inorganic compounds
Manganese(II) octauranium(IV) heptadecasulfide
aDepartment of Chemistry, Northwestern University, 2145 Sheridan Rd., Evanston, IL 60208-3113, USA
*Correspondence e-mail: ibers@chem.northwestern.edu
Single crystals of manganese(II) octauranium(IV) heptadecasulfide, MnU8S17, were grown from the reaction of the elements in a RbCl MnU8S17 crystallizes in the C2/m in the CrU8S17 structure type. The is composed of the following atoms with site symmetries shown: U1 (1), U2 (m), U3 (m), Mn1 (2/m), S1 (1), S2 (1); S3 (m), S4 (m), S5 (m), S6 (m) and S7 (2/m). The three UIV atoms are each coordinated by eight S atoms in a bicapped trigonal–prismatic arrangement. The MnII atom is coordinated by six S atoms in a distorted octahedral arrangement.
Related literature
MnU8S17 was previously determined to be isostructural with CrU8S17 (Noël et al., 1975) from powder diffraction data (Noël, 1973). Single-crystal refinements have been carried out for the Cr, Fe (Kohlmann et al., 1997), and Sc (Vovan & Rodier, 1979) analogues. Magnetic data for these compounds are available (Noël & Troc, 1979). The Mn—S distances are consistent with those expected for low-spin MnII (Shannon, 1976). For synthetic details, see: Bugaris & Ibers (2008); Haneveld & Jellinek (1969). For computational details, see: Gelato & Parthé (1987).
Experimental
Crystal data
|
Data collection: APEX2 (Bruker, 2009); cell SAINT (Bruker, 2009); data reduction: SAINT; program(s) used to solve structure: SHELXS97 (Sheldrick, 2008b); program(s) used to refine structure: SHELXL97 (Sheldrick, 2008b); molecular graphics: CrystalMaker (Palmer, 2009); software used to prepare material for publication: SHELXL97.
Supporting information
10.1107/S1600536811030546/wm2512sup1.cif
contains datablocks I, global. DOI:Structure factors: contains datablock I. DOI: 10.1107/S1600536811030546/wm2512Isup2.hkl
Black blocks of MnU8S17 were obtained by combining U (0.126 mmol), Mn (Johnson Matthey 99.3%, 0.126 mmol), and S (Mallinckrodt 99.6% sublimed, 0.504 mmol) in a RbCl
(Alfa 99.8%, 1.26 mmol) with As as a mineralizer (Strem 2N, 0.126 mmol). U filings (Oak Ridge National Laboratory) were powdered by hydridization and subsequent decomposition under heat and vacuum (Bugaris & Ibers, 2008), in a modification of a previous literature method (Haneveld & Jellinek, 1969). The mixture was loaded into a carbon-coated fused-silica tube in an Ar filled and then sealed under 10 -4 Torr vacuum. The vessel was heated in a computer-controlled furnace to 1073 K in 96 h, held for 96 h, cooled to 673 K in 96 h, then cooled to 298 K in 48 h. The was washed off with water and surface impurities were mechanically removed from a single crystal.The structure was standardized by means of the program STRUCTURE TIDY (Gelato & Parthé, 1987). The highest peak of 3.9 (4) e/Å3 is 1.33 Å from atom U2 and the deepest hole of -1.9 (4) e/Å3 is 0.88 Å from atom U3.
Data collection: APEX2 (Bruker, 2009); cell
SAINT (Bruker, 2009); data reduction: SAINT (Bruker, 2009); program(s) used to solve structure: SHELXS97 (Sheldrick, 2008b); program(s) used to refine structure: SHELXL97 (Sheldrick, 2008b); molecular graphics: CrystalMaker (Palmer, 2009); software used to prepare material for publication: SHELXL97 (Sheldrick, 2008b).MnU8S17 | F(000) = 2066 |
Mr = 2504.20 | Dx = 7.223 Mg m−3 |
Monoclinic, C2/m | Mo Kα radiation, λ = 0.71073 Å |
Hall symbol: -C 2y | Cell parameters from 8717 reflections |
a = 13.3549 (6) Å | θ = 2.9–30.5° |
b = 8.3893 (4) Å | µ = 58.10 mm−1 |
c = 10.4927 (5) Å | T = 100 K |
β = 101.658 (2)° | Rectangular block, black |
V = 1151.33 (9) Å3 | 0.15 × 0.09 × 0.08 mm |
Z = 2 |
Bruker APEXII CCD diffractometer | 1609 independent reflections |
Radiation source: fine-focus sealed tube | 1578 reflections with I > 2σ(I) |
Graphite monochromator | Rint = 0.034 |
ϕ and ω scans | θmax = 29.1°, θmin = 2.0° |
Absorption correction: numerical face indexed (SADABS; Sheldrick, 2008a) | h = −18→17 |
Tmin = 0.043, Tmax = 0.085 | k = −10→11 |
8422 measured reflections | l = −14→14 |
Refinement on F2 | Primary atom site location: structure-invariant direct methods |
Least-squares matrix: full | Secondary atom site location: difference Fourier map |
R[F2 > 2σ(F2)] = 0.026 | w = 1/[σ2(Fo2) + (0.0161Fo2)2] |
wR(F2) = 0.068 | (Δ/σ)max = 0.001 |
S = 2.10 | Δρmax = 3.90 e Å−3 |
1609 reflections | Δρmin = −1.94 e Å−3 |
73 parameters | Extinction correction: SHELXL97 (Sheldrick, 2008a), Fc*=kFc[1+0.001xFc2λ3/sin(2θ)]-1/4 |
0 restraints | Extinction coefficient: 0.00082 (4) |
MnU8S17 | V = 1151.33 (9) Å3 |
Mr = 2504.20 | Z = 2 |
Monoclinic, C2/m | Mo Kα radiation |
a = 13.3549 (6) Å | µ = 58.10 mm−1 |
b = 8.3893 (4) Å | T = 100 K |
c = 10.4927 (5) Å | 0.15 × 0.09 × 0.08 mm |
β = 101.658 (2)° |
Bruker APEXII CCD diffractometer | 1609 independent reflections |
Absorption correction: numerical face indexed (SADABS; Sheldrick, 2008a) | 1578 reflections with I > 2σ(I) |
Tmin = 0.043, Tmax = 0.085 | Rint = 0.034 |
8422 measured reflections |
R[F2 > 2σ(F2)] = 0.026 | 73 parameters |
wR(F2) = 0.068 | 0 restraints |
S = 2.10 | Δρmax = 3.90 e Å−3 |
1609 reflections | Δρmin = −1.94 e Å−3 |
x | y | z | Uiso*/Ueq | ||
U1 | 0.44179 (2) | 0.25549 (3) | 0.29633 (3) | 0.00531 (11) | |
U2 | 0.20440 (3) | 0.0000 | 0.45685 (4) | 0.00510 (12) | |
U3 | 0.68285 (3) | 0.0000 | 0.02025 (4) | 0.00541 (12) | |
Mn1 | 0.0000 | 0.0000 | 0.0000 | 0.0058 (5) | |
S1 | 0.12730 (15) | 0.3047 (2) | 0.46870 (18) | 0.0065 (4) | |
S2 | 0.36424 (15) | 0.3062 (2) | 0.03492 (18) | 0.0064 (4) | |
S3 | 0.0598 (2) | 0.0000 | 0.2314 (3) | 0.0066 (5) | |
S4 | 0.2086 (2) | 0.0000 | 0.7197 (3) | 0.0061 (5) | |
S5 | 0.3030 (2) | 0.0000 | 0.2463 (3) | 0.0058 (5) | |
S6 | 0.5211 (2) | 0.0000 | 0.1694 (3) | 0.0061 (5) | |
S7 | 0.0000 | 0.0000 | 0.5000 | 0.0056 (7) |
U11 | U22 | U33 | U12 | U13 | U23 | |
U1 | 0.0056 (2) | 0.00542 (18) | 0.00528 (17) | −0.00005 (10) | 0.00195 (13) | 0.00004 (10) |
U2 | 0.0053 (2) | 0.0054 (2) | 0.0051 (2) | 0.000 | 0.00217 (15) | 0.000 |
U3 | 0.0063 (2) | 0.0052 (2) | 0.00499 (19) | 0.000 | 0.00170 (16) | 0.000 |
Mn1 | 0.0047 (12) | 0.0068 (11) | 0.0064 (10) | 0.000 | 0.0024 (9) | 0.000 |
S1 | 0.0062 (10) | 0.0067 (9) | 0.0069 (8) | −0.0004 (8) | 0.0017 (7) | 0.0000 (7) |
S2 | 0.0064 (10) | 0.0058 (9) | 0.0075 (8) | −0.0008 (7) | 0.0023 (7) | 0.0000 (7) |
S3 | 0.0079 (14) | 0.0067 (13) | 0.0057 (11) | 0.000 | 0.0024 (10) | 0.000 |
S4 | 0.0059 (14) | 0.0056 (12) | 0.0071 (12) | 0.000 | 0.0018 (10) | 0.000 |
S5 | 0.0059 (14) | 0.0062 (12) | 0.0058 (11) | 0.000 | 0.0027 (10) | 0.000 |
S6 | 0.0067 (14) | 0.0059 (12) | 0.0055 (12) | 0.000 | 0.0006 (10) | 0.000 |
S7 | 0.0034 (19) | 0.0050 (16) | 0.0091 (17) | 0.000 | 0.0025 (14) | 0.000 |
U1—S3i | 2.7546 (19) | U3—U1iv | 4.0205 (4) |
U1—S2 | 2.7621 (19) | U3—U1vii | 4.0205 (4) |
U1—S1ii | 2.802 (2) | Mn1—S3 | 2.398 (3) |
U1—S5 | 2.8129 (19) | Mn1—S3x | 2.398 (3) |
U1—S6 | 2.8390 (18) | Mn1—S2xi | 2.5168 (19) |
U1—S1iii | 2.8469 (19) | Mn1—S2xii | 2.5168 (19) |
U1—S4iii | 2.852 (2) | Mn1—S2xiii | 2.5168 (19) |
U1—S7i | 2.9509 (3) | Mn1—S2xiv | 2.5168 (19) |
U1—U3iv | 4.0206 (4) | S1—U2iii | 2.763 (2) |
U1—U2iii | 4.0951 (5) | S1—U1xiv | 2.802 (2) |
U2—S3 | 2.735 (3) | S1—U1iii | 2.8469 (19) |
U2—S4 | 2.747 (3) | S2—Mn1i | 2.5168 (19) |
U2—S1iii | 2.763 (2) | S2—U3iv | 2.680 (2) |
U2—S1v | 2.763 (2) | S2—U3xv | 2.896 (2) |
U2—S1 | 2.768 (2) | S3—U1xi | 2.7546 (19) |
U2—S1vi | 2.768 (2) | S3—U1xiv | 2.7546 (19) |
U2—S5 | 2.791 (3) | S4—U3viii | 2.819 (3) |
U2—S7 | 2.8559 (4) | S4—U1v | 2.852 (2) |
U2—U1iii | 4.0952 (5) | S4—U1iii | 2.852 (2) |
U2—U1v | 4.0952 (5) | S5—U1vi | 2.8130 (19) |
U3—S2iv | 2.680 (2) | S5—U3iv | 2.841 (3) |
U3—S2vii | 2.680 (2) | S6—U1vi | 2.8390 (18) |
U3—S4viii | 2.819 (3) | S6—U3iv | 3.031 (3) |
U3—S5iv | 2.841 (3) | S7—U2xvi | 2.8559 (4) |
U3—S2ii | 2.896 (2) | S7—U1xi | 2.9509 (3) |
U3—S2ix | 2.896 (2) | S7—U1iii | 2.9509 (3) |
U3—S6 | 2.912 (3) | S7—U1v | 2.9509 (3) |
U3—S6iv | 3.031 (3) | S7—U1xiv | 2.9509 (3) |
S3i—U1—S2 | 76.01 (7) | S2vii—U3—S2ix | 134.99 (5) |
S3i—U1—S1ii | 79.55 (7) | S4viii—U3—S2ix | 71.79 (6) |
S2—U1—S1ii | 140.70 (6) | S5iv—U3—S2ix | 80.27 (6) |
S3i—U1—S5 | 155.43 (8) | S2ii—U3—S2ix | 68.33 (8) |
S2—U1—S5 | 80.28 (7) | S2iv—U3—S6 | 87.07 (5) |
S1ii—U1—S5 | 116.52 (6) | S2vii—U3—S6 | 87.07 (5) |
S3i—U1—S6 | 99.20 (7) | S4viii—U3—S6 | 76.83 (8) |
S2—U1—S6 | 75.58 (7) | S5iv—U3—S6 | 137.15 (8) |
S1ii—U1—S6 | 78.56 (7) | S2ii—U3—S6 | 132.44 (5) |
S5—U1—S6 | 68.37 (7) | S2ix—U3—S6 | 132.44 (5) |
S3i—U1—S1iii | 130.39 (7) | S2iv—U3—S6iv | 73.60 (4) |
S2—U1—S1iii | 139.93 (6) | S2vii—U3—S6iv | 73.60 (4) |
S1ii—U1—S1iii | 78.93 (6) | S4viii—U3—S6iv | 148.59 (8) |
S5—U1—S1iii | 73.14 (7) | S5iv—U3—S6iv | 65.38 (8) |
S6—U1—S1iii | 119.29 (6) | S2ii—U3—S6iv | 131.75 (5) |
S3i—U1—S4iii | 83.16 (6) | S2ix—U3—S6iv | 131.75 (5) |
S2—U1—S4iii | 73.29 (7) | S6—U3—S6iv | 71.77 (8) |
S1ii—U1—S4iii | 133.46 (7) | S2iv—U3—U1iv | 43.17 (4) |
S5—U1—S4iii | 96.17 (6) | S2vii—U3—U1iv | 107.02 (4) |
S6—U1—S4iii | 147.19 (8) | S4viii—U3—U1iv | 147.748 (6) |
S1iii—U1—S4iii | 80.27 (7) | S5iv—U3—U1iv | 44.40 (4) |
S3i—U1—S7i | 65.25 (5) | S2ii—U3—U1iv | 123.06 (4) |
S2—U1—S7i | 127.10 (4) | S2ix—U3—U1iv | 86.95 (4) |
S1ii—U1—S7i | 65.71 (4) | S6—U3—U1iv | 102.46 (5) |
S5—U1—S7i | 137.07 (6) | S6iv—U3—U1iv | 44.81 (3) |
S6—U1—S7i | 142.74 (6) | S2iv—U3—U1vii | 107.02 (4) |
S1iii—U1—S7i | 65.18 (4) | S2vii—U3—U1vii | 43.17 (4) |
S4iii—U1—S7i | 67.79 (5) | S4viii—U3—U1vii | 147.748 (6) |
S3i—U1—U3iv | 110.77 (6) | S5iv—U3—U1vii | 44.40 (4) |
S2—U1—U3iv | 41.58 (4) | S2ii—U3—U1vii | 86.95 (4) |
S1ii—U1—U3iv | 126.98 (4) | S2ix—U3—U1vii | 123.06 (4) |
S5—U1—U3iv | 44.95 (6) | S6—U3—U1vii | 102.46 (5) |
S6—U1—U3iv | 48.80 (6) | S6iv—U3—U1vii | 44.81 (3) |
S1iii—U1—U3iv | 117.93 (4) | U1iv—U3—U1vii | 64.432 (10) |
S4iii—U1—U3iv | 99.54 (5) | S3—Mn1—S3x | 180.0 |
S7i—U1—U3iv | 166.765 (10) | S3—Mn1—S2xi | 87.41 (7) |
S3i—U1—U2iii | 98.80 (5) | S3x—Mn1—S2xi | 92.59 (7) |
S2—U1—U2iii | 114.83 (4) | S3—Mn1—S2xii | 92.59 (7) |
S1ii—U1—U2iii | 98.88 (4) | S3x—Mn1—S2xii | 87.41 (7) |
S5—U1—U2iii | 96.86 (5) | S2xi—Mn1—S2xii | 180.00 (11) |
S6—U1—U2iii | 161.01 (4) | S3—Mn1—S2xiii | 92.59 (7) |
S1iii—U1—U2iii | 42.42 (4) | S3x—Mn1—S2xiii | 87.41 (7) |
S4iii—U1—U2iii | 42.01 (5) | S2xi—Mn1—S2xiii | 99.50 (9) |
S7i—U1—U2iii | 44.218 (7) | S2xii—Mn1—S2xiii | 80.50 (9) |
U3iv—U1—U2iii | 128.230 (12) | S3—Mn1—S2xiv | 87.41 (7) |
S3—U2—S4 | 137.38 (8) | S3x—Mn1—S2xiv | 92.59 (7) |
S3—U2—S1iii | 129.53 (6) | S2xi—Mn1—S2xiv | 80.50 (9) |
S4—U2—S1iii | 82.29 (6) | S2xii—Mn1—S2xiv | 99.50 (9) |
S3—U2—S1v | 129.53 (6) | S2xiii—Mn1—S2xiv | 180.00 (9) |
S4—U2—S1v | 82.29 (6) | U2iii—S1—U2 | 105.75 (7) |
S1iii—U2—S1v | 72.72 (8) | U2iii—S1—U1xiv | 148.40 (8) |
S3—U2—S1 | 80.49 (5) | U2—S1—U1xiv | 95.33 (6) |
S4—U2—S1 | 83.52 (5) | U2iii—S1—U1iii | 104.35 (6) |
S1iii—U2—S1 | 74.25 (7) | U2—S1—U1iii | 93.65 (6) |
S1v—U2—S1 | 145.44 (5) | U1xiv—S1—U1iii | 97.35 (6) |
S3—U2—S1vi | 80.49 (5) | Mn1i—S2—U3iv | 137.09 (8) |
S4—U2—S1vi | 83.52 (5) | Mn1i—S2—U1 | 96.17 (6) |
S1iii—U2—S1vi | 145.44 (5) | U3iv—S2—U1 | 95.25 (6) |
S1v—U2—S1vi | 74.25 (7) | Mn1i—S2—U3xv | 104.41 (7) |
S1—U2—S1vi | 134.89 (9) | U3iv—S2—U3xv | 111.68 (7) |
S3—U2—S5 | 71.28 (8) | U1—S2—U3xv | 106.32 (6) |
S4—U2—S5 | 151.35 (9) | Mn1—S3—U2 | 155.27 (12) |
S1iii—U2—S5 | 74.75 (6) | Mn1—S3—U1xi | 99.23 (8) |
S1v—U2—S5 | 74.75 (6) | U2—S3—U1xi | 97.20 (7) |
S1—U2—S5 | 105.95 (4) | Mn1—S3—U1xiv | 99.23 (8) |
S1vi—U2—S5 | 105.95 (4) | U2—S3—U1xiv | 97.20 (7) |
S3—U2—S7 | 66.83 (6) | U1xi—S3—U1xiv | 96.26 (9) |
S4—U2—S7 | 70.55 (6) | U2—S4—U3viii | 150.90 (11) |
S1iii—U2—S7 | 134.75 (4) | U2—S4—U1v | 93.99 (7) |
S1v—U2—S7 | 134.75 (4) | U3viii—S4—U1v | 105.98 (7) |
S1—U2—S7 | 67.46 (4) | U2—S4—U1iii | 93.99 (7) |
S1vi—U2—S7 | 67.46 (4) | U3viii—S4—U1iii | 105.98 (7) |
S5—U2—S7 | 138.10 (6) | U1v—S4—U1iii | 91.99 (8) |
S3—U2—U1iii | 101.73 (5) | U2—S5—U1 | 104.51 (7) |
S4—U2—U1iii | 44.00 (4) | U2—S5—U1vi | 104.51 (7) |
S1iii—U2—U1iii | 89.36 (4) | U1—S5—U1vi | 99.28 (9) |
S1v—U2—U1iii | 125.64 (4) | U2—S5—U3iv | 156.22 (12) |
S1—U2—U1iii | 43.93 (4) | U1—S5—U3iv | 90.65 (7) |
S1vi—U2—U1iii | 101.83 (4) | U1vi—S5—U3iv | 90.65 (7) |
S5—U2—U1iii | 149.546 (11) | U1vi—S6—U1 | 98.05 (8) |
S7—U2—U1iii | 46.101 (7) | U1vi—S6—U3 | 129.76 (5) |
S3—U2—U1v | 101.73 (5) | U1—S6—U3 | 129.76 (5) |
S4—U2—U1v | 44.00 (4) | U1vi—S6—U3iv | 86.39 (7) |
S1iii—U2—U1v | 125.64 (4) | U1—S6—U3iv | 86.39 (7) |
S1v—U2—U1v | 89.36 (4) | U3—S6—U3iv | 108.23 (8) |
S1—U2—U1v | 101.83 (4) | U2—S7—U2xvi | 180.0 |
S1vi—U2—U1v | 43.93 (4) | U2—S7—U1xi | 90.317 (8) |
S5—U2—U1v | 149.546 (10) | U2xvi—S7—U1xi | 89.682 (8) |
S7—U2—U1v | 46.101 (7) | U2—S7—U1iii | 89.683 (8) |
U1iii—U2—U1v | 60.118 (10) | U2xvi—S7—U1iii | 90.318 (8) |
S2iv—U3—S2vii | 146.88 (9) | U1xi—S7—U1iii | 180.0 |
S2iv—U3—S4viii | 105.15 (4) | U2—S7—U1v | 89.683 (8) |
S2vii—U3—S4viii | 105.15 (4) | U2xvi—S7—U1v | 90.318 (8) |
S2iv—U3—S5iv | 81.18 (4) | U1xi—S7—U1v | 91.925 (11) |
S2vii—U3—S5iv | 81.18 (4) | U1iii—S7—U1v | 88.075 (11) |
S4viii—U3—S5iv | 146.02 (8) | U2—S7—U1xiv | 90.317 (8) |
S2iv—U3—S2ii | 134.99 (5) | U2xvi—S7—U1xiv | 89.682 (8) |
S2vii—U3—S2ii | 68.31 (7) | U1xi—S7—U1xiv | 88.075 (11) |
S4viii—U3—S2ii | 71.79 (6) | U1iii—S7—U1xiv | 91.925 (11) |
S5iv—U3—S2ii | 80.27 (6) | U1v—S7—U1xiv | 180.0 |
S2iv—U3—S2ix | 68.31 (7) |
Symmetry codes: (i) x+1/2, y+1/2, z; (ii) x+1/2, −y+1/2, z; (iii) −x+1/2, −y+1/2, −z+1; (iv) −x+1, −y, −z; (v) −x+1/2, y−1/2, −z+1; (vi) x, −y, z; (vii) −x+1, y, −z; (viii) −x+1, −y, −z+1; (ix) x+1/2, y−1/2, z; (x) −x, −y, −z; (xi) x−1/2, y−1/2, z; (xii) −x+1/2, −y+1/2, −z; (xiii) −x+1/2, y−1/2, −z; (xiv) x−1/2, −y+1/2, z; (xv) x−1/2, y+1/2, z; (xvi) −x, −y, −z+1. |
Experimental details
Crystal data | |
Chemical formula | MnU8S17 |
Mr | 2504.20 |
Crystal system, space group | Monoclinic, C2/m |
Temperature (K) | 100 |
a, b, c (Å) | 13.3549 (6), 8.3893 (4), 10.4927 (5) |
β (°) | 101.658 (2) |
V (Å3) | 1151.33 (9) |
Z | 2 |
Radiation type | Mo Kα |
µ (mm−1) | 58.10 |
Crystal size (mm) | 0.15 × 0.09 × 0.08 |
Data collection | |
Diffractometer | Bruker APEXII CCD diffractometer |
Absorption correction | Numerical face indexed (SADABS; Sheldrick, 2008a) |
Tmin, Tmax | 0.043, 0.085 |
No. of measured, independent and observed [I > 2σ(I)] reflections | 8422, 1609, 1578 |
Rint | 0.034 |
(sin θ/λ)max (Å−1) | 0.685 |
Refinement | |
R[F2 > 2σ(F2)], wR(F2), S | 0.026, 0.068, 2.10 |
No. of reflections | 1609 |
No. of parameters | 73 |
Δρmax, Δρmin (e Å−3) | 3.90, −1.94 |
Computer programs: APEX2 (Bruker, 2009), SAINT (Bruker, 2009), SHELXS97 (Sheldrick, 2008b), SHELXL97 (Sheldrick, 2008b), CrystalMaker (Palmer, 2009).
Acknowledgements
The research was kindly supported by the US Department of Energy, Basic Energy Sciences, Chemical Sciences, Biosciences, and Geosciences Division and Divison of Materials Science and Engineering Grant ER-15522. Use was made of the IMSERC X-ray Facility at Northwestern University, supported by the International Institute of Nanotechnology (IIN).
References
Bruker (2009). APEX2 and SAINT. Bruker AXS Inc., Madison, Wisconsin, USA. Google Scholar
Bugaris, D. E. & Ibers, J. A. (2008). Acta Cryst. E64, i55–i56. Web of Science CrossRef IUCr Journals Google Scholar
Gelato, L. M. & Parthé, E. (1987). J. Appl. Cryst. 20, 139–143. CrossRef Web of Science IUCr Journals Google Scholar
Haneveld, A. J. K. & Jellinek, F. (1969). J. Less Common Met. 18, 123–129. CrossRef CAS Web of Science Google Scholar
Kohlmann, H., Stöwe, K. & Beck, H. P. (1997). Z. Anorg. Allg. Chem. 623, 897–900. CrossRef CAS Google Scholar
Noël, H. (1973). C. R. Seances Acad. Sci. Ser. C, 277, 463–464. Google Scholar
Noël, H., Potel, M. & Padiou, J. (1975). Acta Cryst. B31, 2634–2637. CrossRef IUCr Journals Web of Science Google Scholar
Noël, H. & Troc, R. (1979). J. Solid State Chem. 27, 123–135. Google Scholar
Palmer, D. (2009). CrystalMaker. CrystalMaker Software Ltd, Oxfordshire, England. Google Scholar
Shannon, R. D. (1976). Acta Cryst. A32, 751–767. CrossRef CAS IUCr Journals Web of Science Google Scholar
Sheldrick, G. M. (2008a). SADABS. University of Göttingen, Göttingen, Germany. Google Scholar
Sheldrick, G. M. (2008b). Acta Cryst. A64, 112–122. Web of Science CrossRef CAS IUCr Journals Google Scholar
Vovan, T. & Rodier, N. (1979). C. R. Seances Acad. Sci. Ser. C, 289, 17–20. CAS Google Scholar
This is an open-access article distributed under the terms of the Creative Commons Attribution (CC-BY) Licence, which permits unrestricted use, distribution, and reproduction in any medium, provided the original authors and source are cited.
Single crystals of MnU8S17 were obtained in an attempt to synthesize a quaternary arsenic-containing compound (see Experimental).
MnU8S17 crystallizes in the CrU8S17 structure type (Noël et al., 1975). Structure determinations based on single crystal data for isostructural ScU8S17 (Vovan & Rodier, 1979) and FeU8S17 (Kohlmann et al., 1997) have also been reported, and MnU8S17 was also determined to be isostructural from powder diffraction experiments (Noël, 1973).
The structure comprises three independent U atoms, each coordinated by eight S atoms in a bicapped trigonal prismatic arrangement, and one independent Mn atom that is coordinated by six S atoms in a distorted octahedral arrangement (Figs. 1,2). There are no S—S bonds in the structure, so formal oxidation states of +IV, +II, and -II may be assigned to U, Mn, and S, respectively. U—S distances have the following ranges: U1—S: 2.7546 (19) Å to 2.9509 (3) Å; U2—S: 2.735 (3) Å to 2.8559 (4) Å; U3—S: 2.680 (2) Å to 3.031 (3) Å. These distances are similar to those found in the structures of the Cr and Fe analogues. Mn—S distances range from 2.398 (3) Å to 2.5168 (19) Å; these are shorter than a typical high-spin six-coordinate MnII—S distance of 2.66 Å, but are consistent with the typical low-spin six-coordinate MnII—S distance of 2.51 Å (Shannon, 1976). Low-spin MnII is consistent with the 6S5/2 configuration assigned from magnetic studies (Noël & Troc, 1979).