Claims
- 1. A synthetic porous crystalline material which in its calcined form is characterized by an X-ray diffraction pattern including lines having d-spacing and relative intensity values substantially as set forth in Table 1 of the specification and has a composition comprising the molar relationshipYO2:(n)X2O3:(p)ZO wherein X is a trivalent element, Y is a tetravalent element and Z is cobalt and/or manganese, n is from 0 to 0.5 and p is from 0.0001 to 0.5 and wherein the porous crystalline material does not contain zinc.
- 2. The crystalline material of claim 1 having a composition, on an anhydrous basis and in terms of moles of oxides per n moles of YO2, expressed by the formula:(0.1-2)M2O:(0.2-2)R:YO2: (n)X2O3:(p)ZO, wherein M is alkali or alkaline earth metal and R is an organic moiety.
- 3. The crystalline material of claim 2 wherein said R comprises a tetraethylammonium cation or a bis(cyclopentadienyl) cobalt(III) cation.
- 4. The crystalline material of claim 1 wherein X is a trivalent element selected from the group consisting of boron, iron, indium, gallium, aluminum, and a combination thereof; and Y is a tetravalent element selected from the group consisting of silicon, tin, germanium, and a combination thereof.
- 5. The crystalline material of claim 1 wherein Y comprises silicon.
- 6. A method for synthesizing crystalline material exhibiting a characteristic X-ray diffraction pattern including lines having d-spacing and relative intensity values shown in Table 1 which comprises (i) preparing a mixture capable of forming said material, said mixture comprising sources of alkali or alkaline earth metal (M), an oxide of trivalent element (X), an oxide of tetravalent element (Y), an oxide of cobalt or manganese (Z), water, and directing agent (R) comprising a tetraethylammonium cation or a bis(cyclopentadienyl) cobalt(III) cation, and having a composition, in terms of mole ratios, within the following ranges:YO2/ZO 1-10,000YO2/X2O3>1H2O/YO2 10-1,000OH/YO20.05-1 M/YO20.05-2 R/YO20.05-2 (ii) maintaining said mixture under sufficient conditions including a temperature of from about 80° C. to about 250° C. until crystals of said material are formed; and (iii) recovering said crystalline material from step (ii).
- 7. The method of claim 6 wherein said mixture has the following composition ranges:YO2/ZO 5-200YO2/X2O3 5-100H2O/YO2 25-100OH−/YO20.05-0.5 M/YO20.05-0.5 R/YO2 0.05-0.4.
- 8. The method of claim 6 wherein said mixture further comprises seed crystals in sufficient amount to enhance synthesis of said crystalline material.
- 9. The method of claim 6 wherein M comprises lithium.
- 10. A process for converting a feedstock comprising organic compounds to conversion product which comprises contacting said feedstock at organic compound conversion conditions with a catalyst comprising an active form of the synthetic porous
CROSS REFERENCE TO RELATED APPLICATIONS
This application is a continuation-in-part of U.S. patent application Ser. No. 09/490,265 filed Jan. 24, 2000, now abandoned, which in turn is a continuation-in-part of U.S. patent application Ser. No. 09/223,657 filed Dec. 30, 1998 now U.S. Pat. No. 6,063,262.
US Referenced Citations (11)
Non-Patent Literature Citations (3)
Entry |
Freyhardt et al., “VPI-8: A High-Silica Molecular Sieve with a Novel “Pinwheel” Building Unit and its Implications for the Synthesis of Extra-Large Pore Molecular Sieves,” J. Am. Chem. Soc., vol. 118(31), pp. 7299-7310, 1996.* |
M. A. Camblor, M. Yoshikawa, S. I. Zones, M. E. Davis “Synthesis of VPI-8: The First Large Pore Zincosilicate” in Synthesis of Porous Materials: Zeolites, Clays and Nanostructures, edited M. L. Occelli and H. Kessler, Marcel Dekker Inc., New York, 1996, pp. 243-261. |
M. Yoshikawa, S. I. Zones, M. E. Davis “Synthesis of VPI-8 I. The effects of Reaction Components”, in Microporous Materials, 1997, 11, 127-136. |
Continuation in Parts (2)
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Number |
Date |
Country |
Parent |
09/490265 |
Jan 2000 |
US |
Child |
09/689280 |
|
US |
Parent |
09/223657 |
Dec 1998 |
US |
Child |
09/490265 |
|
US |