that the density of states of surface copper atoms at the Fermi level was effectively increased. The interaction between electrons and phonons was effectively reduced in the graphene-Cu composite system. Without intending to be bound by any particular theory, this mechanism is believed to improve the thermal conductivity of the composite conductor relative to conventional conductors such as Cu. This graphene percolation network efficiently reduces electron-phonon coupling in the copper-graphene composite, even when phonon modes are activated at high temperatures. The composite film exhibited a high density and favorable Cu nanowire arrangement, with a controlled film thickness (1.2 μm–4.1 μm, Figure 1c) depending on the ink concentration and applied pressure.
[0101] The graphene-copper metal conductors were grown via a versatile solution method that can be implemented on a large scale. The fabrication procedure began with the preparation of liquid-phase exfoliated graphene nanosheets. The graphene sheets were then mixed with Cu nanowires to create a dense graphene-Cu solution ink, facilitated by an ultrasonic wrapping method. During the ultrasonic method, the ligands on the surface of the Cu nanowires were dispersed in a nonpolar solvent. The graphene nanosheets were then easily wrapped around the Cu nanowires, resulting in the formation of a core-shell nanostructure. The morphology of the Cu nanowires was controlled by the amount of reducing agent and reaction time (Figure 8). The as-synthesized ink formed an air-stable film at the water / air interface (Figure 9).
[0102] Structure. While not intending to be bound by any particular theory, Figures 1d and 1e support our hypothesis that a thin sheet of graphene (inset in Figure 1d) is wrapped around the copper nanowire. These figures show the difference between scanning electron microscopy (SEM) images of the copper nanowire before and after it is mixed with graphene. This result is further confirmed by transmission electron microscopy (TEM) images, which show a clear interface between the two materials. These images also show a thin coating (~2 nm) on the surface of the Cu NW (Figure 1f). Energy dispersive X-ray spectroscopy (EDS) mapping of the resulting composite (Figure 1f) confirmed that the shell is composed of carbon, suggesting the presence of graphene. X-ray diffraction (XRD) patterns confirmed the formation of a graphene-Cu(111) composite and pure Cu after calcination (Figure 1g).
[0103] Properties. The mechanical properties (Young's modulus and hardness) of graphene-Cu nanocomposites are important for technological applications requiring strength. The Young's modulus of graphene (~1 TPa) strengthened the composite. Nanoindentation of the graphene-Cu film showed that the Young's modulus of the composite was approximately 55.40 GPa throughout the film, which was much higher than that of as-grown Cu (1.33 GPa, Figure 1h). Nanoindentation mapping across the film verified a uniform and significant increase in Young's modulus across the graphene-Cu composite film (Figures 1i-1j, Cu and graphene-Cu, respectively). The composite was also strengthened by the superior tensile strength of graphene (~130 GPa).
[0104] The electrical conductivity of the graphene-Cu composite is also important. The breakdown current and temperature-dependent electrical conductivity of the nanocomposite were analyzed using a four-point probe measurement scheme. The results showed a linear relative resistance change in both samples (Figure 2a). A sudden increase in electrical resistance indicated the breakdown current. Figure 2(a) shows that the graphene-Cu composite exhibited a larger breakdown current than that of pure Cu NWs. The graphene-Cu composite sustained a breakdown current 39% higher than that of pure Cu. This demonstrated that the graphene shell significantly increased the current carrying capacity of Cu. Selected Cu NWs and graphene-Cu composites (Figure 10) were characterized under the same test conditions (293 K to 423 K). As shown in Figure 2c, the graphene-Cu composite exhibited a higher breakdown current than pure Cu (5.3 × 10 5 S cm -1 ) and electrical conductivity (3.6 × 10 at 293 K) 5 S cm -1 ), and pure graphene (~10 2 S cm -1) exhibited electrical conductivity three times greater than that of Cu. The presence of graphene enabled the composite to retain 89% of its room-temperature conductivity at higher temperatures (363 K). In contrast, pure copper retained only 34% of its electrical conductivity under the same conditions. When the temperature was increased to 423 K, the conductivity of the graphene-Cu composite was higher (4.3 times greater) than that of Cu (Figure 11).
[0105] SEM images before and after high-current current-carrying measurements showed that graphene aids in preserving the structure of the graphene-Cu composite. Figure 2b demonstrates that, in contrast to pure Cu films, the graphene-Cu composite retains most of its wire-like structure after high-current current-carrying measurements. Such structural stability may be useful for increasing the lifetime and performance of microdevices.
[0106] An important feature to consider in microdevices is their ability to dissipate heat. Therefore, we analyzed images captured by a thermal camera and a thermograph. The upper image in Figure 2d shows thermal images of graphene-Cu and Cu conductors on a heated plate at a temperature of 363 K. We used a typical film coated with rectangular silver (Ag) electrodes for four-point probe testing, as shown in the inset of this image. Both samples were maintained in thermal equilibrium before thermal imaging. For the graphene-Cu film, we observed that the silver area showed a higher temperature than the rest, while the measured temperature for the graphene-Cu film area was approximately 318 K. In contrast, the Cu conductor showed a higher temperature than the rectangular Ag area. Due to the high emissivity and thermal radiation of graphene, the graphene-Cu appeared cooler. This indicated that graphene is beneficial for phonon transmission. Furthermore, we applied a high current density of 4 A to the graphene-Cu and Cu films. We observed that the graphene-Cu conductor (~308 K) exhibited a much lower temperature than the Cu conductor (~338 K) under the same current density (center and bottom images in Figure 2d). To gain more insight into this difference, we plotted the temperature change versus time for Cu and graphene-Cu in Figure 2e. As shown in the plot, a significantly faster temperature rise rate was observed for Cu than for the composite at 1 A. Furthermore, at 4.5 A, the temperature of pristine Cu reached ~347 K. However, under the same conditions, the composite reached 316 K (more than 30 K lower than Cu). Furthermore, the thermal diffusion rates of the graphene-Cu and Cu films also showed a similar trend. The graphene-Cu conductor exhibited a faster temperature drop (larger absolute value of Δt / ΔT) when compared to the Cu conductor.
[0107] All these results demonstrate that the graphene-Cu composite conductor has greater current carrying capacity, higher electrical conductivity, higher thermal conductivity and better heat dissipation in a wider temperature range than Cu.
[0108] Furthermore, we varied the weight percent of graphene in the composite to investigate its effect on the temperature-dependent conductivity. Figure 3a shows the conductivity of 2 wt% graphene (3.1 × 10 at 363 K). 5 S cm -1 ) was the optimum amount of graphene in the matrix to complement the temperature-dependent conductivity of the composite. A percolated network was formed in the graphene-Cu composite (Fig. 3b). In comparison, Cu with 1 wt% graphene exhibited a conductivity of 1.4 × 10 at 363 K. 5 S cm -1 After increasing the graphene content to 4 wt%, the conductivity was 0.52 × 10 at 293 K. 5 S cm -1 However, 4 wt. % graphene had better temperature stability (0.5 × 10 measured at 363 K). 5 S cm -1 We selected the Cu composite containing 2 wt% graphene as a prototype for further study.
[0109] Effect of mechanical pressing. Furthermore, we analyzed the effect of mechanical pressing on the thermal conductivity of 2 wt% graphene-Cu composite thin films. Figure 3c shows the temperature-dependent conductivity of the graphene-Cu composite under hydraulic uniaxial pressing and shear pressing. A force of 50 N was applied for 10 min at room temperature. Compared with the uncompressed film, the pressed one exhibited much less porosity (Figure 3d) and much higher conductivity (4.42 and 3.86 times for pressed and shear samples at 293 K) under different temperatures. More importantly, the pressed film exhibited higher conductivity (4.2 × 10) at 293 K. 5 S cm -1) than the uncompressed film, but the conductivity decreased as the temperature increased above 333 K. Without intending to be bound by any particular theory, we believe that the shear force created an effective net bond between the graphene-Cu wires. Without intending to be bound by any particular theory, we propose that electrons and phonons in the film transmit more easily, resulting in higher conductivity at high temperatures. Especially for high-temperature applications, pressing the graphene-Cu film is a preferred embodiment.
[0110] Our results for a hot-pressed ~82% dense graphene-Cu composite show a 52 × 10 6 S / m, 48 × 10 at 373 K 6 For the nearly 100% dense sample, which exhibits a similar behavior in temperature dependence, the electrical conductivity of graphene-Cu is 55 × 10 at 423 K, as predicted in Figure 7c. 6 S / m (the electrical conductivity of pure Cu conductor is 35×10 at 423 K) 6 S / m).
[0111] Continuous shear deformation results in a fully dense, anisotropic structure at room temperature. Without intending to be bound by any particular theory, the shear forces during extrusion facilitate graphene alignment in the Cu matrix to enhance axial current conductivity and circumferential thermal conductivity due to graphene's 2D nature. Large-scale, oxidation-resistant graphene, a 2D carbon single crystal with lateral dimensions ranging from microns to millimeters (much larger than other carbon allotropes), maximizes the elimination of lateral grain boundaries. Without intending to be bound by any particular theory, nanostructured Cu interacting with graphene nanosheets selects the atomic spacing of graphene and slightly distorts it in a (111)-rich crystal configuration due to lattice matching effects, resulting in lower resistance and Joule heating. These composites can achieve orders of magnitude improvements in electrical and thermal conductivity, as well as current-carrying capacity, compared to existing current-carrying metallic conductors.
[0112] Carrier Transport Behavior. To evaluate the carrier transport behavior of graphene-Cu composites and their differences from Cu systems, first-principles calculations were performed using a plane-wave implementation of the Perdew-Burke-Ernzerhof generalized gradient approximation (PBE) to density functional theory implemented in the Quantum Espresso code. For graphene-Cu, a nonlocal correlation functional (vdW-DF) was included for the long-range van der Waals interactions, which yielded a similar distance between the graphene and Cu surfaces compared to literature. A periodic slab model of graphene on the Cu(111) surface included five layers of Cu atoms, one layer of graphene, and a 15 Å-thick vacuum (Figure 4a). The structure was optimized until the atomic forces were below 0.005 eV / °A and the stress was below 0.01 kbar. Electron-phonon coupling was calculated based on density functional perturbation theory (DFPT). The calculated electron-phonon coupling constant for Cu was λ = 0.158, which is close to previous results. As shown in Figure 4b, for the graphene-Cu interface system, the density of states of the surface Cu atoms at the Fermi level was effectively increased, which indicated significance for the electronic structure engineering of the graphene-Cu composite system. More importantly, our calculation results (Figures 4c–4d) showed that the electron-phonon coupling constant of the graphene-Cu interface system was close to 0.085. This value was much smaller than that of the Cu system. The reduced electron-phonon coupling strength in the composite system was consistent with the improved electrical conductivity at high temperatures. Compared with Cu, the incorporation of graphene effectively reduced the interaction between electrons and phonons in the composite system. Therefore, those charge carriers were less likely to undergo electron-phonon scattering, even though more phonon modes were activated by increasing temperature.
[0113] Use in bulk. To investigate the feasibility of the graphene-inclusion strategy for metal conductors in practice, a series of high-density graphene-Cu NW composites were prepared in bulk (Figure 5a). Figure 5b shows that the sintering temperature plays an important role in improving the electrical conductivity of graphene-copper composites. In particular, this figure shows that the graphene-Cu NW composite conductors exhibited increased electrical conductivity with increasing sintering temperature. The optimum sintering temperature was 1223 K, while the conductivity was 5.2 × 10 at room temperature. 5 S cm -1 Furthermore, no apparent decrease in conductivity was observed with increasing temperature. At 373 K, the conductivity was 4.9 × 10 5 S cm -1 A conductivity of 94% of that at 293 K was observed (Figure 5c). The rate of decrease in electrical conductivity of the bulk composite graphene-Cu NW was much lower than that of bulk Cu (Figure 5d, Δσ / ΔT). These results demonstrate the feasibility of graphene inclusion in the bulk. Alternatively, Cu powder can be used together with graphene in the bulk.
[0114] Methods. Materials. Copper nanowires were synthesized on a Schlenk line using a modified method from the literature. The synthesized copper nanowires were dispersed in a toluene solution. Liquid-phase graphene nanosheets were synthesized using a standard exfoliation method. All chemicals were purchased from Sigma-Aldrich and used as received.
[0115] Fabrication of graphene-copper conductors. Graphene nanosheet solution (1 mg / mL, 0.66 mL) was diluted in 25 mL of methanol. To the diluted graphene solution, Cu NW toluene solution (11 mg / mL, 3 mL) was added under ultrasonic conditions. The mixture was then sonicated for another 10 min to form a graphene-copper composite. The product was separated, and the pellet was collected by centrifugation at 5500 rpm for 5 min. The resulting sample was then washed three times with toluene and dispersed in 2.5 mL of toluene. To obtain a consolidated graphene-copper film with a well-percolated conductive network, the ink solution was drop-cast onto a substrate with preferential flow and subsequently rolled through a shear-force treatment (shear-assisted rolling consolidation (Figure 1b)). Finally, the as-synthesized composite film was calcined at 673 K for 30 min in an atmosphere of 5% H balanced by N to obtain the final graphene-copper conductor.
[0116] In an alternative procedure, shear-assisted roll compaction and calcination were replaced by hot pressing, which occurred at a temperature of about 500 °C.
[0117] For the bulk graphene-copper samples in Figure 6, commercial copper powder (Alfa Aesar, -325 mesh, 99%) was mixed with reduced graphene oxide (~2 wt%) obtained using a modified hammer method. The as-synthesized composites were then thermally sintered at 300, 400, 450, and 500 °C.
[0118] Characterization. The morphology of the obtained samples was investigated by scanning electron microscopy (SEM, FEI Quanta 450) and transmission electron microscopy (TEM, JEOL JEM-1400). Structural properties were determined by energy dispersive spectroscopy (FEI Quanta 450) and X-ray diffraction (Bruker D8 Discover). The Young's modulus and hardness of the films were measured using a nanoindenter (Hysitron Com. TI 980 TriboIndenter). The Young's modulus and hardness values could be determined by fitting the experimental curves through the nanoindenter software. Electrical conductivity measurements were performed using a four-probe conductivity meter (Keithley 2400), and thermal images were captured with an IR camera (FLIR).
[0119] Electron-phonon coupling calculations. First-principles calculations were performed within a plane-wave implementation of density functional theory with the Perdew-Burke-Ernzerhof generalized gradient approximation (PBE) implemented in the Quantum Espresso code. The wave function and charge cutoff energy were set to 30 Ry and 120 Ry, respectively. Norm-conserving pseudopotentials were used in these calculations. For Cu calculations, 21 × 21 × 21 and 21 × 21 × 1 Γ-centered k-point meshes were used, along with a slab model of graphene on the Cu(111) surface, respectively.
[0120] Example 2 This example provides a description of the metal nanocomposite of the present invention, its method of manufacture, and its characterization.
[0121] Preparation of copper-based nanowire ink feedstock: 1) Copper nanowire preparation: 2.4 g of copper chloride, 3.9 g of D-glucose, and 14.55 g of hexadecylamine (HDA) were added to 900 mL of DI water and then stirred for 12 hours to achieve a uniform emulsion. The solution was then heated in a hydrothermal reactor for different times (6, 9, 9.5, 10, 12, and 15 hours). The resulting copper nanowire solution was then collected for ink preparation. 2) Copper-graphene feedstock preparation: Copper nanowires were washed with dodecanoic acid (diluted in ethanol solvent) to remove HDA ligands. Then, different weight concentrations of either exfoliated graphene (0.1 wt%, 0.5 wt%, 1 wt%, 3 wt%, 5 wt%) or dopamine (0.1 wt%, 0.5 wt%, 1 wt%, 3 wt%, 5 wt%) were added to the sample. After mixing, the powders were homogenously mixed in a Thinky mixer to prepare copper-graphene or copper-dopamine ink solutions. 3) Preparation of copper-nickel nanowires: Different amounts of copper chloride and nickel chloride (e.g., 2.16 g copper chloride and 0.182 g nickel chloride; 1.92 g copper chloride and 0.364 g nickel chloride; 1.68 g copper chloride and 0.546 g nickel chloride; 1.2 g copper chloride and 0.950 g nickel chloride), 3.9 g D-glucose, and 14.55 g hexadecylamine were added to 900 mL of DI water and stirred for 12 hours to obtain a uniform emulsion. The above solution was heated in a hydrothermal reactor for different reaction times (9, 9.5, and 10 hours).
[0122] Copper-based conductor preparation: 1) Printable copper thin-film conductors: Copper-based ink solutions (copper, copper-graphene, or copper-nickel) can be deposited onto flexible substrates at room temperature via various coating techniques (spin coating, dip coating, screen printing, inkjet, and direct-write-based additive manufacturing). The thin-film conductors can then be immersed in a 20 wt% dodecanoic acid and ethanol solution within 30 seconds to significantly improve conductivity by removing the non-conductive additives. 2) Copper-based bulk conductors: Dried copper-based powders (copper, copper-graphene, copper-dopamine, or copper-nickel) were heated in forming gas at 500°C for 300 minutes to remove organic residues in the ink feedstock. They were then ground and pressed into bulk pellet conductors using an isostatic press. The bulk conductors were then heated in forming gas at 1030°C for 10 minutes.
[0123] 12-22 show various characterizations of the nanocomposite materials produced by the method of this example.
[0124] Although the present invention has been described with respect to one or more particular embodiments and / or examples, it will be understood that other embodiments and / or examples of the invention may be made without departing from the scope of the invention.
Claims
1. 1. A method for producing a graphene material-metal nanocomposite, the method comprising: (1) forming a layer of graphene material and / or graphene precursor material on at least a part or all of the surface of the metal nanowire; wherein the layer forming step includes: forming a dispersion of a metal powder or metal precursor and a graphene material and / or graphene precursor material, wherein forming the dispersion comprises: dispersing the metal powder or metal precursor in a dispersant to form a first precursor dispersion; dispersing the graphene material and / or graphene precursor material in a dispersing agent to form a second precursor dispersion; adding the first precursor dispersion to the second precursor dispersion; In this process, metal nanowires are formed, and a layer of graphene material and / or graphene precursor material is formed on at least a part or all of the surface of the metal nanowires; (2) aligning the metal nanowires; and (3) A method for producing a graphene material-metal nanocomposite, optionally including a step of calcining a metal nanowire comprising a layer of a graphene precursor material, to form the graphene material-metal nanocomposite.
2. The first precursor dispersion further comprises one or more water-soluble primary amines, and the metal powder is copper powder, aluminum powder, copper alloy powder, or a combination thereof, the metal precursor is aluminum precursor powder or copper precursor powder, and optionally, one or more powders are selected from nickel precursor powder, manganese precursor powder, zinc precursor powder, and a combination thereof, the metal powder or metal precursor is present in the dispersion at 95 to 99 wt % (based on the total weight of the metal powder or metal precursor and the graphene material), the graphene material is present in the dispersion at 1 to 5 wt % (based on the total weight of the metal powder or metal precursor and the graphene material), and the dispersing agent is selected from water, C 1 ~C 6 10. The method of claim 1, wherein the solvent is a solvent selected from the group consisting of ethanol, ...
3. 2. The method of claim 1, wherein the ratio of the weight of the metal powder or metal precursor to the weight of the graphene material is 95:5 to 99:
1.
4. 4. The method of claim 1, further comprising separating the metal nanowires comprising the layer of graphene material and / or graphene precursor material from the dispersion.
5. 5. The method of claim 1, wherein the graphene material is graphene, reduced graphene, graphene oxide, exfoliated graphene sheets, exfoliated reduced graphene sheets, exfoliated graphene oxide sheets, or a combination thereof.
6. 6. The method of any one of claims 1 to 5, further comprising forming an ink containing said nanocomposite, and optionally forming a film from said ink.
7. 7. The method of claim 6, wherein said aligning comprises applying a shear force to said film.
8. 8. The method of any one of claims 1 to 7, further comprising calcining the nanocomposite, wherein the calcination is carried out at a temperature of 625 to 1110K.
9. 9. The method of any one of claims 1 to 8, further comprising forming a pellet comprising the nanocomposite and forming a wire from the pellet, wherein forming the wire comprises extruding the pellet.
10. 1. A nanocomposite comprising: a metal core; and a graphene material layer disposed on at least a portion of a surface of the metal core or on all of a surface of the metal core, wherein the metal core comprises copper, aluminum, a copper alloy, or a combination thereof; the graphene material is graphene, reduced graphene, graphene oxide, or a combination thereof; the graphene material layer comprises one to two layers of graphene material; and wherein the graphene material layer has a thickness of 2 nm or less, and the graphene material layer is a shell, which is at least partially continuous or fully continuous.
11. The nanocomposite is a wire, film, or pellet and comprises one or more of the following: 4 x 10 6 ~5.5 x 10 6 Electrical conductivity in S / cm; a breakdown current that is at least 10 times, 25 times, 50 times, 75 times, or 100 times the breakdown current of the metal nanowire (without the graphene material layer); or A Young's modulus at least two or five times that of a metal nanowire (without the graphene material layer) 11. The nanocomposite of claim 10, wherein:
12. 1. A method of making a conductive element of an electronic device, comprising: a process for forming a conductive element of an electronic device using an ink including a nanocomposite, the nanocomposite including a metal core and a graphene material layer disposed on at least a portion of a surface of the metal core or on all of a surface of the metal core, the metal core including copper, aluminum, a copper alloy, or a combination thereof; the graphene material being graphene, reduced graphene, graphene oxide, or a combination thereof; the graphene material layer including one to two layers of graphene material, and the graphene material layer having a thickness of 2 nm or less; contacting the elements of the electronic device with an aqueous organic acid solution or an organic solvent acid solution; 1. A method for fabricating a conductive element of an electronic device, comprising:
13. 11. An article of manufacture comprising one or more nanocomposites of claim 10.
14. 14. The article of manufacture of claim 13, wherein the article of manufacture is an electric device, and the electric device is an electric motor, a generator, a transformer, a switching regulator, a converter, an inverter, a charging circuit, a discharging circuit, a PCL control device, a transmitting unit, a distribution unit, a battery device, or a battery power management device.
15. 14. The article of manufacture of claim 13, wherein the article is an electronic device, and the electronic device is a household electronic device, a home appliance device, a solar cell, a wireless sensor device, a control device, an amplifier, an attenuator, an Internet of Things (IOT) device, a battery device, a battery charging device, a battery power management device, an audio device, an RFID device, or a lighting device.
16. 14. The article of manufacture of claim 13, wherein one or more components of an electrical or electronic device comprise one or more nanocomposites, the component being an antenna, a contact, a conductor, a relay, a switch reed, or a radio frequency (RF) shield.
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