Claims
- 1. Crystalline molecular sieves having three-dimensional microporous framework structures of AsO.sub.2, AlO.sub.2 and PO.sub.2 tetrahedral units having an empirical chemical composition on an anhydrous basis expressed by the formula:
- mR : (As.sub.x Al.sub.y P.sub.z)O.sub.2
- wherein "R" represents at least one organic templating agent present in the intracrystalline pore system; "m" represents the molar amount of "R" present per mole of (As.sub.x Al.sub.y P.sub.z)O.sub.2 and has a value of from zero to about 0.3; and "x", "y" and "z" represent the mole fractions of arsenic, aluminum and phosphorus, respectively, present as tetrahedral oxides, said mole fractions being such that they are within the hexagonal compositional area defined by points A, B, C, D, E and F of FIG. 1, said crystalline molecular sieves having a characteristic X-ray powder diffraction pattern which contains at least the d-spacings set forth in one of the following Tables J, K, O, Q, R, S. and V:
- TABLE J*______________________________________(AsAPO-33)2.theta. d(.ANG.) Relative Intensity______________________________________9.25-9.55 9.56-9.26 w-m12.5-12.9 7.08-6.86 vs16.9-17.3 5.25-5.13 w-m20.45-20.9 4.34-4.25 w-m23.85-24.25 3.73-3.67 w-m26.05-26.35 3.42-3.38 w-m27.3-27.6 3.27-3.23 vs______________________________________ *as-synthesized form
- TABLE K*______________________________________(AsAPO-33)2.theta. d(.ANG.) Relative Intensity______________________________________13.15-13.4 6.73-6.61 vs18.05-18.35 4.91-4.83 m18.4-18.6 4.82-4.77 m26.55-26.7 3.36-3.34 m32.0-32.1 2.80-2.79 m______________________________________ *calcined form
- TABLE O______________________________________(AsAPO-37)2.theta. d(.ANG.) Relative Intensity______________________________________6.1-6.3 14.49-14.03 vs15.5-15.7 5.72-5.64 w-m18.5-18.8 4.80-4.72 w-m23.5-23.7 3.79-3.75 w-m26.9-27.1 3.31-3.29 w-m______________________________________
- TABLE Q______________________________________(AsAPO-40)2.theta. d(.ANG.) Relative Intensity______________________________________7.6-7.7 11.79-11.48 vw-m8.0-8.1 11.05-10.94 s-vs12.4-12.5 7.14-7.08 w-vs13.6-13.8 6.51-6.42 m-s14.0-14.1 6.33-6.28 w-m27.8-28.0 3.209-3.187 w-m______________________________________
- TABLE R______________________________________(AsAPO-41)2.theta. d(.ANG.) Relative Intensity______________________________________13.6-13.8 6.51-6.42 w-m20.5-20.6 4.33-4.31 w-m21.1-21.3 4.21-4.17 vs22.1-22.3 4.02-3.99 m-s22.8-23.0 3.90-3.86 m23.1-23.4 3.82-3.80 w-m25.5-25.9 3.493-3.440 w-m______________________________________
- TABLE S______________________________________(AsAPO-42)2.theta. d(.ANG.) Relative Intensity______________________________________7.15-7.4 12.36-11.95 m-vs12.5-12.7 7.08-6.97 m-s21.75-21.9 4.09-4.06 m-s24.1-24.25 3.69-3.67 vs27.25-27.4 3.273-3.255 s30.05-30.25 2.974-2.955 m-s______________________________________
- TABLE U______________________________________(AsAPO-46)2.theta. d(.ANG.) Relative Intensity______________________________________7.2-8.1 12.3-10.9 vs21.2-21.8 4.19-4.08 w-m22.5-23.0 3.95-3.87 vw-m26.6-27.2 3.351-3.278 vw-w28.5-29.0 3.132-3.079 vw-w______________________________________
- 2. Crystalline molecular sieves according to claim 1 wherein the mole fraction of arsenic, aluminum and phosphorus present as tetrahedral oxides are within the tetragonal compositional area defined by points a, b, c, and d of FIG. 2.
- 3. Crystalline molecular sieves according to claim 1 wherein the mole fractions of arsenic, aluminum and phosphorus present as tetrahedral oxides are within the tetragonal compositional area defined by points e, f, g and h of FIG. 3.
- 4. The crystalline molecular sieves according to claim 3 wherein the mole fractions of arsenic, aluminum and phosphorus present as tetrahedral oxides are within the hexagonal compositional area defined by points i, j, k, l, m and n of FIG. 3.
- 5. The crystalline molecular sieves according to claim 1 wherein "m" is not greater than about 0.15.
- 6. The crystalline molecular sieves of claim 1 having a characteristic X-ray powder diffraction pattern which contains at least the d-spacings set forth in Table J given in claim 1.
- 7. The crystalline molecular sieves of claim 1 having a characteristic X-ray powder diffraction pattern which contains at least the d-spacings set forth in Table K given in claim 1.
- 8. The crystalline molecular sieves of claim 1 having a characteristic X-ray powder diffraction pattern which contains at least the d-spacings set forth in Table O given in claim 1.
- 9. The crystalline molecular sieves of claim 1 having a characteristic X-ray powder diffraction pattern which contains at least the d-spacings set forth in Table Q given in claim 1.
- 10. The crystalline molecular sieves of claim 1 having a characteristic X-ray powder diffraction pattern which contains at least the d-spacings set forth in Table R given in claim 1.
- 11. The crystalline molecular sieves of claim 1 having a characteristic X-ray powder diffraction pattern which contains at least the d-spacings set forth in Table S given in claim 1.
- 12. The crystalline molecular sieves of claim 1 having a characteristic X-ray powder diffraction pattern which contains at least the d-spacings set forth in Table U given in claim 1.
- 13. Molecular sieves prepared by calcining, at a temperature sufficiently high to remove at least some of any organic templating agent present in the intracrystalline pore system, crystalline molecular sieves having three-dimensional microporous framework structures of AsO.sub.2, AlO.sub.2 and PO.sub.2 tetrahedral units having an empirical chemical composition on a an anhydrous basis expressed by the formula:
- mR : (As.sub.x Al.sub.y P.sub.z)O.sub.2
- wherein "R" represents at least one organic templating agent present in the intracrystalline pore system; "m" represents the molar amount of "R" present per mole of (As.sub.x Al.sub.y P.sub.z)O.sub.2 and has a value of from zero to about 0.3; and "x", "y" and "z"]represent the mole fractions of arsenic, aluminum and phosphorus, respectively, present as tetrahedral oxides, said mole fractions being such that they are within the hexagonal compositional area defined by points A, B, C, D, E and F of FIG. 1, said crystalline molecular sieves having a characteristic X-ray powder diffraction pattern which contains at least the d-spacings set forth in one of the following Tables J, K, O, Q, R, S, and V:
- TABLE J*______________________________________(AsAPO-33)2.theta. d(.ANG.) Relative Intensity______________________________________9.25-9.55 9.56-9.26 w-m12.5-12.9 7.08-6.86 vs16.9-17.3 5.25-5.13 w-m20.45-20.9 4.34-4.25 w-m23.85-24.25 3.73-3.67 w-m26.05-26.35 3.42-3.38 w-m27.3-27.6 3.27-3.23 vs______________________________________ *as-synthesized form
- TABLE K*______________________________________(AsAPO-33)2.theta. d(.ANG.) Relative Intensity______________________________________13.15-13.4 6.73-6.61 vs18.05-18.35 4.91-4.83 m18.4-18.6 4.82-4.77 m26.55-26.7 3.36-3.34 m32.0-32.1 2.80-2.79 m______________________________________ *calcined form
- TABLE O______________________________________(AsAPO-37)2.theta. d(.ANG.) Relative Intensity______________________________________6.1-6.3 14.49-14.03 vs15.5-15.7 5.72-5.64 w-m18.5-18.8 4.80-4.72 w-m23.5-23.7 3.79-3.75 w-m26.9-27.1 3.31-3.29 w-m______________________________________
- TABLE Q______________________________________(AsAPO-40)2.theta. d(.ANG.) Relative Intensity______________________________________7.6-7.7 11.79-11.48 vw-m8.0-8.1 11.05-10.94 s-vs12.4-12.5 7.14-7.08 w-vs13.6-13.8 6.51-6.42 m-s14.0-14.1 6.33-6.28 w-m27.8-28.0 3.209-3.187 w-m______________________________________
- TABLE R______________________________________(AsAPO-41)2.theta. d(.ANG.) Relative Intensity______________________________________13.6-13.8 6.51-6.42 w-m20.5-20.6 4.33-4.31 w-m21.1-21.3 4.21-4.17 vs22.1-22.3 4.02-3.99 m-s22.8-23.0 3.90-3.86 m23.1-23.4 3.82-3.80 w-m25.5-25.9 3.493-3.440 w-m______________________________________
- TABLE S______________________________________(AsAPO-42)2.theta. d(.ANG.) Relative Intensity______________________________________7.15-7.4 12.36-11.95 m-vs12.5-12.7 7.08-6.97 m-s21.75-21.9 4.09-4.06 m-s24.1-24.25 3.69-3.67 vs27.25-27.4 3.273-3.255 s30.05-30.25 2.974-2.955 m-s______________________________________
- TABLE U______________________________________(AsAPO-46)2.theta. d(.ANG.) Relative Intensity______________________________________7.2-8.1 12.3-10.9 vs21.2-21.8 4.19-4.08 w-m22.5-23.0 3.95-3.87 vw-m26.6-27.2 3.351-3.278 vw-w28.5-29.0 3.132-3.079 vw-w______________________________________
Parent Case Info
This application is a continuation-in-part of our copending application Ser. No. 600,166 filed Apr. 13, 1984, now abandoned.
US Referenced Citations (10)
Foreign Referenced Citations (6)
Number |
Date |
Country |
0054364 |
Jun 1982 |
EPX |
0055046 |
Jun 1982 |
EPX |
0055529 |
Jul 1982 |
EPX |
0059059 |
Sep 1982 |
EPX |
0147991 |
Jul 1985 |
EPX |
02078704 |
Jan 1982 |
GBX |
Non-Patent Literature Citations (1)
Entry |
Haggin, "Chemical & Engineering", Jun. 20, 1986, pp. 36 & 37. |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
600166 |
Apr 1984 |
|