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1.
Novel structures of H2C?C?CLiX (X ? F, Cl) were determined using HF/STO-3G gradient method. Both of the carbenoids have two equilibrium structures, askew and linear forms, at the level of calculation. In the case X?F, the former is more stable, but in the case X=Cl, the latter is more stable. The frontier MOs are given and analyzed.  相似文献   

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Compounds of the Type Ba3BIIM O9 with BII ? Mg, Ca, Sr, Ba, and MV ? Nb, Ta The hexagonal perovskites Ba3BIIMO9 (MV ? Nb, Ta) crystallize with BII ? Mg Ca in a 3 L structure (sequence (c)3) and BII ?; Sr in the hexagonal BaTiO3 type (6 L; sequence (hcc)2) with an 1:2 order for the B and M ions. Intensity calculations for Ba3SrNb2O9 and Ba3SrTa2O9 gave in the space group P63/mmc a refined, intensity related R′ value of 8.4% (Nb) and 9.0% (Ta) respectively. For BII ? Ba the perovskite Ba3BaTa2O9 has an orthorhombic distorted 6 L structure and forms with Ba3SrTa2O9 a continuous series of mixed crystals (Ba3Sr1?xBaxTa2O9). In the system Ba3Sr1?xBaxNb2O9 the range of existence of the hexagonal BaTiO3 type is confined to the Sr richer end. The pure Ba compound possesses a proper structure type (5 L: Ba5BaNb3□O13.51.5).  相似文献   

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Alternative Ligands. XXVI. M(CO)4 L-Complexes (M ? Cr, Mo, W) of the Chelating Ligands Me2ESiMe2(CH2)2E′ Me2 (Me ? CH3; E ? P, As; E′ ? N, P, As) The reaction of M(CO)4NBD (NBD = norbornadiene; M ? Cr, Mo, W) with the ligands Me2ESiMe2(CH2)2E′ Me2 yields the chelate complexes (CO)4M[Me2ESiMe2]) for E,E′ ? P, As, but not for E and /or E′ ? N. The NSi group is not suited for coordination because of strong (p-d)π-interaction. In the case of the ligands with E ? P or As and E′ ? N chelate complexes can be detected in the reaction mixture, but isolable products are complexes with two ligands coordinated via the E donor group. The new compounds are characterized by analytical and spectroscopic (IR, NMR, MS) investigations. The spectroscopic data are also used to deduce the coordinating properties of the ligands. X-ray diffraction studies of the molybdenum complexes (CO)4Mo[Me2ESiMe2(CH2)2AsMe 2] (E ? P, As) in accord with the observed coordination effects show only small differences between SiE and CE donor functions. Attempts to use the ligands Me2ESiMe2(CH2)2AsMe2 (E ? P, As) for the preparation of Fe(CO)3L complexes result in the fission of the SiE bonds and the formation of the binuclear systems Fe2(CO)6(EMe2)2 (E ? P, As) together with the disilane derivative [Me2Si(CH2)2AsMe2]2.  相似文献   

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Crystal Structure Investigations of Compounds with the A3(M, Nb)8O21-Type (A ? Tl, Ba; M ? Fe, Ni) Tl3Fe0,5Nb7,5O21 (A), a hitherto unknown phase of the A3(M, Nb)8O21-type, and Ba3Fe2Nb6O21 (B), Ba3Ni1.33Nb6,66O21 (C) were prepared and investigated by single crystal X-ray technique. ((A): a = 9.145(1), c = 11.942(1) Å; (B): a = 9.118(2), c = 11.870(1) Å; (C) a = 9.173(3), c = 11.923(1) Å, space group D? P63/mcm, Z = 2). There is a statistic occupation of the M-positions by Nb5+ and Fe3+ or Nb5+ and Ni2+, respectively. An other compound Ba3Fe2Ta6O21 is partially ordered in respect to Ta5+ and Fe3+. Calculations of the Coulomb-part of lattice energy are discussed.  相似文献   

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On the RbNiCrF6 Type(1): On CsCuMF6 (M?NiIII, TiIII), CsMgMF6 (M ?Co, Fe, Ga), and CsZnMF6 (M?NiIII, CoIII, FeIII) New prepared are the cubic compounds CsCuNiIIIF6 (dark brown, a = 10.14 Å); CsZnNiIIIF6 (dark brown, a = 10.17 Å); CsCuTiIIIF6 (light grey, a = 10.39 Å); CsMgGaF6 (colourless, a = 10.23 Å); CsMgFeF6 (colourless, a = 10.53 Å); CsZnFeF6 (colourless, a = 10.42 Å); CsMgCoIIIF5 (light blue, a = 10.27 Å) and CsZnCoIIIF6 (light blue, a = 10.34 Å), all RbNiCrF6-type of structure. The Madelung part of lattice energy, MAPLE, is calculated and discussed.  相似文献   

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The geometry of acryloyl fluoride was optimized completely at the RHF/6-31G* level of theory at 10 points on the theoretical potential energy curve for internal rotation. The energies obtained were used to determine a six term cosine expansion of the torsional potential energy function. This function was then refined using the experimental torsional transition frequencies in the s-trans and s-cis wells in conjunction with the geometrical parameters optimized at the RHF/6-31G* level. The effective potential function obtained is compared with previous results. The necessity of accounting for relaxation of the geometry upon internal rotation is stressed. © 1992 by John Wiley & Sons, Inc.  相似文献   

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I? N ? S ? N? I, Preparation and Reactivity I? N ? S ? N? I is prepared form IN[Si(CH3)3]2 by reaction with SF4. It is a shock sensitive yellow powder, that appears in brown crystals after recrystallisation from CH2Cl2. The crystal structure reveals a syn-anti conformation for the molecule. Due to I … N contacts a layer lattice is formed.  相似文献   

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On the Ordering of BIII and MV in Perovskites of Type A BIIIMVO6 (AII ? Ba, Sr; MV ? Sb, Nb, Ta) The perovskites Ba2BIIISbO6 crystallize monoclinic (BIII ? La, Pr, Nd) and cubic (BIII ? Sm, Eu, Gd, Tb, Dy, Yb, Lu, Y) respectively. The Sr compounds, Sr2BIIISbO6, have a monoclinic (BIII ? Nd, Sm, Eu, Dy), orthorhombic (BIII ? Yb, Lu, Y, Sc) or cubic (BIII ? In, Ga) perovskite structure. By intensity calculations and vibrational spectroscopic investigations deviations from a complete order between BIII and SbV are detectable. For perovskites Ba2BIIIMVO6 with MV ? Nb, Ta the incompleteness of cationic order can be demonstrated as well.  相似文献   

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On the Preparation of Yttrium Hydride Halides YXHn (X ? Cl, Br) The compounds YCl and YBr described in a previous paper as “monohalides” in reality are hydridehalides YClHn and YBrHn with the H-concentration in the range 0.7 ≤ n ≤ 1.0. Dehydrogenation experiments on YCIH0.7 in all cases resulted in heterogeneous products consisting of YCl3, Y and YClHn. With increasing hydrogen content the c-lattice parameter decreases. Observed minimal c-lattice parameter is 2727.0(7) pm (for n ≈? 1), maximum c-lattice parameter is 2752.3(4) pm (for n ≈? 0.68). YBrHn crystallizes in the ZrBr-structure type, YClHn for 0.7 ≤ n ≤ 0.8 in the ZrBr-type, for 0.8 ≤ n ≤ 1.0 in the ZrCl-type. YXHn (X ? Cl, Br) has a graphite like colour and in H atmosphere can be hydrogenated to the colourless compound YXH2. YClH2 and YBrH2 are isotypic with TbBrD2. A miscibility gap was found between YClH1.0 and YClH2.0.  相似文献   

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Perfluoromethyl-Element-Ligands. XXXV. Reactivity of Metallated Phosphanes and Arsanes of the Type π-C5H5(CO)3MER2 (M ? Cr, Mo, W; E ? P, As; R ? CF3, CN) The influence of the complex fragments π-C5H5(CO)3M (M ? Cr, Mo, W) on the basicity of the metallated phosphanes or arsanes π-C5H5(CO)3MER2 (E ? P, As; R ? CF3, CN) has been investigated by reactions with sulfur, methyliodide, fluorotrichloromethane, and W(CO)5THF, respectively. π-C5H5(CO)3ME(CF3)2 (E ? P: 1a–c ; E ? As: 2a–c ) react with sulfur only for E ? P to give the complexes π-C5H5(CO)3P(S)(CF3)2 ( 5a–c ) in good yield. The attempted thermal transformation of the phosphane sulfides to η2 coordinated (CF3)2P?S complexes proves unsuccessful. The reactions of 1a–c, 2a–c and π-C5H5(CO)3MP(CN)2 ( 3a–c ) with CH3I or CCl3F do not lead to onium salts, but to cleavage of the M–E bonds forming π-C5H5(CO)3MX (X ? I, Cl) and CH3ER2 and R2ECCl2F, respectively. The reactivity depends on ER2 and M: P(CF3)2 > P(CN)2 > As(CF3)2; Cr > Mo > W. Due to the low donor ability of the complexes 1a–c, 2a–c and 3a–c binuclear compounds π-C5H5(CO)3MER2W(CO)5 (E ? As, R ? CF3: 11a–c ; E ? P, R ? CN: 12a–c ; ER2?P(CN)Ph: 13a, b ) are obtained only with the highly reactive W(CO)5THF. In case of the (CF3)2P bridged derivatives spontaneous CO-elimination leads to the threemembered ring systems ( 10a–c ).  相似文献   

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New Tetrapnictidotitanates(IV): Na3M3[TiX4] with M ? Na/Sr, Na/Eu and X ? P, As The four novel tetrapnictidotitanates(IV) Na4Sr2TiP4, Na4Sr2TiAs4, Na4.3Eu1.7TiP4 and Na4.3Eu1.7TiAs4 were prepared from the binary pnictides NaX, M3X, M′X (X ? P, As and M′ ? Sr, Eu) and elementary titanium in tantalum ampoules. The air and moisture sensitive transition metal compounds form dark red hexagonal crystals. They are semiconductors with Eg = 1.8eV (Sr) and Eg = 1.3eV (Eu), respectively. The compounds are isotypic with Na6ZnO4 (space group P63mc (no. 186); hP22; Z = 2; Na4Sr2TiP4; a = 936.8(1) pm, c = 740.5(1) pm; Na4Sr2TiAs4: a = 958.2(1) pm, c = 757.1(1) pm; Na4.3Eu1.7TiP4: a = 929.9(2) pm, c = 732.0(2) pm; Na4.3Eu1.7TiAs4: a = 953.9(1) pm, c = 749.5(1) pm). Main structural units are polar oriented [TiP4]8? and [TiAs4]8? tetrahedral anions with d (Ti? P) = 240.2(3) pm and d (Ti? As) = 248.6(3) pm.  相似文献   

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The proton NMR spectra of 2,3,4,4-tetramethyl-3-t-butylpent-1-ene rotarners have been completely assigned by low temperature NOE measurements. Chemical shifts and cis and trans allylic coupling constants are unambiguously determined. It is shown that other 2-substituted propenes can be assigned on the basis of the coupling constants, but not from the chemical shift data. In 1,2-disubstituited propenes, however, the transoid coupling constant falls in the range of the cisoid coupling constant values of the 2-substituted propenes. Coupling constants cannot, therefore, be used in the 1,2-disubstituted propene series as a criterion for determining structure.  相似文献   

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