Low-temperature reduction of metal oxides

The use of aluminum chloride as a reducing agent at low temperatures and atmospheric pressure controls the reduction of metal oxides, overcoming thermal runaway and producing high-quality metal powders for lithium-ion batteries.

JP7777086B2Active Publication Date: 2025-11-27KINALTEK PTY LTD
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Patent Information

Application Number
JP2022566620
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-04-30
Filing Date
2021-04-30
Publication Date
2025-11-27
Estimated Expiration
2041-04-30

AI Technical Summary

Technical Problem

Conventional methods for reducing metal oxides to their constituent metals require high temperatures and pressures, leading to uncontrollable thermal runaway and the formation of difficult-to-remove by-products like Al2O3, limiting the production of high-quality metal powders suitable for applications like lithium-ion batteries.

Method used

A method using aluminum chloride as a reducing agent in solid or gaseous form, combined with metal oxides, allows for reduction at low temperatures (below 600°C) and atmospheric pressure, controlling reaction kinetics to produce high-quality metal powders with unique properties.

Benefits of technology

The method achieves yields up to 99% of high-quality metal powders, such as silicon nanoparticles, with improved engineering properties and reduced energy consumption, suitable for lithium-ion energy storage systems.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

A method for reducing a metal oxide in a metal oxide-containing precursor is disclosed, comprising the steps of providing a reaction mixture comprising a metal oxide-containing precursor and an aluminum reducing agent, heating the reaction mixture in the presence of solid or gaseous aluminum chloride to a temperature at which the reduction of the metal oxide is initiated, controlling the reaction conditions so that the reaction mixture does not reach a temperature at which thermal runaway occurs, and isolating the reaction product comprising the reduced metal oxide.
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Description

[Technical Field]

[0001] The present invention relates to a method for reducing metal oxides, and more particularly to a low-temperature method for reducing metal oxides. [Background technology]

[0002] The reduction of metal oxides to their constituent metals (or metal suboxides) can be achieved by carbothermic reduction at temperatures exceeding 1000 °C or by metallothermic reduction (e.g., aluminothermic reduction and magnesothermic reduction) using molten metal at temperatures exceeding 700 °C. In aluminothermic reduction, metal oxides are reduced by molten aluminum. However, this reaction is highly exothermic and difficult to control, often resulting in the formation of molten metal contaminated with Al2O3. The removal of this Al2O3 is difficult, limiting the applications of the resulting product. All current aluminothermic reduction processes for metal oxides are performed at temperatures above the melting point of aluminum and typically experience thermal runaway when temperatures reach 2000 °C. Controlling such thermal reduction reactions is extremely difficult, and the reaction product is often a molten mixture of metal (or metal suboxide) and by-products, requiring significant post-processing.

[0003] In recent years, there has been great interest in utilizing microporous silicon (or nanoporous silicon) for applications related to lithium-ion energy storage systems. The use of silicon powder with the appropriate ultrastructure as an anode material in lithium-ion batteries (LIBs) can significantly increase battery capacity while minimizing issues related to excessive volume expansion associated with lithium doping of Si-based anodes. However, it is generally not possible to produce Si powder from SiO2 using metallothermal reduction, as this method does not yield a reaction product with the appropriate ultrastructure.

[0004] Several research groups have attempted to reduce SiO2 at low temperatures. For example, Bao et al. (Nature Vol. 446, 172 2007) proposed a method for producing microporous silicon structures by reducing SiO2 with magnesium at 650 °C. However, this method is typically slow due to the limited Mg vapor pressure at 650 °C. Furthermore, this method requires the separation of the by-product MgO from the Si powder product. Ning Lin et al. (Energy Environ. Sci., vol. 8, 3187 (2015) and Communications Chemistry, vol. 1, 42 (2018)) also proposed a method for indirectly reducing silicon oxide with Al or Mg in molten aluminum chloride at a low temperature of 200 °C. However, aluminum chloride sublimes at approximately 180 °C under atmospheric pressure, so forming molten aluminum chloride requires pressures above 2 atmospheres and temperatures above 190 °C, necessitating a relatively complex reaction chamber design. According to Ning Lin et al., reduction using molten aluminum chloride takes approximately 10 hours to complete, with maximum yields below 75%.

[0005] It would be advantageous to provide a novel method for reducing metal oxides that can be carried out at lower temperatures than conventional metallothermic reduction methods. Summary of the Invention [Means for solving the problem]

[0006] In a first aspect, the present invention provides a method for reducing a metal oxide in a precursor comprising the metal oxide, the method comprising: providing a reaction mixture comprising a precursor comprising a metal oxide and an aluminum reducing agent; heating the reaction mixture in the presence of solid or gaseous aluminum chloride to a temperature at which the reduction reaction of the metal oxide is initiated; controlling the reaction conditions so that the reaction mixture does not reach a temperature that would cause thermal runaway; and isolating the reaction product comprising the reduced metal oxide. Includes:

[0007] The present inventors have surprisingly and unexpectedly found that the presence of aluminum chloride, either in solid or gaseous / vaporous form, in combination with a reaction mixture comprising a metal oxide and an aluminum reducing agent can reduce the reaction threshold temperature (i.e., the temperature to which the reaction mixture must be heated in order for the reduction reaction to begin) and provide improved control over reaction kinetics and product quality (e.g., the type of product that can be produced and its properties).

[0008] Therefore, the present invention provides a method for reducing metal oxides (e.g., oxides of one or more metals selected from Si, Zn, Cu, Fe, Ni, Sn, Sb, Mo, W, Ta, Nb, V, Ti, Co, Cr, In, Ag, Mn, Pt, Pd, Zr, Rh, Ru, Os, and Re) at atmospheric pressure and low temperatures using a combination of solid Al powder and solid or gaseous aluminum chloride as a reducing agent. Because aluminum chloride serves two roles—as a reaction promoter and a reducing agent to promote the reaction between the metal oxide and Al—the overall reaction can rapidly and directly reduce the metal oxide to metal at relatively low temperatures (e.g., below 600°C). As explained below, aluminum oxychloride and / or aluminum oxide are produced as by-products, but these by-products can be separated more easily than in conventional metallothermic reduction reactions, resulting in yields of up to 99%.

[0009] The aluminothermic reduction of metal oxides at low temperatures is an attractive method because it can be performed using solid Al reactants, requires low energy consumption, and has the potential to produce reaction products with nanomorphologies and nanostructures that cannot be obtained by conventional aluminothermic reduction. Furthermore, many aluminum reducing agents (e.g., Al powder) are safe and low-cost, and many are readily available, making this material attractive from both technical and economic perspectives.

[0010] Furthermore, by utilizing the low temperature reduction method of SiO2, silicon nanoparticles or microporous silicon can be produced from silica precursors with morphologies suitable for applications related to lithium ion energy storage systems, as previously described.

[0011] Thus, in preferred embodiments, the present invention may significantly reduce the temperatures required in conventional reduction techniques and other existing methods that require high temperatures or pressures. Furthermore, the present invention may enable the production of metal compound powders with improved engineering properties, and new products that have unique properties inherited from the starting precursor oxides. These advantages are not available at the temperatures used in conventional metallothermic reduction reactions.

[0012] In some embodiments, the aluminum chloride may be provided in the form of solid aluminum chloride. The aluminum chloride may be provided in the form of a powder or granules having a particle size of less than 5 mm. In some embodiments, the aluminum chloride powder may be included in the reaction mixture (e.g., the aluminum chloride powder may be premixed with the aluminum reducing agent).

[0013] In some embodiments, the aluminum chloride may be provided in the form of gaseous aluminum chloride, which may be, for example, flowed over the heated reaction mixture.

[0014] In some embodiments, the reaction mixture may be heated in the presence of solid aluminum chloride and gaseous aluminum chloride.

[0015] In some embodiments, the amount of aluminum chloride may be 1 wt % to 500 wt % based on the weight of the precursor containing the metal oxide.

[0016] In some embodiments, each reactant in the reaction mixture may be independently provided in the form of a powder, flakes, fibers, or particles.

[0017] In some embodiments, the aluminum reducing agent may be aluminum or an aluminum alloy, which may be provided in the form of a powder or flakes having a particle size of less than about 50 μm in at least one dimension.

[0018] In some embodiments, the amount of the aluminum reducing agent in the reaction mixture may be 5 wt % to 500 wt % based on the weight of the metal oxide-containing precursor.

[0019] In some embodiments, the reaction mixture is heated to a temperature (i.e., the temperature at which the reduction reaction begins) of less than 800° C., preferably less than 600° C., or preferably less than 500° C. As discussed herein, lower reaction temperatures are preferred so that the reaction products do not melt (facilitating purification) and so that the reagents maintain their morphology.

[0020] In some embodiments, the reaction mixture is heated under an inert atmosphere (i.e., an atmosphere that is inert to the reactants, which may be a CO2 atmosphere, a N2 atmosphere, or the like).

[0021] In some embodiments, the reaction mixture is heated at about 0.8-1.2 atmospheres, preferably atmospheric pressure. Reactions conducted at or near atmospheric pressure do not require sophisticated equipment, are safer, and are generally less expensive to conduct.

[0022] In some embodiments, the reaction conditions may be controlled by gradually adding additional reactants, such as the metal oxide precursor and / or the aluminum reducing agent, to the heated reaction mixture. In this manner, gradually adding reactants to the reaction mixture consistently prevents thermal runaway due to reactant unavailability. In some embodiments, the reaction conditions may be controlled by cooling the reaction mixture. In some embodiments, the reaction conditions may be controlled by adding a heat load modifier to the reaction mixture. The heat load modifier absorbs heat generated by the highly exothermic reaction and separates the reactants to help control the reaction rate. In some embodiments, more than one method of controlling reaction conditions may be used.

[0023] In some embodiments, the reduced metal oxide may be an elemental metal, a metal suboxide, an alloy comprising a metal, a compound comprising a metal, a composite material comprising a metal, or a mixture thereof.

[0024] In some embodiments, the reaction product may include one or more by-products selected from one or more of aluminum chloride, aluminum oxychloride, and aluminum oxide, and a product resulting from the reduction of the metal oxide. In some embodiments, the reaction product may be further processed to separate the by-products from the reaction product obtained by reducing the metal oxide. In some embodiments, the by-product may include aluminum oxychloride, and the aluminum oxychloride can be separated from the reduced metal oxide by washing the reaction product with an aqueous medium.

[0025] In some embodiments, the gaseous aluminum chloride formed during the reaction may be condensed and beneficially recycled, for example, back into the reaction mixture.

[0026] In some embodiments, the step of heating the reaction mixture comprises multiple heating steps and the formation of intermediate species, as described in more detail below.

[0027] In one particular embodiment of the method according to the first aspect of the present invention, the metal oxide is SiO2, the aluminum reducing agent is solid powdered aluminum or an aluminum alloy, the reaction mixture is heated to an initial temperature of about 400° C. to 600° C., and the reaction conditions are controlled to maintain a temperature below about 650° C. The reaction product of such a method may be silicon or a mixture of silicon and SiO2, and the particle size of the reaction product may be less than 500 nm.

[0028] In some embodiments, the method may further comprise reacting the reaction product with a metal chloride or metal oxide comprising one or more selected from Zn, Cu, Fe, Ni, Sn, Sb, Mo, W, Ta, Nb, V, Ti, Co, Cr, In, Ag, Mn, Pt, Pd, Zr, Rh, Ru, Os, and Re.

[0029] In a second aspect, the present invention provides a crystalline silicon powder produced by the method described in the preceding two paragraphs, characterized in that the crystalline silicon powder is in the form of irregularly shaped particles having an average particle size of 10 nm to 500 nm, and its composition includes 0.01 wt% to 70 wt% Al.

[0030] In a third aspect, the present invention provides a product produced by the method of the preceding three paragraphs, wherein the metal oxide-containing precursor is provided in the form of flakes, powder, or beads comprising SiO2, and the product comprises particles having a core comprising SiO2 and a coating having a thickness of 1 nm to 300 nm and comprising at least 50 wt% silicon. In some embodiments, the SiO2-containing core may comprise one or more of SiO2, borosilicate, soda glass, synthetic mica, and mica.

[0031] In a fourth aspect, the present invention provides a method for reducing a metal oxide in a precursor comprising the metal oxide, the method comprising: providing a reaction mixture comprising a precursor comprising a metal oxide and a magnesium reducing agent; heating the reaction mixture in the presence of solid or gaseous aluminum chloride to a temperature at which the reduction reaction of the metal oxide is initiated; controlling the reaction conditions so that the reaction mixture does not reach a temperature that would cause thermal runaway; and isolating the reaction product comprising the reduced metal oxide. Includes:

[0032] Due to the similarities between aluminothermic and magnesothermic reduction processes, the inventors believe that the teachings of the present invention can also be applied to magnesothermic reduction processes in which a magnesium reducing agent is used instead of an aluminum reducing agent.

[0033] In a fifth aspect, the present invention provides a method for reducing SiO in a precursor comprising SiO, the method comprising: providing a reaction mixture comprising a precursor comprising SiO2 and an aluminum reducing agent; heating the reaction mixture at atmospheric pressure in the presence of gaseous aluminum chloride to a temperature at which the reduction reaction of SiO2 is initiated; controlling the reaction conditions so that the reaction mixture does not reach a temperature above about 650°C; and Isolating the silicon-containing reaction product. Includes:

[0034] In a sixth aspect, the present invention provides a reduced metal oxide produced by a method according to any one of the first, fourth and fifth aspects of the present invention. [Brief explanation of the drawings]

[0035] Embodiments of the present invention will now be described by way of example with reference to the accompanying drawings, from which features, embodiments and advantages of the present invention will become apparent.

[0036] [Figure 1] The equilibrium composition of a mixture of Al and AlCl3 at temperatures below 1000°C is shown.

[0037] [Figure 2] The concentration of AlCl(g) at temperatures below 1000°C calculated by varying the degree of AlCl(g) consumption is shown.

[0038] [Figure 3] FIG. 1 shows a process diagram of an example embodiment illustrating the reduction of metal oxides with Al in the presence of AlCl.

[0039] [Figure 4] FIG. 1 shows a process diagram illustrating the processing steps of an example of another embodiment in which metal oxides are reduced in two stages using Al.

[0040] [Figure 5] FIG. 1 is a process diagram illustrating an example of an embodiment showing the reduction of SiO with Al in the presence of gaseous AlCl.

[0041] [Figure 6] FIG. 1 is a schematic diagram illustrating the process steps for carrying out a preferred embodiment for producing Ag-coated Si powder.

[0042] [Figures 7A-7B] XRD analysis of a powder sample made from SiO2 nanopowder before and after cleaning is shown. DETAILED DESCRIPTION OF THE INVENTION

[0043] As used herein, the following terms are used unless expressly stated otherwise. "Base metals" and "Mc " refers to one or more metals selected from the group including Si, Zn, Cu, Fe, Ni, Sn, Sb, Mo, W, Ta, Nb, V, Ti, Co, Cr, In, Ag, Mn, Pt, Pd, Zr, Rh, Ru, Os and Re. "Base metal oxide" and "M c O x " refers to the oxides of these metals. The terms "aluminum reductant," "Al reductant," "reducible Al alloy," and "reducible Al powder" are used interchangeably and refer to powders of pure aluminum and aluminum-based alloys. For example, a material "based" on a base metal or an alloy based on Al as the reducing agent refers to a material that contains at least 10%, preferably at least 50%, of the selected constituent. "Aluminum chloride" refers to chlorides of Al, such as AlCl3 and Al2Cl6. When the terms "aluminum chloride" or "AlCl3" are used, they refer to anhydrous metal chlorides based on Al and Cl, in either gaseous or solid form. When the term "AlCl3(g)" is used, it refers to aluminum chloride in its gas or vapor state. When the term "AlCl3(s)" is used, it refers to aluminum chloride in solid powder form. "AlOCl / Al2O3" means AlOCl and / or Al2O3. The terms "AlOCl" and "aluminum oxychloride" are used interchangeably. "Silicon oxide," "silica," and "SiO2" refer to silicon oxide in amorphous or crystalline form.

[0044] One aspect of the present invention provides a method for forming a metal-based powder, comprising reacting a powder mixture containing a base metal oxide as a reducible precursor with a reducible Al alloy (e.g., Al powder) in the presence of aluminum chloride to obtain a base metal by partially or completely reducing the base metal oxide. The base metal oxide is an oxide based on one or more elements selected from Si, Zn, Cu, Fe, Ni, Sn, Sb, Mo, W, Ta, Nb, V, Ti, Co, Cr, In, Ag, Mn, Pt, Pd, Zr, Rh, Ru, Os, and Re. The aluminum chloride may be in the form of a solid powder or a gas / vapor. In some embodiments, the aluminum chloride may be in the form of a eutectic liquid phase.

[0045] As mentioned above, the inventors have found that by adding AlCl3 in solid or gas / vapor state to a mixture of base metal oxides and Al powder, the reaction threshold temperature can be lowered, improving control of reaction kinetics and product quality.

[0046] The reduction reaction between metal oxides as precursors and Al and AlCl as reducible reactants is exothermic, and the method of the present invention involves controlling and moderating the reduction reaction rate to prevent thermal runaway and the associated production of reaction products.

[0047] The product of the method of the present invention is a base metal-based powder, with by-products including aluminum chloride and aluminum oxychloride and / or aluminum oxide. The by-product aluminum oxychloride / aluminum oxide may be released with the product and form part of the powder product, or may be separated from the powder product by suitable means. The by-product aluminum oxychloride can be separated from the base metal (e.g., Si powder) by washing with a suitable solvent (e.g., HO or dilute HCl (HO-HCl)).

[0048] One exemplary embodiment of the method of the present invention aims to significantly reduce the temperatures required in conventional reduction techniques and other existing processes that require high temperatures or pressures, and to provide metal compound powders with improved engineering properties and new products that have unique properties inherited from the starting precursor oxides.

[0049] The present invention comprises various aspects, specific forms and embodiments of these aspects are described below.

[0050] According to a first example, there is provided a method for reducing a solid precursor chemical based on a base metal oxide with an Al-based reducing agent in solid state and aluminum chloride in solid or gaseous / vaporous state, preferably at atmospheric pressure, at a temperature below 800°C, preferably below 600°C, more preferably between 100°C and 600°C, even more preferably between 200°C and 600°C, even more preferably between 300°C and 600°C, even more preferably between 400°C and 600°C, mixing, heating and reacting a reactant mixture comprising a base metal oxide-based powder and Al in the presence of solid or gaseous aluminum chloride; the resulting product contains compounds based on base metals; the by-products include AlOCl and / or Al2O3; and The product may be treated to remove the by-products. A method is provided that includes:

[0051] Examples of such products include pure metals such as Zn powder, W powder, Si powder, Si nanopowder, and Cu nanopowder. Other examples include partially reduced particulate metal suboxides such as titanium suboxide. Further examples include metal silicon nanoparticles, Si-Ag nanoparticles, metal silicon coated SiO particles, and compositions equivalent to silicon monoxide (SiO or SiO x ) or a mixture thereof.

[0052] According to a second example, there is provided a method for the stepwise production of a metal system based on a base metal selected from Zn, Cu, Fe, Ni, Sn, Sb, Mo, W, Ta, Nb, V, Ti, Co, Cr, In, Ag, Mn, Pt, Pd, Zr, Rh, Ru, Os and Re, comprising: A first step: reacting a base metal oxide with aluminum chloride and optionally Al at a temperature of 500°C or less, preferably under a pressure of less than 1.2 bar, more preferably under atmospheric pressure, to obtain an intermediate product comprising a base metal chloride or a base metal oxychloride; and Second step: further reacting the intermediate product obtained with Al and optionally AlCl3 at a temperature below 700°C to obtain a powder product based on alloys and compounds of base metals. A method is provided which includes:

[0053] The gaseous by-product aluminum chloride may be continuously removed, and the solid by-products, such as aluminum oxide and / or aluminum oxychloride, may be released with the product and then separated by appropriate work-up means.

[0054] According to a third example, there is provided a method for producing a metal system based on a base metal selected from Si, Zn, Cu, Fe, Ni, Sn, Sb, Mo, W, Ta, Nb, V, Ti, Co, Cr, In, Ag, Mn, Pt, Pd, Zr, Rh, Ru, Os, and Re, which comprises reacting a precursor containing a base metal oxide with Al powder in the presence of gaseous aluminum chloride (AlCl(g)) at a temperature of 300°C to 800°C, preferably 400°C to 800°C, and more preferably 400°C to 600°C, to produce a product containing a metal alloy and metal compound of the base metal and a by-product containing aluminum oxychloride and / or aluminum oxide.

[0055] According to a fourth example, there is provided a method for producing crystalline silicon nanoparticles, comprising the steps of: At a pressure of less than 1.2 bar, preferably at atmospheric pressure, At a temperature of less than 600°C, preferably at a temperature of 400°C to 600°C, A method is provided that includes reacting a precursor comprising SiO powder with Al and gaseous aluminum chloride to form a product comprising crystalline metal silicon nanoparticles and a solid by-product comprising aluminum oxychloride (AlOCl). In this method, alloying additives may be used, which may be in the form of suitable precursors containing the alloying additives. Excess aluminum chloride may be treated and recycled, and other solid by-products may be released with the powder product, after which they may be separated from the crystalline silicon powder by appropriate post-processing means. Residual Al, in the form of AlOCl and other forms, may be removed by washing with a suitable solvent capable of dissolving AlOCl, such as HO or dilute HCl (HO-HCl). Residual unreacted precursors may form part of the final product or may be removed using other suitable means. The crystalline silicon nanoparticles may be in various forms, such as porous frameworks, nanostructured particles, hollow spheres, nanoparticles, or nanorods.

[0056] According to a fifth example, there is provided a method for producing a silicon coated substrate, comprising: At a pressure of less than 1.2 bar, preferably at atmospheric pressure, At a temperature of less than 600°C, preferably at a temperature of 400°C to 600°C, The method includes a first step of reacting a precursor comprising a powdered SiO2-based substrate with Al and AlCl3 in solid powder form or gaseous form to reduce the silicon oxide on the surface of the powdered substrate, thereby obtaining a product comprising a substrate coated with a silicon-based metal coating. Solid by-products such as aluminum oxychloride and aluminum oxide may be released with the product and then separated by appropriate post-processing means.

[0057] According to a sixth example, there is provided a method for the stepwise production of metal compounds based on base metals selected from Si, B, C, Zn, Cu, Fe, Ni, Co, Cr, Mo, Sn, Ti, In, Sb, Ag, V, Mn, Pt, Pd, Ta, Zr, Nb, Rh, Ru, Os, Re and W, comprising: a first step of reacting a SiO2-based precursor with Al and AlCl3 in the form of a solid powder or gas at a temperature below 600°C, preferably between 400°C and 600°C, to obtain an intermediate product containing metallic Si in the form of a Si-AlOCl-containing mixture or a Si-based powder from which AlOCl has been removed, as described in the fourth or fifth embodiment; a second step of reacting the intermediate product with a base metal precursor based on an oxide or chloride of a base metal at a temperature between 100°C and 700°C, optionally using AlCl3 in solid powder form or gaseous state, to obtain a product based on the base metal and a by-product containing gaseous silicon chloride; Optionally, a third step of heating the product obtained in the second step at a temperature above 600°C to convert the aluminum oxychloride contained in the solid powder product to aluminum oxide; and Optionally, a fourth step involves washing the solid powder product obtained in the second or third step to separate any remaining metal chlorides and by-product oxychlorides. Including, The product may be in the form of a powder containing a compound based on the base metal, in the form of a silicon-based powder coated with the base metal, in the form of a powder consisting of particles having an SiO2-Si core coated with a compound based on the base metal, or in the form of a powder containing a compound based on a base metal silicide. A method is provided that includes:

[0058] According to a seventh example, there is provided a method for producing metal nanoparticles based on a base metal selected from Si, Zn, Cu, Fe, Ni, Co, Cr, Mo, Sn, Ti, In, Sb, Ag, V, Mn, Pt, Pd, Ta, Zr, Nb, Rh, Ru, Os, Re and W, comprising: According to any one of the first to sixth examples, the method includes reacting a precursor containing a base metal oxide with Al in the presence of aluminum chloride; A process is provided in which the product obtained is in the form of particles having an average particle size of 10 nm to 500 nm, preferably an average particle size of less than 500 nm, more preferably an average particle size of less than 300 nm, and even more preferably an average particle size of less than 100 nm.

[0059] There is also provided an apparatus for reducing a compound comprising a metal oxide, the apparatus comprising: Equipped with a mixer, M c O x a reactor capable of processing powders based on , metal chlorides and metal powders at temperatures up to 800°C; storage vessels to contain the reactants; Accessories for mixing, grinding or feeding powders; Condensation and collection vessels for collecting, containing, and storing by-products and powdered products; and A scrubber unit that removes process gases from residual by-products An apparatus is disclosed that includes:

[0060] The apparatus is generally suitable for carrying out the method according to any of the various aspects and embodiments of the invention described herein. A suitable apparatus may be a stainless steel vessel equipped with a mixer and means for maintaining an inert atmosphere, capable of handling both vaporous and solid powdered aluminum chloride. Another suitable apparatus may be a fluidized or moving bed, configured to maximize the effectiveness of aluminum chloride in the reaction of the base metal compound with Al, taking into account material mechanics.

[0061] It is well known that metal oxides and molten Al react at temperatures between 660°C and 1200°C, usually inducing a self-propagating reaction / thermal runaway, resulting in the formation of molten metal mixed with Al2O3, which is difficult to remove. As described herein, for oxides based on base metals selected from Si, Zn, Cu, Fe, Ni, Co, Cr, Mo, Sn, Ti, In, Sb, Ag, V, Mn, Pt, Pd, Ta, Zr, Nb, Rh, Ru, Os, Re, and W, surprisingly, M2O3 can be removed at near atmospheric pressure. c O x It has been found that the addition of solid or gaseous AlCl3 to a mixture of Al and Al has the advantage of lowering the reaction threshold temperature below 600°C and controlling the reaction mechanism, resulting in the formation of specific metal powders based on base metals.

[0062] Furthermore, in the formation of various base metals, instead of the difficult-to-remove Al2O3 by-product, a solid AlOCl powder is produced as a by-product, which can be separated from the metal powder product by washing (e.g., with H2O or dilute HCl) and filtering. Also, since the reaction according to the method of the present invention does not use liquid metal and therefore does not require excessive heating, the starting material M is easily removed for various base metals. c O x (e.g., morphological features derived from SiO nanopowder can be maintained in Si nanopowder.) Overall, the processing conditions typically required can be greatly simplified while the product quality can be greatly improved.

[0063] As previously mentioned, it is known that a mixture of Si and SiO can be produced by reacting SiO with Al in molten AlCl at temperatures below 250°C under high pressure conditions suitable for the formation of liquid AlCl. However, this method has several significant drawbacks, including the high pressure required to produce molten AlCl. Furthermore, despite the long reaction times (over 10 hours), the reported yields to date are a maximum of 75%. The present inventors have discovered that by using gaseous AlCl, SiO can be reduced to Si in a short time at temperatures between 400°C and 600°C under atmospheric pressure, with a maximum yield of 99%. Under the reaction conditions of the present invention, liquid AlCl is not present.

[0064] The exemplary process of the present invention provides an improved production technique that offers advantages over the prior art by allowing for lower processing temperatures, shorter processing times, and a wider variety of materials that can be produced. The exemplary process of the present invention differs from conventional carbothermic and metallothermic reduction processes primarily in the following ways: 1. The novel low-temperature reduction method of the present invention combines the advantages of oxide and chloride chemical techniques. 2. By lowering the reaction threshold temperature, the method of the present invention can synthesize compositions and morphologies (e.g., nanoparticle morphologies and complex compositions) that are not typically obtainable under conditions commonly used in carbothermal and metallothermal reduction processes. 3. The process of the present invention is carried out under mild conditions of atmospheric pressure and relatively low temperatures. 4. The process of the present invention consumes less energy and produces no or minimal waste. 5. Aluminum is an attractive reducing agent because it is readily available and inexpensive, and its compounds are valuable industrial chemicals and relatively easy to handle (e.g., AlCl3).

[0065] Detailed Description of the Invention As mentioned above, in a preferred embodiment, the present invention provides a method for the direct production at low temperatures of a composition based on a metal selected from Si, Zn, Cu, Fe, Ni, Sn, Sb, Mo, W, Ta, Nb, V, Ti, Co, Cr, In, Ag, Mn, Pt, Pd, Zr, Rh, Ru, Os and Re.

[0066] Therefore, a method for reducing a metal oxide-based solid precursor powder using a powdered reducible Al alloy and aluminum chloride in a reaction vessel at a temperature below 800°C, preferably below 600°C, more preferably between 180°C and 600°C, even more preferably between 300°C and 600°C, and most preferably between 400°C and 600°C, is provided, Step 1: mixing, heating, and reacting a reactant mixture containing a powder of a metal oxide based on one or more base metals selected from Si, Zn, Cu, Fe, Ni, Sn, Sb, Mo, W, Ta, Nb, V, Ti, Co, Cr, In, Ag, Mn, Pt, Pd, Zr, Rh, Ru, Os, and Re and a reducible Al alloy in the presence of aluminum chloride; and Step 2: optionally, treating the product obtained at the end of step 1 to remove by-products, thereby obtaining a final product in the form of a powder based on a base metal selected from Al, Si, Zn, Cu, Fe, Ni, Sn, Sb, Mo, W, Ta, Nb, V, Ti, Co, Cr, In, Ag, Mn, Pt, Pd, Zr, Rh, Ru, Os and Re. Including, The aluminum chloride is in a gaseous or solid state; the amount of the aluminum chloride is 1 wt % to 500 wt % based on the weight of the metal oxide as a precursor; said product comprising a compound based on said base metal; the by-products include aluminum chloride and aluminum oxychloride and / or aluminum oxide; the reaction between the base metal oxide and the reducible Al alloy is an exothermic reaction; maintaining the pressure in the reaction vessel below a threshold pressure required for the production of molten AlCl; and gradually feeding one or more of the metal oxide-based solid precursor powder, the reducible Al alloy powder, and the aluminum chloride into the reaction vessel; A method is provided that includes:

[0067] The inventors have discovered that AlCl plays an important role in mediating the reaction of aluminum with most base metals (e.g., Zn, Cu, Ni, Sb, W, etc.) by forming active intermediates that tend to react again with Al or the metal oxide at low temperatures. Examples of such intermediates include metal chlorides, metal oxychlorides, and gaseous aluminum monochloride (AlCl(g)). The formation of such intermediates lowers the reaction threshold temperature, making it easier to control the reaction rate and expanding the variety and properties of the products that can be produced.

[0068] The product is a powder composed of pure metals, alloys, compounds, or composites based on base metals, and may contain additives, although the type of additive is not particularly limited. The by-products are primarily AlOCl and / or Al2O3 and aluminum chloride, but may also include residual base metal chlorides, unreacted residual Al, and unreacted base metal oxides. AlOCl is a desirable by-product because it can be easily separated from the metal powder product. The inventors have found that Al2O3 is typically produced as a by-product when the reactants are heated above 600°C. For example, when a fine-structured ZnO precursor is used and the reaction is carried out at temperatures between 100°C and approximately 500°C, AlOCl is produced as a by-product, especially when the reaction with AlCl3(s) is initiated below 200°C. On the other hand, when ZnO is reacted with Al and gaseous AlCl3(g) at 550°C, Al2O3 is produced as a by-product. Also, if the by-product is AlOCl, raising the temperature of the reactants above 600°C will cause disproportionation of AlOCl to produce gaseous AlCl3 and Al2O3, resulting in a mixture of Zn and Al2O3 as the final product. c The product in the form of -Al2O3 can be easily obtained using any base metal, and M c Products in the form of -AlOCl can be obtained from a variety of base metals at reaction temperatures below 600°C.

[0069] M c O x -Al-AlCl 3 Chemical reaction of the system For the first group of elements (Group I), which includes Zn, Cu, Ni, Fe, Mo, Sn, Sb, V, Mn, and W, the reaction pathway involves reacting solid AlCl with a precursor oxide and Al. In this reaction, if the maximum reaction temperature is kept below about 600°C, the by-product is typically AlOCl. In this Group I, if the reactant temperature exceeds 600°C or if treatment is carried out with gaseous aluminum chloride (AlCl(g)) at temperatures above 500°C, the by-product is AlO.

[0070] In the second group of elements (Group II), consisting solely of silicon, reduction of SiO2 to Si can only be achieved by reacting SiO2 with Al in the presence of gaseous AlCl3(g) at temperatures between 400°C and 600°C, preferably between 450°C and 600°C. This reaction typically results in the formation of metallic Si and AlOCl as a by-product.

[0071] Group III includes oxides of elements that do not fall within the direct reaction pathways of Group I using solid AlCl3(s) or Group II using gaseous AlCl3(g). Group III includes oxides of several elements, including elements in Group I.

[0072] Group I: For most of the oxides in Group I, the reaction proceeds in two steps: the metal oxide is first converted to a Cl-based intermediate (or Cl-O-based intermediate for some elements), which then reacts with Al to give the base metal. M c O x + Al + AlCl3 → M c Cl y + AlOCl + Al (R1) Following this, M c Cl y + Al → M c -Al + AlCl3(R2) Overall reaction M c O x + Al + AlCl3 → M c -Al + AlOCl (R3)

[0073] Detailed studies have been carried out on this reaction scheme. The reactivity of the R1 and R2 reactions has been investigated as separate reactions, as well as the combined reaction system represented by the R3 scheme. Detailed experimental results have been obtained following this scheme for a number of elements, including Zn, Cu, Ni, Fe, Mo, Sn, Sb, V, and W.

[0074] For example, in the case of Zn, it was found that without AlCl3, the reaction between ZnO and Al begins at approximately 700 °C, causing the temperature of the reactants to rise rapidly and become uncontrollable. On the other hand, adding AlCl3 to the reactants changes the reaction pathway: in the first step, ZnO reacts with AlCl3 (and possibly Al) at approximately 100 °C to produce ZnCl2 and AlOCl; and in the second step, ZnCl2 and Al further react to form Zn and AlCl3 at approximately 220 °C. The exothermic energy released by these two reactions can raise the temperature of the reactants to approximately 800 °C. However, the method of the present invention includes a procedure for controlling the reaction rate and preventing thermal runaway. In the method of the present invention, the reactants are mixed with a pretreated material that functions as both a heat load modifier to mitigate the temperature rise and a physical barrier to limit the contact surface area between the reactants and slow the rate of exothermic energy release.

[0075] The reduction of ZnO using the method of the present invention can achieve reaction yields of up to over 99% in treatment times as short as less than 30 minutes and at temperatures below 400°C.

[0076] In the case of Fe, using Fe2O3 and Al without the addition of AlCl3, as in the well-known thermite welding process, requires a processing temperature of over 800°C, which causes an exothermic reaction and raises the temperature of the reactants to 2000°C. Adding AlCl3 can lower the reaction threshold temperature to below 500°C. The present invention involves controlling the quality and properties of the reaction product by controlling the exotherm. In the method of the present invention, the addition of AlCl3 can form intermediate species (e.g., FeCl3, FeCl2, iron oxychloride, etc.) at temperatures below 300°C, which then induces a reaction with Al to complete the reduction process.

[0077] In the case of Cu, when AlCl3 is added to a mixture of CuO and Al, the reaction between AlCl3 and CuO begins at approximately 100-150°C, followed by a series of subsequent reactions at temperatures above 200°C. To complete the reaction, the materials can be heated to a high temperature below 600°C to maximize reaction rate and yield.

[0078] In the example of Ni, the addition of AlCl3 to a mixture of NiO and Al reduces the threshold temperature for the reaction between NiO and Al to about 420°C.

[0079] In the example of W, adding AlCl3 to a reactant mixture consisting of WO3 and Al as starting materials gives AlCl3-WCl x A eutectic phase may be formed, along with intermediate species such as tungsten oxychloride and tungsten chloride. The resulting intermediate is then reacted with Al / AlCl3 in a second step to obtain W powder. The maximum processing temperature for W is 450°C to 600°C. However, reactions involving tungsten oxide are highly exothermic, and if the reaction kinetics become uncontrolled, temperatures exceed 600°C and Al2O3 is formed instead of AlOCl.

[0080] Group II: According to the method of the present invention, unlike existing techniques for reducing silicon oxide, a reaction can occur between SiO2, Al, and AlCl3 at temperatures of 450 to 600°C near atmospheric pressure, as shown in the overall reaction formula below. SiO2+ 1.333 Al + 0.666 AlCl3(g) → Si + 2 AlOCl, At 500°C, ΔG = -164.6 kJ / mol (R4)

[0081] This scheme is carried out in an open reaction vessel under 1 atmosphere of pressure in the presence of an inert gas (e.g., Ar, N2, or CO2). Further detailed studies were performed to determine the reaction mechanism for the SiO2-Al-AlCl3(g) system. The results showed that finely divided precursor chemicals, such as fumed silica and fine Al powder, could provide yields of up to 99% in short processing times of less than 1 hour.

[0082] Furthermore, we found that the availability of gaseous AlCl3(g) in the atmosphere of the reaction region is the most important factor affecting the yield. For example, we found that, for a given treatment time and total amount of AlCl3 precursor, reducing the AlCl3(g) concentration by 10% through argon dilution reduces the yield to less than 75%.

[0083] In another attempt to introduce liquid AlCl3 by adding an AlCl3-NaCl eutectic mixture, which is stable at temperatures below 550°C, the efficiency was significantly lower than when gaseous AlCl3(g) was used, with the yield falling to less than 50%.

[0084] A number of samples produced at temperatures below 600°C under various processing conditions were used as they were to carry out a detailed analysis of the reduction reaction to Si. The by-product was AlOCl in all cases, and no significant amount of Al2O3 was observed.

[0085] Analysis of the SiO2-Al-AlCl3 system, numerical simulations, and experimental evidence based on measurements and observations indicate the possible existence of three reaction pathways. i. Reaction of AlCl3(g) with SiO2: SiO2+ 2 AlCl3(g) → Si +2 AlOCl + 2Cl2(g);ΔG=564kJ / mol (R5) at 500℃ This reaction is followed by the following reaction between Cl2(g) and Al: Si-AlOCl + Al + 2Cl2(g) → Si-AlOCl + AlCl3(g);ΔG=-541kJ / mol (R6) at 500℃ Because reaction R5 is highly endothermic, it was thought that a reaction pathway via reaction R5 might not be possible. Various tests involving the reaction of SiO2 with AlCl3 failed to produce measurable yields, and no evidence of Cl2(g) evolution was found during the tests. This reaction pathway is likely not present. ii. Reaction of AlCl3(g) with SiO2 to form SiCl4(g) and Al2O3: SiO2+ 4 / 3 AlCl3(g) → SiCl4(g) + 2 / 3 Al2O3;ΔG=-16kJ / mol (R7) at 500℃ This reaction is followed by the following reaction of SiCl4(g) with Al to form Si: SiCl4(g) + 4 / 3 Al → Si + 4 / 3 AlCl3;ΔG=-160 kJ / mol (R8) at 500℃ Attempts to react AlCl3 with SiO2 at temperatures below 600 °C according to reaction (R7) have been unsuccessful. Furthermore, because the process according to the present invention is carried out in an open reaction vessel at 1 atmosphere, it is believed that most of the SiCl4(g), if present, will be lost, resulting in low reaction yields. As previously mentioned, no evidence of SiCl4(g) formation was found, as reaction yields up to 99% have been systematically obtained. Furthermore, to reconcile reactions R7-R8 with the experimental evidence that the by-product consists of AlOCl, the Al2O3 obtained via reaction R7 must react again with AlCl3 to form AlOCl. Al2O3(g) + AlCl3→ 3AlOCl (R9) Attempts were made to evaluate the effectiveness of reaction R9 at temperatures below 600°C, but no evidence of significant activity from this reaction was observed. This reaction pathway is also unlikely to exist. iii. The third potential reaction pathway involves an indirect reaction between Al and SiO2 based on a two-step scheme assuming a non-equilibrium reaction at close range: AlCl3(g) reacts with Al to form AlCl(g), which then reacts with SiO2 in the vicinity of the reactive Al particle where AlCl(g) was generated to form AlOCl. AlCl3(g) + 2 Al → 3 AlCl(g) (R10) SiO2+ 2 AlCl(g) → Si + 2AlOCl (R11)

[0086] Figure 1 shows the equilibrium composition of a mixture of Al and AlCl3 at temperatures below 1000 °C. This figure reveals that, under normal equilibrium conditions, the concentration of AlCl(g) at 550 °C is very small. However, as AlCl(g) is consumed by reaction R11 and the vapor pressure of AlCl(g) decreases, the production of AlCl(g) is significantly promoted, and reaction R11 proceeds to completion. Figure 2 shows the results of a numerical simulation of a mixture of Al and AlCl3 at temperatures below 1000 °C with the vapor pressure of AlCl(g) reduced. This figure reveals that under these conditions, the equilibrium curve shifts to the right, resulting in the production of large amounts of AlCl(g) at temperatures below 500 °C. Furthermore, our experimental results and observations from other experiments suggest that the third proposed reaction scheme is the most likely reaction pathway. This is discussed in detail below. For premixed reactants, the lack of in-process mixing does not significantly decrease the reaction yield. The high yields obtained, combined with the low dependence of the measured yield on the mixing efficiency, can only be explained by an indirect reaction between solid SiO2 and solid Al involving gaseous species. SEM and EDS analysis of the Si product obtained from SiO2 fibers (8 microns in diameter) as the starting material suggested that the SiO2 fibers were reduced to Si while maintaining their cylindrical shape. Metallic silicon formed in the center of the fibers, away from the surface, but this is unlikely to be due to a solid-solid reaction, suggesting the presence of a gaseous reactant capable of penetrating the porous Si fiber structure. If SiCl4(g) were a gaseous intermediate compound, the fibers would lose their shape, and Si particles would be obtained that were templated by the reducing Al particles, rather than Si particles with the shape of glass fibers. As mentioned above, reaction yields of up to 99% were obtained, suggesting that the reaction rate is not limited by a solid-solid reaction that requires physical contact between the Al and SiO2. The reaction rate does not decrease significantly over time, suggesting that it is not diffusion-limited, as is often the case with solid-solid reaction processes.

[0087] The above considerations do not exclude the possibility that the SiO2-Al-AlCl3 system may have a more complex reaction pathway than the one described above. However, according to the basic analysis results described above, the reaction pathways shown in R15 and R16 are consistent with the experimental results, and are thought to be a mechanism that enables the reduction of SiO2 at low temperatures by lowering the reaction threshold temperature.

[0088] In the embodiment of the present method using SiO2, AlCl3 must be in the gas phase; AlCl3 does not form a molten phase. In this embodiment, the reaction in the SiO2-Al-AlCl3 system occurs between 450 and 600 °C, with little reaction occurring below 450 °C and no reaction occurring below 350 °C. The high yields observed in our experiments are likely due to a gas-solid reaction involving gaseous AlCl3 and gaseous Al-Cl species. The presence of liquid AlCl3 can reduce reaction efficiency because it is difficult for molten AlCl3 to diffuse through solid particles to reach unreacted SiO2 particles and / or particle cores. When a liquid AlCl3-NaCl eutectic mixture was used as the AlCl3 source for SiO2 reduction, the yield was significantly lower than when gaseous AlCl3 was used.

[0089] In all aspects and embodiments of the method of the present invention, the reaction vessel is closed and heated to melt the AlCl3, but the AlCl3 or another reactant, M, contained in the reaction vessel is not melted. c O x The AlCl3 for reacting with -Al must not become molten due to the pressure increase. c O x The reaction of the -Al-AlCl3 system is preferably carried out in a vessel open to atmospheric pressure, and the pressure in the vessel is preferably not increased.

[0090] Group III: As mentioned above, Group III contains elements primarily consisting of various oxides that do not fall into the Group I direct reaction pathway using AlCl3(s) or the Group II direct reaction pathway using gaseous AlCl3(g). In Group III, the products are usually composites containing Al2O3, and the reactions tend to occur at high temperatures where AlCl3 exists in a gaseous state.

[0091] For most elements in this group, M c O xThe reaction in the -Al-AlCl3 system is highly exothermic. Some elements may produce AlOCl as a by-product, but if the reaction goes out of control, Al2O3 may be formed, so it is usually difficult to consistently obtain a product that does not contain any Al2O3.

[0092] For oxides in Group III, such as TiO2, Fe2O3, Sb2O3, WO3, Ta2O5, Nb2O5, V2O5, Co3O4, and Cr2O3, M can be obtained via the reaction pathway using AlCl3(g). c -Al2O3 form easily. However, the reaction, which forms AlOCl as a by-product, requires a stepwise operation to avoid the exotherm that would result in the formation of Al2O3.

[0093] The overall reaction scheme for producing Al2O3 using gaseous AlCl3(g) is shown below: M c O x + Al + AlCl3(g) → M c -Al + Al2O3 + AlCl3(g) (R12)

[0094] In this reaction, AlCl3(g) is c O x AlCl(g) acts to promote the reaction of Al with Al, either by disproportionation of AlOCl to form Al2O3 and AlCl3 following reactions similar to those shown in reactions R1-R3, or by other mechanisms, such as intermediate reactions with Al and / or partial reduction of base metal oxides to chlorides. Finally, AlCl3(g) lowers the reaction threshold temperatures of most base metals below 600°C and those of TiO2, Co3O4, and Cr2O3 to 650-800°C.

[0095] Some of the elements in Group III (i.e., TiO2, Co3O4, and Cr2O3) may be incompletely reduced and form suboxides or oxychlorides when treated at temperatures below 600°C. The threshold temperature for the reaction of TiO2, Co3O4, and Cr2O3 to form metals is between 600°C and 800°C, and the product is M. c -It is an Al2O3-based composite material.

[0096] For elements that form multiple oxides and stable oxychlorides, such as Ti, Fe, Sb, W, Ta, Nb, V, Co, Cr, and Group I elements (e.g., Fe2O3 and WO3), reduction of the oxide to produce the base metal may be accompanied by the formation of intermediates such as base metal oxychlorides (e.g., TiOCl and TaO2Cl) and / or base metal chlorides. M c O x + Al + AlCl3 → M c -O-Al + AlOCl; (R13) Following this, M c -O-Al + Al + AlCl3(g) → M c -(Al) + AlOCl / Al2O3(R14)

[0097] For example, in the case of titanium, the reaction proceeds as follows: TiO2+ Al + AlCl3→ TiOCl + AlOCl; (R15) Following this, TiOCl + Al + AlCl3→ Ti (O, Al) + AlOCl / Al2O3+ AlCl3(R16)

[0098] Reaction R15 has been observed to occur at temperatures above 150°C, while reaction R16 has been observed to occur at temperatures above 500°C. It has also been found that in reaction R15, which produces AlOCl, the amount of Al used is preferably stoichiometric to that of reaction R15. Starting the reaction with the combined amount of Al required for both reactions R15 and R16 results in the formation of Al2O3.

[0099] Most of the other base metal oxides in Groups I and III were tried in the same way as SiO2, but none were successful. c -Al2O3 based composites were formed.

[0100] Precursor Chemicals and Products As mentioned above, the important effect and advantage of the present invention is that AlCl3 is Al-M c O x This occurs by reacting with the reactant to lower the reaction threshold temperature. The discussion in this disclosure regarding the reactions and mechanisms driving the role of AlCl is intended solely to illustrate aspects of this technology, highlighting the various physical mechanisms involved. Thus, the foregoing discussion is not intended to be exhaustive and / or limit the present invention to any particular theory or mechanism of action.

[0101] The metal oxide-containing precursor is preferably an oxide or suboxide of a base metal or a mixture thereof. The oxide-based precursor as a starting material is preferably in the form of a fine powder, flakes, fibers, or particles. Examples of oxide-based precursors as starting materials include FeO powder, NiO powder, CuO powder, ZnO powder, and oxide mixtures (e.g., FeO-CoO-NiO). Other examples of suitable precursors include amorphous SiO powder, quartz powder, silica nanopowder, porous silica powder, fumed silica, glass powder, glass flakes, borosilicate glass, natural mica, synthetic mica, or other SiO-based compositions.

[0102] The particle size of the metal oxide-containing precursor can range from a few nanometers to several millimeters, depending on the desired properties of the final product. However, smaller particle sizes of less than 50 microns are preferred. Nanopowders with particle sizes of less than 1 micron and less than 100 nm can be used, and the use of nanopowders with such particle sizes typically results in more efficient reactions and a better final product. For example, silica nanopowder or fumed silica is preferred as a starting precursor for obtaining silicon nanoparticles.

[0103] With respect to Si, amorphous silica is found to be suitable for the reaction scheme of the present invention because it is available in a finer form than quartz and is more reactive than crystalline silica, most often forming AlOCl as a by-product. Therefore, in a most preferred embodiment for producing Si, the starting precursor SiO2 is amorphous.

[0104] The amount of base metal oxide reduced during the treatment may be 0.1% to 100% of the weight at the start of reduction. The remaining unreacted base metal oxide and reducing agent are released as part of the product and may be separated in a post-treatment step, if necessary.

[0105] The amount of aluminum reducing agent (e.g., reducible Al alloy) used depends on the starting precursor and the desired composition of the final product, and may be less than or greater than the stoichiometric amount required to reduce the entire amount of reducible precursor starting chemical. In some embodiments, the amount of aluminum reducing agent in the reaction mixture may be 5 wt% to 500 wt%, more preferably 10 wt% to 200 wt%, and even more preferably 50 wt% to 200 wt%, based on the weight of the metal oxide-containing precursor.

[0106] Preferably the aluminum is in the form of a powder or flakes having a particle size of less than 50 microns in at least one dimension, more preferably the particle size of the aluminum is between 1 and 50 microns in at least one dimension.

[0107] In some embodiments, the amount of AlCl used may be 1 wt% to 500 wt%, preferably 1 wt% to 200 wt%, more preferably 10 wt% to 200 wt%, and even more preferably 50 wt% to 200 wt%, based on the weight of the precursor containing the metal oxide.

[0108] It has been found that the threshold reaction temperature required for the reduction of some metal oxides depends on the amount of aluminum chloride used. For example, the threshold reaction temperature for ZnO can vary widely; when high amounts of AlCl are used, the threshold reaction temperature for ZnO is below 100°C, but when low amounts of AlCl are used, the threshold reaction temperature for ZnO is above 500°C.

[0109] In any embodiment, the weight ratio of the base metal oxide to the reducible Al alloy to AlCl3 is determined based on the desired composition of the final product and the M c It is determined by a combination of various factors, including the stoichiometric requirements of the reaction in the -O-Al-Cl system.

[0110] In embodiments using solid aluminum chloride, the solid AlCl starting material is preferably in the form of a powder or granules having a particle size of less than 5 mm, more preferably in the form of a powder having a particle size of less than 200 microns, and even more preferably in the form of a powder having a particle size of less than 100 microns.

[0111] In most embodiments of the disclosed method, the process is preferably carried out in an open reaction vessel in the presence of a protective gas, with the process being carried out at atmospheric pressure. An excess of aluminum chloride may be used, and any AlCl(g) that escapes or diffuses from the reaction vessel may be condensed and returned to the reaction vessel during the process, or collected in a dedicated container for later use or reuse. In the process involving reactions R1-R3, the excess gaseous aluminum that escapes from the reaction vessel may be condensed and returned to the first stage of reaction R1, and then condensed and collected in a dedicated container for use in the final stage of the reaction to complete reaction R3.

[0112] The process of the present invention can be carried out in batch, semi-continuous, or fully continuous mode, and involves feeding AlCl3 as a solid powder to the reaction zone / vessel and reacting it with another precursor at low temperature, or sublimating it to gaseous AlCl3(g) during the process. Alternatively, AlCl3 can be fed to the reaction zone / vessel as a gas stream passing through the reactants (e.g., a fluidized bed) or an atmosphere of the reactants.

[0113] In all aspects and embodiments of the process of the present invention, residues such as aluminum chloride or oxychloride, Al2O3, unreacted residual oxides and suboxides, other residual chlorides and unreacted Al can be removed from the product in a post-treatment step using appropriate means such as washing, chemical dissolution and vacuum sublimation.

[0114] For example, AlOCl can be removed by washing with dilute HCl. If Al2O3 is formed and included in the product, it may remain part of the final product either as a separate component in a composite or as part of a compound / particle by reacting physically or chemically with species produced by the reduction reaction.

[0115] In most embodiments, processing temperatures exceed 300°C and the product is typically substantially free of aluminum chloride, with any aluminum chloride residue believed to be residual from release and / or handling contamination. Products from the process of the present invention preferably contain less than 5 wt% solid residual AlCl(s) impurity, preferably less than 1 wt%.

[0116] Those skilled in the art will readily appreciate that the final product may contain 0.01 to 70 weight (wt) % Al in the form of residual Al impurities or metal aluminides, and that this residual Al may be partially or completely removed, if desired, by various means, such as washing with chemicals such as dilute NaOH or dilute HCl.

[0117] The final product may contain alloying additives. The alloying additives may be in the form of pure elements, alloys, chlorides, oxides, nitrides, carbides, borides, sulfides, or combinations thereof. The alloying additives may be introduced as a variety of solid or gaseous precursors containing the required product additives. Suitable additive precursors include oxides, chlorides, and metal powders, and examples of suitable additives include carbon black, calcium oxide, sodium bicarbonate, borates, and silicates.

[0118] In embodiments in which the precursor material includes a reactive additive, the final product may include a compound containing the alloying additive. For example, if an additive containing carbon, boron, oxygen, or nitrogen is used, the product may include a carbide, a boride, an oxide, or a nitride.

[0119] Preferred Embodiments As mentioned above, M c O xIn the reaction in the -Al-AlCl3 system, a large amount of exothermic energy is released, and the temperature of the reactants can exceed 1500 °C, which can result in a decrease in the quality of the product. For example, if the temperature of the reactants increases above 700 °C, the M c O x An uncontrolled direct reaction between M and Al can occur, resulting in the formation of heterogeneous compositions containing Al2O3. Also, if the temperature of the reactants is increased above the melting points of the base metal and / or Al, M c Large particles of Al2O3 and dross may also form. The present invention has the advantage of overcoming these technical challenges and includes a controlled heat generation process, which allows the temperature to be maintained at a level suitable for producing a material with uniform and reasonable properties. c O x The reaction rate of the -Al-AlCl3(g) system is controlled by a combination of mechanisms such as controlling the reactant feed rate, mixing with pretreated products, and managing external heat.

[0120] The method of the present invention is preferably carried out with a gradual supply of at least Al and / or AlCl, which mitigates the release of exothermic energy and allows for efficient thermal management of the reactants. In all exemplary aspects, configurations, and embodiments, the method of the present invention includes means for managing the exotherm and maintaining the temperature of the reactants and reaction vessel at safe levels.

[0121] In one preferred embodiment, the method of the present invention comprises: gradually supplying precursor chemicals based on base metal oxides and a reducible Al alloy as reactants to a reaction vessel set at a temperature T1 above a reaction threshold temperature (less than 800°C, preferably less than 650°C); mixing and reacting the reactants in the presence of aluminum chloride to obtain a product based on a base metal selected from Si, Zn, Cu, Fe, Ni, Sn, Sb, Mo, W, Ta, Nb, V, Ti, Co, Cr, In, Ag, Mn, Pt, Pd, Zr, Rh, Ru, Os and Re, with AlOCl or Al2O3 as a by-product; and Optionally, separating said by-products to obtain said base metal-based final product. Including, the temperature T1 is less than 600°C, preferably 180°C to 600°C, more preferably 160°C to 600°C, even more preferably 200°C to 600°C, and still more preferably 400°C to 600°C; the reaction vessel contains the reactant being processed; and The aluminum chloride (AlCl3) is in the form of a solid or gas; if the aluminum chloride is provided in the form of a solid, it may be provided as a premixed mixture with solid Al powder. It is characterized by:

[0122] A schematic diagram of the process steps for carrying out this preferred embodiment is shown in Figure 3. A precursor powder (101) consisting of base metal oxides, AlCl powder (102), Al powder (103) and alloying additive powder (104) are fed into a reaction vessel (105) equipped with a mixer (not shown) and set at a temperature T1 of less than 650°C (preferably less than 600°C).

[0123] By continuously mixing the precursor powders with a residence time t1, a solid base metal-based product, solid AlOCl / Al2O3, and a gaseous AlCl3 by-product are formed. The gaseous AlCl3 (g) is condensed and collected in a dedicated container (106). This aluminum chloride may be partially or entirely recycled in (107). All process steps are preferably carried out in the presence of an inert gas or a relatively unreactive gas (e.g., Ar, CO2, N2, Ar-O2, etc.) (108). At the outlet of the by-product recovery step, the gas is cleaned in a scrubber (109) and either released to the atmosphere or recycled (110).

[0124] Other by-products, AlOCl and / or Al2O3, are released with the product (111). The product may then be post-processed (112) as needed to separate the metal product from unwanted residual precursors (e.g., Al and unreacted metal oxides) and by-products (e.g., AlOCl) to obtain the final product (113). Waste (114) is treated and stored separately.

[0125] The reactants are placed in separate streams according to their chemical compatibility, but it is preferable not to premix reactants that may cause exothermic reactions. For example, aluminum powder (103) is compatible with aluminum chloride (102), so they may be mixed in a premixing step and fed together into the reaction zone / vessel (105). Other precursors, such as base metal oxides (101), may be mixed with other compatible precursors (e.g., additives (104)). The mixing and preparation of these precursor materials is preferably carried out under a protective atmosphere.

[0126] The reactor may be equipped with a mixer and adapted for batch, semi-batch or continuous operation. One example of a suitable reactor is a fluidized bed system.

[0127] In one embodiment, a mixture of base metal oxides and Al is gradually fed into a reaction vessel at a temperature of 650°C or less in an atmosphere containing gaseous AlCl to cause a reduction reaction to occur and form a powder product based on one or more base metals.

[0128] In all embodiments of the method of the present invention, M c O x The amount of AlCl provided to react with the -Al mixture may be adjusted to suit the processing requirements and to control the reaction rate and kinetics. In some embodiments, aluminum chloride is c O xThe aluminum chloride is passed as a gas stream flowing over a mixture of Al and a metal oxide-based precursor, as pure AlCl gas, or as a mixture of a carrier gas and AlCl (e.g., N / AlCl or Ar / AlCl). In one embodiment, aluminum chloride is passed through a mixture of metal oxide and Al, similar to the configuration in a fluidized bed system.

[0129] In one preferred embodiment, there is provided a method for the stepwise production of metal powders based on base metals selected from Zn, Cu, Fe, Ni, Sn, Sb, Mo, W, Ta, Nb, V, Ti, Co, Cr, In, Ag, Mn, Pt, Pd, Zr, Rh, Ru, Os and Re, comprising the steps of: Step 1: In the presence of aluminum chloride, a mixture containing powders of metal oxides based on one or more base metals is gradually reacted with an Al reducing agent at a temperature T1 in the range of 150°C to 500°C and a residence time t1 to form an intermediate product containing AlOCl / Al2O3; Step 2: The obtained intermediate product is heated at a temperature of 300°C to a maximum temperature T max and Al and AlCl3 at a temperature T2 and a residence time t2 in the range of 0.1 to 1.25 to obtain a product (M c - forming an AlOCl / Al2O3 mixture; and If necessary, the above M c - treating the AlOCl / Al2O3 mixture to separate said by-products A method is provided which includes: T max The heating temperature is less than 800°C, preferably less than 650°C, more preferably less than 600°C, and even more preferably 300 to 600°C.

[0130] Maximum processing temperature T maxis preferably below the melting point of Al and is determined depending on factors such as the kinetic barrier of the reaction between the precursor material, aluminum chloride, and the reducible Al alloy. However, in the post-treatment step, the maximum processing temperature may exceed the melting point of Al because an excess amount of Al is required in the final product and it is necessary to diffuse Al into the bulk of the final product. Also, T max is preferably higher than the reaction threshold temperature.

[0131] As outlined above, the threshold reaction temperature varies for each oxide system and depends on the amount of AlCl3 and Al used. For example, for ZnO and CuO, the reaction can typically begin at about 100°C. For Fe2O3, the reaction begins at about 300°C. For SiO2, the reaction can begin at about 450°C, but temperatures between 500 and 550°C are more effective. For NiO, the reaction onset temperature is between 350 and 450°C, and for TiO2, the threshold temperature for metal formation is above 650°C.

[0132] FIG. 4 is a schematic diagram of an exemplary process for carrying out one preferred embodiment for producing a powder metal system, which involves a two-stage process using metal oxide and Al as starting materials. This configuration is believed to be suitable for a variety of metals (e.g., Cu and Zn). In the first process step, a base metal oxide (201) is reacted with AlCl (202) and Al (203) (205) at temperatures between 25°C and 500°C, optionally with alloying additives (204), to produce M. c An intermediate based on the -O-Al-Cl system is then produced. In a second process step (206), the produced intermediate is then reacted with Al (201) and AlCl3 to complete the reaction. AlCl3 (202) and Al (203) can also be fed directly to (206) (the corresponding direct route is not shown in Figure 4).

[0133] The gaseous AlCl by-product is condensed and separated from the solid reactants and collected in a dedicated vessel (207). The aluminum chloride may be partially or entirely recycled in (208 and 202). All process steps are preferably carried out in the presence of a protective gas (e.g., Ar, CO2, N2, etc.) (209). At the outlet of the by-product recovery step, the gas is cleaned in a scrubber (210) before being released to the atmosphere or recycled (211).

[0134] The AlOCl and / or Al2O3 produced during this process is released with the product 212. The product may then be post-treated, if necessary, to separate the metal product 213 from unwanted residual precursors (e.g., Al and unreacted metal oxides) and by-products to obtain the final product.

[0135] The remaining waste (214) is kept separate for further processing or disposal.

[0136] In all embodiments, the reactants are continuously mixed at a temperature of 650°C or less to complete the reduction reaction and form a product comprising a metal-based or metal suboxide. In all embodiments, aluminum chloride may be supplied to the reaction zone / vessel in a solid form that reacts directly with another reactant, or that sublimes with heat, or it may be introduced directly in vapor form. In all embodiments, M c O x The precursors may be fed batchwise or gradually. In the most preferred embodiment, Al is fed gradually. In all forms and embodiments, the treated or pretreated reactants can be placed in the reaction vessel, and the method of the present invention includes mixing the reactants that have been previously placed in the reaction vessel with the materials.

[0137] In one embodiment of continuous operation, a mixture of precursor metal oxide, aluminum chloride, and reducible Al alloy is placed in a reaction vessel, and the temperature T1 to T2 of the mixture when it is placed in the reaction vessel is changed. maxAfter treatment at a continuous or stepwise increasing temperature up to a temperature (less than 800°C, preferably less than 600°C), the resulting product is cooled and discharged from the reaction vessel. Temperature T1 is preferably greater than 25°C, more preferably greater than 100°C, and even more preferably greater than 180°C. The resulting product is then cooled, discharged, and further treated.

[0138] In a preferred embodiment, exothermic heat generation is controlled by mixing the reactants with pre-formed products or pre-formed reactants. The pre-formed products or pre-formed reactants act as heat load regulators, absorbing the heat generated by the reaction and providing a reducible M c O x It acts as a control agent to limit close contact between the reactants and the reducible Al powder, thereby slowing down the reaction rate.

[0139] In another preferred embodiment of this method, in which the exothermic energy release is controlled and the temperature of the reactants is moderated, the base metal oxide and the reducible Al alloy are gradually fed into a reaction vessel at a temperature of 160°C to 600°C, preferably 200°C to 600°C. The base metal oxide and the reducible Al alloy are then gradually mixed and reacted in the presence of AlCl3 and the resulting base metal product, while controlling the reactant feed rates to maintain the reactant temperature preferably below 650°C, more preferably below 600°C. As a result, a solid base metal powder product is formed, which may contain AlOCl and, depending on the reaction conditions, Al2O3 in addition to residual metal chlorides, unreacted residual base metal oxide, and residual reducible Al.

[0140] In one embodiment, NaCl is added to the reactant mixture. The addition of NaCl to the reactant mixture has the effect of maintaining AlCl in a liquid state at pressures below 1.2 bar by reacting with AlCl to form an intermediate NaCl-AlCl eutectic compound, making AlCl available for the reaction between the SiO-based precursor and the Al reactant at temperatures up to 550°C. The ratio of NaCl to AlCl may be between 25 wt% and 200 wt%. NaCl serves to form an intermediate compound that helps maintain AlCl in a condensed state in the reactant at temperatures up to 600°C. When NaCl is added, the reactant mixture is processed according to any of the previous or subsequent embodiments of this disclosure.

[0141] In one embodiment for partially reducing a precursor metal oxide, the method of the present invention comprises: c O x The method includes reacting a mixture of a base powder based on Al with a substoichiometric amount of Al in a reduction reaction to partially reduce the base material, thereby forming a metallic coating on the surface of the base material, which may be in the form of flakes, powder, or fibers.

[0142] In a preferred embodiment for producing silicon powder, a stream of precursor SiO2 powder and a stream consisting of a mixture of Al powder and AlCl3 powder are gradually fed into a reaction vessel preheated to a temperature of 400°C to 600°C, preferably 450°C to 600°C. This process is carried out in a vessel at atmospheric pressure in the presence of a non-reactive protective gas. The reaction product in this embodiment is a mixture of Si powder and AlOCl. The metal Si powder is isolated by washing the resulting mixture with dilute HCl. In one aspect of this embodiment, the precursor SiO2 powder is a silica nanopowder, and the product is a Si nanopowder. In another aspect, the precursor SiO2 powder is a fumed silica powder, and the product is a Si nanopowder. In another aspect, the precursor SiO2 powder is fumed silica.

[0143] Figure 5 is a schematic diagram illustrating the process steps for carrying out a preferred embodiment of the reduction of a SiO precursor using Al-AlCl. In this embodiment, the SiO precursor powder (301) is fed into a reaction vessel (302) either as a single batch or gradually into the reaction vessel (302). Al powder (303) and AlCl powder (304) are premixed (305) and gradually fed into the reaction vessel (302) equipped with a mixer (not shown) and set at a process temperature T1, which is higher than the reaction threshold temperature required for the reduction of SiO. The alloying additive (306) may be fed separately or together with other precursors depending on their reactivity and compatibility.

[0144] Continuous mixing of the reactants in (302) with a residence time t1 forms a solid product containing a metal-Si-based compound and a solid AlOCl by-product. The solid AlCl, supplied to the reaction vessel in solid form (as part of a mixture of Al and AlCl), sublimes to gaseous AlCl, a portion of which reacts with Al and SiO in the reaction vessel to form AlOCl. Another portion of the gaseous AlCl escapes or diffuses from (302) and is condensed and recovered in a dedicated vessel (307). Some or all of this aluminum chloride may be recycled via (308). All processing steps are preferably carried out in the presence of an inert or relatively unreactive gas (e.g., Ar, CO, N, etc.) (309). At the outlet of the by-product recovery step, the gas is purified in a scrubber (310) before being released to the atmosphere or recycled.

[0145] A solid reaction product containing Si powder and AlOCl by-product is released from (311), along with other solid residues (e.g., Al2O3, additive precursors, etc.). The reaction product (311) may then be post-processed (312) as needed to separate the metal product from undesired residual precursors (e.g., Al and unreacted SiO2) and by-products to obtain the final product (313). The waste product from the separation step (312) is treated and stored separately.

[0146] In one version of this embodiment, where the final product includes an alloying additive, a precursor chemical for the alloying additive is fed into the reaction vessel along with the starting precursor described above. The alloying additive may be based on a metal selected from Zn, Cu, Fe, Ni, Co, Cr, Mo, Sn, Ti, In, Sb, Ag, V, Mn, Pt, Pd, Ta, Zr, Nb, Rh, Ru, Os, Re, C, B, and W. An example of this embodiment is the production of a Si-Ag composition, where AgCl is added to the precursor or reactants at any point during the process and processed with other reactants according to any of the previous or following embodiments. The final product is Ag-coated Si particles.

[0147] In one embodiment, a precursor metal oxide is mixed with a metal carbide or graphite and then reacted with Al-AlCl according to any of the above or below described embodiments. In one form of this embodiment, the precursor metal oxide is a SiO-based metal oxide, and the final product includes graphite, a carbon-based compound, and silicon.

[0148] In one form of this embodiment for producing a Si-graphite composite, graphite powder is milled with SiO2 and the resulting mixture is reacted with Al-AlCl3 according to any of the previous or subsequent embodiments. In another form of this embodiment, graphite powder is milled with SiO2 and AlCl3 and the resulting mixture is reacted with Al or Al-AlCl3 according to any of the previous or subsequent embodiments. In another form, graphite powder is milled with SiO2, AlCl3, and Al and the resulting mixture is reacted according to any of the previous or subsequent embodiments. The resulting product is Si-coated graphite sheets intermixed with AlOCl, which is removed by washing with dilute HCl. The final product consists of silicon-coated graphite flakes or graphite powder.

[0149] In a most preferred embodiment for producing silicon-based materials, a method for producing a Si-based powder is provided. In this method, the solid powder precursor may consist of any of the following: multi-component powders containing SiO2, pure SiO2, SiO2 nanopowder, fumed silica, amorphous silica, quartz powder, glass powder, glass flake, borosilicate glass powder, borosilicate glass flake, mica, synthetic mica, or other SiO2-based compositions. In step 1 of this method, The particle size of the precursor silica-based powder is from a few nanometers to a few hundred microns in at least one dimension; reacting the SiO2-based precursor powder with Al and gaseous AlCl3(g) to produce a powder product; The by-product is AlOCl, and the product is a mixture of silicon-based powder and solid AlOCl with residual Al; The product of step 1 is substantially free of aluminum chloride, preferably containing less than 5 wt% solid residual AlCl(s) impurity; This product is silicon powder, silicon nanopowder with particle size less than 1 micron, pure silicon material, silicon monoxide SiO or SiO x (where x is 0.2 to 1.8), a silicon-based powder having an oxygen content of 0.01 to 50 wt%, or silicon-coated particles, or a mixture thereof. In step 2 of the process, the product obtained in step 1 may be treated to remove by-product AlOCl and / or residual Al to obtain a Si-based final product.

[0150] In a preferred embodiment for producing a Si-coated substrate by partially reducing a SiO2-based precursor, the SiO2-based precursor is reacted with a substoichiometric amount of Al in the presence of gaseous AlCl3. The resulting product is in the form of a Si-coated SiO2-based substrate. The SiO2-based precursor may be in the form of particles, such as powder, flakes, or fibers. The metal coating on the precursor particles may be a continuous or patchy coating, covering the entire or partial surface of the particle. If the precursor particles are in flake form, the coating may be reflective, allowing such particles to be used in applications such as pigments, and such processes and products are also within the scope of the present invention. In another embodiment, the coated particles may be further reacted with another precursor chemical, in which metallic Si acts as a reducing agent.

[0151] In one form of this embodiment, AgCl as an additive is provided with the precursor chemicals, and the final product is a Si-Ag or Ag-coated SiO2 substrate, depending on the amount of Al and AgCl used and the desired properties of the final product.

[0152] In one embodiment for producing a silicon-based product, the precursor oxide powder includes glass powder, glass flakes, fumed silica, silica nanopowder, or fine hollow glass spheres, and the product includes metal silicon or metal silicide. In one form of this embodiment, the precursor oxide is in the form of flakes, and the product is a powder in a flake-like shape. In another form, the precursor powder includes fibers, and the product is a powder in a fiber-like shape.

[0153] In one embodiment, the method further comprises reacting the silicon metal produced according to any of the preceding or following embodiments with a chloride or oxide of a base metal selected from Zn, Cu, Fe, Ni, Co, Cr, Mo, Sn, Ti, In, Sb, Ag, V, Mn, Pt, Pd, Ta, Zr, Nb, Rh, Ru, Os, Re, and W to obtain a compound in the form of base-metal-coated Si / SiO2 particles or a pure base-metal compound. In one aspect of this embodiment, the silicon metal is produced as part of an AlOCl-containing mixture and is used as such. In another aspect, the silicon metal is used after removing the by-product AlOCl.

[0154] According to said embodiment, there is provided a method for the stepwise production of powders based on base metals selected from Si, Zn, Cu, Fe, Ni, Co, Cr, Mo, Sn, Ti, In, Sb, Ag, V, Mn, Pt, Pd, Ta, Zr, Nb, Rh, Ru, Os, Re and W, comprising: In a first step, SiO2 is reduced using Al and AlCl3 according to any of the above or below described embodiments of the method of the present invention to produce an intermediate powder containing metallic Si and by-products; In a second step, the intermediate powder may be treated to remove by-products; In a third step, the powder obtained at the end of the first or second step is reacted with a base metal precursor at 100°C to 800°C to form a powder product based on a base metal selected from Si, B, C, Zn, Cu, Fe, Ni, Co, Cr, Mo, Sn, Ti, In, Sb, Ag, V, Mn, Pt, Pd, Ta, Zr, Nb, Rh, Ru, Os, Re and W. In this method, the powdered metallic Si obtained at the end of the first or second step is a reducing agent for the base metal precursor, which is a chloride or oxide of the base metal. In the third step, AlCl3(s) or AlCl3(g) is added to the reaction mixture. By-products produced in the third step include SiCl4(g). The powder product obtained in the third step may be further processed to remove by-products and residual precursors. The final powder product is · metallic Si-based particles coated with a coating based on one or more selected from B, C, Zn, Cu, Fe, Ni, Co, Cr, Mo, Sn, Ti, In, Sb, Ag, V, Mn, Pt, Pd, Ta, Zr, Nb, Rh, Ru, Os, Re and W; SiO2-based particles coated with a coating based on one or more selected from B, C, Zn, Cu, Fe, Ni, Co, Cr, Mo, Sn, Ti, In, Sb, Ag, V, Mn, Pt, Pd, Ta, Zr, Nb, Rh, Ru, Os, Re and W; or Base metal-based particles obtained by consuming metallic silicon produced in the first step in the reaction of the third step It is in the form of:

[0155] An advantage of using this embodiment for the production of base metal powders is that base metal nanoparticles can be produced by utilizing the Si nanoparticles produced in the first step as a template and reducing agent for the low-temperature synthesis of other compositions. For example, Ag-based nanoparticles can be produced by reducing AgCl at temperatures between 300°C and 500°C using silicon nanoparticles produced by the method of the present invention. By adding AlCl3 to the reactant mixture, the reaction can occur at temperatures as low as below 500°C, and the product can be in the form of Ag-coated Si particles or pure Ag nanoparticles, depending on the Si content in the starting materials and the amount of AgCl used.

[0156] The amounts of precursor chemicals, such as base metal chemicals, depend on the desired composition of the final product. For example, to obtain Ag-coated Si powder, the amounts of starting materials SiO2, Al, and AlCl3 must be such that a greater than stoichiometric amount of AlCl3 is provided. The amount of AgCl used must be such that less Si is used to reduce AgCl to form gaseous SiCl4(g) and Ag-coated Si particles are obtained. In another embodiment for producing pure Ag nanoparticles, the amount of AgCl must be such that all available Si is consumed during processing. In another configuration, the amount of SiO2-Al-AlCl3 used is such that an intermediate product consisting of particles with a SiO2 core and a Si surface layer is obtained. In this configuration, Ag-coated SiO2 particles can be obtained by reacting this intermediate with AgCl. At the end of the AgCl reduction cycle, the by-product AlOCl and residual AgCl, if any, are removed by appropriate means.

[0157] Another advantage of the above-described embodiment of the method for producing a powder based on a base metal selected from Si, Zn, Cu, Fe, Ni, Co, Cr, Mo, Sn, Ti, In, Sb, Ag, V, Mn, Pt, Pd, Ta, Zr, Nb, Rh, Ru, Os, Re, and W is that it allows for the production of compositions based on Si and a base metal while preventing or minimizing the formation of metal silicides. This embodiment of the method provides a means for reacting a base metal chloride or oxide with Si at low temperatures, thereby preventing or minimizing the formation of metal silicides, provided that the processing temperature is below the temperature required for silicide formation. The inventors have discovered that the use of AlCl in combination with a base metal precursor (e.g., AgCl as the base metal precursor) can lower the reaction threshold temperature required to react the base metal precursor with Si, allowing the reaction to occur at a temperature below the temperature required for metal silicide formation.

[0158] For example, silicon nanoparticles produced using the method of the present invention can be used to produce Si-Cu compositions by reducing a mixture of CuCl and Si at about 400° C. By using CuCl-AlCl instead of CuCl, the reaction temperature can be reduced to about 200° C., and products can be obtained in the form of Cu-coated Si particles or pure Cu nanoparticles.

[0159] To illustrate this embodiment, another example is further disclosed.

[0160] FIG. 6 is a schematic diagram illustrating the process steps for carrying out a preferred embodiment for producing Ag-coated Si powder. This configuration is suitable for base metals other than those mentioned above, such as Cu and Ni. In this configuration, SiO2 (401) is first reacted with Al (402) and AlCl3 (403) in a reaction vessel (404), such as that shown in FIG. 5, to produce an intermediate product (405) containing a mixture of Si and AlOCl. Next, the intermediate product (405) is reacted with AgCl (406) and AlCl3 (407) in a reaction vessel (408) set at a maximum temperature between 180°C and 750°C. The maximum temperature depends on the type of additive (406); when AgCl is used as the additive, the reaction temperature is between 300°C and 500°C. The by-product SiCl4 (g) (409) is discharged from the reaction vessel and either treated in a scrubber (410) or stored for reuse. The powder product (411) is then released and post-processed (412). For example, in one embodiment, the powder product is first washed with HO-HCl and filtered to remove AlOCl. It is then further washed with NHOH to remove residual AgCl. The resulting powder (413) is composed of particles having a Si-Ag based composition. All high-temperature processing steps are performed under an inert atmosphere.

[0161] In one embodiment, the method further comprises heating the product obtained by the method according to any of the previous or following embodiments at a temperature of up to 1000°C to alter the phase composition of the product. This embodiment is useful when the final product contains a large amount of aluminum or when high temperature processing is required to remove residual reactants. For example, in compositions that require a large amount of Al in the final product, high temperature processing may promote the diffusion of Al into other components in the product of the method of the invention.

[0162] In one aspect of this embodiment, first, in the first stage, a solid mixture of a metal oxide, aluminum chloride, and a reducible Al alloy as a precursor is treated at a temperature T1 in the range of 100°C to less than 600°C for a residence time t1, and in the second stage, the resulting product is treated at a temperature of 200°C to 800°C for a residence time t2 to remove residual species such as residual metal chlorides, thereby obtaining a final product.

[0163] In all embodiments, it is preferred to continuously mix the solid reactants, including the base metal oxide and the reducible Al alloy, to maximize contact between the solid reactants and improve the reaction yield.

[0164] In all embodiments, the additive may be in the form of a pure element, an alloy, an oxide, a nitride, a carbide, a boride, a sulfide, or a combination thereof, a silicate, a boron powder, or a silicon powder.

[0165] In one embodiment, where the by-product is AlOCl, the AlOCl is separated from the metal powder product by washing with a solvent suitable for dissolving AlOCl before isolating the solid powder product.

[0166] In embodiments in which the precursor material includes a reactive additive, the product may include a compound based on the base metal and the additive. For example, if an additive containing carbon, silicon, boron, oxygen, or nitrogen is used, the product may include a carbide, silicide, boride, oxide, or nitride.

[0167] Agitation of the reactants can increase contact between the various components in the mixture, optimizing the product and maximizing the reaction yield. Agitation can also improve product quality by facilitating the exposure of reducible precursor chemicals and unsaturated species generated during processing to the reducing agent, allowing these species to react or disproportionate. In a preferred embodiment, process conditions are adjusted to efficiently mix the reactants to achieve the desired product quality. c O x and Al-AlCl3 to maximize the reaction between them.

[0168] In all aspects and embodiments of the process of the present invention, the pressure within the reaction vessel must be less than 1.5 atmospheres, preferably less than 1.2 atmospheres, and more preferably the reaction vessel is maintained at about 1 atmosphere in the presence of a protective gas and is in communication with an external environment at 1 atmosphere.

[0169] In one embodiment for producing a metal suboxide, a base metal oxide based on a base metal selected from Zn, Cu, Fe, Ni, Sn, Sb, Mo, W, Ta, Nb, V, Ti, Co, Cr, In, Ag, Mn, Pt, Pd, Zr, Rh, Ru, Os, and Re is reacted with Al powder and AlCl3 at 100°C to 500°C, preferably 100°C to 300°C, to produce the base metal suboxide. c O x The weight ratio of Al to AlCl3 is M c O x Reduce to M c The oxygen content in the final product ranges from 100%:1%:1% to 100%:500%:500% of the stoichiometric amount required to obtain the metal suboxide. c O x The oxygen content of the oxide is 0.01% to 99.999%.

[0170] In one embodiment of this invention for producing blue titanium dioxide, TiO2 is reacted with Al and AlCl3 at temperatures between 100°C and 300°C to obtain a product in the form of blue TiO2. This product is composed of TiO2 with electron vacancies created when a mixture of Al and AlCl3 removes some of the oxygen from the starting oxide. The amounts of Al and AlCl3 in this form are 5%:5%-50% / 100% of the amounts needed to reduce TiO2 to Ti as shown in Reactions R15 and R16.

[0171] The precursor chemicals can be arranged in two or more streams that are fed together or independently into a reaction vessel to react to produce a powder product. In one variation of this configuration, the reactants can be reacted at different temperatures and for different processing times in order to optimize the processing conditions and obtain a material with desired properties.

[0172] In one embodiment, the reactants are introduced into several material streams, such as a stream containing a mixture of reducible alloy and aluminum chloride, and in one form of this embodiment, the mixture is prepared by co-grinding.

[0173] In another embodiment, the material stream comprises a stream containing a mixture of precursor metal oxide and aluminum chloride. In one aspect of this embodiment, the mixture is prepared by co-grinding.

[0174] In one embodiment, the precursor metal oxide is milled to reduce its particle size prior to reaction, hi one aspect of this embodiment, the precursor metal oxide and aluminum chloride are co-milled.

[0175] In either embodiment, the treatment may be carried out in the presence of an inert gas, a non-reactive gas, or a mixture of a non-reactive gas and a reactive gas. Examples of suitable gases include Ar, N2, or CO2. In one embodiment, the gas stream consists of a mixture of Ar and a reactive component, such as NH3.

[0176] In embodiments involving the use of a reactive gas, the reactive gas is preferably introduced into the reaction vessel at any physical location or at any time after the reaction resulting in the metal product is complete.

[0177] In one embodiment, the gas flow is arranged to flow away from the reactants and solid reaction products.

[0178] In one embodiment, the method of the present invention further comprises a step of reacting the product obtained at the end of the treatment with a gaseous reactant at 25°C to 850°C. The gaseous reactant may include a gas containing a reactive element such as oxygen, nitrogen, boron, or carbon. For example, the product may be heated in a flow of CH4 to form M c -C based compounds may also be prepared.

[0179] In one example of this embodiment, the reactive gas contains nitrogen, such as NH3, and the powder product is comprised of a base metal nitride. The amount of nitrogen in the reactive gas and the treatment time of the reactants are adjusted to control the amount of nitrogen in the powder product. The amount of nitrogen in the powder product is determined by the M content in the powder product. c The content may be 0% to 100% as an amount corresponding to the nitride having the highest valence among nitrides of base metals or nitrides of base metals.

[0180] In another example, the reactive gas contains carbon, such as CH4, and the product consists of base metal carbides. The amount of carbon in the reactive gas and the treatment time of the reactants are adjusted to control the amount of carbon in the product.

[0181] In one embodiment, there is provided a method for producing a base metal-based skeletal material by reducing one or more precursor base metals with Al in the presence of aluminum chloride at a temperature below 800° C., preferably below 600° C., to form a product comprising an aluminide-based intermetallic compound containing the base metal. The method of this aspect of the invention includes a post-treatment step in which the aluminide-based intermetallic compound containing the base metal is reacted with a chemical (e.g., NaOH) to remove Al, thereby yielding a high surface area base metal product as the skeletal material.

[0182] The present invention is not limited to the examples provided herein to illustrate the invention, but also encompasses materials produced using any embodiment and any form of the method of the present invention. Materials produced by the preferred forms of the invention described herein may have unique properties believed not to be obtainable by prior art methods. Specific examples of such properties include the ability to produce nanostructured products with large surface areas and compositions not typically achievable by conventional techniques.

[0183] One example of a material with unique properties that can be obtained using the techniques of the present invention is nanocrystalline silicon with metal additives for use in lithium-ion batteries. Such materials are characterized by the high surface area and excellent electrical conductivity that can be achieved by the addition of base metal additives. Such materials and their uses are claimed as part of this invention.

[0184] The crystalline silicon powder produced by the method of the present invention has an irregular shape with a particle size of 10 nm to 500 nm and contains 0.01 wt% to 70 wt% Al. Another example of such a product is a crystalline silicon powder containing 0.1 wt% to 50 wt% Ag, Cu, and / or tin.

[0185] Examples of the preparation of various product compounds according to embodiments of the present invention are provided below. [Example]

[0186] Example 1: Si nanocrystals starting from fumed silica 50 g of fumed silica (SiO2) was reacted with Al at 550 °C under an Ar-AlCl3 atmosphere at 1 atmosphere pressure. The Al and AlCl3 were premixed. The SiO2 and Al-AlCl3 were fed into the reactor in two separate streams over a 15-minute period. Continuous monitoring of the temperature of each reactant revealed no measurable temperature increase. At the end of the experiment, a dark brown material was obtained with a yield of over 97%. Some material was lost during processing and handling. XRD analysis of the resulting material as is revealed to consist of AlOCl and Si. Figure 7A shows the XRD pattern of the resulting product as is, while Figure 7B shows the XRD pattern of the product after washing to remove the AlOCl. For the unwashed material, all peaks in the XRD spectrum can be assigned to known spectra of AlOCl and crystalline silicon. In Figure 7B, only peaks corresponding to crystalline silicon are observed, suggesting that the material does not contain Al2O3 from the measured XRD pattern.

[0187] PSD analysis of the resulting powder in solution suggests a particle size distribution of 20 nm to 100 nm. Extraction of the Si powder results in significant agglomeration, revealing a broad particle size distribution ranging from 50 nm to 200 nm. SEM analysis confirms the presence of agglomeration, which is attributed to the washing process. When purified water without HCl is used, the Si particles remain suspended in the water, with a particle size distribution ranging from 10 to 100 nm.

[0188] Example 2: Si nanocrystals using silica nanopowder as a starting material 100 g of silica nanopowder (70 nm) was reacted with Al and AlCl3 under an argon atmosphere at 1 atmosphere pressure and below 550°C. Excess AlCl3 was collected in a dedicated container for later use. The silica nanopowder and Al-AlCl3 were gradually fed into the reaction vessel over 30 minutes in two separate streams. One stream contained SiO2, and the other contained the Al-AlCl3 mixture.

[0189] A brown material is obtained, and 290 g can be recovered. The resulting material is discharged and washed with dilute HCl. The XRD pattern of the washed product matches the known XRD spectrum of crystalline silicon, and the product is substantially free of Al2O3.

[0190] Example 3: Si crystals using quartz powder as a starting material 51 g of quartz powder (0.5-10 microns) is treated with 32 g of Al (4 microns) under an argon-AlCl3 atmosphere at 1 atmosphere and 550°C. The excess AlCl3 is collected in a dedicated container for later use.

[0191] The resulting material is released and washed with dilute HCl. The XRD pattern of the product shows that the quartz powder is only partially reduced. All peaks in the XRD pattern can be assigned to known XRD spectra of quartz and crystalline silicon.

[0192] Example 4: SiO 2 Si crystals using fibers as starting material 30 g of SiO2 fiber (diameter 8 microns) is treated with 18 g of Al (4 microns) under the conditions of argon-AlCl3 atmosphere, 1 atmosphere, and 525°C.

[0193] A brown material is obtained. The resulting material is released and washed with dilute HCl. SEM analysis of the product shows a mixture of porous fibers and small crystalline powders of approximately 1-5 microns in size. EDS analysis shows that the fibers are composed of pure silicon, and the crystals are Al2O3.

[0194] Example 5: Si-coated SiO 2 82 g of silica nanopowder (20 nm diameter) was treated with Al powder (4 microns) under an argon-AlCl3 atmosphere at 1 atmosphere pressure and a maximum temperature of 550 °C. The SiO2 was partially reduced, and the product consisted of SiO2 coated with Si.

[0195] The amount of material recovered is 167 g. The resulting material is discharged and washed with dilute HCl. The XRD pattern of the product shows the presence of crystalline silicon and a broad peak around 22° corresponding to amorphous silica.

[0196] Example 6: SiO coated with Ag nanopowder 2 14 g of the washed product from the test outlined in Example 5 was treated with a mixture of AgCl and AlCl at 550° C. The resulting material (25 g) was released and washed with dilute NHOH. XRD analysis showed the presence of Ag and amorphous SiO.

[0197] Example 7: CuCl 2 Cu starting material 14 g of the washed product from the test outlined in Example 5 was treated with a mixture of CuCl and AlCl at 400° C. XRD analysis indicates the presence of a composition consistent with SiO, Si, and Cu.

[0198] Example 8: Si coated with 10% Ag nanopowder As in Example 1, 80 g of silica nanopowder (20 nm) is treated with 47.5 g of Al (4 microns) under an argon-AlCl atmosphere at 1 atmosphere and a maximum temperature of 550° C. 237 g of Si-AlOCl is recovered.

[0199] Next, 80 g of Si-AlOCl is treated with AgCl-AlCl3 at 500 °C. The product is released and washed with HCl, and the resulting solid powder is washed with dilute NH4OH. XRD analysis shows the presence of Si and Ag.

[0200] Example 9: Si coated with Ag nanopowder 42 g of silica nanopowder (20 nm diameter) is treated at 550 °C with a mixture of Al, AlCl, and AgCl.

[0201] The resulting material was then released and washed with dilute HCl followed by dilute NH4OH. XRD analysis shows a pattern consistent with metallic Si and metallic Ag.

[0202] Example 10: Silicon-coated glass flakes 200 g of borosilicate glass flakes (60 micron diameter, 1 micron thickness) are treated with Al-AlCl (12.5 g of Al) under an Ar atmosphere at 550° C. The product is then discharged and washed with HO.

[0203] A golden material consisting of Si-coated borosilicate flakes is obtained, and XRD analysis shows a small peak corresponding to Si.

[0204] Example 11: Ag-coated glass flakes 60 g of the Si-coated flakes obtained in Example 9 were reacted with AgCl-AlCl. The product was then released and washed with dilute NHOH. XRD analysis showed the presence of metallic Ag. The borosilicate was amorphous and not visible in the XRD pattern.

[0205] Example 12: Si-graphite composite starting from graphite and fumed silica 50 g of graphite powder (Sigma-Aldrich) is ground together with 20 g of silica nanopowder (20 nm) and treated with a mixture of Al and AlCl3 at a temperature below 550 °C. The excess AlCl3 is collected in a dedicated container for later use.

[0206] Example 13: SnO 2 Starting material: Sn 20 g of SnO2 was slowly treated with Al-AlCl3 under an Ar atmosphere at temperatures up to 500 °C. A metallic gray product was obtained. XRD analysis of the raw material showed that the product consisted of Sn, residual SnCl2, SnO2, and AlOCl.

[0207] Example 14: Sb 2 O 5 Sb 1.45 g of Sb2O3 is mixed with Al-AlCl3(s). The resulting mixture is placed in a quartz tube open to 1 atmosphere under an argon atmosphere. The quartz tube is heated from room temperature to 300°C. The reaction is then heated to 500°C for 10 minutes. The product is discharged and washed with H2O. XRD analysis of the final product shows that the powder is composed of pure Sb.

[0208] Example 15: TiO 2 Starting material: Ti(Al)-Al 2 O 3 A mixture of 10 g of TiO2 and Al-AlCl3(s) is heated from 200 to 600 °C, and an intermediate product containing Ti2O3 is obtained. This intermediate product is then treated at 800 °C for 10 minutes. XRD analysis of the resulting product shows that the powder is composed of Ti3O, Ti3Al, and Al2O3.

[0209] Example 16: MoO 3 Starting material: Mo A quartz tube open to 1 atmosphere under an argon atmosphere is charged with 2 g of a stoichiometric mixture of MoO3, Al, and AlCl3(s), along with a 50% excess of AlCl3. The tube is heated from room temperature to 500°C. The product is released and washed with H2O. XRD analysis of the final product indicates that the powder is composed of pure Mo.

[0210] Example 17: CuO as the starting material 100 g of CuO was slowly treated with Al-AlCl3. The CuO and Al-AlCl3 were slowly fed into a stainless steel vessel equipped with a mixer at 500 °C and open to 1 atmosphere under an argon atmosphere (total time 30 min). After 10 min, the temperature was increased to 600 °C and heated for an additional 15 min. XRD analysis showed that the resulting material was a mixture of Cu and some residual Cu2O.

[0211] Example 18: Ni framework using NiO as starting material Thirty grams of NiO are slowly treated with excess Al-AlCl3 under argon at 1 atmosphere and 500°C over 10 minutes, and the resulting mixture is allowed to react for an additional 30 minutes. The temperature is then increased to 600°C, and the mixture is heated for an additional 15 minutes. XRD analysis suggests that the resulting material is a mixture of Al2O3, Ni, NiO, and Al, with Al3Ni being the dominant phase.

[0212] The resulting material is then washed with NaOH and rinsed several times with water to obtain a highly magnetic compound. This compound is stored in water due to its tendency to burn upon drying. After combustion, the powder is composed of NiO with no signs of Al and / or Al2O3 or other Al-based compounds.

[0213] Example 19: Fe 2 O 3 -Co 3 O 4 Fe-Co-Ni-Al using NiO as starting material 2 O 3 A mixture of 37 g of Fe2O3, 48 g of Co3O, and 4 g of NiO was treated with Al-AlCl3 in a stainless steel vessel under an argon atmosphere at 300 °C for 10 minutes, and the resulting mixture was allowed to react for an additional 30 minutes. The temperature was then increased to 600 °C, and the mixture was heated for an additional 15 minutes. XRD analysis showed that the resulting material consisted of a mixture of various phases of Fe-Co-Ni and Al2O3.

[0214] Example 20: ZnO as a starting material 50 g of ZnO is reacted with a mixture of Al powder (4 microns) and AlCl3 for 30 minutes. XRD analysis of the resulting material as is suggests that it contains Zn and AlOCl, with residual Al and AlCl3. The resulting powder is released, washed, and dried to yield the final product, which consists of Zn and residual Al.

[0215] Example 21: WO 3 Starting material: W Fifty grams of WO3 is reacted with a mixture of Al powder (4 microns) and AlCl3 at 500°C for 10 minutes, and the resulting mixture is left to react for an additional 30 minutes. XRD analysis of the resulting product as is shows that the material is composed of W and AlOCl, with residual tungsten oxide / oxychloride and Al. Release, washing, and drying of the resulting powder yields a final product composed mostly of W, with residual tungsten compounds, likely oxychlorides.

[0216] Example 22: WO 3 W-Al starting material 2 O 3 2 g of WO3 obtained in Example 20 is heated at 700° C. XRD analysis of the obtained product suggests that the product is a composition composed of W and Al2O3.

[0217] Example 23: TiO 2 Starting material: Ti(Al) 1 g of TiO2 powder, 0.1 g of Al powder, and 2.5 g of AlCl3(s) powder were mixed. The quartz tube was placed in a tubular furnace and heated to 300°C. The prepared mixture was gradually poured into the quartz tube. Once the mixture was added, it was mixed again and left at 300°C for 10 minutes. Next, the mixture was discharged and 0.35 g of Al was added. The temperature was set to 500°C and the entire mixture was gradually poured into the furnace.

[0218] 2.7 g of a dark black powder was recovered. XRD analysis indicated the presence of AlOCl. 1 g of the product was then heated at 650 °C for 10 minutes, and 0.5 g of powder was recovered. XRD analysis of the resulting product indicated that it consisted of Ti-Al and Al2O3. Heating disproportionated the AlOCl to form Al2O3.

[0219] Example 24: Rutile TiO 2 Blue TiO starting from 2 2 g of TiO2 powder (rutile type, nanopowder) is mixed with 0.1 g of Al and 2 g of AlCl3(s). The mixture is placed in a quartz tube and heated at 200 °C for 30 minutes. The resulting product is discharged and washed. The final product is TiO2 powder produced by the reaction with Al-AlCl3. 3+ The blue color is due to the presence of vacancies in TiO2. The limited reaction between the starting TiO2 and the Al-AlCl3 mixture results in the loss of oxygen from the rutile starting TiO2, causing the color to change from white to blue.

[0220] Example 25: Si monoxide using silica nanopowder as starting material 100 g of silica nanopowder (20 nm) is reacted with a substoichiometric amount of Al under argon atmosphere at 1 atmosphere pressure and below 550 °C. The excess AlCl3 is collected in a dedicated container for later use.

[0221] A light brown material is obtained, and 251 g can be recovered. The resulting material is discharged and washed with dilute HCl. The XRD pattern of the washed product matches the known XRD spectrum of crystalline silicon, and the product is substantially free of Al2O3.

[0222] Those skilled in the art will understand that various modifications may be made without departing from the spirit and scope of the present invention. For example, the inventors anticipate that Mg may be used instead of Al as the reducing agent without significantly departing from the spirit and scope of the present invention. When Mg is used instead of Al, for example, the by-product may contain a mixture of MgAl2Cl8 and AlOCl. However, since both MgAl2Cl8 and AlOCl are soluble in dilute HCl, they may be separated from the base metal product. Such modifications are also within the scope of the present invention.

[0223] It is not to be understood that any prior art document cited herein is admitted to form part of the common general knowledge in the art.

[0224] In the following claims and the foregoing description of the invention, unless a more restrictive meaning is required by the wording or necessary implication of the term, the word "comprise" or variations thereof, such as "comprises" or "comprising," is used in its inclusive sense, i.e., to specify the presence of stated features in various embodiments of the invention, but does not exclude the presence or addition of further features.

Claims

1. 1. A method for producing a reduced metal oxide powder, comprising: providing a reaction mixture comprising a precursor comprising a metal oxide and an aluminum reducing agent; heating the reaction mixture at atmospheric pressure in the presence of solid or gaseous aluminum chloride, or solid and gaseous aluminum chloride, to a temperature at which the reduction reaction of the metal oxide is initiated; controlling the reaction conditions so that the reaction mixture does not reach a temperature that would cause thermal runaway and so that the formation of aluminum oxychloride by-product is favored over the formation of aluminum oxide; and Reduced metal oxides (M c ) and AlOCl or Al 2 O 3 or AlOCl and Al 2 O 3 and isolating the reaction product in the form of a powder comprising a mixture of Including, The amount of aluminum chloride is M c O x +Al+AlCl 3 →M c Al+AlOCl (where M c O x indicates a metal oxide, and M c indicates reduced metal oxide), is between 1 wt% and 500 wt% of the amount required to reduce all metal oxides to pure metal, method.

2. 10. The method of claim 1, wherein the solid aluminum chloride is provided in the form of aluminum chloride powder or granules having a particle size of less than 5 mm.

3. 3. The method of claim 2, wherein the solid aluminum chloride powder is included in the reaction mixture.

4. 4. The process of claim 1, wherein the gaseous aluminum chloride is passed over the heated reaction mixture.

5. 5. The method of claim 1, wherein the metal oxide-containing precursor and the aluminum reducing agent are each independently provided in the form of a powder, flake, fiber, or particle.

6. The method of any one of claims 1 to 5, wherein the aluminum reducing agent is aluminum or an aluminum alloy.

7. 7. The method of claim 6, wherein the aluminum or aluminum alloy is provided in the form of a powder or flakes having a particle size of less than about 50 μm in at least one dimension.

8. 8. The method of claim 1, wherein the amount of the aluminum reducing agent in the reaction mixture is 5 wt % to 500 wt % based on the weight of the metal oxide-containing precursor.

9. The method according to any one of claims 1 to 8, wherein the reaction mixture is heated to a temperature of less than 800°C.

10. The method of any one of claims 1 to 9, wherein the reaction mixture is heated under an inert atmosphere.

11. 11. The method of claim 1, wherein the reaction conditions are controlled by gradually adding additional amounts of one or both of the metal oxide-containing precursor and the aluminum reducing agent to the heated reaction mixture.

12. The method of any one of claims 1 to 11, wherein the reaction conditions are controlled by cooling the reaction mixture.

13. 13. The method of any one of claims 1 to 12, wherein the reaction conditions are controlled by adding a heat load modifier to the reaction mixture.

14. 14. The method according to any one of claims 1 to 13, wherein the reduced metal oxide is a metal element, a metal suboxide, a metal-containing alloy, a metal-containing compound, a metal-containing composite material, or a mixture thereof.

15. 15. The method of any one of claims 1 to 14, further comprising the step of separating the reduced metal oxide from the by-product aluminum oxychloride by washing the reaction product with dilute acid.

16. 16. A process according to any one of claims 1 to 15, wherein gaseous aluminium chloride formed during the reaction is condensed and recycled back into the reaction mixture.

17. 17. The method of any one of claims 1 to 16, wherein the step of heating the reaction mixture comprises multiple heating steps and the formation of intermediate species.

18. 18. The method according to any one of claims 1 to 17, wherein the metal oxide is an oxide of one or more elements selected from Si, Zn, Cu, Fe, Ni, Sn, Sb, Mo, W, Ta, Nb, V, Ti, Co, Cr, In, Ag, Mn, Pt, Pd, Zr, Rh, Ru, Os, and Re.

19. 1. A method for reducing silicon oxide in a precursor comprising silicon oxide, comprising: providing a reaction mixture comprising a precursor comprising silicon oxide and an aluminum reducing agent; initiating the reduction reaction of the silicon oxide by heating the reaction mixture to less than 600°C under atmospheric pressure in the presence of gaseous aluminum chloride or solid and gaseous aluminum chloride; controlling the reaction conditions to maintain a temperature below 650°C so that the reaction mixture does not reach a temperature that would cause thermal runaway; and isolating the reaction product containing elemental silicon powder. A method comprising:

20. 1. A method for producing a powder comprising silicon, comprising: providing a reaction mixture comprising a precursor comprising silicon oxide and an aluminum reducing agent; initiating the reduction reaction of the silicon oxide by heating the reaction mixture in the presence of gaseous aluminum chloride or solid and gaseous aluminum chloride to a temperature of 400-600°C under atmospheric pressure; controlling reaction conditions to maintain a temperature below 650°C so that the reaction mixture does not reach a temperature that would cause thermal runaway and so that the formation of aluminum oxychloride as a by-product is favored over the formation of aluminum oxide; and isolating the silicon powder by washing the reaction product with dilute acid. Including, The amount of the aluminum chloride is 1 wt% to 500 wt% based on the weight of the silicon oxide. method.

21. 1. A method for producing a powder comprising silicon, comprising: supplying a silicon oxide-containing precursor and an aluminum reducing agent in the presence of gaseous aluminum chloride or solid aluminum chloride and gaseous aluminum chloride to a reaction vessel at a temperature of 400°C to 600°C under atmospheric pressure; mixing the silicon oxide-containing precursor, the aluminum reducing agent, and the aluminum chloride, and continuing the mixing in the presence of a reaction product formed from the precursor, the reducing agent, and the aluminum chloride; controlling the supply rates of the silicon oxide-containing precursor and the aluminum reducing agent to the reaction vessel so that the temperature in the reaction vessel does not exceed 650°C; and washing the reaction product with dilute acid to remove the by-product aluminum oxychloride and isolate the silicon powder; A method comprising:

22. 22. The method of any one of claims 19 to 21, wherein the aluminum reducing agent is aluminum or an aluminum alloy in solid powder form.

23. The reaction product is silicon or silicon and SiO 2 and the particle size of the reaction product is less than 500 nm.

24. 24. The method of any one of claims 19 to 23, further comprising reacting the silicon powder with a metal chloride or metal oxide comprising an element selected from Zn, Cu, Fe, Ni, Sn, Sb, Mo, W, Ta, Nb, V, Ti, Co, Cr, In, Ag, Mn, Pt, Pd, Zr, Rh, Ru, Os, and Re.

25. 1. A method for producing a reduced metal oxide powder, comprising: providing a reaction mixture comprising a precursor comprising a metal oxide and a magnesium reducing agent; heating the reaction mixture at atmospheric pressure in the presence of solid or gaseous aluminum chloride, or solid and gaseous aluminum chloride, to a temperature at which the reduction reaction of the metal oxide is initiated; controlling the reaction conditions so that the reaction mixture does not reach a temperature that would cause thermal runaway and so that the formation of aluminum oxychloride as a by-product is favored over the formation of aluminum oxide; and isolating the reaction product in the form of a powder comprising the reduced metal oxide. Including, the amount of the aluminum chloride is 1 wt % to 500 wt % based on the weight of the precursor containing the metal oxide; method.

26. 26. The method of claim 25, further comprising the step of separating the reduced metal oxide from the aluminum oxychloride by-product by washing the reaction product with dilute acid.

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