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1.
Synthesis and Molecular Structure of [Al(SiMe3)3(DBU)] (DBU = 1,8-Diazabicyclo[5.4.0]undec-7-ene) [Al(SiMe3)3(OEt2)] reacts with DBU (DBU = 1,8-diazabicyclo[5.4.0]undec-7-ene) at 0 °C yielding [Al(SiMe3)3 · (DBU)] ( 1 ). 1 was characterised spectroscopically (1H, 13C, 29Si, 27Al NMR, IR, MS) and by X-ray structure determination [monoclinic, C2/c, a = 33.053(2), b = 9.307(1), c = 20.810(1) Å, β = 124.07(2)°, V = 5302.4(5) Å3, Z = 8, 218(2) K]. 1 does not react with [Cp2ZrCl2] even in boiling toluene.  相似文献   

2.
Synthesis, Properties, and Molecular Structures of Alkylaluminium Aminoalkoxide Chlorides Alkylaluminium aminoalkoxide chlorides [R(Cl)AlOR*] 1 – 3 have been obtained from the reaction of dialkyl aluminium chlorides R2AlCl with the respective aminoalkohol HOR* ( 1 : R = Et, OR* = dimethylamino‐1‐propanol; 2 : R = Me, OR* = (+);(–)‐dimethylamino‐2‐propanol; 3 : R = Me, OR* = (S)‐N‐methyl‐2‐pyrrolidinyl‐methanol). The reaction between dimethylaluminium chloride and (S)‐α, α‐diphenyl‐2‐pyrrolidinyl‐methanol (OR* = Dpm) yielded, by contrast, the ionic {[MeAl(OR*)2AlMe2]+ [MeAlCl3]} complex ( 4 ). 1 – 4 have been characterised by 1H, 13C and 27Al‐NMR spectroscopy. Crystal structures of 1 and of the 1 : 1 solvate of 4 with Et2O have been determined by X‐ray methods and the absolute structure of 4 was confirmed by refinement of the Flack‐parameter. The dimeric molecules of 1 are composed of two chelating rings linked via an almost planar Al2O2 unit and pentacoordination is observed about aluminium. In contrast, each of the two crystallographically independent cation molecules of 4 contains one four‐ and and one five‐coordinate metal centre.  相似文献   

3.
Preparation and Structure of Li[(Me2NCH2CH2CH2)4Yb] YbCl3 reacts with dimethylaminopropyl lithium in tetrahydrofuran with formation of Li[(Me2NCH2CH2CH2)4Yb]. The X-ray structure determination proves the formation of chelat rings by two of the ligands. The nitrogens of the other two ligands are coordinated to the lithium. The compound crystallizes in the monoclinic space group C2/c with the unit cell parameters a = 27.854(8) Å, b = 9.183(3) Å, c = 20.125(8) Å, β = 96.40° and Z = 8.  相似文献   

4.
The Reaction of Cyanide Ions with Trimethylgallium. The Crystal Structures of [Cs{CN(GaMe3)2}]n (1) and [Cs(toluene)2{CN(GaMe3)2}]n (2) CsCN reacts with GaMe3 in the molar ratio of 1 : 2 in the absence of additional solvent to the metalate [Cs{CN(GaMe3)2}] ( 1 ). 1 can be recrystallized from MeCN/toluene, forming [Cs(toluene)2{CN(GaMe3)2}] ( 2 ). If CsCN is treated with one equivalent GaMe3 in Et2O at 20 °C, the metalate [Cs(NCGaMe3)] can be isolated. 1 – 3 were characterized by NMR, IR, and MS techniques. In addition, X-ray structure analyses of 1 and 2 were prepared. According to the structural characterization 1 consists of a helix of Cs+ ions and side-on coordinated anions [Me3GaCNGaMe3], running along [010]. π-Electron-Cs+ contacts between Cs cations and toluene molecules are dominating the structure of 2 . The residual equatorial positions at the [Cs(toluene)2]+ sandwich-ion are occupied by Cs+-hydrogen(methyl) interactions. A three-dimensional network is the result of the contacts between cations and anions.  相似文献   

5.
Synthesis and Molecular Structure of [1,3-(Me3Si)2C5H3](Me3SiC5H4)ZrCl2 . The unsymmetrically substituted zirconocene dichloride was prepared by reaction of trimethylsilylcyclopentadienyl lithium and 1,3-bis(trimethylsilyl)cyclopentadienyl lithium with ZrCl4 · 2 THF. The molecular structure was determined (P21/a; a = 1 357.9, b = 1 900.0, c = 1 043.2 pm, β = 105,16°). The Zr? Cl distance are remarkably short.  相似文献   

6.
The Reactions of CH2=P(NMe2)3 with Fe(CO)5, Cr(CO)6, and CS2; Molecular Structures of [MeP(NMe2)3][(CO)5CrC(O)CH=P(NMe2)3], and (CO)4Fe=C(OMe)CH=P(NMe2)3 The ylide CH2=P(NMe2)3 ( 1 ) reacts with several binary transition metal carbonyls M(CO)x to produce the corresponding salt like compounds [MeP(NMe2)3][(CO)x–1MC(O)CH=P(NMe2)3] (M = Fe ( 3 ), Cr ( 4 )). The related reaction with CS2 leads to the salt [MeP(NMe2)3][SC(S)CH=P(NMe2)3] ( 2 ). While 4 is thermally stable, 3 rapidly decomposes at room temperature with formation of [MeP(NMe2)3]2[Fe2(CO)8] ( 8 ). Alkylation of 3 (at –50 °C) and 4 with MeSO3CF3 produces the related carbene complexes (CO)x–1M=C(OMe)CH=P(NMe2)3 ( 5 ) and ( 6 ); the reaction of 3 with Me3SiCl results in the formation of the carbene complex (CO)4Fe=C(OSiMe3)CH=P(NMe2)3 ( 7 ). 4 crystallizes in the space group P212121 (No. 19) with a = 1111.1(2), b = 1476.1(3), c = 1823.1(4) pm and Z = 4. 5 crystallizes in the space group P21/n (No. 14) with a = 1303.6(3), b = 910.5(4), c = 1627.0(4) pm, β = 96.06(2)° and Z = 4. The compounds have been characterized by elemental analyses, NMR (1H, 13C, 31P) and IR spectroscopy.  相似文献   

7.
Novel Syntheses of Me2SbX (X = Cl, I) and Crystal Structures of Me2SbI and [(Me3Si)2CH]2SbCl The crystal structures of Me2SbI (Me = CH3) and [(Me3Si)2CH]2SbCl have been determined by X‐ray methods. Both molecules are pyramidal. The Me2SbI molecules are associated to chains through short intermolecular Sb…I distances (366,7(1) pm) with linear I–Sb…I units (171,87(4)°) and bent Sb–I…Sb bridges (116,83(3)°).  相似文献   

8.
Synthesis and Structure of two Mixed Substituted Dialanes Al2X2{Si(SiMe3)3}2 · 2 THF (X = Cl, Br) The syntheses of tris(trimethylsilyl)silyl (hypersilyl) and halide substituted dialanes Al2X2{Si(SiMe3)3}2 · 2 THF (X = Cl, Br) are presented. The results of the X‐ray diffraction experiments are presented and discussed in comparison to the AlIII compounds AlBr2Si(SiMe3)3 · THF and AlBr3 · OPh2.  相似文献   

9.
Synthesis and Crystal Structure of Ln2SeSiO4 (Ln = Sm, Dy, Ho) and Sm2TeSiO4 Single crystals of Ln2SeSiO4 (Ln = Sm, Dy, Ho) could be prepared by the reaction of lanthanide metal, selenium and iodine in the ratio 1 : 1 : 2.5 and subsequent reaction with quartz glass powder. Black crystals of Sm2TeSiO4 have been obtained in chemical transport experiments of SmTe2 with iodine in evacuated quartz glass ampoules as by‐products. All chalcogenide silicates crystallize orthorhombically with the space group Pbcm (Z = 4) and the lattice constants: Sm2SeSiO4: a = 612.6(1) pm, b = 709.0(1) pm, c = 1094.0(2) pm; Dy2SeSiO4: a = 603.6(1) pm, b = 696.4(1) pm, c = 1081.2(2) pm; Ho2SeSiO4: a = 601.0(1) pm, b = 693.6(1) pm, c = 1078.6(2) pm; Sm2TeSiO4: a = 623.82(8) pm, b = 713.06(7) pm, c = 1112.26(11) pm. The crystal structure is built up of alternating Ln(Se/Te) and LnSiO4 sheets parallel (001).  相似文献   

10.
Synthesis of the Silatetraphospholanes (tBuP)4SiMe2, (tBuP)4SiCl2, and (tBuP)4Si(Cl)SiCl3 Molecular and Crystal Structure of (tBuP)4SiCl2 The reaction of the diphosphide K2[(tBuP)4] 7 with the halogenosilanes Me2SiCl2, SiCl4 or Si2Cl6 in a molar ratio of 1:1 leads via a [4 + 1]-cyclocondensation reaction to the silatetraphospholanes (tBuP)4SiMe2 1,1-dimethyl-1-sila-2,3,4,5-tetra-t-butyl-2,3,4,5-tetraphospholane, 1 , (tBuP)4SiCl2, 1,1-dichloro-1-sila-2,3,4,5-tetra-t-butyl-2,3,4,5-tetraphospholane, 2 , and (tBuP)4Si(Cl)SiCl3, 1-chloro-1-trichlorsilyl-1-sila-2,3,4,5-tetra-t-butyl-2,3,4,5-tetraphospholane, 3 , respectively, with the 5-membered P4Si ring system. The reaction leading to 1 is accompanied with the formation of the by-product Me2(Cl)-Si–(tBuP)4–Si(Cl)Me2 1a (5:1), which has a chain structure. On warming to 100°C 1a decomposes to 1 and Me2SiCl2. The compounds 2 and 3 do not react further with an excess of 7 due to strong steric shielding of the ring Si atoms by the t-butyl groups. 1, 2 and 3 could be obtained in a pure form and characterized NMR spectroscopically; 2 was also characterized by a single crystal structure analysis. 1a was identified by NMR spectroscopy only.  相似文献   

11.
Synthesis and Crystal Structures of Ln3I(SiS4)2 (Ln = Pr, Nd, Sm, Tb) Single crystals of Ln3I(SiS4)2 were prepared by a two‐step reaction of lanthanide metal, sulfur, silicon and iodine in the ratio 1 : 3.25 : 1 : 0.33 in quartz glass tubes. The thiosilicates crystallize in the monoclinic space group C 2/c (Z = 4) isotypic to Ce3I(SiS4)2 [1]. In the crystal structures the iodide ions form chains along [001] with trigonal coordination by lanthanide ions.  相似文献   

12.
Synthesis, NMR Spectra and Structure of [(CH3)2Ga{μ‐P(H)Si(CH3)3}2Ga(CH3)2{μ‐P(Si(CH3)3)2}Ga(CH3)2] The title compound has been prepared in good yield by the reaction of [Me2GaOMe]3 (Me = CH3) with HP(SiMe3)2 in toluene (ratio 1 : 1,1) and purified by crystallization from pentane or toluene, respectively. This organogallium compound forms (Ga–P)3 ring skeletons with one Ga–P(SiMe3)2–Ga and two Ga–P(H)SiMe3–Ga bridges and crystallizes in the monoclinic space group C2/c. The known homologous Al‐compound is isotypic, both (MIII–P)3 heterocycles have twist‐conformations, the ligands of the monophosphane bridges have trans arrangements.  相似文献   

13.
Synthesis, Properties, and Crystal Structure of Cu3Mo8O23X2 (X = Cl, Br, I) Single crystals of the Cu3Mo8O23X2 compounds were grown by chemical transport reactions at the lower temperature of a gradient 873–823 K without extra transport agent (auto transport). As DTA/TG measurements indicate, the gaseous compounds, necessary for chemical transport reactions, are formed by partial decomposition of Cu3Mo8O23X2 at 873 K. Cu3Mo8O23Br2 crystallizes with the orthorombic space group Pbcm (a = 4.021(1), b = 22.978(2), c = 21.673(2) Å, Z = 4). The crystal structure consists of pentagonal columns 1[Mo6O7O20/2] linked by additional MoO6/2 octahedra. All the polyhedra(pentagonal bipyramide, octahedra) are distorted. Infinite chains 1[Cu3Br2] along [100] are arranged in tunnels with s‐like square shape, left open by the pentagonal columns. Cu3Mo8O23Cl2 (a = 4.010(1), b = 22.942(2), c = 21.639(2) Å) and Cu3Mo8O23I2 (a = 4.052(1), b = 23.075(2), c = 21.719(2) Å) are isotypic.  相似文献   

14.
Synthesis and Molecular Structure of [{Cp′(μ‐η1 : η5‐C5H3Me)Mo(μ‐AlRH)}2] (Cp′ = C5H4Me, R = iBu, Et) [Cp′2MoH2] reacts with HAlR2 to give [{Cp′(μ‐η1 : η5‐C5H3Me)Mo(μ‐AlRH)}2] (Cp′ = C5H4Me, R = iBu ( 1 ), Et ( 2 )). Crystal structure determinations were carried out on [Cp′2MoH2] and 1 . 1 exhibits a direct Mo–Al bond (2.636(2) Å).  相似文献   

15.
Investigations on the Bismuth Rare‐Earth Oxyhalides Bi2REO4X (X = Cl, Br, I) Compounds of the composition of Bi2REO4X (RE = Y, La–Lu; X = Cl, Br, I) have been prepared by solid state reaction of stoichiometric mixtures of BiOX, Bi2O3, and RE2O3. They were characterized by X‐ray powder diffraction, IR spectroscopy, mass spectrometry and DTA/TG measurements as well. The crystal structure (tetragonal, P4/mmm, a ≈ 3.9 Å, c ≈ 9 Å) was determined by the Rietveld method. In the structure [M3O4]+ layers are interleaved by single halogen layers. Rare‐earth and bismuth atoms in Bi2REO4X are 8‐coordinated. The structure can be derived from the LiBi3O4Cl2 type structure. The enthalpies of formation are derived from heats of solution. The standard entropies were calculated from low‐temperature measurements of the specific heat capacities.  相似文献   

16.
Synthesis, Crystal Structures and Spectroscopic Investigations of 3d-Transition Metal Complexes with Bicyclo[2.2.1]hept-5-ene-2-endo,3-cis-dicarboxylic Acid and N,N-Donor Ligands The synthesis of coordination compounds of the general type [MLdam(H2O)3] · 2.5 H2O with M = Mn2+, Co2+, Ni2+; H2L = bicyclo[2.2.1]hept-5-ene-2-endo,3-cis-dicarboxylic acid and dam = 2,2′-dipyridyl, 1,10-phenanthroline has been described. The complexes have been characterized by elementary analysis, infrared and electronic spectra and magnetic susceptibility measurements. The results of X-ray crystal structure analyses of [MnLdipy(H2O)3] · 2.5 H2O ( 1 a ) and [CoLdipy(H2O)3] · 2,5 H2O ( 1 b ) show, that both compounds crystallize isotypically and prove the octahedral coordination of the metal atoms. The dicarboxylate anion is coordinated to the central atom by an O atom of only one carboxylate group, the other one is in the ionic state. One O atom of each carboxylate group makes an intramolecular hydrogen bond with a water molecule of the coordination sphere. The other crystal water molecules form a network of H bonds one with another and with the complex molecules, thus stabilizing the crystal packing.  相似文献   

17.
Synthesis and Crystal Structures of Chlororhenates(III) with the Divalent Cations Ethylenediammonium and Piperazinium: (EnH2)2(PipzH2) [Re3Cl12]2·6H2O, (EnH2) (PipzH2) [Re3Cl12]Cl· H2O, and (PipzH2) [Re3Cl11(H2O)] · 3H2O The deep red salt (EnH2)2(PipzH2)[Re3CI12] · 6 H2O ( 1 ), (EnH2)(PipzH2)[Re3Cl12]CI · H2O ( 2 ), and (PipzH2)[Re3Cl11(H2O)] · 3H2O ( 3 ) crystallize upon evaporation from hydrochloride acid solutions of ReCl3 on addition of ethylenediammonium chloride (EnH2Cl2) and/or piperazinium chloride (PipzH2Cl2). The crystal structures have been determined from four-circle diffractometer data. 1: monoclinic; a = 1889.63(11), b = 1615.82(8), c = 790.28(4)pm; β = 101.354(5)°; Z = 2; P21/n; R = 0.119, Rw = 0.070. 2: triclinic; a = 1330.35(4), b = 1051.14(5), c = 1165.32(6)pm; α = 122.308(4), β = 102.412(3), γ = 92.226(4)°; Z = 2, P1 ; R = 0.092, Rw = 0.059. 3: orthorhombic; a = 971.43(4), b = 1619.51(7), c = 1478.87(6)pm; Z = 4; Pbcm; R = 0.034, Rw = 0.032.  相似文献   

18.
Synthesis and Structure Analysis of (tBuP)4Sn(CH3)2 and (CH3)2Sn[(tBu)P? P(tBu)]2Sn(CH3)2 The diphosphides K2[(tBu)P? (tBuP)2? P(tBu)] 7 or K2[(tBu)P? P(tBu)] 8 react with (CH3)2SnCl2 in a molar ratio of 1 : 1 to form the binary 5-membered ring system P4Sn 4 a and the 6-membered ring system Sn(P2)2Sn 5 a respectively. When (CH3)2SnCl2, however, is treated with 8 in a molar ratio of 2 : 1 the 4-membered ring system P3Sn 2 a is formed which includes the fragmentation of the intermediate K2[(CH3)2Sn ((tBu)P? P(tBu))2] 9. 4 a and 5 a could be obtained in a pure form and characterized NMR spectroscopically and by X-ray structure analyses; 2 a was identified only NMR spectroscopically.  相似文献   

19.
Synthesis, Structure, and Properties of [nacnac]MX3 Compounds (M = Ge, Sn; X = Cl, Br, I) Reactions of [nacnac]Li [(2,6‐iPr2C6H3)NC(Me)C(H)C(Me)N(2,6‐iPr2C6H3)]Li ( 1 ) with SnX4 (X = Cl, Br, I) and GeCl4 in Et2O resulted in metallacyclic compounds with different structural moieties. In the [nacnac]SnX3 compounds (X = Cl 2 , Br 3 , I 4 ) the tin atom is five coordinated and part of a six‐membered ring. The Sn–N‐bond length of 3 is 2.163(4) Å and 2.176(5) Å of 4 . The five coordinated germanium of the [nacnac]GeCl3 compound 5 shows in addition to the three chlorine atoms further bonds to a carbon and to a nitrogen atom. In contrast to the known compounds with the [nacnac] ligand the afore mentioned reaction creates a carbon–metal‐bond (1.971(3) Å) forming a four‐membered ring. The Ge–N bond length (2.419(2) Å) indicates the formation of a weakly coordinating bond.  相似文献   

20.
Thia- and Selena-arachno-undecaborane 6,7-μ-(CH3E)B10H13. Crystal Structure of arachno-6,7-μ-(CH3Se)B10H13. Theoretical Investigations of the Molecular Structures and 11B NMR Shifts of arachno-6,7-μ-(CH3E)B10H13 The reaction of B10H14 with (CH3)2S yields with loss of H2 the base adduct 6,9-[(CH3)2S]2B10H12. Although an analogous reaction between B10H14 with disulfanes or diselenanes was expected to produce 6,9 bridged dichalcogen derivatives, (CH3)2S2 failed to react even under reflux conditions. Trisulfane (CH3)2S3 does react, but the pathway is different and leads to (CH3S)B10H13 2 without loss of H2. Unlike of (CH3)2S2, (CH3)2Se2 yields (CH3Se)B10H13, 3 . Both 2 and 3 are formed by substitution of a bridging hydrogen and could be obtained in pure form and characterized 11B NMR spectroscopically. A single crystal X-ray structure analysis also was performed on 3 (space group P21/c). The molecular structures of 2 and 3 were optimized at the MP2 level and 11B NMR shifts were computed at the IGLO-SCF, GIAO-SCF and GIAO-B3LYP levels of theory.  相似文献   

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