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1.
The bis(sodium-metallates) Na2{Me2Si[(C5H4)M(CO)3]2} (4a: M = Mo, 4b, M = W), in which the metal centres are linked by their cyclopentadienyl ligands through a Me2Si unit are obtained by the reaction of Na2[(C5H4)2SiMe2] (2) with two moles M(CO)6 (3a: M = Mo; 3b: M = W). Treatment of 4a with Me2AsCl leads to the formation of the bis(metalloarsane) Me2Si[(C5H4(CO)3- MoAsMe2]2 (5), which is quarternized by MeI at the arsenic atoms to give the dicationic complex {Me2Si[(C5H4)(CO)3MoAsMe3]2}I2 (7). In reactions with the ylide Me3PCH2 cleavage of the MoAs bonds occurs, followed by transylidation to yield the bis(phosphonium metallate) [Me4P]2 {Me2Si[(C5H4)Mo- (CO)3]2} (10) and Me3PCHAsMe2 (9). From 4a, 4b and MeI the dinuclear methyl complexes Me2Si[(C5H4)(CO)3MMe]2 (6a: M=Mo; 6b: M=W) are obtained.  相似文献   

2.
The dipalladium complexes, [PdCl(μ-MeN{P(OR)2}2)]2 (R = CH2CF3, 1a; Ph, 1b) react with [Mo25-C5H5)2(CO)6] in boiling benzene to afford the molybdenum-palladium heterometallic complexes, [(η5-C5H5)(CO)Mo(μ-MeN{P(OR)2}2)2PdCl] (R = CH2CF3, 3a; Ph, 3b), [(η5-C5H5)Mo(μ3-CO)2(μ-MeN{P(OR)2}2)2Pd2Cl], (R = CH2CF3, 5a; Ph, 5b), [(η5-C5H5)(Cl)Mo(μ2-CO)(μ2-Cl)(μ-MeN{P(OR)2}2)PdCl], (R = CH2CF3, 6a; Ph, 6b) and also the mononuclear complex [Mo(CO)Cl(η5-C5H5)(κ2-MeN{P(OR)2}2)], (R = Ph, 4b). These complexes have been separated by column chromatography and are characterised by elemental analysis, IR, 1H, 31P{1H} NMR data. The structures of 1a, 3a, 4b, 5b and 6a have been confirmed by single crystal X-ray diffraction. The CO ligands in 5b and 6a adopt a semi-bridging mode of bonding; the Mo-CO distances (1.95-1.97 Å) are shorter than the Pd-CO distances (2.40-2.48 Å). The Pd-Mo distances fall in the range, 2.63-2.86 Å. The reaction of [Mo25-C5H5)2(CO)6] with MeN{P(OPh)2}2 in toluene gives [Mo2(CO)45-C5H5)21-MeN{P(OPh)2}2)2] (2) in which the diphosphazane acts as a monodentate ligand.  相似文献   

3.
The catalytic activities of the highly fluorous systems formed by the zirconocene(IV) complexes [Zr{η5-C5H4SiMe2C2H4RF}2Cl2] (RF = C6F13 (4a), C10F21 (4b)) or [Zr-{η5-C5H3(SiMe2C2H4C6F13)2}2Cl2] (5a) and MMAO in toluene have been studied and compared with analogous nonfluorous systems generated from [Zr{η5-C5H4SiMe3}2Cl2] and [Zr{η5-C5H5}2Cl2]. Although less active than the reference systems, the fluorous catalysts are stable over prolonged polymerization times, giving rise to polymers with similar molecular weights to those obtained with [Zr{η5-C5H4SiMe3}2Cl2].  相似文献   

4.
Thermolysis of [Cp′Ni(μ-CO)]2 (1), Cp′ = η5C5H4R, R = CH3 (1a), t-Bu (1b); [Cp*Ni(μ-CO)]2 (1c), Cp* = η5-C5Me5 and [Cp″Ni(μ-CO)]2 (1d), Cp″ = η5-C5H3R2-1,3, R = t-Bu, with white phosphorus (P4) gives the nickelaphosphacubanes [Cp′Ni(μ3-P)]4 (2a,2b), [(Cp*Ni)3P5] (3) and the cyclo-P3 sandwich [(η3-P3)Ni″η5-C5H3(t-Bu)2] (4), the structure of which has been determined by X-ray crystallography.  相似文献   

5.
Complexes of the type [(C5H5)Co{P(O)R2}3]?, R = OCH3, OC2H5, react as tridentate oxygen ligands L? with [MBr(CO)5], M = Mn, Re, in hexane or tetrahydrofuran to give the tricarbonyl derivatives [LM(CO)3]. The slightly volatile yellow crystalline compounds have been characterized by elemental analysis, 1H NMR, IR and mass spectra. The low CO stretching frequencies indicate that the ligands L? are good π-donor ligands.  相似文献   

6.
The synthesis of the first all-tin-dendrimer Sn[(CH2)4SnPh3]4 (2) results from complete hydrostannation of tetra(but-3-enyl)stannane (1) with triphenyltin hydride. Selective cleavage of one phenyl group from each dendron of 2 with anhydrous HCl results in Sn[(CH2)4Sn(Cl)Ph2]4 (3), which on treatment with LiAlH4 yields the corresponding hydride derivative Sn[(CH2)4Sn(H)Ph2]4 (4) containing four reactive Sn-H bonds. The cyclopentadienyl derivative Sn[(CH2)4Sn(C5H5)Ph2]4 (5) as well as the transition metal substituted derivatives Sn[(CH2)4Sn{Co(CO)4}Ph2]4 (6), Sn[(CH2)4Sn{Fe(CO)2C5H5}Ph2]4 (7), and Sn[(CH2)4Sn{Mn(CO)5}Ph2]4 (8) have been prepared by coupling of 3 with the appropriate Grignard or sodium derivatives of the transition metal moieties. The new compounds were characterized by elemental analyses, IR, 1H-, 13C- and 119Sn NMR spectroscopy and MALDI-TOF mass spectrometry.  相似文献   

7.
The phosphorus ylides Ph3PCHC(O)C6H4R (R = 4-Me 1a, 4-Br 1b) react with PdCl2 in equimolar ratios to give the C,C-orthopalladated [Pd{CHP(C6H4)Ph2CO-C6H4-R)}(μ-Cl)]2 (R = 4-Me 2a, 4-Br 2b) which react with NaClO4/dppe, NaClO4/dppm, py and PPh3 to give the mononuclear derivatives [Pd{CH{P(C6H4)Ph2}COC6H4-R}(dppe-P,P′)[(ClO4) (R = 4-Me 3a, 4-Br 3b), [Pd{CH{P(C6H4)Ph2}COC6H4-R}(dppm-P,P′)[(ClO4 ( (R = 4-Me 4a, 4-Br 4b), [Pd{CH{P(C6H4)Ph2}COC6H4-R}Cl(L)] (L = py, R = 4-Me 5a, 4-Br 5b, L = PPh3, R = 4-Me 6a, 4-Br 6b). The C, C-metalated chelate are demonstrated by an X-ray diffraction study of 3a and 4a. Characterization of the obtained compounds was also performed by elemental analysis, IR, 1H, 31P, and 13C NMR.  相似文献   

8.
Dimethylphosphonate HP(O)(OCH3)2 and the dimethylphosphonate complexes [(C5H5)MX{P(O) (OCH3)2}{P(OCH3)3}] (M=Co, Rh; X=I, CH3), [(C5H5)Co{P(O)(OCH3)2}2 {P(OH)(OCH3)2}] and [(C5H5)Ni{P(O)(OCH3)2}{P(OCH3)3}] have been studied by 1H n.m.r. spectroscopy. The chiral shift reagent Eu(tfc)3 has been used to resolve the spectra of the enantiomeric mixtures of [(C5H5)MX {P(O)(OCH3)2}{P(OCH3)3}]. The substituent X in [(C5H5)MX{P(O)(OCH3)2}{P(OCH3)3}] has a strong influence on the anischrony of the diastereotopic phosphonate methyls in the presence of Eu(tfc)3. The same shift reagent also resolves the enantiotopic protons in HP(O)(OCH3)2 but not in [(C5H5)Ni {P(O)(OCH3)2}{P(OCH3)3}]. The addition of Eu(tfc)3 to [(C5H5)Ni{P(O)(OCH3)2}{P(OCH3)3}] eliminates the 3J(POCH) coupling in the coordinated dimethylphosphonate. The cobalt complex [(C5H5)Co{P(O)(OCH3)2}2{P(OH)(OCH3)2}] reacts as a chelating ligand with Eu(tfc)3 to give one tfcH per Eu(tfc)3.  相似文献   

9.
The oxidative addition reaction of tetrachloro-1,2-benzoquinone with trans-{IrCl(N2)[P(C6H5)3]2} yields the coordinatively unsaturated complex {IrCl(o-O2C6Cl4)[P(C6H5)3]2} · C6H6 Carbonylation of this complex can be used to prepare two isomers of formula {IrCl(o-O2C6Cl4)(CO)[P(C6H5)3]2}. These are both different than the isomer obtained by Balch and Sohn from the oxidative addition of the quinone to Vaska's compound. The role of coordinatively unsaturated intermediates in the isomerization reactions of the octahedral carbonyl complexes will be discussed. The five coordinated o-quinone complex reacts with water to give an aquo complex. Two criteria for distinguishing cis- and trans-M[P(C6H5)3]2 geometries from intensifies of IR bands in the regions 15701590 and 530550 cm?1 have been tested for octahedral complexes. cis-Ph3P octahedral complexes of iridium(III) have a band of high intensity in the 534541 cm?1 region. There is no systematic relationship between the band intensities in the 15701590 cm?1 region and phosphine geometry.  相似文献   

10.
The intramolecularly coordinated heteroleptic stannylene [4-t-Bu-2,6-{P(O)(O-i-Pr)2}2C6H2]SnCl serves as synthon for the synthesis of the ferrocenyl-bridged bis(diorganostannylene) [4-t-Bu-2,6-{P(O)(O-i-Pr)2}2C6H2SnC5H4]2Fe (1) which in turn reacts with W(CO)6 and Cr(CO)4(C7H8) to provide the corresponding transition metal complexes [4-t-Bu-2,6-{P(O)(O-i-Pr)2}2C6H2Sn{W(CO)5}C5H4]2Fe (2) and [4-t-Bu-2,6-{P(O)(O-i-Pr)2}2C6H2SnC5H4]2Fe · Cr(CO)4 (3), respectively. Reaction of compound 1 with sulphur and atmospheric moisture gave, under partial tin-carbon and oxygen-carbon bond cleavage, a tetranuclear organotin-oxothio cluster 5. All compounds were characterized by 1H, 13C, 31P, and 119Sn NMR, and IR spectroscopy, as well as by single-crystal X-ray diffraction analysis. Compounds 1 and 3 were also investigated by Mössbauer spectroscopy. Cyclovoltametric studies reveal the influence of the organostannyl moieties on the redox-behaviour of compounds 1-3 in comparison with unsubstituted ferrocene.  相似文献   

11.
Mesityl substituted β-diketiminato lanthanum and yttrium complexes [(BDI)Ln{N(SiRMe2)}2] (BDI = ArNC(Me)CHC(Me)NAr, Ar = 2,4,6-Me3C6H2, Ln = La, R = Me (1), H (2a); Ln = Y, R = H (2b)) can be prepared via facile amine elimination starting from [La{N(SiMe3)2}3] and [Ln{N(SiHMe2)2}3(THF)2] (Ln = Y, La), respectively. The X-ray crystal structure analysis of 1 revealed a distorted tetrahedral geometry around lanthanum with a η2-bound β-diketiminato ligand. A series of novel ethylene- and cyclohexyl-linked bis(β-diketiminato) ligands [C2H4(BDIAr)2]H2 and [Cy(BDIAr)2]H2 [Ar = Mes (=2,4,6-Me3C6H2), DEP (=2,6-Et2C6H3), DIPP (=2,6-i-Pr2C6H3)] were synthesized in a two step condensation procedure. The corresponding bis(β-diketiminato) yttrium and lanthanum complexes were obtained via amine elimination. The X-ray crystal structure analysis of the ethylene-bridged bis(β-diketiminato) complex [{C2H4(BDIMes)2}YN(SiMe3)2] (3b) and cyclohexyl-bridged complexes [{Cy(BDIMes)2}LaN(SiHMe2)2] (7) and [{Cy(BDIDEP)2}LaN(SiMe3)2] (8) revealed a distorted square pyramidal coordination geometry around the rare earth metal, in which the amido ligand occupies the apical position and the two linked β-diketiminato moieties form the basis. The geometry of the bis(β-diketiminato) ligands depends significantly on the linker unit. While complexes with an ethylene-linked ligand adopt a cisoid arrangement of the two aromatic substituents, complexes with cyclohexyl linker adopt a transoid arrangement. Either one (3b) or both (7, 8) of the β-diketiminato moieties are tilted out of the η2 coordination mode, resulting in close Ln?C contacts. The β-diketiminato and linked bis(β-diketiminato) complexes were moderately active in the copolymerization of cyclohexene oxide with CO2. A maximum of 92% carbonate linkages were obtained using the ethylene-bridged bis(β-diketiminato) complex [{C2H4(BDIMes)2}LaN(SiHMe2)2] (4).  相似文献   

12.
The chemisorption interaction between the binuclear cadmium diethyl dithiocarbamate (EDtc), [Cd2{S2CN(C2H5)2}4], (chemisorbent I) and AuCl3 solutions in 2 M HCl results in the formation of polymeric gold(III) complexes: ([Au{S2CN(C2H5)2}2][AuCl4]) n (II) and [Au{S2CN(C2H5)2}Cl2] n (III) with the same Au : EDtc : Cl ratio (1 : 1 : 2). The alternating centrosymmetric cations and anions of complex II are structurally self-assembled to form linear polymeric chains: the gold atom in [Au{S2CN(C2H5)2}2]+ forms secondary Au(1)?Cl(1) bonds (3.7784 Å) with two neighboring [AuCl4]? anions. This binding is additionally strengthened by secondary S(1)?Cl(1) interactions (3.4993 Å). The mixed-ligand complex III comprises two structurally non-equivalent molecules [Au{S2CN(C2H5)2}Cl2]: A—Au(1) and B—Au(2), each being in contact with two nearest neighbors through pairs of unsymmetrical secondary bonds: Au(1)?S(1)a/b 3.4361/3.6329; and Au(2)?S(4)c/d 3.4340/3.6398 Å. At the supramolecular level, this gives rise to independent zigzag-like polymeric chains, (?A?A?A?) n and (?B?B?B?) n along which antiparallel isomeric molecules of III alternate. The chemisorption capacity of cadmium diethyl dithiocarbamate calculated from the gold(III) binding reaction is 963.2 mg of gold per 1 g of the sorbent. The recovery conditions for the bound gold were elucidated by simultaneous thermal analysis of II and III. The DSC curves reflect different sets of heat effects, because thermolysis occurs for complex molecules (III) or for cations and anions (II). Nevertheless, the patterns of experimental TG curves are similar despite different structures of the complexes. The final product of thermal transformations is reduced gold.  相似文献   

13.
The reaction of the ketophosphine ligand Ph2PCH2C(O)Ph (P~O) with [PtCl2(NCMe)2] and carbon monoxide in THF in the presence of an excess of zinc afforded the 70 electron pentanuclear cluster [Pt5(CO)(μ-CO)5(P~O)4] (1). Reaction of the palladium(0) complex [Pd2(dba)3] CHCl3 (dba = dibenzylideneacetone) with Ph2PCH2C(O)R [R = Ph or C5H4Fe(C5H5)] under SO2 led to the pentapalladium cluster compounds [Pd53-SO2)2 (μ-SO2)2 {Ph2PCH2C(O)R}5] (2a,R = Ph;2b,R = C5H4Fe(C5H5)), Cluster (1) reacts with 2,6-xylyl isocyanide, CNC6H3Me2-2,6 to give a red cluster of formula [Pt5(μ-CNC6H3Me2-2, 6)3 (CNC6H3Me2-2, 6)5 (P~O)2] (3) and a green complex (4). The corresponding complexes (6) and (7) were also obtained by using PPh3 instead of P~O. Clusters (2a) and (2b) react with [NEt3Bz] Cl to give[NEt3Bz][Pd3(μ-SO2)2 (μ-Cl){Ph2PCH2C(O)R}3](8a,R = Ph;8b,R = C5H4Fe(C5H5)). The molecular structures of (1) and (3) were determined by single-crystal X-ray diffraction analyses.  相似文献   

14.
Reaction of [(η-C5H5)NiCo3(CO)9] (5) with 1,3,5,7-cyclooctatetraene or 1,4-(SiMe3)2C8H6, respectively, yields the complexes [Co2Ni(CO)638-C8H6R2)] (R=H, SiMe3) (7a, b). Dramatic modifications of the tetrametallic cluster core and the ligand sphere of 5 to give the trinuclear complex 7 are driven by the preference of the cyclopolyenes for facial (μ38) coordination. The title complexes are the first examples of facial cyclooctatetraene coordination to a heterometallic (Co2Ni) triangle.  相似文献   

15.
Three heteroleptic, neutral nickel(II) tri-tert-butoxysilanethiolates with monodentate heterocyclic bases (pyridine, 2-methylpyridine and 3,5-dimethylpyridine) serving as additional ligands have been prepared following the same synthetic procedure. The complexes were characterized by single crystal X-ray structure determination and elemental analysis. For complexes 1 and 2, FT-IR and UV-Vis spectroscopy have been additionally recorded.Three different coordination motifs have been observed in these complexes. Molecules building tetragonal crystals of [Ni{SSi(OtBu)3}2(C5H5N)] (1) feature Ni(II) coordinated by two S,O-chelating tri-tert-butoxysilanethiolato residues and one N atom of pyridine in a strongly distorted trigonal bipyramidal environment. The complex [Ni{SSi(OtBu)3}2(C6H7N)2] (2) forms triclinic crystals and its core atoms adopt a planar geometry with Ni(II) in the middle of the N2S2 plane. Molecules of complex [Ni{SSi(OtBu)3}2(C7H9N)2(H2O)] (3) form orthorhombic crystals with penta-coordinated Ni(II) in a distorted tetragonal pyramidal NiN2OS2 environment. Complex 2 roughly mimics one of the two metal centers in the active site of the ACS/CODH enzyme.  相似文献   

16.
The organometallic anion [(C5H5)Co{P(O)(OC2H5)2}3] reacts as a tridentate oxygen ligand L with [{RhCl(diolefin)}2] (diolefin = 1,5-cyclooctadiene, norbornadiene, tetrafluorobenzobarrelene, trimethyltetrafluorobenzobarrelene, duroquinone) and with [{RhCl(C2H4)2}2] in hexane or in acetone in the presence of AgClO4 to give air stable compounds of the type [LRh(diolefin)] and [LRh(C2H4)2]. These novel five-coordinate Rh1 complexes are fluxional molecules. They have been characterized by elemental analysis, and 1H NMR, IR and mass spectroscopy.  相似文献   

17.
The new ruthenium(II) complex [(C8H10)RuCl2]n (1) (C8H10 = 1,3,5-cyclooctatriene; n ⩾ 2) has been obtained from the reaction of RuCl3·xH2O with 1,3,5,7-cyclooctatetraene in refluxing ethanol. Reduction of [(C8H10)RuCl2]n and [(C7H8)RuCl2]2 (2) (C7H8 = 1,3,5-cyclooctatriene) by Na/Hg amalgam in the presence of isoprene (C5H8) gives the novel ruthenium(O) complexes [(η6-C8H10)Ru(η4-C5H8)] (3) and [(η6-C7H8)Ru(η4-C5H8)] (4). [(η6-C7H8Ru(η4-C5H8)] reacts with CO and HBF4 to give [(η6-C7H8)Ru(η3-C5H9)(CO)][BF4] (C5H9 = trans-1,2-dimethylallyl (5a); 1,1-dimethylallyl (5b)).  相似文献   

18.
Arylselenium(II) derivatives of dithiophosphorus ligands of type ArSeSP(S)R2 [Ar = Ph, R = Ph (1), OPri (2); 2-[MeN(CH2CH2)2NCH2]C6H4, R = Ph (3), OPri (4); 2-[O(CH2CH2)2NCH2]C6H4, R = OPri (6)] were prepared by redistribution reactions between Ar2Se2 and [R2P(S)S]2. The derivative [2-{O(CH2CH2)2NCH2}C6H4]SeSP(S)Ph2 (5) was obtained by the salt metathesis reaction between [2-{O(CH2CH2)2NCH2}C6H4]SeCl and NH4S2PPh2. The compounds were investigated by multinuclear (1H, 13C, 31P, 77Se) NMR and infrared spectroscopy. The crystal and molecular structures of 1, 3, 4 and 6 were determined by single-crystal X-ray diffraction. In compounds 3, 4 and 6 the N(1) atom is intramolecularly coordinated to the selenium center, resulting in a T-shaped geometry (hypervalent 10-Se-3 species). The dithiophosphorus ligands act as anisobidentate in 1 and monodentate in 3, 4 and 6. Supramolecular architectures based on intermolecular S?H and N?H contacts between molecular units are formed in the hypervalent derivatives 3 and 4, while in the compounds 1 and 6 the molecules are associated into polymeric chains through either Se?S or O?H contacts, with no further inter-chain interactions.  相似文献   

19.
Some oxime modified complexes of the type [Zr{OPri}4?n{L}n] {where, n = 1–4 and LH=(CH3)2C=NOH (1–4) and C9H16C=NOH (5–8)} have been synthesized by the reaction of [Zr(OPri)4·PriOH] with oximes, in anhydrous refluxing benzene. These synthesized complexes were characterized by elemental analyses, molecular weight measurements, ESI-mass, FT-IR and NMR (1H and 13C{1H}) spectral studies. The ESI-mass spectral studies indicate dimeric nature for [Zr{OPri}2{ONC(CH3)2}2] (2), [Zr{OPri}3{ONC10H16}] (5) and [Zr{OPri}{ONC10H16}3] (7) and monomeric nature for [Zr{ONC10H16}4] (8). Oximato ligands appear to bind the zirconium in side on manner in all the complexes. Thermogravimetric curves of (2) and (8) exhibit multi-step decomposition with the formation of ZrO2, under nitrogen atmosphere. Sol–gel transformations of precursors (5), (6), (7) and (8) in organic medium, yielded nano-sized tetragonal phase of zirconia samples (a), (b), (c) and (d), respectively, on sintering at ~600 °C. All these samples were characterized by Powder XRD patterns and EDX analyses. Surface morphologies of these samples were investigated by SEM images.  相似文献   

20.
This work reports on the preparation of the complexes [PdCl2(Y1)2], [PdCl2(Y2)2] (Y1 = (p-tolyl)3PCHCOCH3 (1a); Y2 = Ph3PCHCO2CH2Ph (1b)), [Pd{CHP(C7H6)(p-tolyl)2COCH3}(μ-Cl)]2 (2a), [Pd{CHP(C6H4)Ph2CO2CH2Ph}(μ-Cl)]2 (2b), [Pd{CH{P(C7H6)(p-tolyl)2}COCH3}Cl(L)] (L = PPh3 (3a), P(p-tolyl)3 (4a)) and [Pd{CH{P(C6H4)Ph2}CO2CH2Ph}Cl(L)] (L = PPh3 (3b), P(p-tolyl)3 (4b)). Orthometallation and ylide C-coordination in complexes 2a4b are demonstrated by an X-ray diffraction study of 4a.  相似文献   

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