Patent · US5603983A · A · US
Process for the production of conductive and magnetic transitin metal oxide coated three dimensional substrates
- (11) Publication number
- US5603983A
- (21) Application number
- 08/400,283
- (22) Filing date
- 1995-03-02
- (30) Priority date
- 1986-03-24
- (43) Publication date
- 1997-02-18
- (45) Date of grant
- 1997-02-18
- (51) IPC
- B05D 5/12; B32B 5/16
- (52) CPC
- C04B Lime, magnesia; slag; cements; compositions thereof, e.g. mortars, concrete or like building materials; artificial stone {}; ceramics; refractories; treatment of natural stone: 41/5036, 2235/5224, 2235/5232, 2235/5252, 35/62847, 35/62892, 35/62897, 41/009, 41/87
- Y10T Technical subjects covered by former us classification: 428/2933, 428/294, 428/2956, 428/2958, 428/2991
- (73) Assignee
- Ensci Inc
- (72) Inventors
- Thomas J. Clough; Victor L. Grosvenor; Naum Pinsky
- (54) Title
- Process for the production of conductive and magnetic transitin metal oxide coated three dimensional substrates
- (57) Abstract
Processes for coating substrates, in particular substrates including shielded surfaces, with transition metal oxide-containing coatings are disclosed. Such processes comprise contacting a substrate with a transition metal oxide precursor, preferably maintaining the precursor coated substrate at conditions to equilibrate the coating, and then oxidizing the precursor to form a substrate containing transition metal oxide. Also disclosed are substrates coated with transition metal oxide-containing coatings for use in various applications.
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Claims (20)
- A process for producing at least one or both of an electrically conductive or magnetic coated inorganic three dimensional substrate comprising: Contacting an inorganic three dimensional substrate which includes external surfaces and shielded surfaces which are at least partially shielded by other portions of said substrate with a composition comprising a transition metal oxide forming compound having a melting point of from about 100° C. to about 650° C. and an atomic number of from 21-to-31, 39-to-49 and 71-to-81 inclusive at conditions effective to form a transition metal oxide forming compound containing coating on at least a portion of said three dimensional substrate; including at least a portion of shielded surfaces of said substrate; forming a liquidous coating from said transition metal oxide forming compound on at least a portion of three dimensions of said substrate including the shielded surfaces of said substrate under substantially non deleterious oxidizing and/or hydrolyzing conditions effective to do at least one of the following: (1) coat a larger portion of said substrate with the said transition metal oxide forming compound coating; (2) distribute said transition metal oxide forming compound coating over said substrate; and (3) make transition metal oxide forming compound coating more uniform in thickness, contacting said substrate having said liquidous transition metal oxide forming compound coating thereon with an oxidizing agent at conditions effective to convert the transition metal oxide forming compound to a transition metal oxide and form a transition metal oxide coated substrate including the shielded surfaces and recovering at least one or both of an electrically conductive or magnetic transition metal oxide coated three dimensional substrate.
- The process of claim 1 wherein the transition metal is selected from the group consisting of chromium, tungsten, indium, molybdenum, titanium and mixtures thereof.
- The process of claim 2 wherein said substrate is in a form selected form the group consisting spheres extrudates, flakes, fibers, fiber rovings, chopped fibers, fiber mats, porous substrates, particles and multi-channel monoliths.
- The process of claim 1 wherein said transition metal oxide forming compound is selected from the group consisting of a transition metal transition metal organic salt, a transition metal organic complex and mixtures thereof.
- The process of claim 1 wherein said transition metal oxide forming compound is a transition metal chloride.
- The process of claim 5 wherein the substrate is an inorganic oxide and is substantially nonelectrically conductive, and the thickness of the coating is in the range of from about 0.1 micron to about 10 microns.
- The process of claim 5 wherein said substrate is in a form selected from the group consisting of spheres, extrudates, flakes, fibers, porous substrates, particles and multi-channel monoliths.
- The process of claim 1 wherein said substrate is contacted with an additional coating property modifying interacting component in any one or more of said process steps and forming a coated substrate having one or more interacting components on at least a portion of said substrate including at least a portion of the shielded surfaces of said substrate.
- The process of claim 8 wherein said substrate is in a form selected from the group consisting of spheres, extrudates, flakes, fibers, fiber rovings, chopped fibers, fiber mats, porous substrates, particles and multi-channel monoliths.
- The process of claim 1 wherein said substrates is in a form selected from the group consisting of spheres, extrudates, flakes, fibers, fiber rovings, chopped fibers, fiber mats, porous substrates, particles and multi-channel monoliths.
- A process for coating surfaces of an inorganic three dimensional substrate with at least one or both of an electrically conductive or magnetic transition metal oxide coating which comprises: contacting an inorganic three dimensional substrate with a composition comprising a transition metal oxide precursor powder having an atomic number of from 21-to-31, 39-to-49 and 71-to-81 inclusive at conditions effective to form a coating containing transition metal oxide precursor on at least a portion of the substrate; forming a liquidous coating from said transition metal oxide precursor on at least a portion of the three dimensions of said substrate including the shielded surfaces of said substrate and at conditions effective to do at least one of the following: (1) coat a larger portion of said substrate with said coating; (2) distribute said coating over said substrate; and (3) make said coating more uniform in thickness and contacting said liquidous coated substrate with an oxidizing agent at conditions effective to convert the coating to a transition metal oxide and form a transition metal oxide on at least a portion of said three dimensions of said substrate including the shielded surface and recovering at least one or both of an electrically conductive or magnetic transition metal oxide coated three dimensional substrate.
- The process of claim 11 wherein the transition metal is selected from the group consisting of chromium, tungsten, indium, molybdenum, titanium and mixtures thereof.
- The process of claim 11 wherein said transition metal oxide forming compound is selected from the group consisting of a transition metal chloride, a transition metal organic salt, a transition metal organic complex and mixtures thereof.
- The process of claim 11 wherein said transition metal oxide forming compound is a transition metal chloride.
- The process of claim 11 wherein said substrate is contacted with an additional coating property modifying interacting component in any one more of said process steps and forming a coated substrate having one or more interacting components on at least a portion of said substrate including at least a portion of the shielded surfaces of said substrate.
- The process of claim 15 wherein said substrate is in a form selected from the group consisting of spheres, extrudates, flakes, fibers, fiber rovings, chopped fibers, fiber mats, porous substrates, particles and multi-channel monoliths.
- The process of claim 15 wherein any one or more of said contacting steps and forming steps are conducted under at least one or both of powder and substrate being fluidized.
- The process of claim 11 wherein said substrate is in a form selected from the group consisting of spheres, extrudates, flakes, fibers, fiber rovings, chopped fibers, fiber mats, porous substrates, irregularly shaped particles and multi-channel monoliths.
- The process of claim 11 wherein any one or more of said contacting steps and forming steps are conducted under at least one or both of powder and substrate being fluidized.
- The process of claim 11 wherein the substrate is an inorganic oxide and in a form selected from the group consisting of spheres, extrudates, flakes, fibers, porous substrates, and particles.
Description
The present invention relates to a process for coating a substrate. More particularly, the invention relates to coating a substrate with a transition metal oxide-containing material, such material being an electrically conductive of ferromagnetic oxide-containing material.
An application where substrates with coatings, particularly, electrically conductive coatings, find particular usefulness is in the promotion of chemical reactions, e.g., gas/liquid phase reactions, electro catalytic reactions, photo catalytic reactions, redox reactions, etc. As an example of a type of reaction system, a catalytic, e.g., metallic, component is contacted with the material to be reacted, e.g., hydrocarbon, carbon monoxide is passed through or near to the catalytic component to enhance the chemical reaction, e.g., hydrocarbon, carbon monoxide oxidation to carbon dioxide and water and nitrogen oxide reduction to nitrogen. In addition, using a substrate for the catalytic component which is coated with an electrically conductive material is highly advantageous for electro and photo electro catalysis and/or rapid heat transfer to catalyst surfaces since a field/current can be effectively and efficiently provided to or near the catalytic component for electron transfer reactions. Many types of chemical reactions can be advantageously promoted using such coated substrates. Transition metal oxide containing coatings on substrates may promote a electron transfer whether or not the chemical reaction is conducted in the presence of a electro photo electro current or field.
Citations (51)
- FR863970A
- US2564707A
- FR995222A
- US2661596A
- US3004875A
- US3005731A
- US3385793A
- US3544361A
- US3890429A
- US3367872A
- US3577273A
- US3562124A
- US3562127A
- US3713884A
- FR2132440A1
- US3870567A
- US3959565A
- US3932694A
- US4108107A
- GB1572333A
- US4258080A
- US4229491A
- US4263335A
- US4336282A
- US4297420A
- US4240882A
- US4349369A
- US4371740A
- US4451542A
- US4326017A
- US4539268A
- US4542082A
- US4502931A
- US4535315A
- EP0116785A1
- EP0130875A1
- US4606941A
- US4547443A
- US4510219A
- US4614669A
- EP0172563A2
- US4687589A
- US4818438A
- US4818437A
- US4664935A
- US4713306A
- US4681777A
- US4744914A
- US4879056A
- US4772407A
- JPH05300987A
Record as JSON
{
"publication_number": "US5603983A",
"country": "US",
"kind": "A",
"title": "Process for the production of conductive and magnetic transitin metal oxide coated three dimensional substrates",
"abstract": "Processes for coating substrates, in particular substrates including shielded surfaces, with transition metal oxide-containing coatings are disclosed. Such processes comprise contacting a substrate with a transition metal oxide precursor, preferably maintaining the precursor coated substrate at conditions to equilibrate the coating, and then oxidizing the precursor to form a substrate containing transition metal oxide. Also disclosed are substrates coated with transition metal oxide-containing coatings for use in various applications.",
"claims": [
"1. A process for producing at least one or both of an electrically conductive or magnetic coated inorganic three dimensional substrate comprising: Contacting an inorganic three dimensional substrate which includes external surfaces and shielded surfaces which are at least partially shielded by other portions of said substrate with a composition comprising a transition metal oxide forming compound having a melting point of from about 100° C. to about 650° C. and an atomic number of from 21-to-31, 39-to-49 and 71-to-81 inclusive at conditions effective to form a transition metal oxide forming compound containing coating on at least a portion of said three dimensional substrate; including at least a portion of shielded surfaces of said substrate; forming a liquidous coating from said transition metal oxide forming compound on at least a portion of three dimensions of said substrate including the shielded surfaces of said substrate under substantially non deleterious oxidizing and/or hydrolyzing conditions effective to do at least one of the following: (1) coat a larger portion of said substrate with the said transition metal oxide forming compound coating; (2) distribute said transition metal oxide forming compound coating over said substrate; and (3) make transition metal oxide forming compound coating more uniform in thickness, contacting said substrate having said liquidous transition metal oxide forming compound coating thereon with an oxidizing agent at conditions effective to convert the transition metal oxide forming compound to a transition metal oxide and form a transition metal oxide coated substrate including the shielded surfaces and recovering at least one or both of an electrically conductive or magnetic transition metal oxide coated three dimensional substrate.",
"2. The process of claim 1 wherein the transition metal is selected from the group consisting of chromium, tungsten, indium, molybdenum, titanium and mixtures thereof.",
"3. The process of claim 2 wherein said substrate is in a form selected form the group consisting spheres extrudates, flakes, fibers, fiber rovings, chopped fibers, fiber mats, porous substrates, particles and multi-channel monoliths.",
"4. The process of claim 1 wherein said transition metal oxide forming compound is selected from the group consisting of a transition metal transition metal organic salt, a transition metal organic complex and mixtures thereof.",
"5. The process of claim 1 wherein said transition metal oxide forming compound is a transition metal chloride.",
"6. The process of claim 5 wherein the substrate is an inorganic oxide and is substantially nonelectrically conductive, and the thickness of the coating is in the range of from about 0.1 micron to about 10 microns.",
"7. The process of claim 5 wherein said substrate is in a form selected from the group consisting of spheres, extrudates, flakes, fibers, porous substrates, particles and multi-channel monoliths.",
"8. The process of claim 1 wherein said substrate is contacted with an additional coating property modifying interacting component in any one or more of said process steps and forming a coated substrate having one or more interacting components on at least a portion of said substrate including at least a portion of the shielded surfaces of said substrate.",
"9. The process of claim 8 wherein said substrate is in a form selected from the group consisting of spheres, extrudates, flakes, fibers, fiber rovings, chopped fibers, fiber mats, porous substrates, particles and multi-channel monoliths.",
"10. The process of claim 1 wherein said substrates is in a form selected from the group consisting of spheres, extrudates, flakes, fibers, fiber rovings, chopped fibers, fiber mats, porous substrates, particles and multi-channel monoliths.",
"11. A process for coating surfaces of an inorganic three dimensional substrate with at least one or both of an electrically conductive or magnetic transition metal oxide coating which comprises: contacting an inorganic three dimensional substrate with a composition comprising a transition metal oxide precursor powder having an atomic number of from 21-to-31, 39-to-49 and 71-to-81 inclusive at conditions effective to form a coating containing transition metal oxide precursor on at least a portion of the substrate; forming a liquidous coating from said transition metal oxide precursor on at least a portion of the three dimensions of said substrate including the shielded surfaces of said substrate and at conditions effective to do at least one of the following: (1) coat a larger portion of said substrate with said coating; (2) distribute said coating over said substrate; and (3) make said coating more uniform in thickness and contacting said liquidous coated substrate with an oxidizing agent at conditions effective to convert the coating to a transition metal oxide and form a transition metal oxide on at least a portion of said three dimensions of said substrate including the shielded surface and recovering at least one or both of an electrically conductive or magnetic transition metal oxide coated three dimensional substrate.",
"12. The process of claim 11 wherein the transition metal is selected from the group consisting of chromium, tungsten, indium, molybdenum, titanium and mixtures thereof.",
"13. The process of claim 11 wherein said transition metal oxide forming compound is selected from the group consisting of a transition metal chloride, a transition metal organic salt, a transition metal organic complex and mixtures thereof.",
"14. The process of claim 11 wherein said transition metal oxide forming compound is a transition metal chloride.",
"15. The process of claim 11 wherein said substrate is contacted with an additional coating property modifying interacting component in any one more of said process steps and forming a coated substrate having one or more interacting components on at least a portion of said substrate including at least a portion of the shielded surfaces of said substrate.",
"16. The process of claim 15 wherein said substrate is in a form selected from the group consisting of spheres, extrudates, flakes, fibers, fiber rovings, chopped fibers, fiber mats, porous substrates, particles and multi-channel monoliths.",
"17. The process of claim 15 wherein any one or more of said contacting steps and forming steps are conducted under at least one or both of powder and substrate being fluidized.",
"18. The process of claim 11 wherein said substrate is in a form selected from the group consisting of spheres, extrudates, flakes, fibers, fiber rovings, chopped fibers, fiber mats, porous substrates, irregularly shaped particles and multi-channel monoliths.",
"19. The process of claim 11 wherein any one or more of said contacting steps and forming steps are conducted under at least one or both of powder and substrate being fluidized.",
"20. The process of claim 11 wherein the substrate is an inorganic oxide and in a form selected from the group consisting of spheres, extrudates, flakes, fibers, porous substrates, and particles."
],
"description_excerpt": "The present invention relates to a process for coating a substrate. More particularly, the invention relates to coating a substrate with a transition metal oxide-containing material, such material being an electrically conductive of ferromagnetic oxide-containing material.\n\nAn application where substrates with coatings, particularly, electrically conductive coatings, find particular usefulness is in the promotion of chemical reactions, e.g., gas/liquid phase reactions, electro catalytic reactions, photo catalytic reactions, redox reactions, etc. As an example of a type of reaction system, a catalytic, e.g., metallic, component is contacted with the material to be reacted, e.g., hydrocarbon, carbon monoxide is passed through or near to the catalytic component to enhance the chemical reaction, e.g., hydrocarbon, carbon monoxide oxidation to carbon dioxide and water and nitrogen oxide reduction to nitrogen. In addition, using a substrate for the catalytic component which is coated with an electrically conductive material is highly advantageous for electro and photo electro catalysis and/or rapid heat transfer to catalyst surfaces since a field/current can be effectively and efficiently provided to or near the catalytic component for electron transfer reactions. Many types of chemical reactions can be advantageously promoted using such coated substrates. Transition metal oxide containing coatings on substrates may promote a electron transfer whether or not the chemical reaction is conducted in the presence of a electro photo electro current or field.",
"cpc": [
"C04B 41/5036",
"C04B 2235/5224",
"C04B 2235/5232",
"C04B 2235/5252",
"C04B 35/62847",
"C04B 35/62892",
"C04B 35/62897",
"C04B 41/009",
"C04B 41/87",
"Y10T 428/2933",
"Y10T 428/294",
"Y10T 428/2956",
"Y10T 428/2958",
"Y10T 428/2991"
],
"ipc": [
"B05D 5/12",
"B32B 5/16"
],
"assignees": [
"Ensci Inc"
],
"inventors": [
"Thomas J. Clough",
"Victor L. Grosvenor",
"Naum Pinsky"
],
"filing_date": "1995-03-02",
"publication_date": "1997-02-18",
"grant_date": "1997-02-18",
"priority_date": "1986-03-24",
"application_number": "US-40028395-A",
"family_id": "46250241",
"cited_by_count": 89,
"citations": [
"FR863970A",
"US2564707A",
"FR995222A",
"US2661596A",
"US3004875A",
"US3005731A",
"US3385793A",
"US3544361A",
"US3890429A",
"US3367872A",
"US3577273A",
"US3562124A",
"US3562127A",
"US3713884A",
"FR2132440A1",
"US3870567A",
"US3959565A",
"US3932694A",
"US4108107A",
"GB1572333A",
"US4258080A",
"US4229491A",
"US4263335A",
"US4336282A",
"US4297420A",
"US4240882A",
"US4349369A",
"US4371740A",
"US4451542A",
"US4326017A",
"US4539268A",
"US4542082A",
"US4502931A",
"US4535315A",
"EP0116785A1",
"EP0130875A1",
"US4606941A",
"US4547443A",
"US4510219A",
"US4614669A",
"EP0172563A2",
"US4687589A",
"US4818438A",
"US4818437A",
"US4664935A",
"US4713306A",
"US4681777A",
"US4744914A",
"US4879056A",
"US4772407A",
"JPH05300987A"
]
}
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