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1.
The o‐substituted hybrid phenylphosphines, PPh2(o‐C6H4NH2) and PPh2(o‐C6H4OH), could be deprotonated with LDA or n‐BuLi to yield PPh2(o‐C6H4NHLi) and PPh2(o‐C6H4OLi), respectively. When added to a solution of (η5‐C5H5)Fe(CO)2I at room temperature, these two lithiated reagents produce a chelated neutral complex 1 (η5‐C5H5)Fe(CO)[C(O)NH(o‐C6H4)PPh2C,P‐η2] for the former and mainly a zwitterionic complex 2 , (η5‐C5H5)Fe+(CO)2[PPh2(o‐C6H4O?)] for the latter. Complex 1 could easily be protonated and then decarbonylated to give 4 [(η5‐C5H5)Fe(CO){NH2(o‐C6H4)PPh2N,P‐η2}+]. Complexes 1 and 4‐I have been crystallographically characterized with X‐ray diffraction.  相似文献   

2.
The complex (η5-C5H4CH3)Mn(NO)(PPh3)I has been prepared by the reaction of NaI with [(η5-C5H4CH3)Mn(NO)(CO)(PPh3)]+ and also by the reaction of [(η5-C5H4CH3)Mn(NO)(CO)2]+ with NaI followed by PPh3. This iodide compound reacts with NaCN to yield (η5-C5H4CH3)Mn(NO)(PPh3)CN which is ethylated by [(C2H5)3O]BF4 to yield [(η5-C5H4CH3)Mn(NO)(PPh3)(CNC2H5)]+. Both [(η5-C5H4CH3)Mn(NO)(CO)2]+ and [(η5-C5H4CH3)Mn(NO)(PPh3)(CO)]+ react with NaCN to yield [(η5-C5H4CH3)Mn(NO)(CN)2]?. This anion reacts with Ph3SnCl to yield cis-(η5-C5H4CH3)Mn(NO)(CN)2SnPh3 and with [(C2-H5)3O]BF4 to yield [(η5-C5H4CH3)Mn(NO)(CNC2H5)2]+. The reaction of (η5-C5-H4CH3)Mn(NO)(PPh3)I with AgBF4 in acetonitrile yields [(η5-C5H4CH3)Mn-(NO)(PPh3)(NCCH3)]+. The complex (η5-C5H4CH3)Mn(NO)(CO)I, produced in the reaction of [(η5-C5H4CH3)Mn(NO)(CO)2]+ with NaI, is not stable and decomposes to the dimeric complex (η5-C5H4CH3)2Mn2(NO)3I for which a reasonable structure is proposed. Similar dimers can be prepared from the other halide salts. The reaction of (η7-C7H7)Mo(CO)(PPh3)I with NaCN yields (η7-C7-H7)Mo(CO)(PPh3)CN which is ethylated by [(C2H5)3O]BF4 to yield [(η7-C7H7)-Mo(CO)(PPh3)(CNC2H5)]+. The interaction of this molybdenum halide complex with AgBF4 in acetonitrile and pyridine yields [(η7-C7H7)Mo(CO)(PPh3)-(NCCH3)]+ and [(η7-C7H7)Mo(CO)(PPh3)(NC5H5)]+, respectively. Both (η5-C5-H4CH3)Mn(NO)(PPh3)I and (η7-C7H7)Mo(CO)(PPh3)I are oxidized by NOPF6 to the respective 17-electron cations in acetonitrile at ?78°C but revert to the neutral halide complex at room temperature. This result is supported by electrochemical data.  相似文献   

3.
鉴于含硅-过渡金属键化合物作为催化剂具有重要的应用价值, 在我们最近发现的化合物(η5,η5-C5H4Me2SiSi-Me2C5H4)Fe2(CO)4 (1)的硅硅键和铁铁键复分解重排反应可以有效地合成含有两个硅铁键的环状化合物[Me2Si-η5-C5H4- Fe(CO)2]2 (2)的基础上, 对该硅铁键环状化合物的三苯基膦取代衍生物[Me2Si-η5-C5H4-Fe(CO)(PPh3)][Me2Si-η5-C5H4Fe(CO)2-n(PPh3)n] (3: n=0, 5: n=1)的合成方法进行了研究. 发现化合物1在三苯基膦存在下的复分解重排反应是合成单三苯基膦取代产物3的最好方法; 而双三苯基膦取代化合物5则可通过光照条件下2与三苯基膦发生羰基取代反应而得到, 产物中含有的顺反异构体可利用制备薄层色谱法分离. 利用X射线衍射法测定了化合物3的分子结构, 考察了三苯基膦配体的存在对分子结构的影响以及三苯基膦与铁形成的配位键的稳定性.  相似文献   

4.
Transition Metal Silyl Complexes, 44. — Preparation of the Binuclear Silyl Complexes (CO)3(R3Si)Fe(μ-PR′R′′)Pt(PPh3)2 by Oxidative Addition of (CO)3(R′R′′HP)Fe(H)SiR3 to (C2H4)Pt(PPh3)2 The complexes (CO)3(R′R′′HP)Fe(H)SiR3 ( 1 ) [PHR′R′′ = PHPh2, PH2Ph, PH2Cy; SiR3 = SiPh3, SiPh2Me, SiPhMe2, Si(OMe)3] react with Pt(C2H4)(PPh3)2 to give the dinuclear, silyl-substituted complexes (CO)3(R3Si)Fe(μ-PR′R′′)Pt(PPh3)2 ( 2 ) in high yields. Upon reaction of 2 (R = R′ R′′ = Ph) with CO, the PPh3 ligand at Pt being trans to the PPh2 bridge is exchanged, and (CO)3(Ph3Si)Fe(μ-PPh2)Pt(PPh3)CO ( 3 ) is formed. Complex 3 is characterized by an X-ray structure analysis. The rather short Fe — Si distance [233.9(2) pm] and the infrared spectrum of 3 indicate that the Fe — Pt bond is quite polar.  相似文献   

5.
Summary RuH2(CO)(PPh3)3 was prepared in a CO2 and H2 atmosphere from RuCl3 and PPh3 in the presence of alcohol and Et3N. Introduction of CO into the system lead to the formation of other complexes e.g. Ru(CO)3-(PPh3)2. Addition of alkali in place of Et3N resulted in a decrease in the RuH2(CO)(PPh3)3 yield.Author to whom all correspondence should be directed.  相似文献   

6.
The complexes M(CO)2(PPh3)3 (I, M = Fe; II, M = Ru) readily react with H2 at room temperature and atmospheric pressure to give cis-M(H)2(CO)2(PPh3)2 (III, M = Fe;IV,M = Ru). I reacts with O2 to give an unstable compound in solution, in a type of reaction known to occur with II which leads to cis-Ru(O2)(CO)2(PPh3)2(V). Even compound IV reacts with O2 to give V with displacement of H2; this reaction has been shown to be reversible and this is the first case where the displacement of H2 by O2 and that of O2 by H2 at a metal center has been observed. III and IV are reduced to M(CO)3(PPh3)2 by CO with displacement of H2; Ru(CO)3- (PPh3)2 is also formed by treatment of IV with CO2, but under higher pressure. Compounds II and IV react with CH2CHCN to give Ru(CH2CHCN)(CO)2- (PPh3)2(VI) which reacts with H2 to reform the hydride IV.cis-Ru(H)2(CO)2(PPh3)2(IV) has been studied as catalyst in the hydrogenation and isomerization of a series of monoenes and dienes. The catalysts are poisoned by the presence of free triphenylphosphine. On the other hand the ready exchange of H2 and O2 on the “Ru(CO)2(PPh3)2” moiety makes IV a catalyst not irreversibly poisoned by the presence of air. It has been found that even Ru(CO)2(PPh3)3(II) acts as a catalyst for the isomerization of hex-1-ene at room temperature under an inert atmosphere.  相似文献   

7.
[Cp((CO)2Fe(PPh2H)]PF6 reacts with NaBH4 to give the intermediates CpFe(CO)2H and PPh2H, which are then converted into Cp(CO)(H)Fe(PPh2H). [Cp(CO)2FeL]PF6 (L = P(OMe)3, P(OEt)3 and P(OiPr)3) reacts with NaBH4 to give the product Cp(CO)(H)FeL directly without Cp(CO)2FeH and L even being formed transiently. The proposed reaction mechanism is that H attacks th phosphorus atom to give a metallaphosphorane complex, followed by coupling between a Cp(CO)2Fe fragment and H on the hypervalent phosphorus.  相似文献   

8.
RuHCl(CO)2(PPh3)2 reacts with ethylene under mild conditions (25 psi, 80°C) to yield a propionyl derivative RuCl(C[O]C2H5)(CO)(PPh3)2 which is believed to be coordinatively unsaturated. Unlike the acetyl analogue, RuCl[C[O]C2H5(CO)-(PPh3)2 does not isomerize to RuCl(C2H5)(CO)2(PPh3)2 in solution. Under one atmosphere of carbon monoxide, RuCl(C[O]C2H5(CO)(PPh3)2 exists in equilibrium with two species believed to be RuCl(C[O]C2H5)(CO)2(PPh3)2 and [Ru(C[O]C2H5)(CO)3(PPh3)2]Cl. RuCl(C[O]C2H5)(CO)(PPh3)2 reacts with CO/ AgClO4 to give mer-[Ru(C[O]C2H5)(CO)3(PPh3)2]ClO4, p-tolylisocyanide (RNC) and NaClO4 to give cis-[Ru(C[O]C2H5)(CO)(CNR)2(PPh3)2ClO4, and hydrochloric acid to yield the hydroxycarbene complex, RuCl2(CO)(C[OH]C2H5)(PPh3)2.  相似文献   

9.
Cyclic voltammetric studies of clusters (C5H5-C2C6 H4-R-p)Co2(CO)6-n Ln[n=0,2; L=PPh3, P(OEt)3] and (RCH2C)2Co2(CO4) (PPh3)2 on Pt electrode are described. The primary reduction (0 / ?1) and oxidation (+ 1 / 0) steps are considered as a mono-electron process for all clusters. For the clusters (C5H5C2C6H4-R-p)Co2(CO)6, a good linear relation between reduction potential Epred and Hammett constant σp of R in the clusters is found. For the clusters (RC2R')Co2(CO)4L2, their radical anions are extremely unstable at room temperature and fragment into a series of mononuclear species, one of which is (RC2R')Co(CO)2PPh3. The reaction of radical anions of (RC2R')Co2(CO)6–n (PPh3)n(n=0,2) with PPh3 also produces mononuclear species (RC2R')Co(CO)2PPh3 which has been detected by means of cyclic voltammetry and ESR. The influence of R on redox properties of clusters is discussed.  相似文献   

10.
In contrast to a related iron—copper compound, the complex (π-C5H5)Ru(PPh3)2(C2Ph)CuCl is shown to be monomeric, and contains linear dicoordinate copper(I); the reactions of this and similar complexes with metal carbonyls are sources of new mixed-metal clusters, such as (π-C5H5)Fe2 Ru(C2Ph)(CO)6 (PPh3).  相似文献   

11.
Preparation of μ-Hydrido-μ-diphenylphosphido-bis(tetracarbonylrhenium) · 1/2 Xylene and Molecular Structure of the Derivative Re2(CO)6(PPh3)2(μ-H)(μ-PPh2) (Ph = C6H5) The reaction of dirhenium decacarbonyl with diphenylphosphine in xylene solution gave at 190–200°C in a glas tube crystals of Re2(CO)8(μ-H)(μ-PPh2) · 1/2 C8H10. The obtained adduct was reacted in the same solvent with an excess of triphenylphosphine to the derivative Re2(CO)6(PPh3)2(μ-H)(μ-PPh2). Both diamagnetic dirhenium compounds with μ-H atom and μ-PPh2 group were characterized by 1H and 31P spectroscopic measurements. The molecular structure of the derivative was acertained by a single crystal X-ray analysis. Its result showed a three-membered Re2(μ-P) ring as central molecular fragment. At these Re central atoms were attached two PPh3 ligands in an unprefered cis-arrangement due to sterical reasons. A thermodynamic transinfluence of the (μ-P)? Re bond favoured the found positions of the PPh3 ligands.  相似文献   

12.
Coordinatively Unsaturated Diiron Complexes: Synthesis and Crystal Structures of [Fe2(CO)4(μ‐H)(μ‐PtBu2)(μ‐Ph2PCH2PPh2)] and [Fe2(CO)4(μ‐CH2)(μ‐H)(μ‐PtBu2)(μ‐Ph2PCH2PPh2)] [Fe2(μ‐CO)(CO)6(μ‐H)(μ‐PtBu2)] ( 1 ) reacts spontaneously with dppm (dppm = Ph2PCH2PPh2) to give [Fe2(μ‐CO)(CO)4(μ‐H)(μ‐PtBu2)(μ‐dppm)] ( 2 c ). By thermolysis or photolysis, 2 c loses very easily one carbonyl ligand and yields the corresponding electronically and coordinatively unsaturated complex [Fe2(CO)4(μ‐H)(μ‐PtBu2)(μ‐dppm)] ( 3 ). 3 exhibits a Fe–Fe double bond which could be confirmed by the addition of methylene to the corresponding dimetallacyclopropane [Fe2(CO)4(μ‐CH2)(μ‐H)(μ‐PtBu2)(μ‐dppm)] ( 4 ). The reaction of 1 with dppe (Ph2PC2H4PPh2) affords [Fe2(μ‐CO)(CO)4(μ‐H)(μ‐PtBu2)(μ‐dppe)] ( 5 ). In contrast to the thermolysis of 2 c , yielding 3 , the heating of 5 in toluene leads rapidly to complete decomposition. The reaction of 1 with PPh3 yields [Fe2(CO)6(H)(μ‐PtBu2)(PPh3)] ( 6 a ), while with tBu2PH the compound [Fe2(μ‐CO)(CO)5(μ‐H)(μ‐PtBu2)(tBu2PH)] ( 6 b ) is formed. The thermolysis of 6 b affords [Fe2(CO)5(μ‐PtBu2)2] and the degradation products [Fe(CO)3(tBu2PH)2] and [Fe(CO)4(tBu2PH)]. The molecular structures of 3 , 4 and 6 b were determined by X‐ray crystal structure analyses.  相似文献   

13.
The 1H and 13C NMR spectra of the heterobimetallic compound (CO)4Fe(μ-AsMe2)Mo(CO)2(C5H5) reveal three different fluxional processes.  相似文献   

14.
Reaction of Ru3(CO)12 with HC(PPh2)3 leads to a variety of products, two of which have been characterised. One is the symmetrically capped product Ru3(CO)9[HC(PPh2)3], which was characterised spectroscopically. The second product was characterised crystallographically as Ru3(CO)9[HC(PPh2)-(PhPC6H4PPh)]-CHCl3.  相似文献   

15.
The reaction of [RuHCl(CO)(PPh3)3] with pyrazine has been examined and a ruthenium(II) complex – [RuHCl(CO)(PPh3)2(C4H4N2)] -- has been obtained. The compound has been studied by IR, UV–Vis spectroscopy, and X-ray crystallography. The molecular orbital diagram of the complex has been calculated with density functional theory (DFT). The spin-allowed singlet--singlet electronic transitions of the complex have been calculated with the time-dependent DFT method, and the UV–Vis spectrum of the compound has been discussed on this basis.  相似文献   

16.
A reinvestigation of the reaction between C2(CO2Me)2 and RuH(PPh3)2(η-C5H5) and some related complexes is reported. Initial cis addition is followed by conversion into the trans isomer. In the case of the bis-(PPh3) complex, isomerisation is followed by chelation of the ester CO group with concomitant displacement of one PPh3ligand. The resulting chelate complex reacts with CO or CNBut to give the (Z)-RuC(CO2Me)CH(CO2Me) complexes; the (E)-isomer of the carbonyl complex is obtained by addition of C2(CO2Me)2to RuH(CO)(PPh3)(η-C5H5). The 1Hand 13C NMR spectra are not a reliable guide to assignment of the stereochemistry of the vinyl group. Other products isolated from the initial reaction are the bis-insertion product Ru{C(CO2Me)C(CO2Me)C(CO2Me)CH(CO2Me)} -(PPh3)(η-C5H5) and the 1/2 PPh3/C2(CO2Me)2 adduct. The molecular structures of Ru{(Z)-C(CO2Me)CH(CO2Me)}(CO)(PPh3(η-C5H5) · 0.5EtOH, Ru{(E)-C(C2Me)CH(CO2Me)}(dppe)(η-C5H5) and Ru{C(CO2Me)C(CO2Me)C(CO2-Me)CH(CO2Me)}(PPh3)(η-C5H5) have been determined. The cis isomer is monoclinic, space group P21,with a 9.328(8), b 17.385(10), c 10.356(7) Å, β 101.78(3)° and Z = 2; 2107 data with I ≥ 2.5σ(I) were refined to R = 0.076 Rw = 0.085. The trans isomer is triclinic, space group P1, with a 10.404(7) b 11.221(6), c 13.230(9) Å, α 92.67(5), β 110.56(5), γ 106.21(5)° and Z = 2; 2520 data with I ≥ 2.5σ(I) were refined to R = 0.055 Rw = 0.068. The butadienyl complex is monoclinic, space group P21/a, with a 19.655(8), b 8.674(4), c 21.060(5) Å, β 116.22(3)° and Z = 4; 2724 data with I ≥ 2.5σ(I) were refined to R = 0.042, Rw = 0.047.  相似文献   

17.
The carbodiphosphorane C(PPh3)2 ( 1 ) reacts with [Mn2(CO)10] in THF to produce quantitatively the salt‐like complex (HC{PPh3}2)[Mn(CO)5] ( 2 ) as THF solvate. If the reaction is carried out in 1,2‐dimethoxyethane (DME) small amounts of [Mn(OPPh3)2{O2CC(PPh3)2}2][Mn(CO)5]2 ( 3 ) as DME solvate along with solvent free 2 as the main product were isolated. Proton abstraction from the solvent led to the formation of 2 ; the ligands OPPh3 and O2CC(PPh3)2}2 of 3 are the results of a side reaction from [Mn2(CO)10] and 1 in a Wittig type manner. From the reaction in benzene small amounts of 3 were also obtained, crystallizing as benzene solvate 3· 4C6H6. The crystal structures of 2· THF, 2 , 3· 1.75DME and 3· 4C6H6 are reported. The compounds are further characterized by IR and 31P NMR spectroscopy.  相似文献   

18.
The reactions of Os3(μ-H)2(CO)10 with a series of Group IB metal acetylide-tertiary phosphine complexes are described. Whereas the compounds M(C2C6F5)(PPh3) (M = Cu, Ag, Au) afforded the complexes MOs3(μ-CHCHC6F5)(CO)10(PPh3) cleanly and in high yield, complex mixtures of products were obtained from reactions of the analogous phenylacetylides. The complexes MOs3(μ-CHCHPh)(CO)10(PPh3), MOs3(μ-CHCHPh)(CO)9(PPh3)2 and MOs3(μ-H)(CO)10(PPh3) (of known structure), and MOs3(μ-CHCHPh)(CO)9(PPh3)2 and HMOs3(CHCPh)(CO)8 (of unknown structure) were characterised; Au(C2Ph)(PMe3) afforded similar derivatives. The reactions proceed by oxidative-addition and hydrogen migration steps; MP bond cleavage reactions also occur to a small extent. The molecular structures of AuOs3(μ-CHCHC6R5)(CO)10(PPh3) (R = F or H) were determined by X-ray analyses. For R = F, crystals are triclinic, space group P1 with a 9.081(2), b 13.291(2), c 17.419(2) Å, α 84.49(1), β 76.20(2), γ 75.81(2)° and Z = 2; 4622 observed data [I > 2.5σ(I)] were refined to R = 0.027, RW = 0.031. For R = H, crystals are triclinic, space group P1, with a 9.403(4), b 13.448(3), c 13.774(4) Å, α 83.34(2), β 88.66(3), γ 70.21(3)°, and Z = 2; 4405 observed data [I > 2.5σ(I)] were refined to R = 0.030, RW = 0.033. The two molecules differ in the orientation of the Ph rings of the PPh3 groups, but are otherwise similar to Os3(μ-H)(μ-CHCHBut)(CO)10 with the μ-H ligand replaced by the isolobal μ-Au(PPh3) group.  相似文献   

19.
《Polyhedron》2003,22(25-26):3307-3313
The [ReCl22-N2COPh–N,O)(PPh3)2] complex reacts with pyridine and pyrazole to give [ReCl2(N2COPh)(py)(PPh3)2] and [ReCl2(N2COPh)(C3N2H4)(PPh3)2], respectively. Two monoclinic polymers of [ReCl2(N2COPh)(C3N2H4)(PPh3)2] and [ReCl2(N2COPh)(py)(PPh3)2] have been characterized by IR, UV–Vis, 1H NMR, magnetic measurements and X-ray structure.  相似文献   

20.
Conclusions The following -(-cyclopentadienyl) manganese dicarbonyl triphenylphosphine derivatives of -cyclopentadienyliron dicarbonyl were synthesized: (CO)2(PPh3)MnC5H4-Fe(CO)2C5H5 and (CO)2(PPh3)MnC5H4CO-Fe(CO)2C5H5, and the acid chloride (CO)2(PPh3)MnC5H4COCl.Translated from Izvestiya Akademii Nauk SSSR, Seriya Khimicheskaya, No. 5, pp. 1156–1158, May, 1977.  相似文献   

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