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1.
Crystal Structures of K6[Ge2Te6] and K6[Sn2Te6] and their Relations to the K6[Si2Te6] Type K6[Ge2Te6] and K6[Sn2Te6], the first members of the families of telluro-digermanates and telluro-distannates have been prepared and their structures determined. The space group is C 2/c with cell constants a = 16.010(8), b = 13.619(8), c = 9.713(5) Å, β = 95.19(5)° and Z = 4 for the Ge compound. The Sn compound has space group P 21/c, a = 9.590(5), b = 13.654(8), c = 9.606(5) Å, β = 116.84(5) and Z = 2. The structures were established by direct methods, using four-circle diffractometer data. The final R value for 828 (1677) independent reflexions is 0.068 (0.047) for the Ge (Sn) compound. Both structures have discrete X2Te6 groups (X = Ge, Sn) in staggered conformation connected by K atoms in distorted octahedral or trigonal prismatic environments and bear direct subgroup relationships to that of K6[Si2Te6]. The average X? Te distance is 2.579 (2.724) Å and the X? X distance 2.492 (2.814) Å.  相似文献   

2.
Polymorphism of SrTa2O6 Orthorhombic SrTa2O6 is a new low temperature modification related to orthorhombic CaTa2O6. SrTa2O6(orh.) was obtained when the wellknown modification SrTa2O6(TTB) which is related to the tetragonal tungsten bronzes was heated in the presence of a transporting agent (chlorine) or a mineralizer (melt of B2O3) at temperatures below 1150°C. It could be prepared by the reaction of a 1:1 mixture of Sr(NO3)2 or SrCO3 with Ta2O5 in a sealed quartz glass tube as well. SrTa2O6(orh.) also occurred as an intermediate phase of the reaction of the corresponding 1:2 mixture at temperatures below 900°C (e. g. 840°C). Indexing of Guinier powder patterns led to the following unit cell: a = 11.006 Å, b = 7.638 Å, c = 5.622 Å. At temperatures above 1220°C SrTa2O6(orh.) changes (in air) to SrTa2O6(TTB). A reversal of this transition could not be achieved without the presence of a mineralizer or a transporting agent. CaxSr1?xTa2O6 solid solutions of the low temperature form could not definitely be established. However, at 1300°C solid TTB solutions of CaxSr1?xTa2O6 were formed. For x > 0.05 the TTB unit cells are orthorhombically distorted. For x ≥ 0.85 the x-ray powder patterns of the solid solutions looked like the one of CaTa2O6(orh.) and no TTB-structure was observed at 1300°C.  相似文献   

3.
On Hexafluoroferrates(III): Cs2TlFeF6, Cs2KFeF6, Rb2KFeF6, Rb2NaFeF6, and Cs2NaFeF6 New prepared are the compounds Cs2TlFeF6 (a = 9.211 Å), Cs2KFeF6 (a = 9.041 Å), Rb2KFeF6 (a = 8.868 Å) and Rb2NaFeF6 (a = 8.46 4Å) all cubic Elpasolithes as well as Cs2NaFeF6 (Cs2NaCrF6?type, hexagonal with a = 6.281, c = 30.532 Å), all colourless. Cs2KFeF6 was measured magnetically (70–297,2 K). The spectra of reflection were measured (9000–36000 cm?1). The Madelung Part of Lattice Energy, MAPLE, is calculated and discussed.  相似文献   

4.
New Elpasolithes with CoIII: Cs2KCoF6, Rb2KCoF6, Rb2NaCoF6 (with a Notice on Cs2NaCoF6) New prepared are the compounds Cs2KCoF6 (a = 8.979 Å), Rb2KCoF6 (a = 8.809 Å), Rb2NaCoF6 (a = 8.421 Å), all cubic Elpasolithes, as well as Cs2NaCoF6 (Cs2NaCrF6?type, hexagonal with a = 6.23, c = 30.32 Å) all of light blue colour. Cs2KCoF6 (72.7–299.7 K) and Rb2KCoF6 (71.4–298.0 K) have been measured magnetically. The Madelung Part of Lattice Energy (MAPLE) is calculated and discussed.  相似文献   

5.
X-Ray Structural Studies of the Polymorphic Elpasolites K2LiAlF6 and Rb2LiGaF6 At single crystals of low (LT) and high temperature (HT) modifications of K2LiAlF6 and of Rb2LiGaF6, synthesized at normal pressure (NP), the crystal structures were refined. LT-K2LiAlF6 is a cubic elpasolite (Fm3m, Z = 4, a = 784.2(1) pm; Al–F: 181.2(1) pm), HT-K2LiAlF6 and NP-Rb2LiGaF6 are isostructural with the hexagonal-rhombohedral type of Cs2NaCrF6 (R3m, Z = 6, a = 561.7(1) resp. 586.3(1), c = 2757.6(6) resp. 2856.3(5) pm; mean values Al–F: 180.5 resp. Ga–F: 189.3 pm). A cubic high pressure modification (HP) of Rb2LiGaF6 was obtainable as a powder only (a = 820.8(2) pm). The relations of distances between LT/HT and HP/NP polymorphs of elpasolites are compared and discussed.  相似文献   

6.
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   

7.
On Thio-, Selenido-, and Telluridogermanates (III): K6Ge2S6, K6Ge2Se6, and Na6Ge2Te6 The new compounds K6Ge2S6 and K6Ge2Se6 crystallize in the monoclinic system, space group C2/m (No 12); lattice constants see “Inhaltsübersicht”. The compounds are isotypic and form the K6Si2Te6 structure. Na6Ge2Te6 crystallizes in the K6Sn2Te6 structure, monoclinic, space group P21/c (No 14); lattice constants see “Inhaltsübersicht”.  相似文献   

8.
New Metal Oxides with Doubles of Tetrahedra as Building Units: Rb6[Tl2O6] and Cs6[In2O6] We prepared the hitherto unknown Rb6[Tl2O6] and Cs6[In2O6] by heating mixtures of Tl2O3 and RbO0.60 (Rb:Tl = 3.5:1) as well as In2O3 and CsO0.53 (Cs:In = 3.5:1) as single crystals [closed Ag-cylinder, 650°C, 14 d]. The single crystals of Rb6[Tl2O6] are yellow, those of Cs6[In2O6] pale yellow, all transparent and rude. The new type of structure was elucidated by 4-circle-diffractometer (PW 1100) data. Rb6[Tl2O6]: P21/a; a = 1145,7(3), b = 713,3(1), c = 783,9(2) pm, β = 93,73° (2), Z = 2; Ag–Kα, 2100 out of 2531 I0(hkl), R = 9,6% and Rw = 8,9%. Cs6[In2O6]: P21/a; a = 1178,5(4), b = 730,7(2), c = 816,3(2) pm, β = 95,38° (3), Z = 2; Mo–Kα, 1584 out of 2032 I0(hkl), R = 9,25%, and Rw = 8,44%. The Madelung Part of Lattice Energy, MAPLE, is calculated and discussed.  相似文献   

9.
K6[Mn2O6] and K6[Fe2O6] - a Comparison K6[Mn2O6] has been prepared (dark-red single crystals). The structure (a = 8.886, b = 6.760, c = 11.394 Å, γ = 132.1°, space group P21, Z = 2, 1151 symmetry independent reflections hk0–hk9, R = 0.051) shows Al2Cl6-like anions [Mn2O6]6?. By unit-cell transformation to the monoclinic setting P21/a (a = 6.760, b = 11.394, c = 6.638 Å, β = 96,9°) the structural similarity to K6[Fe2O6] becomes evident. The Madelung Part of Lattice Energy, MAPLE, is calculated.  相似文献   

10.
Diborane(6) dianions with substituents that are bonded to boron via carbon are very reactive and therefore only a few examples are known. Diborane(6) derivatives are the simplest catenated boron compounds with an electron‐precise B–B σ‐bond that are of fundamental interest and of relevance for material applications. The homoleptic hexacyanodiborane(6) dianion [B2(CN)6]2− that is chemically very robust is reported. The dianion is air‐stable and resistant against boiling water and anhydrous hydrogen fluoride. Its salts are thermally highly stable, for example, decomposition of (H3O)2[B2(CN)6] starts at 200 °C. The [B2(CN)6]2− dianion is readily accessible starting from 1) B(CN)32− and an oxidant, 2) [BF(CN)3] and a reductant, or 3) by the reaction of B(CN)32− with [BHal(CN)3] (Hal=F, Br). The latter reaction was found to proceed via a triply negatively charged transition state according to an SN2 mechanism.  相似文献   

11.
Synthesis and Structure of [(Ph3C6H2)Te]2, [(Ph3C6H2)Te(AuPPh3)2]PF6 and [(Ph3C6H2)TeAuI2]2 [(2,4,6-Ph3C6H2)Te]2 reacts with Ph3PAu+ to yield [2,4,6-Ph3C6H2TeAuPPh32]PF6 which can be oxidized by I2 to form the gold(III) complex [(2,4,6-Ph3C6H2)TeAuI2]2. [(2,4,6-Ph3C6H2)Te]2 crystallizes in the monoclinic space group P21/c with a = 810.6(2); b = 2026.5(5); c = 2260.6(7) pm; β = 99.23(3)° and Z = 4. In the crystal structure the ditelluride exhibits a dihedral angle C11? Te1? Te2? C21 of 66.1(2)°. The distance Te1? Te2 is 269.45(6) pm. In the cation of the triclinic complex [(2,4,6-Ph3C6H2)Te(AuPPh3)2]PF6 (space group P1 ; a = 1197.4(3); b = 1457.2(4); c = 1680.0(6) pm; α = 84.69(3)°; β = 85.11(3)°; γ = 75.54(3)°; Z = 2) a pyramidal skeleton RTeAu2 with distances Te? Au = 259.2(1) and 257.8(2) pm and Au? Au = 295.3(1) pm is present. [(2,4,6-Ph3C6H2)TeAuI2]2 crystallizes in the triclinic space group P1 with a = 1086.3(3); b = 1462.9(6); c = 1654.2(2) pm; α = 85.25(2)°; β = 87.44(1)°; γ = 80.90(3)°; Z = 2. In the centrosymmetrical dinuclear complex [(2,4,6-Ph3C6H2)TeAuI2]2 the Au atoms exhibit a square-planar coordination by two iodine atoms and two tellurolate ligands. The tellurolate ligands form symmetrical bridges with distances Te? Au = 260.0 pm. The distances Au? I are in the range of 260.3(1) and 263.7(1) pm.  相似文献   

12.
Molybdenum(II) Halide Clusters with six Alcoholate Ligands: (C18H36N2O6Na)2[Mo6Cl8(OCH3)6] · 6CH3OH and (C18H36N2O6Na)2[Mo6Cl8(OC6H5)6] . The reaction of Na2[Mo6Cl8(OCH3)6] and 2,2,2-crypt yields (C18H36N2O6Na)2[Mo6Cl8(OCH3)6] · 6 CH3OH ( 1 ), which is converted to (C18H36N2O6Na)2[Mo6Cl8(OC6H5)6] ( 2 ) by metathesis with phenol. According to single crystal structure determinations ( 1 : P3 1c, a=14.613(3) Å, c=21.036(8) Å; 2 : P3 1c, a=15.624(1) Å, c=19.671(2) Å) the compounds contain anionic clusters [Mo6Cl8i(ORa)6]2? ( 1 : d(Mo—Mo) 2.608(1) Å to 2.611(1) Å, d(Mo—Cl) 2.489(1) Å to 2.503(1) Å, d(Mo—O) 2.046(4) Å; 2 : d(Mo—Mo) 2.602(3) Å to 2.608(3) Å, d(Mo—Cl) 2.471(5) Å to 2.4992(5) Å, d(Mo—O) 2.091(14) Å). Electronic interactions of the halide cluster and the phenolate ligands in [Mo6Cl8(OC6H5)6]2? is investigated by means of UV/VIS spectroscopy and EHMO calculations.  相似文献   

13.
Preparation and Crystal Structure of ZrP2S6 and ThP2S6 The compounds ZrP2S6 ( I ) and ThP2S6 ( II ) are synthesized from the elements at 750–800°C. They are isotypic (P42/m, Z = 2; I : a = 668.2, c = 948.9 pm; II : a = 688.0, c = 990.3 pm) and to be described as M4+(P2S6)4?. The thiohypodiphosphate anion has ideal staggered conformation. The cation is coordinated by a (slightly deformed) 42 m dodecahedron of S atoms. The geometrical details correspond to the most favourable ligand distribution.  相似文献   

14.
Redetermination of the Crystal Structures of the Hexahydroxometallates Na2Sn(OH)6, K2Sn(OH)6, and K2Pb(OH)6 Slow cooling down of hot saturated hydroxo stannate‐ resp. ‐plumbate solutions gives crystals of Na2Sn(OH)6, K2Sn(OH)6, and K2Pb(OH)6 well suited for an X‐ray structure determination. With these crystals the so far known crystal data were verified, determined more precisely and H‐positions found for the first time. The compounds crystallize rhombohedral in the space group R 3. The hexagonal unit cells contain three formula units with Na2Sn(OH)6: a = 5.951(1) Å, c = 14.191(2) Å, c/a = 2.384 K2Sn(OH)6: a = 6.541(1) Å, c = 12.813(4) Å, c/a = 1.959 K2Pb(OH)6: a = 6.625(1) Å, c = 12.998(2) Å, c/a = 1.962 The compounds are not isotypic whereas the atoms occupy in all three cases the same Wyckoff positions. Na2Sn(OH)6 has with an hcp packing of O a CdI2 like superstructure with Na and Sn in octahedral interstices. Hydrogen bonds O–H…O–H play a role in solid K2Sn(OH)6 and K2Pb(OH)6. In these compounds the potassium ions are shifted from an octahedral coordination in an hcp packing of O. They have nine nearest O‐neighbours. The hydrogen bonds are investigated by Raman spectroscopy.  相似文献   

15.
Newly prepared are the cubic derivatives of the perovskite type of structure: K2NaInF6 (a = 8.560 Å), K2NaTlF6 (8.668), K2NaScF6 (8.482), K2NaYF6 (8.711), Cs2NaInF6 (8.905), Cs2NaTiF6 (8.995), Cs2NaScF6 (8.853), all colourless, as well as K2NaCuF6 (8.203 Å, green) and Cs2KMnF6 (tetragonal, a = 8.933; c = 9.265 Å, violett). K2NaCuF6 [μ = 2.87 μB, θ = ?17°] and Cs2KMnF6 [;μ = 4.88 μB, θ = ?5°] obey the Curie-Weiss law. The volume chemistry of the compounds is discussed in detail.  相似文献   

16.
Pr6C2‐Bitetrahedra in Pr6C2Cl10 and Pr6C2Cl5Br5 The compounds Pr6C2Cl10 and Pr6C2Cl5Br5 are prepared by heating stoichiometric mixtures of Pr, PrCl3, PrBr3 and C in sealed Ta capsules at 810 ? 820 °C. They form bulky transparent yellow to green and moisture sensitive crystals which have different structures: space groups C2/c, (a = 13.687(3) Å, b = 8.638(2) Å, c = 15.690(3) Å, β = 97.67(3)° for Pr6C2Cl10 and a = 13.689(1) Å, b = 10.383(1) Å, c = 14.089(1) Å, β = 106.49(1)° for Pr6C2Cl5Br5). Both crystal structures contain C‐centered Pr6C2 bitetrahedra, linked via halogen atoms above edges and corners in different ways. The site selective occupation of the halogen positions in Pr6C2Cl5Br5 is refined in a split model and analysed with the bond length‐bond strength formalism. The compound is further characterized via TEM investigations and magnetic measurements (μeff = 3.66 μB).  相似文献   

17.
4-(3-Alkylureido)-2, 2, 6, 6-tetramethylpiperidine-1-oxyls are rapidly oxidized by N2O4 or NOCl to 4-(3-alkylureido)-2, 2, 6, 6-tetramethyl-1-oxopiperidinium nitrates and chlorides, which are then nitrosated to 4-(3-alkyl-3-nitrosoureido)-2, 2, 6, 6-tetramethyl-1-oxopiperidinium salts. The perchlorates of the latter were prepared by an exchange reaction with HClO4. The nitrosation of alkylureidooxoammonium salts is the first example of chemical modification of oxoammonium derivatives in which the highly reactive >N+=O group is inert toward the reagent.Translated fromIzvestiya Akademii Nauk. Seriya Khimicheskaya, No. 3, pp. 542–547, March, 1993.  相似文献   

18.
Rb6Mn2O6 was prepared via the azide/nitrate route. Stoichiometric mixtures of the precursors (Mn3O4, RbN3 and RbNO3) were heated in a special regime up to 500 °C and annealed at this temperature for 75 h in silver crucibles. Single crystals have been grown by annealing a mixture with a slight excess of rubidium components at 450 °C for 500 h. According to the single crystal structure analysis, Rb6Mn2O6 is isotypic to K6Mn2O6, and crystallizes in the monoclinic space group P21/c with a = 6.924(1) Å, b = 11.765(2) Å, c = 7.066(1) Å, β = 99.21(3)°, 2296 independent reflections, R1 = 5.23 % (all data). Manganese is tetrahedrally coordinated and two tetrahedra are linked by sharing a common edge, forming a dimer [Mn2O6]6−. The magnetic behavior has been investigated.  相似文献   

19.
On the Knowledge of Hexafluororhodates(III): Cs2K[RhF6], Rb2K[RhF6], K2Na[RhF6], Rb2Na[RhF6] and Tl2Na[RhF6]. New prepared are the compounds Cs2KRhF6 (a = 9.049 Å), Rb2NaRhF6 (a = 8.492 Å), Rb2KRhF6 (a = 8.876 Å), K2NaRhF6 (a = 8.362 Å) and Tl2NaRhF6 (a = 8.526 Å), all cubic Elpasoliths of pink colour. The Madelung-Part of lattice energy, MAPLE, is calculated and discussed.  相似文献   

20.
New Syntheses and Crystal Structures of Bis(fluorophenyl) Mercury, Hg(Rf)2 (Rf = C6F5, 2, 3, 4, 6‐F4C6H, 2, 3, 5, 6‐F4C6H, 2, 4, 6‐F3C6H2, 2, 6‐F2C6H3) Bis(fluorophenyl) mercury compounds, Hg(Rf)2 (Rf = C6F5, C6HF4, C6H2F3, C6H3F2), are prepared in good yields by the reactions of HgF2 with Me3SiRf. The crystal structures of Hg(2, 3, 4, 6‐F4C6H)2 (monoclinic, P21/n), Hg(2, 3, 5, 6‐F4C6H)2 (monoclinic, C2/m), Hg(2, 4, 6‐F3C6H2)2 (monoclinic, P21/c) and Hg(2, 6‐F2C6H3)2 (triclinic, P1) are described.  相似文献   

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