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1.
The new compound Tl6[Ge2Te6] was prepared by thermal synthesis from the elements. The material is triclinic, space group P1, with a = 9.471(2), b = 9.714(2), c = 10.389(2) Å, α = 89.39(1), β = 97.27(1), γ = 100.79(1)°, and Z = 2. The crystal structure was determined from single-crystal intensity data measured by means of an automated four-circle diffractometer and refined to an R value of 0.053 for 1831 observed reflections. Tl6[Ge2Te6] is characterized by Ge2Te6 units with GeGe bonds which are linked into a three-dimensional structure by Tl atoms coordinated to essentially six Te atoms. The most important mean distances are dGeGe) = 2.456 Å, d(GeTe) = 2.573 Å, and d(TlTe) = 3.515Å. The lone 6s electron pairs of the thallium(I) atoms exhibit significant stereochemical activity. Tl6[Ge2Te6] represents a new structure type.  相似文献   

2.
CdTeMoO6 has been obtained by solid state reactions of CdMoO4 with orth. TeO2 at 425°C, with tetr. TeO2 at 470°C, and with H6TeO6 at 490°C. Its crystal structure belongs to the tetragonal system (space group P4n or P4nmm with unit cell dimensions a = 5.279(2) Å, c = 9.056(2) Å. The specificity of this compound in the allylic oxidation reactions should be strictly related to its structural features, among which the presence of cis MoO2 groups could be very important.  相似文献   

3.
Ce6Mo10O39 crystallizes in the triclinic system with unit-cell dimensions (from single-crystal data) a = 10.148(5), Å, b = 18.764(6), Å, c = 9.566(5), Å, α = 103.12(7)°, β = 78.07(7)°, γ = 107.69(7)°, and space group P1, z = 2. The structure was solved using direct methods with 3113 countermeasured reflections (Mo radiation), and refined using Fourier and least-squares techniques to a conventional R of 0.039 (ωR = 0.047). Ce6Mo10O39 has a structure that consists of isolated MoO4 tetrahedra together with one corner-shared pair of tetrahedra, linked to irregular eight-coordinate Ce(III) polyhedra. The average MoO distance of 1.77 Å, and average CeO distance of 2.52 Å are in good agreement with previously reported values.  相似文献   

4.
Platy crystals from the products of a mixture 4 Bas : 2 Nb : 5 S reacted at 1000°C have cell constants a = 13.754(3) Å, c = 83.73(2) Å, R3m. The reciprocal lattice had a pronounced subcell with dimensions a = 6.877(1) Å, c = 41.84(1) Å, same space group. Three dimensional X-ray diffraction data were collected using monochromatized Mo radiation and of 5051 measured intensities 1892 were considered observed. From the set of observed intensities 611 reflections having all even indices were used to refine the crystal structure of the 42 × 7-Å subcell. The final R = 0.036 and ωR = 0.052 for the 611 observed amplitudes and R = 0.046, ωR = 0.052 for all 711 amplitudes of the subcell. The structure is based on the stacking of hexagonal BaS3 layers with the sequence DABABDBCBCDCACAD. The D layer denotes a disordered level and occurs at z = 0, 13 and 23. The different letters for the ordered layers are based on the Ba positions in that layer. The Nb ions occupy octahedral interstices and form a unit of three face sharing octahedra parallel to c. The column is terminated above and below by disordered levels. The NbNb distances are 3.22 Å, causing displacement of Nb from the centers of the two outside octahedra. One Ba is in the center of a triangular orthobicupola formed by 12 S atoms. The other Ba is in the center of a hexagon of 6 S with 3 additional S above this layer forming 12 of a cuboctahedron. The lower half consists of a disordered layer of atoms. The NbS distances are 2.279, 2.433, and 2.683 Å; BaS distances vary between 3.1 and 3.5 Å. The subcell content based on the ordered structure only is Ba12Nb9S36. The placement of disordered Ba and S at z = 0, 13, and 23 levels of the subcell leads to the unlikely composition Ba16.5Nb9S42. The ordered structure most likely has a composition Ba4Nb2S9, z = 36, so that the subcell composition should be Ba18Nb9S40.5. The completely ordered structure has not been solved.  相似文献   

5.
This compound is prepared, within sealed metallic tubes at 1000°C, through different reactions between components of the FeFe2O3NaFeO2 system. It is black and weakly hygroscopic and gives two forms, α and β, according to oxygen pressure values.The examination of a crystal of the α form leads to a trigonal cell (space group R3m, R3m or R32) with a = 3.047 Å and c = 31.04 Å for the hexagonal cell (Z = 4). The structure is described as a stacking of alternate cationic and anionic planes with a succession of 12 cationic planes: 3 × FFMM (F, plane including Fe; M, mixed plane including 23Na + 13Fe).α-NaFe2O3 is paramagnetic above 94°K with μeff = 5.40; it is a semiconductor, n type, with E = 0.18 eV. Above 1050°C it dissociates into NaFeO2 and sodic wustite, which oxidizes easily.The β form is probably a polytype with a hexagonal cell (a = 3.045Å, c = 15.55 Å) with six cationic planes.  相似文献   

6.
Crystal structures for the fluorite-related phases CaHf4O9ф1) and Ca6Hf19O44 (ф2) have been determined from X-ray powder diffraction data. qf1 is monoclinic, C2c, with a = 17.698 Å, b = 14.500Å, c = 12.021 Å, β = 119.47° and Z = 16. qf2 is rhombohedral, R3c, with a = 12.058 Å, α = 98.31° and Z = 2.Both phases are superstructures derived from the defect fluorite structure by ordering of the cations and of the anion vacancies. The ordering is such that the calcium ions are always 8-coordinated by oxygen ions, while the hafnium ions may be 6-, 7-, or 8-coordinated. The closest approach of anion vacancies is a 12〈111〉 fluorite subcell vector, and in each structure vacancies with this separation form strings.  相似文献   

7.
CsCrI3 has been investigated by neutron powder diffraction at room temperature and 77 and 1.2 K. It undergoes a phase transition at 150 K due to the cooperative Jahn-Teller effect. The high-temperature form, α-CsCrI3 (hexagonal, space group P63mmc, a = 8.127(1)Å, c = 6.944(1)Å, Z = 2), adopts the BaNiO3 structure with a local Jahn-Teller distortion. The low-temperature form, β-CsCrI3 (orthorhombic, space group Pbcn, a = 8.102(1)Å, b = 13.792(1)Å, c = 6.900(1)Å, Z = 4), has a structure not yet been reported for a Jahn-Teller distorted BaNiO3 structure. It is shown that the low-temperature form can be derived from the BaNiO3 structure by means of a canting of triangles, formed by the three common I? ions of two adjacent CrI64? octahedra. The magnetic structure of β-CsCrI3 at 1.2 K is found to consist of an antiparallel sequence of ferromagnetic (0 0 1) planes with a magnetic moment in the ∥1 0 0∥ direction of 3.16 μB.  相似文献   

8.
Single crystal Na2TeO4 has been prepared by hydrothermal synthesis and its structure determined from three dimensional X-ray analysis. The crystal is monoclinic, space group PP21c with a = 10.632(5)Å, b = 5.161(2)Å; c = 13.837(11)Å, and β = 103.27(4)°. The crystal structure is built up of chains of Te(VI)O6 octahedra parallel to the [010] axis which can be formulated as [TeO4]n2n?. All sodium cations are in very distorted octahedral coordination.  相似文献   

9.
This paper gives an outline of the structure of a solid solution based on 7Bi2O3 · 2WO3. The experimental results using X-ray diffraction methods (precession and powder) showed that 7Bi2O3 · 2WO3 crystallizes in the space group I41a with a = 12.5143(5)Å and c = 11.2248(6) Å. The number of formula weights per unit cell is 40, when the formula is considered to be of the oxygen-deficient fluorite-type Bi0.875W0.125O1.6875. The compound has a substructure based on a defect fluorite-type pseudocubic subcell with a′ ? 5.6 Å. The axial relations between the supercell and subcell are a ? √a′ and c ? 2a′. The solid solution was formed over a limited range of WO3 content between 21.3 mole% and 26.3 mole% at 700°C. The ordering of metal atoms is discussed and an ideal crystal structure is proposed.  相似文献   

10.
The synthesis of a second polymorph of ZrI2 has been achieved by a transport reaction between ZrI4 and zirconium metal under a 750850°C gradient in a sealed tantalum tube. The black lath-like crystals produced in the 775°C region occur in space group P21m with a = 6.821(2) Å, b = 3.741(1) Å, c = 14.937(3) Å, β = 95.66(3)°, Z = 4. A total of 669 independent reflections with 2θ ≤ 50° and I > 3σ(I) were measured at room temperature on a four-circle automated diffractometer with monochromatized Mo radiation and were corrected for absorption (μ = 190 cm?1). The structure was solved by direct methods and full-matrix least-squares refinement of all atoms with anisotropic thermal parameters to give final residuals R = 0.064 and Rw = 0.079. This phase is isoelectronic and isostructural with β-MoTe2, a distorted CdI2-type structure in which the zirconium atoms are displaced 0.440 Å from the octahedral centers along a to form infinite zigzag metal chains (dZrZr = 3.182(3) Å) parallel to b. The phase is a diamagnetic semiconductor at room temperature (Eg ~ 0.1 eV).  相似文献   

11.
The structure of NiI2, 6 H2O has been determined by X-ray diffraction techniques. The dimensions of the hexagonal unit cell are: a = 7.638 ± 0.005 Å and c = 4.876 ± 0.005 Å, with Z = 1. The space group is P3m1. The structure was deduced from Patterson and Fourier syntheses and refined by least-squares method to a final R value of 0.09. It is almost a layer structure, each layer is composed by n complex ions [Ni(H2O)6]2+ surrounded by 2 n ions I?; this is in agreement with the good cleavage of crystals and with the marked anisotropy in the thermal expansion. But the structure may also be regarded as a derivation of NiAs structure, with only 18 of octahedral holes occupied. A structural classification of compounds MX2, 6 H2O is proposed.  相似文献   

12.
The system MgOSiO2H2O was investigated at pressures between 40 and 95 kbar and at temperatures between 500 and 1400°C. The reaction products were examined by X-ray, optical and thermal analysis techniques and the density of phase A discovered by Ringwood and Major was also measured. It was found that phase A was hydrated and its chemical formula was H6Mg7Si2O14. When the MgSi ratio of the system is 2, phase A + clinoenstatite, and forsterite are stable at temperatures lower and higher than a boundary curve T (°C) = 10P (kbar), respectively. When the MgSi ratio of the system is 3, phase A + phase D (which is completely different from the phases, A, B and C discovered by Ringwood and Major, and any other known phases of magnesium silicate) and phase D + brucite are stable at temperatures lower and higher than a boundary curve T(°C) = 10P (kbar) + 200. Phase A has approximately an hexagonal symmetry and the space group and the lattice parameters are determined as P63 or P63m and a = 7.866(2) Å and c = 9.600(3) Å, respectively. The measured density is 2.96 ± 0.02 g/cm3. The optical observations show that phase A is biaxial positive crystal with refractive indices α = 1.638 ± 0.001, β = 1.640 ± 0.002, and γ = 1.649 ± 0.001. Some interpretation is given on the inconsistency between the symmetry determined by the X-ray diffraction and the optical observation. The new phase D belongs to the space group P21c with lattice parameters a = 7.914(2)Å, b = 4.752(1) Å, c = 10.350(2) Å and β = 108.71(5)° and is a biaxial crystal with refractive indices α = 1.630 ± 0.002, β = 1.642 ± 0.002 and γ = 1.658 ± 0.001.  相似文献   

13.
Anhydrous Li2SeO4 crystallizes in the trigonal space group R3 with a = 13.931(2), c = 9.304(3) Å, V = 1563.7 Å3, Z = 18, Dc = 2.988 g cm?3. The unit cell transforms to the rhombohedral coordinate system as a = 8.620 Å, α = 107.81(2)°, V = 521.2 Å3, Z = 6. The structure contains selenate anions bridged by Li in the phenacite structural type. Data collection was performed at low temperature for precise placement of the Li cations which are tetrahedrally surrounded by oxygen atoms. Some problems with secondary extinction were apparent and a correction was made. The structure refined to an R value of 0.034.  相似文献   

14.
The crystal structure of Na4SnS4 and Ba2SnS4 (α) were determined.Na4SnS4 crystallizes in tetragonal system, space group P421c with parameters a = 7.837 Å, c = 6.950 Å, Z = 2 and Ba2SnS4 (α) in the monoclinic system, space group P21c with a = 8.481 Å, b = 8.526 Å, c = 12.280 Å, β = 112.97° and Z = 4.In these compounds, the crystal structure is built up from discrete orthothiostannate tetrahedra SnS4. The structure of Ba2SnS4 (α) is modified K2SO4β type.  相似文献   

15.
Cu4(PO4)2O crystallizes in the space group P1 with a = 7.5393(8) Å, b = 8.1021(9) Å, c = 6.2764(8) Å, α = 113.65(1)°, β = 98.42(1)° and γ = 74.19(1)°. The structure was refined by full-matrix least-squares techniques using automatic diffractometer data to R = 0.046 (Rw = 0.056). Four unique copper atoms are in six, five-, and four-coordinated polyhedra which are linked together to form a three-dimensional network. The structure is best described in terms of a cubic close-packed array of oxygen atoms with one-tenth of the possible anion sites vacant.  相似文献   

16.
Single crystals of BaTiF5 and CaTiF5 were obtained by the Czochralski and Bridgman techniques, respectively. The crystal structures were determined by X-ray diffraction; BaTiF5: 14m, a = 15.091(5)Å, c = 7.670(3)Å; CaTiF5: I2c, a = 9.080(4)Å, b = 6.614Å, c = 7.696(3)Å, β = 115.16(3)°. Both structures are characterized by the presence of either branched or straight chains of TiF6 octahedra. BaTiF5 contains the unusual dimeric unit (Ti2F10)4?. Magnetic susceptibility measurements were performed on both compounds in the temperature range 4.2 to 300 K, however, no evidence for magnetic interactions between the Ti3+ moments were observed.  相似文献   

17.
The crystal structure of the κ-carbide in the FeWC system has been refined from neutron powder diffraction data using the Rietveld profile analysis method. κ-(FeWC) is isostructural with κ-(CoWC); space group P63mmc; unit cell dimensions a = 7.7982(2)Å, c = 7.8298(4) Å. The structure refinement indicates FeW substitution at two of the tungsten sites, and 46% vacancies at one of the carbon sites. The composition corresponds to the formula Fe3+xW10?xC4?y, with x = 0.57(3) and y = 0.46(1).  相似文献   

18.
K3Sb3P2O14 crystallizes in the rhombohedral system, space group R3m with a = 7.147(1) Å, c = 30.936(6) Å, Z = 3. The structure was determined from 701 reflections collected on a Nonius CAD4 automatic diffractometer with MoKα radiation. The final R index and the weighted Rw index are 0.033 and 0.042, respectively. The structure is built up from layers of SbO6 octahedra and PO4 tetrahedra sharing corners. The potassium ions are situated between the (Sb3P2O14)3? covalent layers.  相似文献   

19.
Hf3As has a monoclinic unit cell of dimensions a = 15.3898(14) Å, b = 5.3795(5) Å, c = 15.330(14) Å, β = 90.291(6)°. A structure proposal based on space group C2c (No. 15) has been refined by the least-squares method using a Rietveld-type fullprofile analysis of Guinier-Hägg X-ray powder film intensity data. The Hf3As structure is an intermediate between the Fe3P and the Ti3P types. The atomic coordination follows rules formulated earlier for representatives of the Fe3PTi3PV3S family of structures.  相似文献   

20.
Na2Mn2S3 was prepared by reacting manganese powder with an excess of anhydrous sodium carbonate and elemental sulfur at 870 K. Extraction of the solidified melt with water and alcohol yielded well developed, bright red crystals. Na2Mn2S3 crystallizes with a new monoclinic structure type, space group C2c, Z = 8, with a = 14.942(2)Å, b = 13.276(2)Å, c = 6.851(2)Å, and β = 116.50(1)°. The crystal structure was determined from single crystal diffractometer data and refined to a conventional R value of 0.026 for 1613 observed reflections. The atomic arrangement shows sulfur-manganese-sulfur slabs which are separated from each other by corrugated layers of sodium atoms. A prominent feature of the crystal structure is the formation of short, four-membered zigzag chains built up by MnS4 tetradedra sharing edges. These chains are further connected by the remaining apices to form an infinite sheet. Short MnMn distances (3.02 and 3.05 Å, respectively) are found within the four membered chains. Susceptibility measurements show antiferromagnetic interactions between the Mn atoms.  相似文献   

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