Titanium compound-containing sintered body
09701586 ยท 2017-07-11
Assignee
Inventors
Cpc classification
C04B2235/3418
CHEMISTRY; METALLURGY
C01P2004/80
CHEMISTRY; METALLURGY
C04B35/6268
CHEMISTRY; METALLURGY
C04B2235/761
CHEMISTRY; METALLURGY
C04B2235/6584
CHEMISTRY; METALLURGY
C01P2002/72
CHEMISTRY; METALLURGY
C04B2235/3203
CHEMISTRY; METALLURGY
C04B2235/80
CHEMISTRY; METALLURGY
International classification
B05D7/00
PERFORMING OPERATIONS; TRANSPORTING
C04B35/626
CHEMISTRY; METALLURGY
C04B35/58
CHEMISTRY; METALLURGY
C04B35/628
CHEMISTRY; METALLURGY
Abstract
A titanium compound-containing core-shell powder includes a plurality of core-shell particles, each of which includes a core body and a shell layer encapsulating said core body. The core body is electrically conductive. The shell layer includes a crystal that is selected from titanate oxides having a perovskite structure and titanate oxides having a spinel structure. The core body and the shell layer are chemically bonded to each other.
Claims
1. A titanium compound-containing sintered body comprising: a plurality of core-shell particles, each of which includes a core body and a shell layer encapsulating said core body, said core body being electrically conductive, said shell layer including a crystal that is selected from the group consisting of titanate oxides having a perovskite structure and titanate oxides having a spinel structure, said core body and said shell layer being chemically bonded to each other, said shell layers of adjacent ones of said core-shell particles being interbonded to one another through the sintering process.
2. The titanium compound-containing sintered body of claim 1, wherein said core body of each of said core-shell particles is made from TiN.
3. The titanium compound-containing sintered body of claim 2, wherein said crystal is selected from the group consisting of barium titanate and strontium titanate.
4. The titanium compound-containing sintered body of claim 2, wherein said crystal is lithium titanate, and has a spinel structure.
5. The titanium compound-containing sintered body of claim 1, wherein said shell layer of each of said core-shell particles further includes an oxide or a sintering additive that is doped in said crystal.
6. The titanium compound-containing sintered body of claim 1, wherein said shell layer of each of said core-shell particles is dielectric.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) In drawings which illustrate an embodiment of the invention,
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DETAILED DESCRIPTION OF THE EMBODIMENTS
(16) The embodiment of a core-shell powder according to the present invention includes a plurality of core-shell particles.
(17) Referring to
(18) The core body 1 of each of the core-shell particles is made from TiN.
(19) The crystal may be selected from the group consisting of barium titanate, strontium titanate, and lithium titanate.
(20) The shell layer 2 of each of the core-shell particles further includes an oxide that is doped in the crystal.
(21) In an example of this invention, the crystal is barium titanate or strontium titanate.
(22) In another example of this invention, the crystal is lithium titanate, and has a spinel structure.
(23) The method of making the embodiment of the core-shell powder includes the steps of: preparing a titanium compound powder and an inorganic salt powder; mixing the titanium compound powder and the inorganic salt powder to form a preformed powder; and subjecting the preformed powder to calcination to cause solid-state reaction of particle surfaces of the titanium compound powder with the inorganic salt powder to form a titanium compound-containing crystalline shell layer on each particle surface of the titanium compound powder.
(24) The preformed powder is formed by mixing the titanium compound powder and the inorganic salt powder in a solvent, followed by drying to remove the solvent. The solvent may be selected from the group consisting of water, alcohol, toluene, and isopropanol.
(25) Preferably, the titanium compound powder is made from TiN. The inorganic salt powder is a salt containing cations that are selected from the group consisting of barium ions, strontium ions, lithium ions and combinations thereof, and anions that are selected from the group consisting of carbonates, hydroxides, phosphates and combinations thereof. Examples of the inorganic salt powder include barium carbonate, strontium carbonate, lithium carbonate, barium hydroxide, strontium hydroxide, lithium hydroxide, barium phosphonate, strontium phosphonate, and lithium phosphonate. In the solid-state reaction of the particle surfaces of the titanium compound powder with the inorganic salt powder, the cations of the inorganic salt powder replace the titanium atoms on the particle surfaces of the titanium compound powder, and react with the replaced titanium atoms during the calcination to form the titanium compound-containing crystalline shell layer. In one embodiment, the inorganic salt powder is barium carbonate powder and may be mixed with a sintering additive before mixing with the titanium compound powder. Examples of the sintering additive include strontium carbonate, calcium carbonate, magnesium carbonate, and lithium carbonate.
(26) Preferably, the calcination is conducted at a partial pressure of oxygen greater than 10 ppm and less than 10000 ppm, more preferably, the partial pressure of oxygen is less than 10.sup.8 atm, such that the cations of the inorganic salt powder not only react with the replaced titanium atoms but also with the oxygen present in an atmosphere of the calcination to form the titanium compound-containing crystalline shell layer.
(27) The core-shell particles of this embodiment can be used to produce a titanium compound-containing sintered body. In the sintered body, the shell layers 2 of adjacent ones of the core-shell particles are interbonded to one another through the sintering process.
(28) The method of making the MLCC includes the steps of: milling the core-shell powder of the embodiment in a solvent; mixing the core-shell powder and an organic binder (such as poly(vinyl alcohol) (PVA) or poly(vinyl butyral) (PVB)) after the milling so as to form a slurry; casting the slurry to form a green sheet; printing a metal electrode layer on the green sheet to form a printed green sheet; cutting the printed green sheet to form a plurality of sheets; stacking the sheets to form a preformed bar; cutting the preformed bar into a desired size; removing the organic binder from the preformed bar so as to form a chip; sintering the chip at a temperature ranging from 1100 C. to 1300 C. so as to form a titanium compound-containing sintered brick; dipping copper electrodes on two opposite sides of the titanium compound-containing sintered brick; and electroplating a nickel protecting layer and a tin layer on each of the copper electrodes so as to form the MLCC that is ready to be electrically connected to an external power source.
(29) It is noted that the core-shell powder of the present invention does not need to be sintered at the temperature greater than 1300 C. in order to form the titanium compound-containing sintered brick.
(30) The titanium compound-containing sintered brick includes a plurality of the core-shell particles that are bonded to one another through surface interfusion. The shell layers 2 of adjacent ones of the core-shell particles are interbonded to one another through the sintering process.
(31) The shell layer 2 of each of the core-shell particles further includes an oxide or a sintering additive that is doped in said crystal.
(32) The shell layer of 2 each of the core-shell particles is dielectric.
(33) The merits of the embodiment of this invention will become apparent with reference to the following Examples.
EXAMPLE 1
(34) A barium carbonate powder and a TiN powder were mixed in an alcohol and milled in a ball mill with zirconium dioxide balls having a diameter of 0.1 mm so as to form a preformed powder in the alcohol. The mole ratio of the barium carbonate powder to the TiN powder was 1:5.
(35) The preformed powder was dried using nitrogen gas, and was subjected to calcination for 30 minutes in a chamber at a partial pressure of oxygen of 9.310.sup.9 atm and a temperature of 800 C. such that particles surfaces of particles of the TiN powder and cations of the barium carbonate powder underwent solid-state reaction to form a titanium-containing crystalline shell layer on each particle surface of the particles of the TiN powder, thereby forming the core-shell particles.
(36) 100 parts by weight of the core-shell particles thus formed were milled in a solvent, and were then mixed with 15 parts by weight of an organic binder and 1 part by weight of a SiO.sub.2 powder to form a slurry. The slurry was coated to form a green sheet using a coating machine. The green sheet was punched to form a plurality of pellets. The pellets were heated for 60 minutes at a partial pressure of oxygen greater than 0.015 atm and a temperature of 450 C. to remove the organic binder. The pellets were sintered at a temperature of 1250 C. for 30 minutes under an atmosphere containing N.sub.2 and H.sub.2 (H.sub.2 was 0.01%) to form a sintered body of the core-shell particles.
EXAMPLE 2
(37) A strontium carbonate powder and a TiN powder were mixed in an alcohol and milled in a ball mill with zirconium dioxide balls having a diameter of 0.1 mm so as to form a preformed powder in the alcohol. The mole ratio of the strontium carbonate powder to the TiN powder was 3:10.
(38) The preformed powder was dried using N.sub.2 gas, and was subjected to calcination for 80 minutes in a chamber at a partial pressure of oxygen of 3.610.sup.9 atm and a temperature of 1000 C., such that particles surfaces of particles of the TiN powder and cations of the strontium carbonate powder underwent solid-state reaction so as to form a titanium-containing crystalline shell layer on each particle surface of the particles of the TiN powder, thereby forming the core-shell particles.
(39) 100 parts by weight of the core-shell particles thus formed were milled in a solvent, and were then mixed with 15 parts by weight of an organic binder and 1 part by weight of a SiO.sub.2 powder to form a slurry. The slurry was coated to form a green sheet using a coating machine. The green sheet was punched to form a plurality of pellets. The pellets were heated for 60 minutes at a partial pressure of oxygen greater than 0.015 atm and a temperature of 450 C. to remove the organic binder. The pellets were sintered at a temperature of 1250 C. for 30 minutes under an atmosphere containing N.sub.2 and H.sub.2 (H.sub.2 was 0.01%) to form a sintered body of the core-shell particles.
EXAMPLE 3
(40) A lithium carbonate powder and a TiN powder were mixed in an alcohol and milled in a ball mill with zirconium dioxide balls having a diameter of 0.1 mm to form a preformed powder in the alcohol. The mole ratio of the lithium carbonate powder to the TiN powder was 3:10.
(41) The preformed powder was dried using N.sub.2 gas, and was subjected to calcination for 5 hours in a chamber at a partial pressure of oxygen of 9.810.sup.9 atm and a temperature of 900 C., such that particles surfaces of particles of the TiN powder and cations of the lithium carbonate powder underwent solid-state reaction so as to form a titanium-containing crystalline shell layer on each particle surface of the particles of the TiN powder, thereby forming the core-shell particles.
(42) [Analysis Results]
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(44) The crystal of the shell layer of Example 1 has a c/a ratio of about 1.006, where c and a are lattice parameters of the crystal. Moreover, the shell layer has a tetragonal phase, and exhibits excellent ferroelectricity.
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(56) By subjecting the preformed powder of the mixture of the titanium compound powder and the inorganic salt powder to calcination and solid-state reaction to form the shell layer 2 encapsulating and interbonded to the core body 1 according to the method of the present invention, the aforesaid drawbacks associated with the prior art can be eliminated.
(57) While the present invention has been described in connection with what is considered the most practical embodiment, it is understood that this invention is not limited to the disclosed embodiment but is intended to cover various arrangements included within the spirit and scope of the broadest interpretation and equivalent arrangements.