Claims
- 1. A synthetic crystalline material having a framework of tetrahedral atoms (T) connected by bridging atoms, the tetrahedral atom framework being defined by connecting the nearest tetrahedral (T) atoms in the manner shown in TABLE 1 of the specification.
- 2. A synthetic porous crystalline material, as synthesized, characterized by an X-ray diffraction pattern including the most significant lines substantially as set forth in TABLE 2 of the specification.
- 3. A synthetic porous crystalline material, as synthesized, characterized by an X-ray diffraction pattern including the most significant lines substantially as set forth in TABLE 3 of the specification.
- 4. The calcined hydrated materials of claim 2 and claim 3 characterized by an X-ray diffraction pattern including the most significant lines substantially, as set forth in TABLE 4 of the specification.
- 5. The calcined dehydrated materials of claim 2 and claim 3 characterized by an X-ray diffraction pattern including the most significant lines substantially, as set forth in TABLE 5 of the specification.
- 6. The crystalline material of claim 1 wherein said tetrahedral atoms include one or more elements selected from the group consisting of Li, Be, Li, Al, P, Si, Ga, Ge, Zn, Cr, Mg, Fe, Co, Ni, Be, Mn, As, In, Sn, Sb, Ti, and Zr.
- 7. The crystalline material of claim 1 wherein said bridging atoms include one or more elements selected from the group consisting of, N, F, S, Se, and C.
- 8. A new crystalline aluminophosphate compound of composition RmAlyPzO4.nH2O where R is an organic compound, where m=0.01-1, y=0.6-1.2, z=0.6-1.2 and n=1-10 and having a unique diffraction pattern as given in TABLE 2.
- 9. A new crystalline metalloaluminophosphate compound of composition RmMexAlyPzO4.nH2O where R is an organic compound, Me is one or more of B, Ga, Si, Ge, Zn, Mg, Fe, Co, Ni, Be, Mn, Ti, Zr, and where m=0.01-1, x=0.01-0.2, y=0.6-1.2, z=0.6-1.2 and n>0.2, and having a unique diffraction pattern as given TABLE 3.
- 10. A calcined crystalline metalloaluminophosphate compound of composition MexAlyPzO4.nH2O where Me is one or more of B, Ga, Si, Ge, Zn, Mg, Fe, Co, Ni, Be, Mn, Ti, Zr, and where x=0.00-0.2, y=0.6-1.2, z=0.6-1.2 and n>0.2, and having a unique diffraction pattern as given TABLE 4.
- 11. A calcined crystalline metalloaluminophosphate compound of composition MexAlyPzO4.nH2O where Me is one or more of B, Ga, Si, Ge, Zn, Mg, Fe, Co, Ni, Be, Mn, Ti, Zr, and, where x=0.00-0.2, y=0.6-1.2, z=0.6-1.2 and n<0.2, and having a unique diffraction pattern as given TABLE 5.
- 12. The crystalline material of claim 8 wherein R comprises a cation derived from hexamethonium.
- 13. The crystalline material of claim 9 wherein R comprises a cation derived from hexamethonium.
- 14. A method of synthesizing a crystalline aluminophosphate compound having the diffraction pattern similar to TABLE 2, by mixing together a source of alumina, phosphorous, water, and organic directing agent, and heating at a temperature and time sufficient to crystallize the aluminophosphate.
- 15. A method of synthesizing a crystalline metalloaluminophosphate compound having the diffraction pattern similar to TABLE 3, by mixing together a source of metal, alumina, phosphorous, water, and organic directing agent, and heating at a temperature and time sufficient to crystallize the metalloaluminophosphate.
- 16. A crystalline material whose structure has the subunits given in TABLE 8.
- 17. A crystalline material whose structure has the subunits given in TABLE 9.
- 18. A method for synthesizing crystalline material exhibiting a characteristic X-ray diffraction pattern including d-spacing values shown in TABLE 2 which comprises (i) preparing a mixture capable of forming said by mixing together a source of alumina, phosphorous, organic directing agent (R), and water with a composition, in terms of mole ratios, within the following ranges:
- 19. The method of claim 18 wherein said mixture has a composition, in terms of mole ratios, within the following ranges:
- 20. The method of claim 18 where said organic direction agent (R) is hexamethonium.
- 21. The method of claim 19 where said organic directing agent (R) is hexamethonium.
- 22. A method for synthesizing crystalline material exhibiting a characteristic X-ray diffraction pattern including d-spacing values shown in TABLE 3 which comprises (i) preparing a mixture capable of forming said by mixing together a source of metal (Me), alumina, phosphorous, organic directing agent (R), water, with a composition, in terms of mole ratios, within the following ranges:
- 23. The method of claim 22 wherein said mixture has a composition, in terms of mole ratios, within the following ranges:
- 24. The method of claim 22 where said organic direction agent (R) is hexamethonium.
- 25. The method of claim 23 where said organic directing agent (R) is hexamethonium.
- 26. The method of claim 22 where said metal (Me) is one or more of B, Ga, Si, Ge, Zn, Mg, Fe, Co, Ni, Be, Mn, Ti, Zr.
- 27. The method of claim 23 where metal (Me) is one or more of B, Ga, Si, Ge, Zn, Mg, Fe, Co, Ni, Be, Mn, Ti, Zr.
- 28. A process for the separation of hydrocarbons from a hydrocarbon containing stream using a form of the synthetic porous crystalline material of claim 1.
- 29. A process for converting a feedstock comprising organic compounds to conversion product(s) which comprises contacting said feedstock at organic compound conversion conditions with a catalyst comprising an active form of the synthetic porous crystalline material of claim 1.
Parent Case Info
[0001] This application claims the benefit of U.S. Provisional Application No. 60/480,973 filed Jun. 24, 2003.
Provisional Applications (1)
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Number |
Date |
Country |
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60480973 |
Jun 2003 |
US |