Manganese oxide based catalyst and catalyst device for the removal of formaldehyde and volatile organic compounds
Disclosed herein are a catalyst composition, catalyst devices, and methods for removing formaldehyde, volatile organic compounds, and other pollutants from an air flow stream. The catalyst composition including manganese oxide, optionally one or more of alkali metals, alkaline earth metals, zinc, iron, binder, an inorganic oxide, or carbon.
1. A catalyst composition comprising:
manganese oxide;
bentonite from about 40 wt % to about 50 wt % based on a total weight of the catalyst composition; and
a polymer binder comprising poly(tetrafluoroethylene), acrylic/styrene acrylic copolymer latex, or a combination thereof,
wherein the catalyst composition is disposed on a substrate selected from a polymer substrate, a foam substrate, a paper substrate, a nonwoven filter, a paper filter, a fibrous filter, or a combination thereof, and
wherein the catalyst composition is adapted to remove one or more of formaldehyde, ozone, carbon monoxide, nitrogen oxide, amines, sulfur compounds, thiols, chlorinated hydrocarbons, or volatile organic compounds from an unpurified air supply, and wherein a BJH pore volume of the catalyst composition ranges from about 0.3 mL/g to about 1.5 mL/g.
2. The catalyst composition of claim 1 , wherein the polymer binder further comprises a polymer selected from a group consisting of polyethylene, polypropylene, polyolefin copolymers, polyisoprene, polybutadiene, polybutadiene copolymers, chlorinated rubber, nitrile rubber, polychloroprene, ethylene-propylene-diene elastomers, polystyrene, polyacrylate, polymethacrylate, polyacrylonitrile, poly(vinyl esters), poly(vinyl halides), polyamides, cellulosic polymers, polyimides, acrylics, vinyl acrylics, styrene acrylics, polyvinyl alcohols, thermoplastic polyesters, thermosetting polyesters, poly(phenylene oxide), poly(phenylene sulfide), polyvinylidene fluoride, poly(vinlyfluoride), ethylene chlorotrifluoroethylene copolymer, polyamide, phenolic resins, polyurethane, silicone polymers, and combinations thereof.
3. The catalyst composition of claim 1 , wherein the manganese oxide comprises cryptomelane, birnessite, vernadite, manganese oxide polymorph I, poorly crystalline cryptomelane, amorphous manganese oxide, polymorphs thereof, or mixtures thereof.
4. The catalyst composition of claim 1 , wherein a chloride content of the catalyst composition is less than 1 wt % based on a total weight of the catalyst composition, or wherein a sulfate content of the catalyst composition is less than 1 wt % based on a total weight of the catalyst composition.
5. The catalyst composition of claim 1 , further comprising an inorganic oxide comprising one or more of ceria, zirconia, silica, titania, alumina, iron, lanthanum, praseodymium, samarium.
6. An air filter comprising the catalyst composition of claim 1 , wherein the air filter is adapted for use in a portable air purifier, a heating, ventilation, and air conditioning (HVAC) system, a motor vehicle, a railed vehicle, a watercraft, an aircraft, or a spacecraft.
7. A catalyst device adapted to remove one or more of formaldehyde, ozone, carbon monoxide, nitrogen oxide, amines, sulfur compounds, thiols, chlorinated hydrocarbons, or volatile organic compounds from an unpurified air supply, the catalyst device comprising:
a housing;
a substrate disposed within the housing, wherein the substrate is selected from a polymer substrate, a foam substrate, a paper substrate, a nonwoven filter, a paper filter, a fibrous filter, or a combination thereof; and
a catalyst composition disposed in the housing, wherein the catalyst composition comprises manganese oxide, bentonite from about 40 wt % to about 50 wt % based on a total weight of the catalyst composition, and a polymer binder comprising poly(tetrafluoroethylene), acrylic/styrene acrylic copolymer latex, or a combination thereof, wherein a BJH pore volume of the catalyst composition ranges from about 0.3 mL/g to about 1.5 mL/g.
8. The catalyst device of claim 7 , wherein the polymer binder further comprises a polymer selected from a group consisting of polyethylene, polypropylene, polyolefin copolymers, polyisoprene, polybutadiene, polybutadiene copolymers, chlorinated rubber, nitrile rubber, polychloroprene, ethylene-propylene-diene elastomers, polystyrene, polyacrylate, polymethacrylate, polyacrylonitrile, poly(vinyl esters), poly(vinyl halides), polyamides, cellulosic polymers, polyimides, acrylics, vinyl acrylics, styrene acrylics, polyvinyl alcohols, thermoplastic polyesters, thermosetting polyesters, poly(phenylene oxide), poly(phenylene sulfide), polyvinylidene fluoride, poly(vinlyfluoride), ethylene chlorotrifluoroethylene copolymer, polyamide, phenolic resins, polyurethane, silicone polymers, and combinations thereof.
9. The catalyst device of claim 7 , wherein the manganese oxide comprises cryptomelane, birnessite, vernadite, manganese oxide polymorph I, poorly crystalline cryptomelane, amorphous manganese oxide, polymorphs thereof, or mixtures thereof.
10. The catalyst device of claim 7 , wherein a chloride content of the catalyst composition is less than 1 wt % based on a total weight of the catalyst composition, or wherein a sulfate content of the catalyst composition is less than 1 wt % based on a total weight of the catalyst composition.
11. The catalyst device of claim 7 , further comprising an inorganic oxide comprising one or more of ceria, zirconia, silica, titania, alumina, iron, lanthanum, praseodymium, samarium.
12. The catalyst device of claim 7 , wherein the catalyst device is incorporated into an air filter of a device selected from a group consisting of: a portable air purifier, a heating, ventilation, and air conditioning (HVAC) system, a motor vehicle, a railed vehicle, a watercraft, an aircraft, and a spacecraft.
13. A method of preparing a catalyst coating, the method comprising:
mixing manganese oxide, bentonite, and a polymer binder in water to form a slurry, the polymer binder comprising poly(tetrafluoroethylene), acrylic/styrene acrylic copolymer latex, or a combination thereof; and
depositing the slurry onto a substrate to form the catalyst coating on the substrate, wherein the substrate selected from a polymer substrate, a foam substrate, a paper substrate, a nonwoven filter, a paper filter, a fibrous filter, or a combination thereof, wherein a BJH pore volume of the catalyst coating ranges from about 0.3 mL/g to about 1.5 mL/g, wherein the bentonite is present from about 40 wt % to about 50 wt % based on a total weight of the catalyst coating.
14. The method of claim 13 , wherein the polymer binder further comprises a polymer selected from a group consisting of polyethylene, polypropylene, polyolefin copolymers, polyisoprene, polybutadiene, polybutadiene copolymers, chlorinated rubber, nitrile rubber, polychloroprene, ethylene-propylene-diene elastomers, polystyrene, polyacrylate, polymethacrylate, polyacrylonitrile, poly(vinyl esters), poly(vinyl halides), polyamides, cellulosic polymers, polyimides, acrylics, vinyl acrylics, styrene acrylics, polyvinyl alcohols, thermoplastic polyesters, thermosetting polyesters, poly(phenylene oxide), poly(phenylene sulfide), polyvinylidene fluoride, poly(vinlyfluoride), ethylene chlorotrifluoroethylene copolymer, polyamide, phenolic resins, polyurethane, silicone polymers, and combinations thereof.
15. The method of claim 13 , wherein the manganese oxide comprises cryptomelane, birnessite, vernadite, manganese oxide polymorph I, poorly crystalline cryptomelane, amorphous manganese oxide, polymorphs thereof, or mixtures thereof.
16. A catalyst composition comprising:
manganese oxide comprising cryptomelane;
bentonite from about 40 wt % to about 50 wt % based on a total weight of the catalyst composition; and
a polymer binder, wherein the catalyst composition is adapted to remove one or more of formaldehyde, ozone, carbon monoxide, nitrogen oxide, amines, sulfur compounds, thiols, chlorinated hydrocarbons, or volatile organic compounds from an unpurified air supply, and wherein a BJH pore volume of the catalyst composition ranges from about 0.3 mL/g to about 1.5 mL/g,
wherein the catalyst composition is disposed on a substrate selected from a polymer substrate, a foam substrate, a paper substrate, a nonwoven filter, a paper filter, a fibrous filter, or a combination thereof.