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1.
The preparation and characterisation of three new gold(I) phosphine derivatives of the ferraborane, HFe4(CO)12BH2 are reported. In HFe4(CO)12(AuPPh3)BH (2), the AuPPh3 fragment formally replaces an Fe---H---B bridging hydrogen atom in the parent compound HFe4(CO)12BH2. A comparison between 2 and the structurally characterised di-gold derivative, Fe4(CO)12(AuPPh3)2BH (1) is made to gain insight into the relative site preference for the heavy metal fragments in 1. Preparation of the bis(triethylphosphine)gold(I) derivative of HFe4(CO)12BH2 from the PPN+ salt of its conjugate base illustrates a novel exchange reaction between the PPh3 groups in the PPN+ cation and the initially, gold-associated PEt3 groups. This leads to a distribution of products Fe4(CO)12(AuPR3(AuPR′3BH where R = R′ = Ph (1) or R = R′ = Et (3) or R = Ph and R′ = et (4).  相似文献   

2.
Reaction of Hg(S7N)2 with cis- PtCl2(PR3)2 (PR3 = PPh3, PPh2Me, PPHMe2, PEt3) in the presence of Na[PF6] gives [Pt(S3N)(PR3)2][PF6] in 32–46% yield. The complexes have been characterized by IR, NMR and microanalyses. The X-ray crystal structures of two examples (PR3 = PPh2Me and PEt3) show that the S3N ligand coordinates in a bidentate fashion via two sulphur atoms.  相似文献   

3.
The reactions of M(CO)4(R′-DAB) (M = Mo) or W; R′-DAB = R′-N=CHCH=NR′ (R′ = i-propyl, t-butyl, or cyclohexyl) with SnCl4 in dichloromethane solution result in the formation, in high yield, of the orange, diamagnetic, seven-coordinate oxidative-addition products M(CO)3(R′-DAB)(SnCl3)Cl. The reactions of Mo(CO)3(R′-DAB)(SnCl3)Cl (R′ = i-Pr or Cy) with an excess of alkyl isocyanide RNC (R = CHMe2, CMe3, or C6H11) in the presence of KPF6 lead to the formation of [Mo(CNR)4(R′-DAB)Cl]PF6 or [Mo(CNR)5(R′-DAB)](PF6)2 depending upon the reaction stoichiometry and reaction conditions. The monocationic chloro species are converted to [Mo(CNR)5(R′-DAB)](PF6)2 upon reflux with the stoichiometric amount of RNC. Under similar reactions conditions M(CO)3(t-Bu-DAB)(SnCl3)Cl (M = Mo or W) derivatives react with alkyl isocyanides with the reductive-elimination of the elements of SnCl4 and the formation of octahedral M(CO)3(CNR)(t-Bu-DAB). The dark red compounds [Mo(CNCMe3)5(R′-DAB)](PF6)2 (R′ = i-Pr or Cy) react readily with cyanide ions at ambient temperatures in methanol to yield [Mo(CNCMe3)4(R′-DAB)(CN)]PF6. Attempts to thermally dealkylate the parent complexes [Mo(CNCMe3)5(R′-DAB)](PF6)2 (R′ = i-Pr or Cy) to these same cyano species were unsuccessful.  相似文献   

4.
The complexes [(η6-arene)Ru=C(OMe)CH2R′)Cl(PR3)]PF6 (R′ = Ph; ARENE = Me4C6H2, iPr3C6H3, Et3C6H3; PR3 = PMe3, PPh3, P(OMe)3) have been made from RuCl2(PR3)(arene) precursors by activation at room temperature of phenylacetylene in methanol containing NaPF6. The complex with R′ = nBu, ARENE = Me4C6H2, and PR3 = PMe3 is similarly formed from hex-1-yne but much more slowly, and a complex of the type [(p-cymene)Ru=C(OMe)CH2R′)Cl(PR3)]+PF6 could be obtained only when the phosphine was the bulky PPh3 (10b). It has been shown that the steric hindrance by both arene and phosphine ligands contributes to the stabilization of the carbeneruthenium complexes.  相似文献   

5.
trans-I(CO)2L2WCNEt2 complexes (L2 = 2,2′-bipyridyl (2,2′-bipy); 1,10-phenanthroline (ophen)) react with PR3 (R = Me, Et) and thus undergo substitution of the iodine ligand by the phosphine to yield the new, thermostable, cationic carbyne complexes, [(PR3)(CO)2L2WCNEt2]+ I. The ionic character of the compounds has been established from electrical conductivity studies of their solutions. Spectroscopic investigations of the complexes, whose composition has been determined by elemental analysis, indicate that in this reaction the halogen ligand in the trans position has been displaced by the chelate ligand, while the phosphine ligand occupies a cis coordination site, relative to carbyne moiety.  相似文献   

6.
Reductive dehalogenation of the (chloro)(phenylethynyl)phosphine (2,4,6-tBu3C6H2O)(PhCC)PCl, I, by Co2(CO)8, II, yields the neutral phosphenium ion complex [(R)(R′)]P=Co(CO)3, III, (R = 2,4,6-tBu3C6H2O; R′ = (η2-C≡CPh)Co2(CO)6), which contains a trigonally planar coordinated phosphorus atom. When NaCo(CO)4, V, is used instead of II a dinuclear complex, Co2(CO)62-P(R)(R′)]2, VI, (R = 2,4,6-tBu3C6H2O; R′ = C≡CPh) is formed in which the phosphido ligands P(R)(R′), bridge in a μ2 fashion two Co(CO)3 units. The mechanism of formation of VI, involving a formal dimerization of two [(2,4,6-tBu3C6H2O)(PhC≡C)]P=Co(CO)3 fragments, is discussed. However, (tBu)(PhC≡C)PCl, VII, reacts with II, to yield the cluster compound VIII, containing the two μ2-bridging units (tBu)[(η2-C≡CPh)Co2(CO)5]P and (tBu)(PhC≡C)P.

Compounds II and VI–VIII were identified from their analytical and spectroscopic (IR, 1H-, 13C- and 31P-NMR) data. The molecular structure of the cluster compound VIII was determined by an X-ray diffraction study.  相似文献   


7.
Treatment of ruthenium complexes [CpRu(AN)3][PF6] (1a) (AN=acetonitrile) with iron complexes CpFe(CO)2X (2a–2c) (X=Cl, Br, I) and CpFe(CO)L′X (6a–6g) (L′=PMe3, PMe2Ph, PMePh2, PPh3, P(OPh)3; X=Cl, Br, I) in refluxing CH2Cl2 for 3 h results in a triple ligand transfer reaction from iron to ruthenium to give stable ruthenium complexes CpRu(CO)2X (3a–3c) (X=Cl, Br, I) and CpRu(CO)L′X (7a–7g) (L′=PMe3, PMe2Ph, PMePh2, PPh3, P(OPh)3; X=Br, I), respectively. Similar reaction of [CpRu(L)(AN)2][PF6] (1b: L=CO, 1c: P(OMe)3) causes double ligand transfer to yield complexes 3a–3c and 7a–7h. Halide on iron, CO on iron or ruthenium, and two acetonitrile ligands on ruthenium are essential for the present ligand transfer reaction. The dinuclear ruthenium complex 11a [CpRu(CO)(μ-I)]2 was isolated from the reaction of 1a with 6a at 0°C. Complex 11a slowly decomposes in CH2Cl2 at room temperature to give 3a, and transforms into 7a by the reaction with PMe3.  相似文献   

8.
Reactions of FcCCH (a), HCCCCFc (b) and FcCCCCFc (c) with Ru3(CO)10(NCMe)2 (all) and Ru3(μ-dppm)(CO)10 (b and c only) are described. Among the products, the complexes Ru33-RC2R′)(μ-CO)(CO)9 (R=H, R′=Fc 1, CCFc 2; R=R′=Fc 5), Ru3(μ-H)(μ3-C2CCFc)(μ-dppm)(CO)7 3, Ru33-FcC2CCFc)(μ-dppm)(μ-CO)(CO)7 6 and Ru33-C4Fc2(CCFc)2}(μ-dppm)(μ-CO)(CO)5 7 were characterised, including single-crystal structure determinations for 1, 3, 5 and 7; that of 7 did not differ significantly from an earlier study of a mixed CH2Cl2–C6H6 solvate.  相似文献   

9.
《Polyhedron》1988,7(24):2601-2603
Distibines of the type R2SbSbR′2 with R = CH3, R′ = C2H5 (1), R = CH3, R′= n-C3H7 (2), R = CH3, R′= C6H5 (3), R = C2H5, R′= C6H5 (4), R = n-C3H7, R′ = C6H5 (5), and R = CH3, R′ = 2,4,6-(CH3)2C6H2 (6) are formed in equilibria by exchange reactions of the respective distibines of the type R4Sb2 and R′4Sb2.  相似文献   

10.
The heats of reaction of tolueneMo(CO)3 with a series of phosphines and phosphites have been measured by solution calorimetry. The order of stability toward formation of fac-(PR3)3Mo(CO)3 in THF solution is: P(OCH3)3s> PMe3 > PnBu3 > PMe2Ph> PEt3 > triphos> P(OPh)3 > PMePh2 > PPh3 > PCl3 and spans a range of 25 kcal/mol reflecting individual bond strength differences up to 8 kcal/mol. The bulky phosphines PCy3 and PtBu3 react with tolueneMo(CO)3 in THF, but 30–40 kcal/mol less heat is evolved in these reactions than with the other phosphines and phosphites. The coordinately unsaturated five-coordinate complexes (PR3)2Mo(CO)3 are proposed as the reaction products. The importance of both steric and electronic factors in the Mo---P bond is discussed.  相似文献   

11.
Photochemical reaction of (CO)2(dppe)Fe(H)(SiR3) with HSiR3 (SiR3 = Si(OMe)3, Si(OEt)3, SiMe3, SiMe2Ph, SiPh3) yields the trihydrido silyl complexes (CO)(dppe)FeH3(SiR3 ). The analogous complexes (PR′Ph2)3 FeH3(ER3) are prepared by reaction of the H2 -complexes (PR′Ph2)3FeH2(H2) with HER3 (ER3 = SiMe3, SiMC2Ph, SiMePh2, SiPh3, Si(Me2)OSi(Me2)H, SnPh3, SnEt3). Additional derivates of (CO) (dppe)FeH3(SiR3) (SiR3 = SiMePh2) and (PR′Ph2)3FeH3(SiR3) (SiR3 = Si(OMe)3, SiH2Ph, SiHPh2, Si(OEt)3, SiMePhCl) are accessible by silane exchange starting from (CO)(dppe)FeH3(SiMe3) and (PR′Ph2) 3FeH3(SiMe3). (PBuPh2)3FeH3(SiMePh2) was also prepared from (PBuPh2)3FeH2(N2) and HSiMePh2, and (PBuPh2)3FeH3(SnMe3) from (PBuPh2)3FeH2(H2) and Me3SnCl. The complex (PBuPh2) 3FeH3(SnMe3) crystallizes as a toluene solvate in the cubic space group I 3d and shows crystallographically imposed C3-symmetry. The complexes (CO)2 (dppe)Fe(H)(SiR3) and (PR′Ph2)3FeH3(ER3) are highly dynamic in solution. Low temperature NMR measurements and the E, Fe, H coupling constants strongly indicate that the exchange mechanism involves η2-HER3 ligands.  相似文献   

12.
The electrochemical behaviour of a series of Mo2Cl4(PR3)4 complexes (PR3 = PMe3, PEt3, PPrn3,PBun3, PH2Ph, PMe2Ph, PEt2Ph, PHPh2, PMePh2, PEtPh2, P(OMe)3, P(OMe)Ph2) has been examined by cyclic voltammetry in dichloromethane solution. The phosphines were chosen to provide a wide range of Lewis basicity/π acidity as reflected by Tolman's co IR and Bodner's Δδco 13C NMR spectral parameters for Ni(CO)3(PR3). The Mo2 compounds undergo either quasi-reversible or irreversible one-electron oxidations except for P(OMe)3 and P(OMe)Ph2 for which no clectroactivity was observed before the solvent limit. The anodic peak potentials, Ep,a, span a range of nearly 700 mV. The half-wave potentials, E1/2,for the quasi-reversible couples and Ep,a for all were plotted against the IR and NMR values and against the δ → δ* transition energies for the Mo2 species in dichloromethane and in the solid state. For the organometallic spectral parameters excellent linear correlations were obtained while with the electronic spectral data fair correlations resulted. These results indicate that the Mo2Cl4(PR3)4 complexes become more difficult to oxidize as the electron-withdrawing nature of the PR3 substituents increases and the δ → δ* band energy decreases.  相似文献   

13.
用SiMe2ClH与Ru3(CO)12反应,得到顺式-Ru(CO)4(SiMe2Cl)2(I)和[Ru(CO)4(SiMe2Cl)]2(Ⅱ)。它们的SiMe2Cl配位基呈现较强的反位效应,由此合成得到一系列含膦(氧磷)或含卤素的衍生物。进行了Ⅰ-Ⅵ的元素分析、IR、1HNMR和MS表征。  相似文献   

14.
The compounds (π-C5H5)(CO)2LM-X (L = CO, PR3; M = Mo, W; X = BF4, PF6, AsF6, SbF6) react with H2S, p-MeC6H4SH, Ph2S and Ph2SO(L′) to give ionic complexes [(π-C5H5)(CO)2LML′]+ X. Also sulfur-bridged complexes, [(π-C5H5)(CO)3W---SH---W(CO)3(π-C5H5)]+ AsF6 and [(π-C5H5)(CO)3M-μ-S2C=NCH2Ph-M(CO)3(π-C5H5)], have been obtained. Reactions with SO2 and CS2 have been examined.  相似文献   

15.
Whilst mono(silyl)triazenes R′N=N---NR′(SiR3) and organyl triazenes R′N=N---NR′2 are of comparable thermal stability and decay by a radical reaction, bis(silyl)triazenes R′N=N---N(SiR3)2 (R′=aryl, R=Me, Et, OMe) decompose at room temperature in a non-radical reaction to yield amines R′N(SiR3)2 and nitrogen. Kinetic investigations of the mechanism of the non-radical thermolysis of triazenes show that the rate of the thermolysis of R′N=N---N(SiR3)2 is determined both from an isomerisation equilibrium forming (R3Si)R′N---N=N(SiR3) and from the rate of decomposition of this compound to the thermolysis products. Tris(silyl)triazenes, (R3Si)2N---N=N(SiR3), hitherto not synthesized, are expected to be even more unstable than the bis(silyl)triazenes which have been examined by us.  相似文献   

16.
A series of pentacarbonyl complexes of chromium and molybdenum with unicoordinated-diphosphines, M(CO)51-P-P) (P-P = dppe, dppp, dppb) has been prepared by amine oxide-induced phosphine substitution of the binary carbonyls. The basicity of the pendant phosphine groups was demonstrated by their ready conversion to the diphosphine-bridged heterobimetallic complexes (OC)5M(μ-P-P)M′(CO)5 (M, M′= Cr, Mo, W; M ≠ M′) in the presence of MCO)5(CH3CN). The complexes were characterized by IR and NMR (1H and 31P-{1H}) spectroscopy.  相似文献   

17.
The study of the reactivity of [Pt2M4(CCR)8] (M=Ag or cu; R=Ph or tBu) towards different neutral and anionic ligands is reported. This study reveals that reactions of the phenylacetylide derivatives [Pt2M4(CCPh)8] with anionic, X (X=Cl or Br) or neutral donors (CNtBu or py) in a molar ratio 1:4 (m/donor ratio 1:1) yield the trinuclear anionic (NBu4)2[{Pt(CCPh)4 (MX)2] (M=Ag or Cu, X =Cl or Br) or neutral [{Pt(CCPh04=sAGL)2] (L=CNtBu or py) complexes, respectively. The crystal structure of (NBu4)2[{Pt(CCPh)4}(CuBr)2](4) shows that the anion is formed by a dianionic Pt(CCPh)4 fragment and two neutral CuBr units joined through bridging alkynyl ligands. All the alkynyl groups are σ bonded to Pt and η2-coordinated to a Cu atom which have an approximately trigonal-planar geometry. By contrast, similar reactions with [Pt2M4(CCtBu)8] (molar ratio M/donor 1:1) afford hexanuclear dianionic (NBu4)2[Pt2M4(CCtBu)8X2] or neutral [Pt2Ag4(CCtBu08Py2]. Only by treatment with a large exces of Br (molar ratio M/Br 1:2) are the trinuclear complexes (NBu4)2[{Pt(CCtBu4 (MBr)2] (M=Ag, Cu) obtained. Attempted preparations of analogous complexes with phosphines (L′=PPh3 or PEt3) by reactions of [Pt2M4(CCR8] with L′ leads to displacement of alkynyl ligands from platinum and formation of neutral mononuclear complexes [trans-Pt(CCR)2L′2].  相似文献   

18.
The binuclear molybdenum(II) complexes [Mo2(O2CCF3)4(PR3)2] (R = Ph, Et) act as templates for the self-condensation of 2-aminobenzaldehyde to give a new class of complexes in which a hydride ion bridges two molybdenum(III) centres, each of which carries a tetradentate macrocyclic ligand (C). The new hydrido complexes [Mo2(C)2 (H)(O2CCF3)3(PPh3)2] (I), [Mo2(C)2(H)2(O2CCF3)2(PPh3)2] (II), and [Mo2(C)2 (H)2(O2CCF3)2(PEt3)2]2 (V) exist in two or more isomeric forms as shown by their IR, 1H, 31P and 19F NMR spectra. Substitution with thiocyanate, nitrate and tetraphenylborate anions gives the new products [Mo2(C)2(H)(CO)(NCS)3(PPh3)2] (III), [Mo2(C)2 (H)2(O2CCF3)(NO3)(PPh3)2] (IV), [Mo2(C)2(H)(O2CCF3)(PPh3)2](BPh4)2 (VI) and [Mo2(C)2(H)2(O2CCF3)(PEt3)2](BPh4) (VII), which also exist in isomeric forms.  相似文献   

19.
The complexes [WI2(CO)L22-RC2R)] (L = PEt3 or PMe2Ph; R = Me or Ph) react with an equimolar quantity of Ag[BF4] in acetonitrile at room temperature to give good yields of the new purple cationic alkyne complexes [WI(CO)(NCMe)L22-RC2R)][BF4]. 31P NMR spectroscopy indicates that the phosphines are trans to each other in these compounds. 13C NMR spectroscopy suggests that the alkyne ligands are donating four electrons to the tungsten in these complexes.  相似文献   

20.
The dimethylphosphino substituted cyclopentadienyl precursor compounds [M(C5Me4CH2PMe2)], where M=Li+ (1), Na+ (2), or K+ (3), and [Li(C5H4CR′2PMe2)], where R′2=Me2 (4), or (CH2)5 (5), [HC5Me4CH2PMe2H]X, where X=Cl (6) or PF6 (7) and [HC5Me4CH2PMe2] (8), are described. They have been used to prepare new metallocene compounds, of which representative examples are [Fe(η-C5R4CR′2PMe2)2], where R=Me, R′=H (9); R=H and R′2=Me2 (10), or (CH2)5 (11), [Fe(η-C5H4CMe2PMe3)2]I2 (12), [Fe{η-C5Me4CH2P(O)Me2}2] (13), [Zr(η-C5R4CR′2PMe2)2Cl2], where R=H, R′=Me (14), or R=Me, R′=H (15), [Hf(η-C5H4CMe2PMe2)2]Cl2] (16), [Zr(η-C5H4CMe2PMe2)2Me2] (17), {[Zr(η-C5Me4CH2PMe2)2]Cl}{(C6F5)3BClB(C6F5)3} (18), [Zr{(η-C5Me4CH2PMe2)2Cl2}PtI2] (19), [Mn(η-C5Me4CH2PMe2)2] (20), [Mn{(η-C5Me4CH2PMe2B(C6F5)3}2] (21), [Pb(η-C5H4CMe2PMe2)2] (23), [Sn(η-C5H4CMe2PMe2)2] (24), [Pb{η-C5H4CMe2PMe2B(C6F5)3}2] (25), [Pb(η-C5H4CMe2PMe2)2PtI2] (26), [Rh(η-C5Me4CH2PMe2)(C2H4)] 29, [M(η,κP-C5Me4CH2PMe2)I2], where M=Rh (30), or Ir, (31).  相似文献   

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