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1.
The solid phase thermal deaquation of trans[CrF(H2O)(aa′)2]K[Cr(CN)6]H2O and trans[CrF(H2O)(aa′)2]K[CrNO(CN)5]H2O (aa′=ethylenediamine or 1,3-diaminopropane) has been investigated by means of TG measurements. The kinetic parameters (activation energy, Ea, activation entropy, ΔS#, and frequency factor, k0) have been determined by comparison of the isothermal and non-isothermal studies for all the principal g(α) expressions. The values found for the activation energy are low (between 80 and 110 kJ mole?1, approximately) and permit the assignment of the deaquation-anation mechanism of the SN1 type, involving square-pyramid activated complex and elimination of water as Frenkel defects.  相似文献   

2.
The selective in situ synthesis of trans and cis(CH3CN)-[Ru(bpy)(CO)2 (CH3CN)2]2+ isomers from the same [Ru(CO)2 (CH3CN)3]22+ dimer precursor but using either an electrochemical-chemical or chemical-electrochemical process is described.  相似文献   

3.
The preparations of cis- and trans-[PtH(C6Cl5)(PEt3)2] by thermal decomposition of cis- and trans-[Pt(OCHO)(C6Cl5)(PEt3)2], respectively, are reported. Also described are cis- and trans-[Pt(SnCl3)(C6Cl5)(PEt3)2], obtained by treating SnCl2 with cis- and trans-[PtCl(C6,Cl5)(PEt3)2], respectively. It is shown that while trans- [PtH(C6Cl5)(PEt3)2] does not form hydride-bridged complexes in the presence of trans-(PtH(MeOH)(PEt3)2]+, the corresponding complex trans-[PtH(C6)(PEt3)2] reacts with the same solvento complex, in methanol, giving labile [(PEt3)2HPt(-μH)Pt(C6F5)(PEt3)2]+.  相似文献   

4.
The reactions of [Fe3(CO)12] or [Ru3(CO)12] with RNC (R=Ph, C6H4OMe-p or CH2SO2C6H4Me-p) have been investigated using electrospray mass spectrometry. Species arising from substitution of up to six ligands were detected for [Fe3(CO)12], but the higher-substituted compounds were too unstable to be isolated. The crystal structure of [Fe3(CO)10(CNPh)2] was determined at 150 and 298 K to show that both isonitrile ligands were trans to each other on the same Fe atom. For [Ru3(CO)12] substitution of up to three COs was found, together with the formation of higher-nuclearity clusters. [Ru4(CO)11(CNPh)3] was structurally characterised and has a spiked-triangular Ru4 core with two of the CNPh ligands coordinated in an unusual μ32 mode.  相似文献   

5.
The compounds (NH4)3[Ta(O2)4], K3[Ta(O2)4], Rb3[Ta(O2)4] and Cs3[Ta(O2)4] have been prepared and investigated by X-ray powder methods as well as Raman- and IR-spectroscopy. In the case of Rb3[Ta(O2)4] the structure has been solved from single crystal data. It is shown that all these compounds are isotypic and crystallize in the K3[Cr(O2)4] type (SG , No. 121). The infrared- and Raman spectra (recorded on powdered samples) are discussed with respect to the internal vibrations of the peroxo-group and the dodecahedral [Ta(O2)4]3− ion. Symmetry coordinates for the [Ta(O2)4]3− ion are given from which the vibrational modes of the O-O stretching vibrations of the O22− groups, the Ta-O stretching vibrations and the Ta-O bending vibrations are deduced.  相似文献   

6.
The kinetics of the oxidation of cysteine and captopril via octacyanomolybdate(V) and octacyanotungstate(V) in a buffered acidic media (pH range 2.20–4.80) have been studied spectrophotometrically. The rate law for the oxidation is: Rate = k [RSH] [Ox] [H+]−1, where RSH is cysteine or captopril and Ox is Cs3[Mo(CN)8] or Cs3[W(CN)8]. The activation parameters (Ea, ΔH#, ΔG#, ΔS#) for the oxidation of cysteine and captopril via Cs3[Mo(CN)8] or Cs3[W(CN)8] have been determined. The results indicate that Cs3[Mo(CN)8] is more reactive than Cs3[W(CN)8] as an oxidizing agent. Effects of pH, ionic strength, temperature, dielectric constant of the reaction medium and copper(II) ions on the oxidation rate have been studied. Mechanisms for the oxidation of cysteine to cystine and captopril to the corresponding disulfide have been proposed.  相似文献   

7.
A re-interpretation and re-evaluation of single-crystal X-ray diffraction data of a previously reported ‘(NH4)2(NH3)[Ni(NH3)2Cl4]’ (J. Solid State Chem. 162 (2001) 254) give a new formula (NH4)2−2z[Ni(NH3)2]z[Ni(NH3)2Cl4] with z=0.152. This new formula results from defects in an idealized ‘(NH4)2[Ni(NH3)2Cl4]’ basic structure, where two adjacent NH4+ cations are replaced by one Ni(NH3)22+ unit. Cl anions from the basic structure complete the coordination sphere of the new Ni2+ to [Ni(NH3)2Cl4]2−.  相似文献   

8.
The catalytic activities of three structural isomers of Rh2[N(C6H5)COCH3]4 in cyclopropanation reactions were surveyed. These studies showed cis cyclopropanation selectivity with bulky alkenes for 2,2-cis- and 2,2-trans-Rh2[N(C6H5)COCH3]4.  相似文献   

9.
The protonolysis of the PtC bond in trans-[PtH(CH2CN)(PPh32] in methanol/1,2- dichloroethane is shown to take place by a two step mechanism involving oxidative addition to the metal center followed by reductive elimination of CH3CN to give trans-[PtHCl(PPh3)2].  相似文献   

10.
The reactivity of bis(dimethylamido) complexes of phenyl- and hydridogallium with ammonia, dimethylamine and 1,1-dimethylhydrazine is described. Synthesis of the starting gallium hydride, [HGa(NMe2)2]2, was achieved in nearly quantitative yield from the reaction of HGaCl2(quinuclidine) with LiNMe2. In neat ammonia or methylamine at room temperature both dimethylamido ligands in [HGa(NMe2)2]2 were substituted by a single equivalent of NH3 or MeNH2 to produce amorphous (HGaNH)n or (HGaNMe)n, respectively. In contrast, the reaction of [PhGa(NMe2)2]2 with neat Me2NNH2, at room temperature consumed two equivalents of the substituted hydrazine to form [PhGa(NHNMe2)2]2 in a 73% yield. Single crystal X-ray crystallographic analyses of [HGa(NMe2)2]2 and [PhGa(NHNMe2)2]2 establish that in the solid state both compounds adopt a cyclic Ga-N-Ga-N structure with a crystallographic center of symmetry located at the center of the ring.  相似文献   

11.
The di-nitrile complexes trans-[PtCl2(NCR)2] (R = Me, Ph, CH2Ph) react with an excess of gaseous NH3 in CH2Cl2 at −10 °C to form, in high yield, the corresponding di-amidine complexes trans-[PtCl(NH3){HNC(NH2)R}2]Cl in which also one chlorine ligand has been displaced by NH3. The 1H NMR spectra in DMSO showed the formation of different species which were characterized through NOESY, TOCSY and 1H/13C heteronuclear correlations as trans-[Pt(NH3){HNC(NH2)R}2(DMSO)]Cl2 and trans-[PtCl{HNC(NH2)R}2(DMSO)]Cl.  相似文献   

12.
Two isotypic layered rare-earth borate phosphates, K3Ln[OB(OH)2]2[HOPO3]2 (Ln=Yb, Lu), were synthesized hydrothermally and the crystal structures were determined by single-crystal X-ray diffraction (R3?, Z=3, Yb: a=5.6809(2) Å, c=36.594(5) Å, V=1022.8(2) Å3, Lu: a=5.6668(2) Å, c=36.692(2) Å, V=1020.4(1) Å3). The crystal structure can be described in terms of stacking of Glaserite-type slabs consisting of LnO6 octahedra interlinked by phosphate tetrahedra and additional layers of [OB(OH)2]- separated by K+ ions. Field and temperature dependent measurements of the magnetic susceptibility of the Yb-compound revealed Curie-Weiss paramagnetic behavior above 120 K (μeff=4.7 μB). Magnetic ordering was not observed down to 1.8 K.  相似文献   

13.
Salts of three bisoxalato bis(pyridine) species, trans-[Rh(ox)2(py)2]?, trans-[Rh(ox)2(3-Mepy)2]? and trans-[Rh(ox)2(4-Mepy)2]? have been isolated from the substitution of N-heterocycles into trisoxalatorhodate(III) and characterised on the basis of 1H NMR and 13C NMR spectra, which are similar to that of the trans-[Co(oxalato)2 (R-py)2]? complex.  相似文献   

14.
We have synthesised (Et4N)[ReBr2(NCCH3)2(CO)2] 1 in two steps from [ReBr3(CO)3]2−. Complex 1 is water and air stable and the two Br ligands are easily exchanged for coordinating solvent molecules such as water. The reactivity of 1 with several ligands such as imidazole (imz) and 2-picolinic acid (2-pic) are easily possible with substitution exclusively occurring in trans-position to the carbonyl groups. The resulting complexes [Re(imz)2(NCCH3)2(CO)2]+ and [Re(2-pic)(NCCH3)2(CO)2] have been isolated and structurally characterised. The two acetonitrile ligands are strongly bound and are not substituted under any conditions. Complex 1 represents therefore the new moiety “trans,cis-[Re(NCCH3)2(CO)2]+” which can be considered as a further building block in organometallic chemistry.  相似文献   

15.
The complex [NiCl2(PMe3)2] reacts with one equivalent of mg(CH2CMe3)Cl to yield the monoalkyl derivative trans-[Ni(CH2CMe3)Cl(PMe3)2], which can be carbonylated at room temperature and pressure to afford the acyl [Ni(COCH2CMe3)Cl(PMe3)2]. Other related alkyl and acyl complexes of composition [Ni(R)(NCS)(PMe3)2] (R = CH2CMe3, COCH2CMe3) and [Ni(R)(η-C5H5)L] (L = PMe3, R = CH2CMe3, COCH2CMe3; L = PPh3, R = CH2CMe2Ph) have been similarly prepared. Dialkyl derivatives [NiR2(dmpe)] (R = CH2SiMe3, CH2CMe2Ph; dmpe = 1,2-bis(dimethylphosphine)ethane, Me2PCH2 CH2PMe2) have been obtained by phosphine replacement of the labile pyridine and NNN′N′-tetramethylethylenediamine ligands in the corresponding [Ni(CH2SiMe3)2(py)2] and [Ni(CH2CMe2Ph)2(tmen)] complexes. A single-crystal X-ray determination carried out on the previously reported trimethylphosphine derivative [Ni(CH2SiMe3)2(PMe3)2] shows the complex belongs to the orthorhombic space group Pbcn, with a = 14.345(4), b = 12.656(3), c = 12.815(3) Å, Z = 4 and R 0.077 for 535 independent observed reflections. The phosphine ligands occupy mutually trans positions P-Ni-P 146.9(3)° in a distorted square-planar arrangement.  相似文献   

16.
Investigations on Lithiation and Substitution of HP[Si(t-Bu)2]2PH HP[Si(t-Bu)2]2PH 1 is monolithiated by reaction with LiPH2 · DME or LiBu in toluene. The crystalline compound HP[Si(t-Bu)2]2PLi · 2 DME 2 can be isolated in DME. Reaction of 2 with Me2SiCl2 leads to HP[Si(t-Bu)2]2P? SiMe2Cl 4 , ClMe2Si? P[Si(t-Bu)2]2P? SiMe2Cl 5 , HP[Si(t-Bu)2]2P? SiMe2? P[Si(t-Bu)2] 2PH 6 . Isomerization by Li/H migration between 4 and 2 leads to the formation of 5 . Reaction of Li(t-Bu) with 1 or 2 yields LiP[Si(t-Bu)2]2PLi 3 by further lithiation. 3 could not be obtained purely, only in a mixture with 2 . These compounds favourably generate with t-BuPCl2 in hexane Cl(t-Bu)P? P[Si(t-Bu)2]2P? P(t-Bu)Cl 9 , in THF HP[Si(t-Bu)2]2P? P(t-Bu)? P[Si(t-Bu)2]2 PH 12 (main product), 9 , H(t-Bu)P? P[Si(t-Bu)2]2P? P(t-Bu)Cl 10 , H(t-Bu)P? P[Si(t-Bu)2]2P? P(t-Bu)H 11 as well as HP[Si(t-Bu)2]2P? P(t-Bu)H 13 and HP[Si(t-Bu)2]2P? P(t-Bu)2 14 .  相似文献   

17.
Complexes [Ph3MeP]3[Sb3I12]Me2C=O (I), [Ph3MeP]3[Sb2I9] (II), and [Ph3MeP]2[SbI5] (III) were obtained via the reaction of triphenylphosphonium iodide with antimony triiodide in acetone in 1:1, 3:2 and 2:1 molar ratios. Reaction of the complex III with antimony triiodide (1:1) affords [Ph3MeP]3[Sb3I12] (IV). The structure of the obtained complexes was confirmed by X-ray analysis.  相似文献   

18.
The rare-earth dicarboxylate hybrid materials [Ce(H2O)]2[O2C(CH2)2CO2]3 ([Ce(Suc)]) and [Sm(H2O)]2[O2C(CH2)2CO2]3·H2O ([Sm(Suc)]) have been hydrothermally synthesized (200°C, 3 days) under autogenus pressure. [Ce(Suc)] is triclinic, a=7.961 (3) Å, b=8.176 (5) Å, c=14.32 (2) Å, α=97.07° (7), β=96.75° (8), γ=103.73° (6), and z=2. The crystal structure of this compound has been determined using 3120 unique single crystal data. The final refinements let the agreement factors R1 and wR2(F2) converge to 0.0138 and 0.0363, respectively. [Ce(Suc)] is built up from infinite chains of edge-sharing nine-fold coordinated cerium atoms running along [100]. These chains are interconnected by the carbon atoms of the succinate anions, leading to a three-dimensional hybrid framework. The cell constants of [Sm(Suc)], isotypic with monoclinic C2/c [Pr(H2O)]2[O2C(CH2)2CO2]3·H2O ([Pr(Suc)]), were refined starting from X-ray powder data: a=20.275 (3) Å, b=7.919 (6) Å, c=14.130 (3) Å, and β=121.45° (1). Despite its lower symmetry, [Ce(Suc)] presents an important structural filiation with [Sm(Suc)]  相似文献   

19.
The thermally stable solids Re2(CO)8[μ-InRe(CO)5]2 and Re4(CO)123-InRe(CO)5]4 could be obtained by treatment of In with Re2(CO)10 in a bomb tube. A mechanism of the formation of the latter cluster from the first one is proposed. Compared with Re2(CO)8[μ-InRe(CO)5]2, Re4(CO)123_InRe(CO)5]4 shows in polar solvents an unusual high stability, which can be explained by the higher coordination number of In with rhenium carbonyl ligands. Re4(CO)12-[μ3-InRe(CO)5]4 dissolves monomerically in acetone, where as Re2(CO)8[μ-InRe(CO)5]2 dissociates yielding Re(CO)5? anions. Single-crystal X-ray analyses of Re4(CO)123-InRe(CO)5]4 establish the metal skeleton. The central molecular fragment Re4(CO)12 contains a tetrahedral arrangement of four bonded Re atoms [ReRe 302.8 (5) pm]. The triangles of this fragment are capped with a μ3-InRe(CO)5 group each [InRe(terminal) 273.5 (7) pm; InRe (polyhedral) 281.8 (7) pm]. The bridging type of In atoms with the Re4 tetrahedron and the metal skeleton was realized for the first time. By treating Re4(CO)123-InRe(CO)5]4 with Br2 the existence of Re(CO)5 ligands could be proved by isolating BrRe(CO)5.  相似文献   

20.
The objective of the present work was to synthesize mononuclear ruthenium complex [RuCl2(CO)2{Te(CH2SiMe3)2}2] (1) by the reaction of Te(CH2SiMe3)2 and [RuCl2(CO)3]2. However, the stoichiometric reaction affords a mixture of 1 and [RuCl2(CO){Te(CH2SiMe3)2}3] (2). The X-ray structures show the formation of the cis(Cl), cis(C), trans(Te) isomer of 1 and the cis(Cl), mer(Te) isomer of 2. The 125Te NMR spectra of the complexes are reported. The complex distribution depends on the initial molar ratio of the reactants. With an excess of [RuCl2(CO)3]2 only 1 is formed. In addition to the stoichiometric reaction, a mixture of 1 and 2 is observed even when using an excess of Te(CH2SiMe3)2. Complex 1 is, however, always the main product. In these cases the 125Te NMR spectra of the reaction solution also indicates the presence of unreacted ligand.  相似文献   

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