Claims
- 1. A method of improving the storage stability and broadening the pH stability of an aqueous solution containing from about 0.001% to 5% by weight of a water soluble organosilane of the formula
- A.sub.3-x B.sub.x SiD
- provided that the organosilane forms a clear solution in water at 25.degree. C. at the intended level of use, which method comprises including within the solution
- a. from about 0.05% to 10% by weight of the total aqueous solution of a water soluble organic quaternary ammonium compound which is free of silicon atoms and contains at least one nitrogen-bonded hydrocarbon group of at least 8 carbons and
- b. from about 0.5% to 30% by weight of the total aqueous solution of at least one surfactant selected from the group consisting of nonionic, amphoteric, sarcosine anionic, and cationic surfactants other than the compounds of (a);
- wherein the amounts of (a) and (b) present are effective to improve the storage stability of and to broaden the pH stability of the resulting solution and each
- A is --OH or a hydrolyzable group,
- B is an alkyl group of from 1 to 4 carbon atoms,
- x has a value of 0, 1 or 2, and
- D is a hydrocarbon group of from 1 to 4 carbon atoms, phenyl, or a nonionic or cationic, substituted-hydrocarbon group containing at least one oxygen or nitrogen group or salts of such substituted-hydrocarbon groups.
- 2. The method as claimed in claim 1 wherein (a) is a water soluble organic quaternary ammonium salt.
- 3. The method as claimed in claim 2 wherein A is selected from the group consisting of --OR.sup.1 and --OR.sup.2A OR.sup.1 where each R.sup.1 is R.sup.2 or hydrogen, R.sup.2 is an alkyl group of 1 to 4 carbon atoms, R.sup.2A is a divalent saturated hydrocarbon group of from 1 to 4 carbon atoms and x has a value of 0 or 1.
- 4. The method as claimed in claim 3 wherein D is selected from the group consisting of alkyl groups of from 1 to 4 carbon atoms, vinyl, allyl, glycidoxypropyl, --R.sup.3 N(R.sup.4).sub.y H.sub.2-y, --R.sup.3 N.sup.(+) (R.sup.4).sub.y H.sub.3-y X.sup.(-), --R.sup.3 NHR.sup.3 N(R.sup.4).sub.y H.sub.2-y, --R.sup.3 NHR.sup.3 N.sup.(+) (R.sup.4).sub.y H.sub.3-y X.sup.(-), --R.sup.3 N.sup.(+) R.sup.2 R.sup.4 R.sup.5 X.sup.(-) and ##STR3## wherein R.sup.3 is a divalent saturated hydrocarbon group of from 1 to 12 carbon atoms; R.sup.4 and R.sup.5 are each selected from the group consisting of alkyl groups of 1 to 18 carbon atoms, --CH.sub.2 C.sub.6 H.sub.5, --CH.sub.2 CH.sub.2 OH and --CH.sub.2 OH;
- y has a value of 0, 1 or 2; and
- X is an anion.
- 5. The method as claimed in claim 4 wherein the water soluble organic quaternary ammonium compound is selected from the group consisting of R.sup.7 R.sup.8 N.sup.(+) (R.sup.2).sub.2 X.sup.(-) and C.sub.5 H.sub.5 N.sup.(+) R.sup.7 X.sup.(-) wherein
- R.sup.7 is selected from the group consisting of alkyl groups of from about 6 to 18 carbon atoms, and
- R.sup.8 is selected from the group consisting of R.sup.2 and --CH.sub.2 C.sub.6 H.sub.5.
- 6. The method as claimed in claim 5 wherein the surfactant of (b) is selected from the group consisting of nonionic surfactants, sarcosine anionic, amphoteric surfactants and mixtures thereof.
- 7. The method as claimed in claim 6 wherein the surfactant is selected from nonionic surfactants selected from the group consisting of C.sub.8 to C.sub.18 alcohol ethoxylates containing from about 3 to 50 moles of ethylene oxide, C.sub.8 to C.sub.18 esters of sorbitan and polyethoxylated sorbitan, and C.sub.8 to C.sub.18 fatty acids containing from 3 to 50 moles of ethylene oxide, C.sub.8 to C.sub.18 alcohols, C.sub.8 to C.sub.18 diols, sodium lauroyl sarcosinate, sodium cocoyl sarcosinate, and amphoteric surfactants selected from the group consisting of C.sub.8 to C.sub.18 betaines and C.sub.8 to C.sub.18 amidoalkyl betaines.
- 8. The method as claimed in claim 3 wherein x is 0, A is --OCH.sub.3, D is selected from the group consisting of methyl, and --R.sup.3 N.sup.(+) R.sup.2 R.sup.4 R.sup.5 X.sup.(-) there X is chloride, R.sup.3 is propylene, and (i) R.sup.2 and R.sup.4 are each methyl and R.sup.5 is octadecyl, (ii) R.sup.2 is methyl and R.sup.4 and R.sup.5 are each decyl or (iii) R.sup.2, R.sup.4 and R.sup.5 are each methyl.
- 9. The method as claimed in claim 8 wherein the water soluble organic quaternary ammonium compound is selected from the group consisting of R.sup.7 R.sup.8 N.sup.(+) (R.sup.2).sub.2 X.sup.(-) and C.sub.5 H.sub.5 N.sup.(+) R.sup.7 X.sup.(-) where R.sup.8 methyl or --CH.sub.2 C.sub.6 H.sub.5, R.sup.2 is methyl, X is chloride and the surfactant in step I (b) is selected from nonionic surfactants selected from the group consisting of C.sub.8 to C.sub.18 alcohol ethoxylates containing from about 3 to 50 moles of ethylene oxide, C.sub.8 to C.sub.18 fatty acid esters of sorbitan and polyoxyethylated sorbitan, C.sub.8 to C.sub.18 fatty acid esters and amides containing from about 2 to 50 moles of ethylene oxide, C.sub.8 to C.sub.18 alcohols, C.sub.8 to C.sub.18 diols, block copolymers of polyethyleneoxide and polypropylene oxide, ethoxylated and propoxylated C.sub.8 to C.sub.18 fatty alcohols, C.sub.8 to C.sub.18 alkyl amine oxides, C.sub.8 to C.sub.18 fatty amindoamine, C.sub.8 to C.sub.18 fatty alkanolamides, and C.sub.8 to C.sub.18 fatty acid esters of glycerine, sarcosine anionic surfactants selected from the group consisting of sodium lauroyl sarcosinate and sodium cocoyl sarcosinate, and amphoteric surfactants selected from the group consisting of C.sub.8 to C.sub.18 alkyl betaines and C.sub.8 to C.sub.18 amidoalkyl betaines, the pH is from 3 to 13.
- 10. The method as claimed in claim 9 therein the amount of water soluble organosilane is from about 0.0.1% to 2%, the amount of soluble organic quaternary ammonium compound is from about 0.1% to 5% and the total amount of nonionic, sarcosine anionic, and amphoteric surfactant is from about 1% to 5%.
- 11. The method as claimed in claim 9 wherein the water soluble organic quatenary ammonium compound is benzalkonium chloride.
- 12. The method as claimed in claim 1 wherein x is 0 and A is --OR.sup.1 where R.sup.1 is R.sup.2 or hydrogen and R.sup.2 is an alkyl group of 1 to 4 carbon atoms.
- 13. The method as claimed in claim 2 wherein x is 0 and A is --OR.sup.1 where R.sup.1 is R.sup.2 or hydrogen and R.sup.2 is an alkyl group of 1 to 4 carbon atoms.
- 14. A method of improving the storage stability and broadening the pH stability of an aqueous solution containing from about 0.001% to 5% by weight of a water soluble organosizane of the formula
- A.sub.3-x B.sub.x SiD
- provided that the organosizane forms a clear solution in water at 25.degree. C. at the intended level of use, which method comprises
- I. including within the solution
- a. from about 0.05% to 10% by weight of the total aqueous solution of a water soluble organic quaternary ammonium compound which is free of silicon atoms and contains at least one nitrogen-bonded hydrocarbon group of at least 8 carbons and
- b. from about 0.5% to 30% by weight of the total aqueous solution of at least one surfactant selected from the group consisting of nonionic, amphoteric, sarcosine anionic, and cationic surfactants other than the compounds of (a); wherein the amounts of (a) and (b) present are effective to improve the storage stability of and to broaden the pH stability of the resulting solution; and
- II. including within the solution a sufficient amount of an acid or a base to obtain a solution pH of from about 1 to about 13.5,
- wherein each
- A is --OH or a hydrolyzable group,
- B is an alkyl group of from 1 to 4 carbon atoms,
- x has a value of 0, 1 or 2, and
- D is a hydrocarbon group of from 1 to 4 carbon atoms, phenyl, or a nonionic or cationic, substituted-hydrocarbon group containing at least one oxygen or nitrogen group or salts of such substituted-hydrocarbon groups.
- 15. The method as claimed in claim 14 wherein I(a) is a water soluble organic quaternary ammonium salt.
- 16. The method as claimed in claim 15 wherein A is selected from the group consisting of --OR.sup.1 and --OR.sup.2A OR.sup.1 where each R.sup.1 is R.sup.2 or hydrogen, R.sup.2 is an alkyl group of 1 to 4 carbon atoms, R.sup.2A is a divalent saturated hydrocarbon group of from 1 to 4 carbon atoms and x has a value of 0 or 1.
- 17. The method as claimed in claim 16 wherein D is selected from the group consisting of alkyl groups of from 1 to 4 carbon atoms, vinyl, allyl, glycidoxypropyl, --R.sup.3 N(R.sup.4).sub.y H.sub.2-y, --R.sup.3 N.sup.(+) (R.sup.4).sub.y H.sub.3-y X.sup.(-), --R.sup.3 NHR.sup.3 N(R.sup.4).sub.y H.sub.2-y, --R.sup.3 NHR.sup.3 N.sup.(+) (R.sup.4).sub.y H.sub.3-y X.sup.(-), --R.sup.3 N.sup.(+) R.sup.2 R.sup.4 R.sup.5 X.sup.(-) and ##STR4## wherein R.sup.3 is a divalent saturated hydrocarbon group of from 1 to 12 carbon atoms; R.sup.4 and R.sup.5 are each selected from the group consisting of alkyl groups of 1 to 18 carbon atoms, --CH.sub.2 C.sub.6 H.sub.5, --CH.sub.2 CH.sub.2 OH and --CH.sub.2 OH;
- y has a value of 0, 1 or 2; and
- X is an anion.
- 18. The method as claimed in claim 17 wherein the water soluble organic quaternary ammonium compound is selected from the group consisting of R.sup.7 R.sup.8 N.sup.(+) (R.sup.2).sub.2 X.sup.(-) and C.sub.5 H.sub.5 N.sup.(+) R.sup.7 X.sup.(-) wherein
- R.sup.7 is selected from the group consisting of alkyl groups of from about 6 to 18 carbon atoms, and
- R.sup.8 is selected from the group consisting of R.sup.2 and --CH.sub.2 C.sub.6 H.sub.5.
- 19. The method as claimed in claim 18 wherein the surfactant of (b) is selected from the group consisting of nonionic surfactants, sarcosine anionic, amphoteric surfactants and mixtures thereof.
- 20. The method as claimed in claim 19 wherein the surfactant is selected from nonionic surfactants selected from the group consisting of C.sub.8 to C.sub.18 alcohol ethoxylates containing from about 3 to 50 moles of ethylene oxide, C.sub.8 to C.sub.18 esters of sorbitan and polyethoxylated sorbitan, and C.sub.8 to C.sub.18 fatty acids containing from 3 to 50 moles of ethylene oxide, C.sub.8 to C.sub.18 alcohols, C.sub.8 to C.sub.18 diols, sodium lauroyl sarcosinate, sodium cocoyl sarcosinate, and amphoteric surfactants selected from the group consisting of C.sub.8 to C.sub.18 betaines and C.sub.8 to C.sub.18 amidoalkyl betaines.
- 21. The method as claimed in claim 16 wherein x is 0, A is --OCH.sub.3, D is selected from the group consisting of methyl, and --R.sup.3 N.sup.(+) R.sup.2 R.sup.4 R.sup.5 X.sup.(-) where X is chloride, R.sup.3 is propylene, and (i) R.sup.2 and R.sup.4 are each methyl and R.sup.5 is octadecyl, (ii) R.sup.2 is methyl and R.sup.4 and R.sup.5 are each decyl or (iii) R.sup.2, R.sup.4 and R.sup.5 are each methyl.
- 22. The method as claimed in claim 21 wherein the water soluble organic quaternary ammonium compound is selected from the group consisting of R.sup.7 R.sup.8 N.sup.(+) (R.sup.2).sub.2 X.sup.(-) and C.sub.5 H.sub.5 N.sup.(+) R.sup.7 X.sup.(-) where R.sup.8 is methyl or --CH.sub.2 C.sub.6 H.sub.5, R.sup.2 is methyl, X is chloride and the surfactant in step I (b) is selected from nonionic surfactants selected from the group consisting of C.sub.8 to C.sub.18 alcohol ethoxylates containing from about 3 to 50 moles of ethylene oxide, C.sub.8 to C.sub.18 fatty acid esters of sorbitan and polyoxyethylated sorbitan, C.sub.8 to C.sub.18 fatty acid esters and amides containing from about 2 to 50 moles of ethylene oxide, C.sub.8 to C.sub.18 alcohols, C.sub.8 to C.sub.18 diols, block copolymers of polyethyleneoxide and polypropylene oxide, ethoxylated and propoxylated C.sub.8 to C.sub.18 fatty alcohols, C.sub.8 to C.sub.18 alkyl amine oxides, C.sub.8 to C.sub.18 fatty amindoamines, C.sub.8 to C.sub.18 fatty alkanolamides, and C.sub.8 to C.sub.18 fatty acid esters of glycerine, sarcosine anionic surfactants selected from the group consisting of sodium lauroyl sarcosinate and sodium cocoyl sarcosinate, and amphoteric surfactants selected from the group consisting of C.sub.8 to C.sub.18 alkyl betaines and C.sub.8 to C.sub.18 amidoalkyl betaines, the pH is from 3 to 13.
- 23. The method as claimed in claim 22 wherein the amount of water soluble organosilane is from about 0.01% to 2%, the amount of water soluble organic quaternary ammonium compound is from about 0.1% to 5% and the total amount of nonionic, sarcosine anionic, and amphoteric surfactant is from about 1% to 5%.
- 24. The method as claimed in claim 22 wherein the water soluble organic quaternary ammonium compound is benzalkonium chloride.
- 25. The method as claimed in claim 14 wherein x is 0 and A is --OR.sup.1 where R.sup.1 is R.sup.2 or hydrogen and R.sup.2 is an alkyl group of 1 to 4 carbon atoms.
- 26. The method as claimed in claim 15 wherein x is 0 and A is --OR.sup.1 where R.sup.1 is R.sup.2 or hydrogen and R.sup.2 is an alkyl group of 1 to 4 carbon atoms.
- 27. The aqueous solution obtained by the method of claim 1 wherein the surfactant in step I(b) is only selected from the group consisting of nonionic surfactants, sarcosine anionic, amphoteric surfactants and mixtures thereof.
- 28. The aqueous solution obtained by the method of claim 2 wherein the surfactant in step I(b) is selected only from the group consisting of nonionic surfactants, sarcosine anionic, amphoteric surfactants and mixtures thereof.
- 29. The aqueous solution obtained by the method of claim 3 wherein the surfactant in step I(b) is selected from the group consisting of nonionic surfactants, sarcosine anionic, amphoteric surfactants and mixtures thereof.
- 30. The aqueous solution obtained by the method of claim 4 wherein the surfactant in step I(b) is selected from the group consisting of nonionic surfactants, sarcosine anionic, amphoteric surfactants and mixtures thereof.
- 31. The aqueous solution obtained by the method of claim 5 wherein the surfactant in step I(b) is selected from the group consisting of nonionic surfactants, sarcosine anionic, amphoteric surfactants and mixtures thereof.
- 32. The aqueous solution obtained by the method of claim 6.
- 33. The aqueous solution obtained by the method of claim 7.
- 34. The aqueous solution obtained by the method of claim 8 wherein the surfactant in step I(b) is only selected from the group consisting of nonionic surfactants, sarcosine anionic, amphoteric surfactants and mixtures thereof.
- 35. The aqueous solution obtained by the method of claim 9.
- 36. The aqueous solution obtained by the method of claim 10.
- 37. The aqueous solution obtained by the method of claim 11 wherein the surfactant in step I(b) is only selected from the group consisting of nonionic surfactants, sarcosine anionic, amphoteric surfactants and mixtures thereof.
- 38. The aqueous solution obtained by the method of claim 12 wherein the surfactant in step I(b) is only selected from the group consisting of nonionic surfactants, sarcosine anionic, amphoteric surfactants and mixtures thereof.
- 39. The aqueous solution obtained by the method of claim 13 wherein the surfactant in step I(b) is only selected from the group consisting of nonionic surfactants, sarcosine anionic, amphoteric surfactants and mixtures thereof.
- 40. The aqueous solution obtained by the method of claim 14 wherein the surfactant in step I(b) is selected only from the group consisting of nonionic surfactants, sarcosine anionic, amphoteric surfactants and mixtures thereof.
- 41. The aqueous solution obtained by the method of claim 15 wherein the surfactant in step I(b) is selected from the group consisting of nonionic surfactants, sarcosine anionic, amphoteric surfactants and mixtures thereof.
- 42. The aqueous solution obtained by the method of claim 16 wherein the surfactant in step I(b) is selected from the group consisting of nonionic surfactants, sarcosine anionic, amphoteric surfactants and mixtures thereof.
- 43. The aqueous solution obtained by the method of claim 17 wherein the surfactant in step I(b) is selected from the group consisting of nonionic surfactants, sarcosine anionic, amphoteric surfactants and mixtures thereof.
- 44. The aqueous solution obtained by the method of claim 18 wherein the surfactant in step I(b) is only selected from the group consisting of nonionic surfactants, sarcosine anionic, amphoteric surfactants and mixtures thereof.
- 45. The aqueous solution obtained by the method of claim 19.
- 46. The aqueous solution obtained by the method of claim 20.
- 47. The aqueous solution obtained by the method of claim 21 wherein the surfactant in step I(b) is only selected only from the group consisting of nonionic surfactants, sarcosine anionic, amphoteric surfactants and mixtures thereof.
- 48. The aqueous solution obtained by the method of claim 22.
- 49. The aqueous solution obtained by the method of claim 23.
- 50. The aqueous solution obtained by the method of claim 24 wherein the surfactant in step I(b) is selected only from the group consisting of nonionic surfactants, sarcosine anionic, amphoteric surfactants and mixtures thereof.
- 51. The aqueous solution obtained by the method of claim 25 wherein the surfactant in step I(b) is selected only from the group consisting of nonionic surfactants, sarcosine anionic, amphoteric surfactants and mixtures thereof.
- 52. The aqueous solution obtained by the method of claim 26 wherein the surfactant in step I(b) is selected only from the group consisting of nonionic surfactants, sarcosine anionic, amphoteric surfactants and mixtures thereof.
Parent Case Info
This is a continuation of application Ser. No. 08/098,331, filed on Jul. 30, 1993, now abandoned, which is a continuation-in-part of U.S. Ser. No. 7/657,017, filed on Feb. 15, 1991, now abandoned.
US Referenced Citations (11)
Foreign Referenced Citations (1)
Number |
Date |
Country |
63-230170 |
Sep 1988 |
JPX |
Continuations (1)
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Number |
Date |
Country |
Parent |
98331 |
Jul 1993 |
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Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
657017 |
Feb 1991 |
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