inorganic compounds
2/3[WO4]
of defect scheelite-type NdaUniversity of Stuttgart, Institute of Inorganic Chemistry, Pfaffenwaldring 55, 70569 Stuttgart, Germany
*Correspondence e-mail: ingo.hartenbach@iac.uni-stuttgart.de
Neodymium(III) ortho-oxidotungstate(VI) was synthesized as a side-product in an unsuccessful synthesis attempt at fluoride derivatives of neodymium tungstate in fused silica ampoules, using neodymium(III) oxide, neodymium(III) fluoride and tungsten trioxide. Violet, platelet-shaped single crystals of the title compound emerged of the bulk, which crystallize in the defect scheelite type with a trigonal dodecahedral coordination of oxide anions around the Nd3+ cations and the hexavalent tungsten cations situated in the centers of oxide tetrahedra.
Keywords: crystal structure; oxidotungstate(VI); neodymium; scheelite.
CCDC reference: 2312842
Structure description
Nd2/3[WO4] crystallizes in the defect scheelite structure type (space group I41/a, Dickinson, 1920; see Fig. 1). The tungsten cations (Wyckoff position 4a, ) form regular tetrahedra [WO4]2− together with four oxide anions, exhibiting a bond length of 1.783 (4) Å. The neodymium cations (Wyckoff position 4b, ) are coordinated by eight oxide anions, forming a slightly distorted trigonal dodecahedron, in which two different bond lengths, 2.483 (4) Å and 2.516 (4) Å, each one appearing four times, are found (Fig. 2). The distance between two neodymium cations is 3.9116 (2) Å. The corresponding oxidomolybdate(IV), Nd2/3[MoO4], crystallizes in the same structure type (Schustereit et al., 2011).
Another, formula-analogous polymorph of neodymium(III) ortho-oxidotungstate(VI) with the composition Nd2[WO4]3 is already known in literature (Weil et al., 2009), with this compound crystallizing in the scheelite-derived Eu2[WO4]3 structure type (space group C2/c; Templeton & Zalkin, 1963). The main difference between these polymorphs is the emergence of a fifth, slightly longer distance from W6+ to O2− in Nd2[WO4]3, resulting in [W2O8]4– entities, built of two edge-sharing rectangular pyramids being present in its while in the title compound Nd2/3[WO4] the [WO4]2− tetrahedra remain isolated from each other. A rare-earth metal oxidotungstate(VI), crystallizing in the scheelite-type with a fully occupied cationic position is known with Eu2+ cations, namely Eu[WO4] (López-Moreno et al., 2011).
Synthesis and crystallization
Single-crystals of Nd2/3[WO4] formed in an unsuccessful synthesis attempt to achieve fluoride derivatives of neodymium tungstate, which was performed in fused silica ampoules, utilizing neodymium trifluoride, neodymium(III) oxide and tungsten trioxide as starting materials at approximately 1123 K. The crystals emerged as violet platelets and remained stable under atmospheric conditions.
Refinement
Crystal data, data collection and structure . The site occupancy of the neodymium cations was fixed at 2/3 to maintain electroneutrality.
details are summarized in Table 1Structural data
CCDC reference: 2312842
https://doi.org/10.1107/S2414314624001755/wm4207sup1.cif
contains datablock I. DOI:Structure factors: contains datablock I. DOI: https://doi.org/10.1107/S2414314624001755/wm4207Isup2.hkl
Nd0.67[WO4] | Dx = 7.061 Mg m−3 |
Mr = 344.01 | Mo Kα radiation, λ = 0.71073 Å |
Tetragonal, I41/a | Cell parameters from 1393 reflections |
a = 5.3048 (3) Å | θ = 2.9–33.0° |
c = 11.4999 (9) Å | µ = 45.98 mm−1 |
V = 323.62 (4) Å3 | T = 293 K |
Z = 4 | Platelet, violet |
F(000) = 584 | 0.09 × 0.08 × 0.06 mm |
Stoe IPDS diffractometer | 291 independent reflections |
Radiation source: fine-focus sealed tube | 231 reflections with I > 2σ(I) |
Graphite monochromator | Rint = 0.061 |
ω–scans | θmax = 32.4°, θmin = 4.2° |
Absorption correction: numerical [X-SHAPE (Stoe & Cie, 1997); HABITUS (Herrendorf, 1995)] | h = −8→7 |
Tmin = 0.015, Tmax = 0.060 | k = −8→7 |
2201 measured reflections | l = −17→17 |
Refinement on F2 | 0 restraints |
Least-squares matrix: full | w = 1/[σ2(Fo2) + (0.0265P)2] where P = (Fo2 + 2Fc2)/3 |
R[F2 > 2σ(F2)] = 0.022 | (Δ/σ)max < 0.001 |
wR(F2) = 0.050 | Δρmax = 1.08 e Å−3 |
S = 1.01 | Δρmin = −1.26 e Å−3 |
291 reflections | Extinction correction: SHELXL (Sheldrick, 2015b), Fc*=kFc[1+0.001xFc2λ3/sin(2θ)]-1/4 |
15 parameters | Extinction coefficient: 0.088 (4) |
Geometry. All esds (except the esd in the dihedral angle between two l.s. planes) are estimated using the full covariance matrix. The cell esds are taken into account individually in the estimation of esds in distances, angles and torsion angles; correlations between esds in cell parameters are only used when they are defined by crystal symmetry. An approximate (isotropic) treatment of cell esds is used for estimating esds involving l.s. planes. |
x | y | z | Uiso*/Ueq | Occ. (<1) | |
Nd | 0.000000 | 0.250000 | 0.625000 | 0.0163 (2) | 0.6667 |
W | 0.000000 | 0.250000 | 0.125000 | 0.0135 (2) | |
O | 0.2382 (8) | 0.3998 (7) | 0.0401 (3) | 0.0221 (8) |
U11 | U22 | U33 | U12 | U13 | U23 | |
Nd | 0.0176 (3) | 0.0176 (3) | 0.0139 (4) | 0.000 | 0.000 | 0.000 |
W | 0.0138 (2) | 0.0138 (2) | 0.0130 (3) | 0.000 | 0.000 | 0.000 |
O | 0.026 (2) | 0.022 (2) | 0.0185 (17) | 0.0001 (15) | 0.0047 (16) | 0.0011 (16) |
Nd—Oi | 2.483 (4) | Nd—Ndix | 3.9116 (2) |
Nd—Oii | 2.483 (4) | Nd—Ndx | 3.9116 (2) |
Nd—Oiii | 2.483 (4) | Nd—Ndxi | 3.9116 (2) |
Nd—Oiv | 2.483 (4) | Nd—Ndxii | 3.9116 (2) |
Nd—Ov | 2.516 (4) | W—Oxiii | 1.783 (4) |
Nd—Ovi | 2.516 (4) | W—Oxiv | 1.783 (4) |
Nd—Ovii | 2.516 (4) | W—Oxv | 1.783 (4) |
Nd—Oviii | 2.516 (4) | W—O | 1.783 (4) |
Oi—Nd—Oii | 125.78 (12) | Ov—Nd—Ovii | 98.65 (6) |
Oi—Nd—Oiii | 125.78 (12) | Ovi—Nd—Ovii | 98.65 (7) |
Oii—Nd—Oiii | 80.25 (19) | Oi—Nd—Oviii | 68.34 (10) |
Oi—Nd—Oiv | 80.2 (2) | Oii—Nd—Oviii | 72.96 (8) |
Oii—Nd—Oiv | 125.78 (12) | Oiii—Nd—Oviii | 152.39 (16) |
Oiii—Nd—Oiv | 125.78 (12) | Oiv—Nd—Oviii | 77.05 (15) |
Oi—Nd—Ov | 152.39 (16) | Ov—Nd—Oviii | 98.65 (7) |
Oii—Nd—Ov | 68.34 (10) | Ovi—Nd—Oviii | 98.65 (6) |
Oiii—Nd—Ov | 77.05 (15) | Ovii—Nd—Oviii | 134.35 (18) |
Oiv—Nd—Ov | 72.96 (8) | Oxiii—W—Oxiv | 107.43 (13) |
Oi—Nd—Ovi | 72.96 (8) | Oxiii—W—Oxv | 107.43 (13) |
Oii—Nd—Ovi | 77.05 (15) | Oxiv—W—Oxv | 113.6 (3) |
Oiii—Nd—Ovi | 68.34 (10) | Oxiii—W—O | 113.6 (3) |
Oiv—Nd—Ovi | 152.39 (16) | Oxiv—W—O | 107.43 (13) |
Ov—Nd—Ovi | 134.35 (18) | Oxv—W—O | 107.43 (13) |
Oi—Nd—Ovii | 77.05 (15) | W—O—Ndiii | 132.2 (2) |
Oii—Nd—Ovii | 152.39 (16) | W—O—Ndxvi | 120.51 (19) |
Oiii—Nd—Ovii | 72.96 (8) | Ndiii—O—Ndxvi | 102.95 (15) |
Oiv—Nd—Ovii | 68.34 (10) |
Symmetry codes: (i) y−1/4, −x+3/4, z+3/4; (ii) x−1/2, y, −z+1/2; (iii) −x+1/2, −y+1/2, −z+1/2; (iv) −y+1/4, x−1/4, z+3/4; (v) x−1/2, y−1/2, z+1/2; (vi) −x+1/2, −y+1, z+1/2; (vii) −y+3/4, x−1/4, −z+3/4; (viii) y−3/4, −x+3/4, −z+3/4; (ix) −x, −y, −z+1; (x) −x+1/2, −y+1/2, −z+3/2; (xi) −x−1/2, −y+1/2, −z+3/2; (xii) −x, −y+1, −z+1; (xiii) −x, −y+1/2, z; (xiv) −y+1/4, x+1/4, −z+1/4; (xv) y−1/4, −x+1/4, −z+1/4; (xvi) x+1/2, y+1/2, z−1/2. |
Funding information
Funding for this research was provided by: a German Research Foundation (DFG) grant ‘Open Access Publication Funding/2023–2024/University of Stuttgart’ (512689491).
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