Claims
- 1. A composite comprising:
- a matrix of an organic polymeric composition; and fine particulates, derivatized to enhance compatibility of surfaces of the particulates with the organic polymeric matrix, having a BET specific area greater than about 100 m.sup.2 /g dispersed throughout said matrix, a substantial proportion of said particulates being at about the fundamental particle size;
- wherein the particulates, before incorporation into the polymer matrix, are selected from group consisting of:
- (i) mixed metal hydroxides that substantially correspond to the empirical formula:
- Li.sub.m D.sub.d T(OH).sub.(m+2d+3+na) (A.sup.a)n.xH.sub.2 O
- where
- m represents the number of Li ions present and zero.ltoreq.m.ltoreq.1;
- D represents divalent metals ions;
- d is the number of ions of D in the formula and zero.ltoreq.d.ltoreq.4:
- T represents at least one trivalent metal-ion;
- A represents at least one monovalent or polyvalent anion other than OH ions;
- a is the number of ions of A in the formula;
- n is the valence of A and -3.ltoreq.na.ltoreq.zero; (m+2d+3+na) is equal to or greater than 3 and
- m+d>zero;
- xH.sub.2 O represents excess water of hydration and x>0; and
- (ii) derivatives of the mixed metal hydroxides and organic acids, such derivatives being reactive or compatible with the polymer matrix.
- 2. The composite of claim 1, wherein the fundamental particulate has a thickness less than about 10.degree..ANG. and a longest dimension in the size range from about 200.degree. to about 2000.degree..ANG..
- 3. The composite of claim 1, wherein the fine particulates comprise particulates within aspect ratio of from about 20 to about 1000.
- 4. The composite of claim 1, wherein the polymer matrix is selected from the group consisting of polyolefins, polystyrenes, polyurethanes, epoxy resins, polyimides, polyacetals, polyesters, polyvinyls, polyethers, and polyacrylics.
- 5. The composite of claim 1 wherein the derivative is a derivative of a mixed metal hydroxide and an organic acid selected from the group consisting of aliphatic acids, sulphonic acids and phosphonic acids.
- 6. A composite comprising:
- a matrix of an organic polymeric composition; and fine particulates having a BET specific area greater than about 100 m.sup.2 /g dispersed throughout said matrix, a substantial proportion of said particulates being at about the fundamental particle size, and surface moieties of the fine particles react with the polymer matrix to form chemical bonds;
- wherein the particulates, before incorporation into the polymer matrix, are selected from group consisting of:
- (i) mixed metal hydroxides that substantially correspond to the empirical formula:
- Li.sub.m D.sub.d T(OH).sub.(m+2d+3+na) (A.sup.a)n.xH.sub.2 O
- where
- m represents the number of Li ions present and zero.ltoreq.m.ltoreq.1;
- D represents divalent metals ions;
- d is the number of ions of D in the formula and zero.ltoreq.d.ltoreq.4;
- T represents at least one trivalent metal ion;
- A represents at least one monovalent or polyvalent anion other than OH ions;
- a is the number of ions of A in the formula;
- n is the valence of A and -3.ltoreq.na.ltoreq.zero;
- (m+2d+3+na) is equal to or greater than 3 and m+d>zero;
- xH.sub.2 O represents excess water of hydration and x>0; and
- (ii) derivatives of the mixed metal hydroxides and organic acids, such derivatives being reactive or compatible with the polymer matrix.
- 7. The composite of claim 6, whereto the fine particulates have a BET specific area in the range from about 200 to about 1000 m.sup.2 /g.
- 8. The composite of claim 6, wherein the rivalent metal ion D is selected from the group consisting of magnesium, calcium and zinc.
- 9. The composite of claim 8, wherein the anion, A, is selected from anionic portions of compounds selected from the group consisting of carboxylic acids, sulphonic acids and phosphonic acids.
- 10. A composite comprising:
- a matrix of an organic polymeric composition; and
- fine particulates, having a BET specific surface area greater than about 100 m.sup.2 /g, randomly dispersed throughout said matrix, a substantial proportion of said particulates being at about the fundamental particle size;
- wherein the particulates, before incorporation into the polymer matrix, are selected from group consisting of:
- (i) mixed metal hydroxides that substantially correspond to the empirical formula:
- MgA.sup.v.sub.a Z.sup.v b.nAl(OH).sub.3.mH.sub.2 O
- where A and Z represent negative-valence ions or radicals selected from negative-valence ions or radicals of compounds selected from the group consisting of hydroxyl, inorganic acid, and organic acid; n is a value of from about 1 to about 2; v is a negative valence of 1, 2, or 3; a and b are each values of from zero to 2; with (va)+(Vb) equal to 2, and with m being a value of zero or more; and
- (ii) derivatives of the mixed metal hydroxides and organic acids, such derivatives being reactive or compatible with the polymer matrix.
- 11. The composite of claim 10, wherein the fundamental particulate has a thickness of less than about 10.degree..ANG. and longest dimension in the range from about 200.degree. to about 2000.degree..ANG..
- 12. The composite of claim 10, wherein the: fine particulates comprise particulates within aspect ratio of from about 20 to about 1000.
- 13. The composite of claim 10, wherein the fine particulates are derivatized to enhance compatibility of surfaces of the particulates with the organic polymeric matrix.
- 14. The composite of claim 10, wherein surface moieties of the fine particulates react with the polymer matrix to form chemical bonds.
- 15. The composite of claim 10, wherein the polymer matrix is selected from the group consisting of polyolefins, polystyrenes, polyurethanes, epoxy resins, polyimides, polyacetals, polyesters, polyvinyls, polyethers, and polyacrylics.
- 16. The composite of claim 10, wherein the fine particulates have a BET specific surface area in the range from about 200 to about 1000 m.sup.2 /g.
- 17. The composite of claim 10, wherein the anion A is selected from the group consisting of carboxylic acids, phosphonic acids, and sulphonic acids.
- 18. A composite comprising:
- a matrix of an organic polymeric composition; and
- fine mixed metal hydroxide particulates of layered platelet structure, having a BET specific surface area greater than about 100 m.sup.2 /g, dispersed through said matrix and chemically bonded to the polymer matrix, a substantial proportion of said particulates present in the matrix being at a fundamental crystalline particle size thickness of less than about 16 .ANG..
- 19. The composite of claim 18 wherein the particulates have a BET specific surface area from about 200 to about 1000 m.sup.2 /g.
- 20. The composite of claim 19, wherein the particulates have a fundamental particle size of thickness less than about 10.degree..ANG. and largest dimension in the range about 200 to about 2000 .ANG..
- 21. The composite of claim 20, wherein the fine particulates, at the fundamental particle size, have aspect ratios of from about 20 to about 1000.
- 22. A composite comprising:
- a matrix of an organic polymeric composition; and
- fine particulates, having a BET specific surface area greater than about 100 m.sup.2 /g, randomly dispersed throughout said matrix, a substantial proportion of said particulates being at about the fundamental particle size;
- wherein the particulates, before incorporation into the polymer matrix, are selected from group consisting of:
- (i) mixed metal hydroxides that substantially correspond to the empirical formula:
- MgA.sup.v.sub.a Z.sup.v b.nAl(OH).sub.3.mH.sub.2 O
- wherein A and Z represent negative-valence ions or radicals selected from the group consisting of the negative-valence ion or radical portion of a halide: n is a value of from about 1 to about 2; v is a negative valence of 1, 2, or 3; a and b are each values of from zero to 2; with (va)+(vb) equal to 2, and with m being a value of zero or more; and
- (ii) derivatives of the mixed metal hydroxides and organic acids, such derivatives being reactive or compatible with the polymer matrix.
RELATED APPLICATIONS
This application is a continuation-in-part of U.S. Ser. No. 08/963,843 filed Oct. 20, 1992, and now abandoned, which is a continuation-in-part of U.S. Ser. No. 568,450, filed Aug. 15, 1990, abandoned, which is in turn a continuation-in-part of U.S. Ser. No. 07/775,662, filed Oct. 11, 1991, and now U.S. Pat. No. 5,443,761, which is in turn a continuation-in-part of Ser. No. 526,970, filed May 16, 1990, issued as U.S. Pat. No. 5,094,778, which is a continuation of Ser. No. 282,445, filed Dec. 9, 1988, abandoned, which is a continuation of Ser. No. 47,800, filed May 19, 1987, issued as U.S. Pat. No. 4,790,954, which is a continuation of Ser. No. 752,326, filed Jul. 5, 1985, issued as U.S. Pat. No. 4,664,843.
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Date |
Country |
0142773 |
Jan 1985 |
EPX |
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Jan 1990 |
EPX |
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Jan 1973 |
JPX |
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WOX |
Non-Patent Literature Citations (1)
Entry |
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Continuations (3)
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Number |
Date |
Country |
Parent |
282445 |
Dec 1988 |
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Parent |
47800 |
May 1987 |
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Parent |
752326 |
Jul 1985 |
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Continuation in Parts (4)
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Number |
Date |
Country |
Parent |
963843 |
Oct 1992 |
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Parent |
568450 |
Aug 1990 |
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Parent |
775662 |
Oct 1991 |
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Parent |
526970 |
May 1990 |
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