Claims
- 1. A catalytic system effective for oxidation of materials comprising:
(a) a catalytically effective amount, preferably from about 1 ppb to about 99.9%, of a transition-metal oxidation catalyst, wherein said transition-metal oxidation catalyst comprises a complex of a transition metal selected from the group consisting of Mn(II), Mn(III), Mn(IV), Mn(V), Fe(II), Fe(III), Fe(IV), Co(I), Co(II), Co(III), Ni(I), Ni(II), Ni(III), Cu(I), Cu(II), Cu(III), Cr(II), Cr(III), Cr(IV), Cr(V), Cr(VI), V(III), V(IV), V(V), Mo(IV), Mo(V), Mo(VI), W(IV), W(V), W(VI), Pd(II), Ru(II), Ru(III), and Ru(IV) coordinated with a macropolycyclic rigid ligand, preferably a cross-bridged macropolycyclic ligand, having at least 3 donor atoms, at least two of which are bridgehead donor atoms; and (b) the balance to 100%, preferably at least about 0.1%, of one or more adjunct materials.
- 2. A catalytic system effective for oxidation of materials comprising:
(a) a catalytically effective amount, preferably from about 1 ppb to about 49%, of a transition-metal oxidation catalyst, said catalyst comprising a complex of a transition metal and a macropolycyclic rigid ligand, preferably a cross-bridged macropolycyclic ligand, wherein:
(1) said transition metal is selected from the group consisting of Mn(II), Mn(III), Mn(IV), Mn(V), Fe(II), Fe(III), Fe(IV), Co(I), Co(II), Co(III), Ni(I), Ni(II), Ni(III), Cu(I), Cu(II), Cu(III), Cr(II), Cr(III), Cr(IV), Cr(V), Cr(VI), V(III), V(IV), V(V), Mo(IV), Mo(V), Mo(VI), W(IV), W(V), W(VI), Pd(II), Ru(II), Ru(III), and Ru(IV); (2) said macropolycyclic rigid ligand is coordinated by at least three, preferably at least four, more preferably four or five, donor atoms to the same transition metal and comprises:
(i) an organic macrocycle ring containing three, preferably four, or more donor atoms, preferably at least 3, more preferably at least 4, of these donor atoms are N, separated from each other by covalent linkages of at least one, preferably 2 or 3, non-donor atoms, two to five, preferably three to four, more preferably four, of these donor atoms being coordinated to the same transition metal in the complex; (ii) a linking moiety, preferably a cross-bridged chain, which covalently connects at least 2, preferably non-adjacent, donor atoms of the organic macrocycle ring, said covalently connected, preferably non-adjacent, donor atoms being bridgehead donor atoms which are coordinated to the same transition metal in the complex, and wherein said linking moiety, preferably a cross-bridged chain, comprises from 2 to about 10 atoms, wherein the preferred cross-bridged chain is selected from 2, 3 or 4 non-donor atoms, and 4-6 non-donor atoms with a further donor atom; and (iii) optionally, one or more non-macropolycyclic ligands, preferably selected from the group consisting of H2O, ROH, NR3, RCN, OH−, OOH−, RS−, RO−, RCOO−, OCN−, SCN−, N3−, CN−, F−, Cl−, Br−, I−, O2−, NO3−, NO2−, SO42−, SO32−, PO43−, organic phosphates, organic phosphonates, organic sulfates, organic sulfonates, and aromatic N donors such as pyridines, pyrazines, pyrazoles, imidazoles, benzimidazoles, pyrimidines, triazoles and thiazoles with R being H, optionally substituted alkyl, optionally substituted aryl; and (b) the balance to 100% of one or more adjunct materials.
- 3. The catalytic systems according to claim 1 comprising a transition-metal oxidation catalyst wherein the macropolycyclic ligand is cross-bridged and wherein the donor atoms in the organic macrocycle ring of the cross-bridged macropolycyclic ligand are selected from the group consisting of N, O, S, and P, preferably N and O, and most preferably all N.
- 4. The catalytic systems according to claim 1 comprising a transition-metal oxidation catalyst wherein all the donor atoms in the macropolycyclic rigid ligand are selected from the group consisting of N and O, and preferably all N.
- 5. The catalytic systems according to claim 1 comprising a transition-metal oxidation catalyst wherein the macropolycyclic rigid ligand comprises 4 or 5 donor atoms, all of which are coordinated with the same transition metal.
- 6. The catalytic systems according to claim 1 comprising a transition-metal oxidation catalyst wherein the macropolycyclic rigid ligand comprises 4 nitrogen donor atoms all coordinated to the same transition metal.
- 7. The catalytic systems according to claim 1 comprising a transition-metal oxidation catalyst wherein the macropolycyclic rigid ligand comprises 5 nitrogen atoms all coordinated to the same transition metal.
- 8. The catalytic systems according to claim 1 wherein the oxidation catalyst is a monometallic, mononuclear complex.
- 9. The catalytic systems according to claim 1 comprising a transition-metal oxidation catalyst wherein at least four of the donor atoms in the macropolycyclic rigid ligand, preferably at least four nitrogen donor atoms, form an apical bond angle with the same transition metal of 180±50° and at least one equatorial bond angle of 90±20°.
- 10. The catalytic systems according to claim 1 comprising a transition-metal oxidation catalyst having coordination geometry selected from distorted octahedral and distorted trigonal prismatic, and preferably wherein further the cross-bridged macropolycyclic ligand is in the folded conformation.
- 11. The catalytic systems according to claim 1 comprising a transition-metal oxidation catalyst wherein two of the donor atoms in the macropolycyclic rigid ligand, preferably two nitrogen donor atoms, occupy mutually trans positions of the coordination geometry, and at least two of the donor atoms in the macropolycyclic rigid ligand, preferably at least two nitrogen donor atoms, occupy cis-equatorial positions of the coordination geometry.
- 12. The catalytic systems according to claim 1 comprising a transition-metal oxidation catalyst which comprises one or two non-macropolycyclic ligands.
- 13. The catalytic systems according to claim 1 comprising a transition-metal oxidation catalyst wherein the cross-bridged macropolycyclic ligand comprises an organic macrocycle ring containing at least 10 atoms, preferably from about 12 to about 20 atoms.
- 14. The catalytic systems according to claim 1 comprising a transition-metal oxidation catalyst wherein the transition metal is selected from manganese and iron.
- 15. The catalytic systems according to claim 1 comprising an oxygen bleaching agent.
- 16. A catalytic system effective for oxidation of materials comprising:
(a) a catalytically effective amount, preferably from about 0.1 ppm to about 500 ppm, of a transition-metal oxidation catalyst, said catalyst comprising a complex of a transition metal and a macropolycyclic rigid ligand, preferably a cross-bridged macropolycyclic ligand, wherein:
(1) said transition metal is selected from the group consisting of Mn(II), Mn(III), Mn(IV), Mn(V), Fe(II), Fe(III), Fe(IV), Co(I), Co(II), Co(III), Ni(I), Ni(II), Ni(III), Cu(I), Cu(II), Cu(III), Cr(II), Cr(III), Cr(IV), Cr(V), Cr(VI), V(III), V(IV), V(V), Mo(IV), Mo(V), Mo(VI), W(IV), W(V), W(VI), Pd(II), Ru(II), Ru(III), and Ru(IV), and; (2) said macropolycyclic rigid ligand is selected from the group consisting of:
(i) the macropolycyclic rigid ligand of formula (I) having denticity of 3 or 4: 54(ii) the macropolycyclic rigid ligand of formula (II) having denticity of 4 or 5: 55(iii) the macropolycyclic rigid ligand of formula (111) having denticity of 5 or 6: 56(iv) the macropolycyclic rigid ligand of formula (IV) having denticity of 6 or 7: 57 wherein in these formulas:
each “E” is the moiety (CRn)a—X—(CRn)a′, wherein X is selected from the group consisting of O, S, NR and P, or a covalent bond, and preferably X is a covalent bond and for each E the sum of a+a′ is independently selected from 1 to 5, more preferably 2 and 3; each “G” is the moiety (CRn)b; each “R” is independently selected from H, alkyl, alkenyl, alkynyl, aryl, alkylaryl, and heteroaryl, or two or more R are covalently bonded to form an aromatic, heteroaromatic, cycloalkyl, or heterocycloalkyl ring; each “D” is a donor atom independently selected from the group consisting of N, O, S, and P, and at least two D atoms are bridgehead donor atoms coordinated to the transition metal; “B” is a carbon atom or “D” donor atom, or a cycloalkyl or heterocyclic ring; each “n” is an integer independently selected from 1 and 2, completing the valence of the carbon atoms to which the R moieties are covalently bonded; each “n′” is an integer independently selected from 0 and 1, completing the valence of the D donor atoms to which the R moieties are covalently bonded; each “n″” is an integer independently selected from 0, 1, and 2 completing the valence of the B atoms to which the R moieties are covalently bonded; each “a” and “a′” is an integer independently selected from 0-5, preferably a+a′ equals 2 or 3, wherein the sum of all “a” plus “a′” in the ligand of formula (I) is within the range of from about 7 to about 12, the sum of all “a” plus “a′” in the ligand of formula (II) is within the range of from about 6, preferably 8, to about 12, the sum of all “a” plus “a′” in the ligand of formula (III) is within the range of from about 8, preferably 10, to about 15, and the sum of all “a” plus “a′” in the ligand of formula (IV) is within the range of from about 10, preferably 12, to about 18; each “b” is an integer independently selected from 0-9, preferably 0-5, or in any of the above formulas, one or more of the (CRn)b moieties covalently bonded from any D to the B atom is absent as long as at least two (CRn)b covalently bond two of the D donor atoms to the B atom in the formula, and the sum of all “b” is within the range of from about 1 to about 5; and (iii) optionally, one or more non-macropolycyclic ligands; and (b) the balance to 100% of one or more adjunct materials.
- 17. The catalytic system according to claim 16 comprising a transition-metal oxidation catalyst wherein in the macropolycyclic rigid ligand the D is selected from the group consisting of N and O, and preferably all D are N.
- 18. The catalytic systems according to claim 16 comprising a transition-metal oxidation catalyst wherein the transition metal is selected from manganese and iron.
- 19. The catalytic systems according to claim 16 comprising a transition-metal oxidation catalyst wherein in the macropolycyclic rigid ligand all “a” are independently selected from the integers 2 and 3, all X are selected from covalent bonds, all “a′” are 0, and all “b” are independently selected from the integers 0, 1, and 2.
- 20. The catalytic systems according to claim 16 comprising a transition-metal oxidation catalyst wherein the molar ratio of transition metal to cross-bridged macropolycyclic ligand is 1:1.
- 21. The catalytic systems according to claim 16 wherein the oxidation catalyst comprises only one metal per catalyst complex.
- 22. The catalytic systems according to claim 16 comprising a transition-metal oxidation catalyst wherein in the macropolycyclic rigid ligand is a macropolycyclic moiety of formula (II) having the formula:
- 23. The catalytic systems according to claim 16 comprising a transition-metal oxidation catalyst wherein in the macropolycyclic rigid ligand the B is an atom selected from carbon and nitrogen.
- 24. The catalytic systems according to claim 16 wherein the oxidation catalyst comprises a tetradentate or pentadentate cross-bridged macropolycyclic ligand.
- 25. The catalytic systems according to claim 16 comprising a transition-metal oxidation catalyst wherein all the donor atoms in the macropolycyclic rigid ligand are selected from the group consisting of N and O, and preferably all N.
- 26. The catalytic systems according to claim 16 comprising a transition-metal oxidation catalyst wherein the macropolycyclic rigid ligand comprises 4 or 5 donor atoms, all of which are coordinated with the same transition metal.
- 27. The catalytic systems according to claim 16 comprising a transition-metal oxidation catalyst wherein the macropolycyclic rigid ligand comprises 4 nitrogen donor atoms all coordinated to the same transition metal.
- 28. The catalytic systems according to claim 16 comprising a transition-metal oxidation catalyst wherein the macropolycyclic rigid ligand comprises 5 nitrogen atoms all coordinated to the same transition metal.
- 29. The catalytic systems according to claim 16 wherein the oxidation catalyst is a monometallic, mononuclear complex.
- 30. The catalytic systems according to claim 16 comprising a transition-metal oxidation catalyst wherein at least four of the donor atoms in the macropolycyclic rigid ligand, preferably at least four nitrogen donor atoms, two of which form an apical bond angle with the same transition metal of 180±50° and at least two of which one equatorial bond angle of 90±20°.
- 31. The catalytic systems according to claim 16 comprising a transition-metal oxidation catalyst having coordination geometry selected from distorted octahedral and distorted trigonal prismatic, and preferably wherein further the cross-bridged macropolycyclic ligand is in the folded conformation.
- 32. The catalytic systems according to claim 16 comprising a transition-metal oxidation catalyst wherein two of the donor atoms in the macropolycyclic rigid ligand, preferably two nitrogen donor atoms, occupy mutually trans positions of the coordination geometry, and at least two of the donor atoms in the macropolycyclic rigid ligand, preferably at least two nitrogen donor atoms, occupy cis-equatorial positions of the coordination geometry.
- 33. The catalytic systems according to claim 16 comprising a transition-metal oxidation catalyst which comprises one or two non-macropolycyclic ligands.
- 34. The catalytic systems according to claim 16 comprising a transition-metal oxidation catalyst wherein the cross-bridged macropolycyclic ligand comprises an organic macrocycle ring containing at least 10 atoms, preferably from about 12 to about 20 atoms.
- 35. The catalytic systems according to claim 16 comprising an oxygen bleaching agent.
- 36. A metal complex comprising manganese and a cross-bridged ligand having the formula:
- 37. A metal complex comprising manganese and a cross-bridged ligand having the formula:
- 38. A metal complex comprising manganese and a cross-bridged ligand having the formula:
- 39. A metal complex comprising manganese and a cross-bridged ligand having the formula:
- 40. A method for oxidizing materials, said method comprising contacting, preferably in the presence of a liquid, a material capable of being oxidized with an oxidation agent and a transition-metal oxidation catalyst, wherein said transition-metal oxidation catalyst comprises a complex of a transition metal selected from the group consisting of Mn(II), Mn(III), Mn(IV), Mn(V), Fe(II), Fe(III), Fe(IV), Co(I), Co(II), Co(III), Ni(I), Ni(II), Ni(III), Cu(I), Cu(II), Cu(III), Cr(II), Cr(III), Cr(IV), Cr(V), Cr(VI), V(III), V(IV), V(V), Mo(IV), Mo(V), Mo(VI), W(IV), W(V), W(VI), Pd(II), Ru(II), Ru(III), and Ru(IV) coordinated with a macropolycyclic rigid ligand, preferably a cross-bridged macropolycyclic ligand, having at least 3 donor atoms, at least two of which are bridgehead donor atoms.
- 41. The method according to claim 40 wherein the material capable of being oxidized is selected from organic functional groups, hydrocarbons, and heteroatoms, preferably alkenes, sulfides, oxidizable dyes, oxidizable stains, woodpulp and oxidizable effluents.
- 42. The method or compositions according to claim 1 wherein the oxidation agent is selected from the group consisting of sodium hypohalites, preferably hypochlorite, hydrogen peroxide, inorganic peroxohydrates, organic peroxohydrates, organic peroxyacids, organic hydroperoxides, monopersulfates, and mixtures thereof.
- 43. The method according to claim 40 wherein the transition-metal oxidation catalyst is selected from the Mn(II), Fe(II) and Cr(II) or the corresponding oxidation state (III) complexes, of a ligand selected from:
- 44. A metal complex comprising a transition metal selected from Mn, Fe and Cr, preferably Mn, and a cross-bridged ligand having the formula:
- 45. The metal complex according to claim 44 wherein each A is independently selected from methyl, ethyl, propyl, isopropyl, butyl, isobutyl, tert-butyl, C5-C20 alkyl, and one, but not both, of the A moieties is benzyl, and combinations thereof.
- 46. A metal complex comprising a transition metal selected from Mn, Fe and Cr, preferably Mn, and cross-bridged macropolycyclic ligands having the formula:
- 47. A metal complex comprising a transition metal selected from Mn, Fe and Cr, preferably Mn, and cross-bridged macropolycyclic ligands having the formula:
- 48. A metal complex comprising a transition metal selected from Mn, Fe and Cr, preferably Mn, and cross-bridged macropolycyclic ligands having the formula:
- 49. A method for synthesizing a manganese-containing metal complex according to claim 44, wherein the catalyst is prepared under strictly oxygen and hydroxyl-free conditions by reaction of bis(pyridine) manganese (11) salts, preferably the chloride salt, with a cross-bridged macropolycyclic ligand having the formula of the metal complex.
CROSS-REFERENCE
[0001] This application claims priority under 35 U.S.C. §120 to U.S. application Ser. No. 09/380,672, filed Sep. 7, 1999, which is an entry into the U.S. National Stage under 35 U.S.C. §371 of PCT International Application Serial No. PCT/IB98/00302, filed Mar. 6, 1998, which claims priority under PCT Article 8 and 35 U.S.C. §119(e) to U.S. Provisional Application Serial No. 60/040,629, filed Mar. 7, 1997.
Provisional Applications (1)
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Number |
Date |
Country |
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60040629 |
Mar 1997 |
US |
Continuations (1)
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Number |
Date |
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Parent |
09380672 |
Sep 1999 |
US |
Child |
10155105 |
May 2002 |
US |