Claims
- 1. A method of making chemically modified carbon-based materials from a precursor containing graphite fluoride, said method comprising:
- exposing said precursor containing graphite fluoride to a halocarbon environment at a temperature between room temperature and 250.degree. C., thereby allowing said halocarbon to diffuse into the lamellar crystal structure of said graphite fluoride so that a first intermediate total system is formed comprising a graphite fluoride-balocarbon mix in a halocarbon environment;
- heating said first intermediate total system to a temperature of between 250.degree. C. and approximately 450.degree. C., thereby substantially defluorinating said graphite fluoride while also permitting said halocarbon to de-halogenate and form chemical bonds with and thereby bridge adjacent graphitic lattice planes formed from lamellae of said graphite fluoride and resulting in a first intermediate carbon material containing halogen;
- heating to approximately 650.degree. C. said first intermediate carbon material in an inert environment, thereby producing a fluorine-free second intermediate carbon material;
- heating to a temperature in the range of approximately 1000.degree. C. to approximately 1160.degree. C. said second intermediate carbon material in an inert environment, thereby producing a halogen-free third intermediate carbon material; and
- heating to a graphitizing temperature said third intermediate carbon material in an inert atmosphere to produce a final product which is a graphitized, chemically modified carbon,
- wherein said precursor containing graphite fluoride comprises a carbon core surrounded by and contiguous with a shell comprising graphite fluoride and wherein said final product resulting from said method is a carbon core surrounded by and contiguous with a shell comprising said graphitized, chemically modified carbon.
- 2. A method of making chemically modified carbon-based materials from a precursor containing graphite fluoride, said method comprising:
- exposing said precursor containing graphite fluoride to a FeCl.sub.3 environment at a temperature between 250.degree. C. and approximately 450.degree. C., thereby substantially breaking C--F bonds in said graphite fluoride while also permitting said FeCl.sub.3 to intercalate between graphitic lattice planes formed from lamellae of said graphite fluoride and resulting in a carbon material containing Fe, Cl, and F,
- wherein said precursor containing graphite fluoride comprises a carbon core surrounded by and contiguous with a shell comprising graphite fluoride and wherein a final product resulting from said method is a carbon core surrounded by and contiguous with a shell comprising said carbon material containing Fe, Cl, and F.
- 3. A method of making a carbon material coated with a substantially continuous film of an element selected from the group consisting of Ti, Cr, Fe, Ni, Cu, Pb, and Sn, starting with a precursor containing, graphite fluoride, said method comprising:
- exposing, said precursor containing graphite fluoride to a sulfur environment at a temperature between room temperature and 250.degree. C., thereby allowing said sulfur to diffuse into the lamellar crystal structure of said graphite fluoride so that a first intermediate total system is formed comprising a graphite fluoride-sulfur mix in a sulfur environment;
- heating said first intermediate total system to a temperature of between 250.degree. C. and approximately 450.degree. C., thereby substantially defluorinating said graphite fluoride while also permitting said sulfur to form chemical bonds with and thereby to heal defects in graphitic lattice planes formed from lamellae of said graphite fluoride and resulting in a first intermediate carbon material containing only a trace amount of fluorine;
- heating to approximately 650.degree. C. said first intermediate carbon material in an inert environment, thereby producing a fluorine-free second intermediate carbon material;
- heating to a temperature in the range of approximately 1000.degree. C. to approximately 1160.degree. C. said second intermediate carbon material in an inert environment, thereby producing a third intermediate product that is a halogen-free carbon-sulfide chemically modified carbon material having a lamellar structure and a chemical reactivity with said element that is much higher than that of graphite, and
- heating at a temperature in the range of approximately 1000.degree. C. to approximately 1160.degree. C. said third intermediate product in direct contact with said element.
- 4. A method of making a carbon-reinforced manganese matrix composite material, starting with a precursor containing graphite fluoride, said method comprising:
- exposing said precursor containing graphite fluoride to a sulfur environment at a temperature between room temperature and 250.degree. C., thereby allowing said sulfur to diffuse into the lamellar crystal structure of said graphite fluoride so that a first intermediate total system is formed comprising a graphite fluoride-sulfur mix in a sulfur environment;
- heating said first intermediate total system to a temperature of between 250.degree. C. and approximately 450.degree. C., thereby substantially defluorinating said graphite fluoride while also permitting said sulfur to form chemical bonds with and thereby to heal defects in graphitic lattice planes formed from lamellae of said graphite fluoride and resulting in a first intermediate carbon material containing only a trace amount of fluorine;
- heating to approximately 650.degree. C. said first intermediate carbon material in an inert environment, thereby producing a fluorine-free second intermediate carbon material;
- heating to a temperature in the range of approximately 1000.degree. C. to approximately 1160.degree. C. said second intermediate carbon material in an inert environment, thereby producing a third intermediate product that is a halogen-free carbon-sulfide chemically modified carbon material having a lamellar molecular structure and a chemical reactivity with manganese that is much higher than that of graphite, and
- heating at a temperature in the range of approximately 1000.degree. C. to approximately 1160.degree. C. said third intermediate product in direct contact with elemental manganese.
- 5. A method of making a carbon-reinforced manganese matrix composite material, starting with a precursor containing graphite fluoride, said method comprising:
- exposing said precursor containing graphite fluoride to a sulfur environment at a temperature between room temperature and 250.degree. C., thereby allowing said sulfur to diffuse into the lamellar crystal structure of said graphite fluoride so that a first intermediate total system is formed comprising a graphite fluoride-sulfur mix in a sulfur environment;
- heating said first intermediate total system to a temperature of between 250.degree. C. and approximately 450.degree. C., thereby substantially defluorinating said graphite fluoride while also permitting said sulfur to form chemical bonds with and thereby to heal defects in graphitic lattice planes formed from lamellae of said graphite fluoride and resulting in a first intermediate carbon material containing only a trace amount of fluorine;
- heating to approximately 650.degree. C. said first intermediate carbon material in an inert environment, thereby producing a fluorine-free second intermediate carbon material;
- heating to a temperature in the range of approximately 1000.degree. C. to approximately 1160.degree. C. said second intermediate carbon material in an inert environment, thereby producing a third intermediate product that is a halogen-free carbon-sulfide chemically modified carbon material having a lamellar structure and a chemical reactivity with manganese much higher than that of graphite, and
- heating at 800.degree. C. said third intermediate product in direct contact with elemental manganese.
- 6. A method of making a carbon material coated with a substantially continuous film of an element selected from the group consisting of Ti, Cr, Fe, Ni, Cu, Pb, and Sn, starting with a precursor containing graphite fluoride, said method comprising:
- exposing said precursor containing graphite fluoride to a halocarbon environment at a temperature between room temperature and 250.degree. C., thereby allowing said halocarbon to diffuse into the lamellar crystal structure of said graphite fluoride so that a first intermediate total system is formed comprising a graphite fluoride-halocarbon mix in said environment;
- heating said first intermediate total system to a temperature of between 250.degree. C. and approximately 450.degree. C., thereby substantially defluorinating said graphite fluoride while also permitting said halocarbon to form chemical bonds with and thereby to heal defects in graphitic lattice planes formed from lamellae of said graphite fluoride and resulting in a first intermediate carbon material containing only a trace amount of fluorine;
- heating to approximately 650.degree. C. said first intermediate carbon material in an inert environment, thereby producing a fluorine-free second intermediate carbon material;
- heating to a temperature in the range of approximately 1000.degree. C. to approximately 1160.degree. C. said second intermediate carbon material in an inert environment, thereby producing a third intermediate product that is a halogen-free chemically modified carbon material having a lamellar structure and having a chemical reactivity with said element that is much higher than that of graphite, and
- heating at a temperature in the range of approximately 1000.degree. C. to approximately 1160.degree. C. said third intermediate product in direct contact with said element.
- 7. A method of making a carbon-reinforced manganese matrix composite material, starting with a precursor containing graphite fluoride, said method comprising:
- exposing said precursor containing graphite fluoride to a halocarbon environment at a temperature between room temperature and 250.degree. C., thereby allowing said halocarbon to diffuse into the lamellar crystal structure of said graphite fluoride so that a first intermediate total system is formed comprising a graphite fluoride-halocarbon nmx in said environment;
- heating said first intermediate total system to a temperature of between 250.degree. C. and approximately 450.degree. C., thereby substantially defluorinating said graphite fluoride while also permitting said halocarbon to form chemical bonds with and thereby to heal defects in graphitic lattice planes formed from lamellae of said graphite fluoride and resulting in a first intermediate carbon material containing only a trace amount of fluorine;
- heating to approximately 650.degree. C. said first intermediate carbon material in an inert environment, thereby producing a fluorine-free second intermediate carbon material;
- heating to a temperature in the range of approximately 1000.degree. C. to approximately 1160.degree. C. said second intermediate carbon material in an inert environment, thereby producing a third intermediate product that is a halogen-free chemically modified carbon material having a lamellar structure and having a chemical reactivity with manganese that is much higher than that of graphite, and
- heating at a temperature in the range of approximately 1000.degree. C. to approximately 1160.degree. C. said third intermediate product in direct contact with elemental manganese.
- 8. A method of making a carbon-reinforced manganese matrix composite material, starting with a precursor containing graphite fluoride said method comprising:
- exposing said precursor containing graphite fluoride to a halocarbon environment at a temperature between room temperature and 250.degree. C., thereby allowing said halocarbon to diffuse into the lamellar crystal structure of said graphite fluoride so that a first intermediate total system is formed comprising a graphite fluoride-halocarbon mix in said environment;
- heating said first intermediate total system to a temperature of between 250.degree. C. and approximately 450.degree. C., thereby substantially defluorinating said graphite fluoride while also permitting said halocarbon to form chemical bonds with and thereby to heal defects in graphitic lattice planes formed from lamellae of said graphite fluoride and resulting in a first intermediate carbon material containing only a trace amount of fluorine;
- heating to approximately 650.degree. C. said first intermediate carbon material in an inert environment, thereby producing a fluorine-free second intermediate carbon material;
- heating to a temperature in the range of approximately 1000.degree. C. to approximately 1160.degree. C. said second intermediate carbon material in an inert environment, thereby producing a third intermediate product that is a halogen-free chemically modified carbon material having a lamellar molecular structure and a chemical reactivity with manganese much higher than that of graphite, and
- heating at 800.degree. C. said third intermediate product in direct contact with elemental manganese.
Parent Case Info
This is a Division of application Ser. No. 08/258,961, filed Jun. 13, 1994, now U.S. Pat. No. 5,622,683.
US Referenced Citations (1)
Number |
Name |
Date |
Kind |
4116880 |
Olah |
Sep 1978 |
|
Foreign Referenced Citations (1)
Number |
Date |
Country |
1049582 |
Nov 1966 |
GBX |
Divisions (1)
|
Number |
Date |
Country |
Parent |
258961 |
Jun 1994 |
|