CN111320383A - Optical glass, glass preform, optical element and optical instrument - Google Patents
Optical glass, glass preform, optical element and optical instrument Download PDFInfo
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- CN111320383A CN111320383A CN202010149043.1A CN202010149043A CN111320383A CN 111320383 A CN111320383 A CN 111320383A CN 202010149043 A CN202010149043 A CN 202010149043A CN 111320383 A CN111320383 A CN 111320383A
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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
- C03C3/04—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
- C03C3/066—Glass compositions containing silica with less than 40% silica by weight containing boron containing zinc
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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
- C03C3/068—Glass compositions containing silica with less than 40% silica by weight containing boron containing rare earths
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- Engineering & Computer Science (AREA)
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Abstract
Optical glass, glass preform, optical element and optical instrument. The invention provides optical glass, which comprises the following components in percentage by weight: SiO 22:26~40%、B2O3:7~20%、BaO:40~55%、Al2O3: 1 to 12% of B, wherein2O3/SiO20.20 to 0.70. Through reasonable component design, the optical glass obtained by the invention has excellent anti-crystallization performance and proper abrasion degree while having the expected optical performance.
Description
Technical Field
The invention relates to optical glass, in particular to optical glass with a refractive index of 1.57-1.65 and an Abbe number of 55-63, and a glass prefabricated member, an optical element and an optical instrument made of the optical glass.
Background
With the continuous fusion of optics and electronic information science and new material science, the application of optical glass as a photoelectron base material in the technical fields of light transmission, light storage, photoelectric display and the like is rapidly advanced. In recent years, optical elements and optical instruments have been rapidly developed in terms of digitization, integration, and high definition, and higher demands have been made on the performance of optical glasses used for optical elements of optical instruments and devices.
Conventionally, a glass preform is produced by machining optical glass by grinding, polishing or the like, or by producing a preform for press molding from optical glass, then performing reheat press molding on the preform, and then performing polishing, or by performing precision press molding on the preform obtained by polishing, and thus optical glass is required to have good processability and an appropriate degree of abrasion. If the anti-crystallization capacity of the glass is poor, the production difficulty of the glass blank is increased, so that the yield is reduced, and even normal production cannot be realized in severe cases; secondly, crystal precipitation is easy to generate in the secondary compression process, so that the yield is reduced, and even secondary compression can not be carried out.
Disclosure of Invention
For the above reasons, the technical problem to be solved by the present invention is to provide an optical glass having excellent devitrification resistance and suitable abrasion.
The technical scheme adopted by the invention for solving the technical problem is as follows:
(1) the optical glass comprises the following components in percentage by weight: SiO 22:26~40%、B2O3:7~20%、BaO:40~55%、Al2O3: 1 to 12% of B, wherein2O3/SiO20.20 to 0.70.
(2) The optical glass according to (1), which comprises the following components in percentage by weight: TiO 22:0~5%、MgO:0~5%、CaO:0~5%、SrO:0~5%、Rn2O:0~8%、Ln2O3:0~8%、ZnO:0~8%、ZrO2: 0-5% of a clarifying agent: 0-2% of Ln2O3Is La2O3、Gd2O3、Y2O3、Yb2O3One or more of (1), Rn2O is Li2O、Na2O、K2One or more of O and Sb as clarifier2O3、SnO2、SnO、CeO2One or more of (a).
(3) Optical glass, the composition of which is expressed in weight percentage by SiO2:26~40%、B2O3:7~20%、BaO:40~55%、Al2O3:1~12%、TiO2:0~5%、MgO:0~5%、CaO:0~5%、SrO:0~5%、Rn2O:0~8%、Ln2O3:0~8%、ZnO:0~8%、ZrO2: 0-5% of a clarifying agent: 0 to 2% of a component B2O3/SiO20.20 to 0.70, the Ln2O3Is La2O3、Gd2O3、Y2O3、Yb2O3One or more of (1), Rn2O is Li2O、Na2O、K2One or more of O and Sb as clarifier2O3、SnO2、SnO、CeO2One or more of (a).
(4) The optical glass according to any one of (1) to (3), which comprises the following components in percentage by weight: SiO 22: 28-38%, and/or B2O3: 8-16%, and/or BaO: 42 to 52%, and/or Al2O3: 2 to 10%, and/or TiO2: 0-3%, and/or MgO: 0-3%, and/or CaO: 0-4%, and/or SrO: 0 to 3%, and/or Rn2O: 0 to 4%, and/or Ln2O3: 0-5%, and/or ZnO: 0.1 to 4%, and/or ZrO2: 0-3%, and/or a clarifying agent: 0 to 1 percent.
(5) The optical glass according to any one of (1) to (3), which comprises the following components in percentage by weight: SiO 22: 30-35%, and/or B2O3: 10-15%, and/or BaO: 44-50% and/or Al2O3: 3 to 8%, and/or TiO2: 0-2%, and/or MgO: 0-2%, and/or CaO: 0-3%, and/or SrO: 0 to 2%, and/or Rn2O: 0 to 2%, and/or Ln2O3: 0-3%, and/or ZnO: 0.5 to 3%, and/or ZrO2: 0 to 2%, and/or Sb2O3:0~1%。
(6) The optical glass according to any one of (1) to (3), which comprises the following components in percentage by weight: b is2O3/SiO20.25 to 0.50; and/or B2O3The ratio of/BaO is 0.15-0.45; and/or BaO/SiO2Greater than 1.0 but less than or equal to 2.0; and/or (TiO)2+ZrO2) The ratio of/BaO is less than 0.20;and/or Rn2O/BaO is less than 0.15; and/or (ZnO + CaO + TiO)2) The ratio of/BaO is 0.25 or less.
(7) The optical glass according to any one of (1) to (3), which comprises the following components in percentage by weight: b is2O3/SiO20.34 to 0.42; and/or B2O3The ratio of/BaO is 0.20-0.35; and/or BaO/SiO21.10 to 1.80; and/or (TiO)2+ZrO2) The ratio of/BaO is less than 0.15; and/or Rn2O/BaO is less than 0.10; and/or (ZnO + CaO + TiO)2) The ratio of/BaO is 0.20 or less.
(8) The optical glass according to any one of (1) to (3), which comprises the following components in percentage by weight: b is2O3The ratio of/BaO is 0.24-0.32; and/or BaO/SiO21.25 to 1.60; and/or (TiO)2+ZrO2) The ratio of/BaO is less than 0.10; and/or Rn2O/BaO is less than 0.05; and/or (ZnO + CaO + TiO)2) The ratio of/BaO is 0.10 or less.
(9) The optical glass according to any one of (1) to (3), which does not contain Rn2O, and/or does not contain ZrO2And/or does not contain Ln2O3。
(10) The optical glass according to any one of (1) to (3), wherein the optical glass has a refractive index nd of 1.57 to 1.65, preferably a refractive index nd of 1.58 to 1.64, more preferably a refractive index nd of 1.60 to 1.63; abbe number vdIs 55 to 63, and the Abbe number v is preferredd56 to 61, more preferably Abbe number vdIs 57 to 60.
(11) The optical glass according to any one of (1) to (3), wherein the optical glass has a moisture resistance stability RC of 2 or more, preferably 1; and/or lambda80Less than or equal to 380nm, preferably lambda80Less than or equal to 370nm, more preferably lambda80Less than or equal to 365 nm; and/or lambda5Less than or equal to 330nm, preferably lambda5Less than or equal to 320nm, more preferably lambda5Less than or equal to 315 nm; and/or a density p of 3.70g/cm3Hereinafter, the density ρ is preferably 3.65g/cm3Hereinafter, the density ρ is more preferably 3.60g/cm3And/or coefficient of thermal expansion α-30/70℃Is 80 × 10-7below/K, the thermal expansion coefficient is preferably α-30/70℃Is 75 × 10-7A thermal expansion coefficient of α or less is more preferable-30/70℃Is 70 × 10-7below/K; and/or Knoop hardness HKIs 500 × 107Pa or more, preferably Knoop hardness HKIs 505 × 107Pa or more, more preferably Knoop hardness HKIs 510 × 107Pa is above; and/or degree of wear FA100 to 150, preferably the degree of wear FA110 to 140, more preferably a degree of abrasion FAIs 120 to 135.
(12) A glass preform made of the optical glass according to any one of (1) to (11).
(13) An optical element produced from the optical glass according to any one of (1) to (11) or the glass preform according to (12).
(14) An optical device produced using the optical glass of any one of (1) to (11) or the optical element of (13).
The invention has the beneficial effects that: through reasonable component design, the optical glass obtained by the invention has excellent anti-crystallization performance and proper abrasion degree while having the expected optical performance.
Detailed Description
The optical glass of the present invention is obtained by the following steps, which are not limited to the above-described embodiments, and can be appropriately modified within the scope of the object of the present invention. Although the description of the overlapping portions may be omitted as appropriate, the gist of the present invention is not limited thereto, and the optical glass of the present invention may be simply referred to as glass in the following description.
[ optical glass ]
The ranges of the respective components of the optical glass of the present invention are explained below. In the present specification, unless otherwise specified, the contents and total contents of the respective components are all expressed in terms of weight percentage with respect to the total amount of glass matter converted into the composition of oxides. Here, the "composition converted to oxides" means that when oxides, complex salts, hydroxides, and the like used as raw materials of the optical glass composition component of the present invention are decomposed in the melt and converted to oxides, the total amount of the oxides is 100%.
Unless otherwise indicated herein, the numerical ranges set forth herein include upper and lower values, and the terms "above" and "below" include the endpoints, and all integers and fractions within the range, and are not limited to the specific values listed in the defined range. As used herein, "and/or" is inclusive, e.g., "A and/or B," and means A alone, B alone, or both A and B.
< essential Components and optional Components >
SiO2Is a skeleton of an optical glass, has the functions of maintaining the chemical stability of the glass and improving the devitrification resistance of the glass as a glass network forming body, and is formed as SiO2The content is less than 26%, the above effects are not significant, and therefore SiO2The lower limit of the content of (B) is 26%, preferably the lower limit is 28%, more preferably the lower limit is 30%. When SiO is present2The content of (3) is more than 40%, the glass melting property is lowered, the transition temperature is raised, and it is difficult to obtain the refractive index desired in the present invention, therefore, SiO2The upper limit of the content of (B) is 40%, preferably 38%, more preferably 35%.
B2O3The glass is a component for forming a glass network structure, and the glass can obtain the effects of low dispersion and low-temperature softening property and optimize the abrasion degree of the glass by adding the glass. In the invention, more than 7 percent of B is introduced2O3In order to achieve the above effects, it is preferable to introduce 8% or more of B2O3More preferably, 10% or more of B is incorporated2O3. When B is present2O3Above 20%, the chemical stability and resistance to devitrification of the glass are reduced. Thus, B2O3The upper limit of the content of (B) is 20%, preferably 16%, more preferably 15%.
In the present invention, if B2O3With SiO2Ratio B of contents of2O3/SiO2A value of less than 0.20 increases the glass transition temperature, deteriorates meltability, and is disadvantageous for bubbles in the glassThe stone is easy to be discharged from the glass; if B is2O3/SiO2The value of (A) exceeds 0.70, the chemical stability and devitrification resistance of the glass are lowered. On the other hand, by controlling B2O3/SiO2In the range of 0.20-0.70, the proper abrasion degree of the glass is favorably obtained. Thus, in the present invention B2O3/SiO20.20 to 0.70, preferably B2O3/SiO20.25 to 0.50, and preferably B2O3/SiO20.34 to 0.42.
Proper amount of TiO is introduced2Can make the glass more stable, reduce the viscosity of the glass and improve the water resistance of the glass, but introduces TiO in a large amount2The glass has increased coloring and devitrification tendency, and the refractive index is difficult to meet the design requirement. Thus, TiO in the present invention2The upper limit of the content of (B) is 5%, preferably 3%, more preferably 2%.
BaO has the effect of adjusting the refractive index of the glass, improving the transmittance of the glass, and resistance to devitrification, and can reduce the refractive index temperature coefficient and the thermal expansion coefficient of the glass in the present invention, and the above effect is obtained by introducing BaO of 40% or more, preferably the BaO content is 42% or more, more preferably the BaO content is 44% or more. On the other hand, when the content of BaO is 55% or less, the decrease in chemical stability of the glass due to an excessively high content of BaO can be reduced, and the optical constant is out of the design range, and the content of BaO is preferably 52% or less, and more preferably 50% or less.
In some embodiments of the invention, if B2O3the/BaO is lower than 0.15, the optical constant of the glass is difficult to meet the design requirement, and the density is increased; if B is2O3When the/BaO content exceeds 0.45, the hardness of the glass tends to be low and the chemical stability tends to be low. Therefore, in the present invention, B is preferred2O3A ratio of/BaO is 0.15 to 0.45, and B is more preferably2O3A ratio of/BaO is 0.20 to 0.35, and B is more preferably2O3The ratio of/BaO is 0.24-0.32.
In some embodiments of the invention, BaO is mixed with SiO2Ratio between contents of BaO/SiO2Has an important influence on the thermal stability and thermal expansion coefficient of the glass. In particular, if BaO/SiO2When the temperature coefficient of the glass is lower than 1.0, the thermal expansion coefficient and the temperature coefficient of the refractive index of the glass are increased, and the abrasion degree is deteriorated; if BaO/SiO2Above 2.0, the thermal and chemical stability of the glass is reduced. Therefore, BaO/SiO is preferred in the present invention2Is more than 1.0 but not more than 2.0, and BaO/SiO is more preferable21.10 to 1.80, and further preferably BaO/SiO21.25 to 1.60.
MgO can reduce the melting temperature of the glass, but when the MgO is added excessively, the refractive index of the glass cannot meet the design requirement, the devitrification resistance and the stability of the glass are reduced, and the cost of the glass is increased. Therefore, the MgO content is limited to 0 to 5%, preferably 0 to 3%, and more preferably 0 to 2%.
CaO is useful for adjusting the optical constants of the glass and improving the processability of the glass, but when added in an excessive amount, the optical constants of the glass fail to meet the requirements and the devitrification resistance deteriorates. Therefore, the CaO content is limited to 0 to 5%, preferably 0 to 4%, and more preferably 0 to 3%.
The addition of SrO to glass makes it possible to adjust the refractive index and abbe number of the glass, but if the addition amount is too large, the chemical stability of the glass decreases and the cost of the glass rapidly increases. Therefore, the SrO content is limited to 0 to 5%, preferably 0 to 3%, and more preferably 0 to 2%.
ZrO2When the content exceeds 5%, the melting property of the glass is lowered, the melting temperature is increased, inclusions in the glass are likely to occur, the transmittance of the glass is likely to be lowered, and it is difficult to maintain a low transition temperature. Thus, ZrO2The content is 0 to 5%, preferably 0 to 3%, more preferably 0 to 2%, and further preferably no ZrO is introduced2。
In some embodiments of the invention, if TiO2And ZrO2Ratio of the total content of (A) to BaO (TiO)2+ZrO2) If the amount of/BaO exceeds 0.20, the coloring degree and striae of the glass are deteriorated, and the meltability of the glass is lowered. Therefore, (TiO) is preferred in the present invention2+ZrO2) A value of/BaO of 0.20 or less, more preferably (TiO)2+ZrO2) A BaO of 0.15 or less, more preferably (TiO)2+ZrO2) The ratio of/BaO is 0.10 or less.
Ln2O3Is a component for improving the refractive index and chemical stability of the glass, is an optional component in the optical glass of the present invention, wherein Ln2O3Is La2O3、Gd2O3、Y2O3、Yb2O3One or more of (a). By mixing Ln2O3The content of (A) is controlled to 8% or less, whereby the devitrification resistance of the glass can be improved and a desired refractive index and Abbe number can be obtained. Thus, in the optical glass of the present invention, Ln2O3The upper limit of the content range is 8%, preferably 5%, more preferably 3%, and still more preferably no Ln is introduced2O3。
The addition of an appropriate amount of ZnO to the glass can increase the refractive index of the glass and increase the acid resistance of the glass, and if the content thereof is more than 8%, the devitrification resistance of the glass is lowered while the high temperature viscosity is small and the thermal expansion coefficient and the refractive index temperature coefficient of the glass are increased. Therefore, the ZnO content in the present invention is 0 to 8%, preferably 0.1 to 4%, and more preferably 0.5 to 3%.
In some embodiments of the invention, the (ZnO + CaO + TiO) is controlled by2) The value of/BaO is less than 0.25, which can improve the bubble degree of the glass, improve the crystallization resistance of the glass and reduce the thermal expansion coefficient of the glass. Therefore, (ZnO + CaO + TiO) is preferable2) The content of/BaO is 0.25 or less, and (ZnO + CaO + TiO) is more preferable2) The content of/BaO is 0.20 or less, and (ZnO + CaO + TiO) is more preferable2) The value of/BaO is 0.10 or less.
Rn2O is an alkali metal oxide, Rn2O is Li2O、Na2O、K2O may improve the melting property of the glass, lower the glass transition temperature, and when the content exceeds 8%, the devitrification resistance and the thermal stability of the glass are deteriorated, so that Rn of the present invention2The content of O is 0 to 8%, preferably 0 to 4%, more preferably 0 to 2%, further preferablyOptionally, no introduction is performed.
In some embodiments of the invention, the Rn is generated by reacting Rn2The O/BaO is less than 0.15, which is beneficial to obtaining lower density and transition temperature of the glass and improving the devitrification resistance of the glass. Therefore, Rn is preferred in the present invention2O/BaO is 0.15 or less, and Rn is more preferable2O/BaO is 0.10 or less, and Rn is more preferable2The ratio of O/BaO is 0.05 or less.
In the invention, more than 1% of Al is introduced2O3To improve the stability and devitrification resistance of the formed glass and to increase the strength of the glass; when the content exceeds 12%, the chemical stability and meltability of the glass are deteriorated. Therefore, Al in the present invention2O3The content of (b) is 1 to 12%, preferably 2 to 10%, more preferably 3 to 8%.
In the invention, 0-2% of Sb is added2O3、SnO、SnO2、CeO2One or more of the components can be used as a clarifying agent to improve the clarifying effect of the glass. But when Sb is2O3At contents exceeding 2%, the glass tends to have a reduced fining ability, and since the strong oxidizing action promotes the corrosion of the platinum or platinum alloy vessel from which the glass is melted and the deterioration of the forming mold, Sb is preferred in the present invention2O3The amount of (B) is 0 to 2%, preferably 0 to 1%, and more preferably 0 to 0.5%. SnO and SnO2However, when the content exceeds 2%, the glass is colored, or when the glass is heated, softened, press-molded or the like and then re-molded, Sn becomes a starting point of crystal nucleus generation, and thus, devitrification tends to occur. Thus the SnO of the invention2The content of (b) is preferably 0 to 2%, more preferably 0 to 1%, further preferably 0 to 0.5%, further preferably not contained; the SnO content is preferably 0 to 2%, more preferably 0 to 1%, even more preferably 0 to 0.5%, and even more preferably not contained. CeO (CeO)2Action and addition amount ratio of (B) and SnO2The content is preferably 0 to 2%, more preferably 0 to 1%, further preferably 0 to 0.5%, and further preferably not contained.
< component which should not be contained >
In the glass of the present invention, even when a small amount of oxides of transition metals such as V, Cr, Mn, Fe, Co, Ni, Cu, Ag, and Mo is contained singly or in combination, the glass is colored and absorbs at a specific wavelength in the visible light region, thereby impairing the property of the present invention to improve the effect of visible light transmittance.
In recent years, oxides of Th, Cd, Tl, Os, Be, and Se tend to Be used as harmful chemical substances in a controlled manner, and measures for protecting the environment are required not only in the glass production process but also in the processing process and disposal after commercialization. Therefore, when importance is attached to the influence on the environment, it is preferable that these components are not substantially contained except for inevitable mixing. Thereby, the optical glass becomes practically free from substances contaminating the environment. Therefore, the optical glass of the present invention can be manufactured, processed, and discarded without taking special measures for environmental countermeasures.
In order to achieve environmental friendliness, the optical glass of the present invention preferably does not contain As2O3And PbO. Although As2O3Has the effects of eliminating bubbles and better preventing the glass from coloring, but As2O3The addition of (b) increases the platinum attack of the glass on the furnace, particularly on the platinum furnace, resulting in more platinum ions entering the glass, which adversely affects the service life of the platinum furnace.
The term "not introduced", "not containing" or "0%" as used herein means that the compound, molecule or element is not intentionally added as a raw material to the optical glass of the present invention; however, it is within the scope of the present invention that certain impurities or components which are not intentionally added may be present as raw materials and/or equipment for producing the optical glass and may be contained in the final optical glass in small or trace amounts.
The performance of the optical glass of the present invention will be described below.
< refractive index and Abbe number >
Optical systemRefractive index (nd) and Abbe number (. nu.) of glassd) The test was carried out according to the method specified in GB/T7962.1-2010.
The refractive index (nd) of the optical glass is 1.57-1.65, preferably 1.58-1.64, and more preferably 1.60-1.63; abbe number (v)d) Is 55 to 63, preferably 56 to 61, and more preferably 57 to 60.
< Density >
The density (. rho.) of the optical glass was measured according to the method specified in GB/T7962.20-2010.
The optical glass of the present invention has a density (. rho.) of 3.70g/cm3Hereinafter, it is preferably 3.65g/cm3Hereinafter, more preferably 3.60g/cm3The following.
< coefficient of thermal expansion >
Coefficient of thermal expansion of optical glass (α)-30/70℃) And testing data at-30-70 ℃ according to a method specified in GB/T7962.16-2010.
The thermal expansion coefficient (α) of the optical glass of the present invention-30/70℃) Is 80 × 10-7Preferably 75 × 10K or less, more preferably 75-7Less than/K, more preferably 70 × 10-7and/K is less than or equal to.
< degree of abrasion >
Degree of abrasion (F) of optical glassA) The abrasion loss of the sample is multiplied by 100 under the same conditions, and the value is expressed by the following formula:
FA=V/V0×100=(W/ρ)/(W0/ρ0)×100
in the formula: v is the volume abrasion amount of the sample to be measured;
V0-the amount of wear of the standard sample volume;
w is the abrasion loss of the quality of the sample to be measured;
W0-abrasion loss of standard sample mass;
rho is the density of the sample to be measured;
ρ0-standard sample density.
Degree of abrasion (F) of optical glass of the present inventionA) 100 to 150, preferablyPreferably 110 to 140, and more preferably 120 to 135.
< degree of coloration >
Coloring degree (. lamda.) for short-wave transmission spectral characteristics of the glass of the present invention80And λ5) And (4) showing. Lambda [ alpha ]80It refers to the wavelength corresponding to the glass transmittance of 80%. Lambda [ alpha ]80Was measured using a glass having a thickness of 10. + -. 0.1mm with two opposing planes parallel to each other and optically polished, measuring the spectral transmittance in the wavelength region from 280nm to 700nm and showing a wavelength of transmittance of 80%. The spectral transmittance or transmittance is the intensity I of light incident perpendicularly to the surface of the glassinLight transmitted through the glass and having an intensity I emitted from a planeoutIn the case of light of (1) through (I)out/IinThe quantity expressed and also the transmission of the surface reflection losses on the above-mentioned surface of the glass. The higher the refractive index of the glass, the greater the surface reflection loss. Thus, in high refractive index glasses, λ80A small value of (a) means that the glass itself is colored very little.
Lambda of the optical glass of the present invention80Less than or equal to 380nm, preferably lambda80Is less than or equal to 370nm, more preferably lambda80Less than or equal to 365 nm; lambda [ alpha ]5Less than or equal to 330nm, preferably lambda5Is less than or equal to 320nm, more preferably lambda5Is less than or equal to 315 nm.
< Knoop hardness >
Knoop hardness (H) of optical glassK) The test was carried out according to the test method specified in GB/T7962.18-2010.
Knoop hardness (H) of the optical glass of the present inventionK) Is 500 × 107Pa or more, preferably 505 × 107Pa or more, more preferably 510 × 107Pa or above.
< moisture resistance stability >
The moisture resistance stability RC (surface method) of the optical glass was measured according to the test method specified in GB/T7962.15-2010.
The moisture resistance stability (RC) of the optical glass of the present invention is 2 or more, preferably 1.
[ production method ]
The method for manufacturing the optical glass comprises the following steps: the glass is produced by adopting conventional raw materials and conventional processes, carbonate, nitrate, sulfate, hydroxide, oxide and the like are used as raw materials, the materials are mixed according to a conventional method, the mixed furnace burden is put into a smelting furnace (such as a platinum crucible, a quartz crucible and the like) at 1150-1300 ℃ for smelting, and after clarification, stirring and homogenization, homogeneous molten glass without bubbles and undissolved substances is obtained, and the molten glass is cast in a mold and annealed. Those skilled in the art can appropriately select the raw materials, the process method and the process parameters according to the actual needs.
Glass preform and optical element
The glass preform can be produced from the optical glass produced by, for example, grinding or press molding such as reheat press molding or precision press molding. That is, the glass preform may be produced by machining the optical glass by grinding, polishing, or the like, or by producing a preform for press molding from the optical glass, subjecting the preform to reheat press molding, and then polishing, or by precision press molding the preform obtained by polishing.
It should be noted that the means for producing the glass preform is not limited to the above means. As described above, the optical glass of the present invention is useful for various optical elements and optical designs, and among them, it is particularly preferable to form a preform from the optical glass of the present invention, and use the preform for reheat press forming, precision press forming, or the like to produce optical elements such as lenses, prisms, or the like.
The glass preform of the present invention and the optical element are each formed of the above-described optical glass of the present invention. The glass preform of the present invention has excellent characteristics possessed by optical glass; the optical element of the present invention has excellent characteristics of optical glass, and can provide optical elements such as various lenses and prisms having high optical values.
Examples of the lens include various lenses such as a concave meniscus lens, a convex meniscus lens, a double convex lens, a double concave lens, a plano-convex lens, and a plano-concave lens, each of which has a spherical or aspherical lens surface.
[ optical instruments ]
The optical element formed by the optical glass can be used for manufacturing optical instruments such as photographic equipment, camera equipment, display equipment, monitoring equipment and the like.
Examples
< example of optical glass >
In order to further clarify the explanation and explanation of the technical solution of the present invention, the following non-limiting examples are provided.
In this example, optical glasses having compositions shown in tables 1 to 2 were obtained by the above-mentioned method for producing optical glasses. The characteristics of each glass were measured by the test method described in the present invention, and the measurement results are shown in tables 1 to 2.
TABLE 1
TABLE 2
< glass preform example >
Various lenses such as a concave meniscus lens, a convex meniscus lens, a biconvex lens, a biconcave lens, a plano-convex lens and a plano-concave lens, and preforms such as prisms were produced from the glasses obtained in examples 1 to 20 of optical glass by means of polishing or press molding such as reheat press molding and precision press molding.
< optical element example >
The preforms obtained in the above examples of glass preforms were annealed to reduce the deformation in the glass and to fine-tune the optical properties such as refractive index to desired values.
Next, each preform is ground and polished to produce various lenses such as a concave meniscus lens, a convex meniscus lens, a biconvex lens, a biconcave lens, a plano-convex lens, and a plano-concave lens, and prisms. The surface of the resulting optical element may be coated with an antireflection film.
< optical Instrument example >
The optical element obtained by the above-described optical element embodiment is used for, for example, imaging devices, sensors, microscopes, medical technologies, digital projection, communications, optical communication technologies/information transmission, optics/lighting in the automobile field, photolithography, excimer lasers, wafers, computer chips, and integrated circuits and electronic devices including such circuits and chips, or for image pickup devices and apparatuses in the vehicle-mounted field, by forming an optical component or an optical assembly by using one or more optical elements through optical design.
Claims (14)
1. Optical glass, characterized in that its components, expressed in weight percent, contain: SiO 22:26~40%、B2O3:7~20%、BaO:40~55%、Al2O3: 1 to 12% of B, wherein2O3/SiO20.20 to 0.70.
2. An optical glass according to claim 1, characterised in that it further comprises, in percentages by weight: TiO 22:0~5%、MgO:0~5%、CaO:0~5%、SrO:0~5%、Rn2O:0~8%、Ln2O3:0~8%、ZnO:0~8%、ZrO2: 0-5% of a clarifying agent: 0-2% of Ln2O3Is La2O3、Gd2O3、Y2O3、Yb2O3One or more of,Rn2O is Li2O、Na2O、K2One or more of O and Sb as clarifier2O3、SnO2、SnO、CeO2One or more of (a).
3. Optical glass, characterized in that its composition, expressed in weight percentage, is represented by SiO2:26~40%、B2O3:7~20%、BaO:40~55%、Al2O3:1~12%、TiO2:0~5%、MgO:0~5%、CaO:0~5%、SrO:0~5%、Rn2O:0~8%、Ln2O3:0~8%、ZnO:0~8%、ZrO2: 0-5% of a clarifying agent: 0 to 2% of a component B2O3/SiO20.20 to 0.70, the Ln2O3Is La2O3、Gd2O3、Y2O3、Yb2O3One or more of (1), Rn2O is Li2O、Na2O、K2One or more of O and Sb as clarifier2O3、SnO2、SnO、CeO2One or more of (a).
4. An optical glass according to any one of claims 1 to 3, characterised in that its components are expressed in weight percentage, in which: SiO 22: 28-38%, and/or B2O3: 8-16%, and/or BaO: 42 to 52%, and/or Al2O3: 2 to 10%, and/or TiO2: 0-3%, and/or MgO: 0-3%, and/or CaO: 0-4%, and/or SrO: 0 to 3%, and/or Rn2O: 0 to 4%, and/or Ln2O3: 0-5%, and/or ZnO: 0.1 to 4%, and/or ZrO2: 0-3%, and/or a clarifying agent: 0 to 1 percent.
5. An optical glass according to any one of claims 1 to 3, characterised in that its components are expressed in weight percentage, in which: SiO 22:30~35%And/or B2O3: 10-15%, and/or BaO: 44-50% and/or Al2O3: 3 to 8%, and/or TiO2: 0-2%, and/or MgO: 0-2%, and/or CaO: 0-3%, and/or SrO: 0 to 2%, and/or Rn2O: 0 to 2%, and/or Ln2O3: 0-3%, and/or ZnO: 0.5 to 3%, and/or ZrO2: 0 to 2%, and/or Sb2O3:0~1%。
6. An optical glass according to any one of claims 1 to 3, characterised in that its components are expressed in weight percentage, in which: b is2O3/SiO20.25 to 0.50; and/or B2O3The ratio of/BaO is 0.15-0.45; and/or BaO/SiO2Greater than 1.0 but less than or equal to 2.0; and/or (TiO)2+ZrO2) The ratio of/BaO is less than 0.20; and/or Rn2O/BaO is less than 0.15; and/or (ZnO + CaO + TiO)2) The ratio of/BaO is 0.25 or less.
7. An optical glass according to any one of claims 1 to 3, characterised in that its components are expressed in weight percentage, in which: b is2O3/SiO20.34 to 0.42; and/or B2O3The ratio of/BaO is 0.20-0.35; and/or BaO/SiO21.10 to 1.80; and/or (TiO)2+ZrO2) The ratio of/BaO is less than 0.15; and/or Rn2O/BaO is less than 0.10; and/or (ZnO + CaO + TiO)2) The ratio of/BaO is 0.20 or less.
8. An optical glass according to any one of claims 1 to 3, characterised in that its components are expressed in weight percentage, in which: b is2O3The ratio of/BaO is 0.24-0.32; and/or BaO/SiO21.25 to 1.60; and/or (TiO)2+ZrO2) The ratio of/BaO is less than 0.10; and/or Rn2O/BaO is less than 0.05; and/or (ZnO + CaO + TiO)2) The ratio of/BaO is 0.10 or less.
9. According to the rightAn optical glass according to any one of claims 1 to 3, characterized in that it does not contain Rn2O, and/or does not contain ZrO2And/or does not contain Ln2O3。
10. An optical glass according to any one of claims 1 to 3, wherein the optical glass has a refractive index nd of 1.57 to 1.65, preferably a refractive index nd of 1.58 to 1.64, more preferably a refractive index nd of 1.60 to 1.63; abbe number vdIs 55 to 63, and the Abbe number v is preferredd56 to 61, more preferably Abbe number vdIs 57 to 60.
11. The optical glass according to any one of claims 1 to 3, wherein the optical glass has a moisture resistance stability RC of 2 or more, preferably a moisture resistance stability RC of 1; and/or lambda80Less than or equal to 380nm, preferably lambda80Less than or equal to 370nm, more preferably lambda80Less than or equal to 365 nm; and/or lambda5Less than or equal to 330nm, preferably lambda5Less than or equal to 320nm, more preferably lambda5Less than or equal to 315 nm; and/or a density p of 3.70g/cm3Hereinafter, the density ρ is preferably 3.65g/cm3Hereinafter, the density ρ is more preferably 3.60g/cm3And/or coefficient of thermal expansion α-30/70℃Is 80 × 10-7below/K, the thermal expansion coefficient is preferably α-30/70℃Is 75 × 10-7A thermal expansion coefficient of α or less is more preferable-30/70℃Is 70 × 10-7below/K; and/or Knoop hardness HKIs 500 × 107Pa or more, preferably Knoop hardness HKIs 505 × 107Pa or more, more preferably Knoop hardness HKIs 510 × 107Pa is above; and/or degree of wear FA100 to 150, preferably the degree of wear FA110 to 140, more preferably a degree of abrasion FAIs 120 to 135.
12. A glass preform made of the optical glass according to any one of claims 1 to 11.
13. An optical element produced from the optical glass according to any one of claims 1 to 11 or the glass preform according to claim 12.
14. An optical device comprising the optical glass according to any one of claims 1 to 11 or the optical element according to claim 13.
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Cited By (1)
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CN112110644A (en) * | 2020-09-23 | 2020-12-22 | 成都光明光电股份有限公司 | Glass composition and chemically strengthened glass |
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