Claims
- 1. A silicoaluminophosphate molecular sieve comprising at least one intergrown phase of molecular sieves having AEI and CHA framework types, wherein said intergrown phase has an AEI/CHA ratio of from about 5/95 to 40/60 as determined by DIFFaX analysis, using the powder X-ray diffraction pattern of a calcined sample of said silicoaluminophosphate molecular sieve.
- 2. The silicoaluminophosphate molecular sieve of claim 1, wherein said intergrown phase has an AEI/CHA ratio of from about 7/93 to 38/62.
- 3. The silicoaluminophosphate molecular sieve of claim 1, wherein said intergrown phase has an AEI/CHA ratio of from about 8/92 to 35/65.
- 4. The silicoaluminophosphate molecular sieve of claim 1, wherein said intergrown phase has an AEI/CHA ratio of from about 9/91 to 33/67.
- 5. The silicoaluminophosphate molecular sieve of claim 1 wherein the molecular sieve having CHA framework type is SAPO-34.
- 6. The silicoaluminophosphate molecular sieve of claim 1 wherein the molecular sieve having AEI framework type is SAPO-18, ALPO-18 or a mixture of SAPO-18 and ALPO-18.
- 7. The silicoaluminophosphate molecular sieve of claim 1 wherein said silicoaluminophosphate molecular sieve has an X-ray diffraction pattern having at least one reflection peak in each of the following ranges in the 5 to 25 (2θ) range:
- 8. The silicoaluminophosphate molecular sieve of claim 5 wherein the X-ray diffraction pattern has no reflection peak in the 9.8 to 12.0 (2θ) range.
- 9. The silicoaluminophosphate molecular sieve of claim 5 wherein the X-ray diffraction pattern has no broad feature centered at about 16.9 (2θ).
- 10. The silicoaluminophosphate molecular sieve of claim 8 wherein the X-ray diffraction pattern has no broad feature centered at about 16.9 (2θ).
- 11. The silicoaluminophosphate molecular sieve of claim 6 wherein the reflection peak in the 17.7-18.1 (2θ) range has a relative intensity between 0.09 and 0.40 with respect to the reflection peak at 17.9 (2θ) in the diffraction pattern of SAPO-34, all diffraction patterns being normalized to the intensity value of the reflection peak in the 20.5-20.7 (2θ) range.
- 12. The silicoaluminophosphate molecular sieve of claim 11 wherein the reflection peak in the 17.7-18.1 (2θ) range has a relative intensity between 0.10 and 0.35 with respect to the reflection peak at 17.9 (2θ) in the diffraction pattern of SAPO-34,
- 13. The silicoaluminophosphate molecular sieve of claim 1 wherein the silica to alumina molar ratio (SiO2/Al2O3) ranges from 0.01 to 0.25.
- 14. The silicoaluminophosphate molecular sieve of claim 13 wherein the silica to alumina molar ratio (SiO2/Al2O3) ranges from 0.02 to 0.20.
- 15. The silicoaluminophosphate molecular sieve of claim 13 wherein the silica to alumina molar ratio (SiO2/Al2O3) ranges from 0.03 to 0.19.
- 16. The silicoaluminophosphate molecular sieve of claim 1, wherein the molecular sieve is comprised of crystalline plates, platelets or stacked platelets.
- 17. The silicoaluminophosphate molecular sieve of claim 16. Wherein the average smallest crystal dimension of the molecular sieve is less than 0.1 micron.
- 18. A catalyst comprising the silicoaluminophosphate molecular sieve of claim 1 and a binder.
- 19. A process for making an olefin product from an oxygenate feedstock comprising contacting said oxygenate feedstock with a catalyst comprising a silicoaluminophosphate molecular sieve comprising at least one intergrown phase of molecular sieves having AEI and CHA framework types, wherein said intergrown phase has an AEI/CHA ratio of from about 5/95 to 40/60 as determined by DIFFaX analysis, using the powder X-ray diffraction pattern of a calcined sample of said silicoaluminophosphate molecular sieve, under conditions effective to form an olefin product.
- 20. The process of claim 19, wherein the oxygenate is selected from methanol; ethanol; n-propanol; isopropanol; C4-C20 alcohols; methyl ethyl ether; dimethyl ether; diethyl ether; di-isopropyl ether; formaldehyde; dimethyl carbonate; dimethyl ketone; acetic acid; and mixtures thereof.
- 21. The process of claim 20, wherein the oxygenate is selected from methanol, dimethyl ether, and mixtures thereof.
- 22. The process of claim 19, wherein the oxygenate is methanol.
- 23. The process of claim 19, wherein the selectivity to ethylene and propylene is equal to or greater than 75.0%.
- 24. The process of claim 23, wherein the ethylene to propylene ratio is equal to or greater than 0.75.
- 25. The process of claim 24, wherein the selectivity to propane is equal to or lower than 1.0%.
- 26. The process of claim 19, wherein the selectivity to propane is equal to or smaller than 1.0%.
- 27. A silicoaluminophosphate molecular sieve exhibiting an X-ray diffraction pattern having at least one reflection peak in each of the following ranges in the 5 to 25 (2θ) range:
- 28. The silicoaluminophosphate molecular sieve of claim 27 exhibiting an X-ray diffraction pattern having no broad feature centered at about 16.9 (2θ).
- 29. The silicoaluminophosphate molecular sieve of claim 28, wherein the reflection peak in the 17.7-18.1 (2θ) range has a relative intensity between 0.09 and 0.40 with respect to the reflection peak at 17.9 (2θ) in the diffraction pattern of SAPO-34, all diffraction patterns being normalized to the intensity value of the reflection peak in the 20.5-20.7 (2θ) range.
- 30. The silicoaluminophosphate molecular sieve of claim 28, wherein the reflection peak in the 17.7-18.1 (2θ) range has a relative intensity between 0.10 and 0.35 with respect to the reflection peak at 17.9 (2θ) in the diffraction pattern of SAPO-34, all diffraction patterns being normalized to the intensity value of the reflection peak in the 20.5-20.7 (2θ) range.
- 31. The silicoaluminophosphate molecular sieve of claim 28, wherein the silica to alumina molar ratio (SiO2/Al2O3) in said silicoaluminophosphate molecular sieve ranges from 0.01 to 0.25.
- 32. The silicoaluminophosphate molecular sieve of claim 27, wherein the silica to alumina molar ratio (SiO2/Al2O3) in said silicoaluminophosphate molecular sieve ranges from 0.02 to 0.20.
- 33. The silicoaluminophosphate molecular sieve of claim 27, wherein the silica to alumina molar ratio (SiO2/Al2O3) in said silicoaluminophosphate molecular sieve ranges from 0.03 to 0.19.
- 34. The silicoaluminophosphate molecular sieve of claim 28, wherein the molecular sieve is comprised of crystalline plates, platelets or stacked platelets.
- 35. The silicoaluminophosphate molecular sieve of claim 34, wherein the average smallest crystal dimenstion is less than 0.1 micron.
- 36. A catalyst comprising the silicoaluminophosphate molecular sieve of claim 28 and a binder.
- 37. A method for preparing the molecular sieve of claim 1 that comprises
a) combining a reactive source of silicon, a reactive source of phosphorus and a hydrated aluminum oxide in the presence of an organic structure directing agent (template) to form a mixture; b) mixing and heating continuously the mixture prepared at step a) up to the crystallization temperature; c) maintaining the mixture at the crystallization temperature and under stirring for a period of time of from 2 to 150 hours; d) recovering crystals of the silicoaluminophosphate molecular sieve wherein the mixture prepared at step a) has a molar composition within the following ranges: P2O5:Al2O3 from 0.6:1 to 1.2:1 SiO2:Al2O3 from 0.005:1 to 0.35:1 H2O:Al2O3 from 10:1 to 40:1 and the template is a tetraethylammonium compound.
- 38. The method for preparing the molecular sieve of claim 37, wherein the crystallization temperature is between about 120° C. and 250° C., preferably from 130° C. and 200° C., most preferably from 150° C. to 185° C.
- 39. The method for preparing the molecular sieve of claim 37, wherein step b) is carried out for a period of from about 5 to about 16 hours, preferably of from about 6 to 12 hours.
- 40. The method for preparing the molecular sieve of claim 38, wherein the template is a tetraethylammonium compound, preferably tetraethylammonium hydroxide.
- 41. The method for preparing the molecular sieve of claim 37, wherein the hydrated aluminum oxide is pseudoboehmite.
- 42. The method for preparing the molecular sieve of claim 37, wherein SAPO-34 seeds are combined with the reactive source of silicon, the reactive source of phosphorus, the hydrated aluminum oxide and the organic structure directing agent (template).
Parent Case Info
[0001] This application claims priority to U.S. Provisional Patent Application No. 60/272,061, filed Mar. 1, 2001, and U.S. patent application Ser. No. 09/924,016, filed Aug. 7, 2001, which is filly incorporated herein by reference.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60272061 |
Mar 2001 |
US |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09924016 |
Aug 2001 |
US |
Child |
10092792 |
Mar 2002 |
US |