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1.
Syntheses, Properties and Crystal Structures of the Cluster Salts Bi6[PtBi6Cl12] and Bi2/3[PtBi6Cl12] Melting reactions of Bi with Pt and BiCl3 yield shiny black, air insensitive crystals of the subchlorides Bi6[PtBi6Cl12] and Bi2/3[PtBi6Cl12]. Despite the substantial difference in the bismuth content the two compounds have almost the same pseudo‐cubic unit cell and follow the structural principle of a CsCl type cluster salt. Bi6[PtBi6Cl12] consists of cuboctahedral [PtBi6Cl12]2? clusters and Bi62+ polycations (a = 9.052(2) Å, α = 89.88(2)°, space group P 1, multiple twins). In the electron precise cluster anion, the Pt atom (18 electron count) centers an octahedron of Bi atoms whose edges are bridged by chlorine atoms. The Bi62+ cation, a nido cluster with 16 skeletal electrons, has the shape of a distorted octahedron with an opened edge. In Bi2/3[PtBi6Cl12] the anion charge is compensated by weakly coordinating Bi3+ cations which are distributed statistically over two crystallographic positions (a = 9.048(2) Å, α = 90.44(3)°, space group ). Bi6[PtBi6Cl12] is a semiconductor with a band gap of about 0.1 eV. The compound is diamagnetic at room temperature though a small paramagnetic contribution appears towards lower temperature.  相似文献   

2.
Bi34Ir3Br37: A Pseudo-Symmetric Subbromide with Bi5+ and Bi62+ Polycations, and [IrBi6Br12] and [IrBi6Br13]2– Cluster Anions The melting reaction of Ir with Bi and BiBr3 yields black, lustrous, air insensitive crystals of the subbromide Bi34Ir3Br37. The triclinic crystal structure (space group P 1, a = b = 1303.4(2) pm, c = 1647.4(4) pm, α = β 90°, γ = 120°, V = 2423.7 × 106 pm3) deceives pseudo symmetry with respect to the rhombohedral space group R 3, which results in multiply twinned crystals. The structure can formally be subdivided in four new types of ionic groups: (a) cuboctahedral [IrBi6Br12] clusters, (b) [IrBi6Br13]2– clusters with an additional Br atom, (c) Bi5+ square pyramids, and (d) distorted Bi62+ octahedra. The compound shows a range of homogeneity due to variable contributions of the different clusters.  相似文献   

3.
Bi24Ru3Br20: A Pseudo-Tetragonal Structure with [RuBi6Br12] Clusters and [Ru2Bi17Br4] Groups The melting reaction of Ru with Bi and BiBr yields black, lustrous, air insensitive crystals of the subbromide Bi24Ru3Br20. The orthorhombic crystal structure (space group Pc21n, a = b = 1377.8(1) pm, c = 3222.3(4) pm, V = 6117.0 · 106 pm3) deceives pseudo-symmetry with respect to the tetragonal space group P4/ncc leading to multiply twinned crystals. The structure can formally be subdivided in [RuBi6Br12] clusters, [Ru2Bi17Br4] stacks, and [BiBr4] groups.  相似文献   

4.
The Crystal Structures of the Dicesium Dodecahalogeno-closo-Dodecaborates Cs2[B12X12] (X = Cl, Br, I) and their Hydrates The perhalogenated derivatives Cs2[B12X12] (X = Cl - I) have been synthesized by reaction of Cs2[B12H12] with the respective elemental halogens (Cl2, Br2 and I2). Upon recrystallization from aqueous solution colourless, face-rich single crystals of the dihydrates (Cs2[B12X12] · 2 H2O) are obtained first which can be dehydrated topotactically via the monohydrates (Cs2[B12X12] · H2O) leaving to the solvent-free compounds (Cs2[B12X12]) behind without loss of their crystallinity. The ionic cesium salts were characterized by single crystal X-ray diffraction. All three halogenoborates are isostructural and they crystallize at room temperature in the trigonal space group (Cs2[B12Cl12]: a = 959.67(3) pm, c = 4564.2(2) pm; Cs2[B12Br12]: a = 997.92(3) pm, c = 4766.4(3) pm; Cs2[B12I12]: a = 1047.05(4) pm, c = 5018.3(3) pm; Z = 6). The crystal structures consist of a cubic closest packed host lattice formed by two crystallographically inequivalent quasi-icosahedral [B12X12]2- anions (Cs2[B12Cl12]: d(B-B) = 178 - 179 pm, d(B-Cl) = 179 - 180 pm; Cs2[B12Br12]: d(B-B) = 176 - 180 pm, d(B-Br) = 195 - 197 pm; Cs2[B12I12]: d(B-B) = 177 - 182 pm, d(B-I) = 214 - 217 pm). By ordered occupation of half of the tetrahedral and formally all octahedral interstices in every intermediate layer with Cs+ cations, a structure emerges where (Cs1)+ is trigonally non-planar coordinated by three (CN = 9) and (Cs2)+ tetrahedrally coordinated by four (CN = 12) [B12X12]2- anions. Thereby triangular faces of halogen atoms of the icosahedral clusters are coordinatively effective in both cases. In their mono- and dihydrates the incomplete coordination sphere of (Cs1)+ is completed by one and two water molecules, respectively. The thermal decomposition of the dicesium dodecahalogeno-closo-dodecaborate hydrates and their dehydration products was investigated using DTA/TG methods in a temperature range between room temperature and 1200 °C. Additionally the compounds were also characterized by 11B-NMR spectroscopy in aqueous solution.  相似文献   

5.
Synthesis and Crystal Structure of [Li(thf)4]2[Bi4I14(thf)2], [Li(thf)4]4[Bi5I19], and (Ph4P)4[Bi6I22] Solutions of BiI3 in THF or methanol react with MI (M = Li, Na) to form polynuclear iodo complexes of bismuth. The syntheses and results of X-ray structure analyses of compounds [Li(thf)4]2[Bi4I14(thf)2], [Li(thf)4]4[Bi5I19], [Na(thf)6]4[Bi6I22] and (Ph4P)4[Bi6I22] are described. The anions of these compounds consist of edge-sharing BiI6 and BiI5(thf) octahedra. The Bi atoms lie in a plane and are coordinated by bridging and terminal I atoms and by THF ligands in a distorted octahedral fashion. [Li(thf)4]2[Bi4I14(thf)2]: Space group P1 (No. 2), a = 1 159.9(6), b = 1 364.6(7), c = 1 426.5(7) pm, α = 114.05(3), β = 90.01(3), γ = 100.62(3)°. [Li(thf)4]4[Bi5I19]: Space group P21/n (No. 14), a = 1 653.0(9), b = 4 350(4), c = 1 836.3(13) pm, β = 114.70(4)°. [Na(thf)6]4[Bi6I22]: Space group P21/n (No. 14), a = 1 636.4(3), b = 2 926.7(7), c = 1 845.8(4) pm, β = 111.42(2)°. (Ph4P)4[Bi6I22]: Space group P1 (No. 2), a = 1 368.6(7), b = 1 508.1(9), c = 1 684.9(8) pm, α = 98.28(4), β = 95.13(4), γ = 109.48(4)°.  相似文献   

6.
Synthesis and Crystal Structures of (Ph4P)4[Bi8I28], (nBu4N)[Bi2I7], and (Et3PhN)2[Bi3I11] – Bismuth Iodo Complexes with Isolated and Polymeric Anions Solutions of BiI3 in methanol react with NaI and (nBu4N)(PF6) or (Et3NPh)(PF6) to form anionic bismuth iodo complexes (nBu4N)[Bi2I7] 1 and (Et3PhN)2[Bi3I11] 2 . In 1 Bi4I16 units, and in 2 Bi6I24 units are linked by common I-atoms to onedimensional infinite chains. Reaction of BiI3 with (Ph4P)(PF6) in methanol yields (Ph4P)4[Bi8I28] 3 . The anions of 1–3 consist of edge-sharing BiI6 octahedra. (nBu4N)[Bi2I7] 1 : Space group I2/m (No. 13), a = 1 082.3(5), b = 2 597.1(13), c = 1 206.1(6) pm, β = 93.17(2)°, V = 3 385(3) · 106 pm3; (Et3PhN)2[Bi3I11] 2 : Space group P1 (No. 2), a = 1 283.5(6), b = 1 345.9(7), c = 1 546.3(8) pm, α = 83.87(2), β = 74.24(2), γ = 68.26(2)°, V = 2 388(2) · 106 pm3; (Ph4P)4[Bi8I28] 3 : Space group P1 (No. 2), a = 1 329.3(4), b = 1 337.0(4), c = 2 193.1(5) pm, α = 104.20(2), β = 99.73(2), γ = 100.44(2)°, V = 3 622(2) · 106 pm3.  相似文献   

7.
8.
Bi53+ Polycations in Ordered and Plastic Crystals of Bi5[AlI4]3 and Bi5[AlBr4]3 Dark‐red air‐sensitive crystals of pentabismuth‐tris(tetrabromoaluminate) Bi5[AlBr4]3 and black crystals of Bi5[AlI4]3 have been crystallized from melts of Bi, BiX3 and AlX3 (X = Br, I). X‐ray diffraction on a single crystal of Bi5[AlI4]3 (T = 293(2) K; space group Pnma; a = 2143.6(3) pm, b = 1889.1(1) pm, c = 811.74(5) pm) revealed an ordered packing of Bi53+ trigonal bipyramids and [AlI4]? tetrahedra that corresponds to the PuBr3 structure type. Contrary to the so far known Bi53+ polycations with accurate D3h symmetry, the bismuth cluster found in Bi5[AlI4]3 holds only Cs symmetry. The room temperature structure of the tetrabromoaluminate Bi5[AlBr4]3, which is related to the AuCu3 type, shows a dynamic disorder of the Bi53+ polycations (T = 293(2) K; space group ; a = 1766.2(3) pm). Slight cooling induces the transition into an ordered rhombohedral phase isostructural to Bi5[AlCl4]3 (T = 260(2) K; space group a = 1241.5(8) pm, c = 3041(2) pm).  相似文献   

9.
(Bzl4P)2[Bi2I8] – an Iodobismuthate with Penta‐coordinated Bi3+ Ions (Bzl4P)2[Bi2I8] ( 1 , Bzl = –CH2–C6H5) is the first iodobismuthate showing square pyramidal coordination of the Bi3+ ion. The anion structure of 1 is compared with that of (Ph4P)2[Bi2I8(thf)2] ( 2 ), in which the vacant coordination sites in 1 are occupied by THF ligands. (Bzl4P)2[Bi2I8] ( 1 ): Space group P1 (No. 2), a = 1300.6(6), b = 1316.8(6), c = 2157.0(9) pm, α = 78.66(3), β = 87.17(3), γ = 60.62(3)°, V = 3151(2)_.106 pm3; (Ph4P)2[Bi2I8(thf)2] ( 2 ): Space group P1 (No. 2), a = 1146.5(1), b = 1181.2(1), c = 1249.2(1) pm, α = 92.28(1), β = 105.71(1), γ = 95.67(1)°, V = 1616.6(2)_.106 pm3.  相似文献   

10.
Crystal Structures of [Et3PNAsPh3]2[Ag2Br4] and [Et3PNAsPh3]2[Pd2Br6] Colourless single crystals of [Et3PNAsPh3]2[Ag2Br4]( 1 ) and red single crystals of [Et3PNAsPh3]2[Pd2Br6]( 2 ) have been isolated from saturated solutions in acetonitrile of equivalent mixtures of [Et3PNAsPh3]Br with AgBr and PdBr2, respectively. Both complexes were characterized by IR spectroscopy and by crystal structure determinations. 1 : Space group P1¯, Z = 1, lattice dimensions at ‐70°C: a = 985.0(2), b = 1042.2(5), c = 1345.8(5) pm, α = 102.88(2)°, β = 105.73(2)°, γ = 94.94(2)°, R1 = 0.0577. 2 : Space group P21/c, Z = 2, lattice dimension at ‐70°C: a = 1003.0(1), b = 1371.8(2), c = 1974.0(1) pm, β = 93.30(1)°, R1 = 0.0458. The dimeric anions of 1 and 2 form planar, centrosymmetric complex units.  相似文献   

11.
Bi4RuBr2 and Bi4RuI2: Two Varieties of a Column Structure with Face-Sharing [RuBi8/2] Square Antiprisms Reaction of the elements yields black, lustrous, air insensitive crystals of the subhalides Bi4RuI2 (tetragonal, I4/m, a = 1183.9(2) pm, c = 669.7(2) pm, V = 938.66 · 106 pm3) and Bi4RuBr2 (monoclinic, I112/m, a = 1211.9(2) pm, b = 1072.6(2) pm, c = 663.9(2) pm, γ = 91.63(1)°, V = 862.64 · 106 pm3). The structures of the homöotypic compounds contain [RuBi8/2] strands of face-sharing square antiprisms. Halogen atoms lie above the edges of alternate Bi4 squares. Thereby chemical bonding differs significantly within the two types of Bi4 squares. Though the Ru atoms on the central axis of the strand of antiprisms form pairs, extended Hückel calculations give no evidence of Ru? Ru bonds.  相似文献   

12.
Bromo Complexes of Molybdenum(IV) [MoBr6]2? and [Mo2Br10]2?. Crystal Structure of (PPh3Me)2[MoBr6] · 2 CH2Br2 The bromomolybdates(IV) (PPh3Me)2[MoBr6] · 2 CH2Br2 and (PPh4)2[Mo2Br10] are obtained by reactions of molybdenum tetrabromide with PPh3MeBr and PPh4Br, respectively. They form black-brown, hydrolysis sensitive crystal powders. The crystal structure of (PPh3Me)2[MoBr6] · 2 CH2Br2 was determined by X-ray diffraction (2376 independent observed reflexions, R = 0.082). Crystal data: a = 1024, b = 1131, c = 1179 pm, α = 108.2°, β = 106.8°, γ = 99.0°, space group P1 , Z = 1. The compound consists of PPh3Me+ ions, CH2Br2 molecules and nearly octahedral [MoBr6]2? ions with MoBr bond lengths between 252.7 and 254.0 pm.  相似文献   

13.
Preparation of Crystal Structure of K6[Al2O6] and Rb6[Al2O6] Colourless single crystals of K6[Al2O6] have been prepared from intimate mixtures of KAlO2 and K2O (550°C, 90 d). The structure determination from four-circle diffractometer data (MoKα , 742 Io(hkl), R = 2.2%, Rw = 2.1%) confirms the space group C2/m with Z = 2; a = 698.25 pm, b = 1 103.54 pm, c = 646.49 pm, β = 102.49°. Colourless single crystals of hitherto unknown Rb6[Al2O6] have been prepared from intimate mixtures of RbAlO2 and Rb2O (520°C, 120 d). The structure determination from four-circle diffractometer data (MoKα , 1 240 Io(hkl)) results in the residual values R = 7.2%, Rw = 4.9%; space group C2/m; a = 725.92 pm, b = 1 143.33 pm, c = 678.06 pm, β = 104.05°; Z = 2. K6[Al2O6] and Rb6[Al2O6] are isostructural with K6[Fe2O6]. A characteristic structure unit is the anion [Al2O6]6? consisting of two edge-sharing [AlO4] tetrahedra. Effective Coordination Numbers (ECoN), Mean Fictive Ionic Radii (MEFIR), the Madelung Part of Lattice Energy (MAPLE) and the Charge Distribution (CHARDI) are calculated and discussed.  相似文献   

14.
Ag3Bi14Br21: a Subbromide with Bi24+ Dumbbells and Bi95+ Polyhedra – Synthesis, Crystal Structure and Chemical Bonding Black crystals of Ag3Bi14Br21 = (Bi95+)[Ag3Bi3Br153?](Bi2Br62?), the first argentiferous bismuth subhalide, were obtained from a stoichiometric melt of Ag, Bi, and BiBr3. The compound crystallizes in the monoclinic space group P21/m with lattice parameters a = 1277.78(5) pm, b = 1466.87(6) pm, c = 1342.62(5) pm, and β = 108.47(1)° at 110(5) K. In contrast to all other bismuth subhalides that contain an electron‐rich transition metal, the silver atoms are not bonded to bismuth atoms. Instead they are integrated into the anionic bromometallate network, which consists of [MBr6]‐octahedra (M = Ag, Bi) that share edges and vertices. These corrugated sheets alternate with tessellated layers formed by Bi95+ polycations and hitherto unknown (BiII2Br6)2? groups. The latter anions contain Bi24+ dumbbells (299 pm) and can be represented by the structured formula [Br2BiII(μ–Br)2BiIIBr2]2?. The multi‐center bonding within the Bi95+ cluster and the bent single‐bond in the Bi2 dumbbell can be visualized using the electron localization indicator (ELI‐D).  相似文献   

15.
On the Crown Ether Complexes [K(15-Crown-5)2]3[Sb3I12], [TeCl3(15-Crown-5)][TeCl5], and [TeCl3(15-Crown-5)]2[TeCl6] Orange-coloured crystals of [K(15-crown-5)2]3[Sb3I12] are formed in the reaction of potassium iodide with antimony triiodide and 15-crown-5 in acetonitrile solution. An X-ray structure determination reveals severe disorder of the crown ether molecules, which coordinate to the potassium atoms in a sandwich array; so only the [Sb3I12]3? ion and the potassium positions were ascertained. The anion is a centrosymmetric trimer (symmetry C2h), which can be understood as central SbI63? ion, coordinated by two SbI3 molecules. (Space group C2/m), Z = 2, 3263 observed, independent reflections, R = 0.06, lattice dimensions at 20°C: a = 2541.1 pm, b = 1441.7 pm, c = 1588.4 pm, β = 113.33°. The tellurium complexes [TeCl3(15-crown-5)] [TeCl5] and [TeCl3(15-crown-5)]2[TeCl6] are prepared by reaction of TeCl4 with 15-crown-5 in acetonitrile solution, forming yellow-green crystals sensitive to moisture. They are characterized by their i.r. spectra.  相似文献   

16.
Brown crystals of [PPh4]2[Se2Br6] ( 1 ) and [PEtPh3]2[Se2Br6] ( 2 ) were obtained when selenium and bromine reacted in acetonitrile solution in the presence of tetraphenylphosphonium bromide and ethyltriphenylphosphonium bromide, respectively. The crystal structure of 2 has been determined by X‐ray methods and refined to R = 0.0420 for 4161 reflections. The crystals are monoclinic, space group P21/n with Z = 2 and a = 13.055(3) Å, b = 12.628(3) Å, c = 13.530(3) Å, β = 92.40(3)° (293(2) K). In the solid state structure of 2 the dinuclear hexabromo‐diselenate(II) anion is centrosymmetric and consists of two distorted almost square‐planar SeBr4 units sharing a common edge through two bridging Br atoms. The terminal SeII–Br bond distances are found to be 2.419(1) and 2.445(1) Å, the bridging μBr–SeII bond distances 2.901(1) and 2.802(1) Å.  相似文献   

17.
Selenium Polycations Stabilized by Polymeric Chlorobismuthate Anions: Syntheses and Crystal Structures of Se4[Bi4Cl14] and Se10[Bi5Cl17] Reactions of selenium with selenium(IV) chloride and bismuth(III) chloride in sealed evacuated glass ampoules at temperatures between 110 and 155 °C yield a series of compounds which are composed of discrete selenium polycations and polymeric chlorobismutate anions. Besides the already known Se8[Bi4Cl14] two new compounds have been identified by crystal structure analyses as Se4[Bi4Cl14] (tetragonal, P4/n, a = 1089.1(2) pm, c = 993.7(2) pm, Z = 2) and Se10[Bi5Cl17] (monoclinic, P21/c, a = 1079.24(8) pm, b = 2062.9(2) pm, c = 1676.1(2) pm, β = 90.87(1)°, Z = 4). Se4[Bi4Cl14] was obtained as red transparent platelike crystals and is the first example of a compound with (chalcogen4)2+ ions of exact square‐planar symmetry and molecular point group D4h in the solid state. The cations are surrounded by layers of two‐dimensional polymeric anions [Bi4Cl14]2–. Se10[Bi5Cl17] forms dark grey crystals with a reddish luster. The structure contains the known bicyclic polycation Se102+ which is disordered over two positions and the first three‐dimensional polymeric chlorobismutate anion [Bi5Cl17]2–. The different BiClx polyhedra are linked by sharing common vertices, edges, and faces.  相似文献   

18.
The crystal structures of Co3[Co(CN)6]2, 12 H2O (a, = 10.210 ± 0.005 Å) and Cd3[Co(CN)6]2, 12 H2O (a = 10.590 ± 0.005 Å) have been determined by X-ray powder methods. According to the measured density the unit cell contains 1 1/3 formula units with 4 Co2+ (Cd2+) in 4a, 2 2/3 Co3+ in 4b, 16 C and 16 N in 24e, 8 H2OI near 24e, (96k) and 8 H2OII near 8 c (192 l). Structure factor calculations based on the space group Oh5 - F m 3 m lead to the following final values of the reliability index R: 0.038 (Co3[Co(CN)6]2, 12 H2O) and 0.037 (Cd3[Co(CN)6]2, 12 H2O). The interatomic distances for the cobaltous compound (in parentheses for the cadmium compound) are: Co3+-C: 1.88 Å (1.89); C-N: 1.15 Å (1.17); Co2+-N: 2.08 Å (2.24); Co2+-OI: 2.10 Å (2.27); shortest OI-H-OII-bonds: 2.89 Å (2.82). Co3+ is octahedrally coordinated by six carbon atoms, the divalent metal ion by four nitrogen atoms and two water molecules. The two different metal ions are connected by M2+-N-C-Co3-bonds to a threedimensional network. The infrared and electronic spectra are shown to be in agreement with the results of the structure analyses of these compounds. The observed positions of the OH-stretching vibrations lead to a hydrogenbond-length of 2.8–2.95 Å.  相似文献   

19.
Bi9Rh2Br3, Bi9Rh2I3, and Bi9Ir2I3 – A New Structure Family of Quasi One‐dimensional Metals Bi9Rh2Br3, Bi9Rh2I3, and Bi9Ir2I3 were synthesized from the elements using niobium bromides or iodides as auxiliaries to modify the partial pressures in the course of the reaction. X‐ray diffraction on single crystals showed that the compounds are not isomorphous. However they have a common structural principle: strands of condensed [MBi8] polyhedra, which are separated by halide anions. The spatial arrangement of the [MBi1/1Bi7/2] strands differs with the combination of elements: In Bi9Rh2I3 (monoclinic, P21/m (no. 11), a = 775.6(1), b = 1374.9(2), c = 901.1(2) pm, β = 109.29(2)°) all strands are oriented parallel to each other. Bi9Rh2Br3 (monoclinic, P21/m (no. 11), a = 927.98(8), b = 1372.1(1), c = 1992.7(2) pm, β = 100.77(1)°) and Bi9Ir2I3 (orthorhombic, Pnma (no. 62), a = 2677.5(5), b = 1394.2(2), c = 967.6(1) pm) are ordered polytypes with two orientations changing in alternating layers of characteristic widths. The experimental proof of metallic conductivity in Bi9Ir2I3 supports the assumption of delocalised electrons inside the  [MBi1/1Bi7/2] strands. The magnetic susceptibility of Bi9Rh2Br3 increases slowly with decreasing temperature and shows a local maximum at about 14 K.  相似文献   

20.
Bi13Pt3I7: A Subiodide with a Pseudo-Symmetric Layer Structure The reaction of PtI2 with Bi and BiI at 630 K yields black, lustrous, air insensitive crystals of the subiodide Bi13Pt3I7. The layered crystal structure (triclinic, C1 , a = 1581.0(2) pm, b = 912.6(1) pm, c = 2149.6(6) pm, α = 90.03(2)°, β = 96.96(2)°, γ = 90.11(1)°, V = 3078.6 · 106 pm3) contains edge-sharing [PtBi8/2] cubes, which form nets of Kagomé type. Iodine atoms fill the hexagonal-prismatic voids therein. These [(PtBi8/2)3I] layers are alternately separated by layers of iodine atoms or [BiI] zigzag-chains. The marked pseudo-symmetry of the structure favours stacking faults, which cause streaks of diffuse scattering in the diffraction pattern.  相似文献   

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