WO2018105279A1 - Verre optique, préforme, et élément optique - Google Patents
Verre optique, préforme, et élément optique Download PDFInfo
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- WO2018105279A1 WO2018105279A1 PCT/JP2017/039487 JP2017039487W WO2018105279A1 WO 2018105279 A1 WO2018105279 A1 WO 2018105279A1 JP 2017039487 W JP2017039487 W JP 2017039487W WO 2018105279 A1 WO2018105279 A1 WO 2018105279A1
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Classifications
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- C—CHEMISTRY; METALLURGY
- C03—GLASS; MINERAL OR SLAG WOOL
- C03C—CHEMICAL COMPOSITION OF GLASSES, GLAZES OR VITREOUS ENAMELS; SURFACE TREATMENT OF GLASS; SURFACE TREATMENT OF FIBRES OR FILAMENTS MADE FROM GLASS, MINERALS OR SLAGS; JOINING GLASS TO GLASS OR OTHER MATERIALS
- C03C3/00—Glass compositions
- C03C3/04—Glass compositions containing silica
- C03C3/062—Glass compositions containing silica with less than 40% silica by weight
- C03C3/064—Glass compositions containing silica with less than 40% silica by weight containing boron
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- C—CHEMISTRY; METALLURGY
- C03—GLASS; MINERAL OR SLAG WOOL
- C03C—CHEMICAL COMPOSITION OF GLASSES, GLAZES OR VITREOUS ENAMELS; SURFACE TREATMENT OF GLASS; SURFACE TREATMENT OF FIBRES OR FILAMENTS MADE FROM GLASS, MINERALS OR SLAGS; JOINING GLASS TO GLASS OR OTHER MATERIALS
- C03C3/00—Glass compositions
- C03C3/12—Silica-free oxide glass compositions
- C03C3/16—Silica-free oxide glass compositions containing phosphorus
- C03C3/19—Silica-free oxide glass compositions containing phosphorus containing boron
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- C—CHEMISTRY; METALLURGY
- C03—GLASS; MINERAL OR SLAG WOOL
- C03C—CHEMICAL COMPOSITION OF GLASSES, GLAZES OR VITREOUS ENAMELS; SURFACE TREATMENT OF GLASS; SURFACE TREATMENT OF FIBRES OR FILAMENTS MADE FROM GLASS, MINERALS OR SLAGS; JOINING GLASS TO GLASS OR OTHER MATERIALS
- C03C3/00—Glass compositions
- C03C3/12—Silica-free oxide glass compositions
- C03C3/16—Silica-free oxide glass compositions containing phosphorus
- C03C3/21—Silica-free oxide glass compositions containing phosphorus containing titanium, zirconium, vanadium, tungsten or molybdenum
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- C—CHEMISTRY; METALLURGY
- C03—GLASS; MINERAL OR SLAG WOOL
- C03C—CHEMICAL COMPOSITION OF GLASSES, GLAZES OR VITREOUS ENAMELS; SURFACE TREATMENT OF GLASS; SURFACE TREATMENT OF FIBRES OR FILAMENTS MADE FROM GLASS, MINERALS OR SLAGS; JOINING GLASS TO GLASS OR OTHER MATERIALS
- C03C4/00—Compositions for glass with special properties
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- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B1/00—Optical elements characterised by the material of which they are made; Optical coatings for optical elements
Definitions
- the present invention relates to an optical glass, a preform, and an optical element.
- a phosphoric acid system having a refractive index (n d ) of 1.55 to 1.70, an Abbe number ( ⁇ d ) of 45 or more and 75 or less, and containing no fluorine Improvements in the workability of glass have increased greatly.
- a phosphoric acid-based glass containing no fluorine a glass composition represented by Patent Document 1 is known.
- Optical glass is used for various optical devices, so it is polished and washed.
- abrasives and detergents are used in the cleaning process, and it is said that glass having poor chemical durability, particularly acid resistance, is likely to be scratched.
- a material with a high degree of wear is required to be as small as possible because it becomes difficult to handle when processing.
- the glass described in Patent Document 1 sufficiently satisfies such a requirement.
- the present invention has been made in view of the above-mentioned problems, and its object is to polish an optical glass having a refractive index (n d ) and an Abbe number ( ⁇ d ) within desired ranges. It is easy to process the glass in the cleaning process and to obtain a glass surface that is not easily damaged during each glass process.
- the present inventors have conducted intensive test studies.
- the P 2 O 5 component is the main component
- the B 2 O 3 component, the SrO component, and the BaO component are used in combination
- the SrO component When the mass ratio of the B 2 O 3 component is a predetermined amount, it is possible to obtain a glass with good acid resistance by the powder method and low abrasion degree while obtaining a desired high refractive index and high dispersion.
- the headline and the present invention were completed. Specifically, the present invention provides the following.
- An optical element comprising the optical glass according to any one of (1) to (5).
- an optical glass having a refractive index (n d ) and an Abbe number ( ⁇ d ) within desired ranges and good chemical durability (acid resistance) by a powder method can be obtained.
- the P 2 O 5 component is 35.0 to 65.0%
- the B 2 O 3 component is more than 0% to 20.0
- the BaO component is more than 0% to 30.0% by mass. % of SrO component containing 0% super to 35.0%
- the mass ratio (B 2 O 3 / SrO) is 0 greater than the refractive index (n d) 1.55 - 1.70
- chemical durability (acid resistance) by the powder method is from the first grade to the fifth grade.
- a P 2 O 5 component, a B 2 O 3 component, a BaO component, and a SrO component are contained as essential components, and the mass ratio (B 2 O 3 / SrO) is adjusted to a predetermined amount to obtain a desired amount.
- An optical glass with good acid resistance can be obtained while the refractive index and Abbe number are obtained.
- each component constituting the optical glass of the present invention The composition range of each component constituting the optical glass of the present invention is described below. In the present specification, unless otherwise specified, the content of each component is all expressed in mass% with respect to the total amount of glass in an oxide equivalent composition.
- the “oxide equivalent composition” means that the oxide, composite salt, metal fluoride, etc. used as the raw material of the glass component of the present invention are all decomposed and changed into oxides when melted. It is the composition which described each component contained in glass by making the total substance amount of the said production
- the P 2 O 5 component is an essential component, a main component that forms glass, and a component that increases the viscosity of the glass and increases the stability of the glass.
- the content of P 2 O 5 component is too small, since there is a possibility that the stability of the fear and glass viscosity decreases with glass becomes unstable to deteriorate, the optical glass of the present invention, the P 2 O 5 component
- the content is preferably 35.0% or more, more preferably 38.0% or more, and further preferably 40.0% or more.
- the content of the P 2 O 5 component is too large, the refractive index is lowered.
- the content of the P 2 O 5 component is preferably 65.0% or less, more preferably 62.0% or less. More preferably, it is 60.0% or less, and further preferably 58.0% or less.
- the P 2 O 5 component Al (PO 3 ) 3 , Ca (PO 3 ) 2 , Ba (PO 3 ) 2 , BPO 4 , H 3 PO 4 or the like can be used as a raw material.
- the B 2 O 3 component is an essential component that is indispensable as a glass-forming oxide in the optical glass of the present invention containing a large amount of rare earth oxides.
- the meltability of the glass can be enhanced by containing more than 0% of the B 2 O 3 component. Therefore, the content of the B 2 O 3 component is preferably more than 0%, more preferably 1.0% or more, and further preferably more than 2.0%.
- the deterioration of chemical durability can be suppressed by making the content of the B 2 O 3 component 20.0% or less. Therefore, the content of the B 2 O 3 component is preferably 18.0% or less, more preferably less than 15.0%, and even more preferably less than 13.0%.
- H 3 BO 3 , Na 2 B 4 O 7 , Na 2 B 4 O 7 .10H 2 O, BPO 4 or the like can be used as a raw material.
- the BaO component has an effect of increasing the refractive index of the glass and improving the stabilization of the glass, and is an essential component in the present invention. Therefore, the content of the BaO component is preferably more than 0%, more preferably more than 1.0%, still more preferably more than 1.5%. On the other hand, if the content of the BaO component is too large, the acid resistance deteriorates and the degree of wear increases, so that it becomes difficult to improve the workability of the optical glass of the present invention. Therefore, the content of the BaO component is preferably 30.0% or less, more preferably 25.0% or less, and even more preferably 20.0% or less. As the BaO component, BaCO 3 , Ba (NO 3 ) 2 , Ba (PO 3 ) 2 , BaF 2 and the like can be used as raw materials.
- the SrO component has an effect of reducing the degree of wear while maintaining a desired refractive index and dispersion, and is an essential component in the present invention. Therefore, the content of the SrO component is preferably more than 0%, more preferably more than 1.5%, still more preferably more than 3.0%. On the other hand, when there is too much content of a SrO component, acid resistance will deteriorate and glass will become unstable. Therefore, the content of the SrO component is preferably 35.0% or less, more preferably 30.0% or less, more preferably 28.0% or less, more preferably 26.0% or less, and further preferably 25.0%. % Or less.
- Sr (NO 3 ) 2 , SrF 2, Sr (PO 3 ) 2 or the like can be used as a raw material.
- the ratio (mass ratio) of the content of the B 2 O 3 component to the content of the SrO component is preferably more than 0, because a glass with a high degree of wear can be obtained. Therefore, the mass ratio (B 2 O 3 / SrO) is preferably more than 0, more preferably 0.05 or more, and still more preferably 0.11 or more.
- the mass ratio is less than 1.80, the acid resistance can be improved. Therefore, it is preferably less than 1.80, more preferably less than 1.70, more preferably less than 1.50, Preferably it is less than 1.30, more preferably less than 1.15, and most preferably less than 1.11.
- the SiO 2 component When the SiO 2 component is contained in an amount exceeding 0%, the viscosity of the molten glass can be increased, the coloring of the glass can be reduced, and the devitrification resistance can be increased.
- a stable glass can be obtained by setting the content of the SiO 2 component to 10.0% or less. Therefore, the content of the SiO 2 component is preferably 10.0% or less, more preferably less than 5.0%, and still more preferably less than 3.0%.
- SiO 2 component SiO 2 , K 2 SiF 6 , Na 2 SiF 6 or the like can be used as a raw material.
- the MgO component is an optional component that can reduce the acid-resistant weight loss rate and reduce the degree of wear when it is contained in excess of 0%.
- the content of the MgO component is preferably 15.0% or less, more preferably less than 13.0%, and even more preferably less than 10.0%.
- MgCO 3 , MgF 2 , MgO, 4MgCO 3 .Mg (OH) 2 or the like can be used as a raw material.
- the CaO component is an optional component that can increase the meltability of the glass raw material and the devitrification resistance of the glass when it is contained in excess of 0%.
- the content of the CaO component is preferably 15.0% or less, more preferably less than 13.0%, and even more preferably less than 11.0%.
- CaO component CaCO 3 , CaF 2 , or the like can be used as a raw material.
- the ZnO component is an optional component that increases the devitrification resistance and can lower the glass transition point, reduce the specific gravity, and increase the chemical durability when it is contained in excess of 0%. Therefore, the content of the ZnO component is preferably more than 0%, more preferably more than 0.5%, still more preferably more than 1.0%, and even more preferably more than 2.0%. On the other hand, low dispersion can be maintained by making the content of the ZnO component 25.0% or less. Therefore, the content of the ZnO component is preferably 25.0% or less, more preferably 23.0% or less, and more preferably 21.0% or less.
- ZnO component ZnO, ZnF 2 or the like can be used as a raw material.
- the La 2 O 3 component is an optional component that can reduce the acid-resistant weight loss rate and the degree of wear by containing more than 0%.
- the content of the La 2 O 3 component is preferably 15.0% or less, more preferably less than 10.0%, and even more preferably 7.0. %.
- the La 2 O 3 component La 2 O 3 , La (NO 3 ) 3 .XH 2 O (X is an arbitrary integer) or the like can be used as a raw material.
- the refractive index of the glass can be increased while maintaining a desired Abbe number, and loss resistance can be maintained. It is an optional component that can increase the permeability.
- the contents of the Gd 2 O 3 component and the Yb 2 O 3 component are each preferably 15.0% or less, more preferably less than 12.0%, and even more preferably less than 10.0%.
- the content of the Y 2 O 3 component is preferably 20.0% or less, more preferably less than 15.0%, more preferably less than 10.0%, and still more preferably less than 5.0%.
- Gd 2 O 3 component, Y 2 O 3 component and Yb 2 O 3 component, Gd 2 O 3 as raw materials, GdF 3, Y 2 O 3 , YF 3, Yb 2 O 3 or the like can be used.
- the ZrO 2 component is an optional component that can reduce the acid-resistant weight loss when it contains more than 0%.
- the content of the ZrO 2 component is preferably 10.0% or less, more preferably less than 5.0%, and still more preferably less than 3.0%.
- ZrO 2 component ZrO 2 , ZrF 4 or the like can be used as a raw material.
- the Nb 2 O 5 component is an optional component that improves acid resistance when it is contained in excess of 0%.
- the content of the Nb 2 O 5 component is 10.0% or less, it is possible to maintain a low Abbe number and to reduce the acid-resistant weight loss rate, preferably 10.0% or less, More preferably, it is 8.0% or less, More preferably, it is 7.0% or less, More preferably, it is less than 5.0%, More preferably, it is less than 3.0%.
- Nb 2 O 5 component can be used Nb 2 O 5 or the like as a raw material.
- the WO 3 component is an optional component that can reduce the degree of wear and increase the devitrification resistance while increasing the refractive index when it contains more than 0%.
- the content of the WO 3 component is preferably 10.0% or less, more preferably less than 7.0%, still more preferably less than 5.0%, still more preferably less than 3.0%, and even more preferably 1.%. Less than 0%.
- WO 3 component WO 3 or the like can be used as a raw material.
- the TiO 2 component is an optional component that reduces the acid-resistant weight loss rate by containing more than 0%.
- the content of the TiO 2 component is preferably 10.0% or less, more preferably less than 5.0%, and even more preferably less than 3.0%.
- TiO 2 or the like can be used as a raw material.
- the Ta 2 O 5 component is an optional component that can increase the refractive index, increase the devitrification resistance, and increase the viscosity of the molten glass when it is contained in excess of 0%.
- the content of the Ta 2 O 5 component is 5.0% or less, the amount of the Ta 2 O 5 component, which is a rare mineral resource, is reduced, so that the glass material cost can be reduced. Therefore, the content of the Ta 2 O 5 component is preferably 5.0% or less, more preferably less than 3.0%, even more preferably less than 1.0%, and most preferably not contained.
- Ta 2 O 5 component Ta 2 O 5 or the like can be used as a raw material.
- the Li 2 O component is an optional component that improves the meltability of the glass and increases the refractive index when it exceeds 0%. Therefore, the content of the Li 2 O component is preferably more than 0%, more preferably more than 0.5%. On the other hand, by making the content of the Li 2 O component 10.0% or less, devitrification can be reduced and the viscosity of the molten glass is increased, so that the occurrence of striae on the glass can be reduced. Therefore, the content of the Li 2 O component is preferably 10.0% or less, more preferably less than 8.0%, and still more preferably less than 5.0%.
- Li 2 CO 3 , LiNO 3 , LiF, or the like can be used as a raw material.
- Na 2 O component and K 2 O component when 0% ultra containing one at least, can improve meltability of the glass raw material, which is an optional component that enhances devitrification resistance.
- the content of each of the Na 2 O component and the K 2 O component is preferably 10.0% or less, more preferably less than 8.0%, and even more preferably less than 5.0%.
- the Na 2 O component and the K 2 O component may use Na 2 CO 3 , NaNO 3 , NaF, Na 2 SiF 6 , K 2 CO 3 , KNO 3 , KF, KHF 2 , K 2 SiF 6, etc. as raw materials. it can.
- the GeO 2 component is an optional component that can increase the refractive index of the glass and increase the devitrification resistance when it is contained in an amount of more than 0%.
- the content of the GeO 2 component is preferably 10.0% or less, more preferably less than 5.0%, even more preferably less than 3.0%, still more preferably less than 1.0%, and most preferably contained. do not do.
- GeO 2 component GeO 2 or the like can be used as a raw material.
- the Al 2 O 3 component is an optional component that can reduce the acid loss rate and increase the devitrification resistance. Therefore, the content of the Al 2 O 3 component is preferably more than 0%, more preferably more than 1.5%, and even more preferably more than 2.0%. On the other hand, by setting the content of the Al 2 O 3 component to 10.0% or less, devitrification due to excessive content can be reduced. Accordingly, the content of the Al 2 O 3 component is preferably 10.0% or less, more preferably less than 8.0%, and still more preferably less than 5.0%.
- Al 2 O 3 component Al 2 O 3 , Al (OH) 3 , AlF 3 or the like can be used as a raw material.
- the Ga 2 O 3 component is an optional component that can improve chemical durability and devitrification resistance when containing at least one of more than 0%. On the other hand, devitrification due to excessive inclusion can be reduced by making the content of the Ga 2 O 3 component 10.0% or less. Accordingly, the content of the Ga 2 O 3 component is preferably 10.0% or less, more preferably less than 5.0%, still more preferably less than 3.0%, and still more preferably less than 1.0%. As the Ga 2 O 3 component, Ga 2 O 3 or the like can be used as a raw material.
- the Bi 2 O 3 component is an optional component that can increase the refractive index and decrease the Abbe number and lower the glass transition point when it exceeds 0%.
- the content of the Bi 2 O 3 component is preferably 10.0% or less, more preferably less than 5.0%, still more preferably less than 3.0%, and even more preferably less than 1.0%.
- Bi 2 O 3 component Bi 2 O 3 or the like can be used as a raw material.
- the TeO 2 component is an optional component that can increase the refractive index and lower the glass transition point when it is contained in excess of 0%.
- the TeO 2 component by making the content of the TeO 2 component 10.0% or less, the coloring of the glass can be reduced and the visible light transmittance can be increased.
- TeO 2 has a problem that it can be alloyed with platinum when melting a glass raw material in a crucible made of platinum or a melting tank in which a portion in contact with molten glass is formed of platinum. Therefore, the content of the TeO 2 component is preferably 10.0% or less, more preferably less than 5.0%, still more preferably less than 3.0%, and even more preferably less than 1.0%.
- TeO 2 component can use TeO 2 or the like as a raw material.
- the SnO 2 component is an optional component that can promote the refining of the molten glass while suppressing the penetration of platinum by reducing the oxidation of the molten glass.
- the content of the SnO 2 component is 3.0% or less, the coloring of the glass due to the reduction of the molten glass and the devitrification of the glass can be reduced.
- the alloying of the SnO 2 component and the melting equipment especially a noble metal such as Pt
- the content of the SnO 2 component is preferably 3.0% or less, more preferably less than 1.0%, and still more preferably less than 0.5%.
- SnO, SnO 2 , SnF 2 , SnF 4 or the like can be used as a raw material.
- the Sb 2 O 3 component is an optional component that can degas the molten glass when it contains more than 0%.
- the content of the Sb 2 O 3 component is preferably 1.0% or less, more preferably less than 0.5%, and still more preferably less than 0.1%.
- Sb 2 O 3 component Sb 2 O 3 , Sb 2 O 5 , Na 2 H 2 Sb 2 O 7 .5H 2 O, or the like can be used as a raw material.
- the component which clarified defoaming glass not limited to the above Sb 2 O 3 ingredients may be used known refining agents and defoamers in the field of glass production, or a combination thereof.
- the F component is an optional component that can increase the Abbe number of the glass, lower the glass transition point, and improve the devitrification resistance when it contains more than 0%.
- the content of the F component that is, the total amount of F substituted for some or all of the oxides of one or more of the elements described above exceeds 10.0%, Since the amount of volatilization increases, it becomes difficult to obtain a stable optical constant, and it becomes difficult to obtain a homogeneous glass.
- the Abbe number rises more than necessary.
- the content of the F component is preferably 10.0% or less, more preferably less than 5.0%, further preferably less than 3.0%, and still more preferably less than 1.0%.
- the F component can be contained in the glass by using, for example, ZrF 4 , AlF 3 , NaF, CaF 2 or the like as a raw material.
- the sum (mass sum) of the contents of RO components is preferably 10.0% or more and 50.0% or less.
- R is one or more selected from the group consisting of Mg, Ca, Sr, and Ba
- the total content of RO components is preferably 10.0% or more, more preferably more than 15.0%, more preferably 18.0% or more, still more preferably 20.0% or more, and even more preferably 23. Over 0%.
- the total content of RO components is preferably 50.0% or less, more preferably less than 45.0%, still more preferably less than 42.0%, and even more preferably less than 40.0%.
- the sum (mass sum) of the contents of the Rn 2 O component (wherein Rn is one or more selected from the group consisting of Li, Na, and K) is preferably 15.0% or less. Thereby, the fall of the refractive index of glass can be suppressed and devitrification can be reduced. Therefore, the mass sum of the content of the Rn 2 O component is preferably 15.0% or less, more preferably less than 10.0%, still more preferably less than 8.0%, and even more preferably less than 5.0%. .
- the sum (mass sum) of the contents of the Ln 2 O 3 component (wherein Ln is one or more selected from the group consisting of La, Gd, Y and Yb) is preferably 20.0% or less.
- the mass sum of the contents of the Ln 2 O 3 component is preferably 20.0% or less, more preferably 15.0% or less, and even more preferably 13.0% or less.
- the ratio (mass ratio) of the SrO component content to the BaO component content is preferably more than zero.
- the mass ratio (SrO / BaO) is preferably greater than 0, more preferably greater than 0.10, even more preferably greater than 0.20, even more preferably greater than 0.30, and even more preferably greater than 0.42.
- this mass ratio (SrO / BaO) is preferably less than 15.0, more preferably less than 14.0, and even more preferably less than 13.0.
- the sum (mass sum) of the contents of the BaO component and the Gd 2 O 3 component is preferably more than 0% and not more than 50.0%.
- the mass sum (BaO + Gd 2 O 3 ) is preferably more than 0%, more preferably more than 0.05%, still more preferably more than 1.0%, still more preferably more than 1.5%.
- this mass sum (BaO + Gd 2 O 3 ) may be 50.0% or less, more preferably less than 40.0%, more preferably less than 35.0%, more preferably less than 30.0%, more preferably less than 24.5%.
- each transition metal component such as V, Cr, Mn, Fe, Co, Ni, Cu, Ag and Mo, excluding Ti, Zr, Nb, W, La, Gd, Y, Yb, and Lu, is independent of each other. Or, even when it is contained in a small amount in combination, the glass is colored and has the property of causing absorption at a specific wavelength in the visible range. .
- lead compounds such as PbO and arsenic compounds such as As 2 O 3 are components with high environmental loads, it is desirable that they are not substantially contained, that is, not contained at all except for inevitable mixing.
- each component of Th, Cd, Tl, Os, Be, and Se has tended to be refrained from being used as a harmful chemical material in recent years, and not only in the glass manufacturing process, but also in the processing process and disposal after commercialization. Until then, environmental measures are required. Therefore, when importance is placed on the environmental impact, it is preferable that these are not substantially contained.
- the optical glass of the present invention is produced, for example, as follows. That is, the above raw materials are uniformly mixed so that each component is within a predetermined content range, and the prepared mixture is poured into a platinum crucible, a quartz crucible or an alumina crucible and roughly melted, and then a platinum crucible, a platinum alloy Put in a crucible or iridium crucible and melt for 1 to 5 hours in a temperature range of 1100 to 1400 ° C, stir and homogenize to eliminate bubbles, etc., then lower the temperature to 1000 to 1300 ° C, and then finish stirring and pulse It is produced by removing the reason, casting it in a mold and slowly cooling it.
- the optical glass of the present invention has a high refractive index and a high Abbe number (low dispersion).
- the lower limit of the refractive index (n d ) of the optical glass of the present invention is preferably 1.55 or more, more preferably 1.56 or more, and further preferably 1.57 or more.
- the upper limit of this refractive index is preferably 1.70 or less, more preferably 1.65, and still more preferably 1.63.
- the lower limit of the Abbe number ( ⁇ d ) of the optical glass of the present invention is preferably 45 or more, more preferably 50 or more, further preferably 55 or more, and further preferably 60 or more.
- the upper limit of this Abbe number is preferably 75 or less, more preferably 73 or less, and even more preferably less than 70. Since the optical glass of the present invention has such a refractive index and Abbe number, it is useful in optical design, and the optical system can be downsized while achieving particularly high imaging characteristics and the like. The degree of freedom can be expanded.
- the optical glass of the present invention preferably has high acid resistance.
- the chemical durability (acid resistance) of the glass powder method according to JOGIS06-2009 is preferably 1 to 5 grade, more preferably 2 to 4 grade, more preferably 3 to 4 grade. .
- “acid resistance” refers to durability against erosion of glass by acid, and this acid resistance is measured according to the Japan Optical Glass Industry Association Standard “Measurement Method of Chemical Durability of Optical Glass” JOGIS06-2009. Can do.
- “The chemical durability (acid resistance) by the powder method is 1 to 3” means that the chemical durability (acid resistance) performed according to JOGIS06-2009 is the mass of the sample before and after the measurement. It means a weight loss rate of less than 0.65% by mass.
- “Class 1” of chemical durability (acid resistance) means that the weight loss rate of the sample before and after measurement is less than 0.20% by mass
- “Class 2” means weight loss of the sample before and after measurement.
- the rate is 0.20% by mass or more and less than 0.35% by mass
- “Class 3” indicates that the mass reduction rate of the sample before and after the measurement is 0.35% by mass or more and less than 0.65% by mass
- “Class” means that the weight loss rate of the sample before and after measurement is 0.65% by mass or more and less than 1.20% by mass
- “Class 5" means that the weight loss rate of the sample before and after measurement is 1.20% by mass.
- the amount is less than 2.20% by mass
- “Class 6” has a mass reduction rate of the sample before and after the measurement of 2.20% by mass or more.
- the optical glass of the present invention preferably has a low degree of wear.
- the upper limit of the degree of wear of the optical glass of the present invention is preferably 480, more preferably 450, and more preferably 430.
- the abrasion degree means a value obtained by measurement according to “JOGIS10-1994 Measuring method of abrasion degree of optical glass”.
- the optical glass of the present invention has high visible light transmittance, in particular, high transmittance of light on the short wavelength side of visible light, and thereby less coloring.
- the wavelength ( ⁇ 80 ) showing a spectral transmittance of 80% in a sample having a thickness of 10 mm is preferably 420 nm, more preferably 410 nm, still more preferably 400 nm. The upper limit.
- the shortest wavelength ( ⁇ 5 ) having a spectral transmittance of 5% in a sample having a thickness of 10 mm is preferably 380 nm, more preferably 370 nm, and still more preferably 360 nm.
- this optical glass can be preferably used for an optical element that transmits light such as a lens.
- a glass molded body can be produced from the produced optical glass by means of, for example, polishing or molding press molding such as reheat press molding or precision press molding. That is, a glass molded body is manufactured by performing mechanical processing such as grinding and polishing on optical glass, or glass molding is performed by performing a polishing process after performing reheat press molding on a preform manufactured from optical glass.
- a glass molded body can be produced by producing a body, or by performing precision press molding on a preform produced by polishing or a preform formed by known float forming or the like.
- the means for producing the glass molded body is not limited to these means.
- the glass molded body formed from the optical glass of the present invention is useful for various optical elements and optical designs, but it is particularly preferable to use them for optical elements such as lenses and prisms.
- This makes it possible to form a glass molded body with a large diameter, so that the optical elements can be enlarged, but with high definition and high precision imaging characteristics and projection when used in optical equipment such as cameras and projectors. The characteristics can be realized.
- the glasses of Examples and Comparative Examples are used as ordinary optical glasses such as oxides, hydroxides, carbonates, nitrates, fluorides, hydroxides, metaphosphate compounds, etc., as raw materials for the respective components.
- High purity raw materials are selected, weighed to the composition ratio of each Example and Comparative Example shown in the table and mixed uniformly, and then put into a quartz crucible or platinum crucible to easily melt the glass composition.
- the glass was produced by casting and slowly cooling.
- the refractive index (n d ) and Abbe number ( ⁇ d ) of the glass of the example and the comparative example are shown as measured values with respect to the d-line (587.56 nm) of the helium lamp.
- the Abbe number ( ⁇ d ) is the refractive index of the d line, the refractive index (n F ) for the F lamp (486.13 nm) of the hydrogen lamp, and the refractive index (n C ) for the C line (656.27 nm).
- the Abbe number ( ⁇ d ) [(n d ⁇ 1) / (n F ⁇ n C )].
- the acid resistance of the glass of Examples and Comparative Examples was measured according to the Japan Optical Glass Industry Association standard “Measurement Method of Chemical Durability of Optical Glass” JOGIS06-2009. That is, a glass sample crushed to a particle size of 425 to 600 ⁇ m was taken in a specific gravity gram and placed in a platinum basket. The platinum basket was placed in a quartz glass round bottom flask containing a 0.01N nitric acid aqueous solution and treated in a boiling water bath for 60 minutes.
- the weight loss rate (mass%) of the glass sample after treatment is calculated, and when the weight loss ratio (mass%) is less than 0.20, the first grade, and when the weight loss rate is less than 0.20 to 0.35, 2 Grade, when the weight loss rate is 0.35 to less than 0.65, Grade 3, when the weight loss rate is 0.65 to less than 1.20, Grade 4, when the weight loss rate is less than 1.20 to 2.20
- the grade 5 and the weight loss rate of 2.20 or more were classified as grade 6. At this time, it means that the acid resistance of glass is excellent, so that the number of grades is small.
- the degree of abrasion was measured according to “JOGIS10-1994 Measuring Method of Abrasion Level of Optical Glass”. That is, a sample of a glass square plate having a size of 30 ⁇ 30 ⁇ 10 mm is placed on a fixed position of 80 mm from the center of a flat plate made of cast iron (250 mm ⁇ ) horizontally rotating 60 times per minute, and a load of 9.8 N (1 kgf) is applied. While applying vertically, a polishing solution obtained by adding 10 g of lapping material (alumina A abrasive grains) of # 800 (average particle size 20 ⁇ m) to 20 mL of water is uniformly fed for 5 minutes to cause friction, and the sample mass before and after the lapping is measured.
- lapping material alumina A abrasive grains
- the transmittance of the glass of the example was measured according to Japan Optical Glass Industry Association Standard JOGIS02-2003.
- the presence / absence and degree of coloration of the glass were determined by measuring the transmittance of the glass.
- a face parallel polished product having a thickness of 10 ⁇ 0.1 mm was measured for a spectral transmittance of 200 to 800 nm in accordance with JISZ8722, and ⁇ 5 (wavelength when the transmittance was 5%) and ⁇ 80 (transmittance). Wavelength at 80%).
- all of the optical glasses of the examples of the present invention have a refractive index (n d ) of 1.55 or more, more specifically 1.57 or more, and this refractive index (n d ) is It was 1.70 or less, more specifically 1.63 or less, and was within the desired range.
- the optical glasses of the examples of the present invention all have an Abbe number ( ⁇ d ) of 45 or more, more specifically 50 or more, more specifically 60 or more, and this Abbe number ( ⁇ d ) is 75.
- ⁇ d Abbe number
- the optical glasses of the examples of the present invention each had a ⁇ 80 (wavelength at 80% transmittance) of 550 nm or less, more specifically 500 nm or less.
- each of ⁇ 5 (wavelength at 5% transmittance) was 400 nm or less, more specifically, 380 nm or less.
- optical glass of the example of the present invention was a stable glass that was not devitrified.
- optical glasses of the examples of the present invention all had acid resistance within the range of 1 to 5 grades.
- optical glass of the comparative example is a glass having acid resistance of grade 6 and poor workability.
- the optical glass of the embodiment of the present invention can obtain an optical glass having a refractive index (n d ) and an Abbe number ( ⁇ d ) within desired ranges and acid resistance of 1 to 5 grades. It was revealed.
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- Life Sciences & Earth Sciences (AREA)
- Engineering & Computer Science (AREA)
- Chemical Kinetics & Catalysis (AREA)
- General Chemical & Material Sciences (AREA)
- Geochemistry & Mineralogy (AREA)
- Materials Engineering (AREA)
- Organic Chemistry (AREA)
- Physics & Mathematics (AREA)
- General Physics & Mathematics (AREA)
- Optics & Photonics (AREA)
- Glass Compositions (AREA)
Abstract
La présente invention concerne un verre ayant une résistance élevée aux acides, mesurée par un procédé faisant appel à une poudre, tout en ayant un indice de réfraction (nd) et un nombre d'Abbe (νd) dans des plages souhaitées. Ce verre optique comprend, en % en masse, 35,0 à 65,0 % d'un composant P2O5, plus de 0 à 20,0 % d'un composant B2O3, plus de 0 à 30,0 % d'un composant BaO, et plus de 0 à 35,0 % d'un composant SrO, et présente un rapport en masse (B2O3/SrO) supérieur à 0, un indice de réfraction (nd) de 1,55 à 1,70, un nombre d'Abbe (νd) de 45 à 75 et une durabilité chimique (résistance aux acides) mesurée par un procédé faisant appel à une poudre de classe 1 à 5.
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| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN202210322226.8A CN114590996A (zh) | 2016-12-07 | 2017-11-01 | 光学玻璃、预成形体以及光学元件 |
| CN201780075208.1A CN110114321A (zh) | 2016-12-07 | 2017-11-01 | 光学玻璃、预成形体以及光学元件 |
| JP2018554867A JP7075895B2 (ja) | 2016-12-07 | 2017-11-01 | 光学ガラス、プリフォーム及び光学素子 |
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| JP2016237890 | 2016-12-07 | ||
| JP2016-237890 | 2016-12-07 |
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| WO2018105279A1 true WO2018105279A1 (fr) | 2018-06-14 |
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| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/JP2017/039487 Ceased WO2018105279A1 (fr) | 2016-12-07 | 2017-11-01 | Verre optique, préforme, et élément optique |
Country Status (4)
| Country | Link |
|---|---|
| JP (1) | JP7075895B2 (fr) |
| CN (2) | CN110114321A (fr) |
| TW (1) | TWI746722B (fr) |
| WO (1) | WO2018105279A1 (fr) |
Cited By (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN110204192A (zh) * | 2019-06-28 | 2019-09-06 | 中国建筑材料科学研究总院有限公司 | 一种透深紫外磷酸盐玻璃及其制备方法、应用 |
| WO2020017275A1 (fr) * | 2018-07-18 | 2020-01-23 | 株式会社オハラ | Verre optique, préforme et élément optique |
| CN111960669A (zh) * | 2020-08-31 | 2020-11-20 | 湖北新华光信息材料有限公司 | 一种精密模压用低比重磷冕光学玻璃及其原料的配制方法以及光学元件 |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN113003935B (zh) * | 2021-02-07 | 2022-08-26 | 湖北新华光信息材料有限公司 | 氟磷酸盐光学玻璃及其制备方法和光学元件 |
| CN114853336B (zh) * | 2022-06-22 | 2023-09-05 | 成都光明光电股份有限公司 | 光学玻璃、玻璃预制件、光学元件和光学仪器 |
| CN116239301B (zh) * | 2023-03-07 | 2023-11-28 | 上海太洋科技有限公司 | 一种磷酸盐光学玻璃及其制备方法 |
| CN117945653A (zh) * | 2023-12-15 | 2024-04-30 | 湖北新华光信息材料有限公司 | 重火石光学玻璃及其制备方法和光学元件 |
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| WO2020017275A1 (fr) * | 2018-07-18 | 2020-01-23 | 株式会社オハラ | Verre optique, préforme et élément optique |
| CN110204192A (zh) * | 2019-06-28 | 2019-09-06 | 中国建筑材料科学研究总院有限公司 | 一种透深紫外磷酸盐玻璃及其制备方法、应用 |
| CN111960669A (zh) * | 2020-08-31 | 2020-11-20 | 湖北新华光信息材料有限公司 | 一种精密模压用低比重磷冕光学玻璃及其原料的配制方法以及光学元件 |
Also Published As
| Publication number | Publication date |
|---|---|
| TW201834991A (zh) | 2018-10-01 |
| JPWO2018105279A1 (ja) | 2019-10-24 |
| TWI746722B (zh) | 2021-11-21 |
| CN110114321A (zh) | 2019-08-09 |
| JP7075895B2 (ja) | 2022-05-26 |
| CN114590996A (zh) | 2022-06-07 |
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