inorganic compounds
Redetermination of the 4
of ThIaAnorganische Chemie, Fachbereich Chemie, Philipps-Universität Marburg, Hans-Meerwein-Strasse 4, 35032 Marburg, Germany
*Correspondence e-mail: f.kraus@uni-marburg.de
Single crystals of ThI4, thorium(IV) tetraiodide, were grown from thorium dioxide and aluminium triiodide. In comparison with the structure model reported previously for this compound [Zalkin et al. (1964). Inorg. Chem. 3, 639–644], we have determined the lattice parameters and fractional coordinates to a much higher precision, also leading to a better reliability factor (R = 0.029 versus 0.09). The of the ThIV atom is eight. Its has the shape of an irregular square antiprism. The I atoms each bridge two ThIV atoms, resulting in the formation of infinite layers parallel to (-101) that can be described with the Niggli formula 2∞[ThI6/2I2/2].
Keywords: crystal structure; thorium; iodide; redetermination.
CCDC reference: 1821645
Structure description
ThI4 was first synthesized in 1882 (Nilson, 1882) by heating thorium metal in I2 vapour. Its has been known since 1964 (Zalkin et al., 1964) and IR and Raman spectra were measured in 1976 (Brown et al., 1976). The other tetrahalides of thorium, viz. ThF4 (von Wartenberg et al., 1923), ThCl4 (Matignon & Delepine, 1907), ThBr4 (Nilson, 1882), and the bi- and trivalent compounds ThI2 (Anderson & D'Eye, 1949) and ThI3 (Hayek & Rehner, 1949) are also known. In our efforts to synthesize pure actinide halides, we have developed a chemical vapour-transport method (Deubner et al., 2017), which allowed us to obtain single crystals suitable for X-ray diffraction experiments.
The lattice parameters obtained by our single-crystal ) agree with those obtained previously (a = 13.22, b = 8.07, c = 7.77 Å, β = 98.68°, Z = 4, T = n.a.; Zalkin et al., 1964). The ThIV atom is located on a general position and has eight iodine atoms in its irregular square-antiprismatic coordination sphere (Fig. 1). The Th—I distances range between 3.1324 (7) and 3.2896 (7) Å and are in good agreement with the previously reported data (3.128–3.291 Å; Zalkin et al., 1964). As might be expected, the Th—I distances are comparable with those reported for the of ThTe2I2 which features a similar anti-prismatic coordination sphere for the ThIV atom [3.1445 (9)–3.2157 (7) Å; Rocker & Tremel, 2001]. The same applies for the Th⋯Th distances [4.4770 (6) Å] and the shortest I⋯I distances between the layers ranging from 4.1526 (8) to 4.2423 (8) Å [Th⋯Th distance: 4.478 (5), I⋯I distances: 4.079–4.252 (6) Å; Zalkin et al., 1964). The I—I—I angles (Table 1) of the irregular polyhedron faces are also in good agreement with the previous (Zalkin et al., 1964).
(Table 1With respect to the shortest Th⋯Th distance of 4.4770 (6) Å, the ThIV atoms are bridged by three iodide atoms (a triangular face of the square antiprism formed by the I2, I3 and I4 atoms), formally leading to the formation of one-dimensional infinite chains. These chains are in turn interconnected by shared edges of the antiprism (the I1 atoms), which corresponds to a Th⋯Th distance of 5.1998 (8) Å. This connection leads to infinite layers of 2∞[ThI6/2I2/2], running parallel to (01) (Fig. 2). The arrangement of the ThIV atoms within a layer corresponds to a 63 network. Fig. 3 shows the of the compound.
Synthesis and crystallization
Thorium(IV) tetraiodide was synthesized from dry thorium dioxide (3.00 g, 11.36 mmol, Merck) and sublimed aluminium iodide (9.28 g, 22.76 mmol) in an evacuated and flame-sealed borosilicate tube at 623 K with an additional in situ chemical vapour transport (Deubner et al., 2017). The temperature at the source region was 723 K and at the sink region 623 K; the length of the tube was 13 cm. Canary yellow crystals could be obtained by an additional vacuum at 723 K in an evacuated, flame-sealed borosilicate tube.
Refinement
As a starting model for the structure 4 structure were used (Zalkin et al., 1964). Crystal data, data collection and structure details are summarized in Table 2.
the atomic coordinates of the previously reported ThI
|
Structural data
CCDC reference: 1821645
Data collection: X-AREA (Stoe & Cie, 2011); cell
X-AREA (Stoe & Cie, 2011); data reduction: X-RED (Stoe & Cie, 2009); program(s) used to solve structure: coordinates taken from a previous model; program(s) used to refine structure: SHELXL2018 (Sheldrick, 2015); molecular graphics: DIAMOND (Brandenburg, 2015); software used to prepare material for publication: publCIF (Westrip, 2010).ThI4 | cell choice according to the previous literature |
Mr = 739.64 | Dx = 6.020 Mg m−3 |
Monoclinic, P21/n | Mo Kα radiation, λ = 0.71073 Å |
a = 13.1903 (16) Å | Cell parameters from 6166 reflections |
b = 8.0686 (12) Å | θ = 4.9–58.3° |
c = 7.755 (1) Å | µ = 33.29 mm−1 |
β = 98.619 (10)° | T = 243 K |
V = 816.02 (19) Å3 | Hexagonal-block, canary yellow |
Z = 4 | 0.39 × 0.26 × 0.14 mm |
F(000) = 1208 |
Stoe IPDS 2T diffractometer | 2174 independent reflections |
Radiation source: sealed X-ray tube, 12 x 0.4 mm long-fine focus | 1988 reflections with I > 2σ(I) |
Graphite monochromator | Rint = 0.063 |
rotation method scans | θmax = 29.3°, θmin = 2.9° |
Absorption correction: numerical (X-RED and X-SHAPE; Stoe & Cie, 2009) | h = −18→18 |
Tmin = 0.240, Tmax = 0.622 | k = −11→9 |
5880 measured reflections | l = −10→10 |
Refinement on F2 | Primary atom site location: isomorphous structure methods |
Least-squares matrix: full | Secondary atom site location: difference Fourier map |
R[F2 > 2σ(F2)] = 0.029 | w = 1/[σ2(Fo2) + (0.0391P)2] where P = (Fo2 + 2Fc2)/3 |
wR(F2) = 0.071 | (Δ/σ)max < 0.001 |
S = 1.18 | Δρmax = 2.82 e Å−3 |
2174 reflections | Δρmin = −2.06 e Å−3 |
47 parameters | Extinction correction: SHELXL2018 (Sheldrick, 2015), Fc*=kFc[1+0.001xFc2λ3/sin(2θ)]-1/4 |
0 restraints | Extinction coefficient: 0.00252 (18) |
0 constraints |
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 | ||
Th1 | 0.18352 (2) | 0.01507 (3) | 0.17681 (3) | 0.01185 (10) | |
I1 | 0.05855 (4) | 0.90966 (7) | 0.80945 (6) | 0.01692 (12) | |
I2 | 0.18029 (4) | 0.25357 (6) | 0.49875 (6) | 0.01548 (12) | |
I3 | 0.09726 (4) | 0.69187 (6) | 0.32569 (6) | 0.01769 (13) | |
I4 | 0.15132 (4) | 0.36459 (6) | 0.00132 (6) | 0.01833 (13) |
U11 | U22 | U33 | U12 | U13 | U23 | |
Th1 | 0.01200 (14) | 0.00591 (15) | 0.01672 (14) | −0.00018 (8) | −0.00090 (8) | −0.00035 (8) |
I1 | 0.0137 (2) | 0.0170 (3) | 0.0190 (2) | 0.00123 (17) | −0.00083 (15) | −0.00413 (17) |
I2 | 0.0177 (2) | 0.0117 (2) | 0.0173 (2) | −0.00222 (16) | 0.00343 (15) | −0.00095 (16) |
I3 | 0.0134 (2) | 0.0108 (3) | 0.0290 (3) | 0.00061 (16) | 0.00340 (17) | 0.00347 (18) |
I4 | 0.0218 (2) | 0.0100 (2) | 0.0202 (2) | −0.00236 (17) | −0.00671 (17) | 0.00211 (16) |
Th1—I4 | 3.1324 (7) | Th1—I3iii | 3.2269 (6) |
Th1—I3i | 3.1340 (6) | Th1—I1iv | 3.2675 (6) |
Th1—I2 | 3.1576 (6) | Th1—I4iii | 3.2896 (7) |
Th1—I1ii | 3.1857 (7) | Th1—Th1v | 4.4770 (6) |
Th1—I2iii | 3.2041 (6) | Th1—Th1vi | 5.1998 (8) |
I4—Th1—I3i | 151.181 (15) | I3iii—Th1—I4iii | 71.069 (16) |
I4—Th1—I2 | 77.164 (17) | I1iv—Th1—I4iii | 125.668 (16) |
I3i—Th1—I2 | 99.624 (17) | I4—Th1—Th1v | 47.262 (12) |
I4—Th1—I1ii | 80.418 (16) | I3i—Th1—Th1v | 143.752 (15) |
I3i—Th1—I1ii | 86.534 (16) | I2—Th1—Th1v | 45.695 (11) |
I2—Th1—I1ii | 143.446 (15) | I1ii—Th1—Th1v | 126.717 (13) |
I4—Th1—I2iii | 117.155 (16) | I2iii—Th1—Th1v | 118.545 (15) |
I3i—Th1—I2iii | 82.309 (17) | I3iii—Th1—Th1v | 44.426 (10) |
I2—Th1—I2iii | 144.308 (10) | I1iv—Th1—Th1v | 99.896 (13) |
I1ii—Th1—I2iii | 72.070 (15) | I4iii—Th1—Th1v | 87.161 (14) |
I4—Th1—I3iii | 70.287 (15) | I4—Th1—Th1vi | 76.002 (12) |
I3i—Th1—I3iii | 138.169 (14) | I3i—Th1—Th1vi | 78.151 (12) |
I2—Th1—I3iii | 81.582 (15) | I2—Th1—Th1vi | 108.886 (14) |
I1ii—Th1—I3iii | 117.173 (16) | I1ii—Th1—Th1vi | 36.853 (10) |
I2iii—Th1—I3iii | 74.250 (16) | I2iii—Th1—Th1vi | 106.387 (14) |
I4—Th1—I1iv | 77.136 (15) | I3iii—Th1—Th1vi | 141.428 (14) |
I3i—Th1—I1iv | 74.466 (15) | I1iv—Th1—Th1vi | 35.786 (10) |
I2—Th1—I1iv | 74.449 (15) | I4iii—Th1—Th1vi | 147.277 (14) |
I1ii—Th1—I1iv | 72.639 (17) | Th1v—Th1—Th1vi | 118.313 (9) |
I2iii—Th1—I1iv | 138.513 (15) | Th1vii—I1—Th1iv | 107.361 (17) |
I3iii—Th1—I1iv | 143.026 (16) | Th1—I2—Th1v | 89.455 (15) |
I4—Th1—I4iii | 133.886 (15) | Th1viii—I3—Th1v | 89.458 (15) |
I3i—Th1—I4iii | 69.451 (15) | Th1—I4—Th1v | 88.361 (15) |
I2—Th1—I4iii | 73.192 (16) | Th1—I4—I1ix | 161.270 (12) |
I1ii—Th1—I4iii | 140.814 (17) | Th1v—I4—I1ix | 76.457 (11) |
I2iii—Th1—I4iii | 74.312 (15) |
Symmetry codes: (i) x, y−1, z; (ii) x, y−1, z−1; (iii) −x+1/2, y−1/2, −z+1/2; (iv) −x, −y+1, −z+1; (v) −x+1/2, y+1/2, −z+1/2; (vi) −x, −y, −z; (vii) x, y+1, z+1; (viii) x, y+1, z; (ix) x, y+1, z−1. |
Face | Present refinement | Previous refinement (Zalkin et al., 1964) |
I2—I1iv—I3i | 76.510 (15) | 76.5 |
I1iv—I3i—I4iii | 101.411 (17) | 101.5 |
I3i—I4iii—I2 | 79.585 (15) | 79.5 |
I4iii—I2—I1iv | 97.949 (16) | 98.0 |
I4—I1ii—I2iii | 87.142 (16) | 87.0 |
I2iii—I3iii—I4 | 91.545 (16) | 91.5 |
I1ii—I2iii—I3iii | 91.485 (16) | 91.4 |
I1ii—I4—I3iii | 89.821 (15) | 90.0 |
Symmetry codes: (i) x, y - 1, z; (ii) x, y - 1, z - 1; (iii) -x + 1/2, y - 1/2, -z + 1/2; (iv) -x, -y + 1, -z + 1. |
Acknowledgements
FK thanks Dr Harms for X-ray measurement time.
Funding information
FK thanks the DFG for very generous funding.
References
Anderson, J. S. & D'Eye, R. W. M. (1949). Angew. Chem. 61, 416. Google Scholar
Brandenburg, K. (2015). DIAMOND. Crystal Impact GbR, Bonn, Germany. Google Scholar
Brown, D., Whittaker, B. & De Paoli, G. (1976). U. K. At. Energy Res. Establ., Rep. Issue AERE-R, 8367 CAN85:185994. Google Scholar
Deubner, H. L., Rudel, S. S. & Kraus, F. (2017). Z. Anorg. Allg. Chem. 643, 2005–2010. CrossRef CAS Google Scholar
Hayek, E. & Rehner, T. (1949). Oesterr. Chem. Ztg. 50, 161. Google Scholar
Matignon, C. & Delepine, M. (1907). Ann. Chim. Phys. 10, 130–144. CAS Google Scholar
Nilson, L. F. (1882). Ber. Dtsch Chem. Ges. 15, 2537–2547. CrossRef Google Scholar
Rocker, F. & Tremel, W. (2001). Z. Anorg. Allg. Chem. 627, 1305–1308. CrossRef CAS Google Scholar
Sheldrick, G. M. (2015). Acta Cryst. C71, 3–8. Web of Science CrossRef IUCr Journals Google Scholar
Stoe & Cie (2009). X-RED32 and X-SHAPE. Stoe & Cie GmbH, Darmstadt, Germany. Google Scholar
Stoe & Cie (2011). X-AREA. Stoe & Cie GmbH, Darmstadt, Germany. Google Scholar
Wartenberg, H. von, Broy, J. & Reinicke, R. (1923). Z. Elektrochem. Angew. Phys. Chem. 29, 214–217. Google Scholar
Westrip, S. P. (2010). J. Appl. Cryst. 43, 920–925. Web of Science CrossRef CAS IUCr Journals Google Scholar
Zalkin, A., Forrester, J. D. & Templeton, D. H. (1964). Inorg. Chem. 3, 639–644. CrossRef CAS Web of Science Google Scholar
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