Claims
- 1. A process for decreasing the molecular weight of a polymer capable of having said molecular weight thereof decreased, said polymer characterized by a carbon backbone and internal carbon-carbon unsaturation in the polymer backbone,
- said process comprising contacting said polymer with a lower molecular weight olefin in the presence of an olefin disproportionation nitrosyl-ligand-containing homogeneous catalyst under conditions of temperature, pressure, and contact time sufficient to decrease the molecular weight of said polymer,
- wherein said lower molecular weight olefin is a nontertiary nonconjugated acyclic mono- or polyene having 2 to 30 carbon atoms per molecule,
- wherein said nitrosyl ligand-containing homogeneous catalyst comprises (a) a transition metal compound with (b) an adjuvant in ratios of (b):(a) effective for said decreasing;
- wherein
- a. said transition metal compound is represented by the formula [(L).sub.a (L').sub.b M.sub.c Z.sub.d ].sub.x wherein each (L) and (L') are ligands; M is a transition metal of Group IB, IIIB, IVB, VB, VIB, VIIB, or the iron and cobalt subgroups of Group VIII; Z is halide or a radical which is CN, SCN, OCN, or SnCl.sub.3 ; a and d are numbers 0-6, b is 1 or 2, c is 1-4; x is a number indicative of the polymeric state of the compound, which is 1 to 3 or higher; said [(L).sub.a (L').sub.b M.sub.c Z.sub.d ].sub.x represents a product obtained by combining at least one transition metal compound with at least one ligand-forming material; and wherein the number of (L), (L'), and Z groups present in the component (a) compound is not greater than the number required for the metal to achieve the closed shell electronic configuration of the next higher atomic number inert gas; (L) ligands are organic ligands, O, S, or CO; (L') ligands are NO or [.pi.-(CHR.sup.4 --CR.sup.4 --CH.sub.2 --)] such that at least one L' is NO; and
- b. said adjuvant is represented by the formula
- 1. R.sub.e AlX.sub.f ;
- 2. a mixture of the compounds of (1)
- 3. a mixture of one or more of AlX.sub.3 or R.sub.e AlX.sub.f compounds with one or more compounds having the formula R.sub.g.sup.1 M.sup.1 X.sub.h ;
- 4. an R.sub.g M.sup.1 Y.sub.h compound;
- 5. an AlX.sub.3 compound; or
- 6. M.sup.2 M.sup.1 H.sub.j compound
- wherein each R is an aromatic or saturated aliphatic hydrocarbon radical having up to 20 carbon atoms including alkoxy and halo derivatives thereof, preferably an alkyl radical having up to 10 carbon atoms; each R.sup.1 is hydrogen or R; each X is a halogen; Y is halogen or hydrogen; each M.sup.1 and M.sup.2 is a metal of Group IA, IIA, IIB or IIIA; e is 1, 2 or 3, f is 0, 1 or 2, the sum of e and f being 3; g is 1, 2 or 3, h is 0, 1 or 2, the sum of g and h being equal to the valence of M.sup.1 ; j is an integer such that b is equal to the sum of the valences of M.sup.1 and M.sup.2.
- 2. A process for decreasing the molecular weight of a polymer capable of having said molecular weight thereof decreased, said polymer characterized by a carbon backbone and internal carbon-carbon unsaturation in the polymer backbone,
- said process comprising contacting said polymer with a lower molecular weight olefin in the presence of an olefin disproportionation nitrosylligand-containing homogeneous catalyst under conditions of temperature, pressure, and contact time sufficient to cause decrease of the molecular weight of said polymer,
- wherein said lower molecular weight olefin is a nontertiary nonconjugated acyclic mono- or polyene having 2 to 30 carbon atoms per molecule,
- wherein said nitrosyl ligand-containing homogeneous catalyst comprises (a) a transition metal compound with (b) an adjuvant in ratios of (b):(a) effective for said decreasing;
- wherein
- a. said transition metal compound is represented by the formula [(L).sub.a (L').sub.b M.sub.c Z.sub.d ].sub.x wherein each (L) and (L') are ligands; M is a transition metal of Group IB, IIIB, IVB, VB, VIB, VIIB, or the iron and cobalt subgroups of Group VIII; Z is halide or a radical which is CN, SCN, OCN, or SnCl.sub.3 ; a and d are numbers 0-6, b is 1 or 2, c is 1-4; x is a number indicative of the polymeric state of the compound, which is 1 to 3 or higher; said [(L).sub.a (L').sub.b M.sub.c Z.sub.d ].sub.x represents a product obtained by combining at least one transition metal compound with at least one ligand-forming material; and wherein the number of (L), (L'), and Z groups present in the component (a) compound is not greater than the number required for the metal to achieve the closed shell electronic configuration of the next higher atomic number inert gas; (L) ligands are R.sub.3 Q; R.sub.3 QO, R.sub.2 Q--QR.sub.2, R.sub.2 NR.sup.1, O, S, CO, R.sub.2 N--R.sup.2 --NR.sub. 2, R--S--R, R.sup.3 S, [.pi.-(CHR.sup.4 --CR.sup.4 --CH.sub.2 --)],R.sup.5 (CN).sub.k, R.sup.5 (COO--).sub.k, RCOR.sup.6 (COO--).sub.k, [(RCO).sub.2 CH--], R.sub.2 NCSS--), unsubstituted and R.sup.5 group-substituted pyridine, unsubstituted and R.sup.5 group-substituted bipyridine, or unsubstituted and R group-substituted cyclopentadienyl radicals; wherein R is an aromatic or saturated aliphatic radical, including halo and alkoxy substituted derivatives thereof, having up to 20 carbon atoms; R.sup.1 is hydrogen or an R radical; R.sup.2 is a divalent radical; R.sup.3 is a divalent saturated aliphatic or ethylenically unsaturated aliphatic radical having from 4 to 10 carbon atoms; R.sup.4 is hydrogen or methyl radical; R.sup.5 is an aromatic, saturated aliphatic, or ethylenically unsaturated aliphatic radical having up to 30 carbon atoms; R.sup.6 is a divalent saturated aliphatic radical having from 1 to 10 carbon atoms; Q is phosphorus, arsenic, or antimony; and k is 1 to 2; (L') ligands are NO or [.pi.--(CHR.sup.4 --CR.sup.4 --CH.sub.2 --)] such that at least one L' is NO; and
- b. said adjuvant is represented by the formula
- 1. R.sub.e AlX.sub.f ;
- 2. a mixture of the compounds of (1);
- 3. a mixture of one or more of AlX.sub.3 or R.sub.e AlX.sub.f compounds with one or more compounds having the formula R.sub.g.sup.1 M.sup.1 X.sub.h ;
- 4. an R.sub.g M.sup.1 Y.sub.h compound;
- 5. an AlX.sub.3 compound; or
- 6. M.sup.2 M.sup.1 H.sub.j compound
- wherein each R is an aromatic or saturated aliphatic hydrocarbon radical having up to 20 carbon atoms including alkoxy and halo derivatives thereof, preferably an alkyl radical having up to 10 carbon atoms; each R.sup.1 is hydrogen or R; each X is a halogen; Y is halogen or hydrogen; each M.sup.1 and M.sup.2 is a metal of Group IA, IIA, IIB or IIIA; e is 1, 2 or 3, f is 0, 1 or 2, the sum of e and f being 3; g is 1, 2 or 3, h is 0, 1 or 2, the sum of g and h being equal to the valence of M.sup.1 ; j is an integer such that b is equal to the sum of the valences of M.sup.1 and M.sup.2.
- 3. The process of claim 2 wherein said polymer has an initial weight-average molecular weight of about 1,000 to about 10,000,000 and an average of about 0.25 to about 1 internal double bond per monomer unit incorporated into the polymer.
- 4. A process according to claim 2 wherein said polymer is a polymer of a conjugated diene, a copolymer of two or more conjugated dienes or a copolymer of a conjugated diene and a vinyl monomer wherein the conjugated diene has 4 to 12 carbon atoms per molecule.
- 5. The process of claim 4 wherein said contacting with said polymer is at a temperature of about 50.degree. to 250.degree. F, under a pressure of about 1 to 100 atmospheres.
- 6. The process according to claim 4 wherein the molar ratio of said (b) component to (a) component is about 1.6:1 to 20:1.
- 7. A process according to claim 6 wherein said M is molybdenum, tungsten, rheniun, ruthenium, or rhodium.
- 8. The process of claim 4 wherein said nitrosyl ligand-containing homogeneous catalyst is formed on admixture of (a) molybdenum trichloride dioctanoate with NO or molybdenum trichloride distearate with NO and (b) ethylaluminum sesquichloride, and the lower molecular weight olefin is 1-hexene or propylene.
- 9. A process according to claim 8 wherein the polymer is a homopolymer of 1,3-butadiene or isoprene.
- 10. The process of claim 4 wherein said polymer is prepared in solution in the presence of an organometallic catalyst system, and said homogeneous disproportionation catalyst and said olefin are employed without inactivation of the polymerization catalyst by adding said disproportionation catalyst and said olefin to the polymerization reaction effluent.
- 11. The process of claim 4 wherein said (a) transition metal complex is (triphenylphosphine).sub.2 (NO).sub.2 MoCl.sub.2, (pyridine).sub.2 (NO).sub.2 MoCl.sub.2, NO-treated (triphenylphosphine).sub.2 MoCl.sub.4, NO-treated (pyridine).sub.2 MoCl.sub.4, NO-treated (butyronitrile).sub.2 MoCl.sub.4, NO-treated pyridine-treated MoCl.sub.5, Mo(benzoate).sub.2 (NO).sub.2 Cl.sub.2, NO-treated (aceylacetonate).sub.2 MoO.sub.2, NO-treated (butyronitrile).sub.2 MoCl.sub.4, NO-treated MoOCl.sub.3, NO-treated tetrallyltin-treated MoCl.sub.5, NOCl-treated MoO.sub.2, NO-treated MoCl.sub.5, NO-treated (cyclopentadienyl)Mo(CO).sub.3 I, NOCl-treated pyridine-treated MoO.sub.2, NO-treated (stearate).sub.2 MoCl.sub.3, NO-treated tributylphosphine-treated MoCl.sub.5, NO-treated MoEl.sub.2, NO-treated thiophene-treated MoCl.sub.5, NO-treated WCl.sub.6, NO-treated pyridine-treated WCl.sub.6, NO-treated MoO.sub.2, NO-treated benzoic acid-treated WCl.sub.6, NOCl-treated (triphenylphosphine).sub.2 W(CO).sub.4, (triphenylphosphine).sub.2 (NO).sub.2 WCl.sub.2, NO-treated Mo(acetate).sub.2, NO-treated RuCl.sub.3, NO-treated triphenylphosphine-treated RuCl.sub.3, NOCl-treated (triphenylphosphine).sub.3 RhCl, NO-treated (triphenylphosphine).sub.3 RhCl, NO-treated triphenylphosphine-treated RhCl.sub.3, NO-treated benzoic acid-treated NbCl.sub.5, NO-treated (triphenylphosphine).sub.2 CoCl.sub.2, NO-treated triphenylphosphine-treated IrCl.sub.3, or NO-treated CO-treated triphenylphosphine-treated IrCl.sub.3.
- 12. The process of claim 4 wherein said (b) organometal compound is methylaluminum sesquichloride, methylaluminum dichloride, dimethylaluminum fluoride, ethylaluminum dichloride, aluminum trichloride, ethylaluminum sesquichloride, diethylaluminum chloride, di(3-ethoxypropyl)aluminum bromide, di(methoxymethyl)aluminum bromide, n-pentylaluminum dichloride, aluminum tribromide, di-(2-ethylhexyl)aluminum bromide, phenylaluminum dichloride, benzylaluminum diiodide, di(4,4,4-trifluorobutyl)aluminum chloride, dieicosylaluminum bromide, phenyllithium, benzylrubidium, methylsodium, t-butylpotassium, lithium hydride, anthrylcesium, ethylberyllium hydride, methylcadmium chloride, diethylzinc, diethyl magnesium, dicyclohexylmercury, methylgallium dibromide, dimethylbarium, triethylindium, triisopropylthallium, dimethylcalcium, dimethylmagnesium, dimethylstrontium, hexylzinc iodide, lithium aluminum hydride, or lithium borohydride.
- 13. A process for decreasing the molecular weight of a polymer capable of having said molecular weight thereof decreased, said polymer characterized by an initial weight-average molecular weight of about 1,000 to 10,000,000, a substantially carbon backbone, and internal carbon-carbon unsaturation in said polymer backbone,
- said process comprising contacting said polymer with a lower molecular weight olefin in the presence of a homogeneous olefin disproportionation catalyst under conditions of temperature, pressure, and contact time sufficient to decrease the molecular weight of said polymer,
- wherein said lower molecular weight olefin is a nontertiary nonconjugated acyclic mono- or polyene of 2 to 30 carbon atoms per molecule, and
- said homogeneous olefin disproportionation catalyst comprises (a) a nitrosyl-ligand-containing transition metal compound and (b) a reducing agent,
- wherein said (a) nitrosyl-ligand-containing transition metal compound is represented by the formula [(L).sub.9 (l'.sub.b M.sub.c Z.sub.d ].sub.x wherein each of (L) and (L') are ligands; M is a transition metal of Group IB, IIIB, IVB, VB, VIB, VIIB, or the iron or cobalt subgroups of Group VIII; Z is halide or CN, SCN, OCN, or SnCl.sub.3 ; a and d each represent a whole number 2--] such that at 0 to 6, b represents a whole number of 1 or 2, c represents a whole number of 1 to 4; x is a number indicative of the polymeric state of the compound; the number of L, L' and Z groups present is not greater than the number required for the metal to achieve the closed shell electronic configuration of the next higher atomic number inert gas; (L) ligands are organic, O, S or CO; (L') ligands are NO or [.pi.--(CHR.sup.4 --CR.sup.4 --CH.sub.2 ')] such that least one L' is NO; wherein said [(L).sub.a (L').sub.b M.sub.c Z.sub. ].sub.x represents a product obtained by combining at least one transition metal compound with at least one ligand-forming material employing a molar ratio of said transition metal compound to ligand-forming material of about 1.6:1 to 20:1, and
- wherein said (b) reducing agent comprises
- 1. R.sub.e AlX.sub.f ;
- 2. a mixture of the compounds of (1);
- 3. a mixture of one or more of AlX.sub.3 or R.sub.e AlX.sub.f compounds with one or more compounds having the formula R.sub.g.sup.1 M.sup.1 X.sub.h ;
- 4. an R.sub.g M.sup.1 Y.sub.h compound;
- 5. an AlX.sub.3 compound; or
- 6. M.sup.2 M.sup.1 H.sub.j compound
- wherein each R is an aromatic or saturated aliphatic hydrocarbon radical having up to 20 carbon atoms including alkoxy and halo derivatives thereof, preferably an alkyl radical having up to 10 carbon atoms; each R.sup.1 is hydrogen or R; each X is a halogen; Y is halogen or hydrogen; each M.sup.1 and M.sup.2 is a metal of Group IA, IIA, IIB or IIIA; e is 1, 2 or 3, f is 0, 1 or 2, the sum of e and f being 3; g is 1, 2 or 3, h is 0, 1 or 2, the sum of g and h being equal to the valence of M.sup.1 ; j is an integer such that b is equal to the sum of the valences of M.sup.1 and M.sup.2.
- 14. A process for decreasing the molecular weight of a polymer capable of having said molecular weight thereof decreased, said polymer characterized by an initial weight-average molecular weight of about 1,000 to 10,000,000, a substantially carbon backbone, and internal carbon-carbon unsaturation in said polymer backbone,
- said process comprising contacting said polymer with a lower molecular weight olefin in the presence of a homogeneous olefin disproportionation catalyst under conditions of temperature, pressure, and contact time sufficient to decrease the molecular weight of said polymer,
- wherein said lower molecular weight olefin is a nontertiary nonconjugated acyclic mono- or polyene of 2 to 30 carbon atoms per molecule, and
- said homogeneous olefin disproportionation catalyst comprises (a) a nitrosyl-ligand-containing transition metal compound and (b) a reducing agent,
- wherein said (a) nitrosyl-ligand-containing transition metal compound is represented by the formula [(L).sub.a (L').sub.b M.sub.c Z.sub.d ].sub.x wherein each of (L) and (L') are ligands; M is a transition metal of Group IB, IIIB, IVB, VB, VIB, VIIB, or the iron or cobalt subgroups of Group VIII; Z is halide or CN, SCN, OCN, or SnCl.sub.3 ; a and d each represent a whole number of 0 to 6, b represents a whole number of 1 or 2, c represents a whole number of 1 to 4; x is a number indicative of the polymeric state of the compound; the number of L, L' and Z groups present is not greater than the number required for the metal to achieve the closed shell electronic configuration of the next higher atomic number inert gas;
- (L) ligands are R.sub.3 Q, R.sub.3 QQ, R.sub.2 Q--QR.sub.QO, R.sub.2 NR.sup.1, O, S, CO, R.sub.2 N--R.sup.2 --NR.sub.2, R--S--R, R.sup.3 S, [.pi.--(CHR.sup.4 --CR.sup.4 --CH.sub.2) ], R.sup.5 (CN).sub.k, R.sup.5 O--, R.sup.5 (COO--).sub.k, RCOR.sup.6 (COO--).sub.k, [(RCO).sub.2 CH--], (R.sub.2 NCSS--), unsubstituted and R.sup.5 group-substituted pyridine, unsubstituted and R.sup.5 group-substituted bipyridine, or unsubstituted and R group-substituted cyclopentadienyl radicals; wherein R is an aromatic or saturated aliphatic radical, including radicals substituted with groups such as halo groups or alkoxy groups and the like, having up to QO, carbon atoms; R.sup.1 is hydrogen or an R radical; R.sup.2 is a divalent R radical; R.sup.3 is a divalent saturated aliphatic or ethylenically unsaturated aliphatic radical having from 4 to 10 carbon atoms; R.sup.4 is hydrogen or methyl radical; R.sup.5 is an aromatic, saturated aliphatic, or ethylenically unsaturated aliphatic radical having up to 30 carbon atoms; R.sup.6 is a divalent saturated aliphatic radical having from 1 to 10 carbon atoms; Q is phosphorus, arsenic, or antimony; and k is a whole number and is 1 or 2;
- (L') ligands are NO or [.pi.--(CHR.sup.4 --CR.sup.4 --CH.sub.2 --)] such that at least one L' is NO; wherein said [(L).sub.a (L').sub.b M.sub.c Z.sub.d ].sub.x represents a product obtained by combining at least one transition metal compound with at least one ligand-forming material employing a molar ratio of said transition metal compound to ligand-forming material of about 1.6:1 to 20:1, and
- wherein said (b) reducing agent comprises
- 1. R.sub.e AlX.sub.f ;
- 2. a mixture of the compounds of (1);
- 3. a mixture of one or more of AlX.sub.3 or R.sub.e AlX.sub.f compounds with one or more compounds having the formula R.sub.g.sup.1 M.sup.1 X.sub.h ;
- 4. an R.sub.g M.sup.1 Y.sub.h compound;
- 5. an AlX.sub.3 compound; or
- 6. M.sup.2 M.sup.1 H.sub.j compound
- wherein each R is an aromatic or saturated aliphatic hydrocarbon radical having up to 20 carbon atoms including alkoxy and halo derivatives thereof, preferably an alkyl radical having up to 10 carbon atoms; each R.sup.1 is hydrogen or R; each X is a halogen; Y is halogen or hydrogen; each M.sup.1 and M.sup.2 is a metal of Group IA, IIA, IIB or IIIA; e is 1, 2 or 3, f is 0, 1 or 2, the sum of e and f being 3; g is 1, 2 or 3, h is 0, 1 or 2, the sum of g and h being equal to the valence of M.sup.1 ; j is an integer such that b is equal to the sum of the valences of M.sup.1 and M.sup.2.
- 15. The process of claim 14 wherein said polymer is a homopolymer or copolymer of a conjugated diene, copolymer of a conjugated diene with a vinyl monomer, or polymer of a cyclic monoolefin.
- 16. The process of claim 14 wherein said contacting of said polymer is at a temperature of about 50.degree. to 250.degree. F., under a pressure of about 1 to 100 atmospheres.
- 17. The process of claim 16 wherein said polymer is prepared in solution in the presence of an organometallic catalyst system, said homogeneous disproportionation catalyst and said olefin are employed without inactivation of the polymerization catalyst by adding said disproportionation catalyst and said olefin to the polymerization reaction effluent.
- 18. The process according to claim 14 wherein said nitrosyl-ligand-containing transition metal compound is NO-treated molybdenum trichloride distearate or NO-treated molybdenum trichloride dioctanoate, and wherein said reducing agent is ethylaluminum sesquichloride.
- 19. The process of claim 18 wherein said polymer is polybutadiene, said olefin is 1-hexene or propylene.
- 20. The process of claim 14 wherein said olefin is ethylene, propylene, 1-butene, 2-butene, 1-pentene, 2-pentene, 1-hexene, 1,4-hexadiene, 2-heptene, 1-octene, 2,5-octadiene, 2-nonene, 1-dodecene, 2-tetradecene, 1-hexadecene, 3-methyl-1-butene, 1-phenyl-2-butene, 4-octene, 3-eicosene, 3-heptene, 3-hexene, 1,4-pentadiene, 1,4,7-dodecatriene, 2-methyl-4-octene, 4-vinylcyclohexene, 1,7-octadiene, 1,5-eicosadiene, 2-triacontene, 2,6-dodecadiene, 1,4,7,10,13-octadecapentaene, 8-cyclopentyl-4,5-dimethyl-1-decene, or 6,6-dimethyl-1,4-octadiene.
- 21. The process of claim 14 wherein said olefin is cyclobutene, cyclopentene, cycloheptene, cyclooctene, 5-n-propylcyclooctene, cyclodecene, cyclododecene, 3,3,5,5-tetramethylcyclononene, 3,4,5,6,7-pentaethylcyclodecene, 1,5-cyclooctadiene, 1,5,9-cyclododecatriene, 1,4,7,10-cyclododecatetraene, or 6-methyl-6-ethylcyclooctadiene-1,4.
- 22. A process for decreasing the inherent viscosity of a carbon backbone polymer, characterized by an initial molecular weight-average molecular weight of about 1,000 to 10,000,000 and internal carbon-carbon unsaturation in the polymer backbone comprising contacting said polymer with a lower molecular weight olefin in the presence of an olefin disproportionation catalyst under conditions of temperature, pressure, and contact time sufficient to effectuate said decrease in inherent viscosity of said polymer,
- said lower molecular weight olefin is a nontertiary nonconjugated acyclic mono- or polyene containing 2 to 30 carbon atoms per molecule,
- said olefin disproportionation catalyst comprises that formed on admixture of (a) a transition metal compound and (b) an adjuvant,
- wherein said (a) transition metal compound is represented by the formula [(L).sub.a (NO).sub.b M.sub.c Z.sub.d ].sub.x wherein each (L) represents a ligand; M is a transition metal of Group IB, IIIB, IVB, VB, VIB, VIIB, or the iron and cobalt subgroups of Group VIII: Z is halide or a radical which is CN, SCN, OCN, or SnCl.sub.3 ; a and d are numbers 0 to 6, b is 1 or 2, c is 1 to 4; x is a number indicative of the polymeric state of the compound; wherein said [(L).sub.a (NO).sub.b M.sub.c Z.sub.d ].sub.x represents a product obtained by combining at least one transition metal compound with at least one ligand-forming material, and wherein the number of (L), (NO), and Z groups present in the component (a) compound is not greater than the number required for the metal to achieve the closed shell electronic configuration of the next higher atomic number inert gas; (L) ligands are R.sub.3 Q, R.sub.3 QO, R.sub.2 Q--QR.sub.2, R.sub.2 NR.sup.1, O, S, CO, R.sub.2 N--R.sup.2 --NR.sub.2, R-S-R, R.sup. 3 S, [.pi.--(CHR.sup.4 --CR.sup.4 --CH.sub.2 ], R.sup.5 (CN).sub.k, R.sup.R.sup.5 O--, R.sup.5 (COO--).sub. k, RCOR.sup.6 (COO--.sub.k, [(RCO).sub.2 CH--], (R.sub.2 NCSS --), unsubstituted and R.sup.5 group-substituted pyridine, unsubstituted and R.sup.5 group-substituted bipyridine, or unsubstituted and R group-substituted cyclopentadienyl radicals; wherein R is an aromatic or saturated aliphatic radical, including halo and alkoxy substituted derivatives thereof, having up to 20 carbon atoms; R.sup.1 is hydrogen or an R radical; R.sup.2 is a divalent R radical; R.sup.3 is a divalent saturated aliphatic or ethylenically unsaturated aliphatic radical having from 4 to 10 carbon atoms; R.sup.5 is an aromatic, saturated aliphatic, or ethylenically unsaturated aliphatic radical having up to 30 carbon atoms; R.sup.6 is a divalent saturated aliphatic radical having from 1 to 10 carbon atoms; Q is phosphorus, arsenic, or antimony; and k is 1 to 2; and
- wherein said (b) adjuvant can be represented by the formula
- 1. R.sub.e AlX.sub.f ;
- 2. a mixture of the compounds of (1);
- 3. a mixture of one or more of AlX.sub.3 or R.sub.e AlX.sub.f compounds with one or more compounds having the formula R.sub.g.sup.1 M.sup.1 X.sub.n ;
- 4. an R.sub.3 M.sup.1 Y compound;
- 5. an AlX.sub.3 compound; or
- 6. M.sup.2 M.sup.1 H.sub.j compound
- wherein each R is an aromatic or saturated aliphatic hydrocarbon radical having up to 20 carbon atoms including alkoxy and halo derivatives thereof, preferably an alkyl radical having up to 10 carbon atoms; each R.sup.1 is hydrogen or R; each X is a halogen; Y is halogen or hydrogen; each M.sup.1 and M.sup.2 is a metal of Group IA, IIA, IIB or IIIA; e is 1, 2 or 3; f is 0, 1 or 2, the sum of e and f being 3; g is 1, 2 or 3, h is 0, 1 or 2, the sum of g and h being equal to the valence of M.sup.1, j is an integer such that b is equal to the sum of the valences of M.sup.1 and M.sup.2 ;
- wherein the ratio of said (b):(a) is about 1.6:1 to 20:1.
- 23. The process of claim 21 wherein said contacting temperature is within a range of about 50.degree. to 250.degree. F, and said contacting pressure in the range of about 1 to 100 atmospheres.
- 24. The process of claim 21 wherein said catalyst further incorporates a support selected from the group consisting of silica, alumina, silica-alumina, titania, boria, zeolites, ion exchange resins, solid polymers containing functional groups such as those prepared by the polymerization of 4-vinylpyridine, or vinyl dimethylphosphine and wherein said catalyst represents about 0.1 to 30 weight percent of that of catalyst and support.
- 25. The process of claim 23 wherein said polymer has an initial weight-average molecular weight of about 10,000 to about 500,000 and an average of about 0.25 to about 1 internal double bond per monomer unit incorporated into the polymer.
- 26. A process according to claim 24 wherein said polymer is a polymer of a conjugated diene, a copolymer of two or more conjugated dienes or a copolymer of a conjugated diene and a vinyl monomer wherein the conjugated diene has 4 to 12 carbon atoms per molecule.
- 27. The process of claim 23 wherein said nitrosyl ligand-containing homogeneous catalyst is formed on admixture of (a) molybdenum trichloride dioctanoate with NO or molybdenum trichloride distearate with NO and (b) ethylaluminum sesquichloride, said lower molecular weight olefin is 1-hexene or propylene, and said polymer is a homopolymer of 1,3-butadiene or isoprene.
- 28. A process for decreasing the inherent viscosity of a carbon-backbone polymer which comprises contacting said polymer with a lower molecular weight olefin in the presence of an olefin disproportionation catalyst under conditions of temperature, pressure, and contact time sufficient to effectuate said increase in inherent viscosity of said polymer,
- wherein said carbon backbone polymer is characterized by an initial molecular weight-average molecular weight of about 1,000 to 10 million and internal carbon-carbon unsaturation in the polymer backbone,
- said lower molecular weight olefin is a nontertiary nonconjugated acyclic mono- or polyene containing 2 to 30 carbon atoms per molecule,
- said olefin disproportionation catalyst is a homogeneous catalyst comprising (a) NO-treated molybdenium trichloride distearate or NO-treated molybdenum trichloride dioctanoate, and (b) ethylaluminum sesquichloride, wherein the ratio of said (b) to said (a) is sufficient to enable said homogeneous catalyst to effectuate said decrease in said inherent viscosity of said polymer.
- 29. The process according to claim 29 wherein said ratio of said (b):(a) is about 1.6:1 to 20:1.
- 30. The process of claim 29 wherein said contacting temperature is about 50.degree. to 250.degree. F, and said contacting pressure is about 1 to 100 atmospheres.
- 31. The process of claim 30 wherein said polymer is polyisoprene or polybutadiene, and said olefin is propylene or 1-hexene.
- 32. A process for decreasing the weight-average molecular weight of a polymer capable of having said molecular weight thereof decreased, said polymer characterized by a carbon backbone, internal carbon-carbon unsaturation in the polymer backbone, and an initial weight-average molecular weight of about 1,000 to about 10,000,000 as determined by light scattering,
- said process comprising contacting said polymer with a lower molecular weight olefin in the presence of an olefin disproportionation nitrosyl-ligand-containing homogeneous catalyst under conditions of temperature, pressure, and contact time sufficient to decrease the molecular weight thereof,
- wherein said lower molecular weight olefin is a nontertiary nonconjugated acyclic mono- or polyene having 2 to 30 carbon atoms per molecule,
- wherein said nitrosyl ligand-containing homogeneous catalyst comprises:
- a. a transition metal compound represented by the formula [(L).sub.a (L').sub.b M.sub.c Z.sub. d ].sub.x wherein each (L) and (L') are ligands; M is a transition metal of Group IB, IIIB, IVB, VB, VIB, VIIB, or the iron and cobalt subgroups of Group VIII; Z is halide or a radical which is CN, SCN, OCN, or SnCl.sub.3 ; a and d are numbers 0-6, b is 1 or 2, c is 1-4; x is a number indicative of the polymeric state of the compound, which is 1 to 3 or higher; said [(L).sub.a (L').sub.b M.sub.c z.sub.d ].sub.x represents a product obtained by combining at least one transition metal compound with at least one ligand-forming material; and wherein the number of (L), (L'), and Z groups present in the component (a) compound is not greater than the number required for the metal to achieve the closed shell electronic configuration of the next higher atomic number inert gas; (L) ligands are R.sub.3 Q, R.sub.3 QO, R.sub.2 Q--QR.sub.2, R.sub.2 NR.sup.1, O, S, CO, R.sub.2 N--R.sup.2 --NR.sub.2, R-S-R, R.sup.3 S, [.pi.--(CHR.sup.4 --CR.sup.4 --CH.sub.2 --)], R.sup.5 (CN).sub.k, R.sup.5 O--, R.sup.5 (COO--).sub.k, RCOR.sup.6 (COO--).sub.k, [(RCO).sub.2 CH--], (R.sub.2 NCSS--), unsubstituted and R.sup.5 group-substituted pyridine, unsubstituted and R.sup.5 group-substituted bipyridine, or unsubstituted and R group-substituted cyclopentadienyl radicals; (L') ligands are NO or [.pi.--(CHR.sup.4 --CR.sup.4 --CH.sub.2 --)] such that at least one L' is NO; wherein R is an aromatic or saturated aliphatic radical, including halo and alkoxy substituted derivatives thereof, having up to 20 carbon atoms; R.sup.1 is hydrogen or an R radical; R.sup.2 is a divalent R radical; R.sup.3 is a divalent saturated aliphatic or ethylenically unsaturated aliphatic radical having from 4 to 10 carbon atoms; R.sup.4 is hydrogen or methyl radical; R.sup.5 is an aromatic, saturated aliphatic, or ethylenically unsaturated aliphatic radical having up to 30 carbon atoms; R.sup.6 is a divalent saturated aliphatic radical having from 1 to 10 carbon atoms; Q is phosphorus, arsenic, or antimony; and k is 1 to 2; and
- b. an adjuvant represented by the formula
- 1. R.sub.e AlX.sub.f ;
- 2. a mixture of the compounds of (1);
- 3. a mixture of one or more of AlX.sub.3 or R.sub.e AlX compounds with one or more compounds having the formula R.sub.g.sup.1 M.sup.1 X.sub.h ;
- 4. an R.sub.g M.sup.1 Y.sub.h compound;
- 5. an AlX.sub.3 compound; or
- 6. M.sup.2 M.sup.1 H.sub.j compound
- wherein each R is an aromatic or saturated aliphatic hydrocarbon radical having up to 20 carbon atoms including alkoxy and halo derivatives thereof, preferably an alkyl radical having up to 10 carbon atoms; each R.sup.1 is hydrogen or R; each X is a halogen; Y is halogen or hydrogen; each M.sup.1 and M.sup.2 is a metal of Group IA, IIA, IIB or IIIA; e is 1, 2 or 3; f is 0, 1 or 2, the sum of e and f being 3; g is 1, 2 or 3, h is 0, 1 or 2, the sum of g and h being equal to the valence of M.sup.1, j is an integer such that b is equal to the sum of the valences of M.sup.1 and M.sup.2 and
- wherein the ratio of said (b) adjuvant to said (a) transition metal compound is effective to decrease the molecular weight of said polymer.
Parent Case Info
This is a divisional application of Ser. No. 380,015, filed July 17, 1973, now U.S. Pat. No. 3,912,703, issued Oct. 14, 1975, which was a continuation of Ser. No. 72,242, filed Sept. 14, 1970, now abandoned.
US Referenced Citations (4)
Divisions (1)
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380015 |
Jul 1973 |
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Continuations (1)
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72242 |
Sep 1970 |
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