US20100254875A1 - Monodisperse nanoparticles and method of making - Google Patents

Monodisperse nanoparticles and method of making Download PDF

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US20100254875A1
US20100254875A1 US11/543,608 US54360806A US2010254875A1 US 20100254875 A1 US20100254875 A1 US 20100254875A1 US 54360806 A US54360806 A US 54360806A US 2010254875 A1 US2010254875 A1 US 2010254875A1
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metal
nanoparticles
powder
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Kalaga Murali Krishna
Sergio Paulo Martins Loureiro
Mohan Manoharan
Geetha Karavoor
Shweta Saraswat
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    • CCHEMISTRY; METALLURGY
    • C01INORGANIC CHEMISTRY
    • C01BNON-METALLIC ELEMENTS; COMPOUNDS THEREOF; METALLOIDS OR COMPOUNDS THEREOF NOT COVERED BY SUBCLASS C01C
    • C01B25/00Phosphorus; Compounds thereof
    • C01B25/16Oxyacids of phosphorus; Salts thereof
    • C01B25/26Phosphates
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B82NANOTECHNOLOGY
    • B82YSPECIFIC USES OR APPLICATIONS OF NANOSTRUCTURES; MEASUREMENT OR ANALYSIS OF NANOSTRUCTURES; MANUFACTURE OR TREATMENT OF NANOSTRUCTURES
    • B82Y30/00Nanotechnology for materials or surface science, e.g. nanocomposites
    • CCHEMISTRY; METALLURGY
    • C01INORGANIC CHEMISTRY
    • C01BNON-METALLIC ELEMENTS; COMPOUNDS THEREOF; METALLOIDS OR COMPOUNDS THEREOF NOT COVERED BY SUBCLASS C01C
    • C01B33/00Silicon; Compounds thereof
    • C01B33/20Silicates
    • CCHEMISTRY; METALLURGY
    • C01INORGANIC CHEMISTRY
    • C01BNON-METALLIC ELEMENTS; COMPOUNDS THEREOF; METALLOIDS OR COMPOUNDS THEREOF NOT COVERED BY SUBCLASS C01C
    • C01B35/00Boron; Compounds thereof
    • C01B35/08Compounds containing boron and nitrogen, phosphorus, oxygen, sulfur, selenium or tellurium
    • C01B35/10Compounds containing boron and oxygen
    • C01B35/12Borates
    • CCHEMISTRY; METALLURGY
    • C01INORGANIC CHEMISTRY
    • C01PINDEXING SCHEME RELATING TO STRUCTURAL AND PHYSICAL ASPECTS OF SOLID INORGANIC COMPOUNDS
    • C01P2004/00Particle morphology
    • C01P2004/30Particle morphology extending in three dimensions
    • C01P2004/32Spheres
    • CCHEMISTRY; METALLURGY
    • C01INORGANIC CHEMISTRY
    • C01PINDEXING SCHEME RELATING TO STRUCTURAL AND PHYSICAL ASPECTS OF SOLID INORGANIC COMPOUNDS
    • C01P2004/00Particle morphology
    • C01P2004/60Particles characterised by their size
    • C01P2004/64Nanometer sized, i.e. from 1-100 nanometer

Definitions

  • This invention relates to a material comprising a plurality of nanoparticles. More particularly, the invention relates to a method of making a plurality of nanoparticles to provide such material.
  • Nanomaterials are used in processing steps in the fabrication of scintillators for imaging applications and as phosphors for lighting applications.
  • the performance and utility of such materials depends on the size, shape, and morphology of the nanoparticles. Consequently, efforts have been directed toward producing nanomaterials with controlled properties for such applications.
  • the present invention meets these and other needs by providing a material comprising a plurality of nanoparticles of metal phosphates, silicates, oxides, borates, or aluminates that are unagglomerated and substantially monodisperse.
  • the present invention also provides a method of forming such materials using a water assisted reaction milling process (hereinafter referred to as “WARM”).
  • WARM water assisted reaction milling process
  • one aspect of the invention is to provide a material comprising a plurality of nanoparticles.
  • Each of the plurality of nanoparticles comprises at least one of a metal phosphate, a metal silicate, a metal oxide, a metal borate, a metal aluminate, and combinations thereof.
  • the plurality of nanoparticles is substantially monodisperse.
  • a second aspect of the invention is to provide a plurality of nanoparticles comprising at least one of a metal phosphate, a metal silicate, a metal oxide, a metal borate, a metal aluminate, and combinations thereof.
  • the plurality of nanoparticles is formed by: forming a slurry comprising at least one metal precursor; mechanically milling the slurry; drying the slurry to form a powder; and calcining the powder at a predetermined temperature to form the plurality of nanoparticles.
  • a third aspect of the invention is to provide a material comprising a plurality of nanoparticles.
  • Each of the plurality of nanoparticles comprises at least one of a metal phosphate, a metal silicate, a metal oxide, a metal borate, a metal aluminate, and combinations thereof.
  • the plurality of nanoparticles is formed by: providing a slurry comprising at least one metal precursor; mechanically milling the slurry; drying the slurry to form a powder; and calcining the powder at a predetermined temperature to form the plurality of nanoparticles.
  • the plurality of nanoparticles is substantially monodisperse and substantially unagglomerated.
  • a fourth aspect of the invention is to provide a method of making a plurality of nanoparticles.
  • the plurality of nanoparticles comprises at least one of a metal phosphate, a metal silicate, a metal oxide, a metal borate, a metal aluminate, and combinations thereof and the plurality of nanoparticles is substantially monodisperse.
  • the method comprises the steps of: providing a slurry of at least one metal precursor; maintaining the pH of the slurry at a predetermined value; mechanically milling the slurry; drying the slurry to form a powder; and calcining the powder at a predetermined temperature to form the plurality of nanoparticles.
  • FIG. 1 is an electron micrograph showing a gadolinium lanthanum phosphate material comprising a plurality of nanoparticles prepared according to the present invention.
  • FIG. 2 is a flow chart illustrating the method for making a plurality of nanoparticles according to the present invention.
  • WARM Water assisted reaction milling
  • the WARM process typically involves the choice of an inorganic metal precursor in a slurry that is mechanically milled. The slurry is dried to provide a powder that is calcined to yield a plurality of nanoparticles.
  • the present invention employs the WARM process to provide a material comprising a plurality of nanoparticles.
  • Each of the plurality of nanoparticles comprises at least one of a metal phosphate, a metal silicate, a metal oxide, a metal borate, a metal aluminate, and combinations thereof.
  • the plurality of nanoparticles is substantially monodisperse.
  • the WARM process may be used to form any one of the above mentioned materials or any combination thereof.
  • the WARM process is also provided as a method of making a plurality of the nanoparticles, the details of which are described herein.
  • the term “monodisperse particles” means particles possessing a narrow average particle size distribution.
  • the nanoparticles possess a narrow average particle size distribution with less than 5% size dispersion, meaning that less than 5% of the population lies on either side of the mean particle size value.
  • a gadolinium lanthanum phosphate material 20 comprises a plurality of nanoparticles 40 .
  • Each of the plurality of nanoparticles 40 comprises at least one of a metal phosphate, a metal silicate, a metal oxide, a metal borate, a metal aluminate, and combinations thereof, and wherein the plurality of nanoparticles 40 is substantially monodisperse 60 .
  • Each of the nanoparticles 40 may comprise any one of the aforementioned compounds or any combination thereof. Frequently, the plurality of nanoparticles 40 is substantially unagglomerated 80 .
  • the metal is a transition metal, such as, but not limited to, scandium, titanium, vanadium, chromium, manganese, iron, cobalt, nickel, copper, zinc, zirconium, niobium, molybdenum, ruthenium, rhodium, palladium, silver, cadmium, hafnium, tantalum, tungsten, rhenium, osmium, iridium, platinum, gold, and combinations thereof.
  • the metal is a lanthanide group metal.
  • the lanthanide group metal is one of lanthanum, gadolinium, yttrium, lutetium, terbium, cerium, neodymium, samarium, europium, thulium, holmium, praseodymium, dysprosium and combinations thereof. It is understood that the plurality of nanoparticles 40 may comprise any one of the aforementioned metals or any combination thereof.
  • the plurality of nanoparticles 40 has a mean particle size in a range from about 10 nm to about 1000 nm. In a preferred embodiment, the plurality of nanoparticles 40 has a mean particle size in a range from about 10 nm to about 100 nm. In a more preferred embodiment, the plurality of nanoparticles 40 has a mean particle size in a range from about 10 nm to about 50 nm.
  • a second aspect of the invention is to provide a plurality of nanoparticles 40 comprising at least one of a metal phosphate, a metal silicate, a metal oxide, a metal borate, a metal aluminate, and combinations thereof.
  • Each of the nanoparticles 40 may comprise any one of the aforementioned compounds or any combination thereof.
  • the plurality of nanoparticles 40 is formed by forming a slurry 110 comprising at least one metal precursor, mechanically milling the slurry 130 , drying the slurry 140 to form a powder 150 , and calcining the powder 160 at a predetermined temperature to form the plurality of nanoparticles 170 .
  • the at least one metal precursor comprises at least one of a metal nitrate, a metal chloride, a metal carbonate, a metal oxide, a metal acetate, and combinations thereof.
  • a second precursor is used in addition to the at least one metal precursor to provide the slurry.
  • the second precursor comprises at least one of a metal nitrate, a metal chloride, a metal carbonate, a metal oxide, a metal acetate, a borate source, a phosphate source, a silicate source, and combinations thereof.
  • a borate source include boric acid, boranes, and the like.
  • Phosphate sources include, but are not limited to, di-ammonium hydrogen phosphate, phosphoric acid, phosphorous pentoxide, and the like.
  • silicate sources include, but are not limited to, organosilicates, such as tetramethylorthosilicate (TMOS), tetraethylorthosilicate (TEOS), and the like.
  • TMOS tetramethylorthosilicate
  • TEOS tetraethylorthosilicate
  • Each of the at least one metal precursor and the second precursor may comprise any one of the aforementioned compounds or any combination thereof.
  • a surfactant is additionally used to form the slurry.
  • the surfactant may comprise at least one of sodium dodecyl sulfate (SDS), cetyltrimethylammonium bromide (CTAB) phosphatidylcholine, sorbitan monostearate (Span-60), polysorbate (Tween-80), sodium dioctylsulfosuccinate (AOT), dioctadecyldimethylammonium bromide (DODAB), combinations thereof, and the like.
  • SDS sodium dodecyl sulfate
  • CTAB cetyltrimethylammonium bromide
  • Span-60 sorbitan monostearate
  • Tween-80 polysorbate
  • AOT sodium dioctylsulfosuccinate
  • DODAB dioctadecyldimethylammonium bromide
  • the surfactant may comprise any one of the aforementioned compounds or any combination thereof.
  • oxalic acid can also be used to form the slurry.
  • a surfactant is a surface active chemical agent that reduces the surface tension of a liquid and thus allow it to foam or penetrate solids. Surfactancy hence provides a means to disperse or sometimes precipitate colloidal or sol particles.
  • a surfactant is employed to increase the dispersing volume of the reactant precursors.
  • a slurry is a liquid mixture of water and an insoluble solid material. Independently, or in combination with a surfactant, a slurry may provide a colloidal solution or an emulsion.
  • slurry 110 is mechanically milled using a variety of milling means such as, but not limited to, dry or wet grinding, dry or wet ball milling, pultrusion, and the like.
  • the objective of milling is to reduce the particle size of the slurry to within the nanometer regime.
  • the milling step is represented in FIG. 2 as step 130 .
  • the slurry is dried to yield a powder 150 .
  • the slurry is dried in air at a temperature in a range from about 100° C. to about 150° C. to yield powder 150 .
  • the dried powder is calcined 160 at a predetermined temperature in a range from about 600° C. to about 1200° C. During calcination metal salts are converted into their respective oxides as a result of heating to a high temperature.
  • powder 150 is calcined by heating at a temperature in a range from about 800° C. to about 900° C. Calcination is usually performed for a time period between about 1 hour and about 6 hours. In a preferred embodiment, powder 150 is calcined for between about 2 hours and about 3 hours. Subsequent to calcination 160 , a plurality of nanoparticles 40 is obtained via step 170 .
  • a third aspect of the invention is to provide a material 20 comprising a plurality of nanoparticles 40 .
  • Each of the plurality of nanoparticles 40 comprises at least one of a metal phosphate, a metal silicate, a metal oxide, a metal borate, a metal aluminate, and combinations thereof.
  • the WARM process may be used to form any one of the above mentioned materials or any combination thereof.
  • the plurality of nanoparticles 40 is formed by providing a slurry 110 comprising at least one metal precursor, mechanically milling 130 the slurry, drying the slurry 140 to form a powder 150 , and calcining the powder 160 at a predetermined temperature to form the plurality of nanoparticles 40 .
  • the plurality of nanoparticles 40 is substantially monodisperse 60 and substantially unagglomerated 80 .
  • a fourth aspect of the invention is to provide a method 100 of making a plurality of nanoparticles 40 .
  • the plurality of nanoparticles 40 comprises at least one of a metal phosphate, a metal silicate, a metal oxide, a metal borate, a metal aluminate, and combinations thereof.
  • Each of the nanoparticles 40 may comprise any one of the aforementioned compounds or any combination thereof.
  • the plurality of nanoparticles is substantially monodisperse 60 .
  • the method comprises providing a slurry of at least one metal precursor 110 , maintaining the pH of the slurry at a predetermined value 120 , mechanically milling the slurry 130 , drying the slurry 140 to form a powder 150 , and calcining the powder 160 at a predetermined temperature to form the plurality of nanoparticles 170 .
  • the pH of the slurry is maintained at a value in a range from about 0.5 to about 5.0. In a preferred embodiment, the pH of the slurry is maintained in a range from about 1.0 to about 3.0.
  • the at least one metal precursor comprises at least one of a metal nitrate, a metal chloride, a metal carbonate, a metal oxide, a metal acetate, and combinations thereof.
  • a second precursor is used in addition to the at least one metal precursor to provide the slurry.
  • the second precursor comprises at least one of a metal nitrate, a metal chloride, a metal carbonate, a metal oxide, a metal acetate, a borate source, a phosphate source, a silicate source, and combinations thereof.
  • Each of the at least one metal precursor and the second precursor may comprise any one of the aforementioned compounds or any combination thereof.
  • a surfactant is additionally used to provide the slurry.
  • the surfactant may comprise at least one of, sodium dodecyl sulfate (SDS), cetyltrimethylammonium bromide (CTAB) phosphatidylcholine, sorbitan monostearate (Span-60), polysorbate (Tween-80), sodium dioctylsulfosuccinate (AOT), dioctadecyldimethylammonium bromide (DODAB), combinations thereof, and the like.
  • the surfactant may comprise any one of the aforementioned compounds or any combination thereof.
  • oxalic acid can also be used to form the slurry.
  • slurry 110 is mechanically milled using a variety of milling means such as, but not limited to, dry or wet grinding, dry or wet ball milling, pultrusion, and the like.
  • the objective of milling is to reduce the particle size of the slurry to within the nanometer regime.
  • the milling step is represented in FIG. 2 as step 130 .
  • the slurry is dried to yield a powder 150 .
  • the slurry is dried in air at a temperature in a range from about 100° C. to about 150° C. to yield powder 150 .
  • the dried powder is calcined 160 at a predetermined temperature in a range from about 600° C. to about 1200° C. During calcination metal salts are converted into their respective oxides as a result of heating to a high temperature.
  • powder 150 is calcined by heating at a temperature in a range from about 800° C. to about 900° C. Calcination is usually performed for a time period between about 1 hour and about 6 hours. In a preferred embodiment, powder 150 is calcined for between about 2 hours and about 3 hours. Subsequent to calcination 160 , a plurality of nanoparticles 40 is obtained via step 170 .
  • a 10 g batch of gadolinium lanthanum phosphate doped with cerium and terbium, having 37 mole percent lanthanum, 20 mole percent gadolinium, 28 mole percent cerium, and 15 mole percent terbium was prepared.
  • a precursor slurry was prepared by mixing hexahydrate lanthanum nitrate (6.65 g), hexahydrate gadolinium nitrate (3.75 g), cerium carbonate (2.67 g), and pentahydrate terbium nitrate (2.71 g), and by adding to an oxalic acid solution (7.85 g in 50 ml water). The precursor slurry was homogenized by stirring.
  • the pH of the slurry was adjusted to 1.5 by addition of water and nitric acid.
  • Di-ammonium hydrogen phosphate (5.48 g) was mixed with the homogenized slurry.
  • the slurry was milled using the grinding media for 72 hrs to make it more homogeneous and to form ultra fine particles, followed by drying overnight at 120° C.
  • the powder was ground to make it homogeneous.
  • the homogenized powder was placed in an alumina crucible and heated at 900° C. for 2 hours in a controlled atmosphere comprising 1% hydrogen diluted with nitrogen. Flow rates of the hydrogen/nitrogen mixture were maintained at about 0.5 liters/hour. Following the heat treatment, x-ray diffraction was carried out to determine the particle size of the powder. A mean particle size of 20 nm was obtained. A spheroidal morphology of the powder was confirmed using TEM.

Abstract

A material comprising a plurality of nanoparticles. Each of the plurality of nanoparticles includes at least one of a metal phosphate, a metal silicate, a metal oxide, a metal borate, a metal aluminate, and combinations thereof. The plurality of nanoparticles is substantially monodisperse. Also disclosed is a method of making a plurality of substantially monodisperse nanoparticles. The method includes providing a slurry of at least one metal precursor, maintaining the pH of the slurry at a predetermined value, mechanically milling the slurry, drying the slurry to form a powder; and calcining the powder at a predetermined temperature to form the plurality of nanoparticles.

Description

    BACKGROUND OF INVENTION
  • This invention relates to a material comprising a plurality of nanoparticles. More particularly, the invention relates to a method of making a plurality of nanoparticles to provide such material.
  • Nanomaterials are used in processing steps in the fabrication of scintillators for imaging applications and as phosphors for lighting applications. The performance and utility of such materials depends on the size, shape, and morphology of the nanoparticles. Consequently, efforts have been directed toward producing nanomaterials with controlled properties for such applications.
  • Various synthesis routes, such as sol-gel, colloidal, precipitation, combustion synthesis, water assisted reaction milling (hereinafter referred to as “WARM”) and solid-state methods have been used to produce nanomaterials. However, currently available methods do not provide substantially monodisperse nanoparticles of metal phosphates, silicates, oxides, borates and aluminates. Therefore, what is needed is such material made using a process yielding substantially monodisperse nanoparticles of metal phosphates, silicates, oxides, borates and aluminates. In addition, the above mentioned synthesis routes generally require atmospheric control and hazardous solvents. What is also needed is a water assisted reaction milling based method to make substantially monodisperse nanoparticles of such materials.
  • BRIEF SUMMARY OF THE INVENTION
  • The present invention meets these and other needs by providing a material comprising a plurality of nanoparticles of metal phosphates, silicates, oxides, borates, or aluminates that are unagglomerated and substantially monodisperse. The present invention also provides a method of forming such materials using a water assisted reaction milling process (hereinafter referred to as “WARM”).
  • Accordingly, one aspect of the invention is to provide a material comprising a plurality of nanoparticles. Each of the plurality of nanoparticles comprises at least one of a metal phosphate, a metal silicate, a metal oxide, a metal borate, a metal aluminate, and combinations thereof. The plurality of nanoparticles is substantially monodisperse.
  • A second aspect of the invention is to provide a plurality of nanoparticles comprising at least one of a metal phosphate, a metal silicate, a metal oxide, a metal borate, a metal aluminate, and combinations thereof. The plurality of nanoparticles is formed by: forming a slurry comprising at least one metal precursor; mechanically milling the slurry; drying the slurry to form a powder; and calcining the powder at a predetermined temperature to form the plurality of nanoparticles.
  • A third aspect of the invention is to provide a material comprising a plurality of nanoparticles. Each of the plurality of nanoparticles comprises at least one of a metal phosphate, a metal silicate, a metal oxide, a metal borate, a metal aluminate, and combinations thereof. The plurality of nanoparticles is formed by: providing a slurry comprising at least one metal precursor; mechanically milling the slurry; drying the slurry to form a powder; and calcining the powder at a predetermined temperature to form the plurality of nanoparticles. The plurality of nanoparticles is substantially monodisperse and substantially unagglomerated.
  • A fourth aspect of the invention is to provide a method of making a plurality of nanoparticles. The plurality of nanoparticles comprises at least one of a metal phosphate, a metal silicate, a metal oxide, a metal borate, a metal aluminate, and combinations thereof and the plurality of nanoparticles is substantially monodisperse. The method comprises the steps of: providing a slurry of at least one metal precursor; maintaining the pH of the slurry at a predetermined value; mechanically milling the slurry; drying the slurry to form a powder; and calcining the powder at a predetermined temperature to form the plurality of nanoparticles.
  • These and other aspects, advantages, and salient features of the present invention will become apparent from the following detailed description, the accompanying drawings, and the appended claims.
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • FIG. 1 is an electron micrograph showing a gadolinium lanthanum phosphate material comprising a plurality of nanoparticles prepared according to the present invention; and
  • FIG. 2 is a flow chart illustrating the method for making a plurality of nanoparticles according to the present invention.
  • DETAILED DESCRIPTION OF THE INVENTION
  • In the following description, like reference characters designate like or corresponding parts throughout the several views shown in the figures. It is also understood that terms such as “top”, “bottom”, “outward”, “inward”, and the like are words of convenience and are not to be construed as limiting terms.
  • Referring to the drawings in general and to FIG. 1 in particular, it will be understood that the illustrations are for the purpose of describing a preferred embodiment of the invention and are not intended to limit the invention thereto.
  • Water assisted reaction milling (WARM) is an attractive route for making nanoparticles due to the high particulate homogeneity obtained from a liquid phase process, simplicity in process design, the absence of by-products and side reactions, and high process yield. The WARM process typically involves the choice of an inorganic metal precursor in a slurry that is mechanically milled. The slurry is dried to provide a powder that is calcined to yield a plurality of nanoparticles.
  • The present invention employs the WARM process to provide a material comprising a plurality of nanoparticles. Each of the plurality of nanoparticles comprises at least one of a metal phosphate, a metal silicate, a metal oxide, a metal borate, a metal aluminate, and combinations thereof. The plurality of nanoparticles is substantially monodisperse. The WARM process may be used to form any one of the above mentioned materials or any combination thereof. The WARM process is also provided as a method of making a plurality of the nanoparticles, the details of which are described herein.
  • In the present invention, the term “monodisperse particles” means particles possessing a narrow average particle size distribution. In one particular embodiment, the nanoparticles possess a narrow average particle size distribution with less than 5% size dispersion, meaning that less than 5% of the population lies on either side of the mean particle size value.
  • In one embodiment of the invention, shown in FIG. 1, a gadolinium lanthanum phosphate material 20, comprises a plurality of nanoparticles 40. Each of the plurality of nanoparticles 40 comprises at least one of a metal phosphate, a metal silicate, a metal oxide, a metal borate, a metal aluminate, and combinations thereof, and wherein the plurality of nanoparticles 40 is substantially monodisperse 60. Each of the nanoparticles 40 may comprise any one of the aforementioned compounds or any combination thereof. Frequently, the plurality of nanoparticles 40 is substantially unagglomerated 80. In one embodiment, the metal is a transition metal, such as, but not limited to, scandium, titanium, vanadium, chromium, manganese, iron, cobalt, nickel, copper, zinc, zirconium, niobium, molybdenum, ruthenium, rhodium, palladium, silver, cadmium, hafnium, tantalum, tungsten, rhenium, osmium, iridium, platinum, gold, and combinations thereof. In another embodiment, the metal is a lanthanide group metal. In one embodiment, the lanthanide group metal is one of lanthanum, gadolinium, yttrium, lutetium, terbium, cerium, neodymium, samarium, europium, thulium, holmium, praseodymium, dysprosium and combinations thereof. It is understood that the plurality of nanoparticles 40 may comprise any one of the aforementioned metals or any combination thereof.
  • The plurality of nanoparticles 40 has a mean particle size in a range from about 10 nm to about 1000 nm. In a preferred embodiment, the plurality of nanoparticles 40 has a mean particle size in a range from about 10 nm to about 100 nm. In a more preferred embodiment, the plurality of nanoparticles 40 has a mean particle size in a range from about 10 nm to about 50 nm.
  • A second aspect of the invention is to provide a plurality of nanoparticles 40 comprising at least one of a metal phosphate, a metal silicate, a metal oxide, a metal borate, a metal aluminate, and combinations thereof. Each of the nanoparticles 40 may comprise any one of the aforementioned compounds or any combination thereof. As represented in the flow chart shown in FIG. 2, the plurality of nanoparticles 40 is formed by forming a slurry 110 comprising at least one metal precursor, mechanically milling the slurry 130, drying the slurry 140 to form a powder 150, and calcining the powder 160 at a predetermined temperature to form the plurality of nanoparticles 170.
  • In one embodiment of the present invention, the at least one metal precursor comprises at least one of a metal nitrate, a metal chloride, a metal carbonate, a metal oxide, a metal acetate, and combinations thereof. In one embodiment of the present invention, a second precursor is used in addition to the at least one metal precursor to provide the slurry. The second precursor comprises at least one of a metal nitrate, a metal chloride, a metal carbonate, a metal oxide, a metal acetate, a borate source, a phosphate source, a silicate source, and combinations thereof. Non-limiting examples of a borate source include boric acid, boranes, and the like. Phosphate sources include, but are not limited to, di-ammonium hydrogen phosphate, phosphoric acid, phosphorous pentoxide, and the like. Examples of silicate sources include, but are not limited to, organosilicates, such as tetramethylorthosilicate (TMOS), tetraethylorthosilicate (TEOS), and the like. Each of the at least one metal precursor and the second precursor may comprise any one of the aforementioned compounds or any combination thereof. In another embodiment, a surfactant is additionally used to form the slurry. The surfactant may comprise at least one of sodium dodecyl sulfate (SDS), cetyltrimethylammonium bromide (CTAB) phosphatidylcholine, sorbitan monostearate (Span-60), polysorbate (Tween-80), sodium dioctylsulfosuccinate (AOT), dioctadecyldimethylammonium bromide (DODAB), combinations thereof, and the like. The surfactant may comprise any one of the aforementioned compounds or any combination thereof. In another embodiment, oxalic acid can also be used to form the slurry.
  • A surfactant is a surface active chemical agent that reduces the surface tension of a liquid and thus allow it to foam or penetrate solids. Surfactancy hence provides a means to disperse or sometimes precipitate colloidal or sol particles. In the present invention, a surfactant is employed to increase the dispersing volume of the reactant precursors. A slurry is a liquid mixture of water and an insoluble solid material. Independently, or in combination with a surfactant, a slurry may provide a colloidal solution or an emulsion.
  • In the WARM process described herein, which is a method 100 of providing the plurality of nanoparticles 40, slurry 110 is mechanically milled using a variety of milling means such as, but not limited to, dry or wet grinding, dry or wet ball milling, pultrusion, and the like. The objective of milling is to reduce the particle size of the slurry to within the nanometer regime. The milling step is represented in FIG. 2 as step 130. As shown in step 140, the slurry is dried to yield a powder 150. Typically, the slurry is dried in air at a temperature in a range from about 100° C. to about 150° C. to yield powder 150.
  • In one embodiment, the dried powder is calcined 160 at a predetermined temperature in a range from about 600° C. to about 1200° C. During calcination metal salts are converted into their respective oxides as a result of heating to a high temperature. In a preferred embodiment, powder 150 is calcined by heating at a temperature in a range from about 800° C. to about 900° C. Calcination is usually performed for a time period between about 1 hour and about 6 hours. In a preferred embodiment, powder 150 is calcined for between about 2 hours and about 3 hours. Subsequent to calcination 160, a plurality of nanoparticles 40 is obtained via step 170.
  • A third aspect of the invention is to provide a material 20 comprising a plurality of nanoparticles 40. Each of the plurality of nanoparticles 40 comprises at least one of a metal phosphate, a metal silicate, a metal oxide, a metal borate, a metal aluminate, and combinations thereof. The WARM process may be used to form any one of the above mentioned materials or any combination thereof. The plurality of nanoparticles 40 is formed by providing a slurry 110 comprising at least one metal precursor, mechanically milling 130 the slurry, drying the slurry 140 to form a powder 150, and calcining the powder 160 at a predetermined temperature to form the plurality of nanoparticles 40. The plurality of nanoparticles 40 is substantially monodisperse 60 and substantially unagglomerated 80.
  • A fourth aspect of the invention is to provide a method 100 of making a plurality of nanoparticles 40. The plurality of nanoparticles 40 comprises at least one of a metal phosphate, a metal silicate, a metal oxide, a metal borate, a metal aluminate, and combinations thereof. Each of the nanoparticles 40 may comprise any one of the aforementioned compounds or any combination thereof. The plurality of nanoparticles is substantially monodisperse 60. The method comprises providing a slurry of at least one metal precursor 110, maintaining the pH of the slurry at a predetermined value 120, mechanically milling the slurry 130, drying the slurry 140 to form a powder 150, and calcining the powder 160 at a predetermined temperature to form the plurality of nanoparticles 170.
  • An exemplary sketch of the process is represented in FIG. 2. In one embodiment of the present invention, the pH of the slurry is maintained at a value in a range from about 0.5 to about 5.0. In a preferred embodiment, the pH of the slurry is maintained in a range from about 1.0 to about 3.0.
  • In one embodiment of the present invention, the at least one metal precursor comprises at least one of a metal nitrate, a metal chloride, a metal carbonate, a metal oxide, a metal acetate, and combinations thereof. In one embodiment of the present invention, a second precursor is used in addition to the at least one metal precursor to provide the slurry. The second precursor comprises at least one of a metal nitrate, a metal chloride, a metal carbonate, a metal oxide, a metal acetate, a borate source, a phosphate source, a silicate source, and combinations thereof. Each of the at least one metal precursor and the second precursor may comprise any one of the aforementioned compounds or any combination thereof. In another embodiment of the present invention, a surfactant is additionally used to provide the slurry. The surfactant may comprise at least one of, sodium dodecyl sulfate (SDS), cetyltrimethylammonium bromide (CTAB) phosphatidylcholine, sorbitan monostearate (Span-60), polysorbate (Tween-80), sodium dioctylsulfosuccinate (AOT), dioctadecyldimethylammonium bromide (DODAB), combinations thereof, and the like. The surfactant may comprise any one of the aforementioned compounds or any combination thereof. In another embodiment, oxalic acid can also be used to form the slurry.
  • In the WARM process described herein, which is a method 100 of providing the plurality of nanoparticles 40, slurry 110 is mechanically milled using a variety of milling means such as, but not limited to, dry or wet grinding, dry or wet ball milling, pultrusion, and the like. The objective of milling is to reduce the particle size of the slurry to within the nanometer regime. The milling step is represented in FIG. 2 as step 130. As shown in step 140, the slurry is dried to yield a powder 150. Typically, the slurry is dried in air at a temperature in a range from about 100° C. to about 150° C. to yield powder 150.
  • In one embodiment, the dried powder is calcined 160 at a predetermined temperature in a range from about 600° C. to about 1200° C. During calcination metal salts are converted into their respective oxides as a result of heating to a high temperature. In a preferred embodiment, powder 150 is calcined by heating at a temperature in a range from about 800° C. to about 900° C. Calcination is usually performed for a time period between about 1 hour and about 6 hours. In a preferred embodiment, powder 150 is calcined for between about 2 hours and about 3 hours. Subsequent to calcination 160, a plurality of nanoparticles 40 is obtained via step 170.
  • The following example illustrates the features and advantages of the invention, and is not intended to limit the invention in any way.
  • Example 1
  • A 10 g batch of gadolinium lanthanum phosphate doped with cerium and terbium, having 37 mole percent lanthanum, 20 mole percent gadolinium, 28 mole percent cerium, and 15 mole percent terbium was prepared. A precursor slurry was prepared by mixing hexahydrate lanthanum nitrate (6.65 g), hexahydrate gadolinium nitrate (3.75 g), cerium carbonate (2.67 g), and pentahydrate terbium nitrate (2.71 g), and by adding to an oxalic acid solution (7.85 g in 50 ml water). The precursor slurry was homogenized by stirring. The pH of the slurry was adjusted to 1.5 by addition of water and nitric acid. Di-ammonium hydrogen phosphate (5.48 g) was mixed with the homogenized slurry. The slurry was milled using the grinding media for 72 hrs to make it more homogeneous and to form ultra fine particles, followed by drying overnight at 120° C. The powder was ground to make it homogeneous. The homogenized powder was placed in an alumina crucible and heated at 900° C. for 2 hours in a controlled atmosphere comprising 1% hydrogen diluted with nitrogen. Flow rates of the hydrogen/nitrogen mixture were maintained at about 0.5 liters/hour. Following the heat treatment, x-ray diffraction was carried out to determine the particle size of the powder. A mean particle size of 20 nm was obtained. A spheroidal morphology of the powder was confirmed using TEM.
  • While typical embodiments have been set forth for the purpose of illustration, the foregoing description should not be deemed to be a limitation on the scope of the invention. Accordingly, various modifications, adaptations, and alternatives may occur to one skilled in the art without departing from the spirit and scope of the present invention.

Claims (22)

1-52. (canceled)
53. A method of making a plurality of nanoparticles, wherein the plurality of nanoparticles comprises at least one of a metal phosphate, a metal silicate, a metal oxide, a metal borate, a metal aluminate, and combinations thereof, and wherein the plurality of nanoparticles is substantially monodisperse, the method comprising the sequential steps of:
a) providing a slurry of at least one metal precursor;
b) maintaining the pH of the slurry at a predetermined value in a range from about 1.0 to about 3.0;
c) mechanically milling the slurry;
d) drying the slurry at a temperature in a range from about 100° C. to about 150° C. to form a powder; and
e) calcining the powder at a predetermined temperature to form the plurality of nanoparticles,
wherein said plurality of nanoparticles is substantially unagglomerated.
54. The method according to claim 53, wherein the at least one metal precursor comprises at least one of a metal nitrate, a metal chloride, a metal carbonate, a metal oxide, and a metal acetate.
55. The method according to claim 53, wherein the step of providing a slurry further comprises providing a second precursor.
56. The method according to claim 55, wherein the second precursor comprises at least one of a metal nitrate, a metal chloride, a metal carbonate, a metal oxide, a metal acetate, a borate source, a phosphate source, and a silicate source.
57. The method according to claim 53, wherein the step of providing a slurry further comprises providing a surfactant.
58. The method according to claim 57, wherein said surfactant comprises at least one of oxalic acid, sodium dodecyl sulfate, cetyltrimethylammonium bromide, phosphatidylcholine, sorbitan monostearate, polysorbate, sodium dioctylsulfosuccinate, and dioctadecyldimethylammonium bromide.
59-61. (canceled)
62. The method according to claim 53, wherein the step of calcining the powder at a predetermined temperature comprises heating the powder at a temperature in a range from about 600° C. to about 1200° C.
63. The method according to claim 62, wherein the step of calcining the powder at a predetermined temperature comprises heating the powder at a temperature in a range from about 800° C. to about 900° C.
64. The method according to claim 53, wherein the step of calcining the powder comprises heating the powder for between about 1 hour and about 6 hours.
65. The method according to claim 64, wherein the step of calcining the powder comprises heating the powder for between about 2 hours and about 3 hours.
66. (canceled)
67. The method according to claim 53, wherein said metal is a transition metal.
68. The method according to claim 67, wherein said transition metal comprises at least one of scandium, titanium, vanadium, chromium, manganese, iron, cobalt, nickel, copper, zinc, zirconium, niobium, molybdenum, ruthenium, rhodium, palladium, silver, cadmium, hafnium, tantalum, tungsten, rhenium, osmium, iridium, platinum, and gold.
69. The method according to claim 68, wherein said transition metal comprises at least one of titanium, zirconium, hafnium, and manganese.
70. The method according to claim 53, wherein said metal is a lanthanide group metal.
71. The method according to claim 70, wherein said lanthanide group metal comprises at least one of lanthanum, gadolinium, yttrium, lutetium, terbium, cerium, neodymium, samarium, europium, thulium, holmium, praseodymium, and dysprosium.
72. The method according to claim 71, wherein said lanthanide group metal comprises at least one of lanthanum, gadolinium, yttrium, lutetium, terbium, and cerium.
73. The method according to claim 53, wherein said plurality of nanoparticles has a mean particle size in a range from about 10 nm to about 1000 nm.
74. The method according to claim 73, wherein said plurality of nanoparticles has a mean particle size in a range from about 10 nm to about 100 nm.
75. The method according to claim 74, wherein said plurality of nanoparticles has a mean particle size in a range from about 10 nm to about 50 nm.
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Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2012060707A1 (en) * 2010-11-05 2012-05-10 Umc Utrecht Holding B.V. Microsphere comprising a lanthanide metal complex
CN103011287A (en) * 2012-12-04 2013-04-03 漳州师范学院 Preparation for pyro-vanadic acid zinc hollow microsphere and application thereof
CN103708559A (en) * 2013-12-19 2014-04-09 天津大学 Tungsten trioxide nano-film with photocatalytic performance, and preparation method thereof

Families Citing this family (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP5099828B2 (en) * 2007-10-31 2012-12-19 株式会社豊田中央研究所 Inorganic mixed oxide and exhaust gas purification catalyst using the same
US8864045B1 (en) * 2010-11-19 2014-10-21 Stc.Unm Aerosol fabrication methods for monodisperse nanoparticles
CN102728846B (en) * 2012-07-12 2014-04-16 重庆文理学院 Method for preparing nanometer cobalt powders with spherical face-centered cubic structures by using mechano-chemical method
CN104058431A (en) * 2014-06-27 2014-09-24 中国铝业股份有限公司 Method for increasing aluminum oxide low-aluminum-silicon-ratio clinker dissolution rate

Citations (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3672831A (en) * 1969-10-08 1972-06-27 Heyman C Duecker Process for the preparation of fine-sized aluminas
US5376305A (en) * 1985-06-20 1994-12-27 Rhone-Poulenc Specialites Chimiques Preparing storage stable aqueous colloidal dispersions of cerium (IV) values
US5698758A (en) * 1992-11-04 1997-12-16 W. R. Grace & Co.-Conn. Aluminum phosphate composition with high pore volume and large pore diameter, process for its production and use thereof
US5922330A (en) * 1994-09-12 1999-07-13 Rhone-Poulenc Chimie High pH colloidal dispersion of a cerium compound, and a process for its preparation
US20030027033A1 (en) * 2001-06-29 2003-02-06 Seabaugh Matthew M. Nano-composite electrodes and method of making the same
US6692660B2 (en) * 2001-04-26 2004-02-17 Nanogram Corporation High luminescence phosphor particles and related particle compositions
US20040247503A1 (en) * 2001-10-12 2004-12-09 Taeghwan Hyeon Synthesis of mono-disperse and highly crystalline nano-particles of metals, alloys, metal-oxides, and multi-metallic oxides without a size-selection process
US6832735B2 (en) * 2002-01-03 2004-12-21 Nanoproducts Corporation Post-processed nanoscale powders and method for such post-processing
US6866825B2 (en) * 2001-11-05 2005-03-15 Industrial Technology Research Institute Micro-dispenser for biochemical analysis
US6869584B2 (en) * 1997-04-15 2005-03-22 Massachusetts Institute Of Technology Synthesis of nanometer-sized particles by reverse micelle mediated techniques
US6876796B2 (en) * 2002-01-30 2005-04-05 Photon-X, Llc Nanocomposite microresonators

Family Cites Families (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
FR2800300B1 (en) * 1999-11-02 2002-12-20 Rhodia Chimie Sa MESOSTRUCTURE MATERIAL INCORPORATING NANOMETRIC PARTICLES
FR2817771B1 (en) * 2000-12-08 2003-11-28 Rhodia Terres Rares COLLOIDAL RARE EARTH PHOSPHATE DISPERSION AND PREPARATION METHOD

Patent Citations (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3672831A (en) * 1969-10-08 1972-06-27 Heyman C Duecker Process for the preparation of fine-sized aluminas
US5376305A (en) * 1985-06-20 1994-12-27 Rhone-Poulenc Specialites Chimiques Preparing storage stable aqueous colloidal dispersions of cerium (IV) values
US5698758A (en) * 1992-11-04 1997-12-16 W. R. Grace & Co.-Conn. Aluminum phosphate composition with high pore volume and large pore diameter, process for its production and use thereof
US5922330A (en) * 1994-09-12 1999-07-13 Rhone-Poulenc Chimie High pH colloidal dispersion of a cerium compound, and a process for its preparation
US6869584B2 (en) * 1997-04-15 2005-03-22 Massachusetts Institute Of Technology Synthesis of nanometer-sized particles by reverse micelle mediated techniques
US6692660B2 (en) * 2001-04-26 2004-02-17 Nanogram Corporation High luminescence phosphor particles and related particle compositions
US20030027033A1 (en) * 2001-06-29 2003-02-06 Seabaugh Matthew M. Nano-composite electrodes and method of making the same
US20040247503A1 (en) * 2001-10-12 2004-12-09 Taeghwan Hyeon Synthesis of mono-disperse and highly crystalline nano-particles of metals, alloys, metal-oxides, and multi-metallic oxides without a size-selection process
US6866825B2 (en) * 2001-11-05 2005-03-15 Industrial Technology Research Institute Micro-dispenser for biochemical analysis
US6832735B2 (en) * 2002-01-03 2004-12-21 Nanoproducts Corporation Post-processed nanoscale powders and method for such post-processing
US6876796B2 (en) * 2002-01-30 2005-04-05 Photon-X, Llc Nanocomposite microresonators

Cited By (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2012060707A1 (en) * 2010-11-05 2012-05-10 Umc Utrecht Holding B.V. Microsphere comprising a lanthanide metal complex
EP2457588A1 (en) * 2010-11-05 2012-05-30 UMC Utrecht Holding B.V. Microsphere comprising a lanthanide metal complex
US9334298B2 (en) 2010-11-05 2016-05-10 UMC Utrecht Hodling B.V. Microsphere comprising a lanthanide metal complex
US9999695B2 (en) 2010-11-05 2018-06-19 Umc Utrecht Holdings B.V. Microsphere comprising a lanthanide metal complex
CN103011287A (en) * 2012-12-04 2013-04-03 漳州师范学院 Preparation for pyro-vanadic acid zinc hollow microsphere and application thereof
CN103708559A (en) * 2013-12-19 2014-04-09 天津大学 Tungsten trioxide nano-film with photocatalytic performance, and preparation method thereof

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