Claims
- 1. A catalytic converter for treating exhaust gas from an internal combustion engine, comprising: an exhaust gas processing vessel of suitable size and shape, adapted to receive exhaust directly from the engine; and an effective amount, contained in said vessel, of a catalyst coating uniformly dispersed on a substrate adapted to fit within said vessel, said coating comprising:
at least one type of molecular sieve crystals having diameters within a range of 0.5 μm. to 50 μm., said crystals having a catalytically effective amount of noble metal dispersed thereon in a manner such that at least 90% of the noble metal on said crystals is located within 500 Å of the exterior surface of said crystals, and alumina particles between about 1 μm. and about 15 μm. in diameter having a catalytically effective amount of noble metal dispersed thereon.
- 2. The catalytic converter of claim 1 wherein said crystals and alumina particles are evenly dispersed throughout said coating and said coating is between 1 μm. and 200 μm. thick.
- 3. The catalytic converter of claim 1 wherein the substrate is a monolith.
- 4. The catalytic converter of claim 1 wherein the noble metal is selected from the group consisting of Pt and Pt alloyed with Rh, Ir, Pd, Ag, or Au.
- 5. The catalytic converter of claim 1 wherein only one type of molecular sieve crystals is employed.
- 6. The catalytic converter of claim 1 wherein said coating comprises:
between about 10 wt. % and about 90 wt. % of said molecular sieve crystals; between about 10 wt. % and about 90 wt. % of said alumina particles; and wherein the amount of said noble metal on said molecular sieve crystals is between about 10%and about 80%of the amount of said metal in said coating.
- 7. A catalyst for treating exhaust gas from internal combustion engines, comprising a catalyst coating uniformly dispersed on a substrate, said coating comprising:
at least one type of molecular sieve crystals having diameters within a range of 0.5 μm. to 50 μm., said crystals having a catalytically effective amount of noble metal dispersed thereon in a manner such that at least 90%of the noble metal is located within 500 Å of the exterior surface of said crystals, and alumina particles between about 1 μm. and about 15 μm. in diameter having a catalytically effective amount of noble metal dispersed thereon.
- 8. A process for making a catalyst containing alumina particles impregnated with noble metal and at least one type of molecular sieve crystals having noble metal predominantly on the exterior surface of said molecular sieve crystals, comprising:
a) preparing an aqueous suspension of at least one type of molecular sieve crystals and a noble metal reagent, said reagent being of the type that, when suspended in water, will chemisorb onto the exterior 500 Å of said crystals by forming a covalent bond between said reagent and said crystals, said crystals having been subjected to pre-treatment to establish an alumina film on their exterior surfaces; b) adding sufficient base to the suspension to raise its pH to above about 7, said base being of a type that will decompose to yield gaseous products when its temperature is raised above about 150° C.; c) stirring for at least one hour; d) optionally adding an aqueous suspension of at least one type of molecular sieve crystals different from the type employed in step (a) to the product of step (c); e) stirring the product of step (d) for at least one hour; f) milling alumina particles, thereby reducing said particles' mean diameter to between about 1 μm. and about 15 μm.; g) preparing an aqueous suspension of said alumina particles and a noble metal reagent; h) stirring the product of step (g) for at least one hour and then mixing it with the product of step (e); i) coating a substrate with the product of step (h) thereby preparing a coated substrate; and j) drying and calcining said coated substrate.
- 9. A process for making a catalyst containing alumina particles impregnated with noble metal and at least one type of molecular sieve crystals having noble metal predominantly on the exterior surface of said molecular sieve crystals, comprising:
a) preparing an aqueous suspension of at least one type of molecular sieve crystals, said suspension having a pH above 10, and a noble metal reagent, said reagent being of the type that, when suspended in water, will chemisorb onto the exterior 500 Å of said crystals by forming an ionic bond between said reagent and said crystals; b) stirring for at least one hour; c) optionally adding an aqueous suspension of at least one type of molecular sieve crystals different from the type employed in step (a) to the product of step (b); d) stirring the product of step (c) for at least one hour; e) milling alumina particles, thereby reducing said particles' mean diameter to between about 1 μm. and about 15 μm.; f) preparing an aqueous suspension of said alumina particles and a noble metal reagent; g) stirring the product of step (f) for at least one hour and then mixing it with the product of step (d); h) coating a substrate with the product of step (g) thereby preparing a coated substrate; and i) drying and calcining said coated substrate.
- 10. A process for making a catalyst containing alumina particles impregnated with noble metal and at least one type of molecular sieve crystals having noble metal predominantly on the exterior surface of said molecular sieve crystals, comprising:
a) preparing an aqueous suspension of at least one type of molecular sieve crystals and an amount of a hydrophilic polymer having a density of between about 0.8 and about 1.0 gm/cm3, said amount of hydrophilic polymer being sufficient to fill the pores of said molecular sieve crystals; b) adding a noble metal reagent to the product of step (a); c) adding sufficient base to the suspension to raise its pH to above about 7, said base being of a type that will decompose to yield gaseous products when its temperature is raised above about 150° C.; d) stirring for at least one hour; e) optionally adding an aqueous suspension of at least one type of molecular sieve crystals different from the type employed in step (a) to the product of step (d); f) stirring the product of step (e) for at least one hour; g) milling alumina particles, thereby reducing said particles' mean diameter to between about 1 μm. and about 15 μm.; h) preparing an aqueous suspension of said alumina particles and a noble metal reagent; i) stirring the product of step (h) for at least one hour and then mixing it with the product of step (f); j) coating a substrate with the product of step (i) thereby preparing a coated substrate; and k) drying and calcining said coated substrate.
- 11. A process for making a catalyst containing alumina particles impregnated with noble metal and at least one type of molecular sieve crystals having noble metal predominantly on the exterior surface of said molecular sieve crystals, comprising:
a) preparing an aqueous suspension of at least one type of molecular sieve crystals and colloidal particles of noble metal, the size of said noble metal particles being at least twice the largest crystallographically-defined pore diameter of the molecular sieve crystals; b) adjusting the suspension pH to between about 7 and about 8.; c) stirring for at least one hour; d) optionally adding an aqueous suspension of at least one type of molecular sieve crystals different from the type employed in step (a) to the product of step (c); e) stirring the product of step (d) for at least one hour; f) milling alumina particles, thereby reducing said particles' mean diameter to between about 1 μm. and about 15 μm.; g) preparing an aqueous suspension of said alumina particles and a noble metal reagent; h) stirring the product of step (g) for at least one hour and then mixing it with the product of step (e); i) coating a substrate with the product of step (h) thereby preparing a coated substrate; and j) drying and calcining said coated substrate.
- 12. A method for treating exhaust gas from a motor vehicle diesel engine to reduce the amounts of hydrocarbon, carbon monoxide and NOx emitted to the atmosphere which comprises passing the exhaust gas through the catalytic converter of claim 1.
- 13. A method for treating exhaust gas from a motor vehicle diesel engine to reduce the amounts of hydrocarbon, carbon monoxide and NOx emitted to the atmosphere comprising passing the exhaust gas through a converter containing the catalyst made by the process of claim 8, 9, 10, or 11.
Parent Case Info
[0001] This application is a continuation-in-part of application Ser. No. 09/012,095, filed Jan. 22, 1998, pending, which is a continuation-in-part of application Ser. No. 08/788,214, filed Jan. 27, 1997, pending.