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Sn3N4, a Tin(IV) Nitride – Syntheses and the First Crystal Structure Determination of a Binary Tin-Nitrogen Compound By reaction of SnI4 with KNH2 in liquid ammonia at 243 K a white product mixture was obtained. After evaporation of ammonia the solid residue was annealed in vacuum for 2–5 d at 573 K. Subsequently collected x-ray powder diffraction patterns exhibited reflections of KI and a new compound Sn3N4. Analogous reactions of SnBr2 and KNH2 led to KBr and dark brown microcrystalline Sn3N4 but also to metallic tin. The structure of tin(IV)-nitride was determined from X-ray and neutron powder diffraction data: Space group Fd 3 m, Z = 8, a = 9.037(3) Å. Sn3N4 crystallizes in a spinel type structure. Both metal atom positions are occupied by tin atoms of oxidation state plus four.  相似文献   

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Synthesis and Crystal Structure of Te3O3(PO4)2, a Compound with 5‐fold Coordinate Tellurium(IV) Polycrystalline Te3O3(PO4)2 is formed during controlled dehydration of (Te2O3)(HPO4) with (Te8O10)(PO4)4 as an intermediate product. Colourless single crystals were prepared by heating stoichiometric amounts of the binary oxides P2O5 und TeO2 in closed silica glass ampoules at 590 °C for 8 hours. The crystal structure (P21/c, Z = 4, α = 12.375(2), b = 7.317(1), c = 9.834(1)Å, β = 98.04(1)°, 1939 structure factors, 146 parameters, R[F2 > 2σ(F2)] = 0.0187, wR2(F2 all) = 0.0367) was determined from four‐circle diffractometer data and consists of [TeO5] polyhedra und PO4 tetrahedra as the main building units. The framework structure is made up of cationic zigzag‐chains of composition [Te2O3]2+ which extend parallel to [001] and anionic [Te(PO4)2]2— units linked laterally to these chains. This leads to the formation of [Te2O3][Te(PO4)2] layers parallel to the bc plane which are interconnected via weak Te‐O bonds.  相似文献   

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Production and Decomposition of (NH4)[BF4] and H3N‐BF3 (NH4)[BF4] is produced as single crystals during the reaction of elemental boron and NH4HF2 (B : NH4HF2 = 1 : 2) and NH4F (B : NH4F = 1 : 4), respectively, in sealed copper ampoules at 300 °C. The crystal structure (baryte type, orthorhombic, Pnma, Z = 4) was redetermined at ambient temperature (a = 909.73(18), b = 569.77(10), c = 729.47(11) pm, Rall = 0.0361) and at 140 K (a = 887.3(2), b = 574.59(12), c = 717.10(12) pm, Rall = 0.0321). Isolated (NH4)+ and [BF4] tetrahedra are the important building units. The thermal behaviour of (NH4)[BF4] was investigated under inert (Ar, N2) and reactive conditions (NH3) with the aid of DTA/TG and DSC measurements and with in‐situ X‐ray powder diffraction as well. Finally, (NH4)[BF4] is decomposed yielding NH3 and BF3, BN is not produced under the current conditions. Colourless single crystals of H3N‐BF3 were prepared directly from the components NH3 and BF3. The crystal structure was determined anew at 293 and 170 K (orthorhombic, Pbca, Z = 8, a = 815.12(10), b = 805.91(14), c = 929.03(12) pm, Rall = 0.0367; a = 807.26(13), b = 800.48(10), c = 924.31(11) pm, Rall = 0.0292, T = 170 K). The crystal structure contains isolated molecules H3N‐BF3 in staggered conformation with a B‐N distance of 158 pm. The thermal behaviour of H3N‐BF3 was studied likewise.  相似文献   

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The First Hydrogencarbonates with a Trimeric [H2(CO3)3]4? Group: Preparation and Crystal Structure of Rb4H2(CO3)3 · H2O and K4H2(CO3)3 · 1.5 H2O Rb4H2(CO3)3 · H2O and K4H2(CO3)3 · 1,5 H2O were prepared by means of the reaction of (CH3)2CO3 with RbOH resp. KOH in aqueous methanole. Trimer [H2(CO3)3]4?-anions were found in the crystal structure of Rb4H2(CO3)3 · H2O (orthorhombic, Pnma (no. 62), a = 1 218.0(1) pm, b = 1 572.3(6) pm, c = 615.9(1) pm, VEZ = 1 179.5(5) · 106 pm3, Z = 4, R1(I ≥ 2σ(I)) = 0.027, wR2(I ≥ 2σ(I)) = 0.055). K4H2(CO3)3 · 1,5 H2O crystallizes in an OD-structure. The determined superposition structure (orthorhombic, Pbam (no. 55), a = 1 161.8(1) pm, b = 597.0(1) pm, c = 383.85(3) pm, VEZ = 266.3(1) · 106 pm3, Z = 1, R1(I ≥ 2σ(I)) = 0.035, wR2(I ≥ 2σ(I)) = 0.074) can be derived from the structure of the rubidium compound. The thermal decomposition of the substances is discussed.  相似文献   

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Preparation and Crystal Structure of SnTl4Se3 with a Note on TlSe We describe the preparation and crystal structure of SnTl4Se3. It crystallizes as a low symmetric distorted derivative with the In5Bi3 type of structure, which itself should be considered as a subfamily of the Cr5B3 type of structure: a = 852.2(2) pm, c = 1 272.2(6) pm, c/a = 1.49, Z = 4. Short Sn? Se distances of 311 pm, and 326 pm, respectively, are obtained in [SnSe2/2] chains running along [001]. Furthermore, short Tl? Se distances are found in quasimolecular bent moieties Tl2Se: 300 pm, 313 pm, and 347 pm, respectively. SnTl4Se3 is a semiconductor. The conductivity of some closely related phases are also reported. Finally, the structure of the well known compound TlSe has been refined for the first time, in order to get some more information about Tl1+? Se distances for square-antiprismatic coordinated Tl1+ ions.  相似文献   

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Kinetic Study of the Distribution of Electrically Neutral Ionophores between a Solvent Polymeric Membrane and an Aqueous Phase The kinetic behaviour of a series of ligands in the transfer from a solvent polymeric membrane into a stirred aqueous phase was investigated and compared with theoretical kinetic models. It was found that the transfer of ligands with low lipophilicity was controlled by the diffusion in the membrane phase, and that of ligands with high lipophilicity was controlled by the exchange reaction at the phase boundary and/or the diffusion through the unstirred Nernst diffusion layer. The diffusion coefficients in the membrane decrease drastically on increase of the content of the polymer in the membrane and are nearly independent of the size and lipophilicity of the ligand, whereas the overall transfer coefficient through the boudary region does not depend on the polymer content but decreases with increasing lipophilicity of the ionophore.  相似文献   

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3-Azawurtzitane and 3(4 → 5)abeo-3-Azawurtzitane 3-Azawurtzitane (14) and 3(4 → 5)abeo-3-azawurtzitane (15) as well as derivatives thereof are described. The known tricyclic unsaturated ketone 1 was transformed to the properly functionalized endo-amines 3, 5 and 12. Entry to the azawurtzitane system and its corresponding abeo-compounds was achieved by three different cyclization procedures: aminomercuration with mercuric acetate in water (3 → 14, 5 → 16) , olefin amination with mercuric acetate in dimethyl sulfoxide (3 → 18, 5 → 20 + 21) and intramolecular attack at an epoxide (12 → 24 + 25). Molecular rearrangements of 3-azawurtzitanes to 3(4 → 5)abeo-3-azawurtzitanes and vice versa are described involving neighbouring group participation of the N (3) atom.  相似文献   

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