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1.
A novel bimetallic Cr3Yb3 coordination compound containing a 3d-4f heterometallic Cr2Yb3 cationic cluster has been synthesized and structurally characterized. The crystal structure was determined by X-ray analysis. Results denote that the complex consists of an original [Cr 2 III Yb 3 III ]3+ moiety with a trigonal-bipyramidal topology of the [Cr2Yb3(μ-OOCCH3)6(μ-OH)6(H2O)6]3+ core, an isolated [CrIII(CN)6]3? anion, and four molecular neutral 4,4′-bipyridene (Bipy) ligands, namely, [Cr2Yb3(μ-OOCCH3)6(μ-OH)6(H2O)6][Cr(CN)6] · 4Bipy · 13H2O.  相似文献   

2.
The reactions between [Mo33-S)(μ2-S)3(Acac)3(Py)3]PF6 (HAcac is acetylacetone, Py is pyridine) and CuX (X = Cl, I, SCN) afford heterometallic cubane clusters [Mo3(CuX)(μ3-S)4(Acac)3(Py)3]PF6. The structures of two new compounds, [Mo3(CuCl)S4(Acac)3(Py)3]PF6 · 3.25CH2Cl2 · 0.5C6H5CH3 and [Mo3(CuI)S4(Acac)3(Py)3]PF6 · 4C6H6, are determined by X-ray diffraction analysis. All synthesized compounds are characterized by elemental analysis and IR spectra. According to the vibrational spectra, the thiocyanate complex in the solid state is a mixture of the bond isomers [Mo3(CuNCS)S4(Acac)3(Py)3]PF6 and [Mo3(CuSCN)S4(Acac)3(Py)3]PF6, whereas in solution this complex exists as a isothiocyanate form.  相似文献   

3.
Syntheses and Crystal Structures of Novel Heterobimetallic Tantalum Coin Metal Chalcogenido Clusters In the presence of phosphine the thiotantalats (Et4N)4[Ta6S17] · 3MeCN reacts with copper to give a number of new heterobimetallic tantalum copper chalcogenide clusters. These clusters show metal chalcogenide units some of which here already known from the chemistry of vanadium and niobium. New Ta—M‐chalcogenide clusters could also be synthesised by reaction of TaCl5 and silylated chalcogen reagents with copper or silver salts in presence of phosphine. Such examples are: [Ta2Cu2S4Cl2(PMe3)6] · DMF ( 1 ), (Et4N)[Ta3Cu5S8Cl5(PMe3)6] · 2MeCN ( 2 ), (Et4N)[Ta9Cu10S24Cl8(PMe3)14] · 2MeCN ( 3 ), [Ta4Cu12Cl8S12(PMe3)12] ( 4 ), (Et4N)[Ta2Cu6S6Cl5(PPh3)6] · 5MeCN ( 5 ), (Et4N)[Ta2Cu6S6Cl5(PPh2Me)6] · 2MeCN ( 6 ), (Et4N)[Ta2Cu6S6Cl5(PtBu2Cl)6] · MeCN ( 7 ) [Ta2Cu2S4Br4(PPh3)2(MeCN)2] · MeCN ( 8 ), [Cu(PMe3)4]2[Ta2Cu6S6(SCN)6(PMe3)6] · 4MeCN ( 9 ), [TaCu5S4Cl2(dppm)4] · DMF ( 10 ), [Ta2Cu2Se4(SCN)2(PMe3)6] ( 11 ), [Cu(PMe3)4]2[Ta2Cu6Se6(SCN)6(PMe3)6] · 4MeCN ( 12 ), [TaCu4Se4(PnPr3)6][TaCl6] ( 13 ), [Ta2Ag2Se4Cl2(PMe3)6] · MeCN ( 14 ), [TaAg3Se4(PMe3)3] ( 15 ). The structures of these compounds were obtained by X‐ray single crystal structure analysis.  相似文献   

4.
The double complex salts [Ir(NH3)5Cl][IrCl6], [Ru(NH3)5Cl][IrCl6], and [Ru(NH3)5Cl]2[IrCl6]Cl2 have been synthesized and characterized. An X-ray diffraction study demonstrated that these salts are isostructural with [Rh(NH3)5Cl][OsCl6] and [Ir(NH3)5Cl]2[PtCl6]Cl2 synthesized earlier. Thermolysis of these salts in hydrogen and helium has been studied. X-ray powder diffraction analysis show that thermolysis yields stoichiometric solid solutions of metals as the final products. The unit cell parameters of these products correspond to equilibrium phases.  相似文献   

5.
Four complex salts with the polyatomic [Rh(NH3)6]3+ cation are synthesized and studied by X-ray diffraction. The crystallographic characteristics of [Rh(NH3)6](WO4)Cl are determined and the structures of [Rh(NH3)6]Cl3, [Rh(NH3)6](ReO4)3·2H2O, and [Rh(NH3)6](MoO4)Cl·3H2O are solved. The features of mutual packing of the fragments are studied.  相似文献   

6.
The results concerning the synthesis, structure and thermal properties of V2O5-MoO3-Ag2O samples in the molybdenum rich region of ternary system are presented in the form of quasi-binary systems: β-AgVO3-β-Ag2MoO4, AgVMoO6-MoO3, AgVMoO6-Ag2Mo4O13, AgVMoO6-Ag2Mo2O7, AgVMoO6-β-Ag2MoO4 and also of the system in which at V2O5/MoO3 molar ratio 3:7 the content of Ag2O was variable. The ternary phase AgVMoO6 was not described earlier in the literature.  相似文献   

7.
Rhombohedral hexametavanadates K4Sr(VO3)6, K4Ba(VO3)6, Rb4 Ba(VO3)6, and Cs4Ba(VO3)6 melt incongruently in the temperature range of 491 to 600°C. Cooling of peritectic melts yields mixtures of compounds typical of M2+O-M2+O-V2O5 systems, far from equilibrium and depending on the cooling kinetics. The vanadate Cs4Ba(VO3)6 undergoes reversible polymorphic transformation at 360°C. All compounds show broad-band luminescence with a maximum of the luminescence spectrum at 490–590 nm with three types of excitation. The vanadates K4Sr(VO3)6 and Rb4Ba(VO3)6 show the highest luminescence intensity at room temperature. The latter is also most efficient at liquid nitrogen temperatures. The luminescence spectra depend on the excitation of vanadates. Three hypotheses were put forward to interpret this finding. The nature of luminescence is attributed to the relaxation of electronic excitation in [VO4]3− structural tetrahedra present in the vanadates. The performance characteristics of luminophores were determined. These luminophores may be promising as X-ray luminescent screens, radioluminescence indicators, and light-emitting diode devices.  相似文献   

8.
The title compound, [CrSn(C6H5)3(C7H6NO2)3Cl][Sn(C6H5)3Cl(CH4O)], was obtained from the reaction of Ph3SnCl with the complex [Cr(C7H6NO2)3] in methanol. The structure contains [Ph3SnCl(MeOH)] (A) and [Ph3SnClCr(C7H6NO2)3] (B) mol­ecules. In mol­ecule A, the Sn atom of Ph3SnCl is coordinated by one methanol mol­ecule. In mol­ecule B, the Sn atom of Ph3SnCl is coordinated by one carboxyl­ate O atom of [Cr(C7H6NO2)3]. Mol­ecules A and B are connected through an O—H⋯O hydrogen bond between a carboxyl­ate O atom and the methanol OH group. Weak C—H⋯Cl inter­actions and O—H⋯O hydrogen bonds extend the components of (I) into a two‐dimensional network.  相似文献   

9.
Phase relations in the Y2O3-Ga2O3 system were studied by the anneal-and-quench technique in air within 1000–2300°C, and a phase diagram was plotted. Three compounds were found to form: Y3GaO6, Y4Ga2O9, and Y3Ga5O12; the temperature and concentration bounds of stability were determined for these compounds. Indexing results for Y3GaO6 are given.  相似文献   

10.
Pentazole Derivates and Azides Formed from them: Potassium‐Crown‐Ether Salts of [O3S—p‐C6H4—N5] and [O3S—p‐C6H4—N3] O3S—p‐C6H4—N2+ was reacted with sodium azide at —50 °C in methanol, yielding a mixture of 4‐pentazolylbenzenesulfonate and 4‐azidobenzenesulfonate (amount‐of‐substance ratio 27:73 according to NMR). By addition of KOH in methanol at —50 °C a mixture of the potassium salts K[O3S—p‐C6H4—N5] and K[O3S—p‐C6H4—N3] was precipitated (ratio 60:40). A solution of this mixture along with 18‐crown‐6 in tetrahydrofurane yielded the crystalline pentazole derivate [THF‐K‐18‐crown‐6][O3S—p‐C6H4—N5]·THF by addition of petrol ether at —70 °C. From the same solution upon evaporation and redissolution in THF/petrol ether the crystalline azide [THF‐K‐18‐crown‐6][O3S—p‐C6H4—N3]·THF was obtained. A solution of the latter in chloroform/toluene under air yielded [K‐18‐crown‐6][O3S—p‐C6H4—N3]·1/3H2O. According to their X‐ray crystal structure determinations [THF‐K‐18‐crown‐6][O3S—p‐C6H4—N5]·THF and [THF‐K‐18‐crown‐6][O3S—p‐C6H4—N3]·THF have the same kind of crystal packing. Differences worth mentioning exist only for the atomic positions of the pentazole ring as compared to the azido group and for one THF molecule which is coordinated to the potassium ion; different orientations of the THF molecule take account for the different space requirements of the N5 and the N3 group. In [K‐18‐crown‐6][O3S—p‐C6H4—N3]·1/3H2O there exists one unit consisting of one [K‐18‐crown‐6]+ and one [O3S‐C6H4—N3] ion and another unit consisting of two [O3S‐C6H4—N3] ions joined via two [K‐18‐crown‐6]+ ions and one water molecule. The rate constants for the decomposition [O3S‐C6H4—N5] → [O3S‐C6H4—N3] + N2 in methanol were determined at 0 °C and —20 °C.  相似文献   

11.
Five new copper chalcogenide cluster molecules, [Cu4(S–C6H4–Br)4(PPh3)4] ( 1 ), [Cu22Se6(S–C6H4–Br)10(PPh3)8] ( 2 ), [Cu28Se6(S–C6H4–Br)16(PPh3)8] ( 3 ), [Cu47Se10(S–C6H4–Br)21(OAc)6(PPh3)8] ( 4 ) and [Cu8(S–C6H4–Br)6(S2C–NMe2)2(PPh3)4] ( 5 ) have been synthesized and characterized by single‐crystal X‐ray structure analysis. Compounds 1 – 4 were prepared from the reaction of CuOAc, p‐Br–C6H4–SSiMe3 and Se(SiMe3)2 in the presence of PPh3. In a further reaction of 1 with iPrMgCl and (Me2N–CS2)2 cluster 5 was crystallized.  相似文献   

12.
2,2‐Difluor‐1,3‐diaza‐2‐sila‐cyclopentene – Synthesis and Reactions N,N′‐Di‐tert‐butyl‐1,4‐diaza‐1,3‐butadiene reacts with elemental lithium under reduction to give a dilithium salt, which forms with fluorosilanes the diazasilacyclopentenes 1 – 4 ; (HCNCMe3)2SiFR, R = F ( 1 ), Me ( 2 ), Me3C ( 3 ), N(CMe3)SiMe3 ( 4 ). As by‐product in the synthesis of 1 , the tert‐butyl‐amino‐methylene‐tert‐butyliminomethine substituted compound 5 was isolated, R = N(CMe3)‐CH2‐CH = NCMe3. 5 is formed in the reaction of 1 with the monolithium salt of the 1,4‐diaza‐1,3‐butadiene in an enamine‐imine‐tautomerism. 1 reacts with lithium amides to give (HCNCMe3)2SiFNHR, 6 – 12 , R = H ( 6 ), Me ( 7 ), Me2CH ( 8 ), Me3C ( 9 ), H5C6 ( 10 ), 2,6‐Me2C6H3 ( 11 ), 2,6‐(Me2CH)2C6H3 ( 12 ). The reaction of 12 with LiNH‐2.6‐(Me2CH)2C6H3 leads to the formation of (HCNCMe3)2Si(NHR)2, ( 13 ). In the presence of n‐BuLi, 12 forms a lithium salt which looses LiF in boiling toluene. Lithiated 12 adds this LiF and generates a spirocyclic tetramer with a central eight‐membered LiF‐ring ( 14 ), [(HCNCMe3)2Si(FLiFLiNR)]4, R = 2,6‐(Me2CH)2C6H3. ClSiMe3 reacts with lithiated 12 to yield the substitution product (HCNCMe3)2SiFN(SiMe3) R, ( 15 ). The crystal structures of 1 , 5 , 6 , 9 , 11 , 13 , 14 are reported.  相似文献   

13.
Quantum-mechanical calculations of the optimized structures, barriers to internal rotation about the Si-C bond, harmonic force fields, and vibrational frequencies of CCH3SiF3, CH2ClSiF3, CHCl2SiF3, and CCl3SiF3 were performed using the Hartree-Fock approximation and density functional theory at the MP2/6-31G*, B3LYP/6-31G*, B3LYP/6-311++G**, B3LYP/aug-cc-pVDZ, and B3LYP/aug-cc-pVTZ levels. A new interpretation of the infrared absorption and Raman spectra of the compounds was suggested on the basis of the theoretical results  相似文献   

14.
Co(CH3)(PMe3)4 forms 100 % regioselectively with (2‐(2‐diphenylphosphanyl)phenyl)‐1,3‐dioxalane and 2‐diphenylphosphanyl‐pyridine, by elimination of methane, the four‐membered metallacycles Co{(C3O2HC6H3)P(C6H5)2}(PMe3)3 ( 1 ) and Co{(CNC4H3)P(C6H5)2}(PMe3)3 ( 4 ). The regioselectivity is independent of the steric requirement of the ortho substituent in the 2‐diphenylphosphanylaryl‐ligands. Oxidative addition with iodomethane transforms 1 and 4 into octahedral, diamagnetic low‐spin d6 complexes Co(CH3)I‐{(C3O2HC6H3)P(C6H5)2}(PMe3)2 ( 2 ) and Co(CH3)I‐{(CNC4H3)P(C6H5)2}(PMe3)2 ( 5 ). Under an atmosphere of carbon monoxide, insertion into the Co‐C bond results in ring expansion by forming the new assembled phosphanylbenzoyl complexes Co{(C4O3HC6H3)‐P(C6H5)2}CO(PMe3)2 ( 3 ) and Co{(OCNC4H3)P(C6H5)2}CO(PMe3)2 ( 6 ). The three different types of cobaltacycles are supported by X‐ray diffraction of 1 , 3 , 5 and 6 .  相似文献   

15.
Syntheses and Crystal Structures of Novel Chalcogenido‐bridged Niobium Copper Clusters In the presence of tertiary phosphines, the reaction of NbCl5 and Copper(I) salts with Se(SiMe3)2 (E = S, Se) affords the new chalcogenido‐bridged niobium‐copper cluster compounds ( 1 ) and [NbCu4Se4Cl (PPh3)4] ( 2 ). Using E(R)SiMe3 (E = S, Se, R = Ph, nPr) instead of the bisilylated selenium species leads to the compounds [NbCu2(SPh)6(PMe3)2] ( 3 ), [NbCu2(SPh)6(PnPr3)2] ( 4 ), [NbCu2(SePh)6(PMe3)2] ( 5 ), [NbCu2(SePh)6(PnPr3)2] ( 6 ), [NbCu2(SePh)6(PiPr3)2] ( 7 ), [NbCu2(SePh)6(PtBu3)2] ( 8 ), [NbCu2(SePh)6(PiPr2Me)2] ( 9 ), [NbCu2(SePh)6(PPhEt2)2] ( 10 ), [Nb2Cu2(SnPr)8(PnPr3)2Cl2] ( 11 ) and [Nb2Cu6(SnPr)12(PiPr3)2Cl4]·2 CH3CN ( 12 ·2 CH3CN). By reacting CuI salts and NbCl5 with the monosilylated selenides Se(tBu)SiMe3 and Se(iPr)SiMe3 which have a weak Se–C bond the products [Nb2Cu6Se6(PiPr3)6Cl4] ( 13 ), [Nb2Cu4Se2(SeiPr)6(PnPr3)4Cl2] ( 14 ) and [Nb2Cu6Se2(SeiPr)10(PEt2Me)2Cl2]·DME ( 15 ) are formed which contain selenide as well as alkylselenolate ligands. The molecular structures of all of these new compounds were determined by single crystal X‐ray diffraction measurements.  相似文献   

16.
This paper describes the ionic self-assembly method to fabricate supramolecular one-dimensional microrods in solution. Such microrods were formed in a one-step process through the mixing aqueous Ru(NH3)6Cl3 and K3Fe(CN)3 solutions at room temperature. Chemical composition of the resulting structures, which are composed of from Fe(CN)64− and Ru(NH3)63+, was determined by energy-dispersed spectroscopy. The data show that the formation of microrods depends on the molar ratio and concentration of the reactants.  相似文献   

17.
Highly efficient visible-light-driven Ag3PO4/Bi2MoO6 hybrid photocatalysts with different mole ratios of Ag3PO4 were prepared via sonochemical method and characterized by X-ray diffraction (XRD), scanning electron microscopy (SEM) and transmission electron microscopy (TEM). The results show that product are cubic Ag3PO4 nanoparticles supported on orthorhombic Bi2MoO6 nanoplates. Under visible light irradiation (>420 nm), the Ag3PO4/Bi2MoO6 photocatalysts displayed the higher photocatalytic activity than pure Bi2MoO6 for the decolorization of rhodamine B (RhB). Among the hybrid photocatalysts, 10% Ag3PO4/Bi2MoO6 exhibited the highest photocatalytic activity for the decolorization of RhB due to the efficient separation of electron–hole pairs.  相似文献   

18.
Cationic, two‐coordinate triphenylphosphine–gold(I)–π complexes of the form [(PPh3)Au(π ligand)]+ SbF6? (π ligand=4‐methylstyrene, 1? SbF6), 2‐methyl‐2‐butene ( 3? SbF6), 3‐hexyne ( 6? SbF6), 1,3‐cyclohexadiene ( 7? SbF6), 3‐methyl‐1,2‐butadiene ( 8? SbF6), and 1,7‐diphenyl‐3,4‐heptadiene ( 10? SbF6) were generated in situ from reaction of [(PPh3)AuCl], AgSbF6, and π ligand at ?78 °C and were characterized by low‐temperature, multinuclear NMR spectroscopy without isolation. The π ligands of these complexes were both weakly bound and kinetically labile and underwent facile intermolecular exchange with free ligand (ΔG≈9 kcal mol?1 in the case of 6? SbF6) and competitive displacement by weak σ donors, such as trifluoromethane sulfonate. Triphenylphosphine–gold(I)–π complexes were thermally unstable and decomposed above ?20 °C to form the bis(triphenylphosphine) gold cation [(PPh3)2Au]+SbF6? ( 2? SbF6).  相似文献   

19.
Structural parameters of the cation [C(NPCl3)3]+ in vacuum and in acetonitrile are calculated by the methods RHF/6-311G(3d6), RHF/6-31(3d5) and B3LYP/6-311(3d5f7). Formation energy of the free adduct (MeCN) 2[C(NPCl3)3]+ is calculated and nonspecific character of interaction of the cation with liquid acetonitrile is established. Vibration spectrum of the cation is calculated and theoretical interpretation of IR and Raman spectra of the salt [C(NPCl3)3]+[SbCl6]? is refined.  相似文献   

20.
XAS at the nickel K-edge and UV-visible studies of rhombohedral nickel trifluoride indicate that the compound has a mixed valence composition Ni[NiF6] and is isostructural with Pd[PdF6]. XAS data are reported for NiF2, [NiF6]2–, [NiF6]3–, Pd[PdF6], CoF3 and RhF3 in support of the Ni[NiF6] study. New data from refinements of X-ray powder diffraction of CoF3 and IrF3 are reported in the context of the distortion from hexagonal close packing of rhombohedral trifluorides.  相似文献   

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