Process for hydrosilylating olefinic nitriles

By removing cyanide impurities from olefinic nitriles using adsorbents and reducing platinum catalyst loading, the hydrosilylation process achieves improved yield and cost-effectiveness.

JP7744968B2Active Publication Date: 2025-09-26DOW SILICONES CORP +1
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Patent Information

Application Number
JP2023511902
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-08-28
Filing Date
2021-08-02
Publication Date
2025-09-26
Estimated Expiration
2041-08-02

AI Technical Summary

Technical Problem

The high cost and scarcity of platinum catalysts in the hydrosilylation of olefinic nitriles, coupled with the inhibitory effect of cyanide impurities on the reaction, necessitate an improved process to enhance yield and reduce catalyst usage.

Method used

A method involving the removal of cyanide impurities from olefinic nitriles using adsorbents like activated carbon, metal sorbents, or metal oxides, followed by hydrosilylation with reduced platinum catalyst loading, typically between 5 ppm to 200 ppm, to improve reaction efficiency.

Benefits of technology

The process enhances the hydrosilylation yield and reduces platinum usage, making it more economical and predictable, while minimizing by-product silicon hydride content.

✦ Generated by Eureka AI based on patent content.

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Abstract

A method for preparing cyanoalkyl-functional silanes is disclosed, which involves removing cyanide impurities from an olefinic nitrile followed by hydrosilylation of the olefinic nitrile with a hydridosilane.
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Description

[Technical Field]

[0001] (CROSS-REFERENCE TO RELATED APPLICATIONS) This application claims the benefit under 35 U.S.C. §119(e) of U.S. Provisional Patent Application No. 63 / 071,388, filed August 28, 2020. U.S. Provisional Patent Application No. 63 / 071,388 is incorporated herein by reference.

[0002] FIELD OF THE INVENTION The present invention relates to an improved process for hydrosilylating olefinic nitriles and hydridosilanes. More specifically, the present invention relates to an improved process for preparing 3-cyanobutyl-methyldimethoxysilane by platinum-catalyzed hydrosilylation of 2-methyl-3-butenenitrile and methyldimethoxysilane. [Background technology]

[0003] 3-Cyanobutyl-methyldimethoxysilane has been prepared from 2-methyl-3-butenenitrile (a commercially available olefinic nitrile) and methyldimethoxysilane by platinum-catalyzed hydrosilylation. A typical catalyst loading requires an amount sufficient to provide the reaction mixture with over 200 ppm of platinum (based on the combined weight of 2-methyl-3-butenenitrile and methyldimethoxysilane) to achieve sufficient reactant conversion. Platinum catalysts are expensive and becoming increasingly scarce.

[0004] [ka] Summary of the Invention

[0005] The method is: 1) providing A') an olefinic nitrile containing a cyanide impurity; 2) A') removing all or a portion of the cyanide impurity from said olefinic nitrile, thereby producing A) a purified olefinic nitrile; and 3) At temperatures between 20℃ and 150℃, A) the purified olefinic nitrile, B) Formula R 1 x HSiX (3-x) where the subscript x is 0, 1, or 2, and each R 1 is an independently selected monovalent hydrocarbon radical of 1 to 18 carbon atoms, and each X is independently selected from halogen atoms and groups of the formula OR 1 hydridosilanes having alkoxy groups selected from the group consisting of C) a platinum hydrosilylation catalyst in an amount sufficient to provide 5 ppm to <200 ppm Pt based on the combined weight of the starting materials A), B), and C). combining starting materials comprising: Includes: DETAILED DESCRIPTION OF THE INVENTION

[0006] Olefinic nitriles are known in the art and are commercially available. Suitable olefinic nitriles can be provided by commercial sources, such as Sigma-Aldrich (St. Louis, Missouri, USA); INVISTA North America S.ar.l.; TCI America, Inc.; or Tokyo Chemical Industry Co., Ltd. (Tokyo). The olefinic nitrile can have the formula RC≡N, where R represents an aliphatic unsaturated monovalent hydrocarbon group, such as an alkenyl group exemplified by vinyl, allyl, methylpropenyl, butenyl, methylbutenyl, and pentenyl. Olefinic nitriles are exemplified by acrylonitrile (CH═CHC≡N), 2-butenenitrile (CH—CH═CH—C≡N), 3-butenenitrile (CH═CH—CH—C≡N), 2-methyl-3-butenenitrile (shown above, CAS number 16529-56-9), and 2-pentenenitrile (CH—CH—CH═CH—C≡N). Alternatively, the olefinic nitrile may be selected from the group consisting of 3-butenenitrile and 2-methyl-3-butenenitrile. Alternatively, the olefinic nitrile may be 2-methyl-3-butenenitrile.

[0007] Olefinic nitriles, as provided above, typically contain cyanide impurities, which refer to compounds of the formula X'-C≡N, where X' is hydrogen, sodium, or potassium. Alternatively, the cyanide impurity may be hydrogen cyanide of the formula HC≡N. The cyanide impurity may be present in an amount of 25 ppm or greater, based on the weight of the provided olefinic nitrile. Alternatively, the cyanide impurity may be present in an amount of 30 ppm or greater, alternatively 35 ppm or greater, alternatively 40 ppm or greater, or alternatively 45 ppm or greater, on the same basis. At the same time, the cyanide impurity may be present in an amount of up to 200 ppm, alternatively up to 175 ppm, alternatively 150 ppm, or alternatively 125 ppm, on the same basis. Alternatively, the cyanide impurity may be present in an amount of >25 ppm to 200 ppm, alternatively >25 ppm to 125 ppm, alternatively 45 to 125 ppm, based on the weight of the olefinic nitrile provided.

[0008] The present inventors have surprisingly found that cyanide impurities can inhibit the hydrosilylation reaction of olefinic nitriles with hydridosilanes. Without wishing to be bound by theory, it is believed that the HC≡N content may be related to the loss of catalytic activity as platinum catalyst loading decreases. Without wishing to be bound by theory, it is believed that removing all or a portion of the cyanide impurities from the olefinic nitrile prior to hydrosilylation of the olefinic nitrile and hydridosilane may improve yields, reduce the use of expensive platinum catalyst, or both. Furthermore, process safety may be improved if the hydrosilylation reaction proceeds more predictably, is less susceptible to reactant holdup, and / or minimizes the SiH content of the by-product.

[0009] In step 2) of the above process, purified olefinic nitrile can be prepared by removing all or a portion of the cyanide impurities. Methods for removing cyanide impurities include contacting the olefinic nitrile with an adsorbent, such as activated carbon or molecular sieves. The activated carbon can be wood-, coconut shell-, or lignite-based, can be treated by various methods, and can be sized to provide an appropriate surface area for contact. For example, one suitable type of activated carbon for use herein includes acid-washed lignite-based activated carbon with a 12x40 mesh size, which provides an average particle size of 1 mm. The contact of the olefinic nitrile with the adsorbent in step 2) can be carried out under an inert atmosphere. The pressure for contacting can be, for example, 0 to 50 psig. (345kPa) The temperature may be varied, for example, from 20 to 60°C. The contact time may be varied, for example, from 1 to 24 hours, or from 1 to 8 hours. The amount of adsorbent may be 1% by weight to 10% by weight, or from 3% by weight to 5% by weight, based on the total weight of the adsorbent and the olefinic nitrile. The particle size of the adsorbent may be, for example, from 1 mm to 2 mm.

[0010] Alternatively, step 2) may comprise contacting the olefinic nitrile with a metal sorbent comprising a metal selected from the group consisting of iron (Fe), copper (Cu), silver (Ag), and nickel (Ni) as a powder, particle, or metal on a substrate. The metal sorbent may be elemental Fe, Cu, Ag, or Ni. Alternatively, the metal sorbent may be selected from the group consisting of elemental Fe, Cu, and Ag. Alternatively, the metal sorbent may be the aforementioned metal bound to a substrate such as carbon or silica. The metal sorbent may be used under conditions that avoid or minimize oxidation of the metal, such as inert conditions. The contacting may be performed at a pressure of 0 to 50 psig. (345kPa) The contacting may be carried out under a wide range of pressures, such as 0 to 50 psig. The contacting may be carried out at various temperatures, for example, 20 to 60°C. (345kPa) The contacting may be carried out under a wide range of pressures, such as under high or low pressure. The contacting may be carried out at various temperatures, such as from 20 to 60°C. The contacting may be carried out for a period of time, such as from 1 to 24 hours, or from 1 to 8 hours. The amount of metal sorbent may be from 1 to 10% by weight, or from 3 to 5% by weight, based on the total weight of the metal sorbent and the olefinic nitrile. The particle size of the metal sorbent may be, for example, from 1 mm to 2 mm. Without being bound by theory, it is believed that the metal can form a complex with the metal and cyanide impurities, which can then be removed by filtration and / or contact with an adsorbent, such as activated carbon, as described above. Without being bound by theory, it is believed that contacting the olefinic nitrile with the metal sorbent can form a cyanide-metal complex, which can then be removed by contact with an adsorbent (e.g., when the metal is soluble) and / or by filtration (e.g., when using a metal bound to a substrate or after contact with an adsorbent), as described above.

[0011] Alternatively, step 2) may comprise contacting the olefinic nitrile with a metal oxide absorbent selected from the group consisting of oxides of Fe, Cu, Ag, or Ni. The contacting may be carried out at a pressure of 0 to 50 psig. (345kPa) The contacting may be carried out under a wide range of pressures, such as 0 to 50 psig. The contacting may be carried out at various temperatures, preferably 20 to 60°C. The contacting in step 2) may be carried out under an inert atmosphere. (345kPa) The contacting may be carried out under a wide range of pressures, such as under high pressure. The contacting may be carried out at various temperatures, such as from 20 to 60°C. The contacting may be carried out for a period of time, such as from 1 to 24 hours, or from 1 to 8 hours. The amount of adsorbent may be from 1 to 10% by weight, or from 3 to 5% by weight, based on the total weight of the metal oxide and the olefinic nitrile. The particle size of the metal oxide may be, for example, from 1 mm to 2 mm. Without being bound by theory, it is believed that the metal in the metal oxide may form a complex with the metal and cyanide impurities, which may then be removed by filtration.

[0012] Alternatively, the olefinic nitrile may be stripped or distilled and / or sparged with another inert gas, such as nitrogen or argon. The cyanide impurities can be removed in an initial "heads" cut, leaving the purified olefinic nitrile in the pot. This may be done at near atmospheric pressure to limit the temperature necessary to achieve heads removal. If sparged with an inert gas, the gas may be nitrogen.

[0013] Alternatively, two or more of the above methods may be used, for example, the olefinic nitrile may be contacted with a metal absorbent and an adsorbent simultaneously or sequentially (e.g., the olefinic nitrile may be contacted with a metal absorbent, filtered, and then contacted with an adsorbent such as activated carbon). In step 2), the amount of cyanide impurities in A) the olefinic nitrile is reduced compared to the amount of cyanide impurities present in A') the olefinic nitrile provided in step 1). For example, the purified olefinic nitrile may contain 0 ppm of cyanide impurities. Alternatively, the purified organic nitrile may contain at least 10 ppm less cyanide impurities after step 2) compared to A') the olefinic nitrile provided in step 1).

[0014] The starting materials, including A) purified olefinic nitrile prepared as described above, B) hydridosilane, and C) platinum hydrosilylation catalyst, are combined in step 3) of the above method. They may be combined by any convenient means, such as mixing, optionally with heating. For example, step 3) may be carried out under an inert atmosphere at a temperature of 20°C to 150°C, preferably 60 to 100°C. Step 3) may be carried out under an inert atmosphere. The pressure is not critical, and may be, for example, 0 to 50 psig. (345kPa) Alternatively, ambient pressure may be used for convenience. Step 3) may be carried out batchwise, semi-batchwise, or continuously, with heating or cooling to control the progress of the reaction.

[0015] Starting material B), a hydridosilane, is represented by the formula R 1 x HSiX (3-x) where the subscript x is 0, 1, or 2, and each R 1 is an independently selected monovalent hydrocarbon radical of 1 to 18 carbon atoms, and each X is independently selected from halogen atoms and groups of the formula OR 1 Alternatively, the hydridosilane may be an alkoxysilane. Examples of alkoxysilanes for starting material B) include methyldimethoxysilane, trimethoxysilane, ethyldimethoxysilane, triethoxysilane, and ethyldiethoxysilane. Suitable hydridosilanes are known in the art and commercially available, for example, from Dow Silicones Corporation (Midland, MI, USA). Starting materials A) and B) may be used in amounts sufficient to provide a 1:1 molar equivalent of A) to B). Alternatively, a molar excess of A) or B) may be used. For example, the molar ratio of starting materials A) to B) (A / B ratio) may be 10 / 1 to 1 / 10, alternatively 2 / 1 to 1 / 2, alternatively 1 / 1.5 to 1.5 / 1, alternatively 1 / 1 to 1.1:1, or alternatively 1.1 / 1 to 1 / 1.

[0016] Starting material C) is a platinum hydrosilylation catalyst. Platinum hydrosilylation catalysts are known in the art and commercially available. The platinum hydrosilylation catalyst may comprise platinum metal, optionally deposited on a support such as silica, alumina, or activated carbon. Alternatively, the platinum hydrosilylation catalyst may be a platinum compound, such as chloroplatinic acid (Speier's catalyst), chloroplatinic acid hexahydrate, or platinum dichloride. Alternatively, the platinum hydrosilylation catalyst may be a complex of such a compound with, for example, a low molecular weight organopolysiloxane. Complexes of platinum with low molecular weight organopolysiloxanes include platinum complexes of 1,3-diethenyl-1,1,3,3-tetramethyldisiloxane (Karstedt's catalyst). Alternatively, the platinum hydrosilylation catalyst may be a platinum compound or complex as described above microencapsulated in a matrix or core-shell structure, e.g., the compound or complex may be microencapsulated in a resin matrix. Alternatively, the platinum hydrosilylation catalyst may comprise chloroplatinic acid, Karstedt's catalyst, or platinum on a support selected from carbon, silica, or alumina. Exemplary platinum hydrosilylation catalysts are described, for example, in U.S. Pat. No. 2,823,218 to Speier; U.S. Pat. No. 3,159,601 to Ashby; U.S. Pat. No. 3,220,972 to Lamoreaux; U.S. Pat. No. 3,419,593 to Willing; U.S. Pat. No. 3,516,946 to Modic; U.S. Pat. No. 3,814,730 to Karstedt; U.S. Pat. No. 3,989,668 to Lee et al.; U.S. Pat. No. 4,766,176 to Lee et al.; U.S. Pat. No. 4,784,879 to Lee et al.; U.S. Pat. No. 5,017,654 to Togashi; U.S. Pat. No. 5,036,117 to Chung et al.; and U.S. Pat. No. 5,175,325 to Brown et al.; and European Patent Application Publication No. 0 347 895(A) to Togashi. Platinum hydrosilylation catalysts are commercially available, for example, SYS-OFF™ 4000 catalyst and SYL-OFF™ 2700, available from Dow Silicones Corporation (Midland, Michigan, USA).The platinum hydrosilylation catalyst may be used in an amount sufficient to provide from 5 ppm to 200 ppm, alternatively from 5 ppm to <200 ppm, alternatively from 5 ppm to 100 ppm, alternatively from 35 ppm to 70 ppm of platinum, based on the combined weight of the starting materials A), B), and C).

[0017] The above method may optionally further comprise adding a promoter to the starting material D) during and / or after step 3). Hydrosilylation reaction promoters are known in the art and may also be applied to improve the reaction of olefinic nitriles.

[0018] Various carboxylic acids can be used as promoters in the methods described herein. For example, neodecanoic acid may be used as a promoter. When present, the carboxylic acid may be added in an amount sufficient to provide a carboxylic acid:(hydridosilane+olefinic nitrile) ratio of >0:1 to 1:1, or alternatively 0.005:1 to 0.02:1, for the following reason: component ratios less than 0.005:1 may result in insufficient effects on product selectivity and product yield, while ratios greater than 0.02:1, while still producing the beneficial effects of the present invention, may result in excessive material loss.

[0019] The above method may optionally further include delivering one or more of the above starting materials in a solvent (E). For example, starting material C) the hydrosilylation reaction catalyst may be delivered in a solvent. Suitable solvents include, but are not limited to, organic liquids exemplified by aromatic hydrocarbons, aliphatic hydrocarbons, alkyl halides, and aromatic halides. 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. Alternatively, the solvent may be selected from polyalkylsiloxanes and aromatic hydrocarbons such as toluene, xylene, or a combination thereof. Polyalkylsiloxanes having suitable vapor pressures may be used as solvents, including hexamethyldisiloxane, octamethyltrisiloxane, hexamethylcyclotrisiloxane, octamethylcyclotetrasiloxane, decamethylcyclopentasiloxane, tris(trimethylsiloxy)methylsilane, tetrakis(trimethylsiloxy)silane, dodecamethylcyclohexasiloxane, octamethyltrisiloxane, decamethyltetrasiloxane, dodecamethylpentasiloxane, tetradecamethylhexasiloxane, hexadecamethylheptasiloxane, heptamethyl-3-{(trimethylsilyl)oxy}trisiloxane, hexamethyl-3,3,bis{(trimethylsilyl)oxy}trisiloxanepentamethyl{(trimethylsilyl)oxy}cyclotrisiloxane, and combinations thereof. Low molecular weight polyalkylsiloxanes, such as 0.5 to 1.5 cSt polydimethylsiloxanes, are known in the art and are commercially available as DOWSIL™ 200 Fluids and DOWSIL™ OS FLUIDS, available from Dow Silicones Corporation.

[0020] The amount of solvent will vary depending on a variety of factors, including the type and amount of each of the starting materials A), B), and C), and D), if present, and their relative compatibility with one another, and the type of equipment used to combine them, however, the amount of solvent may be from 0% to 95% by weight, based on the weight of the starting material C).

[0021] In the above method, the formula R 1 x R 2 Six (3-x) where the subscripts x and R 1 is as defined above, and R 2 is a group of formula N≡CD-, where D is a divalent hydrocarbon group (e.g., N≡C-CH(CH3)-CH2-CH2-). The compound may also be a cyanoalkyl-functional alkoxysilane (i.e., X is OR 1 Cyanoalkyl-functional alkoxysilanes, such as (3-cyanobutyl)methyldimethoxysilane, are useful for treating electrical cables, as described, for example, in U.S. Pat. No. 8,656,586.

[0022] The product may further comprise unreacted starting materials, catalyst, promoter, and solvent, if used. Thus, the method may optionally further comprise recovering the compound from the product. Recovery may be by any convenient means, such as stripping and / or distillation. [Example]

[0023] 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. The starting materials used in these examples are listed in Table 1.

[0024] [Table 1]

[0025] In this Comparative Example 1, 2M3BN and methyldimethoxysilane were hydrosilylated under the following conditions. Reaction mixtures were prepared in glass tube reactors, each measuring 19.7 cm (7.75 inches) in length and 1.9 cm (3 / 4 inch) in diameter, with 1.17 mL of methyldimethoxysilane, 1.19 mL of 2M3BN (25% molar excess relative to methyldimethoxysilane), and 35 μL of neodecanoic acid. Each tube reactor was cooled on dry ice, and then a solution of Karstedt's catalyst was dissolved in toluene such that the resulting catalyst solution contained 1 wt. % platinum, targeting various Pt concentrations in the reaction mixture in the different tube reactors, as summarized in Table 2 below. The cyanide impurity concentration in 2M3BN was measured to be 45 ppm, which corresponds to 10 ppm. 6 This translates to a molar concentration of 140.4 mol of cyanide impurity per mol of 2MBN. The hydrosilylation reaction was completed using different amounts of Pt catalyst (a 1 wt. % Pt solution was prepared using toluene solvent to dilute the Karstedt catalyst, and then various amounts of the 1 wt. % Pt solution were added) at 100°C for a reaction time of 1 hour. The eluate was analyzed by GC, and the conversion of the limiting reagent is shown in Table 2. This comparative example showed that the conversion was significantly hindered as the Pt concentration decreased.

[0026] In this Example 2, the hydrosilylation of Comparative Example 1 was repeated, except that the 2M3BN was purified prior to hydrosilylation. The same 2M3BN used in Comparative Example 1 was purified by passing it through a Cu bed followed by lignite-based activated carbon (AC) to reduce the cyanide impurity content. The mass ratio of Cu and AC to the treated 2M3BN was 3%. The cyanide impurity concentration of the treated 2M3BN was measured to be 7.3 ppm, which is 10 6 This translates to a molar concentration of 22.8 mol of cyanide impurity per mol of 2M3BN, a reduction of 83.8%. Table 2 shows that high conversion of the limiting reagent was maintained as the Pt concentration was reduced.

[0027] In this Example 3, the hydrosilylation of Example 2 was repeated, except that the Cu and AC beds were reused. The 2M3BN was the same as that used in Comparative Example 1. The purified 2M3BN used in this Example 3 was obtained as the fourth aliquot of material passed through the beds described in Example 2, with a Cu / AC to 2M3BN weight ratio of 3% each. Table 2 shows that conversion was maintained as the Pt concentration was reduced. This Example 3 demonstrates that the beds can be reused.

[0028] In this Comparative Example 4, the reaction of Comparative Example 1 was repeated except that 0.97 mL of 3BN was used instead of 1.19 mL of 2M3BN. The cyanide impurity concentration in the 3BN was determined to be 25.6 ppm, which translates to a molar concentration of 68 moles of cyanide per 10 moles of 3BN.

[0029] In this Example 5, the reaction of Comparative Example 4 was repeated, except that the 3BN was purified to reduce the content of cyanide impurities before use. Purification was achieved by passing the 3BN through a bed of Cu and AC. The mass ratio of Cu and AC to the treated 3BN was 3%. The cyanide impurity concentration after treatment was determined to be 5.2 ppm, which is 10 6 This translates to a molar concentration of 13.8 moles of cyanide per mole of 3BN, a reduction of 79.6%. This Example 5 demonstrates that conversion is maintained even when the Pt concentration is reduced.

[0030] [Table 2]

[0031] In this Reference Example 6, samples of 2M3BN were obtained and analyzed before and after purification to reduce the cyanide impurity concentration. Metal treatment, if used, was performed simultaneously with or before activated carbon treatment. If metal treatment was performed first, this is marked "stepwise" in Table 3 below. Metal treatment was performed by adding Cu or Ag powder (in the amounts shown in Table 3) to fresh, untreated 2M3BN. The samples were vigorously shaken for one day and then filtered through a 0.45 μm syringe filter. If activated carbon treatment was performed, acidic, basic, or neutral wood-based activated carbon, either crushed or uncrushed, was added to the filtered 2M3BN sample, and the sample was shaken for one day. The sample was then filtered through another 0.45 μm syringe filter. The CN- ion content was measured using an ion-selective electrode before and after treatment to determine the concentration reduction. The samples are summarized in Table 3 below.

[0032] [Table 3]

[0033] In this Reference Example 7, purified 2M3BN prepared according to the last row of Table 3 above and comparative unpurified 2M3BN were used in the following hydrosilylation reactions. A nitrogen tube headspace was used for these experiments. 2.5 mL of methyldimethoxysilane, 2.5 mL of purified 2M3BN, and 44 μL of neodecanoic acid were each added to a glass tube reactor measuring 19.7 cm (7.75 inches) in length and 1.9 cm (3 / 4 inch) in diameter. Each tube reactor was cooled with dry ice, and then 20 μL of catalyst solution was added, targeting 50 ppm Pt in the reaction mixture, after which the tube was placed on an 80°C heater block. The catalyst solution was Karstedt's catalyst diluted with xylene so that the resulting catalyst solution contained 1 wt. % Pt. The tubes were left on the heater block for 1 hour, and then the reaction progress was monitored using GC. The results, shown in Table 4 below, demonstrate that under the conditions tested, stepwise treatment produced beneficial results.

[0034] [Table 4]

[0035] In this Example 8, 2M3BN was purified using various adsorbents before use in the hydrosilylation reaction. The purification was performed as follows: the adsorbent was added to 5 mL of 2M3BN so that the liquid level was just above the level of the adsorbent. The resulting mixture was allowed to soak for 5 days with periodic shaking. The liquid was then syringe filtered from the adsorbent using a 0.2 μm filter. Table 5 summarizes the 2M3BN samples prepared.

[0036] [Table 5]

[0037] The 2M3BN samples from Table 5 were then used in hydrosilylation reactions as follows: A tube headspace of nitrogen was used for these experiments. To glass tubes of the same dimensions as Comparative Example 1, 1.75 mL of methyldimethoxysilane, 1.35 mL of 2M3BN, and 28 μL of neodecanoic acid were added. Each tube was cooled with dry ice, and then 75 μL of catalyst solution was added, targeting 250 ppm Pt in the reaction mixture, after which the tubes were placed on an 80°C heater block. The catalyst solution was Karstedt's catalyst diluted with xylene so that the solution contained 1% Pt. After 5 hours, GC analysis was performed to measure the progress of the reaction. The results are shown in Table 6 below.

[0038] [Table 6]

[0039] This Reference Example 8 demonstrated that purifying 2M3BN with silver improved the yield of the hydrosilylation synthesis. Treatment of 2M3BN with activated carbon and molecular sieves moderately improved the yield of the hydrosilylation. Without being bound by theory, it is believed that the negative results in 8c were due to inhibition of the reaction by metal oxides and / or complexes of metal oxides with cyanide impurities. Therefore, it is further believed that if metal oxides are used to remove cyanide impurities, any metal oxides and / or complexes thereof should be removed, e.g., via filtration, prior to step 3) of the method described herein.

[0040] In this Example 9, cyanide impurities were removed from 2M3BN via batch distillation followed by hydrosilylation. The batch distillation was performed using a 1 L, three-neck flask and a 10-tray glass column. A water condenser was used to condense the material, which was collected in a 50 mL receiver. A heating mantle was used to add heat to the flask, which was then mixed with a stir bar. 450 grams of 2M3BN was charged to the flask. The flask was heated, and 30.1 grams of material was distilled overhead at a 1:1 reflux ratio. The purified 2M3BN remaining in the flask was found to have a cyanide impurity reduced from 53 μg / mL to 8 μg / mL.

[0041] Both raw 2M3BN and purified 2M3BN were used in the hydrosilylation reaction for comparison. The hydrosilylation reaction was carried out in a semi-batch mode. 270 g of 2M3BN, 13.6 g of neodecanoic acid, and 0.42 g of Karstedt catalyst (24% Pt) were charged to a three-neck flask. 333.7 g of methyldimethoxysilane was charged to a syringe pump. 30 g of 2M3BN was mixed with 13.6 g of neodecanoic acid and added to a second syringe pump. The contents of the syringe pump were metered over a 6-hour period. The liquid temperature of the reactor contents was maintained at 80-85°C. GC was used to measure the extent of the reaction.

[0042] For Comparative Sample 9-1, the reaction was carried out using control 2M3BN containing 53 μg / mL of cyanide impurity, resulting in a 97.98% conversion of methyldimethoxysilane. The reaction was carried out using purified 2M3BN containing 8 μg / mL of cyanide impurity, resulting in a 99.99% conversion of methyldimethoxysilane.

[0043] Purification of 2M3BN by distillation was effective in reducing the cyanide impurity concentration. The purified 2M3BN had improved hydrosilylation reaction performance, with residual SiH reduced by 99.5% over the control. When purified 2M3BN was used, the reaction crude had only 0.4 ppm SiH, while when control 2M3BN was used, the sample had 96 ppm residual SiH in the reaction crude. Achieving low levels of SiH is important for safe waste disposal.

[0044] In this Example 10, distillation of 2M3BN was carried out to reduce the cyanide impurity content and improve hydrosilylation performance as follows: Batch distillation was performed using a 250 mL three-neck flask and a 10-tray glass column. A water condenser was used to condense the material, which was collected in a 50 mL receiver. A heating mantle was used to heat inject the three-neck flask, which was mixed with a stir bar. 148.8 g of TCI-sourced 2M3BN was charged to the flask. The flask was heated to 122°C, and the column was held under total reflux for 1 hour. Various overhead fractions were then collected.

[0045] Hydrosilylation reactions were carried out using various distillation fractions. A tube headspace of nitrogen was used for these experiments. 1.0 mL of methyldimethoxysilane and 0.8 mL of 2M3BN were added to a glass tube of the dimensions of Comparative Example 1. The tube was cooled on dry ice, and then a catalyst solution was added, targeting 100 ppm Pt in the reaction mixture. The tube was placed on a 100°C heater block for 2 hours, and then the progress of the reaction was monitored using GC. The results are shown in Table 7 below.

[0046] [Table 7]

[0047] Without being bound by theory, it is believed that Example 9 demonstrated that distillation of 2M3BN can improve hydrosilylation reactivity. The early fractions of the distillation, which contained higher amounts of (lower-boiling) cyanide impurities, performed very poorly in the hydrosilylation reaction, even worse than the control. On the other hand, the later 2M3BN fractions of the distillation (e.g., fractions 4-8), which contained fewer cyanide impurities, performed much better in the hydrosilylation reaction than the control (using undistilled 2M3BN).

[0048] Industrial Applicability The present inventors have surprisingly discovered that cyanide impurities can act as inhibitors for the hydrosilylation of olefinic nitriles and hydridosilanes. Specifically, it has been found that the cyanide impurity content is directly related to the loss of activity of the platinum catalyst. It has been found that reducing the amount of cyanide impurity in olefinic nitriles by as little as 10 ppm increases the conversion of the limiting reagent at the same or lower platinum metal content.

[0049] 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 the range, as well as the endpoints. For example, the disclosure of a range of >0.3 to 0.8 includes not only the range >0.3 to 0.8, but also individually 0.4, 0.55, 0.6, 0.7, 0.78, and 0.8, and any other number subsumed within that range. Further, for example, disclosure of a range of >0.3 to 0.8 also includes, for example, 0.4 to 0.6, 0.35 to 0.78, 0.41 to 0.75, 0.78 to 0.8, 0.32 to 0.41, 0.35 to 0.5, and any other subset subsumed within that range. Similarly, disclosure of a Markush group includes the group as a whole and any individual members and subgroups subsumed therein. For example, disclosure of the Markush group vinyl, allyl, or hexenyl includes individually the member vinyl; the subgroups vinyl and hexenyl; and any other individual members and subgroups subsumed therein.

[0050] The abbreviations used herein are defined as in Table 8 below.

[0051] [Table 8]

[0052] The samples were analyzed by GC under the following conditions: The gas chromatograph used was an Agilent 7890A running Chemstation OpenLab CDS Revision C.01.07 using an RTX-1 column (30 m x 250 μm x 1.00 μm nominal) in a flame ionization detector (FID). An autosampler was used for sample injection. The method parameters were as follows: ·Start: Hold at 50℃ for 1 minute Gradient: 15°C / min End: 260℃ - 5 minutes Injection port: 250℃ Detector: 300℃ Helium flow rate: 2.1 mL / min Split 50:1 Injection volume: 1.0 μL

[0053] Embodiments of the present invention In a first embodiment, a method for preparing a cyanoalkyl-functional silane comprises: 1) providing A') an olefinic nitrile containing cyanide impurities in an amount of ≧40 ppm; 2) A') removing all or a portion of the cyanide impurity from the olefinic nitrile, thereby producing A) a purified olefinic nitrile; 3) At temperatures between 20℃ and 150℃, A) the purified olefinic nitrile, B) Formula R 1 x HSiX (3-x) where the subscript x is 0, 1, or 2, and each R 1 is an independently selected monovalent hydrocarbon radical of 1 to 18 carbon atoms, and each X is independently selected from halogen atoms and groups of the formula OR 1 hydridosilanes having alkoxy groups selected from the group consisting of C) a platinum hydrosilylation catalyst in an amount sufficient to provide 5 ppm to <200 ppm Pt based on the combined weight of the starting materials A), B), and C). combining starting materials comprising: Includes:

[0054] In a second embodiment, A') the olefinic nitrile is selected from the group consisting of 3-butenenitrile and 2-methyl-3-butenenitrile.

[0055] In a third embodiment, the cyanide impurity comprises HC≡N.

[0056] In a fourth embodiment, the cyanide impurity is present at 40 ppm to 200 ppm based on the weight of A') the olefinic nitrile.

[0057] In a fifth embodiment, in the hydridosilane, x is 0 or 1 and R 1 is an alkyl group and X is an alkoxy group.

[0058] In a sixth embodiment, the hydridosilane according to the fifth embodiment has x=1 and R 1 is a methyl group and each X is a methoxy group.

[0059] In a seventh embodiment, the hydridosilane is selected from the group consisting of methyltrimethoxysilane and methyldimethoxysilane.

[0060] In an eighth embodiment, the platinum hydrosilylation catalyst comprises chloroplatinic acid, Karstedt's catalyst, or platinum on a support selected from carbon, silica, or alumina.

[0061] In a ninth embodiment, step 2) comprises combining the olefinic nitrile with an elemental metal selected from the group consisting of copper, iron, silver, or nickel.

[0062] In a tenth embodiment, the method of the ninth embodiment further comprises combining the olefinic nitrile with an adsorbent after combining the olefinic nitrile with the elemental metal.

[0063] In an eleventh embodiment, the method according to the ninth or tenth embodiment, wherein the metal is copper.

[0064] In a twelfth embodiment, step 2) of the method according to any one of the above embodiments comprises contacting the olefinic nitrile with an adsorbent selected from the group consisting of activated carbon and molecular sieves.

[0065] In a thirteenth embodiment, the method of any one of the first to eighth embodiments includes contacting the olefinic nitrile with an oxide of a metal selected from the group consisting of copper, iron, silver, and nickel.

[0066] In a fourteenth embodiment, the method according to any one of the above embodiments further comprises filtering in step 2) to prepare a purified olefinic nitrile.

[0067] In a fifteenth embodiment, step 2) of the method according to any one of the above embodiments further comprises stripping, distillation, or a combination thereof.

[0068] In a sixteenth embodiment, the purified olefinic nitrile produced in step 2) contains 0 ppm of cyanide impurity.

[0069] In a seventeenth embodiment, the purified olefinic nitrile produced in step 2) contains 5-40 ppm cyanide impurity, provided that the purified olefinic nitrile contains less cyanide impurity than the olefinic nitrile provided in step 1).

[0070] In an eighteenth embodiment, the method according to any one of the above embodiments further comprises adding D) an accelerator during and / or after step 3).

[0071] In a nineteenth embodiment, the method of any one of the above embodiments further comprises delivering one or more starting materials in a solvent.

[0072] In a twentieth embodiment, the method of any one of the above embodiments comprises providing a compound of formula R 1 x R 2 Six (3-x) where the subscripts x and R 1 is as defined above, and R 2 is a group of formula N≡CD-, where D is a divalent hydrocarbon group.

Claims

1. Formula R 1 x R 2 SiX (3-x) wherein each X is independently selected from the group consisting of alkoxy groups of formula OR 1 , where the subscript x is 0 or 1, R 1 is an alkyl group of 1 to 18 carbon atoms, and R 2 is a group of formula N≡C-D-, where D is a divalent hydrocarbon group.

1. A method for preparing a compound of formula (I), comprising: 1) providing A') an olefinic nitrile containing a cyanide impurity of formula X'-C≡N, where X' is hydrogen, sodium, or potassium; 2) removing all or a portion of said cyanide impurity from said A') olefinic nitrile, thereby producing A) purified olefinic nitrile; Step 2) is A') combining the olefinic nitrile with an elemental metal selected from the group consisting of copper, iron, silver, or nickel; or A') combining the olefinic nitrile with an adsorbent selected from the group consisting of activated carbon and molecular sieves; or A') combining the olefinic nitrile with a metal selected from the group consisting of copper, iron, silver, or nickel, or oxides of these metals, and then combining the product with an adsorbent. A) forming a purified olefinic nitrile; 3) At a temperature of 20°C to 150°C, A) purified olefinic nitrile; B) Formula R 1 x HSiX (3-x) where the subscript x is 0 or 1 and each R 1 is an alkyl group of 1 to 18 carbon atoms, and each X is independently a group of the formula OR 1 hydridosilanes having alkoxy groups selected from the group consisting of C) a platinum hydrosilylation catalyst in an amount to provide 5 ppm to <200 ppm Pt based on the combined weight of the starting materials A) purified olefinic nitrile, B) hydridosilane, and C) platinum hydrosilylation catalyst. combining starting materials comprising: A method comprising:

2. The method of claim 1, wherein the A') olefinic nitrile is selected from the group consisting of 3-butenenitrile and 2-methyl-3-butenenitrile.

3. The method of claim 1, wherein in the A') olefinic nitrile, the cyanide impurity comprises 25 ppm to 125 ppm of H-C≡N.

4. x=1 and R 1 4. The method of claim 3, wherein is a methyl group and each X is a methoxy group.

5. 10. The method of claim 1, wherein the platinum hydrosilylation catalyst comprises chloroplatinic acid, Karstedt's catalyst, or platinum on a support selected from carbon, silica, or alumina.

6. 10. The method of claim 1, wherein step 2) comprises combining the A') olefinic nitrile with a metal selected from the group consisting of copper, iron, silver, or nickel, or oxides of these metals, and then combining the product with an adsorbent to form the A) purified olefinic nitrile, wherein the adsorbent is lignite or coconut shell-based activated carbon.

7. 10. The method of claim 1, wherein said A) purified olefinic nitrile produced in step 2) contains from 0 ppm of said cyanide impurity to at least 10 ppm less of said cyanide impurity than said A') olefinic nitrile provided in step 1).

8. The method of claim 1, wherein the A) purified olefinic nitrile contains 5 ppm to 40 ppm of the cyanide impurity.

9. The method of any one of claims 1 to 8, further comprising adding D) a promoter during and / or after step 3).

10. The method of claim 1 further comprising delivering the one or more starting materials in a solvent.

Citation Information

Patent Citations

  • Production of high-purity acetonitrile

    JP1995228563A

  • Method for producing 3-pentennitrile by hydrocyanation of 1,3-butadiene

    JP2010500317A

  • Nitrile-substituted silanes and electrolyte compositions and electrochemical devices containing them

    JP2016520647A

  • Method for producing 4-(dialkylchlorosilyl)-butyronitrile

    JP2019507728A