Claims
- 1. An aluminosilicate having a Si:Al ratio greater than 1 and consisting of a hexagonal polytype of faujasite having a structure of hexagonal symmetry exhibiting hexagonal unit cell parameters a, b and c such that 1.72 nm<a=b<1.77 nm and 2.80 nm <c<2.89 nm and wherein said aluminosilicate has a coefficient, .alpha., of at least 0.94 wherein
- said coefficient being such that .alpha.=1 for a product consisting solely of a faujasite with a structure of hexagonal symmetry and that .alpha.=0 for a product consisting solely of a faujasite with a structure of cubic symmetry.
- 2. An aluminosilicate having a Si:Al ratio greater than 1 and consisting of a hexagonal polytype of faujasite having a structure of hexagonal symmetry exhibiting hexagonal unit cell parameters a, b and c such that 1.72 nm<a=b<1.77 nm and 2.80 nm<c<2.89 nm and wherein said aluminosilicate has a coefficient, .alpha., of at least 0.94, wherein
- said coefficient being such that .alpha.=1 for a product consisting solely of a faujasite with a structure of hexagonal symmetry and that .alpha.=0 for a product consisting solely of a faujasite with a structure of cubic symmetry, said aluminosilicate
- showing, after calcination at 600.degree. C. for 4 hours, an x-ray diffraction pattern comparable with that given in Table II Below:
- TABLE II______________________________________2.theta.(.degree.) d.sub.hkl (10.sup.-1 nM) (hkl) I/Io______________________________________ 5.88 15.03 .+-. 0.2 (1 0 0) VS 6.23 14.2 (0 0 2) VS 6.66 13.3 (1 0 1) S 8.40 10.52 (1 0 2) S10.19 8.68 .+-. 0.08 (1 1 0) S11.06 7.99 (1 0 3) mS11.78 7.51 (2 0 0) mS11.95 7.40 (1 1 2) mS13.49 6.56 (2 0 2) vw15.06 5.88 .+-. 0.05 (2 0 3) w15.58 5.68 (0 0 5) S15.89 5.57 (2 1 1) w16.73 5.29 (1 0 5) w17.18 5.16 (2 0 4) S18.22 4.87 (2 1 3) w18.79 4.72 (1 1 5) w19.67 4.51 (1 0 6) w20.45 4.34 (2 2 0) mS22.22 4.00 (3 1 2) w22.75 3.91 (1 0 7) w23.30 3.82 (3 1 3) w23.66 3.76 (3 0 5) S24.75 3.59 (3 1 4) w25.83 3.45 (2 2 5) w26.52 3.36 (2 1 5) w27.16 3.28 (4 1 0) w28.77 3.103 .+-. 0.008 (3 2 4) w30.38 2.942 (4 0 6) vw30.89 2.894 (3 3 0) w31.20 2.866 (5 0 3) w31.56 2.834 (3 3 2) vw______________________________________
- and wherein the aluminosilicate corresponds to a formula which, reduced to a unit cell of the hexagonal structure, is written
- (u M.sub.1.sup.q +) (r M.sup.n+) [(SiO.sub.2).sub.96 -y(AlO.sub.2).sub.y ].sup.y- (t H.sub.2 O)
- and in which M.sub.1.sup.q+ denotes a q-valent cation of a metal selected from the group consisting of a metal of group IA of the Periodic Classication of the Elements (q=1), an alkaline-earth metal selected from Ca, Sr and Ba (q=2) and a monovalent cation containing nitrogen (q=1), M.sup.n+ represents a cation of a metal M of valency n other than a cation M.sub.1.sup.8+, y, u, r and t are numbers such that 15.ltoreq.y.ltoreq.48, t.gtoreq.o and depending on the hydration state of the aluminosilicate (t=o for a completely anhydrous aluminosilicate), o<u<y/q and o<r<y/n with qu+nr>y.
- 3. The aluminosilicate according to claim 2, wherein .alpha. is 0.95, and r is equal to zero and M.sup.8+ denotes Na.sup.+.
- 4. The aluminosilicate according to claim 2, wherein M.sub.1.sup.q+ denotes Na.sup.+ and M.sup.n+ is Co.sup.++, Cd.sup.++ or Ag.sup.+.
Parent Case Info
This application is a continuation-in-part application of Ser. No. 687,970, filed Apr. 19, 1991, now abandoned, which is a division of application Ser. No. 499,272, filed Jun. 8, 1990, now U.S. Pat. No. 5,098,686.
US Referenced Citations (9)
Non-Patent Literature Citations (1)
Entry |
Treacy et al "A General Recursion Method For Calculating Diffracted Intensities From Crystals Containing Planar Faults" Proc. R. Lond. A (1991) 433 pp. 499-520 (No Month). |
Divisions (1)
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Number |
Date |
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Parent |
499272 |
Jun 1990 |
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Continuation in Parts (1)
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Number |
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687970 |
Apr 1991 |
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