Radiation-blocking agents for contact lenses
A dual benzotriazole HEVL absorber combination in contact lens formulations addresses the yellowing issue, achieving effective blue light blocking and maintaining lens quality.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2024-05-14
- Publication Date
- 2026-04-09
AI Technical Summary
Existing contact lens formulations using benzotriazole blue light blockers require large quantities to effectively block harmful wavelengths, leading to undesirable yellowing and lens defects, affecting wettability and consumer acceptance.
A combination of two different benzotriazole high-energy visible light (HEVL) absorbers with distinct absorption characteristics is used in contact lens formulations, along with a benzophenone UV absorber, to achieve effective blue light blocking without excessive yellowing.
The formulation effectively reduces blue light transmission by at least 40-50% in the 380-455 nm range without substantial yellowing, maintaining lens quality and consumer appeal.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to combinations of radiation-blocking agents for use in contact lenses, and to contact lenses comprising such combinations of radiation-blocking agents. In particular, the present invention relates to combinations of radiation-blocking agents found to impart advantageous properties, including advantageous light transmission properties, to hydrogel contact lenses. [Background technology]
[0002] The eyes are at potential risk of damage when exposed to light in the ultraviolet (UV), visible, and infrared (IR) bands of the electromagnetic spectrum. UV light has the highest energy and is the most likely to cause damage, followed by the violet-blue component of the visible spectrum, i.e., high-energy visible light (HEVL) at wavelengths of 380–455 nm. Compounds that absorb wavelengths of light harmful to the human eye are already included in contact lens formulations. Many UV absorbers are known as components of polymer materials used to manufacture ophthalmic lenses, including contact lenses. UV absorbers are typically compounds containing chromophores that absorb light in the UV spectrum, i.e., wavelengths in the range of 100–380 nm. Benzotriazole, benzophenone, and triazine-containing compounds are known to absorb UV light, and such compounds can be added to contact lens materials to provide protection from UV irradiation. In addition to blocking UV light, some ophthalmic lenses also block blue light. For example, as described in US5,470,932, yellow dyes containing polymerizable yellow dyes are added to contact lenses to absorb harmful blue light irradiation. These lenses block both UV and HEVL by using two types of chromophores: UV absorbers and yellow dyes. Many yellow dyes absorb blue light over a broad wavelength range and reduce the transmission of blue light in the 380–500 nm range.
[0003] When a sharper cutoff of the transmission spectrum in the high-energy blue-violet range is desired, selective blue light blockers can be used, as described in U.S. Patent Application Publication No. 2005 / 0243272 and WO2008 / 048880. Such blue light blockers selectively filter wavelengths in the 380–455 nm range, often with little to no absorption of wavelengths above 450 nm. Benzotriazole blue light blockers have been developed to selectively absorb light having wavelengths in the 380–455 nm range. However, it has been found that known benzotriazole blue light blockers may need to be included in large quantities to substantially reduce the transmission level of light in the 380–455 nm range and / or can lead to undesirable yellowing of the resulting contact lenses. Including large amounts of benzotriazole blue light blockers in contact lens formulations, for example, more than 2% by mass of the total lens composition, may adversely affect the properties of the contact lens material and / or interfere with the processing of the contact lens formulations. For example, including high levels of irradiation-absorbing compounds in a hydrogel contact lens formulation can reduce the wettability of the resulting hydrogel contact lens, leading to a higher incidence of lens defects and / or hindering the removal of the hydrogel lens from the mold after casting. Including blue light blocking agents, particularly in large quantities, in a lens formulation can also lead to the imparting of a yellowish tint to the lens. This yellowish tint to contact lenses gives the wearer's eyes an undesirable yellowish hue, which is less acceptable to consumers than lenses that do not alter the natural color of the eye.
[0004] U.S. Patent Application Publication No. 2021 / 0181379 describes a lens formulation comprising a benzotriazole UV absorber, such as Norbloc, together with a benzotriazole HEVL absorber, to reduce the transmittance of both UV and violet light through the contact lens. It is also known that contact lenses may contain tinting agents to change their color for aesthetic purposes or to make them more visible when the lenses are in solution. Although tinting agents can be used to neutralize the yellowing effect of blue light blocking agents, when included in low amounts such as 3% by mass or less in the lens formulation, they can substantially reduce the transmission of harmful wavelengths of light. These are irradiation absorbers for use in the formulation of hydrogel contact lenses, particularly silicone hydrogel contact lenses. package There is a need for this. Ideally, hydrogel contact lenses manufactured using such formulations would also not yellow. [Overview of the project]
[0005] In a first aspect, the present invention relates to the formulation of a hydrogel contact lens for use in the formulation of a hydrogel contact lens comprising a first high-energy short-wavelength visible light absorbing material containing a benzotriazole moiety and a second different high-energy short-wavelength visible light absorbing material containing a benzotriazole moiety. package The present invention provides an irradiation absorber according to a first embodiment of the present invention. package This may further contain a polymerizable UV absorber that includes a benzophenone moiety. In a second aspect, the present invention relates to the irradiation absorber of the first aspect of the present invention. package The present invention provides hydrogel contact lens formulations, particularly silicone hydrogel contact lens formulations, which include a benzotriazole moiety. A hydrogel contact lens formulation is a polymerizable formulation for forming a hydrogel contact lens body. Therefore, a hydrogel contact lens formulation according to a second aspect of the present invention comprises a first high-energy short-wavelength visible light absorber comprising a benzotriazole moiety and a second different high-energy short-wavelength visible light absorber comprising a benzotriazole moiety. A hydrogel contact lens formulation according to a second aspect of the present invention may further comprise a polymerizable UV absorber comprising a benzophenone moiety. In addition to the irradiation-absorbing compound, a hydrogel contact lens formulation according to a second aspect of the present invention typically comprises a polymerizable monomer, oligomer and / or prepolymer, one or more crosslinking agents, and one or more polymerization initiators.
[0006] In a third aspect, the present invention provides a hydrogel contact lens formed from polymerization of a formulation of the second aspect of the present invention, particularly a silicone hydrogel contact lens. Accordingly, the polymer lens material of the hydrogel contact lens of the third aspect of the present invention comprises a first high-energy short-wavelength visible light absorbing unit comprising a benzotriazole moiety and a second different high-energy short-wavelength visible light absorbing unit comprising a benzotriazole moiety. The polymer lens material of the hydrogel contact lens of the third aspect of the present invention may further comprise a UV light absorbing unit comprising a benzophenone moiety. In a fourth aspect, the present invention provides a method for producing a hydrogel contact lens, particularly a silicone hydrogel contact lens, comprising the step of polymerizing a formulation of the second aspect of the present invention to form a polymer contact lens body. Accordingly, the method for producing a hydrogel contact lens of the fourth aspect of the present invention comprises the step of polymerizing a formulation comprising a first high-energy short-wavelength visible light absorber comprising a benzotriazole moiety and a second different high-energy short-wavelength visible light absorber comprising a benzotriazole moiety to form a polymer contact lens body. The formulation polymerized by the method of the fourth aspect of the present invention may further comprise a polymerizable UV absorber comprising a benzophenone moiety.
[0007] It has been found that by including a combination of two different benzotriazole HEVL absorbers, each having different absorption characteristics, in a contact lens formulation, it is possible to obtain a contact lens with improved properties that can be manufactured using a single type of benzotriazole HEVL light absorber. In particular, it has been found that contact lenses manufactured from formulations containing a combination of two different benzotriazole HEVL absorbers result in a desirable reduction in the transmission level of light in the 380-455 nm range by the contact lens, when the total amount of benzotriazole high-energy short-wavelength visible light absorber contained in the formulation is lower. In addition, it has been found that contact lenses manufactured from the formulation of the present invention containing a combination of two different benzotriazole high-energy short-wavelength visible light absorbers result in a desirable reduction in the transmission level of light in the 380-455 nm range by the contact lens without substantially yellowing of the contact lens body. In particular, it has been found that the formulation of the present invention provides a hydrogel contact lens that blocks at least 40%, and especially at least 50%, of blue light in the 380-455 nm range without excessive yellowing or the need for large amounts of blue light blocking agents. Advantageously, the highest wavelength at which a 0.003 mass% solution of the second HEVL absorber in ethyl acetate (≧99.8%, HPLC grade) has an absorbance of 0.1 is at least 10 nm lower than the highest wavelength at which a 0.003 mass% solution of the first HEVL absorber in ethyl acetate has an absorbance of 0.1, where the absorbance of the solution is measured in a quartz cell with a path length of 10 mm using a Perkin Elmer Lambda 365 spectrometer. [Brief explanation of the drawing]
[0008] [Figure 1] This figure shows the photoabsorbance spectra of 0.003 mass% solutions of Norbloc, UV416, UV13, and UV28 in ethyl acetate, with the y-axis representing absorbance and the x-axis representing wavelength in units of nm. [Figure 2]This figure shows the photoabsorbance spectra of 0.003 mass% solutions of UV1, UV5 (UVAM), UV13, UV15, and UV28 in ethyl acetate (≧99.8%, HPLC grade), with the y-axis representing absorbance and the x-axis representing wavelength in units of nm. [Modes for carrying out the invention]
[0009] This disclosure will be more fully understood and further advantages will become apparent when references are made to the following detailed descriptions of embodiments of this disclosure. The present invention is described in more detail by specific references to formulations of a second aspect of the present invention, referred hereafter as “formulations of the present invention,” i.e., formulations used in the method of a fourth aspect of the present invention. However, contact lenses of a third aspect of the present invention can be obtained, for example, by polymerizing formulations of a second aspect of the present invention according to the method of a fourth aspect of the present invention, and it will be understood that the components of formulations of a second aspect of the present invention exist in polymerized form of the polymer lens material of contact lenses of a third aspect of the present invention. Similarly, irradiation absorbers of a first aspect of the present invention package It is understood that this is a component of a formulation of the second embodiment of the present invention, which includes a chromophore that absorbs light across the UV and visible spectra. Irradiation absorber as referenced herein package The features of a formulation or lens or its components, or a method for manufacturing a lens (depending on the context), may be combined in any combination of features described earlier or later, unless a particular combination of features is mutually exclusive or the context indicates otherwise. Furthermore, as used herein, the singular forms “a,” “an,” and “the” include multiple references (e.g., at least one or more) unless the context clearly states otherwise. Thus, for example, a reference to “a contact lens” includes a single lens and two or more lenses, one or different.
[0010] This disclosure is based on the discovery that by including a combination of at least two different benzotriazole HEVL absorbers in the polymerizable formulation from which the contact lenses are manufactured, it is possible to more effectively provide contact lenses with blue light blocking properties that prevent the transmission of significant amounts of HEVL. Such a combination balances the undesirable yellow tint of the blue light blocking lenses by including a second HEVL absorber that absorbs at shorter wavelengths than the first HEVL absorber. Such a combination also absorbed light in the 380–455 nm wavelength range at a higher rate than can be obtained using a single benzotriazole HEVL absorber. Optionally, a third irradiation absorption compound, such as a benzophenone UV absorber, is included to enhance the absorbance of UV light below 380 nm. Benzophenone UV absorbers have been found to be particularly suitable for inclusion in combinations with benzotriazole HEVL absorbers due to having a significantly different absorption profile. In the third aspect of the present invention, the “polymer contact lens material” refers to a material bonded to the contact lens body, whether by covalent bonding, physical engagement, or other means. Materials that can be removed from the lens body by extraction with water, ethanol, isopropanol, or mixtures thereof are not components of the polymer contact lens material, nor are solvents such as water that can be removed from the contact lens body by drying. Polymerizable components of the formulations of the second aspect of the present invention are typically incorporated into the polymer contact lens material of the third aspect of the present invention.
[0011] "Irradiation material" package The term "color tint" collectively refers to UV-blocking agents, high-energy short-wavelength visible light absorbers, and colored tints that absorb light in the 100-700 nm wavelength range. High-energy visible light (HEVL) absorbers are compounds containing a chromophore that absorbs visible light in the violet-blue range from 350 to 455 nm. Typically, HEVL absorbers have an absorption maximum (λmax) in the 350 to 455 nm range, particularly in the 350 to 400 nm range. As used herein, the term “high-energy visible light (HEVL) absorber” may be defined as a compound having an absorbance of at least 0.5 in the range of 375 nm to 450 nm as a 0.003 mass% solution in ethyl acetate (≧99.8%, HPLC grade) (the solution is measured by the absorbance of the solution at 250 to 800 mm, measured using a quartz cell with a 10 mm path length and a Perkin Elmer Lambda 365). HEVL absorbers may further absorb light at shorter wavelengths, e.g., in the 250 to 350 nm range, and therefore can function as both HEVL and UV absorbers, as discussed below. Unless otherwise stated, all absorbance spectra referenced herein are measured using a Perkin Elmer Lambda 365 spectrometer in a quartz cell with a path length of 10 mm, as a ≥99.8% solution in HPLC-grade ethyl acetate at 0.003 mass%.
[0012] Advantageously, HEVL absorbers used in contact lens formulations, including the contact lens formulations of the present invention, have polymerizable moieties in their chemical structure, such as vinyl, acrylate, or methacrylate functional groups, for covalent incorporation into the contact lens material during polymerization. Once incorporated into the polymer contact lens material, the HEVL absorbers impart HEVL absorption properties to the polymer contact lens material. The HEVL absorbers used in the present invention are typically soluble in contact lens formulations and polymerizable, so they form part of the polymer matrix of the lens and are retained in the lens during autoclaving and storage.
[0013] In this specification, references to the amount of ingredient or component present in a formulation, expressed in terms of mass percentage (i.e., %(mass / mass)), refer to the amount of all formulation components except diluents and / or solvents that are not incorporated into the final polymer contact lens material. Therefore, for example, 1.5 parts of irradiation absorber package Irradiation absorber in a formulation prepared by mixing together 65 parts monomer, 3.5 parts other active ingredients (e.g., polymerization initiator, colorant, oxygen scavenger, etc.), and 30 parts organic solvent and / or water (totaling 100 parts). package The amount is 2.1% (mass / mass). As used herein, “component” of a formulation refers collectively to all ingredients of a particular type. For example, if a formulation contains 20% (mass / mass) of a first siloxane monomer and 15% of a second siloxane monomer and no other siloxanes, the formulation may be described as containing 35% (mass / mass) of the siloxane component. Advantageously, the benzotriazole HEVL absorbent component in the formulation of the second aspect of the present invention or the benzotriazole HEVL absorbent component in the formulation used in the method of the fourth aspect of the present invention shall not exceed 2.7% (mass / mass), preferably not exceeding 2.0% (mass / mass). Advantageously, the total amount of all HEVL absorbents present in the formulation of the second or fourth aspect of the present invention shall not exceed 2.7% (mass / mass), preferably not exceeding 2.0% (mass / mass). Alternatively or in addition, the total amount of benzotriazole compounds present in the formulation of the second or fourth aspect of the present invention may not exceed 2.7% (mass / mass), preferably not exceeding 2.0% (mass / mass). Advantageously, the total amount of benzotriazole HEVL absorbents incorporated into the polymer lens material of the third aspect of the present invention shall not exceed 2.7% (mass / mass) of the total polymer lens material, preferably not exceeding 2.0% (mass / mass). Advantageously, the total amount of all HEVL absorbers incorporated into the polymer lens material of the third aspect of the present invention does not exceed 2.7% (mass / mass) of the total polymer lens material, preferably 2.0% (mass / mass). Alternatively or in addition, the total amount of benzotriazole compounds present in the polymer lens material of the third aspect of the present invention does not need to exceed 2.7% (mass / mass) of the total polymer lens material, preferably 2.0% (mass / mass).
[0014] The first HEVL absorbent may be present in the formulation in an amount of 0.3% to 0.9% (mass / mass), preferably 0.4% to 0.7% (mass / mass). The second HEVL absorbent may be present in the formulation in an amount of 0.5% to 2.2% (mass / mass), preferably 0.7% to 1.6% (mass / mass). Optionally, the first HEVL absorbent may be present in the formulation in an amount of 0.3% to 0.9% (mass / mass), preferably 0.4% to 0.7% (mass / mass), and the second HEVL absorbent may be present in an amount of 0.5% to 2.2% (mass / mass), preferably 0.7% to 1.6% (mass / mass).
[0015] The first and second HEVL absorbents of the formulation of the second aspect of the present invention or the formulation used in the method of the fourth aspect of the present invention may each be of formula (1).
Chemical formula
[0016]
Chemical formula
[0017] [ka] and; ○ Each R 10 Independently, C 1-10 Alkyl, or C 3-10 It is an alkenil; ○ R 11 C 3-10 It is a cycloalkenylene; ○ R 12 C 1-10 (It is alkylene or 1,2-phenylene.)
[0018] In some aspects of the present invention, the first and second HEVL absorbers may each be those of the above formula (1). (In the formula, · R 1 However, halogen, OH, C 1-12 Alkyloxy, possibly substituted C 1-12 Alkyl, optionally substituted phenoxy, or optionally substituted naphthyloxy, where any substituent is halogen, C 1-6 Alkyl, C 1-6 Alkoxy, OH, -(CH2CH2O) n H, -(CH2CH2O) n CH2CH3, -(CH2CH(CH3)O) n H, or -(CH2CH(CH3)O) n It is CH2CH2(CH3); · R 6 and R 7 C may have one of the atoms substituted with H or a halogen. 1-12 It is alkyl; · R 6 and R 7 The other side is,
[0019] [ka] and; ○ R 2 However, the bond may be substituted with -OH and / or interrupted by an ester group. 1-12 Alkylene, (CH2CH2O) n , or (CH2CH(CH3)O) n and; ○ R 3 However, the bond is C(O), C(O)C j H 2j , C 1-6 Alkylene, phenyl, or C 1-6 It is an alkylphenyl; ○ X is a bond, O, NR 4 , S, or (Si(CH3)2O) m It is Si(CH3)2; ○ Each R4 is independently H or methyl; ○ R 5 is H, C 1-6 alkyl or phenyl; ○ m is 0 - 9; ○ n is 2 - 10; ○ j is 1 - 6)
[0020] In a further aspect of the present invention, the first and second HEVL absorbents may each be of the above formula (1). (wherein, · R 1 is H, Cl, Br, OH, C 1-4 alkoxy, optionally substituted C 1-4 alkyl or phenoxy; · R 6 and R 7 one of which is H or optionally substituted C 1-4 alkyl; · R 6 and R 7 the other is
[0021]
Chemical formula
[0022]
Chemical formula
[0023] The first and second HEVL absorbents of the formulation of the second aspect of the present invention or the formulation used in the method of the fourth aspect of the present invention may each be of the formula (1a).
Chemical formula
[0024] In the compounds of formulas (1) and (1a) above, R 2 (CH2CH2O) n or (CH2CH(CH3)O) n In that case, X is typically something other than O, for example, R 2 (CH2CH2O) n or (CH2CH(CH3)O) n If this is the case, X may be conjugated. To avoid any ambiguity, if two or more of the adjacent R2, X, and R3 groups are bonds in the compounds of formulas (1) and (1a) above, then the two or more adjacent groups will together form a single bond. As used herein, the term "alkyl" refers to both linear and branched alkyl groups unless otherwise specified. For example, a reference to a C4 alkyl group refers to any or all of the n-butyl, isobutyl, s-butyl, and t-butyl groups. As used herein, the term "alkylene" refers to both linear and branched divalent saturated alkanediyl groups unless otherwise specified. For example, a reference to a C3 alkylene refers to any or all of the -CH2-CH2-CH2-, -CH(CH3)-CH2-, -CH2-CH(CH3)-, -C(CH3)2-, and -CH(CH2CH3)- groups.
[0025] Optionally, the polymer contact lens material of a third aspect of the present invention comprises two different units derived from the polymerization of the compound of formula (1) above. The first and second HEVL absorbents in the formulation used in the second embodiment of the present invention or the method of the fourth embodiment of the present invention may each be of formula (2). [ka] (In the formula, A is -S- or -SO2-; R 1 C may be substituted with -OH and / or interrupted by ester groups. 1-12 It is alkylene; R 2 H, C 1-12 Alkyl, C 6-15 Arylalkyl, or -R 3 Y is; R 3 C may be substituted with -OH and / or interrupted by ester groups. 1-12 It is alkylene; X and Y are, respectively, -OH and -OC(O)R.4 -NH2, -NC(O)R 4 -NCO, -CO2H, -CO2R 4 ,
[0026] [ka] And, R 4 Each of them independently, C 1-12 Alkyl, or C 3-10 It is an alkenil; R 5 C 3-10 It is a cycloalkenylene; R 6 C 1-10 (It is alkylene or 1,2-phenylene.)
[0027] Examples of HEVL absorbents of formula (2) can be found in U.S. Patent Application Publication No. 2021 / 0214321, which are incorporated herein by reference. Specific examples of HEVL absorbents of formula (2) that may be included in the formulations of the present invention are formulas (I-1) to (I-13) in U.S. Patent Application Publication No. 2021 / 0214321. It has been found that the presence of a sulfur-containing group at the 5-position of the benzotriazole ring of the HEVL absorber of formula (2) results in a red shift to the basic absorption peak of the benzotriazole compound compared to, for example, the compounds of formula (1) or (1a) above that do not contain a sulfur-containing group. Therefore, the compounds of formula (2) may be particularly useful as a second HEVL absorber in the formulations of the present invention. The formulations of the present invention may, for example, include UV28 as a first HEVL absorber and the compound of formula (2) as a second HEVL absorber. It has also been found that the presence of a sulfur-containing group at the 5-position of the benzotriazole ring of the HEVL absorber of formula (2) results in an upward expansion of the absorption range of the benzotriazole compound, resulting in a higher level of absorbance in the 400-450 nm range, compared to, for example, the compounds of formula (1) or (1a) above that do not contain a sulfur-containing group. Therefore, some compounds of formula (2) may also be useful as a first HEVL absorber in the formulations of the present invention.
[0028] Examples of benzotriazole HEVL absorbents include: 2-(1,1-dimethylethyl)-4-[3-[(4-ethenylphenyl)methoxy]propoxy]-6-(5-methoxy-2H-benzotriazol-2-yl)-phenol (UV1, CAS number 159732-06-6): [ka] UV1 2-(5-chloro-2H-benzotriazol-2-yl)-6-(1,1-dimethylethyl)-4-ethenylphenol (UV5 / UVAM, CAS number 124883-10-9):
[0029] [ka] UV5 2-(2-hydroxy-5-methacrylamidephenyl)-5-methoxy-2H-benzotriazole (UV6, CAS number 110927-08-7): [ka] UV6 2-(3-allyl-2-hydroxy-5-methylphenyl)-2H-benzotriazole (UV9, CAS number 2170-39-0):
[0030] [ka] UV9 1-Methallyl-2-(2-hydroxy-5-methylphenyl)benzotriazole (UV12, CAS number 98809-58-6):
[0031] [ka] UV12 2-[2'-Hydroxy-3'-tert-butyl-5'-(3''-methacryloyloxypropoxy)phenyl]-5-methoxy-2H-benzotriazole (UV13, CAS No. 114166-71-1):
[0032] [ka] UV13 2-3'-t-butyl-2'-hydroxy-5'-(3''-dimethylvinylsilylpropoxy)-2'-hydroxyphenyl)-5-methoxybenzotriazole (UV15, CAS No. 122430-79-9):
[0033] [ka] UV15 2-(2'-hydroxy-5'-methacryloylpropyl-3'-tert-butylphenyl)-5-methoxy-2H-benzotriazole (UV16, CAS No. 1245624-41-2):
[0034] [ka] UV16 3-[3-(1,1-dimethylethyl)-4-hydroxy-5-[5-(trifluoromethyl)-2H-benzotriazol-2-yl]phenoxy]propyl ester 2-methyl-2-propenoic acid (UV23, CAS number 2050905-16-1):
[0035] [ka] UV23 2-[2'-Hydroxy-3'-tert-butyl-5'-(3''-methacryloyloxypropoxy)phenyl]-5-chloro-2H-benzotriazole (UV28, CAS No. 275371-71-6):
[0036] [ka] UV28 and 3-[3-(2H-benzotriazol-2-yl)-5-(1,1-dimethylethyl)-4-hydroxyphenoxy]propyl ester 2-methyl-,2-propenoic acid (UV29, CAS number 2254219-66-2):
[0037] [ka] UV29 These are some examples.
[0038] All of the above HEVL absorbers are available from LYNN Laboratories, Inc., 2797 Irving Blvd STE 110, Dallas, TX 75207. The first HEVL absorber has an absorption cutoff at a higher wavelength than the second HEVL absorber. For example, the highest wavelength at which a 0.003 mass% solution of the first HEVL absorber in ethyl acetate has an absorbance of 0.1 may be at least 5 nm, and particularly at least 10 nm, higher than the highest wavelength at which a 0.003 mass% solution of the second HEVL absorber in ethyl acetate has an absorbance of 0.1. The first HEVL absorber has an absorbance of a higher level than the second HEVL absorber in the 380-425 nm range, for example, as a 0.003 mass% solution in ethyl acetate. The second HEVL absorber has an absorbance of a higher level than the first HEVL absorber in the 350-375 nm range, for example, as a 0.003 mass% solution in ethyl acetate.
[0039] Figure 1 shows the absorption spectra of 0.003 mass% solutions of HEVL absorbers UV13 and UV28 in ethyl acetate. UV28 has an absorption cutoff at a higher wavelength than UV13. The highest wavelength at which a 0.003 mass% solution of UV28 in ethyl acetate has an absorbance of 0.1 is 420 nm, while the highest wavelength at which a 0.003 mass% solution of UV13 in ethyl acetate has an absorbance of 0.1 is 406 nm. UV28 has a higher absorbance than UV13 in the 380-425 nm range, and UV13 has a higher absorbance than UV28 in the 350-375 nm range.
[0040] The first and second HEVL absorbers may be characterized in that, in the absorption spectra of 0.003 mass% solutions of the first and second HEVL absorbers in ethyl acetate, the tangent to the curve at the point defined by the highest wavelength at which the absorbance of the absorption spectrum of the first HEVL absorber is 0.5 intersects the 0.0 absorbance axis of the absorption spectrum of the first HEVL absorber at a wavelength at least 5 nm longer, and particularly at least 10 nm longer, than the wavelength at which the tangent to the curve at the point defined by the highest wavelength at which the absorbance of the absorption spectrum of the second HEVL absorber is 0.5 intersects the 0.0 absorbance axis. The first HEVL absorber may be characterized in that, in the absorption spectrum of a 0.003 mass% solution of the first HEVL absorber in ethyl acetate, the tangent to the curve at the point defined by the highest wavelength with an absorbance of 0.5 intersects the 0.0 absorbance axis at 412-440 nm, 415-435 nm, preferably 415-430 nm. The second HEVL absorber may be characterized in that, in the absorption spectrum of a 0.003 mass% solution of the second HEVL absorber in ethyl acetate, the tangent to the curve at the point defined by the highest wavelength with an absorbance of 0.5 intersects the 0.0 absorbance axis at a wavelength shorter than the wavelength at which the tangent to the curve at the point defined by the highest wavelength with an absorbance of 0.5 intersects the 0.0 absorbance axis of the absorption spectrum of a 0.003 mass% solution of the first HEVL absorber in ethyl acetate intersects the 0.0 absorbance axis, for example, at least 5 nm shorter, and particularly at least 10 nm shorter. Alternatively, or in addition, the second HEVL absorber may be characterized in that, in the absorption spectrum of a 0.003 mass% solution of the second HEVL absorber in ethyl acetate, the tangent to the curve at the point defined by the highest wavelength with an absorbance of 0.5 intersects the 0.0 absorbance axis at 385–415 nm, preferably 390–412 nm.
[0041] As can be seen from Figure 1, for the absorption spectrum of a 0.003 mass% UV28 solution in ethyl acetate, the tangent line (A) to the point defined by the highest wavelength with an absorbance of 0.5 intersects the 0.0 absorbance axis at 422 nm. For the absorption spectrum of a 0.003 mass% UV13 solution in ethyl acetate, the tangent line (B) to the point defined by the highest wavelength with an absorbance of 0.5 intersects the 0.0 absorbance axis at 407 nm. The first HEVL absorber may be characterized in that, with respect to the absorption spectrum of a 0.003 mass% solution of the first HEVL absorber in ethyl acetate, the highest wavelength at which the absorbance is 0.1 is 412-440 nm, 415-435 nm, preferably 415-430 nm. The second HEVL absorber may be characterized in that, with respect to the absorption spectrum of a 0.003 mass% solution of the second HEVL absorber in ethyl acetate, the highest wavelength at which the absorbance is 0.1 is shorter than the wavelength at which the absorbance is 0.1 in the absorption spectrum of a 0.003 mass% solution of the first HEVL absorber in ethyl acetate, for example, at least 5 nm shorter, and particularly at least 8 nm shorter. Alternatively, or in addition, the second HEVL absorber may be characterized in that, with respect to the absorption spectrum of a 0.003 mass% solution of the second HEVL absorber in ethyl acetate, the highest wavelength at which the absorbance is 0.1 is 385 to 412 nm, preferably 390 to 410 nm. As can be seen from Figure 2, the highest wavelength at which the absorbance is 0.1 for a 0.003 mass% solution of UV28 in ethyl acetate is 420 nm. For a 0.003 mass% solution of UV13 in ethyl acetate, the highest wavelength at which the absorbance is 0.1 is 406 nm, which is >8 nm shorter than the highest wavelength at which the absorbance is 0.1 for a 0.003 mass% solution of UV28 in ethyl acetate.
[0042] Advantageously, a 0.003 mass% solution of the first HEVL absorber in ethyl acetate has an absorbance peak in the range of 360–410 nm, for example, 360–400 nm, and particularly 360–390 nm. Advantageously, a 0.003 mass% solution of the second HEVL absorber in ethyl acetate has a peak absorbance at a wavelength at least 5 nm shorter than the absorbance peak of the first HEVL absorber in ethyl acetate that falls within the range of 360–410 nm, for example, 5–25 nm shorter, and particularly 5–15 nm shorter. Alternatively or in addition, a 0.003 mass% solution of the first HEVL absorber in ethyl acetate has an absorbance of at least 0.35 for light at a wavelength of 400 nm and / or at least 0.55, particularly at least 0.57 for light at a wavelength of 390 nm. Alternatively, or in addition, a 0.003 mass% solution of the first HEVL absorber in ethyl acetate has an absorbance of at least 0.15, particularly at least 0.20, at a wavelength of 410 nm. Advantageously, a 0.003 mass% solution of the second HEVL absorber in ethyl acetate has an absorbance of less than 0.30 at a wavelength of 400 nm and / or less than 0.55, particularly less than 0.53, at a wavelength of 390 nm. Alternatively, or in addition, a 0.003 mass% solution of the second HEVL absorber in ethyl acetate has an absorbance of less than 0.12, particularly less than 0.10, at a wavelength of 410 nm. Advantageously, the wavelength at which the 0.003 mass% solution of the second HEVL absorber in ethyl acetate has an absorbance of 0.1 is at least 8 nm, particularly at least 10 nm, below the wavelength of the first HEVL absorber.
[0043] As can be seen from Figure 1, a 0.003 mass% solution of UV28 in ethyl acetate has an absorbance peak at 368 nm, and a 0.003 mass% solution of the second HEVL absorber, UV13, in ethyl acetate has an absorbance peak at 359 nm. As can be seen from Figure 2, a 0.003 mass% solution of UV28 in ethyl acetate has an absorbance of approximately 0.43 for light at a wavelength of 400 nm and an absorbance of approximately 0.63 for light at a wavelength of 390 nm. 0.003 mass% solutions of UV1, UV5 (UVAM), UV13, and UV15 each have an absorbance of less than 0.30 for light at a wavelength of 400 nm and an absorbance of less than 0.60 for light at a wavelength of 390 nm. The wavelength at which a 0.003 mass% solution of UV1, UV5 (UVAM), UV13, or UV15 in ethyl acetate has an absorbance of 0.1 is at least 10 nm below the wavelength of UV28.
[0044] It has been found that by including a combination of two HEVL absorbers that meet the above criteria in a contact lens formulation, a lens that particularly effectively delivers high levels of absorbance of violet-blue light in the 380-455 nm range can be obtained. Furthermore, such a combination provides a lens with a desirable color without imparting undesirable yellowing to the wearer's eyes. For example, if the first HEVL absorber has a higher absorbance cutoff, for instance, if the absorption spectrum of a 0.003 mass% solution of the HEVL absorber in ethyl acetate is characterized in that the tangent to the curve at the point defined by the highest wavelength with an absorbance of 0.5 intersects the 0.0 absorbance axis above 440 nm, and / or if the HEVL absorber is characterized in that the highest wavelength with an absorbance of 0.1 in the absorption spectrum of a 0.003 mass% solution of the HEVL absorber in ethyl acetate is above 430 nm, the resulting lens may have a higher yellowing effect, and / or a larger amount of blue tinting agent may be required in the lens formulation to counteract the yellowing effect of the first HEVL absorber. An example of a benzotriazole HEVL that satisfies the absorbance requirements shown above is UV28. An example of a less desirable HEVL absorber with a higher absorbance cutoff is UV23.
[0045] Optionally, at least one of the first and second HEVL absorbents, particularly the first HEVL absorbent, is 2-[2'-hydroxy-3'-tert-butyl-5'-(3''-methacryloyloxypropoxy)phenyl]-5-chloro-2H-benzotriazole (UV28). UV28 may be present in the formulation in an amount of 0.3% to 0.9% (mass / mass), preferably 0.4% to 0.7% (mass / mass). Optionally, the first HEVL absorber is UV28, and the second HEVL absorber is characterized in that the highest wavelength at which a 0.003 mass% solution of the second HEVL absorber in ethyl acetate has an absorbance of 0.1 is 415 nm or less, particularly 410 nm or less. Advantageously, UV28, for example as a 0.003 mass% solution in ethyl acetate, has a higher absorbance than the second HEVL absorber in the 380-425 nm range. Advantageously, the second HEVL absorber, for example as a 0.003 mass% solution in ethyl acetate, has a higher absorbance than UV28 in the 350-375 nm range.
[0046] Optionally, the first HEVL absorber is UV28, and the second HEVL absorber is characterized in that the tangent to the absorption spectrum of a 0.003 mass% solution of the second HEVL absorber in ethyl acetate at the highest wavelength with an absorbance of 0.5 intersects the 0.0 absorbance axis at a wavelength shorter than the wavelength at which the tangent to the absorption spectrum of a 0.003 mass% solution of UV28 in ethyl acetate at the highest wavelength with an absorbance of 0.5 intersects the 0.0 absorbance axis, for example, at least 5 nm shorter, and particularly at least 10 nm shorter. Optionally, the first HEVL absorber is UV28, and the second HEVL absorber is characterized in that the highest wavelength at which the absorbance of a 0.003 mass% solution of the second HEVL absorber has a value of 0.1 is shorter than the wavelength at which the absorbance of a 0.003 mass% solution of UV28 in ethyl acetate has a value of 0.1, for example, at least 5 nm shorter, and particularly at least 8 nm shorter. Optionally, the first HEVL absorber is UV28, and the 0.003 mass% solution of the second HEVL absorber in ethyl acetate has a peak absorbance at a wavelength at least 5 nm shorter, preferably at least 7 nm shorter, and optionally at least 8 nm shorter than the absorption peak of a 0.003 mass% solution of UV28 in ethyl acetate that falls in the range of 360-380 nm.
[0047] Optionally, at least one of the first and second HEVL absorbers, in particular the second HEVL absorber, is selected from 2-(1,1-dimethylethyl)-4-[3-[(4-ethenylphenyl)methoxy]propoxy]-6-(5-methoxy-2H-benzotriazole-2-yl)-phenol (UV1), 2-(5-chloro-2H-benzotriazole-2-yl)-6-(1,1-dimethylethyl)-4-ethenyl-phenol (UV5 / UVAM), 2-[2'-hydroxy-3'-tert-butyl-5'-(3''-methacryloyloxypropoxy)phenyl]-5-methoxy-2H-benzotriazole (UV13), and 2-3'-t-butyl-2'-hydroxy-5'-(3''-dimethylvinylsilylpropoxy)-2'-hydroxy-phenyl)-5-methoxybenzotriazole (UV15). One of UV1, UV5, UV13, or UV15, or any combination of UV1, UV5, UV13, or UV15, may be present in an amount of 0.5% to 2.2% (mass / mass), preferably 0.7% to 1.6% (mass / mass). The second HEVL absorber may be UV13. UV13 may be present in an amount of 0.5% to 2.2% (mass / mass), preferably 0.7% to 1.6% (mass / mass). The absorbance spectra of UV1 and UV15 are all very similar to the absorbance spectrum of UV13 (as shown in Figure 1), which has a maximum at approximately 360–365 nm. UV5 (UVAM) has an absorption profile similar to UV13 at wavelengths above 330 nm (e.g., 330–500 nm), and also has a second absorbance peak at approximately 310 nm, and therefore an absorption profile below 330 nm similar to the absorption profile of UV28 (as shown in Figure 1). Thus, in some embodiments of the present invention, UV5 (UVAM) may be a particularly advantageous second HEVL absorber, in preference to UV1, UV15, or UV13, in formulations where an enhanced level of UV absorbance is required, for example, in the 300–320 nm range.
[0048] Optionally, the first HEVL absorber is UV28, and the second HEVL light absorber is one of UV1, UV5, UV13, or UV15, or any combination of UV1, UV5, UV13, or UV15. One of UV1, UV5, UV13, or UV15, or any combination of UV1, UV5, UV13, or UV15, may be present in an amount of 0.5% to 2.2% (mass / mass), preferably 0.7% to 1.6% (mass / mass); UV28 may be present in an amount of 0.3% to 0.9% (mass / mass), preferably 0.4% to 0.7% (mass / mass). Optionally, the first HEVL absorber is UV28, and the second HEVL light absorber is UV13. UV13 may be present in an amount of 0.5% to 2.2% (mass / mass), preferably 0.7% to 1.6% (mass / mass); UV28 may be present in an amount of 0.3% to 0.9% (mass / mass), preferably 0.4% to 0.7% (mass / mass). Optionally, the total amount of the HEVL absorbent of formula (1) present in the formulation of the present invention shall not exceed 2.7% (mass / mass), preferably not exceeding 2.0% (mass / mass). Optionally, the formulation of the present invention contains one of UV1, UV5, UV13, or UV15, or any combination of UV1, UV5, UV13, and UV15, particularly 0.5% to 2.2% (mass / mass), preferably 0.7% to 1.6% (mass / mass) of UV13; and 0.3% to 0.9% (mass / mass), preferably 0.4% to 0.7% (mass / mass) of UV28, wherein the total amount of the HEVL absorbent of formula (1) present in the formulation shall not exceed 2.7% (mass / mass), preferably not exceeding 2.0% (mass / mass).
[0049] Optionally, the total amount by mass percentage of units derived from the HEVL absorber of formula (1) present in the polymer lens material of the contact lens of the third embodiment of the present invention is as described above for the formulation of the second embodiment of the present invention. For example, the total amount of units derived from the high-energy short-wavelength visible light absorber of formula (1) present in the polymer lens material of the contact lens of the third embodiment of the present invention does not have to exceed 2.7% (mass / mass) of the polymer lens material, and preferably does not exceed 2.0% (mass / mass). The term "UV absorber" refers to a compound containing a chromophore that absorbs light in the UV spectrum, i.e., wavelengths in the range of 100 to 400 nm. In particular, a 0.003 mass% solution of a UV absorber in ethyl acetate has an absorption maximum (λmax) in the range of 220 to 350 nm, especially in the range of 250 to 350 nm. The UV absorber present in the formulation and the lens of the present invention, as a 0.003 mass% solution in ethyl acetate, advantageously has a maximum absorbance (λmax) in the range of 250 to 350 nm, 260 to 320 nm, and especially in the range of 270 to 310 nm.
[0050] The compounds can function as both HEVL absorbers and UV absorbers. For example, a 0.003 mass% solution of UV28 in ethyl acetate has an absorption maximum (λmax) at about 308 nm in the range of 220–350 nm, absorption greater than 0.5 in the ranges of about 288–330 nm and about 337–397 nm, and an absorption maximum (λmax) at about 369 nm in the range of 350–455 nm. As used herein, the term "HEVL absorber" includes compounds that function only as HEVL absorbers, as well as compounds that function as both HEVL absorbers and UV absorbers. The UV absorbers included in the formulations of the present invention are preferably not dual-function HEVL absorbers and UV absorbers. The UV absorbers may have an absorbance cutoff below the visible range, i.e., they do not absorb light above 380 nm in significant amounts. For example, a 0.003% by mass solution of a UV absorber in ethyl acetate does not have an absorbance of at least 0.5 in the range of 375 nm to 450 nm. The first and / or second HEVL absorber present in the formulation of the present invention, as a 0.003% by mass solution in ethyl acetate, has an absorption greater than 0.5 in the range of 375 nm to 450 nm and may optionally have an absorption maximum (λmax) in the range of 220 to 350 nm, particularly in the range of 250 to 350 nm. Optionally, the hydrogel contact lens formulation of the present invention may contain one or more UV absorbers; that is, the contact lens formulation may contain a UV absorber, or may contain a UV absorber component comprising two or more UV absorbers. UV absorbers that may be included in the formulation of the present invention include, for example, benzophenone or benzotriazole, or any combination thereof.
[0051] Advantageously, UV absorbers are covalently bonded to the polymer matrix of the lens material, rather than simply being physically encapsulated in the material, to prevent the absorber from migrating, phase-separating, or leaking from the lens material. Such stability is advantageous because UV absorber leakage presents toxicological problems and / or can lead to a loss of UV blocking activity of the contact lens. The UV absorbers used in this invention are typically soluble in the contact lens formulation and polymerizable so that they form part of the polymer matrix of the lens and are retained in the lens during autoclaving and storage. Advantageously, the UV absorbers are polymerizable UV absorbers containing one or more reactive groups capable of participating in curing reactions, thereby forming the polymer matrix of the polymer lens material and covalently bonding the polymerizable UV absorber to the polymer lens material. Polymerizable UV absorbers typically contain ethylenically unsaturated groups capable of participating in radical polymerization reactions, such as vinyl or (meth)acrylate, (meth)acrylamide, or styrene groups. Numerous copolymerizable benzotriazole, benzophenone, methyl salicylate, acrylonitrile, and triazine UV absorbers are known. Many of these UV absorbers contain ethylenically unsaturated polymerizable groups. By copolymerization with other components of the lens formulation, typically with radical initiators, the UV absorbers are incorporated into the resulting contact lens material. The incorporation of further functional groups into the UV absorbers may affect one or more of the UV absorption properties, solubility, or reactivity of the UV absorbers. Suitable polymerizable UV absorbers include 2-(4-benzoyl-3-hydroxyphenoxy)ethyl acrylate (CAS No. 16432-81-8, UV416) and "Norbloc," 2-(3-(2H-benzotriazol-2-yl)-4-hydroxyphenyl)ethyl methacrylate (CAS No. 96478-09-0, NORBLOC 7966, Noramco, Athens, GA., USA).UV absorbers or UV absorber components may be present in the formulation of the present invention in amounts of up to approximately 5.0% (mass / mass), typically approximately 0.1% (mass / mass) to approximately 2.0% (mass / mass), or approximately 0.2% (mass / mass) to approximately 1.5% (mass / mass), for example, 0.3% (mass / mass) to 1.0% (mass / mass).
[0052] The hydrogel contact lens formulation used in the second aspect of the present invention or the method of the fourth aspect of the present invention may further contain a polymerizable UV absorber having a maximum absorbance (λmax) in the range of 250-380 nm, 260-320 nm, and particularly 270-310 nm, as a 0.003% by mass solution in ethyl acetate. The UV light absorbing units present in the polymer lens material of the hydrogel contact lens of the third aspect of the present invention may be derived from the polymerizable UV absorber described herein with reference to the formulation of the present invention. Therefore, the polymer lens material of the hydrogel contact lens of the third aspect of the present invention may contain UV light absorbing units derived from a polymerizable UV absorber having a maximum absorbance (λmax) in the range of 250-380 nm, 260-320 nm, and particularly 270-310 nm, as a 0.003% by mass solution in ethyl acetate.
[0053] The hydrogel contact lens formulation used in the second aspect of the present invention or the method of the fourth aspect of the present invention may further contain a polymerizable UV absorber comprising a benzophenone moiety. Similarly, the polymer lens material of the hydrogel contact lens of the third aspect of the present invention may further contain a UV light absorbing unit comprising a benzophenone moiety. The UV light absorbing unit comprising a benzophenone moiety present in the polymer lens material of the third aspect of the present invention may be derived from a polymerizable UV absorber described herein with reference to the formulation of the present invention.
[0054] The hydrogel contact lens formulation used in the second aspect of the present invention or the method of the fourth aspect of the present invention may contain a polymerizable UV absorber containing a benzophenone moiety as a 0.003% by mass solution in ethyl acetate, having a maximum absorbance (λmax) in the range of 250-380 nm, 260-320 nm, and particularly 270-310 nm. The UV light absorbing units present in the polymer lens material of the third aspect of the present invention may be derived from the polymerizable UV absorber described herein with reference to the formulation of the present invention. Therefore, the polymer lens material of the hydrogel contact lens of the third aspect of the present invention may contain UV light absorbing units derived from a polymerizable UV absorber containing a benzophenone moiety as a 0.003% by mass solution in ethyl acetate, having a maximum absorbance (λmax) in the range of 250-380 nm, 260-320 nm, and particularly 270-310 nm. The benzophenone UV absorber contained in the formulation of the present invention is preferably not a dual-function HEVL absorber and UV absorber. Benzophenone UV absorbers may have an absorbance cutoff below the visible range; that is, they do not absorb light above 380 nm in significant amounts. For example, a 0.003 mass% solution of benzophenone UV absorber in ethyl acetate does not have an absorbance of at least 0.5 in the range of 375 nm to 450 nm.
[0055] It has been found that by including a UV absorber having a maximum absorbance (λmax) in the 250-380 nm range, 260-320 nm, and particularly 270-310 nm, and / or containing a benzophenone moiety, as a 0.003% by mass solution in ethyl acetate, the resulting lens can have a higher level of absorption over the 250-455 nm range at a lower overall level of the UV blocker than when the UV absorber has a maximum absorbance (λmax) in the 250-380 nm range, greater than 320 nm, and / or containing a benzotriazole or triazine moiety, particularly a benzotriazole moiety, as a 0.003% by mass solution in ethyl acetate. Without being bound by any particular theory, it is hypothesized that, due to the significant difference in absorption between benzophenone UV absorbers and benzotriazole HEVL absorbers, a combination of two different HEVL absorbers, each containing a benzophenone UV absorber with a maximum absorbance (λmax) in the 250-380 nm range and a benzotriazole moiety, as a 0.003 mass% solution in ethyl acetate, provides more effective light blocking over the 260-440 nm range than a combination containing a UV absorber with a maximum absorbance (λmax) above 320 nm and / or a benzotriazole moiety, such as Norbloc. Optionally, the formulation of the present invention comprises one or more polymerizable UV absorbers containing a benzophenone moiety in an amount not exceeding 1.5% (mass / mass), preferably not exceeding 1.0% (mass / mass). The polymerizable UV absorber may be 2-(4-benzoyl-3-hydroxyphenoxy)ethyl acrylate (UV416).
[0056] The formulation of the present invention may also contain at least one colorant, i.e., one colorant or a colorant component comprising two or more colorants. In one example, the colorant may be a reactive dye or pigment that effectively imparts color to the resulting lens or effectively reduces the amount of color in the resulting lens. The colorant or colorant component of the polymerizable formulation may include polymerizable colorants, non-polymerizable colorants, or any combination thereof. The polymerizable colorant may be a colorant whose molecular structure contains a polymerizable functional group, or a colorant whose molecular structure contains both a monomer and a dye portion; that is, the colorant may be a monomer dye compound. The molecular structure of the colorant may include, for example, a beta-sulfone functional group, a triazine functional group, or an anthraquinone portion. Suitable colorants include, for example, VAT Blue 6 (7,16-dichloro-6,15-dihydroanthazine-5,9,14,18-tetron), 1-amino-4-[3-(beta-sulfatoethylsulfonyl)anilino (anilio)]-2-anthraquinone sulfonic acid (CIReactive Blue 19, RB-19) or monomer dye compounds of Reactive Blue 19 and hydroxyethyl methacrylate (RB-19 HEMA), 1,4-bis[4-[(2-methacrylate-oxyethyl)phenylamino]anthraquinone (Reactive Blue 246, RB-246, CAS number 121888-69-5, available from Arran Chemical Company, Athlone, Ireland), and 1,4-bis[(2-hydroxyethyl)amino]-9,10-anthracendione bis(2-propene)ester (Reactive Blue Examples include monomer dye compounds of RB-247 (also available from Arran Chemical Company, CAS number 109561-07-1), Reactive Blue 4 (RB-4, CAS number 13324-20-4, available from ThermoFisher), or Reactive Blue 4 and hydroxyethyl methacrylate (RB-4 HEMA or "Blue HEMA").Further examples of suitable monomer dye compounds are described in US5,944,853 and US7,216,975, both of which are incorporated herein by reference in their entirety. Other exemplary chromogens are disclosed, for example, in U.S. Patent Publications US2008 / 0048350 and US4,997,897, which are incorporated herein by reference in their entirety. Formulations of the present invention advantageously include blue or blue-green chromogens containing an anthraquinone moiety, in particular polymerizable blue or blue-green chromogens containing an anthraquinone moiety. Polymer lens materials of contact lenses of the present invention may further include units derived from polymerizable blue or blue-green chromogens containing an anthraquinone moiety. The polymerizable blue or blue-green colorant may be selected from 1,4-bis[4-(2-methacrylateoxyethyl)phenylamino]-9,10-anthraquinone (RB246) or 1,4-bis[(2-methacrylateoxyethyl)amino]-9,10-anthraquinone (RB247).
[0057] Irradiation-absorbing material for HEVL absorption package This includes any UV absorber and any colorant, along with the irradiation absorber. package The light transmission properties of contact lenses manufactured from contact lens formulations containing the irradiation absorber can be selected to meet the required specifications. For example, a hydrogel contact lens formulation according to a second aspect of the present invention provides a contact lens that meets the requirements of Class 1 UV blocking (as defined in BS EN ISO 18369-2:2017, Table 4), i.e., a contact lens that can block >90% of UVA rays and >99% of UVB rays, or a contact lens that meets the requirements of Class 2 UV blocking, i.e., a contact lens that blocks >50% of UV-A rays and >95% of UV-B rays. packageIt may also include. A preferred formulation of the present invention provides a contact lens that blocks at least 30% of HEVL, particularly at least 40% of HEVL, preferably at least 45% of HEVL light, in addition to providing UV protection. The formulation may also provide a contact lens that blocks at least 35% of violet light, particularly at least 45% of violet, preferably at least 50% of violet light. A contact lens of a third aspect of the present invention advantageously satisfies the requirements of Class 1 UV protection (as defined in BS EN ISO 18369-2:2017, Table 4), i.e., can block >90% of UVA rays and >99% of UVB rays, or satisfies the requirements of Class 2 UV protection, i.e., can block >50% of UV-A rays and >95% of UV-B rays. A preferred contact lens of the present invention provides at least 30% of HEVL, particularly at least 40% of HEVL, preferably at least 45% of HEVL light, in addition to providing UV protection. The contact lenses of the present invention can block at least 35% of violet light, particularly at least 45% violet light, preferably at least 50% violet light. "UVA" refers to irradiation occurring at wavelengths of 315 to 400 nanometers (nm); "UVB" refers to irradiation occurring at wavelengths of 280 to 315 nm; "violet" refers to irradiation occurring at wavelengths of 380 to 440 nm; and "high-energy visible light" (HEVL) refers to irradiation occurring at wavelengths of 380 to 455 nm.
[0058] A polymer material for a contact lens according to a third aspect of the present invention may have the following light transmission properties, and / or a hydrogel contact lens formulation according to a second aspect of the present invention may result in a contact lens made of a material that satisfies the following light transmission properties. [Table 1]
[0059] The transmission properties of the lens material were measured using a 1 mm thick, 1 x 2 cm rectangular cast film. The film was analyzed by UV-Vis transmission spectroscopy in the 300–800 nm range using a Perkin-Elmer Lambda 35 instrument equipped with a Lab Sphere RSA-PE-20 integrating sphere. A contact lens according to a third aspect of the present invention may have a yellowness of less than 8.0, preferably less than 6.0, and particularly less than 5.0, as determined by the ASTM E313-05 method. A hydrogel contact lens formulation according to a second aspect of the present invention may result in a hydrogel contact having a yellowness of less than 8.0, preferably less than 6.0, and particularly less than 5.0, as determined by the ASTM E313-05 method.
[0060] A third aspect of the present invention is a hydrogel contact lens, including conventional (i.e., non-silicone hydrogel contact lenses) and silicone hydrogel contact lenses. "Hydrogel" refers to a crosslinked polymer material having a three-dimensional polymer network (i.e., polymer matrix) that is insoluble in water but, when fully hydrated, contains at least 10 mass percent of water in its polymer matrix. "Silicone hydrogel" refers to a hydrogel obtained by polymerization of a hydrogel contact lens formulation containing at least one silicone-containing monomer. The term "non-silicone hydrogel" refers to a hydrogel that does not contain silicone. Conventional polymerizable formulations suitable for use in the preparation of hydrogel and silicone hydrogel contact lenses are well known in the art. Irradiation absorber according to the first aspect of the present invention package It is suitable for incorporation into a wide range of polymerizable formulations for forming hydrogel contact lenses containing silicone hydrogels. In addition to the irradiation-absorbing compound, the hydrogel contact lens formulation of a second embodiment of the present invention comprises monomers and other components suitable for forming hydrogel contact lenses as described below.
[0061] Typically, hydrogel contact lenses are formed by free radical propagation reactions involving the polymerization of terminal ethylenically unsaturated groups, also referred to herein as “polymerizable groups.” Exemplary polymerizable groups include (meth)acrylic, (meth)acrylamide, allyl, vinyl, and styrenyl groups. As used herein, “vinyl-containing monomer” is any nonsiloxane monomer (i.e., vinyl group) having a single polymerizable carbon-carbon double bond in its molecular structure, the carbon-carbon double bond of the vinyl group being bonded to an sp3 hybridized carbon atom. The vinyl group is less reactive under free radical polymerization than the carbon-carbon double bond present in acrylate or methacrylate polymerizable groups. The term “(meth)acrylamide” refers to methacrylamide and / or acrylamide. The term “(meth)acrylate” refers to methacrylate and / or acrylate. The term “terminal (meth)acrylic group” refers to a single (meth)acrylic group at one of the two ends of the main chain (or backbone) of an organic compound. "N-vinylamide monomer" refers to an amide compound that has a vinyl group CH=CH2 directly bonded to the nitrogen atom of the amide group.
[0062] A “monomer” is a molecule having one or more polymerizable groups that can react with the same or different other monomers in a polymerization process to form a larger polymer or copolymer chain or a three-dimensional polymer matrix. Monomers having two or more polymerizable groups may be called “crosslinkers,” as further described below. The term “monomer” encompasses macromonomers and polymerizable oligomers, i.e., polymerizable molecules containing one or more chains of repeating units, such as polymerizable polysiloxanes; therefore, unless otherwise indicated, there are no constraints on the size of the monomer (i.e., maximum molecular weight). As used in this application, the term “molecular weight” of a polymer material refers to the absolute number-average molecular weight (in units of daltons), determined, for example, by 1H NMR end-group analysis or by GPC using polystyrene standards, unless otherwise specified. The term “polymer” refers to a material formed by polymerizing and / or crosslinking one or more monomers. The formulations of the present invention typically comprise hydrophilic monomers and may also comprise hydrophobic monomers. As used herein, “hydrophilic monomer” means a silicone-free monomer in which at least 50 grams of monomer are completely soluble in 1 liter of water at 20°C (i.e., about 5% water soluble), as determined visually using the standard shaking flask method.
[0063] The hydrogel contact lens formulation of the present invention typically contains at least one hydrophilic monomer in an amount of at least 25% (mass / mass), for example, at least 30% (mass / mass), and particularly at least 35% (mass / mass). Suitable hydrophilic monomers include hydrophilic vinylamide-containing monomers and hydrophilic vinyl ether-containing monomers. In some examples, the hydrophilic vinylamide-containing monomer may be selected from N-vinyl-N-methylacetamide (VMA), N-vinylpyrrolidone (NVP), N-vinylformamide, N-vinylacetamide, N-vinyl-N-ethylacetamide, N-vinylisopropylamide, N-vinylcaprolactam, N-vinyl-N-ethylformamide, or any combination thereof. In some examples, the hydrophilic vinylamide-containing monomer consists of VMA or NVP, or a combination of VMA and NVP. The vinyl ether-containing monomer may be selected from 1,4-butanediol vinyl ether (BVE), ethylene glycol vinyl ether (EGVE), diethylene glycol vinyl ether (DEGVE), 1,4-cyclohexanedimethanol vinyl ether (CHDMVE), poly(ethylene glycol) vinyl ether having 4 to 10 ethylene glycol units, or poly(ethylene glycol) vinyl ether having more than 10 ethylene glycol units, or any combination thereof. In some examples, the vinyl ether-containing monomer may be a poly(ethylene glycol) vinyl ether having at least 1, 2, or 3 ethylene glycol units to 4, 6, 8, or 10 ethylene glycol units. One or more vinyl-containing monomers may be included in the formulation of the present invention in addition to the hydrophilic vinyl amide-containing monomers and hydrophilic vinyl ether-containing monomers. For example, vinyl monomers having vinyl ester or allyl ester polymerizable groups may be included in the formulation of the present invention in addition to the vinyl amide-containing monomers and vinyl ether-containing monomers.The hydrophilic monomer may be a hydrophilic monomer containing a (meth)acrylate or (meth)acrylamide group, and examples include 2-hydroxyethyl methacrylate (HEMA), 4-hydroxybutyl acrylate glycerol methacrylate, 2-hydroxyethyl methacrylamide, ethoxyethyl methacrylamide (EOEMA), polyethylene glycol monomethacrylate, methacrylic acid (MA), and acrylic acid.
[0064] The formulation according to the second aspect of the present invention may optionally contain at least one hydrophilic N-vinylamide monomer in an amount of at least 20 percent (mass / mass), for example, at least 30% (mass / mass), and particularly at least 35 percent (mass / mass). The formulation according to the second aspect of the present invention may contain at least one hydrophilic N-vinylamide monomer in an amount of 25% to 55% (mass / mass), and particularly 30% to 50% (mass / mass). The formulation according to the second aspect of the present invention may contain N-methyl N-vinylacetamide in an amount of 25% to 55% (mass / mass), and particularly 30% to 50% (mass / mass). Polymerizable monomers may include hydrophobic monomers. As used herein, the term "hydrophobic monomer" refers to a monomer that does not contain a siloxane group and is less than 5% water-soluble at 20°C, as determined by the standard shaking flask method.
[0065] A hydrophobic monomer that does not contain a siloxane group may also be a (meth)acrylate-containing hydrophobic monomer. As used herein, “hydrophobic acrylate-containing monomer” is any non-siloxane monomer having a single polymerizable acrylate group (e.g., methyl methacrylate, acrylamide, etc.). In specific examples, a hydrophobic acrylate-containing monomer has a polymerizable methacrylate group. Numerous suitable acrylate-containing monomers are known in the art. Examples of hydrophobic acrylate-containing monomers include methyl acrylate, isopropyl acrylate, cyclohexyl acrylate, methyl methacrylate (MMA), butyl acrylate, tert-butyl methacrylate (tBMA), perfluorohexylethylthiocarbonylaminoethyl methacrylate, isobornyl methacrylate (IBM), trifluoroethyl methacrylate, hexafluoroisopropyl methacrylate, hexafluorobutyl methacrylate, 2-hydroxybutyl methacrylate (HOB), 2-hydroxypropyl methacrylate (HPMA), and ethylene glycol methyl ether methacrylate (EGMA). Preferred non-siloxane hydrophobic monomers include hydroxybutyl methacrylate, isobornyl methacrylate, or combinations of hydroxybutyl methacrylate and isobornyl methacrylate. Hydrogel contact lens formulations may contain acrylate-containing hydrophobic monomers to further enhance the mechanical strength and / or rigidity of the lens, or to impart other desirable properties.
[0066] Siloxane-free hydrophobic monomers are not limited to (meth)acrylate-containing monomers and may contain vinyl or other ethylenically unsaturated reactive groups. Further examples of hydrophobic monomers include vinyl acetate, vinyl propionate, vinyl butyrate, styrene, chloroprene, vinyl chloride, vinylidene chloride, acrylonitrile, and methacrylonitrile. The formulation may contain approximately 2% to 20% (mass / mass), for example, 4% to 16% (mass / mass), and especially 6% to 12% (mass / mass) of nonsiloxane hydrophobic monomer components. 2% to 20% (mass / mass), and especially 5% to 15% (mass / mass) of the formulation may be hydroxybutyl methacrylate, isobornyl methacrylate, or a combination of hydroxybutyl methacrylate and isobornyl methacrylate.
[0067] The hydrogel contact lens formulation used in the second aspect of the present invention and / or the method of the fourth aspect of the present invention may be a silicone hydrogel contact lens formulation containing a siloxane-containing monomer in addition to a hydrophilic monomer and any hydrophobic monomer that does not contain a siloxane group. The hydrogel contact lens of the third aspect of the present invention may be a silicone hydrogel contact lens containing a siloxane group in the matrix of the polymer lens material. As used herein, "siloxane monomer" means a monomer having at least one siloxane group. The siloxane monomer may contain a terminal acrylate or methacrylate group. (Meth)acrylate-containing siloxane monomers that can be used in the formulations of the present invention described herein are well known in the art. The siloxane monomer may be a monofunctional (meth)acrylate-containing siloxane, a difunctional (meth)acrylate-containing siloxane, or a combination of monofunctional and difunctional (meth)acrylate-containing siloxane monomers. In examples where the (meth)acrylate-containing siloxane monomer consists of one or more monofunctional (meth)acrylate-containing siloxane monomers (i.e., it does not contain any polyfunctional (meth)acrylate-containing siloxane monomers), the silicone hydrogel contact lens formulation typically further comprises a (meth)acrylate-containing crosslinking agent as further described below. In specific examples, the (meth)acrylate-containing siloxane monomer has one or more polymerizable methacrylate groups. Various non-limiting examples of suitable acrylate-containing siloxane monomers include 3-[tris(trimethylsiloxy)silyl]propyl methacrylate ("TRIS"), 3-methacrylate-2-hydroxypropyl(oxy)propylbis(trimethylsiloxy)methylsilane ("SiGMA"), methyldi(trimethylsiloxy)silylpropylglycerol ethyl methacrylate ("SiGEMA"), and monomethacrylateoxypropyl functionalized polydimethylsiloxanes, such as MCR-M07 and MCS-M11, all available from Gelest (Morrisville, PA, USA).
[0068] A hydrogel contact lens formulation according to a second aspect of the present invention may be a formulation comprising at least one polymerizable siloxane monomer in an amount of at least 25% (mass / mass), for example, at least 35% (mass / mass), and particularly at least 40% (mass / mass).
[0069] Silicone hydrogel contact lens formulations may contain at least one difunctional siloxane having a molecular weight of at least 5,000 daltons, and in particular at least one difunctional siloxane having a molecular weight of at least 8,000 daltons. Difunctional siloxanes typically have molecular weights of less than 25,000 daltons, e.g., less than 20,000 daltons, and in particular less than 15,000 daltons. It has been found that including siloxanes with higher molecular weights can result in formulations with unacceptably high viscosity. Silicone hydrogel contact lens formulations may contain at least one difunctional siloxane having a molecular weight of 5,000 to 25,000 daltons, e.g., at least one difunctional siloxane having a molecular weight of 6,500 to 20,000 daltons, and in particular at least one difunctional siloxane having a molecular weight of at least 8,000 to 15,000 daltons. Advantageously, at least 30% (mass / mass) of the siloxane content may be a bifunctional siloxane having a molecular weight of at least 5,000 daltons, or at least 8,000 daltons, for example, 8,000 to 20,000 daltons. Preferably, at least 40% (mass / mass) of the siloxane content is bifunctional, having a molecular weight of at least 5,000 daltons, or at least 8,000 daltons, for example, 8,000 to 20,000 daltons. The formulation advantageously contains 15 to 45% by mass of a bifunctional siloxane, for example, 20 to 40% by mass of a bifunctional siloxane having a molecular weight of at least 5,000 daltons, or at least 8,000 daltons, for example, 8,000 to 20,000 daltons. In some embodiments, the silicone hydrogel contact lens formulation may contain at least one bifunctional siloxane having a molecular weight of at least 10,000 daltons. At least 30% (mass / mass) of the siloxane content may be a bifunctional siloxane having a molecular weight of at least 10,000 daltons, or at least 40% (mass / mass) of the siloxane content may be a bifunctional siloxane having a molecular weight of at least 10,000 daltons.The formulation may contain 15-45% by mass of a difunctional siloxane, for example, 20-40% by mass of a difunctional siloxane having a molecular weight of at least 10,000 daltons. The silicone hydrogel contact lens formulation may contain, for example, at least one monofunctional siloxane monomer having a molecular weight of less than 3,000 daltons. At least 20% (by mass) of the siloxane content may be a monofunctional siloxane having a molecular weight of less than 3,000 daltons. Advantageously, at least 30% (by mass) of the siloxane content is monofunctional with a molecular weight of less than 3,000 daltons. The formulation may contain 10-30% by mass of a monofunctional siloxane monomer, for example, 10-30% by mass of a monofunctional siloxane monomer having a molecular weight of less than 3,000 daltons. The monofunctional siloxane typically has a molecular weight of at least 200 daltons.
[0070] For example, the monofunctional siloxane monomer may include a (meth)acrylate-containing siloxane monomer represented by formula (I). [ka] (In the formula, m is an integer between 3 and 10, n is an integer between 0 and 10, R 1 R is an alkyl group having 1 to 4 carbon atoms. 2 R is a hydrogen or methyl group, 3 ( is a hydrogen or methyl group). In further specific examples, acrylate-containing siloxane monomers are R 1 is a butyl group, R 2 is hydrogen, R 3 It is represented by formula (I), where is a methyl group, m is 4, and n is 1. A method for producing the siloxane monomer represented by formula (I) is described in U.S. Patent Publication No. 20090299022, which is incorporated herein by reference.
[0071] In another example, the monofunctional siloxane monomer may include a (meth)acrylate-containing siloxane monomer represented by formula (II). [ka] (wherein n is an integer between approximately 10 and 15). Siloxane monomers of formula II and other suitable monomers are described in U.S. Patents 6,867,245 and 6,310,169, both of which are incorporated herein by reference. Suitable examples of commercially available monofunctional siloxane monomers include 2-propenoic acid, 2-methyl-,2-[3-(9-butyl-1,1,3,3,5,5,7,7,9,9-decamethylpentasiloxane-1-yl)propoxy]ethyl ester, X-22-1622 (also known as KF1622) (CAS No. 1052075-57-6) available from Shin-Etsu Chemical Co., Ltd., Tokyo, Japan, methacrylateoxypropyl-terminated poly(dimethyl)siloxane FMM from Shin-Etsu Silicones of America, Akron, Ohio, USA (CAS No. 697234-76-7), and 3-methacrylateoxy-2-hydroxypropyloxy)propylbis(trimethylsiloxy)methylsilane SiGMA.
[0072] [ka]
[0073] A silicone hydrogel contact lens formulation may contain, for example, at least one difunctional siloxane monomer having a molecular weight of at least 8,000 daltons. The formulation may contain 10 to 45% by mass of a difunctional siloxane monomer, particularly 20 to 40% by mass of a difunctional siloxane monomer. The formulation may advantageously contain 10 to 45% by mass or 20 to 40% by mass of a difunctional siloxane monomer having a molecular weight of at least 8,000 daltons. The formulation may also contain 10 to 45% by mass or 20 to 40% by mass of a difunctional siloxane monomer having a molecular weight of at least 10,000 daltons.
[0074] For example, the bifunctional siloxane monomer may include a (meth)acrylate-containing siloxane monomer represented by formula (III). [ka] (In the formula, R1 is selected from either hydrogen or a methyl group; R2 is hydrogen or C 1-4 A hydrocarbon group is selected from any of the following: m represents an integer from 0 to 10; n represents an integer from 4 to about 15, 25, or 100; a and b represent integers greater than or equal to 1; a+b is equal to 20 to 500; b / (a+b) is equal to 0.01 to 0.22; the composition of the siloxane unit includes random compositions). In a more specific example, an acrylate-containing siloxane monomer is represented by formula II, where R1 and R2 are methyl groups, m is 0, n represents an integer from about 5 to about 10, a represents an integer from about 70 to about 90, and b represents an integer from 1 to about 10; this siloxane monomer has a molecular weight of about 8,000 to about 10,000 daltons. A method for preparing the compound of formula III is described in U.S. Patent Publication 2009 / 0234089, which is incorporated herein by reference. A particularly preferred bifunctional siloxane monomer is PEG-functionalized poly(dimethyl)siloxane dimethacrylate monomer M5A (CAS number 1216820-69-7), which is macromonomer A described in Example 2 of U.S. Patent Publication No. 2009 / 0234089.
[0075] Other suitable bifunctional siloxane monomers are represented by formula (IV). [ka] (In the formula, R 3 (where m is selected from either a hydrogen or a methyl group, m is an integer from 0 to 10, and n is an integer from 1 to 500). In specific examples, a bifunctional siloxane monomer is R 3This is a methacrylateoxypropyl-terminated polydimethylsiloxane having a molecular weight of 4500-5500, represented by formula IV, where is a methyl group, m is 0, and n is an integer between 40 and 60, and is available from Gelest (Morrisville, PA, USA) and is referred to by the manufacturer as "DMS-R18". Further preferred methacrylateoxypropyl-terminated polydimethylsiloxanes include DMS-R22 and DMS-R31, also available from Gelest.
[0076] Another suitable bifunctional siloxane monomer is represented by formula (V). [ka] (V) (wherein n is an integer between approximately 100 and 150, m and p are both integers between approximately 5 and 10, and h is an integer between approximately 2 and 8). A method for preparing the compound of formula V is described in U.S. Patent No. 6,867,245, incorporated herein by reference. Further (meth)acrylate-containing siloxane monomers that can be used in the formulations of the present invention as described herein are known in the art (see, for example, U.S. Patents No. 7,572,841, U.S. Patent No. 2006 / 0063852, and U.S. Patent No. 5,998,498, incorporated herein by reference, respectively).
[0077] In one example, the siloxane monomer may include a combination of monofunctional (meth)acrylate-containing siloxane monomers and difunctional (meth)acrylate-containing siloxane monomers. In such an example, the monofunctional (meth)acrylate-containing siloxane monomer has a molecular weight of less than 2,000, 1,000, or 750 daltons, and the difunctional acrylate-containing siloxane monomer has a molecular weight of at least 3,000, 5,000, or 8,000 daltons. For polyorganosiloxane monomers such as those represented by formulas II, IV, and V above, and other polydisperse monomers, the molecular weight can be determined by 1H NMR end-group analysis. In specific examples, the monofunctional (meth)acrylate-containing siloxane monomer has a molecular weight of about 250 to about 1,000 daltons, and the difunctional acrylate-containing siloxane monomer has a molecular weight of about 5,000 to about 16,000 daltons. In more specific examples, monofunctional (meth)acrylate-containing siloxane monomers have a molecular weight of approximately 500 to 1000 daltons, while difunctional (meth)acrylate-containing siloxane monomers have a molecular weight of approximately 5,000 to 12,000 daltons.
[0078] The formulations of the present invention typically comprise one or more polymerization initiators; that is, a hydrogel contact lens formulation may comprise an initiator, or two or more polymerization initiators, or an initiator component comprising a combination of a polymerization initiator, a synergist, and an activator. The term "initiator" refers to a chemical substance that initiates a crosslinking / polymerization reaction. Initiators are typically free radical initiators that form radicals that initiate a radical propagation polymerization reaction. Examples of polymerization initiators that may be included in the formulations of the present invention include azo compounds, organic peroxides, or both. Initiators may be photoinitiators activated upon exposure to chemical rays such as UV light, or thermal initiators activated upon exposure to heat. Examples of initiators that may be present in hydrogel contact lens formulations include benzoin ethyl ether, or benzyl dimethyl ketal, or alpha,alpha-diethoxyacetophenone, or 2,4,6-trimethylbenzoyldiphenylphosphine oxide, or benzoin peroxide, or t-butyl peroxide, or azobisisobutyronitrile, or azobisdimethylvaleronitrile, or any combination thereof. Examples of UV light initiators include phosphine oxides, such as diphenyl(2,4,6-trimethylbenzoyl)phosphine oxide, or benzoin methyl ether, or 1-hydroxycyclohexylphenyl ketone, or Darocur (also available from BASF, Florham Park, NJ, USA), or Irgacur (also available from BASF), or any combination thereof. Advantageously, the polymerization initiator is a thermal initiator.Examples of suitable thermal initiators include 2,2'-azobis-2-methylpropanenitrile (VAZO-64, manufactured by EIDuPont de Nemours & Co., Wilmington, Del., USA, CAS number 78-67-1), also known as 2,2'-azobis(isobutyronitrile) (AIBN); 2,2'-azobis(2,4-dimethylpentanenitrile) (VAZO-52, also manufactured by EIDuPont, CAS number 4419-11-8), also known as 2,2'-azobis(dimethylvaleronitrile); and 1,1'-azobis(cyanocyclohexane) (VAZO-88, also manufactured by EIDuPont, CAS number 2094-98-6), also known as 1,1'-azobis(cyclohexanecarbonilite). Polymerization initiators or initiator components may be present in the hydrogel contact lens formulation in an amount of about 0.1% (mass / mass) to about 1.5% (mass / mass), or about 0.2% (mass / mass) to about 1.0% (mass / mass), particularly about 0.2% (mass / mass) to about 0.8% (mass / mass). The hydrogel contact lens formulation of the second aspect of the present invention may be a thermosetting formulation containing at least one thermal initiator. The method of the fourth aspect of the present invention may include thermosetting the formulation. Thermosetting or chemical curing methods are well known to those skilled in the art.
[0079] The hydrogel contact lens formulation of the present invention may further contain a crosslinking agent. The crosslinking agent can crosslink one polymer with another by reacting with the functional groups of two or more polymer chains. As used herein, “crosslinking agent” is any compound having two or more polymerizable groups and having a molecular weight of less than about 2000 daltons, typically less than 700 daltons. As used herein, “acrylate-containing crosslinking agent” has at least two polymerizable acrylate groups and no other types of polymerizable groups. “Vinyl-containing crosslinking agent” has at least two polymerizable vinyl groups and no other types of polymerizable groups. Vinyl-containing crosslinking agents and acrylate-containing crosslinking agents may typically have molecular weights of less than 1500, 1000, 500, or 250. Examples of vinyl-containing crosslinking agents that can be used in the formulation of the present invention include, without limitation, divinyl ethers, or divinyl sulfones, or triallyl isocyanurates, and any combination thereof. Examples of divinyl ethers include diethylene glycol divinyl ether, triethylene glycol divinyl, 1,4-butanediol divinyl ether, 1,4-cyclohexanedimethanol divinyl ether, or any combination thereof. Typically, vinyl-containing crosslinkers may have two or three polymerizable vinyl groups. If present, the total amount of vinyl-containing crosslinker in the hydrogel contact lens formulation is typically from about 0.02, 0.04, or 0.06 mol% to about 0.10, 0.15, or 0.20 mol%. Examples of acrylate-containing crosslinking agents that can be used in the formulations of the present invention include, without limitation, lower alkylene glycol di(meth)acrylate, poly(lower alkylene) glycol di(meth)acrylate, lower alkylene di(meth)acrylate, trimethylolpropane tri(meth)acrylate, pentaerythritol tetra(meth)acrylate, bisphenol A di(meth)acrylate, methylenebis(meth)acrylamide, and 1,3-bis(3-methacrylatexylpropyl)tetramethyldisiloxane. In certain examples, the acrylate-containing crosslinking agent is a non-siloxane crosslinking agent.If present, the total amount of acrylate-containing crosslinking agents in hydrogel contact lens formulations is typically from about 0.20, 0.25, 0.30, or 0.35 mol% to about 0.50, 0.60, 0.70, 0.80, or 1.0 mol%. To avoid doubt, polyfunctional polymerizable compounds having a molecular weight greater than 2000 daltons are not considered crosslinking agents. Therefore, bifunctional siloxanes as described herein having a molecular weight greater than 2000 daltons are not considered crosslinking agents.
[0080] The formulations of the present invention may further contain a chain transfer agent. Chain transfer is a polymerization reaction in which the activity of a growing polymer chain is transferred to another molecule, reducing the average molecular weight of the final polymer. Examples of chain transfer agents include, for example, thiol compounds, halogenated carbon compounds, or C3-C5 hydrocarbons, such as allyloxyethanol. Hydrogel contact lens formulations may contain non-polymerizable components in addition to polymerizable components conventionally used in contact lens formulations. Further components, such as organic diluents or oxygen scavengers, may also be included. Non-limiting examples of these and further components that may be included in the formulations of the present invention are provided in U.S. Patent Publication 2007 / 0296914.
[0081] A preferred formulation of the second aspect of the present invention optionally contains at least one hydrophilic monomer in an amount of at least 25% (mass / mass). The preferred formulation may optionally contain at least one N-vinylamide hydrophilic monomer in an amount of at least 15% (mass / mass). The preferred formulation may be a silicone hydrogel contact lens formulation optionally containing at least one polymerizable siloxane monomer in an amount of at least 25% (mass / mass). The preferred formulation may be a silicone hydrogel contact lens formulation comprising a siloxane component present in an amount of at least 35% (mass / mass), wherein at least 40% of the siloxane component is a bifunctional siloxane having a molecular weight of at least 8,000 daltons; and an N-vinylamide monomer component present in an amount of at least 37% (mass / mass).
[0082] A preferred formulation of the second aspect of the present invention comprises 25% to 55% by mass of siloxane monomer or a combination of siloxane monomers, 30% to 55% by mass of vinyl monomer selected from NVP, VMA, or a combination thereof, and optionally about 1% to about 20% by mass of hydrophilic monomer selected from N,N-dimethylacrylamide (DMA), 2-hydroxyethyl methacrylate (HEMA), ethoxyethyl methacrylamide (EOEMA), or ethylene glycol methyl ether methacrylate (EGMA), or any combination thereof, and optionally about 1% to about 20% by mass of hydrophobic monomer selected from methyl methacrylate (MMA), isobornyl methacrylate (IBM), or 2-hydroxybutyl methacrylate (HOB), or any combination thereof. Examples of contact lens materials made from such formulations include stenfilcon A, comfilcon A, somofilcon A, fanfilcon A, and enfilcon A. A contact lens according to a third aspect of the present invention preferably comprises a polymer lens material derived from a preferred polymerizable formulation of the second aspect of the present invention, comprising the monomers and siloxane components described above. The monomers and siloxane components described above may be incorporated into the polymer lens material in the amounts described above, for example, at least 25% (mass / mass) of the polymer material may be derived from hydrophilic monomers having terminal ethylenically unsaturated polymerizable groups. The preferred formulation described above is the irradiation absorber of the first aspect of the present invention. package It was found to be particularly suitable for use in combination with a polymerizable UV absorber containing a first HEVL absorber containing a benzotriazole moiety, a second different HEVL absorber containing a benzotriazole moiety, and optionally a benzophenone moiety. [Examples]
[0083] The following examples illustrate certain aspects and advantages of the present invention, and it should be understood that the present invention is not limited by these examples. Surface wettability The water contact angle to a contact lens is a measure of the wettability of the contact lens surface. As used herein, the contact angle of the lens-forming surface of a contact lens is determined by the droplet method using a Kruss DSA-100 Drop Shape Analysis System or an equivalent analyzer, with 3 μl of PBS dropped onto the center of the lens surface. equilibrium water content The equilibrium water content (EWC) of contact lenses is determined as follows: The amount of water (expressed as mass percentage) present in a fully equilibrated hydrated hydrogel contact lens in salt water is determined at room temperature (i.e., 20°C). After blotting the lens with cloth, a stack of five lenses is placed on a chemical balance to determine the hydrated mass of the lens. The lens is then dried in a laboratory oven at 100±2°C for 16-18 hours, then removed from the oven and cooled to room temperature in a drying oven for at least 30 minutes. The mass of the dried lens is then determined and subtracted from the mass of the hydrated lens to calculate the water content.
[0084] Yellowness (YI) Yellowness (YI) is a quantifiable, standardized method for measuring the perceived yellowness of a sample from the observer's viewpoint, calculated from spectroscopic data. The YI of a sample describes the color change from colorless to yellow. A higher YI value indicates a stronger yellow tint. The YI of contact lenses can be determined using the ASTM E313-05 protocol with a CIE-D65 light source and a 1931 (2° field of view) standard illuminant factor. The following examples illustrate the effects of changing the amounts of high-energy short-wavelength visible light absorbers and colorants present in the lens formulation while maintaining a constant amount of polymerizable monomers.
[0085] Cast molding of contact lenses The hydrogel contact lens formulations described below were cast by placing a certain volume of the composition into a female mold and fitting a male mold onto it to form a contact lens mold assembly. The female and male molds were made of a non-polar resin (e.g., polypropylene). The formulation was thermocured to form a polymer lens body by placing the mold assembly in a nitrogen oven in the following cycle: N2 purging at room temperature for 30 minutes, 55°C or 65°C for 40 minutes, 80°C for 40 minutes, and 100°C for 40 minutes. After curing, the male and female mold members were dried and demolded, and the polymer lens body was dried and delendled from the male mold member. The delendled polymer lens body was subjected to an extraction and hydration process consisting of immersion twice in denatured ethanol (Trade Specific Denatured Alcohol (TSDA) 7 containing 5.0 volume% isopropanol), followed by immersion in a mixture of 50% denatured ethanol (TSDA 7) and 50% deionized water, and then immersion three times in deionized water. The resulting contact lens has an average center thickness of 0.097 mm, a diameter of 14 mm, and a base curve of 8.3.
[0086] Base lens formulation A base polymerizable silicone hydrogel contact lens formulation was prepared containing 10 parts of hydrophobic monomer (consisting of 2.31 parts of isobornyl methacrylate (IBM) and 7.69 parts of hydroxybutyl methacrylate (HOB)), 43 parts of hydrophilic monomer (consisting of 43 parts of N-vinyl N-methylacetamide (VMA)), 54 parts of polymerizable siloxane (consisting of 19.98 parts of FMM, 33.48 parts of M5A, and 0.54 parts of KF1622), and 1.7 parts of other agents including a thermal initiator (AIBN) and a crosslinking agent (triallyl isocyanurate). The same base formulation was used in all examples. Irradiation absorber package Lenses prepared from the base formulation without the addition of [specific compound] were optically clear, meaning that the light transmittance from 381 nm to 780 nm was at least 97% (measured according to ISO 18369). Other suitable base formulations include, for example, the formulations listed in Examples 4 to 24, which are described in EP3634733B1 and are incorporated herein by reference.
[0087] Formulation containing only UV13 Irradiation absorbers for each of Examples 1 to 13 package This was added to the base formulation and cast into lenses of the dimensions described above. Each of the lenses in Examples 1 to 13 had ophthalmologically acceptable surface wettability and a water content of 50-51% by mass. The effects of adding various amounts of UV13 to the base formulation were investigated in Comparative Examples 1-5, shown in Table 1. [Table 2] To achieve 50% blocking of light with wavelengths of 380-455 nm, it was necessary to include a high level of UV13, i.e., more than 2.5 mass% of UV13. The yellowness of the lenses prepared from the formulations of Comparative Examples 2 and 5 demonstrates that increasing the amount of UV13 in the formulation increases the yellowness of the lens.
[0088] Formulation containing only UV28 The effects of adding various amounts of UV28 to the base formulation were investigated in Comparative Examples 6 and 7, shown in Table 2. [Table 3]
[0089] Incorporating 0.5 mass% of UV28 into the base formulation resulted in a lens that blocked 37% of light in the 380–455 nm range. Increasing the amount of UV28 incorporated into the base formulation to 0.90 mass% resulted in blocking 51% of light in the 380–455 nm range, while such UV28 amount It was found that removing the lenses from the mold was difficult, and acceptable lenses with low yields were obtained. Comparative Example 8 is an irradiation absorber of Example 2, used for comparison purposes. package Formulation IV of U.S. Patent Publication No. 2021 / 0181379 is incorporated into a lens formulation having the base formulation described above. This results in a lens that blocks only 35% of light in the 380-455 nm range. The yellowness (YI) of the lenses prepared from the formulations of Comparative Examples 6 and 7 demonstrates that increasing the amount of UV28 in the formulation increases the yellowness of the lens.
[0090] Formulations containing a combination of UV13 and UV28 Examples 9-13 use irradiation absorbers containing both UV13 and UV28. package This was added to the same base silicone hydrogel contact lens formulation, and the formulation was cast onto the contact lenses shown in Table 3. [Table 4]
[0091] Example 9 demonstrates that when UV13 is added to the formulation of Comparative Example 6, which already contains UV28, the resulting formulation provides enhanced blocking of transmission in the 380-455 nm range. Lenses formed from the formulation of Example 10, which contains 1.08% by mass of UV13 and 0.49% by mass of UV28, block 50% of transmission in the 380-455 nm range, meaning they provide the same level of HEVL blocking as Comparative Example 5 despite containing only 60% of the total amount of benzotriazole HEVL blocking agent. Therefore, by using a combination of benzotriazole HEVL blocking agents, lower overall amount This demonstrates that it is possible to achieve a higher degree of blocking. The formulation of Example 10 blocked 50% of HEVL in the 380-455 nm range while maintaining the total amount of HEVL absorber at less than 2% by mass of the total lens formulation, resulting in a good overall balance of properties. Increasing the amount of HEVL absorber in Examples 11, 12, and 13 increased the amount of HEVL blocked by the lens by up to a further 5%. However, the wettability of lenses cast from the formulations of Examples 11-13 was lower than that of lenses cast from the formulations of Examples 9 and 10, as indicated by the water contact angle of the stationary droplet.
[0092] Various UV absorbers Examples 14-17 included an irradiation absorbent containing a HEVL absorber and either a benzophenone UV absorber UV416 or a benzotriazole UV absorber Norbloc. package This was added to the same base silicone hydrogel contact lens formulation, and the formulation was cast onto the contact lenses shown in Table 4.
[0093] [Table 5]
[0094] The lenses of the formulation of Example 14 containing UV416 exhibited Class 1 UV blocking, blocking 50% of transmission in the 380-455 nm range. The formulation of Example 17 was identical to the formulation of Example 14 except that the UV absorber was changed from 0.3 parts by mass of UV416 to 0.3 parts by mass of Norbloc. The UV blocking of Example 17 was inferior to that of Example 14, and in particular, the UVB blocking of Example 17 was >40% inferior to that of Example 14. The inferior UV blocking of the compositions of the present invention containing benzotriazole UV absorbers such as Norbloc compared to the formulations of the present invention containing preferred benzophenone UV absorbers such as UV416 was Class 1 UV blocking across the entire range of contact lenses, and especially Class 1 UV blocking in contact lenses with low center thickness. amountThis means that it may not be consistently achieved in the benzotriazole UV absorber. Therefore, as in Examples 15 and 16, higher amount A benzotriazole UV absorber may be necessary to achieve Class 1 UV blocking across the entire range of lenses. Conversely, in the case of lens formulations of the present invention that include a combination of benzotriazole HEVL absorbers, a lower amount of a benzophenone UV absorber, such as UV416, may be required to produce lenses with the desired light-blocking properties, compared to a benzotriazole UV absorber such as Norbloc.
[0095] Lens color Polymerizable lens formulations with different irradiation absorbers package The effects of including the formulation were investigated by placing lenses cast from the formulation into glass prosthetic eyes having a blue iris. The color imparted by the lenses cast from the formulations of Comparative Example 1, Comparative Example 6, and Example 10 of the present invention resulted in a natural-looking eye and was aesthetically superior to commercially available Oasys MAX® lenses containing a tricyclic HEVL absorber that imparted a noticeable and undesirable yellow / green halo on the iris margin and sclera of glass prosthetic eyes. The YI of the Acuvue Oasys Max® lens was found to be 6.95, and therefore significantly higher than the YI of Example 10 of the present invention. Compared to Examples 9 and 10, the increased UV28 in the formulations of Examples 11 and 12 also resulted in a slight undesirable yellowing of the glass prosthetic eye, an observation consistent with the YI values reported in Table 3 above. Therefore, it was found that lenses with a YI of less than 6.0, and especially less than 5.0, give the eye a more natural appearance than lenses with a YI greater than 6.0.
[0096] Absorption spectrum The absorption of light in the 250–500 nm range was determined for solutions of Norbloc, UV416, UV13, and UV28 in ethyl acetate. The absorption spectra for each compound are shown in Figure 1. All solutions were 0.003 mass% solutions prepared in ≥99.8% HPLC-grade ethyl acetate, and the absorbance of the solutions at 250–800 nm was measured using a Perkin Elmer Lambda 365 spectrometer. The absorption of light in the 380–460 nm range was determined for solutions of UV1, UV5 (UVAM), UV13, UV15, and UV28 in ethyl acetate. The absorption spectra for each compound are shown in Figure 2. All solutions were 0.003 mass% solutions prepared in ≥99.8% HPLC-grade ethyl acetate, and the absorbance of solutions at 250–800 mm was measured using a Perkin Elmer Lambda 365 spectrometer.
[0097] Without being bound by any particular theory, it is hypothesized that the use of two different high-energy short-wavelength visible light absorbers, each containing a benzotriazole moiety, would enable more effective absorption of light in the 350–420 nm range due to differences in absorption maxima for the different compounds. The peak absorbance of a solution of UV13 in ethyl acetate in the 350–455 nm range was found to be 359 nm, while the peak absorbance of a solution of UV28 in the 350–455 nm range was found to be 369 nm. UV13 was found to absorb light in the 340–375 nm range more effectively, while UV28 was found to absorb light in the 380–440 nm range more effectively.
[0098] Furthermore, it is hypothesized that the use of benzophenone UV absorbers combined with two different HEVL absorbers, each containing a benzotriazole moiety, would result in more effective blocking of light in the 260–440 nm range than combinations containing only benzotriazole UV absorbers, due to the significant difference in absorption between benzophenone and benzotriazole compounds. As can be seen from Figure 1, there is a significant overlap between the absorption spectra of the benzotriazole UV absorber Norbloc and the benzotriazole HEVL absorbers UV13 and UV28, while the absorption spectrum of the benzophenone UV absorber UV416 is complementary to the absorption spectra of UV13 and UV28, resulting in enhanced absorbance over a wider wavelength range. The disclosures herein refer to certain exemplary examples, which are presented as examples and not as limitations. The intent of the above detailed description is to discuss exemplary examples, but to be interpreted as encompassing all variations, alternatives, and equivalents of the examples, which may fall within the spirit and scope of the invention as defined by the additional disclosures.
[0099] The present invention includes the following aspects / embodiments / features in any order and / or any combination: 1. A hydrogel contact lens formulation for forming a polymer body of a hydrogel contact lens, A first high-energy visible light (HEVL) absorber containing a benzotriazole moiety, A second different high-energy visible light (HEVL) absorber containing a benzotriazole moiety. A formulation containing the above. 2. The formulation according to 1, further comprising a polymerizable UV absorber containing a benzophenone moiety. 3. The formulation according to claim 1 or 2, wherein the highest wavelength at which a 0.003% by mass solution of the second HEVL absorber in ethyl acetate has an absorbance of 0.1 is at least 10 nm lower than the highest wavelength at which a 0.003% by mass solution of the first HEVL absorber in ethyl acetate has an absorbance of 0.1. 4. a. The first HEVL absorber is characterized in that, with respect to the absorption spectrum of a 0.003 mass% solution of the first HEVL absorber in ethyl acetate, the tangent to a point on the curve defined by the highest wavelength at which the absorbance is 0.5 intersects the 0.0 absorbance axis at 412-440 nm, preferably 415-435 nm, and particularly at 415-430 nm; the second HEVL absorber is characterized in that, with respect to the absorption spectrum of a 0.003 mass% solution of the second HEVL absorber in ethyl acetate, the tangent to a point on the curve defined by the highest wavelength at which the absorbance is 0.5 intersects the 0.0 absorbance axis at a wavelength shorter than the wavelength at which the tangent to the point on the curve defined by the highest wavelength at which the absorbance is 0.5 intersects the 0.0 absorbance axis, for example, at least 5 nm shorter, and particularly at least 10 nm shorter; and / or b. The second HEVL absorber is characterized in that, with respect to the absorption spectrum of the first HEVL absorber in a 0.003 mass% solution in ethyl acetate, the tangent to a point on the curve defined by the highest wavelength at which the absorbance is 0.5 intersects the 0.0 absorbance axis at 385-415 nm, preferably 390-412 nm; the second HEVL absorber is characterized in that, with respect to the absorption spectrum of the second HEVL absorber in a 0.003 mass% solution in ethyl acetate, the tangent to a point on the curve defined by the highest wavelength at which the absorbance is 0.5 intersects the 0.0 absorbance axis at a wavelength shorter than the wavelength at which the absorbance is 0.5 with respect to the absorption spectrum of the first HEVL absorber in a 0.003 mass% solution in ethyl acetate, for example, at least 5 nm shorter, and particularly at least 8 nm shorter; and / or c. The first HEVL absorber is characterized in that, with respect to the absorption spectrum of a 0.003 mass% solution of the first HEVL absorber in ethyl acetate, the highest wavelength at which the absorbance is 0.1 is 412 to 440 nm, preferably 415 to 435 nm, and particularly 415 to 430 nm; the second HEVL absorber is characterized in that, with respect to the absorption spectrum of a 0.003 mass% solution of the second HEVL absorber in ethyl acetate, the highest wavelength at which the absorbance is 0.1 is 385 to 412 nm, preferably 390 to 410 nm; and / or d. A 0.003 mass% solution of the first HEVL absorber in ethyl acetate has an absorbance peak in the range of 360–410 nm, and a 0.003 mass% solution of the second HEVL absorber in ethyl acetate has a peak absorbance at a wavelength at least 5 nm shorter, for example, 5–25 nm shorter, and especially 5–15 nm shorter, than the absorbance peak of the 0.003 mass% solution of the first HEVL absorber in ethyl acetate which falls within the range of 360–410 nm; and / or e. A 0.003% by mass solution of the first HEVL absorber in ethyl acetate has an absorbance of at least 0.35 for light at a wavelength of 400 nm and / or at least 0.55 for light at a wavelength of 390 nm; a 0.003% by mass solution of the second HEVL absorber in ethyl acetate has an absorbance of less than 0.30 for light at a wavelength of 400 nm and / or less than 0.55 for light at a wavelength of 390 nm. A preparation described in any of 1 to 3. 5. A formulation according to any one of 1 to 4, wherein the first and second HEVL absorbents are each of formula (1).
[0100] [ka] (1) (In the formula, R 1 is halogen, OH, C 1-12 Alkyloxy, -A-R9-Y, possibly substituted C 1-12 Alkyl, optionally substituted phenoxy, or optionally substituted naphthyloxy, where any substituent is halogen, C1-6 Alkyl, C 1-6 Alkoxy, OH, -(CH2CH2O) n H, -(CH2CH2O) n CH2CH3, -(CH2CH(CH3)O) n H, or -(CH2CH(CH3)O) n is CH2CH2(CH3); R 6 and R 7 one of them is H, or C alkyl optionally substituted with halogen 1-12 is; R 6 and R 7 the other is
[0101]
Chemical formula
[0102] [ka] and; Each R 10 Independently, C 1-10 Alkyl, or C 3-10 It is an alkenil; R 11 C 3-10 It is a cycloalkenylene; R 12 C 1-10 (It is alkylene or 1,2-phenylene.)
[0103] 6. The formulation according to 5, wherein the total amount of the existing HEVL absorbent of formula (1) does not exceed 2.7% (mass / mass), preferably not exceeding 2.0% (mass / mass). 7. A formulation according to any one of 1 to 6, wherein the first HEVL absorbent is 2-[2'-hydroxy-3'-tert-butyl-5'-(3''-methacryloyloxypropoxy)phenyl]-5-chloro-2H-benzotriazole (UV28). 8. The second HEVL absorber is 2-(1,1-dimethylethyl)-4-[3-[(4-ethenylphenyl)methoxy]propoxy]-6-(5-methoxy-2H-benzotriazol-2-yl)-phenol (UV1), 2-(5-chloro-2H-benzotriazol-2-yl)-6-(1,1-dimethylethyl)-4-ethenyl-phenol (UV5 / UVAM), 2-[2'-hydroxy-3'-tert-butyl-5'-(3''-methacryloyloxypropoxy)phenyl] A preparation according to any one of 1 to 7, selected from -5-methoxy-2H-benzotriazole (UV13), 2-3'-tert-butyl-2'-hydroxy-5'-(3''-dimethylvinylsilylpropoxy)-2'-hydroxy-phenyl)-5-methoxybenzotriazole (UV15), and especially 2-[2'-hydroxy-3'-tert-butyl-5'-(3''-methacryloyloxypropoxy)phenyl]-5-methoxy-2H-benzotriazole (UV13).
[0104] 9. The formulation according to any one of claims 1 to 8, wherein the first HEVL absorbent is present in an amount of 0.3% to 0.9% (mass / mass), preferably 0.4% to 0.7% (mass / mass), and the second HEVL absorbent is present in an amount of 0.5% to 2.2% (mass / mass), preferably 0.7% to 1.6% (mass / mass). 10. A formulation according to any one of 1 to 9, comprising a polymerizable UV absorber containing a benzophenone moiety in an amount not exceeding 1.5% (mass / mass), preferably not exceeding 1.0% (mass / mass). 11. A formulation according to any one of 1 to 10, wherein the polymerizable UV absorber is 2-(4-benzoyl-3-hydroxyphenoxy)ethyl acrylate (UV416). 12. A formulation according to any one of 1 to 11, further comprising a polymerizable blue or blue-green coloring agent containing an anthraquinone moiety. 13. The formulation according to 12, wherein the polymerizable blue or blue-green colorant is selected from 1,4-bis[4-(2-methacrylateoxyethyl)phenylamino]-9,10-anthraquinone (RB246) or 1,4-bis[(2-methacrylateoxyethyl)amino]-9,10-anthraquinone (RB247).
[0105] 14. A preparation according to any one of 1 to 13, which is a thermosetting preparation containing at least one thermal initiator. 15. A formulation according to any one of 1 to 14, further comprising at least one hydrophilic monomer in an amount of at least 25% (mass / mass). 16. The formulation according to 15, comprising at least one hydrophilic N-vinylamide monomer in an amount of at least 15% (mass / mass). 17. The formulation according to 16, comprising at least 30% (by mass) of a hydrophilic N-vinylamide monomer. 18. A silicone hydrogel contact lens formulation comprising a polymerizable siloxane component in an amount of at least 25% (mass / mass), as described in any of claims 1 to 17. 19. The formulation according to 18, comprising 30-60% (mass / mass) of a polymerizable siloxane component. 20. The formulation according to 18 or 19, wherein at least 40% (by mass / by mass) of the polymerizable siloxane content is a bifunctional siloxane having a molecular weight of at least 8,000 daltons, and at least 25% (by mass / by mass) of the polymerizable siloxane content is a monofunctional siloxane having a molecular weight of less than 3,000 daltons.
[0106] 21. A siloxane component present in an amount of at least 35% (mass / mass) of the total mass of the formulation, wherein at least 40% of the siloxane content is a bifunctional siloxane having a molecular weight of at least 8,000 daltons; The N-vinylamide monomer component is present in an amount of at least 37% (mass / mass) of the total mass of the formulation. A formulation containing any of the items described in 18 to 20. 22. A formulation according to any one of 1 to 21, comprising at least 5% (mass / mass) of a non-siloxane hydrophobic monomer, especially a hydrophobic methacrylate monomer, based on the total mass of the formulation. 23. The formulation according to 22, wherein the hydrophobic monomer comprises hydroxybutyl methacrylate, isobornyl methacrylate, or a combination of hydroxybutyl methacrylate and isobornyl methacrylate.
[0107] 24. a. At least 30% (mass / mass) of a hydrophilic N-vinylamide monomer, and b. A polymerizable siloxane component in an amount of 35 to 60% (mass / mass) of the total formulation, wherein at least 40% (mass / mass) of the polymerizable siloxane content is a bifunctional siloxane having a molecular weight of at least 8,000 daltons, and at least 25% (mass / mass) of the polymerizable siloxane content is a monofunctional siloxane having a molecular weight of less than 3,000 daltons, and c. At least 5% (mass / mass) of a non-siloxane hydrophobic methacrylate monomer based on the total mass of the formulation and comprising a formulation according to any one of 1 to 1,4. 25. a. N-methyl N-vinylacetamide in an amount of 30 to 50% (mass / mass) of the total formulation, and b. A bifunctional (meth)acrylate-containing siloxane having a molecular weight of at least 8,000 daltons in an amount of 20 to 40% (mass / mass) of the total formulation, and c. A monofunctional (meth)acrylate-containing siloxane having a molecular weight of less than 3,000 daltons in an amount of 10 to 30 (mass / mass) of the total formulation, and d. Hydroxybutyl methacrylate, isobornyl methacrylate, or a combination of hydroxybutyl methacrylate and isobornyl methacrylate in an amount of 5 to 15% (mass / mass) of the total formulation and comprising a formulation according to any one of 1 to 14.
[0108] 26. The formulation according to 24 or 25, wherein the bifunctional siloxane monomer is a (meth)acrylate-containing siloxane monomer represented by formula (III). [ka] (In the formula, R1 is selected from either hydrogen or a methyl group; R2 is hydrogen or C 1-4 Selected from any hydrocarbon group; m represents an integer from 0 to 10; n represents an integer from 4 to approximately 15, 25, or 100; a and b represent integers greater than or equal to 1; a+b is equal to 20 to 500; b / (a+b) is equal to 0.01 to 0.22; the composition of the siloxane unit includes random configurations.
[0109] 27. The formulation according to any one of 24 to 26, wherein the monofunctional siloxane monomer is a methacrylate-containing siloxane monomer represented by formula (II). [ka] (In the formula, n is an integer between approximately 10 and 15.) 28. Hydrogel contact lenses obtained from polymerization of any of the formulations described in 1 to 27.
[0110] 29. The contact lens described in 28, having the following light transmission characteristics. [Table 6] 30. Contact lenses according to 28 or 29, having a yellowness of less than 6.0 as determined by the ASTM E313-05 method.
[0111] The entire contents of all references cited in this disclosure are incorporated herein by reference to the extent that they do not conflict with this disclosure. Other embodiments of the present invention will become apparent to those skilled in the art from the discussion herein and the practice of the present invention disclosed herein. This specification and examples are illustrative only, and the true scope and spirit of the present invention are intended to be shown by the following claims and equivalents. Another aspect of the present invention may be as follows: [1] A hydrogel contact lens formulation for forming a polymer body of a hydrogel contact lens, A first high-energy visible light (HEVL) absorber containing a benzotriazole moiety, A second different high-energy visible light (HEVL) absorber containing a benzotriazole moiety and Includes, A 0.003 mass% solution of the first HEVL absorber in ethyl acetate has an absorbance peak in the range of 360-410 nm. A formulation wherein a 0.003% by mass solution of a second HEVL absorber in ethyl acetate has a peak absorbance at a wavelength 5 to 25 nm shorter than the absorbance peak of a 0.003% by mass solution of a first HEVL absorber in ethyl acetate, which falls in the range of 360 to 410 nm. [2] The formulation according to [1], wherein the first and second HEVL absorbent are each of formula (1). [ka] (1) (In the formula, R 1 is halogen, OH, C 1-12 Alkyloxy, -AR 9 -Y, C may be substituted. 1-12 Alkyl, optionally substituted phenoxy, or optionally substituted naphthyloxy, where any substituent is halogen, C 1-6 Alkyl, C 1-6 Alkoxy, OH, -(CH 2 CH 2 O) n H, -(CH 2 CH 2 O) n CH 2 CH 3 ,-(CH 2 CH(CH 3 )O) n H, or -(CH 2 CH(CH 3 )O) n CH 2 CH 2 (CH 3 ) and; R 6 and R 7 One of the C atoms may be substituted with H or a halogen. 1-12 It is alkyl; R 6 and R 7 The other one is,
change
change
[10] The formulation according to [9], wherein the polymerizable blue or blue-green colorant is selected from 1,4-bis[4-(2-methacrylateoxyethyl)phenylamino]-9,10-anthraquinone (RB246) or 1,4-bis[(2-methacrylateoxyethyl)amino]-9,10-anthraquinone (RB247).
[11] The preparation according to any one of the above items [1] to
[10] , which is a thermosetting preparation comprising at least one thermal initiator.
[12] The formulation according to any one of the above items [1] to
[11] , further comprising at least one hydrophilic monomer in an amount of at least 25% (mass / mass).
[13] The formulation according to
[12] , comprising at least one hydrophilic N-vinylamide monomer in an amount of at least 15% (mass / mass).
[14] The formulation according to
[13] , comprising at least 30% (mass / mass) of a hydrophilic N-vinylamide monomer.
[15] A silicone hydrogel contact lens formulation comprising a polymerizable siloxane component in an amount of at least 25% (mass / mass), as described in any one of the above items [1] to
[14] .
[16] The formulation according to
[15] , comprising 30-60% (mass / mass) of a polymerizable siloxane component.
[17] The formulation according to
[15] or
[16] , wherein at least 40% (by mass / by mass) of the polymerizable siloxane content is a bifunctional siloxane having a molecular weight of at least 8,000 daltons, and at least 25% (by mass / by mass) of the polymerizable siloxane content is a monofunctional siloxane having a molecular weight of less than 3,000 daltons.
[18] A siloxane component present in an amount of at least 35% (mass / mass) of the total mass of the preparation, wherein at least 40% of the siloxane content is a bifunctional siloxane having a molecular weight of at least 8,000 daltons; The N-vinylamide monomer component is present in an amount of at least 37% (mass / mass) of the total mass of the formulation. A preparation according to any one of the above items
[15] to
[17] , including the above.
[19] The formulation according to any one of the above [1] to
[18] , comprising at least 5% (mass / mass) of a nonsiloxane hydrophobic monomer, particularly a hydrophobic methacrylate monomer, based on the total mass of the formulation.
[20] The formulation according to
[19] , wherein the hydrophobic monomer comprises hydroxybutyl methacrylate, isobornyl methacrylate, or a combination of hydroxybutyl methacrylate and isobornyl methacrylate.
[21] a. At least 30% (mass / mass) of a hydrophilic N-vinylamide monomer, b. A polymerizable siloxane component comprising 35-60% (mass / mass) of the total formulation, wherein at least 40% (mass / mass) of the polymerizable siloxane content is a bifunctional siloxane having a molecular weight of at least 8,000 daltons, and at least 25% (mass / mass) of the polymerizable siloxane content is a monofunctional siloxane having a molecular weight of less than 3,000 daltons, c. At least 5% (mass / mass) of the nonsiloxane hydrophobic methacrylate monomer relative to the total mass of the formulation A preparation according to any one of the above items [1] to
[11] , including the above.
[22] a. N-methyl N-vinylacetamide in an amount of 30-50% (mass / mass) of the total preparation, b. A siloxane containing a bifunctional (meth)acrylate having a molecular weight of at least 8,000 daltons, in an amount of 20-40% (mass / mass) of the total formulation, c. A monofunctional (meth)acrylate-containing siloxane having a molecular weight of less than 3000 daltons in an amount of 10 to 30 (mass / mass) of the total formulation, d. 5-15% (mass / mass) of the total formulation of hydroxybutyl methacrylate, isobornyl methacrylate, or a combination of hydroxybutyl methacrylate and isobornyl methacrylate. A preparation according to any one of the above items [1] to
[11] , including the above.
[23] The formulation according to
[21] or
[22] , wherein the bifunctional siloxane monomer is a (meth)acrylate-containing siloxane monomer represented by formula (III).
change
[24] The formulation according to
[21] ,
[22] , or
[23] , wherein the monofunctional siloxane monomer is a methacrylate-containing siloxane monomer represented by formula (II).
change
[25] A hydrogel contact lens obtained by polymerization of any one of the formulations described in [1] to
[24] above.
[26] The contact lens described in
[25] , having the following light transmission characteristics. Table 7
[27] The contact lens according to
[25] or
[26] , having a yellowness of less than 6.0 as determined by the ASTM E313-05 method.
Claims
1. A silicone hydrogel contact lens formulation for forming a polymer body of a hydrogel contact lens, At least one hydrophilic monomer, at least one hydrophilic N-vinylamide monomer, and a polymerizable siloxane component, A first high-energy visible light (HEVL) absorber containing a benzotriazole moiety, A second different high-energy visible light (HEVL) absorber containing a benzotriazole moiety and Includes, A 0.003% by mass solution of the first HEVL absorber in ethyl acetate has an absorbance peak in the range of 360 to 410 nm. A 0.003% by mass solution of the second HEVL absorber in ethyl acetate has a peak absorbance at a wavelength 5 to 25 nm shorter than the absorbance peak of the 0.003% by mass solution of the first HEVL absorber in ethyl acetate, which falls in the range of 360 to 410 nm. The first HEVL absorbent is 2-[2'-hydroxy-3'-tert-butyl-5'-(3''-methacryloyloxypropoxy)phenyl]-5-chloro-2H-benzotriazole (UV28), A formulation wherein the second HEVL absorbent is 2-[2'-hydroxy-3'-tert-butyl-5'-(3''-methacryloyloxypropoxy)phenyl]-5-methoxy-2H-benzotriazole (UV13).
2. The formulation according to claim 1, wherein the total amount of the present first HEVL absorbent and the second HEVL absorbent does not exceed 2.7% (mass / mass).
3. The formulation according to claim 1, wherein the first HEVL absorbent is present in an amount of 0.3% to 0.9% (mass / mass) and the second HEVL absorbent is present in an amount of 0.5% to 2.2% (mass / mass).
4. The formulation according to claim 1, comprising a polymerizable UV absorber containing a benzophenone moiety in an amount not exceeding 1.5% (mass / mass).
5. The formulation according to claim 4, wherein the polymerizable UV absorber is 2-(4-benzoyl-3-hydroxyphenoxy)ethyl acrylate (UV416).
6. The formulation according to claim 1, further comprising a polymerizable blue or blue-green colorant containing an anthraquinone moiety.
7. The formulation according to claim 6, wherein the polymerizable blue or blue-green coloring agent is selected from 1,4-bis[4-(2-methacrylateoxyethyl)phenylamino]-9,10-anthraquinone (RB246) or 1,4-bis[(2-methacrylateoxyethyl)amino]-9,10-anthraquinone (RB247).
8. The preparation according to claim 1, which is a thermosetting preparation comprising at least one thermal initiator.
9. The formulation according to claim 1, comprising at least one hydrophilic monomer in an amount of at least 25% (mass / mass).
10. The formulation according to claim 9, comprising at least one hydrophilic N-vinylamide monomer in an amount of at least 15% (mass / mass).
11. The formulation according to claim 10, comprising at least 30% (by mass) of a hydrophilic N-vinylamide monomer.
12. The formulation according to claim 1, comprising the polymerizable siloxane component in an amount of at least 25% (mass / mass).
13. The formulation according to claim 12, comprising 30-60% (by mass / by mass) of the polymerizable siloxane component.
14. The formulation according to claim 12 or claim 13, wherein at least 40% (mass / mass) of the polymerizable siloxane content is a bifunctional siloxane having a molecular weight of at least 8,000 daltons, and at least 25% (mass / mass) of the polymerizable siloxane content is a monofunctional siloxane having a molecular weight of less than 3,000 daltons.
15. A siloxane component present in an amount of at least 35% (mass / mass) of the total mass of the formulation, wherein at least 40% of the siloxane content is a bifunctional siloxane having a molecular weight of at least 8,000 daltons; The N-vinylamide monomer component is present in an amount of at least 37% (mass / mass) of the total mass of the formulation. The formulation according to claim 12, comprising:
16. The formulation according to claim 1, comprising at least 5% (mass / mass) of a nonsiloxane hydrophobic monomer relative to the total mass of the formulation.
17. The formulation according to claim 16, wherein the hydrophobic monomer comprises hydroxybutyl methacrylate, isobornyl methacrylate, or a combination of hydroxybutyl methacrylate and isobornyl methacrylate.
18. a. At least 30% (mass / mass) of a hydrophilic N-vinylamide monomer, b. A polymerizable siloxane component comprising 35-60% (mass / mass) of the total formulation, wherein at least 40% (mass / mass) of the polymerizable siloxane content is a bifunctional siloxane having a molecular weight of at least 8,000 daltons, and at least 25% (mass / mass) of the polymerizable siloxane content is a monofunctional siloxane having a molecular weight of less than 3,000 daltons, c. At least 5% (mass / mass) of the nonsiloxane hydrophobic methacrylate monomer relative to the total mass of the formulation and The formulation according to claim 1, comprising:
19. a. N-methyl-N-vinylacetamide in an amount of 30-50% (mass / mass) of the total formulation, b. A siloxane containing a bifunctional (meth)acrylate having a molecular weight of at least 8,000 daltons, in an amount of 20-40% (mass / mass) of the total formulation, c. A monofunctional (meth)acrylate-containing siloxane having a molecular weight of less than 3000 daltons in an amount of 10 to 30 (mass / mass) of the total formulation, d. 5-15% (mass / mass) of the total formulation of hydroxybutyl methacrylate, isobornyl methacrylate, or a combination of hydroxybutyl methacrylate and isobornyl methacrylate. The formulation according to claim 1, comprising:
20. The formulation according to claim 18 or claim 19, wherein the bifunctional siloxane monomer is a (meth)acrylate-containing siloxane monomer represented by formula (III). 【Chemistry 1】 (III) (In the formula, R 1 R is selected from either a hydrogen or a methyl group; 2 is hydrogen or C 1-4 Selected from any hydrocarbon group; m represents an integer from 0 to 10; n represents an integer from 4 to 100; a and b represent integers greater than or equal to 1; a + b is equal to 20 to 500; b / (a + b) is equal to 0.01 to 0.22; the composition of the siloxane unit includes random configurations.
21. The formulation according to claim 18 or claim 19, wherein the monofunctional siloxane monomer is a methacrylate-containing siloxane monomer represented by formula (II). 【Chemistry 2】 (II) (In the formula, n is an integer between 10 and 15.)
22. A hydrogel contact lens obtained from polymerization of the formulation described in claim 1.
23. The contact lens according to claim 22, having the following light transmission characteristics. Table 1
24. A contact lens according to claim 22 or 23, having a yellowness of less than 6.0 as determined by the ASTM E313-05 method.
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