Zirconia calcined body

By optimizing the sintering process with zirconia and yttria at specific temperature intervals and displacement points, the zirconia calcined body achieves high density and translucency, addressing the limitations of existing sintering methods.

JP7791367B2Active Publication Date: 2025-12-23KURARAY NORITAKE DENTAL
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Patent Information

Application Number
JP2024576724
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2023-09-22
Filing Date
2024-09-20
Publication Date
2025-12-23
Estimated Expiration
2044-09-20

AI Technical Summary

Technical Problem

Existing zirconia sintering methods fail to achieve a relative density of 99.0% and sufficient translucency when subjected to high-speed sintering with a temperature rise rate of 350°C/min, as described in Patent Document 1.

Method used

A zirconia calcined body containing zirconia and yttria is prepared by setting six target temperatures from 1150°C to 1400°C in 50°C increments, with a heating rate of 350°C/min and holding at each temperature for 10 minutes, calculating the density change to identify a displacement point where the maximum value of (Δρn+1/ΔT) - (Δρn/ΔT) is 0.010 or more, ensuring excellent translucency.

Benefits of technology

The zirconia calcined body achieves a relative density of 99.0% or more with high-speed sintering and maintains excellent translucency, even with a holding time of 2 minutes at the maximum sintering temperature.

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Abstract

The present invention provides a zirconia calcined body which achieves a relative density of at least 99.0% in high-speed firing at a high-speed temperature increase of 350°C / min, and from which a zirconia sintered body having excellent translucency is obtained. The present invention pertains to a zirconia calcined body which contains zirconia and yttria, and for which when six target temperatures are set from 1150°C to 1400°C at an interval of 50°C and six samples are prepared by increasing the temperatures of the samples up to the six respective different target temperatures at a temperature increase rate of 350°C / min from a temperature range of at most 400°C, and by maintaining the temperatures at the respective target temperatures for 10 minutes and then lowering the temperatures to 25°C, and when the temperature interval of the target temperatures from 1150°C to 1400°C is 50°C, and, for the six samples, the amount of the change between the density of the calcined body at the upper limit temperature and the density of the calcined body at the lower limit temperature in an n-th section (n represents an integer of at least 1) is denoted as Δρn, and the amount of the change in the temperature is denoted as ΔT, the zirconia calcined body has a displacement point at which the maximum value of the amount of the change ((Δρn+1 / ΔT)-(Δρn / ΔT)) between the ratio Δρn / ΔT of the density change in the n-th section and the ratio Δρn+1 / ΔT of the density change in the (n+1)-th section is at least 0.010 in the temperature range of 1200-1350°C.
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Description

[Technical Field]

[0001] The present invention relates to a zirconia calcined body. More specifically, the present invention relates to a zirconia calcined body that reaches a relative density of 99.0% or more when subjected to high-speed sintering with a high temperature rise rate of 350°C / min, and that has excellent translucency. [Background technology]

[0002] Zirconia sintered bodies are widely used industrially, and in particular, in recent years have been used as dental materials for dental prostheses, etc. These dental prostheses are often produced by forming a zirconia molded body having a desired shape, such as a disk or a prism, by press-molding zirconia particles or by molding using a composition containing zirconia particles, and then calcining this to form a calcined body (mill blank), which is then cut (milled) into the shape of the desired dental prosthesis and further fired.

[0003] Zirconia is a compound that undergoes phase transitions between multiple crystal systems. Therefore, partially stabilized zirconia (PSZ) and fully stabilized zirconia (FSZ), which are formed by dissolving stabilizers such as yttria (yttrium oxide; Y2O3) in zirconia to suppress phase transitions, are used in various fields.

[0004] In the dental field, zirconia materials have been used as frame materials due to their high strength but low translucency. In recent years, however, as the translucency of zirconia materials has improved, dental prostheses are increasingly being made solely from zirconia.

[0005] Because dental prostheses made of zirconia materials have excellent strength and translucency, zirconia sintered bodies have been proposed, for example, in Patent Document 1. [Prior art documents] [Patent documents]

[0006] [Patent Document 1] Japanese Patent Application Laid-Open No. 2010-150064 Summary of the Invention [Problem to be solved by the invention]

[0007] Patent Document 1 describes that when fired at 5°C / min, the sintering shrinkage rate (Δρ / ΔT: g / cm) is 3 ·°C) of 0.0120 or more and 0.0135 or less can improve the density of the finally obtained zirconia sintered body.

[0008] However, Patent Document 1 does not mention the change in density of the sintered body when the temperature is increased at a rate of heating faster than 5° C. / min. Furthermore, the present inventors have found that when the invention of Patent Document 1 is heated at a high rate (350°C / min) and held for a certain period of time, the density of the sintered body does not reach a relative density of 99.0% or more, and translucency is not achieved when fired at 5°C / min. Therefore, it has been found that there is room for improvement in the invention of Patent Document 1 in order to further shorten the firing time.

[0009] An object of the present invention is to provide a zirconia calcined body that reaches a relative density of 99.0% or more when subjected to high-speed sintering with a high temperature rise rate of 350°C / min, and that has excellent translucency. [Means for solving the problem]

[0010] As a result of extensive research to solve the above problems, the inventors of the present invention have found that six types of samples containing zirconia and yttria were prepared by setting six target temperatures from 1150°C to 1400°C in 50°C increments, raising the temperature from a temperature range of 400°C or less to each of the six different target temperatures at a heating rate of 350°C / min, and then holding the samples at each target temperature for 10 minutes before lowering the temperature to 25°C. The temperature range from 1150°C to 1400°C was divided into sections every 50°C. In this case, the temperature ranges were set at 50°C intervals from 1150°C, and an n-th temperature range (n represents an integer of 1 or more) was set, with the temperature range from 1150°C to 1200°C being the first section and the temperature range from 1200°C to 1250°C being the second section. Using the six samples, the change in density between the calcined body at the upper limit temperature and the lower limit temperature in the n-th interval (n is an integer of 1 or more) was calculated as Δρ n When the temperature change is ΔT, the rate of density change in the nth section in the temperature range between 1200°C and 1350°C is Δρ n / ΔT and the rate of density change in the n+1th section Δρ n+1 / ΔT and the change in ((Δρ n+1 / ΔT)-(Δρ n The present inventors have found that by preparing a zirconia calcined body having a displacement point at which the maximum value of (ΔT) / ΔT) is 0.010 or more, a zirconia sintered body that can be obtained even by high-speed sintering with a high temperature rise rate of 350°C / min has excellent translucency. Based on this finding, the present inventors have conducted further research and have completed the present invention.

[0011] The present invention includes the following inventions. [1] Contains zirconia and yttria, Six target temperatures were set in 50°C increments from 1150°C to 1400°C. Six samples were prepared by heating from a temperature range of 400 ° C or less at a heating rate of 350 ° C / min to six different target temperatures, then holding at each target temperature for 10 minutes and then cooling to 25 ° C. The temperature range of the target temperature from 1150°C to 1400°C was divided into intervals of 50°C each, and the six samples were used to calculate the change in density between the calcined body at the upper limit temperature and the lower limit temperature in the nth interval (n is an integer of 1 or more), Δρ n When the temperature change is ΔT, the rate of density change in the nth section in the temperature range between 1200°C and 1350°C is Δρ n / ΔT and the rate of density change in the n+1th section Δρ n+1 / ΔT and the change in ((Δρ n+1 / ΔT)-(Δρ n A calcined zirconia body having a displacement point at which the maximum value of ΔT / ΔT) is 0.010 or more. [2] The zirconia calcined body according to [1], wherein the yttria content is 3.5 mol % or more and 7.5 mol % or less based on the total moles of zirconia and yttria. [3] The density at the temperature (°C) of the displacement point is 4.5 g / cm 3 The zirconia calcined body according to [1] or [2], which is: [Effects of the Invention]

[0012] The zirconia calcined body of the present invention can reach a relative density of 99.0% or more through high-speed sintering with a high temperature rise rate of 350°C / min, and the obtained zirconia sintered body has excellent translucency. Furthermore, according to the present invention, it is possible to provide a zirconia calcined body that is excellent in translucency even when the holding time at the maximum sintering temperature is 2 minutes. DETAILED DESCRIPTION OF THE INVENTION

[0013] [Zirconia calcined body] The zirconia calcined body of the present invention contains zirconia and yttria, Six target temperatures were set in 50°C increments from 1150°C to 1400°C. Six samples were prepared by heating from a temperature range of 400 ° C or less at a heating rate of 350 ° C / min to six different target temperatures, then holding at each target temperature for 10 minutes and then cooling to 25 ° C. The temperature range of the target temperature from 1150°C to 1400°C was divided into intervals of 50°C each, and the six samples were used to calculate the change in density between the calcined body at the upper limit temperature and the lower limit temperature in the nth interval (n is an integer of 1 or more), Δρ n When the temperature change is ΔT, the rate of density change in the nth section in the temperature range between 1200°C and 1350°C is Δρ n / ΔT and the rate of density change in the n+1th section Δρ n+1 / ΔT and the change in ((Δρ n+1 / ΔT)-(Δρ n / ΔT)) has a displacement point at which the maximum value is 0.010 or more.

[0014] As used herein, the term "zirconia composition" refers to a composition containing zirconia powder and a stabilizer powder. In this specification, the term "molded body" refers to a body that has not yet reached a semi-sintered state (calcined state) or a sintered state. In other words, a molded body is distinguished from a calcined body and a sintered body in that the molded body is a body that has been formed by molding and then not yet fired. In this specification, the term "calcined zirconia body" refers to a body in a semi-sintered state in which zirconia particles are necked (adhered) to each other and are not completely sintered. In this specification, the term "zirconia sintered body" refers to a body in a sintered state in which zirconia particles are completely sintered. In a zirconia sintered body, zirconia particles are solidified by sintering, and the relative density increases and densification progresses as the sintering proceeds, resulting in a completely sintered state in which the relative density is 95% or more. In this specification, "zirconia" refers to zirconium (IV) oxide (ZrO), and ZrO particles contain a trace amount of HfO relative to the amount of ZrO (0.5% by mass to 3% by mass). Because HfO is difficult to separate, terms such as "zirconia," "zirconia particles," and "zirconia powder" refer to substances containing ZrO and HfO. Furthermore, particles and powders in which a stabilizer is dissolved in zirconia are also included in the terms "zirconia particles" and "zirconia powder," respectively. In this specification, "normal pressure" means standard atmospheric pressure (1 atm). In this specification, the "theoretical density" refers to a density calculated from the volume of a crystal unit cell and the sum of the masses contained in the unit cell. For example, the theoretical density of 3 mol% yttria-stabilized zirconia is 6.095 g / cm. 3 and 6.052 g / cm for 5.5 mol% yttria-stabilized zirconia. 3 This becomes: In addition, in this specification, the term "transition point" refers to a point at which the difference (amount of change) in the rate of density change between adjacent sections in 50°C intervals in a specific temperature range, which will be explained separately, becomes a value other than 0. The temperature at the transition point between the nth section and the n+1th section is expressed as ((Δρ n+1 / ΔT)-(Δρ n / ΔT)) is a value other than 0. In this specification, the upper and lower limits of the numerical ranges (temperature range, content of each component, abundance rate of crystalline system, values ​​calculated from components, etc., and each physical property, etc.) can be combined as appropriate.

[0015] The rate of density change Δρ of the nth section in the temperature range of 1200°C to 1350°C n / ΔT and the rate of density change in the n+1th section Δρ n+1 / ΔT and the change in ((Δρ n+1 / ΔT)-(Δρ n / ΔT) is preferably 0.010 or more, more preferably 0.011 or more, and even more preferably 0.012 or more, since a zirconia sintered body having a relative density of 99.0% or more can be obtained through high-speed sintering with a high temperature rise rate of 350°C / min, and which has better translucency. In addition, the change amount ((Δρ n+1 / ΔT)-(Δρ n / ΔT) is preferably 0.050 or less, more preferably 0.045 or less, and even more preferably 0.040 or less, since a zirconia sintered body having excellent translucency can be obtained by high-speed firing with a high temperature rise rate of 350°C / min.

[0016] The method for measuring the density of the calcined body and the method for calculating the change in density are as described in the Examples below.

[0017] The change in the amount ((Δρ n+1 / ΔT)-(Δρ n The reason why a zirconia sintered body having excellent translucency and a relative density of 99.0% or more can be obtained by rapid sintering with a rapid temperature rise of 350°C / min when the relative density (ΔT) is within a predetermined range is not clear, but is presumed to be as follows. In high-speed firing including a high-speed temperature rise of 350° C. / min (hereinafter also simply referred to as "high-speed firing"), a sintered body with a low relative density is expected to have pores inside. The inventors have found that the change ((Δρ n+1 / ΔT)-(Δρ n By having a transition point where the maximum value of (ΔT / ΔT)) is 0.010 or more, rapid grain growth is suppressed in the temperature region before the transition point, which is thought to suppress the incorporation of vacancies in the low-temperature region of 1200°C or higher and 1350°C or lower, and when the zirconia raw material undergoes a crystalline phase transition (for example, from monoclinic to tetragonal or cubic), the difference in density between the phases is thought to have the effect of promoting the expulsion of voids in the high-temperature region above 1350°C. This is believed to enable a sintered body to reach a relative density of 99.0% or more even during high-speed firing and to have excellent translucency.

[0018] In the zirconia calcined body of the present invention, the density of the calcined body at the temperature (°C) of the transition point (the transition point at which the amount of change is maximum) is set to 4.5 g / cm in order to further promote the expulsion of voids in the high temperature region. 3 Preferably, it is 4.2 g / cm or less. 3 More preferably, it is 4.1 g / cm or less. 3 It is even more preferable that: In addition, the density of the calcined body at the temperature (℃) of the transition point is 3.0 g / cm because the relative density reaches 99.0% or more in high-speed firing. 3 It is preferable that the concentration is 3.1 g / cm or more. 3 More preferably, it is 3.2 g / cm or more. 3 More preferably, it is equal to or greater than this.

[0019] The zirconia calcined body contains yttria (Y2O3) as a stabilizer capable of suppressing the phase transition of zirconia.

[0020] The yttria content in the zirconia calcined body is preferably 2.5 mol% or more, more preferably 3.0 mol% or more, even more preferably 3.5 mol% or more, and particularly preferably 4.0 mol% or more, based on the total moles of zirconia (zirconium (IV) oxide; ZrO2) and stabilizer. A content of 2.5 mol% or more is preferable in that the crystalline system contained in the sintered body contains more cubic systems, which is preferable in that it improves translucency. The content of the stabilizer is preferably 10 mol% or less, more preferably 9.0 mol% or less, even more preferably 8.5 mol% or less, and particularly preferably 8 mol% or less. A content of 10 mol% or less is preferable in terms of preventing a decrease in strength.

[0021] In the zirconia calcined body of the present invention, the stabilizer capable of suppressing the phase transition of zirconia may be yttria alone, or may further contain a stabilizer other than yttria capable of suppressing the phase transition of zirconia. Examples of stabilizers other than yttria that can suppress the phase transition of zirconia (hereinafter simply referred to as "stabilizers") include calcium oxide (CaO), magnesium oxide (MgO), yttrium oxide (YO), cerium oxide (CeO), scandium oxide (ScO), niobium oxide (NbO), lanthanum oxide (LaO), erbium oxide (ErO), praseodymium oxide (PrO, PrO) and the like. 11 Examples of the stabilizer include oxides such as samarium oxide (Sm2O3), europium oxide (Eu2O3), thulium oxide (Tm2O3), gallium oxide (Ga2O3), indium oxide (In2O3), and ytterbium oxide (Yb2O3). One of the stabilizers may be used alone, or two or more of them may be used in combination.

[0022] The zirconia calcined body of the present invention may contain additives other than zirconia and stabilizers, such as colorants (including pigments, composite pigments, and fluorescent agents), alumina (Al2O3), titanium oxide (TiO2), and silica (SiO2), as long as the effects of the present invention are achieved.

[0023] Examples of the pigment include oxides of at least one element selected from the group consisting of Ti, V, Cr, Mn, Fe, Co, Ni, Zn, Y, Sn, Sb, Bi, Ce, Pr, Sm, Eu, Gd, Tb, and Er (specifically, NiO, Cr2O3, etc.) (however, YO and CeO2 are excluded). An oxide of at least one element selected from the group consisting of Ti, V, Cr, Mn, Fe, Co, Ni, Zn, Y, Sn, Sb, Bi, Ce, Pr, Sm, Eu, Gd, and Tb is preferred, and an oxide of at least one element selected from the group consisting of Ti, V, Cr, Mn, Fe, Co, Ni, Zn, Y, Sn, Sb, Bi, Ce, Sm, Eu, Gd, and Tb is more preferred. The zirconia calcined body of the present invention may not contain erbium oxide (Er2O3). Examples of the composite pigment include (Zr,V)O2, Fe(Fe,Cr)2O4, (Ni,Co,Fe)(Fe,Cr)2O4·ZrSiO4, (Co,Zn)Al2O4, etc. Examples of the fluorescent agent include Y2SiO5:Ce, Y2SiO5:Tb, (Y,Gd,Eu)BO3, Y2O3:Eu, YAG:Ce, ZnGa2O4:Zn, BaMgAl 10 O 17 :Eu, etc.

[0024] The zirconia calcined body of the present invention may contain a fluorescent agent. When the zirconia calcined body contains a fluorescent agent, the zirconia sintered body has fluorescent properties. There are no particular restrictions on the type of fluorescent agent, and one or more types that can emit fluorescence when exposed to light of any wavelength can be used. The fluorescent agent may contain a metal element. Examples of the metal element include Ga, Bi, Ce, Nd, Sm, Eu, Gd, Tb, Dy, and Tm. The fluorescent agent may contain one of these metal elements alone or two or more of them. Among these metal elements, Ga, Bi, Eu, Gd, and Tm are preferred, and Bi and Eu are more preferred. Examples of the fluorescent agent include oxides, hydroxides, acetates, and nitrates of the above metal elements. Also, examples of the fluorescent agent include Y2SiO5:Ce, Y2SiO5:Tb, (Y, Gd, Eu)BO3, Y2O3:Eu, YAG:Ce, ZnGa2O4:Zn, and BaMgAl. 10 O 17 :Eu, etc.

[0025] The content of the fluorescent agent in the zirconia calcined body is not particularly limited and can be adjusted as appropriate depending on the type of fluorescent agent or the application of the zirconia sintered body. However, from the viewpoint of favorable use as a dental prosthesis, the content of the fluorescent agent, calculated as the oxide of the metal element, relative to 100% by mass of zirconia contained in the zirconia calcined body is preferably 0.001% by mass or more, more preferably 0.005% by mass or more, and even more preferably 0.01% by mass or more. The content of the fluorescent agent, calculated as the oxide of the metal element contained in the fluorescent agent, is not limited as long as suitable fluorescence is exhibited, but may be 1% by mass or less, 0.5% by mass or less, or 0.1% by mass or less. When the content is equal to or greater than the lower limit, the fluorescence is not inferior to that of human natural teeth, and when the content is equal to or less than the upper limit, the decrease in translucency and mechanical strength can be suppressed.

[0026] The flexural strength of the zirconia calcined body of the present invention is preferably 15 MPa or more to ensure strength that allows mechanical processing in the calcined body state, and is preferably 70 MPa or less, more preferably 60 MPa or less, to facilitate mechanical processing in the calcined body state.

[0027] The bending strength can be measured in accordance with ISO 6872:2015 (Dentistry - Ceramic materials), except for the size of the test specimen, which is 5 mm x 10 mm x 50 mm. The test specimen's face and C-face (the surface where the corners of the test specimen are chamfered at a 45° angle) are polished longitudinally with 600-grit sandpaper. The test specimen is positioned so that the widest surface faces vertically (the load direction). In the three-point bending test, the span between supports is 30 mm, and the crosshead speed is 0.5 mm / min.

[0028] The density of the zirconia calcined body of the present invention is 2.7 g / cm 3 More than 3.0 g / cm is preferable. 3More preferably, it is 3.2 g / cm or more. 3 More preferably, it is equal to or greater than this. The density of the zirconia calcined body is 4.0 g / cm 3 Preferably less than 3.8 g / cm 3 Less than 3.6 g / cm is more preferable. 3 The following is even more preferable: When the density is within the above range, molding can be easily carried out.

[0029] The density of the zirconia calcined body can be calculated by (mass of the zirconia calcined body) / (volume of the zirconia calcined body). The density of the zirconia calcined body can be calculated, for example, by cutting out 10 mm square specimens (n=3) from arbitrary positions on the zirconia calcined body while changing the cutting position, measuring the mass and volume of the obtained specimens, calculating the arithmetic mean value of the measured values, and using the arithmetic mean value to calculate the density according to the above formula.

[0030] [Method of manufacturing zirconia calcined body] Next, a method for producing a zirconia calcined body will be described. The method for producing the zirconia calcined body is not particularly limited as long as it can obtain the desired displacement point. A preferred method for producing the zirconia calcined body includes pulverizing a zirconia composition, molding the pulverized zirconia composition into a molded body, and firing (calcining) the molded body to an extent that the zirconia particles do not sinter together, and applying excess energy compared to conventional techniques to the pulverization under predetermined conditions in the pulverization process, thereby producing the zirconia calcined body of the present invention.

[0031] The zirconia composition can be produced by mixing raw material powders, zirconia powder and yttria powder, using any known method and apparatus without any particular limitations.

[0032] As a method for preparing the zirconia particles constituting the zirconia powder and the yttria particles constituting the yttria powder, for example, a breakdown process in which coarse particles are pulverized or crushed to form fine powder, or a building-up process in which atoms or ions are synthesized through a nucleation and growth process can be employed.

[0033] The zirconia constituting the zirconia powder is not particularly limited, and any of tetragonal zirconia, monoclinic zirconia, and cubic zirconia can be used. In the zirconia powder, these may be used alone or in combination of two or more.

[0034] As the zirconia powder, commercially available zirconia particles may be used, or commercially available powder may be used after being pulverized in a known pulverizing / mixing device (such as a ball mill). As the yttria powder, commercially available yttria particles may be used, or commercially available powder may be used after being pulverized in a known pulverizing and mixing device (such as a ball mill).

[0035] Commercially available zirconia powders include, for example, zirconia powders (trade names "Zpex (registered trademark)" (Y2O3 content: 3 mol%), "Zpex (registered trademark) 4" (Y2O3 content: 4 mol%), "Zpex (registered trademark) Smile (registered trademark)" (Y2O3 content: 5.5 mol%), "TZ-3Y" (Y2O3 content: 3 mol%), "TZ-3YS" (Y2O3 content: 3 mol%), "TZ-4YS" (Y2O3 content: 4 mol%), "TZ-6Y" (Y2O3 content: 6 mol%), "TZ-6YS" (Y2O3 content: 6 mol%), "TZ-8YS" (Y2O3 content: 8 mol%), "TZ-10YS" (Y2O3 content: 10 mol%), "TZ-3Y-E" (Y2O3 content: 3 mol%), and Examples include "TZ-3YS-E" (Y2O3 content: 3 mol%), "TZ-3YB-E" (Y2O3 content: 3 mol%), "TZ-3YSB-E" (Y2O3 content: 3 mol%), "TZ-3YB" (Y2O3 content: 3 mol%), "TZ-3YSB" (Y2O3 content: 3 mol%), "TZ-3Y20AB" (Y2O3 content: 3 mol%), "TZ-8YSB" (Y2O3 content: 8 mol%), and "TZ-0" (Y2O3 content: 0 mol%; monoclinic zirconia); all manufactured by Tosoh Corporation.

[0036] The zirconia composition is then further pulverized under predetermined conditions to obtain the desired displacement point. In the present invention, when a zirconia composition containing zirconia and yttria is subjected to a milling treatment under specified conditions, the mixing of zirconia particles and yttria particles is promoted, resulting in a uniform composition distribution, which limits the temperature range in which a phase transition of zirconia occurs, thereby achieving the desired transition point not seen in conventional products. Rapid grain growth is suppressed in the temperature range before the transition point, thereby suppressing the incorporation of vacancies in the low-temperature range of 1200°C or higher and 1350°C or lower. In the high-temperature range above 1350°C, when the zirconia raw material undergoes a crystalline phase transition (for example, a phase transition from monoclinic to tetragonal or cubic), the difference in density between the phases has the effect of promoting the expulsion of voids, and it is presumed that excellent translucency can be achieved even when the holding time at the maximum sintering temperature is 2 minutes.

[0037] In the pulverization treatment, the following method is preferably used. (i) using grinding media less than 1 mm in diameter and the grinding time is 10 minutes or more, or (ii) using grinding media 1 mm or more in diameter and the grinding time is more than 40 hours.

[0038] When using grinding media with a diameter of less than 1 mm, the diameter of the grinding media is preferably 0.1 to 0.5 mm, since the desired displacement point can be easily obtained by using grinding media with a fine diameter. Commercially available grinding media with a diameter of less than 1 mm may be used. An example of a grinding device using grinding media with a diameter of less than 1 mm is a bead mill.

[0039] When using grinding media with a diameter of less than 1 mm, the grinding time is not particularly limited, but is preferably 10 minutes or more, more preferably 12 minutes or more, even more preferably 15 minutes or more, and particularly preferably 20 minutes or more, because yttria particles can be easily ground to very small sizes. The grinding time is preferably 20 hours or less, more preferably 10 hours or less, even more preferably 5 hours or less, and particularly preferably 2 hours or less. When a milling device that mills while circulating the slurry (for example, a bead mill) is used as the milling device, the milling time means the residence time of the slurry in the vessel (milling chamber).

[0040] When using grinding media with a diameter of 1 mm or more, the grinding media diameter (diameter) is preferably 1.5 mm or more, and more preferably 2.0 mm or more, since this makes it easier to increase the amount of energy used in the grinding process by extending the grinding time. Commercially available grinding media with a diameter of 1 mm or more may be used. An example of a grinding device using grinding media with a diameter of 1 mm or more is a ball mill.

[0041] When using grinding media with a diameter of 1 mm or more, the grinding time (grinding treatment time) is not particularly limited, but is preferably more than 40 hours, more preferably 55 hours or more, and even more preferably 80 hours or more, particularly preferably 100 hours or more, because the mixing of zirconia particles and yttria particles is promoted by applying an excess amount of energy compared to conventional techniques when grinding the zirconia composition, resulting in a uniform composition distribution and making it easier to obtain the desired transition point. Furthermore, the grinding treatment time is preferably 1000 hours or less, more preferably 800 hours or less, even more preferably 500 hours or less, and particularly preferably 300 hours or less.

[0042] The zirconia composition may be in the form of granules, a slurry, or the like. When the zirconia composition is in the form of a slurry, the slurry can be produced by mixing the mixed powder obtained by the pulverization treatment with a solvent (preferably water).

[0043] The average particle size of the zirconia composition after the pulverization treatment is preferably 0.2 μm or less, since the resulting sintered body will have excellent mechanical strength and translucency.

[0044] The average particle size of the zirconia particles and the yttria particles can be measured by a dynamic light scattering particle size distribution measurement method, for example, using a dynamic light scattering particle size distribution measurement device (product name "SZ-100V2") manufactured by Horiba, Ltd. A slurry diluted with water to about 0.1 mass % is irradiated with ultrasonic waves for 30 minutes, and then the average particle size can be measured on a volume basis while applying ultrasonic waves.

[0045] The zirconia composition may also contain additives such as binders, dispersants, emulsifiers, antifoaming agents, pH adjusters, lubricants, translucency adjusters, etc. The additives may be used alone or in combination of two or more. Examples of binders include polyvinyl alcohol, methyl cellulose, carboxymethyl cellulose, acrylic binders, wax binders, polyvinyl butyral, polymethyl methacrylate, and ethyl cellulose.

[0046] In order to improve translucency, the content of the binder in the zirconia composition of the present invention is preferably 10% by mass or less, more preferably 7% by mass or less, and even more preferably 5% by mass or less, relative to 100% by mass of zirconia.

[0047] Examples of the plasticizer include polyethylene glycol, glycerin, propylene glycol, and dibutyl phthalate.

[0048] Examples of dispersants include ammonium polycarboxylate (e.g., triammonium citrate), ammonium polyacrylate, acrylic copolymer resin, acrylic acid ester copolymer, polyacrylic acid, bentonite, carboxymethyl cellulose, anionic surfactants (e.g., polyoxyethylene alkyl ether phosphate esters such as polyoxyethylene lauryl ether phosphate esters), nonionic surfactants, olein glyceride, amine salt surfactants, oligosaccharide alcohols, and stearic acid.

[0049] Examples of emulsifiers include alkyl ethers, phenyl ethers, and sorbitan derivatives.

[0050] Examples of the antifoaming agent include alcohol, polyether, polyethylene glycol, silicone, and wax.

[0051] Examples of pH adjusters include ammonia and ammonium salts (including ammonium hydroxides such as tetramethylammonium hydroxide).

[0052] Examples of the lubricant include polyoxyethylene alkyl ether and wax.

[0053] Examples of the light-transmitting adjuster include aluminum oxide (Al2O3), titanium oxide (TiO2), silicon dioxide (SiO2), zircon, lithium silicate, and lithium disilicate.

[0054] The BET specific surface area of ​​the particles constituting the zirconia composition is 7.0 m when measured in accordance with JIS Z 8830:2013. 2 / g or more, and 7.5m 2 / g or more is more preferable, and 8.0m 2 / g or more is more preferable. 2 / g or more, the sintered body can be prevented from becoming cloudy when sintered. 2 / g or less, and 2 / g or less is more preferable, and 40m 2 / g or less is more preferable. 2 When the sintering temperature is 1 / g or less, the sintering temperature is less likely to be affected by temperature variations in the firing furnace. The BET specific surface area can be measured using a commercially available product such as a fully automatic specific surface area measuring device (trade name "Macsorb (registered trademark) HM model-1200", BET flow method (single-point method / multi-point method), manufactured by Mountec Co., Ltd.). For example, the BET specific surface area can be measured by the BET flow method (single-point method) using the fully automatic specific surface area measuring device. Furthermore, even if the firing time for sintering is shortened, the light transmittance of the sintered body is less likely to decrease. The "BET specific surface area" referred to here is the specific surface area measured without distinguishing between primary particles and secondary particles.

[0055] Next, the pulverized zirconia composition is subjected to a molding step to produce a molded body, which is obtained by applying an external force to the zirconia composition using a known method.

[0056] The molding method is not particularly limited, and the following methods can be used, for example. (a) slip-casting a slurry containing the zirconia composition after the pulverization treatment; (b) gel-casting the slurry containing the zirconia composition after the pulverization treatment; (c) press-molding the zirconia composition after the pulverization treatment; (d) forming a zirconia composition containing zirconia particles, yttria particles, and a resin; (e) polymerizing a zirconia composition containing zirconia particles, yttria particles, and a polymerizable monomer or oligomer; and (f) A process of additively manufacturing granules containing zirconia particles and yttria particles.

[0057] (a) Slip casting When a zirconia molded body is produced by a method including a step of slip-casting a slurry containing the zirconia composition after the pulverization treatment, the specific method of slip-casting is not particularly limited, and for example, a method in which the slurry is poured into a mold and then dried can be employed. The content of the dispersion medium in the slurry used is preferably 80% by mass or less, more preferably 50% by mass or less, and even more preferably 20% by mass or less, because this makes it easy to pour the slurry into a mold, prevents the drying process from taking a long time, and allows the mold to be used more frequently. The slurry may be poured into the mold under normal pressure, but it is preferable to pour it under pressurized conditions from the viewpoint of production efficiency.

[0058] (b) Gel casting When a zirconia molded body is produced by a method including a step of gel-casting a slurry containing the zirconia composition after the pulverization treatment, the specific method of gel-casting is not particularly limited. For example, a method can be employed in which the slurry is gelled in a mold to obtain a shaped wet body, and then the wet body is dried. The content of the dispersion medium in the slurry used is preferably 80% by mass or less, more preferably 50% by mass or less, and even more preferably 20% by mass or less, because this can prevent drying from taking a long time and can also suppress the occurrence of cracks during drying. Gelation may be achieved, for example, by adding a gelling agent, or by adding a polymerizable monomer and then polymerizing it.

[0059] There is no limitation on the type of gelling agent, and for example, a water-soluble gelling agent can be used, and specifically, agarose, gelatin, etc. can be preferably used. A single gelling agent may be used alone, or two or more types may be used in combination. The amount of gelling agent used is not particularly limited as long as problems such as cracking do not occur during sintering, but can be 10% by mass or less, 5% by mass or less, or 1% by mass or less based on the mass of the slurry after the gelling agent is blended.

[0060] The type of polymerizable monomer is not particularly limited, and examples thereof include (meth)acrylate monomers such as 2-hydroxyethyl (meth)acrylate, 3-hydroxypropyl (meth)acrylate, 4-hydroxybutyl (meth)acrylate, 6-hydroxyhexyl (meth)acrylate, 10-hydroxydecyl (meth)acrylate, propylene glycol mono(meth)acrylate, glycerol mono(meth)acrylate, and erythritol mono(meth)acrylate; and (meth)acrylamide monomers such as N-methylol (meth)acrylamide, N-hydroxyethyl (meth)acrylamide, and N,N-bis(2-hydroxyethyl) (meth)acrylamide. One type of polymerizable monomer may be used alone, or two or more types may be used in combination. The amount of polymerizable monomer used is not particularly limited as long as problems such as cracks do not occur during sintering, but can be 10% by mass or less, 5% by mass or less, or 1% by mass or less, based on the mass of the slurry after the polymerizable monomer is blended.

[0061] When gelation is carried out by polymerization of a polymerizable monomer, the polymerization is preferably carried out using a polymerization initiator. There are no particular restrictions on the type of polymerization initiator, but a photopolymerization initiator is particularly preferred. The photopolymerization initiator can be appropriately selected from photopolymerization initiators used in general industry, and photopolymerization initiators used in dental applications are particularly preferred.

[0062] Specific examples of photopolymerization initiators include (bis)acylphosphine oxides (including salts), thioxanthones (including salts such as quaternary ammonium salts), ketals, α-diketones, coumarins, anthraquinones, benzoin alkyl ether compounds, and α-aminoketone compounds. One or more photopolymerization initiators may be used alone or in combination. Among these photopolymerization initiators, it is preferable to use at least one selected from the group consisting of (bis)acylphosphine oxides and α-diketones. This allows polymerization (gelation) to occur in both the ultraviolet (including near-ultraviolet) and visible light regions. In particular, polymerization (gelation) can be sufficiently achieved using any light source, including lasers such as Ar lasers and He-Cd lasers; and lighting such as halogen lamps, xenon lamps, metal halide lamps, light-emitting diodes (LEDs), mercury lamps, and fluorescent lamps.

[0063] The drying method for drying the shaped wet body is not particularly limited, and examples thereof include natural drying, hot air drying, vacuum drying, dielectric heating drying, induction heating drying, and constant temperature and humidity drying. These may be used alone or in combination. Among these, natural drying, dielectric heating drying, induction heating drying, and constant temperature and humidity drying are preferred because they can suppress the occurrence of cracks during drying.

[0064] There are no particular limitations on the type of mold used in slip casting and gel casting, and for example, porous molds made of plaster, resin, ceramics, etc., and non-porous molds made of metal, resin, etc. can be used.

[0065] (c) Press molding In the step of press-molding the zirconia composition after the pulverization treatment, the specific method of press-molding is not particularly limited, and the press-molding can be carried out using a known press-molding machine. A specific example of the press molding method is uniaxial pressing.

[0066] Alternatively, multi-stage molding may be performed, for example, by subjecting the zirconia composition to press molding and then subjecting it to cold isostatic pressing (CIP) treatment.

[0067] The shape of the molded body is not particularly limited, and may be a disk shape, a rectangular parallelepiped shape, or a dental product shape (for example, a dental crown shape). The molded body may be, for example, a columnar zirconia molded body obtained by filling a mold with a zirconia composition (for example, granules) and compacting it with a uniaxial pressure press. The higher the surface pressure in press molding, the higher the density of the molded body. On the other hand, if the density of the zirconia molded body is too high, the zirconia calcined body will become hard. Therefore, the surface pressure in press molding when producing the zirconia molded body is preferably 30 to 200 MPa. When the surface pressure in press molding is 30 MPa or more, the zirconia molded body has excellent shape retention, and when it is 200 MPa or less, the density of the zirconia molded body does not increase too much, making it easier to prevent hardening.

[0068] The above-mentioned molded body also includes a molded body that has been densified by a high-temperature pressure treatment such as CIP (Cold Isostatic Pressing) treatment. The pressure for the CIP is preferably 30 to 200 MPa from the same viewpoint as above.

[0069] (d) Molding of a zirconia composition containing a resin When a zirconia molded body is produced by a method including a step of molding a zirconia composition containing zirconia particles, yttria particles, and a resin, the specific method for molding the zirconia composition is not particularly limited, and for example, injection molding, cast molding, extrusion molding, etc. can be used. Alternatively, the composition may be molded by fusion dynamics (FDM), inkjet printing, powder / binder lamination, or other additive manufacturing methods (e.g., 3D printing). Among these molding methods, injection molding and cast molding are preferred, with injection molding being more preferred. There is no particular limitation on the type of resin, but it is preferable to use the binders described above.

[0070] (e) Polymerization of a zirconia composition containing zirconia particles, yttria particles, and a polymerizable monomer or oligomer By polymerizing a zirconia composition containing zirconia particles, yttria particles, and a polymerizable monomer or oligomer, the polymerizable monomer or oligomer in the composition is polymerized, thereby hardening the composition. When a zirconia molded body is produced by a method including the polymerization step, the specific method is not particularly limited, and examples thereof include a method of polymerizing a zirconia composition in a mold, and a stereolithography (SLA) method using a zirconia composition. Among these, the stereolithography (SLA) method (b) is preferred. According to the stereolithography method, a shape corresponding to the desired shape of the zirconia sintered body to be finally obtained can be imparted to the zirconia molded body at the time of production, and therefore, the stereolithography method may be particularly suitable in some cases when the zirconia sintered body is used as a dental material for dental prostheses and the like. The type of polymerizable monomer is not particularly limited, and may be any of monofunctional polymerizable monomers such as monofunctional (meth)acrylates and monofunctional (meth)acrylamides, and polyfunctional polymerizable monomers such as bifunctional aromatic compounds, bifunctional aliphatic compounds, and trifunctional or higher functional compounds. One type of polymerizable monomer may be used alone, or two or more types may be used. Among these, it is preferable to use a polyfunctional polymerizable monomer, particularly when a stereolithography method is employed. The oligomer is not particularly limited as long as it is a compound in which two or more of the above polymerizable monomers are bonded and has polymerizability.

[0071] Examples of the monofunctional (meth)acrylate include (meth)acrylates having a hydroxyl group such as 2-hydroxyethyl (meth)acrylate, 2-hydroxypropyl (meth)acrylate, 3-hydroxypropyl (meth)acrylate, 4-hydroxybutyl (meth)acrylate, 6-hydroxyhexyl (meth)acrylate, 10-hydroxydecyl (meth)acrylate, propylene glycol mono(meth)acrylate, glycerol mono(meth)acrylate, and erythritol mono(meth)acrylate; methyl (meth)acrylate, ethyl (meth)acrylate, propyl (meth)acrylate, isopropyl (meth)acrylate, n-butyl (meth)acrylate, and sec-butyl (meth)acrylate. Examples of the acrylate include alkyl (meth)acrylates such as acrylate, t-butyl (meth)acrylate, isobutyl (meth)acrylate, n-hexyl (meth)acrylate, lauryl (meth)acrylate, cetyl (meth)acrylate, and stearyl (meth)acrylate; alicyclic (meth)acrylates such as cyclohexyl (meth)acrylate and isobornyl (meth)acrylate; aromatic group-containing (meth)acrylates such as benzyl (meth)acrylate and phenyl (meth)acrylate; and (meth)acrylates having functional groups such as 2,3-dibromopropyl (meth)acrylate, 3-(meth)acryloyloxypropyltrimethoxysilane, and 11-(meth)acryloyloxyundecyltrimethoxysilane. Examples of monofunctional (meth)acrylamides include (meth)acrylamide, N-(meth)acryloylmorpholine, N,N-dimethyl(meth)acrylamide, N,N-diethyl(meth)acrylamide, N,N-di-n-propyl(meth)acrylamide, N,N-di-n-butyl(meth)acrylamide, N,N-di-n-hexyl(meth)acrylamide, N,N-di-n-octyl(meth)acrylamide, N,N-di-2-ethylhexyl(meth)acrylamide, N-hydroxyethyl(meth)acrylamide, and N,N-bis(2-hydroxyethyl)(meth)acrylamide. Among these monofunctional polymerizable monomers, (meth)acrylamide is preferred because of its excellent polymerizability, and N-(meth)acryloylmorpholine, N,N-dimethyl(meth)acrylamide, and N,N-diethyl(meth)acrylamide are more preferred.

[0072] Examples of the bifunctional aromatic compound include 2,2-bis((meth)acryloyloxyphenyl)propane, 2,2-bis[4-(2-hydroxy-3-acryloyloxy-2-hydroxypropoxy)phenyl]propane, 2,2-bis[4-(2-hydroxy-3-methacryloyloxypropoxy)phenyl]propane (commonly known as "Bis-GMA"), 2,2-bis(4-(meth)acryloyloxyethoxyphenyl)propane, 2,2-bis(4-(meth)acryloyloxypolyethoxyphenyl)propane, 2,2-bis(4-(meth)acryloyloxydiethoxyphenyl)propane, 2,2-bis(4-(meth)acryloyloxytetraethoxyphenyl)propane, 2,2-bis(4-(meth)acryloyloxypentaethoxyphenyl)propane, 2, Examples of (meth)acrylates include 2-bis(4-(meth)acryloyloxydipropoxyphenyl)propane, 2-(4-(meth)acryloyloxydiethoxyphenyl)-2-(4-(meth)acryloyloxyethoxyphenyl)propane, 2-(4-(meth)acryloyloxydiethoxyphenyl)-2-(4-(meth)acryloyloxytriethoxyphenyl)propane, 2-(4-(meth)acryloyloxydipropoxyphenyl)-2-(4-(meth)acryloyloxytriethoxyphenyl)propane, 2,2-bis(4-(meth)acryloyloxypropoxyphenyl)propane, 2,2-bis(4-(meth)acryloyloxyisopropoxyphenyl)propane, and 1,4-bis(2-(meth)acryloyloxyethyl)pyromellitate. Among these, Bis-GMA and 2,2-bis(4-(meth)acryloyloxypolyethoxyphenyl)propane are preferred because of their excellent polymerizability and the mechanical strength of the resulting zirconia molded article. Of the 2,2-bis(4-(meth)acryloyloxypolyethoxyphenyl)propanes, 2,2-bis(4-methacryloyloxypolyethoxyphenyl)propane (average number of moles of ethoxy groups added: 2.6, commonly known as "D-2.6E") is preferred.

[0073] Examples of the bifunctional aliphatic compounds include glycerol di(meth)acrylate, ethylene glycol di(meth)acrylate, diethylene glycol di(meth)acrylate, triethylene glycol di(meth)acrylate, propylene glycol di(meth)acrylate, butylene glycol di(meth)acrylate, neopentyl glycol di(meth)acrylate, polyethylene glycol di(meth)acrylate, 1,3-butanediol di(meth)acrylate, and 1,4-butanediol di(meth)acrylate. Examples of (meth)acrylates include triethylene glycol dimethacrylate (TEGDMA) and UDMA, which are preferred because of their excellent polymerizability and the mechanical strength of the resulting zirconia molded body.

[0074] Examples of tri- or higher functional compounds include (meth)acrylates such as trimethylolpropane tri(meth)acrylate, trimethylolethane tri(meth)acrylate, trimethylolmethane tri(meth)acrylate, pentaerythritol tri(meth)acrylate, pentaerythritol tetra(meth)acrylate, dipentaerythritol penta(meth)acrylate, N,N-(2,2,4-trimethylhexamethylene)bis[2-(aminocarboxy)propane-1,3-diol]tetra(meth)acrylate, and 1,7-diacryloyloxy-2,2,6,6-tetra(meth)acryloyloxymethyl-4-oxaheptane. Among these, N,N-(2,2,4-trimethylhexamethylene)bis[2-(aminocarboxy)propane-1,3-diol]tetramethacrylate and 1,7-diacryloyloxy-2,2,6,6-tetraacryloyloxymethyl-4-oxaheptane are preferred because of their excellent polymerizability and the mechanical strength of the resulting zirconia molded body.

[0075] In any of the above methods, the polymerization of the composition is preferably carried out using a polymerization initiator, and the composition preferably further contains a polymerization initiator. There are no particular limitations on the type of polymerization initiator, but a photopolymerization initiator is particularly preferred. The photopolymerization initiator can be appropriately selected from photopolymerization initiators used in general industry, and photopolymerization initiators used in dental applications are particularly preferred. Specific examples of photopolymerization initiators are the same as those described above in the explanation of gel casting.

[0076] When a zirconia molded body is produced by stereolithography using a zirconia composition, the specific method of stereolithography is not particularly limited, and any known method can be appropriately employed for stereolithography. For example, a method can be employed in which a liquid composition is photopolymerized using an optical shaping device with ultraviolet light, a laser, or the like to sequentially form layers having a desired shape, thereby obtaining the desired zirconia molded body.

[0077] In order to further improve the density of the zirconia molded body, which is a cured product, the zirconia molded body may be subjected to a humidification treatment and then a CIP treatment. When press molding is performed, a powder containing zirconia particles may be subjected to a humidification treatment before press molding, followed by press molding. The humidification treatment may be performed by any known method without any limitation, such as spraying water with a spray bottle or using a hygrostat or thermo-hygrostat. The amount of moisture increase due to the humidification treatment depends on the average particle size of the zirconia particles contained, the average particle size of the stabilizer particles, etc., but is preferably greater than 2% by mass, more preferably greater than 3% by mass, even more preferably greater than 4% by mass, and particularly preferably greater than 5% by mass, based on the mass of the powder before humidification (powder before humidification treatment) and the molded body. It is also preferably 15% by mass or less, more preferably 13% by mass or less, and even more preferably 11% by mass or less. The amount of moisture increase due to the humidification treatment can be calculated as a percentage by subtracting the mass of the powder before humidification and the molded body from the mass of the wet powder (powder after humidification treatment) and the molded body, and dividing the result by the mass of the powder before humidification and the molded body. The pressure for the CIP treatment is the same as that described above in the description of press molding.

[0078] (f) A step of additively manufacturing granules containing zirconia particles and yttria particles The method for producing granules containing zirconia particles and yttria particles is not particularly limited. For example, a method of forming a slurry and then drying it with a spray dryer to form granules can be used in powder additive manufacturing. There are no particular limitations on the method of powder additive manufacturing, but examples include the powder bed method, SLS method (selective laser sintering), SLM method (selective laser melting), electron beam method, arc discharge method, binder jet method, etc. For methods in which it is better not to use organic substances during additive manufacturing, it is preferable not to use organic substances even in the granule manufacturing stage.

[0079] Next, the compact is calcined in a calcination step to obtain the calcined zirconia body of the present invention.

[0080] The calcination temperature (maximum calcination temperature) in the calcination step is preferably 800°C or higher, more preferably 850°C or higher, even more preferably 900°C or higher, and particularly preferably 950°C or higher, in order to ensure a semi-sintered state using the above-mentioned specific zirconia composition. In addition, in order to ensure workability, the calcination temperature is preferably 1200°C or lower, more preferably 1150°C or lower, even more preferably 1100°C or lower, and particularly preferably 1050°C or lower. That is, in the method for producing the zirconia calcined body of the present invention, the temperature is preferably 800°C to 1200°C.

[0081] The holding time (holding time) at the maximum calcination temperature is preferably 30 minutes to 6 hours, so that the material can be semi-sintered. The rate of temperature increase up to the maximum calcination temperature and the rate of temperature decrease from the maximum calcination temperature are preferably 300° C. / min or less. In a preferred embodiment, the rate of temperature rise to the maximum calcination temperature when calcining the zirconia molded body of the present invention is not particularly limited, but is preferably 0.1°C / min or more, more preferably 0.2°C / min or more, and even more preferably 0.5°C / min or more, and is preferably 50°C / min or less, more preferably 30°C / min or less, and even more preferably 20°C / min or less. A temperature rise rate of at least the above lower limit improves productivity, while a temperature rise rate of not more than the above upper limit can suppress the difference in volume between the inside and outside of the zirconia molded body or the zirconia calcined body, and can also suppress rapid decomposition of organic matter contained in the zirconia molded body, thereby suppressing cracking and fracture.

[0082] [Zirconia sintered body] Next, the zirconia sintered body will be described. The zirconia sintered body can be obtained by firing the zirconia calcined body obtained as described above.

[0083] The content of the stabilizer (yttria and stabilizers other than yttria) in the zirconia sintered body of the present invention is the same as the content of the stabilizer in the zirconia calcined body.

[0084] The zirconia sintered body of the present invention may contain a fluorescent agent. The fluorescent agent is the same as the fluorescent agent in the zirconia calcined body. In this specification, regarding the fluorescent agent, "based on 100% by mass of zirconia contained in the zirconia calcined body" can be read as "based on 100% by mass of zirconia contained in the zirconia sintered body."

[0085] The zirconia sintered body of the present invention may contain a colorant. Examples of the colorant include the same colorants as those used in the zirconia calcined body. The content of the colorant in the zirconia sintered body is not particularly limited and can be adjusted appropriately depending on the type of colorant and the application of the zirconia sintered body, but from the viewpoint of favorable use as a dental prosthesis, the content is preferably 0.001% by mass or more, more preferably 0.005% by mass or more, and even more preferably 0.01% by mass or more, calculated as the oxide of the metal element contained in the colorant, relative to 100% by mass of zirconia contained in the zirconia sintered body. Moreover, the content of the colorant is preferably 5% by mass or less, more preferably 1% by mass or less, even more preferably 0.5% by mass or less, and may be 0.1% by mass or less, or even 0.05% by mass or less, calculated as the oxide of the metal element contained in the colorant.

[0086] In order to adjust the translucency of the zirconia sintered body of the present invention, the zirconia sintered body of the present invention may contain a translucency adjuster. Examples of the translucency adjuster include the same ones as those used in the zirconia calcined body. The content of the translucency adjuster in the zirconia sintered body is not particularly limited, and can be appropriately adjusted depending on the type of translucency adjuster and the application of the zirconia sintered body. However, from the viewpoint of favorable use as a dental prosthesis, the content is preferably 0.1% by mass or less relative to 100% by mass of zirconia contained in the zirconia sintered body.

[0087] The relative density of the zirconia sintered body is preferably 99.0% or more, more preferably 99.2% or more, and even more preferably 99.5% or more. The relative density can be calculated as the ratio of the actual density measured by Archimedes' method to the theoretical density.

[0088] The density of zirconia sintered body is set to 5.80 g / cm because the higher the density, the fewer internal voids there are and the less light scattering there is, which improves the translucency. 3 It is preferable that the concentration is 5.82 g / cm or more. 3 More preferably, it is 5.87 g / cm or more. 3 It is more preferable that the zirconia sintered body contains substantially no voids.

[0089] The content of zirconia and stabilizer in the zirconia sintered body is the same as the content in the composition before the sintered body is produced and / or in the calcined body.

[0090] The higher the strength of the zirconia sintered body, the better. For example, the biaxial bending strength is preferably 800 MPa or more, more preferably 820 MPa or more, and even more preferably 840 MPa or more. The biaxial bending strength can be measured in accordance with ISO 6872:2015.

[0091] [Method of manufacturing zirconia sintered body] The method for producing the zirconia sintered body of the present invention includes a method for producing a zirconia sintered body by firing the above-mentioned zirconia calcined body. A preferred production method includes a step of firing the above-mentioned zirconia calcined body under normal pressure at 1350° C. to 1700° C. By using such a production method, it is possible to easily produce the zirconia sintered body of the present invention, which has a relative density of 99.0% or more even during high-speed firing and has excellent translucency. Furthermore, the manufacturing method of the present invention makes it possible to easily manufacture a zirconia sintered body that has excellent translucency even after sintering for a short time, such as a holding time at the maximum sintering temperature of 10 minutes or less (for example, 2 minutes).

[0092] When the zirconia calcined body of the present invention is fired to produce a sintered body, the maximum sintering temperature is preferably set to a condition that maximizes the translucency of the zirconia sintered body. From the viewpoint of easily obtaining the desired zirconia sintered body under normal pressure, the maximum sintering temperature is preferably above 1200°C, more preferably 1250°C or higher, and even more preferably 1300°C or higher. The maximum sintering temperature is preferably 1700°C or lower, more preferably 1650°C or lower, and even more preferably 1600°C or lower. By setting the maximum sintering temperature to be equal to or higher than the above lower limit and equal to or lower than the above upper limit, sintering can be sufficiently carried out, and a dense sintered body can be easily obtained. In addition, by setting the maximum sintering temperature to be equal to or lower than the above upper limit, deactivation of the fluorescent agent can be suppressed.

[0093] When producing a sintered body, there is no particular limitation on the holding time at the maximum sintering temperature, but in order to be able to efficiently and stably obtain the desired zirconia sintered body with good productivity, the holding time at the maximum sintering temperature is preferably 10 minutes or less, more preferably 5 minutes or less, even more preferably 3 minutes or less, and particularly preferably 2 minutes or less. The retention time is preferably 30 seconds or more, more preferably 45 seconds or more, and even more preferably 1 minute or more.

[0094] The temperature drop rate in the firing step is preferably set so as to shorten the time required for the firing step. For example, the temperature rise rate can be set so as to reach the maximum sintering temperature in the shortest time depending on the performance of the firing furnace. The temperature drop rate from the maximum sintering temperature is preferably set so as not to cause defects such as cracks in the sintered body. For example, after heating is completed, the sintered body can be allowed to cool at room temperature.

[0095] The calcination and firing in the present invention can be carried out using a firing furnace. There are no particular limitations on the type of firing furnace, and for example, electric furnaces and degreasing furnaces commonly used in industry can be used. A commercially available dental baking oven (for example, "Sintra CS" (product name, manufactured by Shenpaz)) may be used.

[0096] The zirconia sintered body of the present invention can be produced without HIP treatment. However, as an optional step, HIP treatment can be performed after sintering under normal pressure to further improve the translucency and mechanical strength. Hereinafter, the sintered body obtained by sintering at the above-mentioned maximum sintering temperature (sintered body before HIP treatment) will be referred to as the "primary sintered body", and the sintered body after HIP treatment will be referred to as the "HIP-treated sintered body". The HIP treatment can be carried out using a known hot isostatic press (HIP) device.

[0097] When the primary sintered body is subjected to HIP treatment, the HIP pressure is not particularly limited, and since a dense sintered body with high strength can be obtained, the HIP pressure is preferably 100 MPa or more, more preferably 125 MPa or more, and even more preferably 130 MPa or more. The upper limit of the HIP pressure is not particularly limited, but can be, for example, 400 MPa or less, 300 MPa or less, or even 200 MPa or less.

[0098] When the primary sintered body is subjected to HIP treatment, the temperature rise rate is not particularly limited, but is preferably 0.1°C / min or more, more preferably 0.2°C / min or more, and even more preferably 0.5°C / min or more. The temperature rise rate is preferably 50°C / min or less, more preferably 30°C / min or less, and even more preferably 20°C / min or less. By setting the temperature rise rate at or above the lower limit, productivity is improved.

[0099] When the primary sintered body is subjected to HIP treatment, the HIP time (the time during which the maximum pressure and temperature are maintained) is not particularly limited, and since a dense zirconia sintered body with high strength can be obtained, the HIP treatment time is preferably 5 minutes or more, more preferably 10 minutes or more, and even more preferably 30 minutes or more. Moreover, the HIP treatment time is preferably 10 hours or less, more preferably 6 hours or less, and even more preferably 3 hours or less.

[0100] In the method for producing a zirconia sintered body of the present invention, when the primary sintered body is subjected to HIP treatment, the pressure medium is not particularly limited, and from the viewpoint of having little effect on zirconia, the pressure medium can be at least one selected from the group consisting of oxygen, oxygen containing 3% hydrogen, air, and an inert gas (e.g., nitrogen, argon, etc.). When the primary sintered body is subjected to HIP treatment in an oxygen-mixed gas atmosphere, the oxygen concentration is not particularly limited, but can be, for example, more than 0% and 20% or less. When an oxygen mixed gas is used, at least one inert gas (such as nitrogen or argon) can be selected as the gas other than oxygen.

[0101] If the HIP treatment is performed in a reducing atmosphere, such as using an inert gas, blackening may occur due to oxygen defects. In this case, in order to remove the blackening, it is preferable to include a step of heat treatment at 1650°C or less in the air or in an oxygen-rich atmosphere (hereinafter also referred to as "tempering treatment") after the HIP treatment, and from the viewpoint of efficient heat treatment, it is more preferable to perform the heat treatment in an oxygen-rich atmosphere. An oxygen-rich atmosphere means that the oxygen concentration is greater than the oxygen concentration in the atmosphere. The oxygen-rich atmosphere is not particularly limited as long as the oxygen concentration is greater than 21% and less than or equal to 100%, and can be appropriately selected from this range. For example, the oxygen concentration may be 100%. If the HIP treatment is performed in a reducing atmosphere, such as using an inert gas, black discoloration may occur due to oxygen defects. In this case, to remove the black discoloration, it is preferable to include a step of heat treatment at 1650°C or less in air or in an oxygen-rich atmosphere (hereinafter also referred to as "tempering treatment") after the HIP treatment step, and from the viewpoint of efficient heat treatment, it is more preferable to perform the heat treatment in an oxygen-rich atmosphere. An oxygen-rich atmosphere means that the oxygen concentration is higher than that of air. The oxygen-rich atmosphere is not particularly limited as long as the oxygen concentration is greater than 21% and less than or equal to 100%, and can be appropriately selected from this range. For example, the oxygen concentration may be 100%.

[0102] The zirconia sintered body of the present invention is not particularly limited as long as it exhibits the effects of the present invention, and may be a primary sintered body, a HIP-treated sintered body, or a sintered body after tempering treatment.

[0103] The temperature of the heat treatment in air or in an oxygen-rich atmosphere can be changed appropriately depending on the aesthetics of the zirconia sintered body (for example, the shade of a dental prosthesis). In a preferred embodiment, the temperature of the heat treatment in the air or in an oxygen-excess atmosphere is preferably 1650°C or less, more preferably 1600°C or less, and even more preferably 1550°C or less, from the viewpoint of the aesthetics of the zirconia sintered body. In another preferred embodiment, the temperature of the heat treatment in the air or in an oxygen-excess atmosphere is preferably 1400°C or less, more preferably 1300°C or less, and even more preferably 1200°C or less, from the viewpoint of the aesthetics of the zirconia sintered body. Furthermore, in any embodiment, the temperature of the heat treatment is preferably 500°C or higher, more preferably 600°C or higher, and even more preferably 700°C or higher.

[0104] A general dental zirconia firing furnace can be used for the tempering treatment. Commercially available dental zirconia firing furnaces may be used. Examples of commercially available dental zirconia firing furnaces include Noritake Katana (registered trademark) F-1, F-1N, and F-2 (all manufactured by SK Medical Electronics Co., Ltd.).

[0105] A zirconia sintered body obtained by firing the zirconia calcined body of the present invention can be suitably used for dental products. Examples of dental products include copings, frameworks, crowns, crown bridges, abutments, implants, implant screws, implant fixtures, implant bridges, implant bars, brackets, denture bases, inlays, onlays, orthodontic wires, and laminate veneers. By using the zirconia calcined body of the present invention for parts such as implant screws and implant fixtures, discoloration of the gums that would occur if metal materials were used can be suppressed, resulting in excellent aesthetics. For example, dental products can be obtained by cutting the zirconia calcined body of the present invention and then firing it. It is preferable to use a CAD / CAM system for the cutting process. The CAD / CAM system is not particularly limited, and any known device can be used, such as the CAD / CAM system "Katana (registered trademark) CAD / CAM system" manufactured by Kuraray Noritake Dental Co., Ltd.

[0106] The present invention includes embodiments in which all or part of the above-described configurations are combined in various ways within the scope of the technical concept of the present invention, as long as the effects of the present invention are achieved. [Example]

[0107] Next, the present invention will be explained in more detail by way of examples, but the present invention is not limited to these examples in any way, and many modifications within the technical scope of the present invention are possible by those skilled in the art.

[0108] [Example 1] Commercially available zirconia powder (YO: 0 mol%) and commercially available yttria powder were added to water. These were then placed in a ball mill container along with zirconia grinding media (diameter: 2 mm) and ground for 96 hours in the ball mill to obtain a slurry (average particle size: 0.2 μm or less).

[0109] Subsequently, an organic binder was added to the obtained slurry, and the mixture was mixed and stirred. The stirred slurry was dried and granulated using a spray dryer to obtain a powder. This powder was poured into a cylindrical mold and uniaxially pressed at a pressure of 200 MPa to obtain a compact. The obtained compact was placed in an electric furnace, heated from room temperature at 10°C / min, and held at 500°C for 2 hours to degrease the organic components. Thereafter, the temperature was raised at 10°C / min, held at 955°C for 2 hours, and then slowly cooled at -10°C / min to obtain a zirconia calcined body.

[0110] [Example 2 and Comparative Examples 1 and 2] A zirconia calcined body was produced in the same manner as in Example 1, except that the conditions were changed as shown in Table 1. In Example 2 and Comparative Examples 1 and 2, the same yttria raw material as in Example 1 was used.

[0111] [Table 1] In the table, the content of yttria means the ratio (mol %) of the number of moles of yttria to the total number of moles of zirconia and yttria. In the table, "-" means that no grinding treatment was performed. The yttria content refers to the value in the slurry, the compact, the calcined body, and the sintered body. In addition, in the table, the commercially available product according to Comparative Example 1 was a product manufactured by Tosoh Corporation (product name "Zpex").

[0112] <Method for measuring density and method for calculating the rate of density change when manufacturing zirconia sintered body> The zirconia calcined bodies of Examples 1 and 2 and Comparative Examples 1 and 2 were pulverized under the conditions shown in Table 1 and formed into disk shapes with a diameter of approximately 18 mm and a thickness of approximately 1.2 mm. The formed bodies were held at a maximum calcination temperature of 1000°C for 2 hours and slowly cooled at a rate of -0.4°C / min to obtain calcined zirconia bodies.

[0113] Six target temperatures were set at 50°C intervals from 1150°C to 1400°C, and the zirconia calcined bodies of each example and comparative example were heated at theoretical density from room temperature to each target temperature in a dental firing furnace (product name "Sintra CS" (Shenpaz)), held at the target temperature for 10 minutes, and then cooled to 25°C, obtaining six types of samples (zirconia sintered bodies) with different target temperatures (maximum sintering temperatures). The temperature reduction was set to -200°C / min up to 950°C, after which the firing furnace was opened and the samples were allowed to cool. The temperature reduction process was performed under the same conditions for all samples. The mass of the obtained zirconia sintered body was measured using an electronic balance, and the thickness and diameter of each sample were accurately measured using a micrometer. The mass was then measured using a precision balance, and the mass was calculated by dividing the mass of the calcined body by the volume of the calcined body (arithmetic mean value of n = 3). The temperature range of the target temperature from 1150°C to 1400°C was divided into intervals of 50°C each, and the six samples were used to calculate the change in density between the calcined body at the upper limit temperature and the lower limit temperature in the nth interval (n is an integer of 1 or more), Δρ n When the temperature change is ΔT, the rate of density change in the nth section in the temperature range between 1200°C and 1350°C is Δρ n / ΔT and the rate of density change in the n+1th section Δρ n+1 The change in ΔT was calculated. The results are shown in Table 2.

[0114] [Table 2] In the table, the unit of density is g / cm 3 Represents.

[0115] <Evaluation of the Translucency of Zirconia Sintered Body (Measurement of ΔL*(WB))> The zirconia calcined bodies of each Example and Comparative Example were subjected to short-time firing in a dental firing furnace (product name "Sintar CS" (manufactured by Shenpaz)) at a temperature rise rate of 350°C / min at 1580°C for 2 minutes. The obtained zirconia sintered bodies were each polished into a flat plate sample with a thickness of 1.0 mm to be used as a sample for measuring translucency. The translucency of the sample was measured using a spectrophotometer (product name "Crystal Eye") manufactured by Olympus Corporation, with a measurement mode of 7-band LED light source. Specifically, the lightness (LW*) of a flat sample of zirconia sintered body was measured against a white background to determine its translucency. The lightness (LB*) of the same sample was measured against a black background using the same measuring device, measuring mode, and light source. The difference between the two (ΔL* = (LW*) - (LB*)) was defined as the light translucency (ΔL*(WB)) (arithmetic mean of n = 3). The L* value is the L* value of the chromaticity (color space) in the L*a*b* color system (JIS Z 8781-4:2013). A sintered body was considered to pass the test when its light transmittance ΔL*(WB) was 13 or more. The results are shown in Table 1.

[0116] <Calculation method for relative density of zirconia sintered body> The zirconia calcined bodies of each Example and Comparative Example were subjected to short-time firing in a dental firing furnace (product name "Sintar CS" (manufactured by Shenpaz)) at a temperature rise rate of 350°C / min at 1580°C for 2 minutes. The obtained zirconia sintered bodies were each polished into a flat plate sample with a thickness of 1.0 mm, which was used as a density measurement sample, and the actual density was measured by the Archimedes method. The relative density was calculated as the ratio of the actual density measured by the Archimedes method to the theoretical density. The results are shown in Table 1.

[0117] As described above, by using the zirconia calcined body of the present invention, a zirconia sintered body having a relative density of 99.0% or more and excellent translucency was obtained through rapid sintering with a rapid temperature increase of 350°C / min. In the comparative examples, it was not possible to obtain a zirconia sintered body that reached the theoretical density and had excellent translucency. [Industrial Applicability]

[0118] The zirconia calcined body of the present invention is useful for producing dental products for treatment in dental clinics.

Claims

1. Contains zirconia and yttria, Six target temperatures were set from 1150°C to 1400°C in 50°C increments. Six samples were prepared by heating from a temperature range of 400°C or less at a heating rate of 350°C / min to six different target temperatures, then holding the samples at each target temperature for 10 minutes, and then cooling the samples to 25°C. The temperature range of the target temperature from 1150°C to 1400°C was divided into intervals of 50°C each, and the six samples were used to calculate the change in density of the calcined body at the upper limit temperature and the lower limit temperature of the nth interval (n is an integer of 1 or more). n When the temperature change amount is ΔT, in the temperature range of 1200°C or more and 1350°C or less, ΔT=50°C, and the rate of density change in the nth section Δρ n / ΔT and the rate of density change in the n+1th section Δρ n+1 / ΔT and the change amount ((Δρ n+1 / ΔT)-(Δρ n / ΔT)) has a displacement point at which the maximum value is 0.010 or more, A dental zirconia calcined body, having an yttria content of 2.5 mol % or more and 7.5 mol % or less relative to the total molar amount of zirconia and yttria.

2. 2. The zirconia calcined body according to claim 1, wherein the content of yttria is 3.5 mol % or more and 7.5 mol % or less based on the total moles of zirconia and yttria.

3. The density at the temperature (°C) of the transition point is 4.5 g / cm 3 The zirconia calcined body according to claim 1 or 2, wherein:

Citation Information

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