(Meth)acrylate-functional silicones and methods for their preparation and use
The method addresses the challenges of crosslinking and low efficiency in acrylic chain incorporation by hydrolyzing alkoxysilyl-functional (meth)acrylate monomers and condensing with polyorganosiloxanes, resulting in improved (meth)acrylate-functional silicones with enhanced grafting efficiency.
Patent Information
- Application Number
- JP2022560856
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-05-07
- Filing Date
- 2021-04-13
- Publication Date
- 2025-09-26
- Estimated Expiration
- 2041-04-13
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Abstract
Description
[Technical Field]
[0001] (CROSS-REFERENCE TO RELATED APPLICATIONS) This application claims priority under 35 U.S.C. §119(e) to U.S. Provisional Patent Application No. 63 / 021182, filed May 7, 2020. U.S. Provisional Patent Application No. 63 / 021182 is incorporated herein by reference.
[0002] FIELD OF THE INVENTION The present invention relates to (meth)acrylate functional silicones and methods for their preparation and use. [Background technology]
[0003] By carrying out the polymerization in the presence of a mercapto-functional polydimethylsiloxane, acrylic chains can be incorporated into the polydimethylsiloxane backbone using free radical polymerization. The mercapto group acts as a chain transfer agent, allowing acrylic chains to be grafted onto the polydimethylsiloxane chain as pendant and / or terminal groups. However, if the mercapto-functional polydimethylsiloxane also contains vinyl or other aliphatically unsaturated monovalent hydrocarbyl functional groups, the reaction of the aliphatic unsaturated groups during free radical polymerization can saturate or crosslink the system. Furthermore, because chain transfer is a kinetically controlled process, the grafting efficiency can be low due to the low level of mercapto functionality. Summary of the Invention
[0004] (Meth)acrylate-functional silicones and methods for preparing the same are disclosed. The methods involve hydrolysis of an alkoxysilyl-functional (meth)acrylate monomer, followed by condensation of the resulting hydrolysis product with a polyorganosiloxane. The resulting (meth)acrylate-functional silicones have the unit formula: (R 1 3SiO 1 / 2 ) p (R 1 2nd Round 3 SiO 1 / 2 )q (R 1 2SiO 2 / 2 ) m (R 1 R 2 SiO 2 / 2 ) n (R 1 R 3 SiO 2 / 2 ) o (R 5 SiO 3 / 2 ) r (SiO 4 / 2 ) s (In the formula, each R 1 are independently selected monovalent hydrocarbon groups free of aliphatic unsaturation, and each R 2 are independently selected (meth)acryloxyalkyl functional groups, and each R 3 are independently selected aliphatic unsaturated monovalent hydrocarbon groups, and each R 5 are independently 1 , R 2 , and R 3 and the subscripts p, q, m, n, o, r, and s have values such that the total number (p+q)≧2, m>0, n>2, o≧0, r≧0, and s≧0. DETAILED DESCRIPTION OF THE INVENTION
[0005] A method for preparing a (meth)acrylate functional silicone is provided, the method comprising: 1) combining starting materials under conditions to form a crude hydrolysis product, including: A) alkoxysilyl-functional (meth)acrylate monomers, B) water, and C) Hydrolysis reaction catalyst; 2) purifying the crude hydrolysate, thereby forming a purified hydrolysate product; 3) combining the purified hydrolysis product and starting materials under conditions to form a condensation reaction product, including: D) a polydiorganosiloxane, D1) unsaturated polydiorganosiloxanes having at least one silicon-bonded aliphatic unsaturated group per molecule; D2) a hydroxyl-functional polydiorganosiloxane having at least two silicon-bonded hydroxyl groups per molecule, and D3) a polydiorganosiloxane selected from the group consisting of a combination of D1) and D2); E) condensation reaction catalyst; Optionally, F) polydialkylsiloxane; Optionally, G) a solvent; and H) a free radical scavenger, thereby forming a condensation reaction product comprising a (meth)acrylate functional silicone and a condensation by-product; 4) purifying the condensation reaction product during and / or after step 3); optionally, 5) neutralizing the condensation reaction product; and optionally, 6) recovering the (meth)acrylate-functional silicone.
[0006] Starting Materials A) Alkoxysilyl-Functional (Meth)acrylate Monomers The starting material A) in the above process is an alkoxysilyl-functional (meth)acrylate monomer. The alkoxysilyl-functional (meth)acrylate monomer has the formula A-1):R 2 xR 1 ySi(OR 1 )(4-xy) (wherein the subscript x is 1 or 2, the subscript y is 0 or 1, the total number (x+y) is 1 to 3, and each R 1 are independently selected monovalent hydrocarbon groups free of aliphatic unsaturation, and each R 2 are independently selected (meth)acryloxyalkyl functional groups. Alternatively, x can be 1 and y can be 0 or 1, or 0. Alternatively, the alkoxysilyl-functional (meth)acrylate monomer can have the formula R 2 R 1 Si(OR 1 )2 (meth)acrylic functional dialkoxysilanes.
[0007] R in the above formula 1Suitable monovalent hydrocarbon groups (free of aliphatic unsaturation) include alkyl and aryl groups. The alkyl groups can be branched, unbranched, or cyclic. Examples of alkyl groups include methyl, ethyl, propyl (including n-propyl and / or isopropyl), butyl (including isobutyl, n-butyl, tert-butyl, and / or sec-butyl), pentyl (including isopentyl, neopentyl, and / or tert-pentyl); and hexyl, heptyl, octyl, nonyl, and decyl, as well as branched-chain saturated monovalent hydrocarbon groups of 6 or more carbon atoms; and cyclic alkyl groups such as cyclopentyl or cyclohexyl. The alkyl group has at least 1 carbon atom. Alternatively, the alkyl group may have 1 to 18 carbon atoms, alternatively 1 to 12 carbon atoms, alternatively 1 to 10 carbon atoms, alternatively 1 to 6 carbon atoms, alternatively 1 to 4 carbon atoms, alternatively 1 to 2 carbon atoms, or alternatively 1 carbon atom. Aryl groups include, or are, hydrocarbon groups derived from arenes by removing hydrogen atoms from ring carbon atoms. Aryl is exemplified by, but not limited to, phenyl, naphthyl, benzyl, tolyl, xylyl, phenylethyl, phenylpropyl, and phenylbutyl. Aryl groups have at least 5 carbon atoms. Monocyclic aryl groups may have 5 to 12 carbon atoms, alternatively 6 to 9 carbon atoms, alternatively 6 carbon atoms. Polycyclic aryl groups may have 9 to 17 carbon atoms, alternatively 9 to 14 carbon atoms, alternatively 9 to 12 carbon atoms. Alternatively, R 1 For each R, the alkyl group may be methyl and the aryl group may be phenyl. 1 As described above, R may be an alkyl group. 2 Suitable (meth)acryloxyalkyl functional groups for may be selected from the group consisting of acryloxypropyl and methacryloxypropyl.
[0008] Depending on the selection of starting material, various structures of (meth)acrylate functional silicone can be obtained.For example, (meth)acrylate functional silicone can be linear or substantially linear, for example, when starting material A) is (meth)acrylic functional dialkoxysilane, and no additional reactive silane is used in this method.The (meth)acrylic functional dialkoxysilane for starting material A) is known in the art and is commercially available.For example, starting material A) is exemplified by 3-[dimethoxy(methyl)silyl]propyl methacrylate (CAS No. 14513-34-9) and 3-[dimethoxy(methyl)silyl]propyl acrylate (CAS No. 13732-00-8).
[0009] Starting material B) water The starting material B), water, is generally not limited and may be used undiluted (i.e., completely free of solvent) and / or pure (i.e., free or substantially free of minerals and / or other impurities). For example, water (B) may be treated prior to step 1) of the above method, or may be untreated. Examples of processes that can be used to purify water include distillation, filtration, deionization, and combinations of two or more thereof, such that water (B) may be deionized, distilled, and / or filtered. Alternatively, water (B) may be untreated (e.g., tap water or well water provided by a municipal water system, used without further purification).
[0010] Water B) can be used in any amount selected by one of skill in the art depending on various factors, such as the particular catalyst selected for starting material C), the reaction parameters used, and the scale of the reaction (e.g., the total amount of starting material A to be hydrolyzed).
[0011] The relative amounts of starting materials A) and B) used in step 1) can vary based on, for example, the particular alkoxysilyl-functional (meth)acrylate monomer selected for starting material A), the selection and amount of starting material C), and the reaction parameters used. As will be appreciated by those skilled in the art, hydrolysis of alkoxysilyl-functional (meth)acrylate monomers with water occurs at a molar ratio of monomer:water [i.e., the ratio of (A):(B)] of 1:1 or >1. Excess water may be used to completely consume the alkoxysilyl-functional (meth)acrylate monomer.
[0012] Starting Materials C) Catalyst Suitable hydrolysis catalysts for use in step 1) of the above method are acid catalysts, including protonic acids and Lewis acids. A "Lewis acid" is any substance that can take up an electron pair to form a covalent bond. Examples of suitable acid catalysts include, for example, boron trifluoride, FeCl3, AlCl3, ZnCl2, ZnBr2, and compounds of the formula M 1 R 21 ηX 2 σ (where M 1 is B, Al, Ga, In, or Ti, and each R 21 are independently the same (identical) or different, and represent monovalent aromatic hydrocarbon radicals having 6 to 14 carbon atoms, and such monovalent aromatic hydrocarbon radicals preferably have at least one electron-withdrawing element or group such as —CF3, —NO2, or —CN, or are substituted with at least two halogen atoms; and X 2 is a halogen atom, the subscript σ is 1, 2, or 3, and the subscript η is 0, 1, or 2, provided that the total number (η + σ) = 3. An example of such a catalyst is B(C6F5)3. Alternatively, the acid catalyst may be a catalyst of the formula HX 2 (In the formula, X 2is as described above). Alternatively, the acid catalyst may comprise HCl. Alternatively, the catalyst in step 1) may be an acid catalyst summarized in U.S. Pat. No. 8,076,411 to Maton et al. The catalyst may be used in an amount ranging from 0.0001 moles to 1 mole per liter of water used, or alternatively, from 0.01 moles to 0.1 moles per liter of water used.
[0013] Step 1) of the method for preparing a (meth)acrylate-functional silicone involves hydrolysis of starting material A), such as a (meth)acrylic-functional dialkoxysilane. The reaction can be carried out at a low temperature. The low temperature is selected and controlled depending on the specific alkoxysilyl-functional (meth)acrylate monomer selected for starting material A) and the specific catalyst selected for starting material C). Therefore, the low temperature can be easily selected by one skilled in the art in light of the selected reaction conditions and parameters and the description herein. The low temperature can be from -78°C to below ambient temperature, for example, from -30°C to 25°C, alternatively from -15°C to 25°C, alternatively from -10°C to 25°C, alternatively from -10°C to 20°C, alternatively from -5°C to 20°C. Alternatively, the reaction can be carried out at a temperature of about 0°C ± 5°C (e.g., by using ice and / or a circulator or chiller using a 0°C set point). Alternatively, the reaction can be carried out at room temperature.
[0014] It is understood that the reaction temperature may vary from the ranges set forth above. Likewise, it is understood that reaction parameters may be modified during the reaction of starting materials (A) and (B) in step 1). For example, temperature, pressure, and other parameters may be independently selected or modified during the reaction. Any of these parameters may independently be ambient parameters (e.g., room temperature and / or atmospheric pressure) and / or non-ambient parameters (e.g., low or high temperature and / or reduced or elevated pressure). Any parameter may also be dynamically modified, in real time, i.e., during the process, or may be static (e.g., during the duration of the reaction or any portion thereof).
[0015] The time for step 1), in which the reaction of starting materials A) and B) is carried out to prepare a crude hydrolysis product, is a function of various factors, including the scale, reaction parameters and conditions, and the choice of the particular starting materials. The time for which the reaction is carried out can be >0 to 48 hours, e.g., 1 minute to 48 hours. On a larger scale (e.g., >1, or >5, or >10, or >50, or >100 kg), the reaction can be carried out for a time such as 1 to 48, or 1 to 36, or 1.5 to 24, or 1, 2, 6, 12, 18, 24, 36, or 48 hours, as readily determined by one of ordinary skill in the art (e.g., by monitoring the conversion of starting material A) and / or the production of crude hydrolysis product via chromatographic and / or spectroscopy). On a relatively small scale (e.g., gram scale, or <10, or <5, or <1 kg), the reaction may be carried out for a time period of from 1 minute to 4 hours, e.g., from 1 minute to 2 hours, from 5 minutes to 1.5 hours, or 60, 90, or 120 minutes.
[0016] Step 2) of the above method involves removing all or a portion of the unreacted starting materials and / or hydrolysis by-products from the crude hydrolysis product. The by-products include alcohols, such as methanol, when starting material A) has a methoxy group. Step 2) can be performed simultaneously with step 1), after step 1), or both. Step 2) can involve reducing the amount of unreacted starting materials and by-products in the crude hydrolysis product and / or removing the reaction product itself from the crude hydrolysis product. Any suitable technique may be used. Examples of suitable techniques include distillation, stripping / evaporation, extraction, filtration, washing, partitioning, phase separation, chromatography, and combinations of two or more thereof. As will be understood by those skilled in the art, any of these techniques may be used in combination (e.g., sequentially) with any other technique.
[0017] Alternatively, step 2) may comprise distilling and / or stripping volatile materials (e.g., water and alcohol) from the crude hydrolysis product during and after step 1). As will be appreciated by those skilled in the art, this stripping and / or distillation of the crude hydrolysis product may be carried out at elevated temperatures and reduced pressures. The elevated temperatures and reduced pressures are independently selected depending on various factors, such as the particular starting materials used, the particular hydrolysis product prepared, and other by-product removal techniques employed, as readily determined by those skilled in the art. Alternatively, step 2) may comprise filtration, stripping, and / or distillation. The product of step 2) is a purified hydrolysis product, i.e., comprises the reaction product of starting material A) with water, and contains amounts of unreacted starting materials B) and C), as well as less by-products than would be present in the absence of step 2.
[0018] Step 3) in the methods described herein includes combining the purified hydrolysis product prepared in step 2) and starting materials including D) polydiorganosiloxane, E) a condensation reaction catalyst, optionally F) a polydialkylsiloxane, optionally G) a solvent, H) a free radical scavenger, optionally I) an endblocker, and optionally J) an additional reactive silane different from starting material A under conditions to form a condensation product.
[0019] Starting Material D) Polydiorganosiloxane The starting material D) used in step 3) of the process for preparing a (meth)acrylate-functional silicone is a polydiorganosiloxane selected from the group consisting of: D1) unsaturated polydiorganosiloxanes having at least one silicon-bonded aliphatic unsaturated group per molecule; D2) hydroxyl-functional polydiorganosiloxanes having at least two silicon-bonded hydroxyl groups per molecule; and D3) a combination of both D1) and D2). When starting material D1) is used, the (meth)acrylate-functional silicone has both silicon-bonded aliphatic unsaturated groups and silicon-bonded poly(meth)acrylate groups.
[0020] The starting material D1) is an unsaturated polydiorganosiloxane having at least one silicon-bonded aliphatic unsaturated group per molecule. The aliphatic unsaturated groups may be in terminal positions, pendant positions, or both terminal and pendant positions. Alternatively, the aliphatic unsaturated groups may be in terminal positions.
[0021] The starting material D1) is an unsaturated polydiorganosiloxane having the unit formula D1-1):(R 3 R 1 2SiO 1 / 2 ) b (R 1 2SiO 2 / 2 ) c (R 3 R 1 SiO 2 / 2 ) d (R 1 3SiO 1 / 2 ) e (R'OR 1 2SiO 1 / 2 ) f (R'OR 1 SiO 2 / 2 ) g (In the formula, R 1 is as above, and each R 3 is an aliphatic unsaturated monovalent hydrocarbon group, and each R' is independently H and R 1 wherein the subscript b is 0, 1, or 2, the subscript c is ≧1, the subscript d is ≧0, the subscript e is 0, 1, or 2, the subscript f is 0, 1, or 2, and the subscript g is ≧0, with the proviso that the sum of (b+d)≧1, the sum of (b+e+f)=2, and the sum of (b+c+d+e+f+g) is at least 3, alternatively 3 to 250, alternatively 10 to 60.
[0022] R 3Suitable aliphatic unsaturated monovalent hydrocarbon groups include alkenyl and alkynyl groups. Alkenyl groups have a double bond and can be branched or unbranched. Alkenyl groups have at least two carbon atoms. Alternatively, alkenyl groups can have 2 to 18 carbon atoms, alternatively 2 to 12 carbon atoms, alternatively 2 to 10 carbon atoms, alternatively 2 to 6 carbon atoms, alternatively 2 to 4 carbon atoms, or alternatively 2 carbon atoms. Suitable alkenyl groups include, but are not limited to, vinyl, allyl, and hexenyl; alternatively vinyl and hexenyl. Alkynyl groups have a triple bond and can be branched or unbranched. Alkynyl groups have at least two carbon atoms. Alternatively, alkynyl groups can have 2 to 18 carbon atoms, alternatively 2 to 12 carbon atoms, alternatively 2 to 10 carbon atoms, alternatively 2 to 6 carbon atoms, alternatively 2 to 4 carbon atoms, or alternatively 2 carbon atoms. Alkynyl groups include ethynyl, propynyl, butynyl, and hexynyl. Alternatively, R 3 each aliphatically unsaturated monovalent hydrocarbon group is an independently selected alkenyl group, which may be selected from the group consisting of vinyl, allyl, and hexenyl; or vinyl and hexenyl.
[0023] Alternatively, in unit formula D1-1), the subscript b may be 0 or 2, the subscript e may be 0 or 2, and the subscript f may be 0. Alternatively, the subscript c may be 1 to 250, the subscript d may be 0 to 1, the subscript g may be 0 to 1, and the total number (c+d+g) may be 1 to 250. Alternatively, the total number (b+e) may be 2. Alternatively, the total number (b+g) may be 2. Alternatively, the subscript c may be 1 to 100, or 10 to 75, or 25 to 75, or 30 to 60. Alternatively, the subscript d may be 0 to 50, or 0 to 25, or 0 to 10, or 0 to 5. Alternatively, the subscript g may be 0 to 50, or 0 to 25, or 0 to 10, or 0 to 5. Subscript b is 0 to 2, or subscript b can be 0, or subscript b can be 2. Subscript e is 0 to 2, or subscript e can be 0, or subscript e can be 2. Subscript f is 0 to 2, or subscript f can be 0, or subscript f can be 2.
[0024] Starting material D1) may contain both silicon-bonded aliphatic unsaturated hydrocarbon groups and silicon-bonded hydroxyl groups. Examples of starting material D1) containing both silicon-bonded aliphatic unsaturated groups and silicon-bonded hydroxyl groups include OH-terminated polymethylvinylsiloxane and OH-terminated poly(dimethyl / methylvinyl)siloxane copolymer, both commercially available from Gelest. See, for example, "Gelest Reactive Silicones: Forging New Polymer Links," 2016, https: / / www.gelest.com / wp-content / uploads / Reactive-SIlicones-No-Price-2016.pdf, page 11. Alternatively, starting material D1) may have silicon-bonded aliphatic unsaturated hydrocarbon groups, silicon-bonded hydroxyl groups, and silicon-bonded alkoxy groups. Examples of such materials include hydroxy-terminated poly(dimethyl, methylvinylsiloxane), and DOWSIL™ 4-7042, a mixture of alpha-hydroxy-terminated, omega-methoxy-terminated poly(dimethyl, methylvinylsiloxane), available from Dow Silicones Corporation (Midland, Michigan, USA). Other examples of starting material D1) include hydroxy-terminated vinylmethylsiloxane-dimethylsiloxane copolymer (CAS No. 67923-19-7) and hydroxy-terminated polyvinylmethylsiloxane (CAS No. 68083-20-5). When starting material D1) contains both silicon-bonded aliphatically unsaturated hydrocarbon groups and sufficient silicon-bonded hydroxyl groups, starting material D2), a hydroxyl-functional polydiorganosiloxane, is optional.
[0025] Alternatively, in the above unit formula D1-1), the total number (f+g) may be less than 2 (thereby, starting material D1) may have less than 2 silicon-bonded hydroxyl groups per molecule). Examples of suitable unsaturated polydiorganosiloxanes include: Di) dimethylvinylsiloxy-terminated polydimethylsiloxane, D-ii) dimethylvinylsiloxy-terminated poly(dimethylsiloxane / methylvinylsiloxane), D-iii) dimethylvinylsiloxy-terminated polymethylvinylsiloxane, D-iv) trimethylsiloxy-terminated poly(dimethylsiloxane / methylvinylsiloxane), Dv) trimethylsiloxy-terminated polymethylvinylsiloxane, D-vi) dimethylvinylsiloxy-terminated poly(dimethylsiloxane / methylvinylsiloxane), D-vii) dimethylvinylsiloxy-terminated poly(dimethylsiloxane / methylphenylsiloxane), D-viii) dimethylvinylsiloxy-terminated poly(dimethylsiloxane / diphenylsiloxane), D-ix) phenyl, methyl, vinylsiloxy-terminated polydimethylsiloxanes, Dx) dimethylhexenylsiloxy-terminated polydimethylsiloxane, D-xi) dimethylhexenylsiloxy-terminated poly(dimethylsiloxane / methylhexenylsiloxane), D-xii) dimethylhexenylsiloxy-terminated polymethylhexenylsiloxane, D-xiii) trimethylsiloxy-terminated poly(dimethylsiloxane / methylhexenylsiloxane), D-xiv) Trimethylsiloxy-terminated polymethylhexenylsiloxane D-xv) dimethylhexenylsiloxy-terminated poly(dimethylsiloxane / methylhexenylsiloxane), D-xvi) Dimethylvinylsiloxy-terminated poly(dimethylsiloxane / methylhexenylsiloxane) and D-xvii) combinations thereof. Vinyl-functional polydiorganosiloxanes are available; see, for example, "Gelest Reactive Silicones: Forging New Polymer Links," 2016, https: / / www.gelest.com / wp-content / uploads / Reactive-SIlicones-No-Price-2016.pdf, pages 8-11 and 15-16. If starting material D1) does not contain sufficient silicon-bonded hydroxyl groups, starting material D2) may be used in the above process. The amount of starting material D1) used in the process depends on various factors, including whether D1) has terminal, pendant, or both terminal and pendant aliphatic unsaturation, but the amount of starting material D1) is sufficient to provide 0.1% to 10%, or alternatively 0.1% to 2%, of aliphatic unsaturation relative to all of the starting materials in the process for making the (meth)acrylate-functional silicone. Alternatively, the amount of starting material D1) may be 0.5% to 5%, alternatively 1% to 4%, alternatively 1% to 3%, based on the combined weight of starting materials A) and D. Alternatively, if D1) has hydroxyl functionality and starting material D2) is not used, starting material D1) may be present in a higher amount, for example up to 90%.
[0026] Starting material D2) In step 3) of the above process, starting material D2) is a hydroxyl-functional polydiorganosiloxane having at least two silicon-bonded hydroxyl groups per molecule. The hydroxyl groups may be present in terminal positions, pendant positions, or both. Alternatively, the hydroxyl groups may be present in terminal positions.
[0027] The starting material D2) has the unit formula D2-1):(R 1 2SiO 2 / 2 ) h (R 1 3SiO 1 / 2 ) i (HOR 1 2SiO 1 / 2 ) j (In the formula, R 1where the subscript j is 1 or 2, the subscript i is 0 or 1, the total number (j+i)=2, the subscript h≧1, and the total number (h+i+j) is at least 3, alternatively from 3 to 250, alternatively from 3 to 100, or alternatively from 10 to 40. Alternatively, the subscript h may be from 1 to 250, alternatively from 1 to 100, or alternatively from 10 to 40. Alternatively, the subscript i may be 0 and the subscript j may be 2. Examples of starting materials D2) include hydroxyl-terminated polydimethylsiloxane, hydroxyl-terminated poly(dimethyl / diphenyl)siloxane copolymer, and hydroxyl-terminated poly(dimethyl / methylphenyl)siloxane copolymer. Alternatively, suitable bishydroxyl-terminated polydimethylsiloxanes are commercially available from Dow Silicones Corporation (Midland, Michigan, USA). Exemplary hydroxyl-functional polydiorganosiloxanes are commercially available and include the silanol-functional polymers in "Gelest Reactive Silicones: Forging New Polymer Links," 2016, https: / / www.gelest.com / wp-content / uploads / Reactive-SIlicones-No-Price-2016.pdf, pages 22 and 24-25. Other hydroxyl-functional polydiorganosiloxanes for starting material D2) include hydroxy-terminated polydimethylsiloxane (CAS No. 70131-67-8), hydroxy-terminated polyphenylmethylsiloxane (CAS No. 80801-30-5), and diphenylsilanediol (CAS No. 947-42-2). Starting material D2) may be used in an amount of 80% to 99.5%, alternatively 85% to 99%, alternatively 87% to 95%, alternatively 89% to 95% on the same basis, based on the total weight of starting materials A) and D).
[0028] The starting material D3) can be a physical mixture of D1) and D2).
[0029] Starting material E) Condensation reaction catalyst In step 3) of the method for preparing a (meth)acrylate-functional silicone, starting material E) is a phosphazene condensation catalyst, such as a phosphonitrile halide. Without wishing to be bound by theory, it is believed that when a phosphazene condensation catalyst is used in the method, the formation of cyclic siloxane by-products (e.g., octamethylcyclotetrasiloxane) can be minimized.
[0030] Phosphazene condensation catalysts are exemplified by those disclosed in U.S. Patent No. 9,051,428 to Davio et al. Exemplary phosphazene condensation catalysts can contain at least one -(N=P<)- unit per molecule and can be an oligomer having up to 10 such phosphazene units, e.g., an average of 1.5 to 5 phosphazene units. The phosphazene condensation catalyst can be an ionic derivative of a phosphazene, such as a phosphazenium salt, e.g., a perchlorooligophosphazenium salt, e.g., a halophosphazene, e.g., chlorophosphazene (phosphonitrile chloride), an oxygen-containing halophosphazene, or an ionic derivative of a phosphonitrile halide.
[0031] One suitable class of phosphazene condensation reaction catalysts are oxygen-containing chlorophosphazenes, such as oxygen-containing chlorophosphazenes. Such oxygen-containing chlorophosphazenes can be, for example, represented by Formula E-1:
[0032] [ka] or E-2):
[0033] [ka] In formulas E-1) and E-2), the subscript p may have an average value of 1 to 10, alternatively 1 to 5. The catalyst may also include tautomers of the catalyst of formula E-2). Another class of suitable oxygen-containing chlorophosphazenes is represented by formula E-3):
[0034] [ka] [In the formula, R 9 is an organosilicon moiety bonded to phosphorus through oxygen, e.g., formula E-4):
[0035] [ka] (In the formula, each R 10 represents a monovalent hydrocarbon group having 1 to 18 carbon atoms or a monovalent halogenated hydrocarbon group having 1 to 18 carbon atoms, and the subscript q has an average value of 1 to 10, alternatively 1 to 5. The catalyst may also include condensation products of such organosilicon-containing phosphazenes. All or a portion of the chlorine atoms in any of the above oxygen-containing phosphazenes can be replaced with a group Q (where Q represents a moiety selected from the group consisting of a hydroxyl group, a monovalent organic group such as an alkoxy or aryloxy, a halogen atom other than chlorine, an organosilicon group, and a phosphorus-containing group).
[0036] Another suitable class of phosphazene catalysts has the formula E-5):
[0037] [ka] where the subscript o has an average value of 1 to 10, and Z - represents an anion). Alternatively, the subscript o may have an average value of 1 to 6, or the subscript o may have an average value of 2. The anion may be a complex anion, for example, a perchlorooligophosphazenium salt of the formula MX (v+1) (wherein M is an element having an electronegativity on the Pauling scale of 1.0 to 2.0 and a valence v, and X is a halogen atom). The element M may be, for example, phosphorus or antimony, or phosphorus. The halogen atom of X may be Cl. Alternatively, the anion Z - is expressed as the formula [MX (v-y+1) R 11 y ]- (In the formula, each R 11 is an independently selected alkyl group having 1 to 12 carbon atoms, and the subscript y has a value from 0 to v), or a complex anion as described in U.S. Pat. No. 5,457,220. Alternatively, in formula E-5), the subscript o may have an average value of 2, and the anion Z - is PCl6 - may be.
[0038] The phosphazene condensation reaction catalyst may be present in an amount of from 1 to 200, alternatively from 2 to 200 parts per million, such as from 5 to 50 parts per million, based on the combined weight of starting materials A) and D).
[0039] Starting Material F) Polydialkylsiloxane Starting material F) is an optional polydialkylsiloxane that can be added in step I) of the process for making a product containing a (meth)acrylate-functional silicone. The polydialkylsiloxane has the unit formula F-1):(R 12 2SiO 2 / 2 ) k (R 12 3SiO 1 / 2 )2(in the formula, each R 12 are independently selected alkyl groups, and the subscript k is 1 to 250, alternatively 1 to 50. 12Suitable alkyl groups for may be methyl, ethyl, and propyl, or alternatively methyl. Examples of starting materials F) include Fi) trimethylsiloxy-terminated polydimethylsiloxane, Fii) triethylsiloxy-terminated polydiethylsiloxane, and Fiii), a combination of Fi) and Fii). Polydialkylsiloxanes are known in the art and are commercially available. For example, methylsilicone fluids, such as trimethylsiloxy-terminated polydimethylsiloxane, are commercially available from Gelest, see, for example, "Gelest Silicone Fluids," https: / / www.gelest.com / themencode-pdf-viewer / ?file=https: / / www.gelest.com:443 / wp-content / uploads / Inert_Silicones.pdf, 2012, pages 8-9, and are available from Dow Silicones Corporation (Midland, Michigan, USA) under the trade name DOWSIL™ 200 fluid. Trimethylsiloxy-terminated polydimethylsiloxane and triethylsiloxy-terminated polydiethylsiloxane are available from Power Chemical Corporation (Jiangsu, China). The amount of starting material F) will depend on various factors, including the molecular weight of the polydialkylsiloxane selected, but if used, the amount may be 1% to 10% based on the weight of starting materials A) and D) used in the process.
[0040] Starting material G) Solvent Starting material G) is a solvent that can be used in the above process. The amount and type of solvent are selected to solubilize one or more of the starting materials used in step 3), such as the purified hydrolysis product of step 2), starting material D) polyorganosiloxane, and / or starting material E) condensation reaction catalyst. One or more of the starting materials can be delivered in a solvent. Suitable solvents include, but are not limited to, organic liquids exemplified by aromatic hydrocarbons, aliphatic hydrocarbons, ketones, esters, and ethers. Hydrocarbons include benzene, toluene, xylene, naphtha, hexane, cyclohexane, methylcyclohexane, heptane, octane, decane, hexadecane, isoparaffins such as Isopar L (C11-C13), Isopar H (C11-C12), and hydrogenated polydecene. Suitable ketones include, but are not limited to, acetone, methyl ethyl ketone, 2-pentanone, 3-pentanone, 2-hexanone, 2-heptanone, 4-heptanone, methyl isobutyl ketone, diisobutyl ketone, acetonylacetone, and cyclohexanone. Esters include ethyl acetate, propyl acetate, isopropyl acetate, butyl acetate, and isobutyl acetate. Ethers include diethyl ether, dipropyl ether, diisopropyl ether, dibutyl ether, 1,2-dimethoxyethane, and 1,4-dioxane.Solvents having both ester and ether moieties include 2-methoxyethyl acetate, 2-ethoxyethyl acetate, propylene glycol monomethyl ether acetate, and 2-butoxyethyl acetate; further ethers and esters include isodecyl neopentanoate, neopentyl glycol heptanoate, glycol distearate, dicaprylyl carbonate, diethylhexyl carbonate, propylene glycol n-propyl ether, propylene glycol n-butyl ether, ethyl-3 ethoxypropionate, propylene glycol methyl ether acetate, tridecyl neopentanoate, propylene glycol methyl ether acetate (PGMEA), octyldodecyl neopentanoate, diisobutyl adipate, diisopropyl adipate, propylene glycol dicaprylate / dicaprate, octyl ether, and octyl palmitate. Alternatively, the solvent may be selected from ketones, tetrahydrofuran, mineral spirits, naphtha, or combinations thereof.
[0041] However, the amount of solvent will vary depending on various factors, such as the type of solvent selected and the amounts and types of other starting materials selected. However, when present, the solvent may be used in an amount of 30% to 80%, or alternatively 40% to 70%, based on the total weight of the purified hydrolysis product of step 2) and starting materials D), E), F), H), and I). Without wishing to be bound by theory, it is believed that a solvent such as toluene can be used to reduce viscosity and / or facilitate the removal of water / methanol by azeotropic distillation in step 4) and / or step 6) of the methods described herein.
[0042] Starting Material H) Free Radical Scavenger Starting material H) is a free radical scavenger (scavenger) that can be used to control or inhibit polymerization of (meth)acrylate functional groups. Scavengers containing phenolic compounds are one class of such materials that can be used in the above method, including, for example, 4-methoxyphenol (MEHQ, the methyl ether of hydroquinone), hydroquinone, 2-methylhydroquinone, 2-t-butylhydroquinone, t-butylcatechol, butylated hydroxytoluene, and butylated hydroxyanisole, as well as combinations of two or more thereof. Other scavengers that can be used include phenothiazines and anaerobic inhibitors, such as NPAL-type inhibitors (tris-(N-nitroso-N-phenylhydroxylamine) aluminum salt) available from Albemarle Corporation (Baton Rouge, La.). Alternatively, the free radical scavenger may be selected from the group consisting of phenolic compounds, phenothiazines, and anaerobic inhibitors.
[0043] Free radical scavengers are known, for example, in U.S. Patent No. 9,475,968, and are commercially available. The amount of scavenger used will depend on various factors, including the type and amount of (meth)acryloxyalkyl groups in the purified hydrolysis product of step 2), but the scavenger may be present in an amount of 5 ppm to 2,000 ppm based on the weight of the purified hydrolysis product, or alternatively, 10 ppm to 1,500 ppm on the same basis.
[0044] Step 3) of the method for preparing a (meth)acrylate-functional silicone involves a condensation reaction between the purified hydrolysis product prepared in step 2) and starting material D) (and optional additional starting materials, if any). The reaction can be carried out at an elevated temperature. The elevated temperature is selected and controlled depending on various factors, including the particular polydiorganosiloxane selected for starting material D), the particular condensation reaction catalyst and its amount selected for starting material E), and whether any optional additional starting materials are used. Thus, the elevated temperature will be readily selected by one of ordinary skill in the art in light of the selected reaction conditions and parameters and the description herein. The elevated temperature can be from room temperature to 150°C, such as from 70°C to 120°C, alternatively from 75°C to 115°C, alternatively from 75°C to 90°C, alternatively from 75°C to 85°C, or alternatively from 90°C to 120°C.
[0045] It is understood that the reaction temperature may vary from the ranges set forth above. Likewise, it is understood that reaction parameters may be modified during the condensation reaction in step 3). For example, temperature, pressure, and other parameters may be independently selected or modified during the reaction. Any of these parameters may independently be ambient parameters (e.g., room temperature and / or atmospheric pressure) and / or non-ambient parameters (e.g., elevated and / or lower temperatures or reduced pressure). Any parameter may also be dynamically modified, in real time, i.e., during the process, or static (e.g., over the duration of the reaction or any portion thereof).
[0046] The time for which the condensation reaction is carried out in step 3) is a function of various factors, including the scale, reaction parameters and conditions, and the selection of the particular starting materials. The time for which the reaction is carried out can be >0 to 48 hours, e.g., 1 minute to 48 hours. On a relatively large scale (e.g., >1, or >5, or >10, or >50, or >100 kg), the reaction can be carried out for a time period of 1 to 48, or 1 to 36, or 1.5 to 24, or 1, 2, 6, 12, 18, 24, 36, or 48 hours, etc., as readily determined by one skilled in the art (e.g., by monitoring the conversion of starting material D) and / or the production of (meth)acrylate-functional silicone via chromatographic and / or spectroscopy, etc.). On a relatively small scale (e.g., gram scale, or <10, or <5, or <1 kg), the reaction can be carried out for a time period of 1 minute to 4 hours, e.g., 1 minute to 2 hours, 5 minutes to 1.5 hours, or 60, 90, or 120 minutes.
[0047] Step 4) of the process involves removing all or a portion of the condensation by-products during and / or after step 3). Step 4) can be performed simultaneously with step 3), after step 3), or both. Step 4) can involve reducing the amount of unreacted starting materials and by-products in the condensation reaction product, and / or removing the (meth)acrylate-functional silicone itself from the condensation reaction product. Any suitable technique may be used, such as those described above for step 2). For example, step 4) may include filtration, stripping, and / or distillation.
[0048] Step 5) of the above process is optional and includes neutralizing the condensation reaction product. Step 5) may be performed before or after step 4). Starting material K) is a neutralizing agent that can be used in the process. Starting material K) can be used to neutralize the condensation reaction product formed in step 3). When a neutralizing agent is used, any neutralizing agent suitable for the selected catalyst can be used, see, for example, the neutralizing agents disclosed in U.S. Pat. No. 8,580,862. Without being bound by theory, it is believed that the selection of the neutralizing agent will depend on the pKa and solubility. Suitable neutralizing agents for phosphazene-based condensation catalysts include, but are not limited to, alkylamines such as trioctylamine, trimethylamine, triethylamine, trihexylamine, and triisononylamine. Neutralizing agents are known in the art and are commercially available, for example, from Millipore Sigma (St. Louis, Missouri, USA). The amount of neutralizing agent will depend on various factors, including the amount of E) condensation reaction catalyst, but may be present at the start of neutralization in an amount sufficient to provide a molar ratio of neutralizing agent to condensation reaction catalyst (K:E ratio) of 1:1 to 100:1, alternatively 1:1 to 30:1, alternatively 1:1 to 20:1, alternatively 1:1 to 15:1.
[0049] Step 6) of the method is optional and can be included after step 5) if it is present after step 4). Step 6) includes recovering the (meth)acrylate-functional silicone. Recovery can be carried out as described above for steps 2) and 4). In addition, step 6) can include filtration to remove solids. For example, if step 6) is present, step 6) can include filtration, stripping, and / or distillation.
[0050] (Meth)acrylate-functional silicones The above method produces a (meth)acrylate functional silicone. A (meth)acrylate functional silicone has the unit formula: (R 1 3SiO 1 / 2 ) p (R 1 2nd Round 3 SiO 1 / 2 )q (R 1 2SiO 2 / 2 ) m (R 1 R 2 SiO 2 / 2 ) n (R 1 R 3 SiO 2 / 2 ) o (R 5 SiO 3 / 2 ) r (SiO 4 / 2 ) s (wherein, R 1 , R 2 , and R 3 are as defined above, and each R 5 is independently selected from the group consisting of R 1 , R 2 , and R 3 , and the subscripts p, q, m, n, o, r, and s have values such that the total number (p + q) ≥ 2, 0 < m < 10,000, 2 < n ≤ 10,000, o ≥ 0, 0 ≤ r ≤ 100, and 0 ≤ s ≤ 100). The total number (p + q + m + n + o + r + s) has a value ≥ 3, or 3 ≤ (p + q + m + n + o + r + s) ≤ 10,000. The (meth)acrylate-functional silicone may optionally further contain a small amount of units of the formula M OH , where M OH has the formula [R 1 2(HO)SiO 1 / 2 (wherein, R 1 is as defined above). Without wishing to be bound by theory, it is believed that a small amount of terminal M OH may be present as an impurity in this (meth)acrylate-functional silicone, but the incorporation of M OH during synthesis is not intended, and it is expected that the hydroxyl groups will not have a significant effect on the use of the (meth)acrylate-functional silicone.)
[0051] Alternatively, the (meth)acrylate-functional silicone is R 1 , R 2 , and R 3Based on the total amount, 70 mol% or more, or 80 mol% or more of R 1 may be contained, and each R 1 may be methyl. Alternatively, R 2 may be present in a molar percentage of 0.1% - 24% based on the total amount of R 1 , R 2 , and R 3 . Alternatively, R 2 may be present in a molar percentage of 0.8% - 12%. Alternatively, R 2 may be present in a molar percentage of 1.3% - 6%. Alternatively, R 2 may be present in a molar percentage of 0.5% - 10% based on the total amount of R 1 , R 2 , and R 3 . Alternatively, R 2 may be present in a molar percentage of 0.5% - 5%. Alternatively, R 2 may be present in a molar percentage of 1.5% - 3.1% on the same basis. Alternatively, the (meth)acrylate-functional silicone may contain R 1 , R 2 , and R 3 in a molar percentage of 0 - 5 mol%, or 0.001 - 3 mol%, or 0.001 - 0.2 mol% based on the total amount of R 3 .
[0052] Alternatively, in the above unit formula, the total number (m + n + o) may be 100 - 10,000, and the ratio (m + o) / n may be 1 / 1 - 500 / 1. When the (meth)acrylate-functional silicone has an aliphatic unsaturated group, the total number (q + o)>0. Alternatively, when 0 < r or 0 < s for the (meth)acrylate-functional silicone, it may have subscripts such that the ratio (m + n + o) / (r + s) is 100 / 1 - 10,000 / 1.
[0053] When the (meth)acrylate-functional silicone has subscripts p = 2 and subscripts o = q = r = s = 0, the (meth)acrylate-functional silicone has the unit formula (R 1 3SiO 1 / 2 )2(R 1 2SiO 2 / 2) m (R 1 R 2 SiO 2 / 2 ) n (wherein the subscripts m and n are as defined above). Alternatively, the total number (m+n) may be 100 to 10,000, and the ratio m / n may be 1 / 1 to 500 / 1. Alternatively, the total number (m+n) may be 200 to 9,900. Alternatively, the total number (m+n) may be 700 to 7,000, or 500 to 900. Alternatively, the total number (m+n) may be 1,000 to 5,000. Alternatively, the ratio m / n may be 4 / 1 to 99 / 1, or 4 / 1 to 30 / 1.
[0054] When the (meth)acrylate functional silicone has the subscript q=2 and the subscripts o=q=r=s=0, the (meth)acrylate functional silicone has the unit formula (R 1 2nd Round 3 SiO 1 / 2 )2(R 1 2SiO 2 / 2 ) m (R 1 R 2 SiO 2 / 2 ) n (wherein the subscripts m and n are as defined above). Alternatively, the total number (m+n) may be 100 to 10,000, and the ratio m / n may be 1 / 1 to 500 / 1. Alternatively, the total number (m+n) may be 200 to 9,900. Alternatively, the total number (m+n) may be 700 to 7,000, or 500 to 900. Alternatively, the total number (m+n) may be 1,000 to 5,000. Alternatively, the ratio m / n may be 4 / 1 to 99 / 1, or 4 / 1 to 30 / 1.
[0055] Examples of (meth)acrylate-functional silicones that can be prepared as described herein include one or more of the following average formulas: Average Formulas I) through XI) below, where the subscript after each unit represents the average number of that unit per molecule. I) ViMe2SiO (MaMeSiO) 10 (Me2SiO)1000 SiMe2Vi, II) ViMe2SiO(MaMeSiO) 50 (Me2SiO) 2000 SiMe2Vi, III) ViMe2SiO(MaMeSiO) 500 (Me2SiO) 6000 SiMe2Vi, IV) ViMe2SiO(MaMeSiO) 1000 (Me2SiO) 6000 SiMe2Vi, V) ViMe2SiO(MaMeSiO) 50 (Me2SiO) 1990 (ViMeSiO) 200 SiMe2Vi, VI) Me3SiO(MaMeSiO) 50 (Me2SiO) 1990 (ViMeSiO) 200 SiMe3, VII) Me3SiO(MaMeSiO) 50 (Me2SiO) 1990 (HexMeSiO) 50 SiMe3, VIII) Me3SiO(MaMeSiO) 50 (Me2SiO)<00XII)(Me3SiO 1 / 2 )3(MaMeSiO 2 / 2 ) 20 (MeSiO 2 / 2 ) 1979 (ViMeSiO) 100 (MeSiO 3 / 2 ); where Hex represents hexenyl, Me represents methyl, Ma represents methacryloxypropyl, and Vi represents vinyl. [Brief explanation of the drawings]
[0056] [Figure 1] FIG. 1 shows an exemplary reaction scheme used in Examples 1-6 to prepare bis-vinyldimethylsiloxy-terminated (methacryloxypropyl)methylsiloxane-dimethylsiloxane copolymers, which are illustrative of the (meth)acrylate-functional silicones prepared and used according to the methods described herein. [Example]
[0057] These examples are intended to illustrate some embodiments of the present invention and should not be construed as limiting the scope of the invention as set forth in the claims. More specifically, Figure 1 shows an exemplary reaction scheme used in Examples 1-6 to prepare bis-vinyldimethylsiloxy-terminated (methacryloxypropyl)methylsiloxane-dimethylsiloxane copolymers, which are illustrative of the (meth)acrylate-functional silicones prepared and used according to the methods described herein. The starting materials used in these examples are listed in Table 1.
[0058] [Table 1]
[0059] DOWSIL™ brand starting materials are commercially available from Dow Silicones Corporation and / or its subsidiaries.
[0060] In this Example 1, the bis-vinyl-terminated poly(dimethyl / methyl, methacryloxypropyl)siloxane copolymer shown as Starting Material A-1 in Table 1 above was synthesized as follows: 3-methacryloxypropylmethyldimethoxysilane (120.00 g, DOWSIL™ Z-6033) and 0.1 N HCl (128.87 g) were added to a four-neck, 1-liter round-bottom flask and mixed using a magnetic stir bar at approximately 23°C. Using a simple distillation glassware setup, a vacuum of approximately 20 mmHg was drawn over 1.5 hours. After 1.5 hours, the vacuum was released, and bis-hydroxy-terminated polydimethylsiloxane (786.50 g, OH-terminated PDMS in Table 1) was added to the reaction solution along with 0.23 g of MEHQ. The magnetic stir bar was removed, and the solution was mixed using a Teflon paddle with a glass stir rod. A vacuum of approximately 5 mmHg was drawn, and the reaction was heated to 80°C for 1.5 hours. A simple distillation glassware setup was disassembled, and a Dean-Stark distillation setup was used for the final reaction step. To the reaction solution, 80 g of solvent 1 (toluene, Sigma-Aldrich) and 2.87 g of bis-Vi-terminated PDMS were added. The solution was then heated to 111-115 °C, and 0.3 mL of phosphazene catalyst (DOWSIL™ 3-2026) was added at 90 °C. The overhead was collected in a Dean-Stark trap, and an additional 0.3 mL of phosphazene catalyst (DOWSIL™ 3-2026) was added. The solution was held at toluene reflux for 1 h. The heat was removed, and the solution was allowed to cool. At approximately 60 °C, trihexylamine (0.3 g, Sigma-Aldrich) was added to the reaction solution and mixed for 2 h. The solution was then heated to 120 °C over 1 h while sparging with nitrogen / 2% oxygen gas and cooled to room temperature. The solids content of the solution was adjusted to 75% by adding additional toluene. The product was then dissolved in toluene. 13 C- and 29 Based on Si-NMR analysis, the resulting bis-vinyldimethylsiloxy-terminated poly(dimethyl / methyl, methacryloxypropyl)siloxane copolymer has the following unit formula (R 4 3SiO 1 / 2 ) 0.00071 (R 42SiO 2 / 2 ) 0.99929 (wherein each R 4 are independently selected from methyl, methacryloxypropyl, and vinyl, and the subscripts represent mole fractions. The methacryl content is determined by the ratio of the total R 4 The vinyl content is 2.406 mol % of the total R 4 and the methyl content is 0.012 mol % of the total R 4 The m / n ratio was 97.582 mol %. The m / n ratio was 20 / 1. GPC analysis of this polyorganosiloxane (A-1 in Table 1 above) showed it to have [methacrylic content = 0.604 mmol / g, Vi content = 0.009 mmol / g, total reactive groups = 0.613 mmol / g]. The resulting bis-vinyldimethylsiloxy-terminated poly(dimethyl / methyl, methacryloxypropyl)siloxane copolymer had the unit formula: (ViMeSiO)(MaMeSiO) 136 (Me2SiO) 2679 It can also be expressed as:
[0061] In this Example 2, the bis-vinyl-terminated poly(dimethyl / methyl, methacryloxypropyl)siloxane copolymer shown as Starting Material A-2 in Table 1 above was synthesized as follows: 3-methacryloxypropylmethyldimethoxysilane (50.78 g, DOWSIL™ Z-6033) and 0.1 N HCl (45.45 g) were added to a four-neck, 1-liter round-bottom flask and mixed using a magnetic stir bar at approximately 23°C. Using a simple distillation glassware setup, a vacuum was drawn to approximately 20 mmHg over 1.5 hours. After 1.5 hours, the vacuum was released and bis-hydroxyl-terminated polydimethylsiloxane (550.00 g, OH-terminated PDMS in Table 1) was added to the reaction solution along with 0.16 g of MEHQ. The magnetic stir bar was removed, and the solution was mixed using a Teflon paddle with a glass stir rod. A vacuum was drawn to approximately 5 mmHg, and the reaction was heated to 80°C for 1.5 hours. A simple distillation glassware setup was disassembled, and a Dean-Stark distillation setup was used for the final reaction step. (H-1) Toluene (300 g, Sigma-Aldrich) and 2 g of bis-Vi-terminated PDMS were added to the reaction solution. The solution was then heated to 111-115 °C, and 0.4 mL of phosphazene catalyst (DOWSIL™ 3-2026) was added at 90 °C. The overhead was collected in a Dean-Stark trap, and an additional 0.4 mL of phosphazene catalyst (DOWSIL™ 3-2026) was added. The solution was held at toluene reflux for 1 h. The heat was removed, and the solution was allowed to cool. At approximately 60 °C, DVTMDZ (1 g, Sigma-Aldrich) was added to the reaction solution and mixed for 2 h. The solution was then heated to 120 °C over 1 h while sparging with nitrogen / 2% oxygen gas and cooled to room temperature while sparging. The solid content of the solution (measured by weight before and after drying at 150°C for 1 hour) was adjusted to 75% by adding additional toluene, and then the product dissolved in toluene was obtained. 13 C- and 29 Based on Si-NMR analysis, the resulting bis-dimethylvinylsiloxy-terminated poly(dimethyl / methyl, methacryloxypropyl)siloxane copolymer had the following average unit formula: (R 4 3SiO1 / 2 ) 0.00091 (R 4 2SiO 2 / 2 ) 0.99909 (wherein each R 4 are independently selected from methyl, methacryloxypropyl, and vinyl, and the subscripts represent mole fractions. The methacrylic content is determined by the ratio of the total R 4 The vinyl content is 1.325 mol % of the total R 4 and the methyl content is 0.015 mol % of the total R 4 The polyorganosiloxane (A-2 in Table 1 above) had a molecular weight of 98.660 mol% of the methyl group. The m / n ratio was 37 / 1. GPC analysis of this polyorganosiloxane (A-2 in Table 1 above) showed it to have Mw = 228,772, Mn = 106,086, and PD = 2.156. [Methacrylic content = 0.343 mmol / g, Vi content = 0.012, total reactive groups = 0.355]. Alternatively, the resulting bis-dimethylvinylsiloxy-terminated poly(dimethyl / methyl, methacryloxypropyl)siloxane copolymer had the average unit formula (ViMeSiO)(MaMeSiO) 58 (Me2SiO) 2130 It could also be shown as
[0062] In this Example 3, a bis-vinyldimethylsiloxy-terminated poly(dimethyl / methyl, methacryloxypropyl)siloxane copolymer, designated as Starting Material A-3 in Table 1 above, was synthesized as follows: 3-methacryloxypropylmethyldimethoxysilane (33.3 g, DOWSIL™ Z-6033) and 0.1 N HCl (45.45 g) were added to a four-neck, 1-liter round-bottom flask and mixed using a magnetic stir bar at room temperature (approximately 23°C). Using a simple distillation glassware setup, a vacuum of approximately 20 mmHg was drawn over 1.5 hours. After 1.5 hours, the vacuum was released, and 600 g of OH-terminated PDMS was added to the reaction solution along with 0.23 g of MEHQ. The magnetic stir bar was removed, and the solution was mixed using a Teflon paddle with a glass stirring rod. A vacuum of approximately 5 mmHg was drawn, and the reaction was heated to 80°C over 1.5 hours. A simple distillation glassware setup was disassembled, and a Dean-Stark distillation setup was used for the final reaction step. (H-1) Toluene (300 g, Sigma-Aldrich) and 2.2 g of bis-Vi terminated PDMS were added to the reaction solution. The solution was then heated to 111-115 °C, and 0.4 mL of phosphazene catalyst (DOWSIL™ 3-2026) was added at 90 °C. The overhead was collected in a Dean-Stark trap, and an additional 0.4 mL of phosphazene catalyst (DOWSIL™ 3-2026) was added. The solution was held at toluene reflux for 1 h. The heat was removed, and the solution was allowed to cool. At approximately 60 °C, DVTMDZ (1 g, Sigma-Aldrich) was added to the reaction solution and mixed for 2 h. The solution was then heated to 120 °C over 1 h while sparging with nitrogen / 2% oxygen gas and cooled to room temperature while sparging. The solid content of the solution was adjusted to 75% by adding additional toluene, and then the product dissolved in toluene was obtained. 13 C- and 29 Based on Si-NMR analysis, the resulting bis-vinyldimethylsiloxy-terminated poly(dimethyl / methyl, methacryloxypropyl)siloxane copolymer had the following average unit formula: (R 4 3SiO 1 / 2 ) 0.00035 (R 4 2SiO2 / 2 ) 0.99965 (wherein each R 4 are independently selected from methyl, methacryloxypropyl, and vinyl, and the subscripts represent mole fractions. The methacryl content is determined by the ratio of the total R 4 The vinyl content is 0.876 mol % of the total R 4 and the methyl content is 0.006 mol % of the total R 4 The polyorganosiloxane (A-3 in Table 1 above) had a molecular weight of 99.1187 mole % of the total. The m / n ratio was 56 / 1. GPC analysis of this polyorganosiloxane (A-3 in Table 1 above) showed it to have Mw = 304,528, Mn = 144,937, and PD = 2.101. [Methacrylic content = 0.230 mmol / g, Vi content = 0.005 mmol / g, total reactive groups = 0.235 mmol / g]. Alternatively, the resulting bis-vinyldimethylsiloxy-terminated poly(dimethyl / methyl, methacryloxypropyl)siloxane copolymer was (ViMeSiO)(MaMeSiO). 100 (Me2SiO) 5610 It was also possible to show that
[0063] In this Example 4, the bis-vinyl-terminated poly(dimethyl / methyl, methacryloxypropyl)siloxane copolymer shown as Starting Material A-4 in Table 1 above was synthesized as follows: 3-methacryloxypropylmethyldimethoxysilane (13.7 g, DOWSIL™ Z-6033) and 0.1 N HCl (24.37 g) were added to a four-neck, 1-liter round-bottom flask and mixed using a magnetic stir bar at approximately 23°C. Using a simple distillation glassware setup, a vacuum was drawn to approximately 20 mmHg over 1.5 hours. After 1.5 hours, the vacuum was released, and bis-hydroxyl-terminated polydimethylsiloxane (1179.49 g, OH-terminated PDMS) was added to the reaction solution along with 0.34 g of MEHQ. The magnetic stir bar was removed, and the solution was mixed using a Teflon paddle with a glass stir rod. A vacuum was drawn to approximately 5 mmHg, and the reaction was heated to 80°C for 1.5 hours. A simple distillation glassware setup was disassembled, and a Dean-Stark distillation setup was used for the final reaction step. Toluene (550 g, Sigma-Aldrich) and 2.2 g of bis-Vi terminated PDMS were added to the reaction solution. The solution was then heated to 111-115 °C, and 0.1 mL of phosphazene catalyst (DOWSIL™ 3-2026) was added at 90 °C. The overhead was collected in a Dean-Stark trap, and an additional 0.1 mL of phosphazene catalyst (DOWSIL™ 3-2026) was added. The solution was held at toluene reflux for 1 h. The heat was removed, and the solution was allowed to cool. At approximately 60 °C, DVTMDZ (0.3 g, Sigma-Aldrich) was added to the reaction solution and mixed for 2 h. The solution was then heated to 120 °C for 1 h while sparging with nitrogen / 2% oxygen gas and cooled to room temperature. The solids content of the solution was adjusted to 75% by adding additional toluene. The product was then dissolved in toluene. 13 C- and 29 Based on Si-NMR analysis, the resulting bis-vinyldimethylsiloxy-terminated poly(dimethyl / methyl, methacryloxypropyl)siloxane copolymer had the following average unit formula: (R 4 3SiO 1 / 2 ) 0.00074 (R 4 2SiO2 / 2 ) 0.99926 (wherein each R 4 are independently selected from methyl, methacryloxypropyl, and vinyl, and the subscripts represent mole fractions. The methacrylic content is determined by the ratio of the total R 4 The vinyl content is 0.192 mol % of the total R 4 and the methyl content is 0.012 mol % of the total R 4 The m / n ratio was 99.796 mol %. The m / n ratio was 260 / 1. GPC analysis of this polyorganosiloxane (A-4 in Table 1 above) showed that it had [methacrylic content = 0.051 mmol / g, Vi content = 0.010 mmol / g, total reactive groups = 0.061 mmol / g]. Alternatively, the resulting bis-vinyldimethylsiloxy-terminated poly(dimethyl / methyl, methacryloxypropyl)siloxane copolymer was (ViMeSiO)ViMeSiO(MaMeSiO). 10 (Me2SiO) 2679 It was also possible to show that
[0064] In this Example 5, a bis-vinyldimethylsiloxy-terminated poly(dimethyl / methyl, methacryloxypropyl)siloxane copolymer, designated as Starting Material A-5 in Table 1 above, was synthesized as follows: 3-methacryloxypropylmethyldimethoxysilane (4.5 g, DOWSIL™ Z-6033) and 0.1 N HCl (4.55 g) were added to a four-neck, 1-liter round-bottom flask and mixed using a magnetic stir bar at room temperature (approximately 23°C). Using a simple distillation glassware setup, a vacuum was drawn to approximately 20 mmHg over 1.5 hours. After 1.5 hours, the vacuum was released, and dimethylsiloxane, silanol-terminated (786.5 g, OH-terminated PDMS in Table 1) was added to the reaction solution along with 0.23 g of (G-1)MEHQ. The magnetic stir bar was removed, and the solution was mixed using a Teflon paddle with a glass stirring rod. A vacuum was pulled to approximately 5 mmHg, and the reaction mixture was heated to 80 °C over 1.5 hours. A simple distillation glassware setup was disassembled, and a Dean-Stark distillation setup was used for the final reaction step. (H-1) toluene (450 g, Sigma-Aldrich) and 5 g of bis-Vi terminated PDMS were added to the reaction solution. The solution was then heated to 111-115 °C, and 0.1 mL of phosphazene catalyst (DOWSIL™ 3-2026) was added at 90 °C. The overhead was collected in a Dean-Stark trap, and an additional 0.1 mL of phosphazene catalyst (DOWSIL™ 3-2026) was added. The solution was held at toluene reflux for 1 hour. Approximately 80 g of overhead was collected. The heat was removed, and the solution was allowed to cool. At approximately 60 °C, DVTMDZ (0.3 g, Sigma-Aldrich) was added to the reaction mixture and mixed for 2 hours. The solid content of the solution was adjusted to 75% by adding additional toluene, and then the product dissolved in toluene was obtained. 13 C- and 29 Based on Si-NMR analysis, the resulting bis-vinyldimethylsiloxy-terminated poly(dimethyl / methyl, methacryloxypropyl)siloxane copolymer had the following average unit formula: (R 4 3SiO 1 / 2 ) 0.00074 (R 4 2SiO 2 / 2 )0.99926 (wherein each R 4 are independently selected from methyl, methacryloxypropyl, and vinyl, and the subscripts represent mole fractions. The methacrylic content is determined by the ratio of the total R 4 The vinyl content is 0.097 mol % of the total R 4 The methyl content is 0.022 mol % of the total R 4 The m / n ratio was 99.881 mol %. The m / n ratio was 512 / 1. GPC analysis of this polyorganosiloxane (A-5 in Table 1 above) showed it to have [methacrylic content = 0.025 mmol / g, Vi content = 0.017 mmol / g, total reactive groups = 0.043 mmol / g]. The resulting bis-vinyldimethylsiloxy-terminated poly(dimethyl / methyl, methacryloxypropyl)siloxane copolymer had the unit formula: (ViMeSiO)(MaMeSiO)(MeSiO). 1536 It can also be expressed as:
[0065] [Table 2]
[0066] In this Reference Example 6, several bis-vinyldimethylsiloxy-terminated poly(dimethyl / methyl methacrylate) siloxane copolymers were prepared according to the following general procedure using the starting materials in Table 3 below. 3-Methacryloxypropylmethyldimethoxysilane (Z-6033) and 0.1 N HCl were added to a four-neck, 1-liter round-bottom flask and mixed using a magnetic stir bar. Using a simple distillation glassware setup, methanol and water were removed by pulling a vacuum at approximately 20 mm Hg for 1-2 hours at room temperature.
[0067] The vacuum was then broken, and bis-hydroxyl-terminated polydimethylsiloxane (4-2737LC) and 4-methoxyphenol (MEHQ) were added to the reaction flask. The magnetic stir bar was removed, and a glass stirring rod and Teflon paddle were added to the glassware setup. The reaction temperature was increased to 75-80 °C, and a vacuum was pulled to <10 mmHg over 1-2 hours.
[0068] The vacuum was then broken, and toluene and bis-dimethylvinylsiloxy-terminated polydimethylsiloxane (Vi-terminated PDMS in Table 1) were added to the reaction solution. The simple distillation glassware setup was modified to a Dean-Stark setup, and the temperature was increased to 135°C. At approximately 90°C, 0.6 mL of a 1% solution of DOWSIL™ 3-2026 catalyst in dichloromethane was added to the reaction solution. Methanol, water, and toluene overhead were collected in a Dean-Stark trap.
[0069] The overhead was collected, the overhead solution was cleared at the top of the Dean-Stark trap, and an additional amount of a 1% solution of DOWSIL™ 3-2026 catalyst in dichloromethane was added to the reaction solution. Dean-Stark distillation continued over 1-2 hours, returning toluene to the reaction solution. The peak temperature was 115°C. The heat was then removed, and once the temperature was below 60°C, trioctylamine was added to neutralize the catalyst. The final solution was then collected. The NVC of each sample was tested by measuring the weight loss of 2 grams of material, heated to 150°C for 2 hours. 29 DP was determined using Si NMR analysis and is reported in Table 3. Unless otherwise indicated, values in Table 3 are in grams.
[0070] [Table 3] [Industrial Applicability]
[0071] The (meth)acrylate functional silicones described herein can be used in a method for preparing a silicone hybrid pressure sensitive adhesive composition.
[0072] Terminology Use The Summary and Abstract are incorporated herein by reference. All amounts, ratios, and percentages are by weight unless the context of the specification dictates otherwise. The articles "a," "an," and "the" each refer to one or more unless the context of the specification dictates otherwise. The disclosure of ranges includes the range itself and any subsumed within that range, as well as the endpoints. For example, disclosure of a range of 1 to 12 includes not only the range 1 to 12, but also individually 1, 2, 4, 6, 10, and 12, as well as any other number subsumed within that range. Furthermore, disclosure of a range, for example, 1 to 12, includes subsets such as 1 to 6, 1 to 4, 1 to 2, 6 to 12, 6 to 10, and 10 to 12, as well as any other subset subsumed within that range. Similarly, disclosure of a Markush group includes the group as a whole, as well as any individual elements and subgroups subsumed therein. For example, disclosure of a Markush group of vinyl, allyl, or hexenyl includes individually that member vinyl; the subgroups vinyl and hexenyl; and any other individual members and subgroups subsumed therein.
[0073] Abbreviations used herein are defined in Table 4 below.
[0074] [Table 4]
[0075] Test Method The viscosity of the polyorganosiloxanes described herein, such as starting materials (A) and (C), can be measured, for example, for polyorganosiloxanes having a viscosity of up to 250,000 mPa·s, by measuring with a Brookfield DV-III cone-and-plate viscometer equipped with a #CP-52 spindle at 25° C. and 0.1 to 50 RPM. Those skilled in the art will recognize that as viscosity increases, the rotation speed decreases.
[0076] Embodiments of the present invention In a first embodiment of the present invention, the method for preparing a (meth)acrylate functional silicone comprises: 1) combining starting materials under conditions to form a crude hydrolysis product, including: A) alkoxysilyl-functional (meth)acrylate monomers, B) water, and C) acid catalyst; 2) removing all or a portion of the hydrolysis by-products, including alcohol, from the crude hydrolysis product, thereby forming a purified hydrolysis product; 3) combining the purified hydrolysis product and starting materials under conditions to form a condensation product, including: D) a polydiorganosiloxane, D1) unsaturated polydiorganosiloxanes having at least one silicon-bonded aliphatic unsaturated group per molecule; D2) a hydroxyl-functional polydiorganosiloxane having at least two silicon-bonded hydroxyl groups per molecule, and D3) a polydiorganosiloxane selected from the group consisting of a combination of D1) and D2); E) condensation reaction catalyst; Optionally, F) polydialkylsiloxane; Optionally, G) a solvent; and H) a free radical scavenger, thereby forming a condensation reaction product comprising a (meth)acrylate functional silicone and a condensation by-product; 4) removing all or part of the condensation by-products during and / or after step 3); optionally, 5) neutralizing the condensation reaction product; and optionally, 6) recovering the (meth)acrylate-functional silicone.
[0077] In a second embodiment, in the method according to the first embodiment, the starting material A) is a compound of formula R 2 R 1 Si(OR 1 )2(in the formula, each R 1 are independently selected monovalent hydrocarbon groups free of aliphatic unsaturation, and each R 2 are independently selected (meth)acryloxyalkyl functional groups).
[0078] In a third embodiment, in the process of the first or second embodiment, the starting material C) comprises HCl.
[0079] In a fourth embodiment, in the method of any one of the first to third embodiments, the starting material D1) is a compound represented by the unit formula D1-1):(R 6 R 7 2SiO 1 / 2 ) b (R 7 2SiO 2 / 2 ) c (R 6 R 7 SiO 2 / 2 ) d (R 7 3SiO 1 / 2 ) e (R'OR 7 2SiO 1 / 2 ) f (R'OR 7 SiO 2 / 2 ) g (In the formula, each R 6 are independently selected aliphatic unsaturated hydrocarbon groups, and each R 7 are independently selected monovalent hydrocarbon groups free of aliphatic unsaturation, and each R' is independently selected from H and R 7and wherein the subscript b is 0, 1, or 2, the subscript c is ≧1, the subscript d is ≧0, the subscript e is 0, 1, or 2, the subscript f is 0, 1, or 2, and the subscript g is ≧0, with the proviso that the sum of (b+d)≧1, the sum of (b+e+f)=2, and the sum of (b+c+d+e+f+g) is at least 3.
[0080] In the fifth embodiment, in the method of the fourth embodiment, the total number (b+c+d+e+f+g) is 3 to 250.
[0081] In a sixth embodiment, in the method of any one of the first to fifth embodiments, the starting material D2) is a compound of the unit formula D-2-1):(R 1 2SiO 2 / 2 ) h (R 1 3SiO 1 / 2 ) i (HOR 1 2SiO 1 / 2 ) j (In the formula, each R 1 are independently selected monovalent hydrocarbon groups free of aliphatic unsaturation, the subscript j is 1 or 2, the subscript i is 0 or 1, the total number (j+i)=2, the subscript h≧1, and the total number (h+i+j) is at least 3).
[0082] In the seventh embodiment, in the method of the sixth embodiment, the total number (h+i+j) is 3 to 250.
[0083] In an eighth embodiment, in the method of any one of the first to seventh embodiments, the starting material E) is a phosphonitrile halide.
[0084] In a ninth embodiment, in the method of any one of the first to eighth embodiments, step 2) comprises filtration, stripping, and / or distillation.
[0085] In a tenth embodiment, in the method of any one of the first to ninth embodiments, step 4) comprises filtering, stripping, and / or distillation.
[0086] In an eleventh embodiment, in the method of any one of the first to tenth embodiments, step 5) is present, and step 5) includes adding a neutralizing agent including an alkylamine such as trihexylamine or trioctylamine.
[0087] In embodiment 12, in the method according to any one of embodiments 1 to 11, step 5) is carried out before step 4).
[0088] In a thirteenth embodiment, in the method of any one of the first to twelfth embodiments, step 6) is present, and step 6) comprises filtration, stripping, and / or distillation.
[0089] In the fourteenth embodiment, in any one of the methods of the first to thirteenth embodiments, R 1 Each monovalent hydrocarbon group is independently selected from the group consisting of alkyl groups and aryl groups.
[0090] In a fifteenth embodiment, in the method of the fourteenth embodiment, the alkyl group is methyl and the aryl group is phenyl.
[0091] In a sixteenth embodiment, in the method of the fourteenth embodiment, each R 1 is an alkyl group.
[0092] In the seventeenth embodiment, in any one of the methods of the first to sixteenth embodiments, R 2 Each (meth)acryloxyalkyl functional group is independently selected from the group consisting of acryloxypropyl and methacryloxypropyl.
[0093] In the eighteenth embodiment, in any one of the methods of the first to seventeenth embodiments, R 3 Each aliphatically unsaturated monovalent hydrocarbon group is an independently selected alkenyl group.
[0094] In the 19th embodiment, in the 18th embodiment, the alkenyl group is selected from the group consisting of vinyl and hexenyl.
[0095] In the 20th embodiment, in any one of the methods of the 1st to 19th embodiments, the (meth)acrylate-functional silicone has the unit formula: (R 1 3SiO 1 / 2 ) p (R 1 2R 3 SiO 1 / 2 ) q (R 1 2SiO 2 / 2 ) m (R 1 R 2 [[ID=**********]] 2 / 2 [[ID=**********]] n [[ID=**********]] 1 [[ID=**********]] 3 [[ID=**********]] 2 / 2 [[ID=**********]] o [[ID=**********]] 5 [[ID=**********]] 3 / 2 [[ID=**********]] r [[ID=**********]] 4 / 2 [[ID=**********]] s (wherein, each R 1 is a monovalent hydrocarbon group not containing aliphatic unsaturation, each R 2 is a (meth)acryloxyalkyl functional group, each R 3 is an aliphatic unsaturated monovalent hydrocarbon group, each R 5 is independently selected from the group consisting of R 1 R 2 and R 3 , the subscripts p, q, m, n, o, r, and s are the total number (p + q) ≧ 2, 0 < m < 10,000, 2 < n ≦ 10,000, the total number (m + n + o) is 100 to 10,000, and the ratio (m + o) / n is 1 / 1 to 500 / 1, o ≧ 0, the total number (q + o) > 0, [[ID=**********]] [[ID=**********]] It seems there are some formatting issues in the original text where some parts are repeated with incorrect line breaks. I've translated it as accurately as possible based on the provided rules. If you have any further clarifications or corrections regarding the text, please let me know.When 0 < r or 0 < s, the ratio (m + n + o) / (r + s) is 100 / 1 to 10,000 / 1).
[0096] In the 21st embodiment, in the method of the 20th embodiment, the (meth)acrylate-functional silicone has the unit formula (R 1 2R 3 SiO 1 / 2 )2(R 1 2SiO 2 / 2 ) m (R 1 R 2 SiO 2 / 2 ) n and the total number (m + n) is 500 to 10,000, and the ratio m / n is 1 / 1 to 500 / 1.
[0097] In the 22nd embodiment, the (meth)acrylate-functional silicone is prepared according to the method of the 20th or 21st embodiment, and the (meth)acrylate-functional silicone is used as a starting material in the pressure-sensitive adhesive composition.
[0098] In the 23rd embodiment, in the method of the 20th embodiment, the (meth)acrylate-functional silicone has the unit formula (R 1 3SiO 1 / 2 )2(R 1 2SiO 2 / 2 ) m (R 1 R 2 SiO 2 / 2 ) n and the total number (m + n) is 500 to 10,000, and the ratio m / n is 1 / 1 to 500 / 1.
Claims
1. 1. A method for preparing a (meth)acrylate functional silicone, comprising: Step 1) Combining starting materials under conditions to form a crude hydrolysis product, including: A) alkoxysilyl-functional (meth)acrylate monomers having the formula R 2 R 1 Si(OR 1 ) 2 , where each R 1 is an independently selected monovalent hydrocarbon group free of aliphatic unsaturation, and each R 2 is an independently selected (meth)acryloxyalkyl-functional group; B) water, and C) acid catalyst; step 2) purifying the crude hydrolysate, thereby forming a purified hydrolysate; Step 3) Combining the purified hydrolysis product and starting materials under conditions to form a condensation product, including: D) a polydiorganosiloxane, D1) an unsaturated polydiorganosiloxane having at least one silicon-bonded aliphatic unsaturated group per molecule; D2) a hydroxyl-functional polydiorganosiloxane having at least two silicon-bonded hydroxyl groups per molecule, and D3) a polydiorganosiloxane selected from the group consisting of a combination of D1) and D2); E) a condensation reaction catalyst; Optionally, F) polydialkylsiloxane; Optionally, G) a solvent; and H) a free radical scavenger, thereby forming a condensation reaction product comprising said (meth)acrylate functional silicone and a condensation by-product; step 4) purifying the condensation reaction product during and / or after step 3); Optionally, step 5) neutralizing the condensation reaction product; and optionally, step 6) recovering the (meth)acrylate functional silicone, wherein the (meth)acrylate functional silicone has the unit formula (R 1 2 R 3 SiO 1/2 ) 2 (R 1 2 SiO 2/2 ) m (R 1 R 2 SiO 2/2 ) n (In the formula, Each R 1 is a monovalent hydrocarbon group free of aliphatic unsaturation, Each R 2 is a (meth)acryloxyalkyl functional group, Each R 3 is an aliphatic unsaturated monovalent hydrocarbon group, the total number (m+n) is 500 to 10,000 and the ratio m / n is 1 / 1 to 500 / 1.
2. 10. The method of claim 1, wherein the starting material C) comprises HCl.
3. The starting material D1) is a compound having the unit formula D1-1): (R 3 R 1 2 SiO 1/2 ) b (R 1 2 SiO 2/2 ) c (R 3 R 1 SiO 2/2 ) d (R 1 3 SiO 1/2 ) e (R'OR 1 2 SiO 1/2 ) f (R'OR 1 SiO 2/2 ) g (In the formula, each R 3 are independently selected aliphatic unsaturated hydrocarbon groups, and each R 1 are independently selected monovalent hydrocarbon groups free of aliphatic unsaturation, and each R′ is independently selected from H and R 1 and wherein the subscript b is 0, 1, or 2, the subscript c is ≧1, the subscript d is ≧0, the subscript e is 0, 1, or 2, the subscript f is 0, 1, or 2, and the subscript g is ≧0, with the proviso that the sum of (b+d)≧1, the sum of (b+e+f)=2, and the sum of (b+c+d+e+f+g) is at least 3.
4. The starting material D2) is a compound having the unit formula D2-1): (R 1 2 SiO 2/2 ) h (R 1 3 SiO 1/2 ) i (H.O.R. 1 2 SiO 1/2 ) j (In the formula, each R 1 are independently selected monovalent hydrocarbon groups free of aliphatic unsaturation, the subscript j is 2, the subscript i is 0 or 1, the sum (j+i)=2, the subscript h≧1, and the sum (h+i+j) is at least 3.
5. 2. The process of claim 1, wherein the starting material E) is a phosphonitrile halide.
6. 10. The method of claim 1, wherein step 2) comprises filtering, stripping, and / or distillation.
7. 10. The method of claim 1, wherein step 4) comprises filtering, stripping, and / or distillation.
8. 10. The method of claim 1, wherein step 5) is present and step 5) comprises adding a neutralizing agent comprising an alkylamine, such as trihexylamine or trioctylamine.
9. 10. The method of claim 1, wherein step 6) is present and step 6) comprises filtering, stripping, and / or distillation.
10. R 1 10. The method of claim 1, wherein each monovalent hydrocarbon group is an alkyl group.
11. R 2 2. The method of claim 1, wherein each (meth)acryloxyalkyl functional group is independently selected from the group consisting of acryloxypropyl and methacryloxypropyl.
12. R 3 4. The method of claim 3, wherein each aliphatic unsaturated monovalent hydrocarbon group is an independently selected alkenyl group.
13. 1. A method for preparing a (meth)acrylate functional silicone, comprising: Step 1) Combining starting materials under conditions to form a crude hydrolysis product, including: A) alkoxysilyl-functional (meth)acrylate monomers having the formula R 2 R 1 Si(OR 1 ) 2 , where each R 1 is an independently selected monovalent hydrocarbon group free of aliphatic unsaturation, and each R 2 is an independently selected (meth)acryloxyalkyl-functional group; B) water, and C) acid catalyst; step 2) purifying the crude hydrolysate, thereby forming a purified hydrolysate; Step 3) Combining the purified hydrolysis product and starting materials under conditions to form a condensation product, including: D) a polydiorganosiloxane, D1) an unsaturated polydiorganosiloxane having at least one silicon-bonded aliphatic unsaturated group per molecule; D2) a hydroxyl-functional polydiorganosiloxane having at least two silicon-bonded hydroxyl groups per molecule, and D3) a combination of D1) and D2); and the starting material D1) is selected from the group consisting of units of the formula D1-1): (R 3 R 1 2 SiO 1/2 ) b (R 1 2 SiO 2/2 ) c (R 3 R 1 SiO 2/2 ) d (R 1 3 SiO 1/2 ) e (R'OR 1 2 SiO 1/2 ) f (R'OR 1 SiO 2/2 ) g (In the formula, each R 3 are independently selected aliphatic unsaturated hydrocarbon groups, and each R 1 are independently selected monovalent hydrocarbon groups free of aliphatic unsaturation, and each R′ is independently selected from H and R 1 wherein subscript b is 0, 1, or 2, subscript c≧1, subscript d≧0, subscript e is 0, 1, or 2, subscript f is 0, 1, or 2, and subscript g≧0, with the proviso that the sum of (b+d)≧1, the sum of (b+e+f)=2, and the sum of (b+c+d+e+f+g) is at least 3; E) a condensation reaction catalyst; Optionally, F) polydialkylsiloxane; Optionally, G) a solvent; and H) a free radical scavenger, thereby forming a condensation reaction product comprising said (meth)acrylate functional silicone and a condensation by-product; step 4) purifying the condensation reaction product during and / or after step 3); Optionally, step 5) neutralizing the condensation reaction product; and optionally, step 6) recovering said (meth)acrylate-functional silicone.
14. R 3 14. The method of claim 13, wherein each aliphatic unsaturated monovalent hydrocarbon group is an independently selected alkenyl group.
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