Claims
- 1. A method for synthesizing a crystalline silicate consisting essentially of one having the structure of zeolite Beta which comprises (i) preparing a reaction mixture capable of forming said crystalline silicate, said mixture comprising sources of alkali metal ions (M), dibenzyldimethylammonium ions (R), an oxide of silicon, water and an oxide of aluminum and having a composition, in terms of mole ratios, within the following ranges:
- SiO.sub.2 /Al.sub.2 O.sub.3 =20-250
- H.sub.2 O/SiO.sub.2 =10-200
- OH/SiO.sub.2 =0.10-2.0
- M/SiO.sub.2 =0.05-1.0
- R/SiO.sub.2 =0.10-2.0,
- (ii) maintaining the reaction mixture at conditions sufficient to crystallize said silicate, including a temperature of from about 80.degree. C. to about 175.degree. C., and (iii) recovering said crystalline silicate from step (ii), said recovered crystalline silicate containing dibenzyldimethylammonium and alkali metal.
- 2. The method of claim 1 wherein said reaction mixture has a composition, in terms of mole ratios, as follows:
- SiO.sub.2 /Al.sub.2 O.sub.3 =30-250
- H.sub.2 O/SiO.sub.2 =10-60
- OH/SiO.sub.2 =0.12-1.0
- M/SiO.sub.2 =0.10-0.6
- R/SiO.sub.2 =0.20-1.0
- 3. The method of claim 1 wherein said source of dibenzyldimethylammonium is a dibenzyldimethylammonium compound selected from the group consisting of the halide and hydroxide.
- 4. The method of claim 3 wherein said compound is the halide.
- 5. The method of claim 4 wherein said halide is chloride.
- 6. A crystalline silicate having the structure of zeolite Beta and containing dibenzyldimethylammonium and alkali metal synthesized by a method which comprises (i) preparing a reaction mixture capable of forming said crystalline silicate, said mixture comprising sources of alkali metal ions (M), dibenzyldimethylammonium ions (R), an oxide of silicon, water and an oxide of aluminum and having a composition in terms of mole ratios as follows:
- SiO.sub.2 /Al.sub.2 O.sub.3 =20-250
- H.sub.2 O/SiO.sub.2 =10-200
- OH/SiO.sub.2 =0.10-2.0
- M/SiO.sub.2 =0.05-1.0
- R/SiO.sub.2 =0.10-2.0,
- (ii) maintaining the reaction mixture at conditions sufficient to crystallize said silicate, and (iii) recovering said crystalline silicate from step (ii), said recovered crysalline silicate containing dibenzyldimethylammonium and alkali metal.
- 7. The synthetic crystalline silicate of claim 6 wherein said source of dibenzyldimethylammonium is a dibenzyldimethylammonium compound selected from the group consisting of halide and hydroxide.
- 8. The synthetic crystalline silicate of claim 7 wherein said compound is the halide.
- 9. The synthetic crystalline silicate of claim 6 wherein M is sodium.
- 10. The method of claim 1 comprising replacing alkali metal ions of the crystalline silicate recovered in step (ii), at least in part, by ion exchange with a cation or a mixture of cations selected from the group consisting of hydrogen and hydrogen precursors, rare earth metals, and metals from Groups IIA, IIIA, IVA, IB, IIB, IIIB, IVB, VIB and VIII of the Periodic Table of Elements.
- 11. The method of claim 10 wherein said replacing cation is hydrogen or a hydrogen precursor.
- 12. Dibenzyldimethylammonium-containing zeolite Beta.
- 13. The dibenzyldimethylammonium-containing product crystalline silicate of claim 10.
- 14. The dibenzyldimethylammonium-containing product crystalline silicate of claim 11.
BACKGROUND OF THE INVENTION
1. Cross-Reference to Related Applications
This is a continuation-in-part of application Ser. No. 684,189, filed Dec. 20, 1984, which is a continuation of application Ser. No. 600,682, filed Apr. 16, 1984; and application Ser. No. 684,202, filed Dec. 20, 1984, which is a continuation of appication Ser. No. 608,847 filed May 10, 1984. All of which are now abandoned.
US Referenced Citations (6)
Non-Patent Literature Citations (1)
| Entry |
| B. M. Lok et al, Zeolites, 1983, vol. 3, Oct., pp. 282-291, "The Role of Organic Molecules in Molecular Sieve Synthesis". |
Continuations (2)
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| Parent |
600682 |
Apr 1984 |
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| Parent |
608847 |
May 1984 |
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Continuation in Parts (1)
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684189 |
Dec 1984 |
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