WO2012141205A2 - PARTICULES D'ALLIAGE FeNi DE TYPE L10 ET LEUR PROCÉDÉ DE PRODUCTION, COMPOSITION MAGNÉTIQUE ET AIMANT - Google Patents

PARTICULES D'ALLIAGE FeNi DE TYPE L10 ET LEUR PROCÉDÉ DE PRODUCTION, COMPOSITION MAGNÉTIQUE ET AIMANT Download PDF

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WO2012141205A2
WO2012141205A2 PCT/JP2012/059884 JP2012059884W WO2012141205A2 WO 2012141205 A2 WO2012141205 A2 WO 2012141205A2 JP 2012059884 W JP2012059884 W JP 2012059884W WO 2012141205 A2 WO2012141205 A2 WO 2012141205A2
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iron
nickel
particles
range
type
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WO2012141205A3 (fr
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美穂 山内
達哉 佃
和哉 大久保
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Hokkaido University NUC
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Hokkaido University NUC
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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B22CASTING; POWDER METALLURGY
    • B22FWORKING METALLIC POWDER; MANUFACTURE OF ARTICLES FROM METALLIC POWDER; MAKING METALLIC POWDER; APPARATUS OR DEVICES SPECIALLY ADAPTED FOR METALLIC POWDER
    • B22F9/00Making metallic powder or suspensions thereof
    • B22F9/16Making metallic powder or suspensions thereof using chemical processes
    • B22F9/18Making metallic powder or suspensions thereof using chemical processes with reduction of metal compounds
    • B22F9/24Making metallic powder or suspensions thereof using chemical processes with reduction of metal compounds starting from liquid metal compounds, e.g. solutions
    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22CALLOYS
    • C22C33/00Making ferrous alloys
    • C22C33/02Making ferrous alloys by powder metallurgy
    • C22C33/0257Making ferrous alloys by powder metallurgy characterised by the range of the alloying elements
    • C22C33/0278Making ferrous alloys by powder metallurgy characterised by the range of the alloying elements with at least one alloying element having a minimum content above 5%
    • C22C33/0285Making ferrous alloys by powder metallurgy characterised by the range of the alloying elements with at least one alloying element having a minimum content above 5% with Cr, Co, or Ni having a minimum content higher than 5%

Definitions

  • the present invention relates to L1 0 type iron-nickel (FeNi) alloy particles and a manufacturing method thereof.
  • the present invention further, L1 0 type iron-nickel (FeNi) magnetic composition comprising alloy particles, and a magnet manufactured by using an L1 0 type iron-nickel (FeNi) alloy particles.
  • Non-patent Document 1 Considering the recent distribution of raw materials, it is desirable to develop an alternative material immediately.
  • a material having a large coercive force an alloy having an L1 0 type ordered structure, a uniaxial magnetic anisotropy derived from their structure distortion, are known to have a large coercive force.
  • the L1 0 type alloys, FePt, CoPt, FePd, but like are known, not preferred as a practical material for containing Pt and Pd both are precious.
  • L1 0 type FeNi including no noble metal and rare earth has been drawing attention as magnetic [2].
  • FeNi of L1 0 type is called Tetrataenite, not naturally present only in the iron meteorites [Non-patent document 3, 4].
  • Iron meteorites are thought to have been produced in the mantle of the inner core of the planet through a very slow cooling process over a period of 4.6 billion years, once a million years from a high-temperature molten state.
  • Patent Document 5 It is also known that iron meteorite contains impurities such as copper and cobalt [Non-Patent Document 6].
  • the formation of the L1 0 type FeNi is difficult to achieve the realization of such a process at the laboratory level.
  • Non-Patent Document 7 It is artificial to neutron beam irradiation [Non-Patent Document 7], or use the latest film manufacturing technology, L1 0 type FeNi can be obtained by stacking on the Ni or Cu foundation Fe and Ni by layer [Non-Patent Documents 8 and 9].
  • Patent Document 1 WO2011 / 027864 A1
  • Non-Patent Document 1 S. Sugimoto, J. Phys. D: Appl. Phys. 44, 064001 (2011).
  • Non-Patent Document 2 M. Funaki, M. Koshita, H. Nagai, Antact. Meteorite Res. 16, 220 (2003).
  • Non-Patent Document 3 M. -Z. Dang, D. G. Rancourt, Phys. Rev. B, 53, 2291-2303 (1996).
  • Non-Patent Document 4 M. Kosugi, C. Mitsumata, H. Maruyama, T. Wakita, T. Taniguchi, K. Ono, M. Suzuki, N. Kawamura, N. Ishimaru, M. Oshima, Y.
  • Non-Patent Document 5 C. -Y. Yang, D. B. williams, J. I. Goldstein, Geochim. Cosmochim. Acta, 61. 2943 (1997).
  • Non-Patent Document 6 R. S. Clarke Jr, E. R. D. Scott, American Mineralogis, 65, 624-630, 1980
  • Non-Patent Document 7 L. Neel, J. Pauthenet, J. Laugier, D. Dautreppe, J. Appl. Phys., 35, 873-876 (1964).
  • Non-Patent Document 8 T. Shima, M. Okamura, S.
  • Non-Patent Document 9 M. Mizuguchi, S. Sekiya, K. Takanashi, J. Appl. Phys., 107, 09A716 (2010).
  • Non-Patent Document 10 M. Yamauchi, T. Tsukuda, Dalton Trans., 2010, DOI: 10.1039 / C0DT01632B.
  • Non-patent Document 7 a method of irradiating neutrons
  • Non-patent Documents 8 and 9 a method of stacking Fe and Ni one by one on a Ni or Cu substrate using the latest film manufacturing technology
  • the present invention is to provide a process for producing an L1 0 type iron-nickel alloy in a relatively simple method.
  • the present invention is to provide a magnet produced using the new L1 0 type iron-nickel alloy particles, the L1 0 type iron-nickel magnetic composition using the alloy particles and the L1 0 type iron-nickel alloy particles .
  • the present invention is as follows.
  • a method for producing L1 0- type iron-nickel alloy particles A step of preparing a liquid in which an iron-containing compound, a nickel-containing compound and a protective polymer are dispersed and / or dissolved in a solvent (1), Step (2) of preparing a precursor particle containing iron and nickel by adding a reducing agent for iron ions contained in the iron-containing compound and nickel ions contained in the nickel-containing compound to the obtained liquid. and the precursor particles by heating in a hydrogen atmosphere, the precursor particles by reducing, and includes a step (3) for ordering the structure of alloy particles in L1 0 type, the manufacturing method.
  • the precursor particles containing iron and nickel are particles containing iron oxide and nickel oxide, or particles containing iron nickel alloy, iron oxide and nickel oxide [1].
  • the protective polymer comprises polyvinylpyrrolidone (PVP), polyvinyl alcohol (PVA), polyethylene glycol (PEG), polyvinyl ether, polyacrylate, poly (mercaptomethylenethrylene-N-vinyl-2-pyrrolidone), and polyacrylonitrile.
  • PVP polyvinylpyrrolidone
  • PVA polyvinyl alcohol
  • PEG polyethylene glycol
  • PEG polyvinyl ether
  • polyacrylate poly (mercaptomethylenethrylene-N-vinyl-2-pyrrolidone)
  • polyacrylonitrile polyacrylonitrile
  • a magnetic composition comprising particles and at least one of a protective polymer and a modified product derived from the protective polymer.
  • the present invention radiation is not required, without requiring special equipment, infrastructure also without the need, it is possible to obtain an L1 0 type iron-nickel alloy particles.
  • the L1 0 type iron-nickel alloy particles manufactured by the present invention in a magnetic field, it is expected to be a magnetic material to replace material that is currently practically used.
  • Example 1 The TEM image of the precursor obtained in Example 1 is shown. In the low magnification (40,000 times) TEM image (left), an aggregate with a diameter of about 35 ⁇ 8 nm is seen. When observed at high magnification (200,000 times) (right), it was found to be an aggregate of particles with a diameter of 2.5 ⁇ 0.6 nm.
  • the powder XRD pattern ( ⁇ 0.57988., SPring-8, BL44B2) of the sample is shown. Analytical results by Rietveld method are shown with crystal structures of meghamite, NiO and iron nickel as initial conditions. A is a background simulation curve.
  • B is meghamite
  • C is NiO
  • D is the simulation curve of the diffraction pattern from iron nickel (L1 0 FeNi).
  • E is a composite curve of B
  • C and D are shown.
  • F indicates the difference between the actual measurement pattern and the simulation (shown at the bottom).
  • the heating conditions (after degassing the sample at 100 ° C., introducing 100 kPa of hydrogen gas and raising the temperature stepwise to 500 ° C.) are shown.
  • An in situ XRD pattern measured while heating under hydrogen pressure is shown.
  • the diffraction pattern of the sample which heated at 500 degreeC under hydrogen pressure and returned to room temperature is shown.
  • a TEM image of a sample heated under hydrogen is shown (A: 250,000 times, B: 40,000 times).
  • FIG. 8 shows the size estimated from the TEM image.
  • the size of the L1 0 type FeNi nano alloys was estimated was about 8.0 ⁇ 5.5 ⁇ .
  • FIG. 8 (right) shows the volume distribution of the sample obtained from the obtained size distribution. Many nanoalloys with a particle size of about 20 nm were included. It shows the magnetic susceptibility at 300K of L1 0 type nanoparticles.
  • 2 shows an XRD pattern of a sample obtained in Example 2 (1) obtained by baking the precursor with hydrogen at 450 ° C.
  • the present invention relates to a process for the production of L1 0 type iron-nickel alloy particles.
  • This manufacturing method includes the following steps. Step (1): Step of preparing a liquid in which an iron-containing compound, a nickel-containing compound, and a protective polymer are dispersed and / or dissolved in a solvent Step (2): In the obtained liquid, iron ions contained in the iron-containing compound and Step (3) of preparing a precursor particle containing iron and nickel by adding a reducing agent for nickel ions contained in the nickel-containing compound: heating the precursor particle in a hydrogen atmosphere to form the precursor It reduced the body particles, and a step of ordering the structure of alloy particles in L1 0 type
  • a liquid is prepared by dispersing and / or dissolving an iron-containing compound, a nickel-containing compound, and a protective polymer in a solvent.
  • the iron-containing compound is not particularly limited as long as it is a compound containing iron. Appropriate solubility in the solvent used in step (1) is appropriate. Examples of such compounds include inorganic iron-containing compounds such as iron chloride, iron sulfate, iron chloride, iron nitrate, and hydrates thereof, and complexes containing iron.
  • Examples of the complex containing iron include iron acetate, iron acetylacetonate, tetraethylammonium tetrachloroiron (II), tetraethylammonium tetrachloroiron (III), bis (sulfide) tetranitrosyl and iron (2-) sodium.
  • the nickel-containing compound is not particularly limited as long as it is a compound containing nickel. Appropriate solubility in the solvent used in step (1) is appropriate. Examples of such compounds include inorganic nickel-containing compounds such as nickel chloride, nickel nitrate and hydrates thereof, and further complexes containing nickel.
  • Examples of the complex containing nickel include nickel acetate, nickel acetylacetonate, tetraethylammonium tetrachloronickel (II), tetraethylammonium tetrabromonickel (II), hexaamminenickel (II) chloride, dinitrotetraamminenickel ( II), potassium tetracyanonickel (II) monohydrate, potassium barium hexanitronickel (II), tris (ethylenediamine) nickel (II) sulfate, bis (ethylenediamine) diaquanickel nitrate, ethylenediaminetetraaquanickel (II) Sulfate monohydrate, dinitro (ethylenediamine) nickel (II), bis (N, N-dimethylethylenediamine) nickel (II) perchloric acid, bis (2,3-dimethyl-2,3-diaminobutane ) Nickel (II) iodide, bis
  • the protective polymer exhibits affinity for the iron-containing compound and / or nickel-containing compound, and further exhibits solubility in a solvent, with respect to a metal-containing compound such as the iron-containing compound and / or nickel-containing compound.
  • a polymer having an affinity functional moiety for example, a polymer having a polar functional group, is suitable, and a water-soluble polymer is preferred.
  • the protective polymer include polyvinylpyrrolidone (PVP), polyvinyl alcohol (PVA), polyethylene glycol (PEG), polyvinyl ether, polyacrylate, poly (mercaptomethylenethrylene-N-vinyl-2-pyrrolidone), and polyacrylonitrile. And so on. Furthermore, a polymer having a cyclic amide structure such as PVP is preferable.
  • the role of the protective polymer is mainly to prevent aggregation between the precursor particles and / or alloy particles produced in the steps (2) and (3), and to reduce the size of the precursor particles and / or alloy particles produced. Is to control.
  • the average particle diameter of the precursor particles and / or iron-nickel alloy nanoparticles is, for example, 1 to 200000 nm, desirably 1 to 5000 nm, preferably 1 to 1000 nm, more preferably 1 to 200 nm, It is preferably 1 to 100 nm, still more preferably 1 to 50 nm, even more preferably 1 to 20 nm, still more preferably 1 to 10 nm, and most preferably the average particle size is 1 to 4 nm. Range.
  • the particle size of the alloy can be controlled by adjusting the ratio of metal to protective polymer. For example, when the amount of the protective polymer in the solvent is relatively increased, the particle size of the precipitated precursor particles and / or alloy particles is reduced. By utilizing this phenomenon, the particle size of the precursor particles and / or alloy particles can be controlled.
  • the particle diameter of the alloy particle to precipitate can also be adjusted by adjusting the density
  • the solvent is a solvent that can dissolve the iron-containing compound, the nickel-containing compound, and the protective polymer.
  • dissolution is a state in which the iron-containing compound, the nickel-containing compound, and the protective polymer are dissolved in a solvent, and the solution is preferably transparent.
  • the solvent water and / or an organic solvent or a mixed solvent thereof can be used.
  • the organic solvent is preferably an organic solvent having an affinity for water or an organic solvent having a polar site from the viewpoint of excellent solubility in iron-containing compounds, nickel-containing compounds and protective polymers.
  • the solvent can also be a mixed solvent of water and an organic solvent having an affinity for water. As an organic solvent, it is good to select suitably according to the kind etc.
  • an iron containing compound a nickel containing compound, and a protection polymer
  • polyhydric alcohols such as ethanol, propanol, ethylene glycol, triethylene glycol, and glycerol
  • the kind of the organic solvent and the mixing ratio of the organic solvent and water can be appropriately adjusted in consideration of the solubility of the iron-containing compound, the nickel-containing compound, and the protective polymer.
  • the state of the iron-containing compound, nickel-containing compound and protective polymer in the solvent is not particularly limited, and may be in a dispersed and / or dissolved state.
  • the dispersed state is a dispersion
  • the dissolved state is a solution.
  • the mixture can also be heated during dissolution. This includes the case where co-dispersion and dissolution coexist.
  • the iron-containing compound, the nickel-containing compound, and the protective polymer are in a dispersed state, a dissolved state, or a coexistence state of the iron-containing compound, the nickel-containing compound, the kind of the protective polymer, and a solvent, Varies depending on the concentration of the iron-containing compound, nickel-containing compound and protective polymer in the solvent.
  • the concentrations of the iron-containing compound, nickel-containing compound, and protective polymer in the solvent are determined in consideration of the composition of the precursor, the particle diameter, and the like.
  • the concentration of the protective polymer, the concentration of iron ions and the concentration of nickel ions in the dispersion or solution are, for example, in the range of 1 ⁇ 10 ⁇ 7 to 10 mol / L for the protective polymer and 1 ⁇ 10 ⁇ 10 to 10 mol for the iron ion. / L and nickel ions can range from 1 ⁇ 10 ⁇ 10 to 10 mol / L.
  • Preparation of the dispersion or solution can be carried out by adding a protective polymer, an iron-containing compound and a nickel-containing compound to the above solvent and dissolving or dispersing it.
  • a protective polymer an iron containing compound, and a nickel containing compound.
  • It can also be prepared by appropriately mixing a solution in which the protective polymer is dispersed or dissolved, a solution in which the iron-containing compound is dissolved, and a solution in which the nickel-containing compound is dissolved.
  • the operation of dispersing or dissolving the iron-containing compound, nickel-containing compound, and protective polymer in a solvent can be performed at room temperature or under heating or cooling. Furthermore, the operation of dispersion or dissolution in the solvent may be performed in a stationary state or in a stirred state.
  • Process (2) In the step (2), the liquid containing the iron-containing compound, the nickel-containing compound and the protective polymer obtained in the step (1), the iron ions contained in the iron-containing compound and the nickel contained in the nickel-containing compound A reducing agent for ions is added to prepare precursor particles containing iron and nickel.
  • the reducing agent it is appropriate to use a compound whose standard reduction potential is more negative than hydrogen (0 eV) at room temperature from the viewpoint of strong ability to reduce iron ions and nickel ions to metals.
  • BH 3 ⁇ L (L is a ligand, such as THF (tetrahydrofuran), SMe 2 (dimethyl sulfide)), triethylsilane Et 3 SiH, sodium bis (2-methoxyethoxy) aluminum hydride (Sodium Bis (2-methoxyethoxy ) Alminium Hydride; Red-Al).
  • THF tetrahydrofuran
  • SMe 2 dimethyl sulfide
  • triethylsilane Et 3 SiH sodium bis (2-methoxyethoxy) aluminum hydride
  • sodium bis (2-methoxyethoxy ) Alminium Hydride Red-Al
  • a solvent other than water for example, an aprotic polar solvent such as tetrahydrofuran, N, N-dimethylformamide, dimethylsulfoxide
  • the amount of the reducing agent used is appropriately determined in consideration of the amount of iron contained in the metal raw material, for example, within a range from the equivalent of the total amount of iron ions and nickel ions to be reduced to 200 times equivalent or less. Can do. Preferably, the range is equivalent to 50 times equivalent or less of the total amount of iron ions and nickel ions
  • the method for adding the reducing agent is not particularly limited.
  • a powdery or granular reducing agent can be added to the liquid.
  • a powdery or granular reducing agent may be dissolved and / or dispersed in the solvent used in the step (1), and the dissolved and / or dispersed liquid may be added to the liquid.
  • the solvent used is preferably inert to the reducing agent from the viewpoint of reduction efficiency.
  • Precursor particles are prepared by reducing iron ions and nickel ions with the above reducing agent.
  • the reduction temperature with the reducing agent is determined in consideration of the crystal structure of the alloy to be prepared by reduction, and is suitably in the range of 0 to 200 ° C., for example. The range of 25 to 160 ° C. is preferable.
  • the obtained precursor particles containing iron and nickel are particles containing iron oxide and nickel oxide, or contain iron-nickel alloy, iron oxide and nickel oxide. Particles. If the amount of the reducing agent is excessive due to the reduction during the preparation of the precursor particles, the iron ions and nickel ions may be reduced to metal (iron-nickel alloy) accordingly. However, the precursor particles containing metal are oxidized by being exposed to an atmosphere containing oxygen. Therefore, the precursor particles immediately after synthesis have a relatively high content of metal (iron-nickel alloy), and the amount decreases with time.
  • the ratio of iron-nickel alloy, iron oxide and nickel oxide varies depending on the reducing conditions, but the ratio of iron-nickel alloy, iron oxide and nickel oxide is in the range of, for example, 1: 0.1 to 100: 0.1 to 100. Can be. However, it is not intended to be limited to this range.
  • the Fe: Ni molar ratio in the precursor particles containing iron and nickel can be in the range of 0.3: 0.7 to 0.7: 0.3.
  • the Fe: Ni molar ratio is preferably in the range of 0.4: 0.6 to 0.6: 0.4, more preferably in the range of 0.45: 0.55 to 0.55: 0.45, and still more preferably in the range of 0.47: 0.53 to 0.53: 0.47.
  • the magnetic properties of the alloy do not depend only on the Fe: Ni molar ratio, but also on the crystal structure and the like.
  • Step (3) the precursor particles by heating in a hydrogen atmosphere, the reduction of the precursor particles, and a step of ordering the structure of alloy particles in L1 0 type.
  • step (1) and (2) to produce precursor particles, and exposing the manufactured precursor particles to a hydrogen atmosphere, the crystal structure to obtain a regularized iron-nickel alloy nanoparticles L1 0 type.
  • Precursor particles produced by the above method iron-nickel alloy, iron-containing oxide and nickel oxide, the crystal structure of the iron-nickel alloy or a part L1 0 type, or without an L1 0 type.
  • degree of ordering represented by the following formula (A) is 99.5% or more, iron-nickel alloy nanoparticles is L1 0 type with improved regularity of crystal structure Particles can be obtained.
  • m Lattice constant of iron-nickel alloy nanoparticles
  • M Bulk lattice constant in which iron atoms and nickel atoms are regularly arranged
  • the exposure treatment to the hydrogen atmosphere is performed after removing the solvent from the mixture of the iron-nickel alloy, iron oxide and nickel-oxide iron-nickel alloy nanoparticles and the protective polymer obtained in the step (2), or together with the solvent. It can be performed at a predetermined temperature and hydrogen pressure.
  • the temperature can be, for example, in the range of 300 ° C. to 1000 ° C.
  • the hydrogen pressure can be in the range of 0.01 Pa to 100 MPa.
  • the conditions for the hydrogen atmosphere exposure treatment are preferably in the range of 350 to 950 ° C. and the hydrogen pressure in the range of 0.01 MPa to 5 MPa.
  • the treatment time can be appropriately set according to the temperature and pressure, and can be, for example, in the range of 0.05 to 10 hours. However, it is not intended to be limited to this range.
  • the iron-nickel alloy nanoparticle crystal structure degree of ordering was prepared by the above method is less than 90% are L1 0 type in a hydrogen atmosphere exposure process, the regularity of the crystal structure is improved, ordering degree 99.5% or more, preferably 99.9% or more, more preferably it is possible to obtain an iron-nickel alloy nanoparticles is L1 0 type 100%.
  • the degree of ordering is represented by the following formula (A). (1- (m ⁇ M) / M) ⁇ 100% (A) m: Lattice constant of iron-nickel alloy nanoparticles M: Bulk lattice constant in which iron atoms and nickel atoms are regularly arranged
  • the composition ratio of the iron-nickel alloy nanoparticles, the protective polymer and the solvent in the composition obtained by the above method is such that the concentration of the iron-nickel alloy nanoparticles is 0.1 to 99.9% by mass, preferably 20 to 99% by mass.
  • the concentration of the protective polymer can be in the range of 0.1 to 99.9% by mass, preferably 1 to 10% by mass. However, it selects so that the sum total of an iron nickel alloy nanoparticle, a protection polymer, and a solvent may be 100 mass%. It is not intended to be limited to these ranges.
  • the protective polymer may be altered by the hydrogen atmosphere exposure treatment, and in this case, the “concentration of the protective polymer” is defined as “the concentration of the altered product derived from the protective polymer”.
  • iron-nickel alloy nanoparticles from the obtained mixture of iron-nickel alloy nanoparticles, protective polymer and solvent, only iron-nickel alloy nanoparticles can be separated and purified, or a mixture of iron-nickel alloy nanoparticles and protective polymer can be used. Separation and purification of iron-nickel alloy nanoparticles may be carried out by baking or plasma treatment at 300 ° C. or higher after solid-liquid separation such as centrifugation or filtration, and / or washing with water and / or drying. it can.
  • the mixture of iron-nickel alloy nanoparticles and protective polymer is prepared by removing the solvent through, for example, solid-liquid separation such as centrifugation or filtration, and / or washing with water and / or drying. it can.
  • the protective polymer may be altered by the hydrogen atmosphere exposure treatment, and in that case, the “protective polymer” is defined as “an altered product derived from the protective polymer”.
  • the “modified product derived from the protective polymer” varies depending on the conditions of the hydrogen atmosphere exposure treatment, but can be, for example, amorphous carbon.
  • the iron-nickel alloy nanoparticles obtained by the production method of the present invention can be applied in various fields as a magnetic material.
  • L1 0 type iron-nickel alloy particles of the present invention can be easier manufactured by the manufacturing method of the present invention.
  • the average particle diameter is in the range of 1 ⁇ 200000nm, from the viewpoint of fine particles, desirably from 1 ⁇ 5000 nm, preferably 1 ⁇ 1000 nm, more preferably 1 to 200 nm, more preferably 1 to 100 nm, even more preferably 1 to 50 nm, even more preferably 1 to 20 nm, still more preferably 1 to 10 nm, most preferably
  • the average particle size is in the range of 1 to 4 nm.
  • L1 0 type iron-nickel alloy is known to those derived from meteor, these alloys from meteor a lump and by pulverizing lumps to try the average particle size, in the course of grinding or crystal structure broken, and or is oxidized, it is impossible to maintain even L1 0 type iron-nickel alloy after milling.
  • meteor-derived materials contain trace amounts of impurities.
  • L1 0 type iron-nickel alloy particles of the present invention are novel substances.
  • Ni molar ratio is 0.3: 0.7 to 0.7: can range from 0.3.
  • the Fe: Ni molar ratio is preferably in the range of 0.4: 0.6 to 0.6: 0.4, more preferably in the range of 0.45: 0.55 to 0.55: 0.45, and still more preferably in the range of 0.47: 0.53 to 0.53: 0.47.
  • the magnetic properties of the alloy do not depend only on the Fe: Ni molar ratio, but also on the crystal structure and the like.
  • a magnetic composition comprising at least one of a type iron-nickel alloy particle and a protective polymer and a modified product derived from the protective polymer.
  • L1 0 type iron-nickel alloy particles are L1 0 type iron-nickel alloy particles of the present invention.
  • the altered product derived from the protective polymer is a substance produced by altering the protective polymer by the hydrogen atmosphere exposure treatment.
  • both the case where both the protective polymer and the modified product derived from the protective polymer are included, the case where only the protective polymer is included, and the case where only the modified product derived from the protective polymer are included are included.
  • At least one alteration product derived from the protective polymer and the protective polymer coats at least a part of the surface of the L1 0 type iron-nickel alloy particles. At least one alteration product derived from the protective polymer and the protective polymer preferably covers the entire surface of the L1 0 type iron-nickel alloy particles. L1 0 type iron-nickel alloy particles, the surface that is coated with at least one alteration product derived from the protective polymer and protective polymer, avoids contact with the outside air, as a result, it becomes less susceptible to oxidation , easily maintaining the state of the L1 0 type iron-nickel alloy.
  • the present invention includes a magnet made from L1 0 type magnetic composition iron-nickel alloy particles or the present invention of the present invention.
  • the composition of the magnet may be composed solely L1 0 type iron-nickel alloy, or may be a mixture of a magnetic material other than L1 0 type iron-nickel alloy.
  • a known method can be adopted as a method of manufacturing the magnet.
  • L1 0 type iron-nickel alloys When heated in preparing the magnet is required, L1 0 type iron-nickel alloys, from the viewpoint of easily maintaining the L1 0 type, a hydrogen-containing atmosphere, preferably suitably be carried out in a hydrogen atmosphere.
  • the L1 0 type iron-nickel alloy particles or magnetic composition of the present invention is molded into a predetermined shape, then it is possible to produce a magnet by heating treatment.
  • the heat treatment is suitably performed in a hydrogen-containing atmosphere, preferably a hydrogen atmosphere, and further, the heat treatment is suitably performed while aligning crystals in a certain direction in a magnetic field.
  • Example 1 Preparation of Precursor In 200 ml of ethylene glycol, 0.2 mmol of iron (III) acetylacetonate and 0.2 mmol of nickel (II) acetate as metal raw materials and 1.6 mmol of poly [n-vinyl- 2-pyrrolidone] (K30) was dissolved. This solution was stirred for 15 minutes under Ar using a mechanical stirrer to remove oxygen in the solution. Was heated to 160 ° C. using microwave device, it was added dropwise NaBH 4 aqueous solution 10 mM. Furthermore, it heated at 160 degreeC with the microwave apparatus for about 30 minutes.
  • the microwave is used for efficient heating, and the present invention does not limit the solution heating method to the microwave method.
  • the obtained pattern is considered to be an overlap of meghamite and NiO patterns.
  • the Rietveld method was used for analysis of the crystal structures of meghamite, NiO and iron-nickel as initial conditions. The results are shown in Figure 3.
  • the diffraction pattern of the precursor could be reproduced well by weighting the diffraction patterns from meghamite, NiO and iron nickel. This analysis also showed that the sample contained 60 wt% meghamite, 38 wt% NiO, and 1.7 wt% FeNi alloy.
  • FIG. 5 shows an in situ XRD pattern measured while heating under hydrogen pressure. When heated to 350 ° C, the peak derived from the oxide decreased, the strongest line shifted slightly to a higher angle, and the oxide peak disappeared completely within a short time (about 15 minutes) above 400 ° C. When heated to 500 ° C, the shoulder was observed although it was small in the strongest line.
  • FIG. 6 shows a diffraction pattern of a sample heated to 500 ° C. under hydrogen pressure and returned to room temperature. XRD pattern obtained as shown in FIG.
  • FIG. 7 A TEM image of a sample heated under hydrogen is shown in FIG. 7 (A: 250,000 times, B: 40,000 times). It can be seen that some of the particles are agglomerated into large particles, but small particles remain in them. Assuming that the size of the L1 0 type FeNi nanoalloy from this TEM image was found to be approximately 8.0 ⁇ 5.5 ⁇ ( Figure 8 (left)). Further, from the obtained size distribution, the volume distribution of the sample was obtained as shown in FIG. 8 (right), and it was found that a large number of nanoalloys having a particle size of about 20 nm were contained.
  • FIG. 9 shows the magnetic susceptibility of L1 0 type nanoparticles at 300K.
  • a sample contained in a glass capillary measured by in situ powder XRD was used. Correction was made by subtracting the diamagnetic susceptibility of the glass from the measurement data of the nanoalloy. The error comes from an estimate of the glass weight. No hysteresis was observed in the magnetization curve of the precursor. Therefore, the precursor was found to be paramagnetic at room temperature (300K).
  • the magnetic susceptibility of L1 0 type FeNi very increased as compared to the precursor, a clear hysteresis was observed in the magnetization curve.
  • L1 0 type FeNi nano alloy produced was found to be a ferromagnetic at room temperature. Further, since a large magnetic susceptibility is maintained even at 400 ° C., there is a possibility that a high Curie temperature similar to the experimental value (840K) and the theoretical calculation value (1020K) is exhibited [Non-patent Document 3].
  • Table 1 shows the magnetic susceptibility of the L1 0 type FeNi nano alloy and other Fe-based alloy manufactured by the present invention.
  • L1 0 type FeNi nano alloys in addition to showing the equivalent saturation magnetization as compared with other iron-based alloys that exhibit large saturation magnetization, further, it can be seen that with a large coercive force.
  • Example 2 (Example in which the raw materials were changed during the preparation of the precursor) (1) Using iron nitrate and nickel nitrate, NaEt 3 BH added at 120 ° C, hydrogen calcined oleylamine at 450 ° C 2.8428 g, oleic acid (60%) 5.0070 g, iron nitrate (II) 0.4579 g, nickel nitrate (II ) 0.3113 g was added to a 50 ml eggplant flask. After stirring well with a spoon, the metal raw material was dissolved by heating to 140 ° C. using a mantle heater. Thereafter, N 2 gas was introduced at 120 ° C.
  • a sample prepared by hydrogen firing a precursor prepared using iron nitrate, cobalt nitrate as a metal raw material and NaEt 3 BH as a reducing agent at 450 ° C. is a mixture of L10FeNi nanoalloy and a reducing agent-derived material.
  • the XRD pattern shown in FIG. 10 shows a simulation pattern in addition to the actual measurement value. Furthermore, the diffraction angle obtained from the calculated value at the 200 diffraction position is also shown. Simulation pattern was consistent with the diffraction angle of the L1 0 FeNi calculated from reported values. Diffraction derived from impurities (shaded area) was masked and excluded from the analysis.
  • Example 3 Iron nitrate, nickel nitrate sample, NaBH 4 added at 160 ° C, hydrogen calcined iron nitrate (II) 0.0841 g, nickel nitrate (II) 0.0651 g, polyvinylpyrrolidone 1.8205 g, ethylene glycol 300 ml 300 ml three-way eggplant flask Added to. After stirring well with a spoon, sonication was performed for 40 minutes to dissolve the metal raw material. After introducing N 2 gas and maintaining it for 30 minutes or more, the temperature was raised to 120 ° C. using a microwave. NaBH 4 0.1512 g was dissolved in 5 ml of water and added, heated to 160 ° C.
  • Calcination treatment was repeated up to 450 ° C. by heating at 50 ° C. at 20 ° C./min and holding for 10 minutes while introducing hydrogen gas at 200 ⁇ L / min.
  • the XRD pattern of the fired sample was almost the same as that shown in FIG.
  • the present invention is useful in fields related to magnetic materials.

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Abstract

L'invention concerne un procédé de production de particules d'alliage FeNi de type L10. Ce procédé de production comprend : une étape (1) consistant à préparer une solution par dispersion et/ou dissolution d'un composé renfermant du Fe, un composé renfermant du Ni, et un polymère protecteur dans un solvant; une étape (2) consistant à préparer des particules de précurseur renfermant du Fe et du Ni par addition à la solution obtenue d'un réducteur vis-à-vis des ions Fe contenus dans le composé renfermant du Fe et des ions Ni contenus dans le composé renfermant du Ni; et une étape (3) consistant à ordonner les particules d'alliage de sorte qu'elle présente une structure de type L10 par chauffage des particules de précurseur sous atmosphère d'hydrogène et réduction des particules de précurseur. L'invention concerne également des particules d'alliage FeNi de type L10 présentant une taille de particule moyenne située dans la plage allant de 1 à 200 000 nm, les constantes de réseau des particules d'alliage déterminées par analyse de formes par diffraction des rayons X se situant dans la plage de a = 2520 à 2546 Å et c = 3564 à 3600 Å. L'invention concerne également une composition magnétique et un aimant.
PCT/JP2012/059884 2011-04-11 2012-04-11 PARTICULES D'ALLIAGE FeNi DE TYPE L10 ET LEUR PROCÉDÉ DE PRODUCTION, COMPOSITION MAGNÉTIQUE ET AIMANT Ceased WO2012141205A2 (fr)

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