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1.
Five crystalline 2-(dimethylsila)pyrimidine derivatives (Z) have been prepared in excellent 14 or satisfactory 5 yield and characterised. The source of each was ultimately Li[CH(SiMe2R)(SiMe2OMe)] [R = Me (B) or OMe (I)]. Compound 1 (Z with Ar = Ph, X = SiMe3, n = 1) was obtained from Z [with Ar = Ph, X = Li(OEt2), n = 4; previously isolated from B [P.B. Hitchcock, M.F. Lappert, X.-H. Wei, J. Organomet. Chem. 689 (2004) 1342]] and Me3SiCl. The potassium salt 2 [Z with Ar = C6H4But-4; X = K(thf)3, n = 2] was made from K[CH(SiMe3)(SiMe2OMe)] (C) (via B) and 4-ButC6H4CN. Treatment of 2 with 1,2-dibromoethane afforded 3 (Z with Ar = 4-ButC6H4; X = H, n = 1); which when reacted with successively n-butyllithium and Me3SiCl produced 4 (Z with Ar = 4-ButC6H4, X = SiMe3, n = 1). Compound 5 [Z with Ar = 4-ButC6H4, X = Li(hmpa)2, n = 1] resulted from I with 4-ButC6H4CN and then OP(NMe2)3 (≡ hmpa). Plausible reaction pathways from the appropriate alkali metal alkyl C or I to 2 or 5, respectively, are suggested; these involve regiospecific 1,3-migrations of SiMe2OMe from C → N and electrocyclic loss of Me3SiOMe or SiMe2(OMe)2, respectively. The X-ray structures of crystalline 1, 2 and 5 are presented.  相似文献   

2.
Metallation of (HMe2Si)(Me3Si)2CH (1) by LiMe gave the organolithium compound Li(THF)2C(SiMe3)2(SiMe2H) (2a), which exists in toluene solution as a mixture of covalent species and ion pairs [Li(THF)4][Li{C(SiMe3)2(SiMe2H)}2] (2b). Treatment of a mixture of 1 and LiMe with KOBut gave KC(SiMe3)2(SiMe2H) (3). This reacted with AlMe2Cl in hexane/THF to give Al(THF)Me2{C(SiMe3)2(Si Me2H)} (4). Treatment of (HMe2Si)(PhMe2Si)2CH (5) with LiMe in Et2O/THF gave the THF adduct [Li(THF)2C(SiMe2Ph)2(SiMe2H)] (6); in the presence of KOBut the solvent-free [K][C(SiMe2Ph)2(SiMe2H)] (7) was obtained. Crystal structure determinations showed that 6 crystallizes in a molecular lattice and 7 in an ionic lattice in which the coordination sphere of the potassium comprises phenyl groups and hydrogen atoms attached to silicon, as well as the central carbon of the bulky carbanion. Compound 7 reacted with an excess of AlMe2Cl to give [AlClMe{C(SiMe2Ph)2(SiMe2H)}]2 (8) and AlMe3. A small amount of the methoxo derivative [Al(OMe)Me{C(SiMe2Ph)2(SiMe2H)}]2 (9) was obtained as a byproduct, presumably after the accidental admission of traces of air. X-ray structural determinations showed that 8 forms halogen-bridged dimers, with the bulky ligands in the anti-configuration, and 9 forms methoxo-bridged species in which the bulky ligands are syn.  相似文献   

3.
The homologous phases corresponding to the formula AnBnO3n+2 observed in the systems: La2Ti2O7CaTiO3, Nd2Ti2O7CaTiO3 and Ca2Nb2O7CaTiO3, have a structure derived from the structure of perovskite by periodic crystallographic shears, which delimitate n octahedra thick sheets. In the [0 1 0]1 direction, the sheets are following each other with two types of arrangement.Crystals of terms n = 4,5, 5 and 6 were investigated by X-ray diffraction. According to the type of arrangement of the sheets, the phases studied have either an orthorhombic symmetry or a monoclinic symmetry, this last one giving rise to merohedral twins.  相似文献   

4.
Tin(II) compounds containing the ligands [CH(C6H3Me2-2,5)C(But)NSiMe3] (≡ L1), [CH(Ph)C(Ph)NSiMe3] (≡L2), [CH(SiMe3)P(Ph)2NSiMe3] (≡ L3),

(≡ L4), [C(Ph)C(Ph)NSiMe3]2− (≡ L5), and [C(SiMe3)P(Ph)2NSiMe3]2− (≡ L6) are reported: the transient SnBr(L1) (1) and SnBr(L2) (2), Sn(L1)2 (3) [P.B. Hitchcock, J. Hu, M.F. Lappert, M. Layh, J.R. Severn, J. Chem. Soc., Chem. Commun. (1997) 1189], the labile Sn(L2)2 (4), [Sn(L5)]2 (5), SnCl(L3) (6), Sn(L3)2 (7), [Sn(L6)]2 (8), Sn(L4)2 (9) and Pb(L4)2 (10). They were prepared from (i) SnBr2 and K(L1) (1, 3) or K(L2) (2, 4, 5); (ii) SnCl2 and Li(L3) (6–9); or (iii) PbCl2 and Li(L4) (10). Each of 1, 3 and 510 has been characterised by multinuclear NMR spectra; 3, 5, 6, 8, 9 and 10 by EI-mass spectra, but only 3, 5, 8, 9 and 10 were isolated pure and furnished X-ray quality crystals. Of greatest novelty are the title binuclear fused tricyclic ladder-like compounds 5 and 8. Quantum chemical calculations, on alternative pathways to 5 from 2 and to 8 from 7, are reported.  相似文献   

5.
The sterically demanding pyridines 2,6-Ar2C6H3N [Ar = 2,4,6-Me3C6H2 (1) or 2,4,6-Pri3C6H2 (2)] were prepared by a palladium catalysed Kumada C–C coupling reaction in high yield. Pyridine 1 reacted with one equivalent of GaCl3 to afford the tetra-chloro gallate–pyridinium ion pair complex [GaCl4][2,6-(2,4,6-Me3C6H2)2C6H3NH]+ (3). Contrastingly, pyridine 2 reacted with one equivalent of GaCl3 to afford the anticipated donor-acceptor complex [GaCl3{2,6-(2,4,6-Pri3C6H2)2C6H3N}] (4). Complexes 14 have been characterised variously by single crystal X-ray diffraction, NMR, CHN, and mass spectrometry.  相似文献   

6.
This paper describes the hydrothermal syntheses and characterization of two antimony(III) diphosphonates: [NH3(CH2)nNH3]Sb{CH3C(O)(PO3)2} [n=4 (1), 5 (2)]. The two compounds are isostructural based on their XRD measurements. Single-crystal structure determination of compound 1 revealed a one-dimensional linear chain structure where the distorted {SbO5E} octahedra (E is the lone pair electrons occupying an axial position) are corner-shared by {CPO3} tetrahedra. The protonated diamines are located between the chains, with their nitrogen atoms locked by the hydrogen bonds with the phosphonate oxygens. Crystal data for 1: orthorhombic, space group Pnma, a=13.426(4), b=17.149(4), c5.4496(14) Å, V=1254.7(6) AÅ3, Z=4.  相似文献   

7.
The crystalline compounds [AlMen{Si(SiMe3)3}3−n(thf)] [n = 2 (1) or 1 (2)] were prepared from the lithium sisyl [Li{Si(SiMe3)3}(thf)3] (A) and the appropriate methylaluminium chloride [AlCl3−nMen] in thf. The X-ray structure of 1 is reported. Unlike A or a magnesium sisyl [Mg{Si(SiMe3)3}2(thf)2] (B), neither 1 nor 2 underwent an insertion reaction with an α-H-free nitrile.  相似文献   

8.
The dipole moments of the (C2H5)nPX3?n (X = Cl, Br, I; n = 0, 1, 2, 3) and P{EIVB(CH3)3}3 compounds (EIVB = C, Si, Sn) have been determined by dielectric measurements in benzene at 25°C by Higasi's method. The results are interpreted in terms of an additive vector model from bond moment calculations and a maximum phosphorus lone pair contribution of 1.75 D as calculated for P(C2H5)3. The high dipole moment of the mixed PA2B-type compounds in comparison with PA3 moments is mainly ascribed to a loss of C3v symmetry, characterized by a quite asymmetric orientation of the phosphorus lone pair with respect to the phosphorus bonding orbitals.  相似文献   

9.
The lithium derivative (1) reacted with AlCl3 or Me2AlCl to give, respectively, the monomeric compounds (2a) and (2b). The product from reaction with commercially available GaBr3 was the analytically pure monomeric heterocycle (3), indicating that the starting halide had been partially hydrolysed before use. The reaction between 1 and commercially available InCl3 gave a homogenous white solid (4) with X = Cl (59%) or OH (41%). The X-ray crystal structures of 2a, 3, and 4 have been determined.  相似文献   

10.
The aldehydic benzyl ethers PhCH2OC6H4CHO (2; a/b = para/meta series) are readily available from the corresponding phenols and react with Wittig reagents derived from [Ph3PCH2CH2Rf8]+I (Rf8=(CF2)7CF3) to give PhCH2OC6H4CHCHCH2Rf8 (86-93%, Z major). Reactions with H2 over Pd/C give the fluorous phenols HOC6H4(CH2)3Rf8(4a,b; 87-91%). Condensations with PCl3 and NEt3 (3.0:1.0:3.3 mol ratio) give the fluorous phosphites P[OC6H4(CH2)3Rf8]3(5a,b; 92-94%), but traces of 4a,b are difficult to remove. The phthalate-based benzyl ethers PhCH2OC6H3(COOR)2 (7; ,5/3,4 OC6H3-3,n-(R)2 series) are easily accessed and reduced with LiAlH4 to the diols PhCH2OC6H3(CH2OH)2(8c,d; 89-90%). Diol 8c and the Dess-Martin periodinane react to give the dialdehyde PhCH2OC6H3(CHO)2 (9c; 95%). This is elaborated by a sequence analogous to 2→4→5 to the fluorous phenol HOC6H3((CH2)3Rf8)2 (11c; 97%/96%, two steps) and phosphite P[OC6H3((CH2)3Rf8)2]3 (12c, 92%), from which traces of 11c are difficult to remove. Diol 8d can be similarly elaborated to 11d, but the dialdehyde 9d is labile and the combined yield of the Dess-Martin/Wittig steps is 32%. The CF3C6F11/toluene partition coefficients of 11c,d, and 12c (two pony tails; 70:30, 72:28, 92:8) are much higher than those of 4a and b (one pony tail; 12:88, 14:86).  相似文献   

11.
The high temperature reaction of C60 with silver(I) trifluoroacetate followed by 500 °C sublimation and subsequent HPLC purification has led to the isolation of the five trifluoromethyl[60]fullerenes C60(CF3)n (n=2, 4, 6, 8, 10). Four of them have >90% compositional purity. Two of the compounds, C60(CF3)4 and C60(CF3)6, were obtained as C1-symmetry isomers with >90% isomeric purity, and a sample of C60(CF3)2 also contained ca. 15-20% of a Cs-symmetry isomer of C60(CF3)4. The new compounds were characterized by IR and EI mass spectrometry (all five compounds), NMR spectroscopy (C60(CF3)2, C60(CF3)4, and C60(CF3)6), and 2D COSY NMR spectroscopy (C60(CF3)4 and C60(CF3)6). Calculations at the AM1 and DFT levels of theory have led to the prediction of the most likely structures for C60(CF3)2, C1-C60(CF3)4, Cs-C60(CF3)4, and the two most likely structures of C1-C60(CF3)6.  相似文献   

12.
Room-temperature electronic absorption spectra, and emission spectra at room temperature and 77 K, have been measured for the mixed ligand 2,2'-bipyndine-2-(2-pyridyl)quuioline complexes of ruthemum (II). The charge-transfer states initially populated by absorption of visible light are essentially localised on individual ligands, and there is little coupling of these ligand states. Emissions, however, occur from a single state possessing the characteristics of the pyridylquinoline ligand alone.  相似文献   

13.
Electronic absorption, emission, and excitation spectra together with lumincscence lifetimes, have been measured for the mixed-ligand 1,10-phenanthroline/2-(2-pyridyl)quinoline complexes of ruthenum(II). Charge-transfer absorption and emitting states appear to be located on the individual ligands and there is evidence that energy transfer from the phenanthroline absorption state to the pyridylquinoline emitting state occurs.  相似文献   

14.
The generation and properties of the Cp2Zr{CH(SiMe3)2}+ cation are described. An X-ray crystallographic analysis shows that the carborane salt [Cp2Zr{CH(SiMe3)2}][HCB11Me5Br6] contains an agostic Zr-μ-Me-Si interaction in the solid state. Low temperature NMR spectra of the borate salt [Cp2Zr{CH(SiMe3)2}][B(C6F5)4] show that this interaction is retained in solution. Variable temperature NMR spectra establish that the SiMe2(μ-Me) and unbound SiMe3 units of Cp2Zr{CH(SiMe3)2}+ exchange by a “pivot” process involving partial rotation around the Zr-CH(SiMe3)2 bond, with a barrier of ΔG = 9.2(1) kcal/mol at −89 °C. Cp2Zr{CH(SiMe3)2}+ does not coordinate alkenes or alkynes.  相似文献   

15.
Reduction of (Me3Si)2CHSbCl2 with Mg in tetrahydrofuran yields [(Me3Si)2CHSb]n (n = 3, 4).  相似文献   

16.
Reaction of Li with AsClR2 (R = CH(SiMe3)2) affords [Li(μ-AsR2]3 (I), the first structurally characterised dialkylarsenide, which in OEt2 at 25°C yields AsHR2, AsMeR2, AsHR2, or A.sR2 (II) with HCl, MeCl, ButCl, or SnCl2, respectively; upon removal of solvent, II furnishes As2R4 (III), which readily dissociates into II: the As3Li3 ring of I has a boat conformation and the average Li---As bond distance is 2.60(4) Å.  相似文献   

17.
A new layered indium-organic framework material, In[NC5H3(CO2)2](OH2)F has been synthesized by a hydrothermal reaction using In2O3, NH4F, 2,6-NC5H3(CO2H)2 (2,6-pyridinedicarboxylic acid), HF, and water at 200 °C. Single-crystal X-ray diffraction was used to determine the structure of the reported material. In[NC5H3(CO2)2](OH2)F has a novel layered structure consisting of InO5NF polyhedra and the pyridinedicarboxylate organic linker. Detailed structural analyses with full characterization including infrared spectrum, thermogravimetric analysis, elemental analysis, exchange reactions for the coordinated water molecule, and gas adsorption experiments are reported.  相似文献   

18.
Syntheses of rac/meso-{PhP(3-t-Bu-C5H3)2}Zr{Me3SiN(CH2)3NSiMe3} (rac-3/meso-3) and rac/meso-{PhP(3-t-Bu-C5H3)2}Zr{PhN(CH2)3NPh} (rac-4/meso-4) were achieved by metallation of K2[PhP(3-t-Bu-C5H3)2] · 1.3 THF (2) with Zr{RN(CH2)3NR}Cl2(THF)2 (where R = SiMe3 or Ph, respectively) using ethereal solvent. These isomeric pairs were characterized by 1H, 13C{1H}, and 31P{1H} NMR spectroscopy; rac-3 and rac-4 were also examined via single crystal X-ray crystallography. The structures of rac-3 and rac-4 are notable in the tendency of the cyclopentadienyl rings towards η3 coordination. While isolated samples of rac-3/meso-3 and rac-4/meso-4 slowly isomerize in tetrahydrofuran-d8 to equilibrium ratios, the isomerization rate for 3 is more than 15-fold greater than that for 4. In addition, equilibrium ratios are rapidly reached when isolated samples of rac-3/meso-3 and rac-4/meso-4 are exposed to tetrabutylammonium chloride in tetrahydrofuran-d8 solvent. We propose that a nucleophile (either chloride or the phosphine interannular linker) brings about dissociation of one cyclopentadienyl ring, thus promoting the rac/meso isomerization mechanism.  相似文献   

19.
A method for the preparation of (C6H5)nPX3-nCr(CO)5 complexes in the crystalline state is described. The carbon-oxygen stretching vibration, vCO(A, eq.), of the complexes with X = Cl, Br, I is mainly determined by the inductive effect of the (C6H5)nPX3-n group. For X = H, the vCO band is defined by the concomitant influence of the σ, π and steric effects.  相似文献   

20.
Layered organic-inorganic composite materials (C5H10N3)PbX4 (X=Br 1, Cl 2) containing histaminium dications were grown via a solution-cooling process, and their structure and optical properties were determined. The organic ligand-histaminium introduced into the corner-sharing octahedra of the ‘PbX4-layer’ contains both primary ammonium and imidazolium different from the traditionally primary amine found in this system. As comparison, another analogous amine of 3-amino-1,2,4-triazol was used as ligand to coordinate with PbBr2 in acid solution. A novel complex (C2H2N4)PbBr3 (3) was obtained with zigzag PbBr2 chains different from the PbX4 layer in compound as 1 and 2. The hybrid (C5H10N3)PbX4 show exciton absorption at 339 nm for X=Cl and 419 nm for X=Br with the corresponding emission at 360 and 436 nm, respectively. The different PbBr2 chain structure of compound 3 does not show photoluminescence.  相似文献   

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