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1.
Upon heating solid monoalkylamino(silyl)carbene complexes (CO)5MC(NHR′)SiR3 (M = W: SiR3 = SiPh3, R′ = Me, Et, Bun, C6H11, Ph; SiR3 = SiMePh2, R′ = Me, Et. M = Mo, Cr: R = Ph, R′ = Me, Et) beyond their melting points, HSiR3 elimination with formation of the isonitrile complexes (CO)5MNCR′ and (CO)4M(CNR′)2 and (CO)6M takes place quantitatively. Deuteration experiments show that the silane hydrogen stems from the NH group and that the reaction partially or exclusively proceeds by an intermolecular pathway.  相似文献   

2.
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   

3.
Summary Upon u.v. irradiation of [Fe(CO)4(PR 3 )] with HSiR3 (HSiR3 = HSiMePh2, PR3 = PPh3; HSiR3 = HSiMe2Cl, PR3 = PPh3 or PMe2Ph; HSiR3 = HSiMeCl2, PR3 = PPh3, PMePh2, PMe2Ph or PMe3; HSiR3 = HSiCl3, PR3 = PPh3, PMePh2, PMe2Ph, PMe3 or PBu 3 n ) the corresponding hydridosilyl complexes [Fe(CO)3H(PR3)SiR3] are formed. The complexes have themer configuration with acis disposition of the hydride and the silyl ligands. Prolonged irradiation with an excess of silane results in the formation of bis-silyl complexes [Fe(CO)3(PR3)(SiR3)2], if electron density at the metal is not too high. Thus, [Fe(CO)3H(PPh3)SiMePh2] and [Fe(CO)3-H(PMe2Ph)SiMe2Cl] can be obtained but not the corresponding bis-silyl complexes. Most bis-silyl complexes are obtained asmer-isomers with acis-arrangement of the silyl ligands. Only for [Fe(CO)3(PR3)(SiCl3)2] with small phosphine ligands (PR3 = PMe3 or PMe2Ph) is thefac-isomer formed.Part VII of this series, ref. (1).  相似文献   

4.
1-, 2-cis-, 2-trans-, and 3-trans-heptenes (C7)are isomerized either very slowly or not at all with IrX(CO)L2 at 80°C in toluene and under N2. However, under the conditions of hydrogenation fast isomerisation takes place. With IrCl(CO)L2 as catalyst the rate of isomerisation decreases the order: 1-C7 ∼ 2-cis-C7 > 3-trans-C7 > 2-trans-C7. This sequence is independent of the ligand L in lrCl(CO)L2, however, with a particular isomer the rate of isomerisation is a function of L in the order L = PPh3 > P(C6H11)3 > P(OPh)3.  相似文献   

5.
Alkyl and Aryl Complexes of Iridium and Rhodium. XIX. Reaction of Carboxylic Acids with Selected Organo Compounds of Ir(I) and Rh(I): Formation of Arylhydrido, Carboxylatohydrido, and Carboxylato Derivatives cis-Arylhydridoiridium(III) complexes IrH(Ar)(O2CR)(CO)(PPh3)2 (R = Me: Ar = C6H5, 4-MeC6H4; R = Et: Ar = 4-MeC6H4, 2,4-Me2C6H3) could be prepared by oxidative addition of carboxylic acids to aryliridium(I) compounds Ir(Ar)(CO)(PPh3)2. Reaction of aliphatic carboxylic acids with alkyliridium(I) derivatives Ir(Alk)(CO)(PPh3)2 and Ir(Alk)[PhP(CH2CH2CH2PPh2)2] (Alk = CH2CMe3, CH2SiMe3) lead to dicarboxylatoiridium(III) hydrides IrH(O2CR)2(CO)(PPh3)2 (R = Me, Et, i-Pr) and IrH(O2CR)2[PhP(CH2CH2CH2PPh2)2] (R = Me, Et). Ir(4-MeC6H4CO2)(CO)(PPh3)2 was obtained from Ir(CH2SiMe3)(CO)(PPh3)2 and 4-MeC6H4CO2H. Interaction of organorhodium complexes Rh(R′)(CO)(PPh3)2 (R′ = CH2SiMe3, 4-MeC6H4) and Rh(R′)[PhP(CH2CH2CH2PPh2)2] (R′ = CH2CMe3, 4-MeC6H4) with aliphatic and aromatic carboxylic acids yielded carboxylatorhodium(I) compounds Rh(O2CR)(CO)(PPh3)2 (R = Me, t-Bu, 4-MeC6H4) and Rh(O2CR)[PhP(CH2CH2CH2PPh2)2] (R = Me, 4-MeC6H4).  相似文献   

6.
Reaction of carbon diselenide in 3 to 1 molar ratio, and areneselenols in equimolar ratio, with trans-IrCl(CO)(PPPh3)2 and PtL4, gives oxidative addition products, IrCl(CO)CSe2)(PPh3)2, Pt(CSe2)L2, IrHCl(CO)(SeC6H4Me-p)(PPh3)2, and PtH(SeR)L2, respectively (R = Ph and p-MeC6H4; L = PPh3 and PPh2Me). However, reactions of PtL4 with an excess of areneselenols afford bis(arylselenide) complexes Pt(SeR)2L2. The configurations of these complexes are discussed on the basis of their IR and PMR spectra. The carbon diselenide adducts are suggested to have configurations similar to the corresponding carbon disulfide adducts. The platinum hydrides are found to exist as a mixture of cis and trans isomers in solution, both the isomers being labile with regard to dissociative exchange of the tertiary phosphine ligands. The trans configurations of Pt(SeR)2(PPh2Me)2 are unambiguously shown by the virtually coupled triplet pattern of the PPh2Me signals.  相似文献   

7.
Summary The rhodium(I) carbonyl compounds [Rh(CO)L22] [BF4]. 1/2CH2Clnn2 (L = PPh2 or AsPh3) react with the nucleophiles OMe, RCOO (R = Me, Et) under nitrogen to form [Rh(OR)(CO)L2] (1)–(2) and [Rh(OOCR)(CO)L2] (7)–(10), respectively. Addition of [Rh(CO)2(PPh3)2]-[BF 4] to OMe under nitrogen produces [Rh(COOMe)-(CO) (PPh3)2]-MeOH (3), whilst reactions of [Rh(CO)-(PPh3)2] [BF4]·1/2CH2Cl2 and [Rh(CO)2(PPh3)2] [BF4] with OR- (R = Me, Et or n-Pr) in the presence of CO produce [Rh(COOR)(CO)2(PPh3)2] (4)–(6). The products have been characterised by i.r., 1H, 31P, 13Cn.m.r. spectroscopy and elemental analysis.  相似文献   

8.
The unsaturated complexes RuCl(CO)(RC=CHR′)(PPh3)2 react with CO to give the dicarbonyl complexes RuCl(CO)2(RC=CHR′)(PPh3)2 or the η2-acyl complexes RuCl(CO)(O=CC(R)=CHR′)(PPh3)2, depending on the R and R′ groups. The RuCl(CO)(O=CC(Me)=CHMe)(PPh3)2 complex reacts with methanol to give RuCl(CO)(O2CC(Me)=CHMe)(PPh3)2, which structure has been established by an X-ray diffraction study.  相似文献   

9.
[WBr2(CO4]n reacts with alkynes to give complexes [WBr2CO(RCCR)2]2 (1) (R = R′ = Me, Et, Ph; R = Me, R′ = Ph), which react with nucleophiles L{L = CNBut, PPh3, or P(OMe)3} to give monoalkyne derivatives (WBr2(CO)(RCCR′)L2](2). An intermediate bis-alkyne adduct [WBr2CO(MeCCMe)2(CNBut)] (3) was isolated in the reaction of [WBr2CO(MeCCMe)2]2 with CNBut illustrating that cleavage of the dimer (1) is the first stage in these reactions.  相似文献   

10.
Acyclic diene polycondensation (ADP) of diallyldiorganosilanes (CH2CHCH2)2SiR2 (where R = Me, Ph), in the presence of various ruthenium and rhodium complexes, led predominantly to linear silylene–propenylene oligomers. Ruthenium catalysts (e.g. RuCl2(PPh3)3, RuHCl(CO)(PPh3)3, and RuCl(SiMe3)(CO)(PPh3)2) were found to be more efficient than the rhodium ones. The reaction proceeds via preliminary catalytic isomerization of allylsilane to silyl-1-propenes followed by their oligococondensation. © 1997 John Wiley & Sons, Inc. J Polym Sci A: Polym Chem 35: 3299–3304, 1997  相似文献   

11.
Reduction of various pentafluorophenylnickel(II) complexes in the presence of phosphines gives unstable nickel(I) compounds but Ni(C6F5)(CO)2(PPh3)2 is isolated in the presence of CO. Similar NiR(CO)2(PPh3)2 (R = C6F5,C6Cl5, 2,3,5,6-C6Cl4H) are obtained by reaction of the halogenonickel(I) complex with MgRBr or LiR. Reduction of NiX2L2 in the presence of acetylenes gives [NiXL2]2(μ-PhCCR) (R = H, X = Cl and R = Ph, X = Cl, Br) when L = P-n-Bu3 but only NiX(PPh3)3 are recovered when L = PPh3. No reaction with the alkyne is observed for [NiX(PPh3)2]n but [NiCl(PPh3)]n reacts with RCCR′ to give paramagnetic NiCl(PPh3)(CRCR′) (R = Ph, R′= H, COOEt), diamagnetic [NiCl(PPh3)]2(μ-PhCCPh) and cyclotrimerization when R = R′ = COOMe. Chemical and structural behaviour of the new nickel(I) complexes is described.  相似文献   

12.
Addition of Cationic Lewis Acids [M′Ln]+ (M′Ln = Fe(CO)2Cp, Fe(CO)(PPh3)Cp, Ru(PPh3)2Cp, Re(CO)5, Pt(PPh3)2, W(CO)3Cp to the Anionic Thiocarbonyl Complexes [HB(pz)3(OC)2M(CS)] (M = Mo, W; pz = 3,5‐dimethylpyrazol‐1‐yl) Adducts from Organometallic Lewis Acids [Fe(CO)2Cp]+, [Fe(CO)(PPh3)Cp]+, [Ru(PPh3)2Cp]+, [Re(CO)5]+, [ Pt(PPh3)2]+, [W(CO)3Cp]+ and the anionic thiocarbonyl complexes [HB(pz)3(OC)2M(CS)] (M = Mo, W) have been prepared. Their spectroscopic data indicate that the addition of the cations occurs at the sulphur atom to give end‐to‐end thiocarbonyl bridged complexes [HB(pz)3(OC)2MCSM′Ln].  相似文献   

13.
Perfluoronorbornadiene reacts with the compounds [M(PPh3)4] (M = Pt, Pd) and [IrCl(CO)(PMePh2)2] to give the adducts [(C7F8)M(PPh3)2] and [(C7F8)IrCl(CO)(PMePh2)2] in which one of the double bonds is coordinated to the metal atom. The platinum complex reacts further with [Pt(PPh3)4] to give [(C7F8){Pt(PPh3)2}2] having both double bonds coordinated to a Pt atom. The carbonylmetal anions [M?] react to form the mono-substitution products [(C7F7)M] (M = Mn(CO)5, Re(CO)5, Ir(CO)2(PPh3)2, Rh(CO)2(PPh3)2), but the use of an excess of [Fe(CO)2(η-C5H6)]? leads to substitution of one fluorine atom on each of the double bonds. The complex having M = Mn(CO)5 reacts with [Pt(PPh3)4] to afford the derivative [(C7F7){Mn(CO)4(PPh3)}{Pt(PPh3)2}], and the compound where M = Ir(CO)2(PPh3)2 undergoes an oxidative addition reaction with acetyl chloride. Oxidative coupling products have been isolated on UV irradiation of a mixture of perfluoronorbornadiene and [Fe(η4-CH2CRCHCH2)(CO)3] (R = H, Me), and under similar conditions the reaction with Fe(CO)5 affords [(C7F8)Fe(CO)4] in very low yield.  相似文献   

14.
Mono-cyclopentadienyl complexes CpVX2(PR3)2 and Cp′VX2 (PR3)2 (Cp = η5- C5H5; Cp′ = η5-C5H4Me; R = Me, Et; X = Cl, Br) have been prepared by reaction of VX3(PR3)2 with CpM (M = Na, T1, SnBun3, 1/2 Mg) or Cp′Na. Attempts to prepare analogous complexes with other phosphine ligands, PPh3, PPh2 Me, PPhMe2, Pcy3, DMPE and DPPE failed. Reduction of CpVCl2(PEt3)2 with zinc or aluminium under CO (1 bar) offers a simple method for the preparation of CpV(CO)3(PEt3). The crystal structure of the trimethylphosphine complex CpVCl2(PMe3)2 is reported.  相似文献   

15.
In the reaction with phenylacetylene leading to [(PPh3)2(CO)IrCl (HNNC6H4R-p)(CCPh)] (BF4) (R  NO2, CN, COCH3), the vacant coordination site in [(PPh3)2 (CO)IrCl(N2C6H4 R-p)] (BF4) plays a key role in the activation of the acetylenic CH bond. ca]To whom correspondence should be addressed.  相似文献   

16.
The complexes [MHCl(CO)(PPh3)3] (M = Ru or Os) readily undergo substitution at the site trans to the hydride ligand to afford phosphinite-, phosphonite-, or phosphite-containing products [MHCI(CO)(PPh3)2L] [L = P(OR)Ph2, P(OR)2Ph or P(OR)3 respectively; R = Me or Et]. The ruthenium complexes alone undergo further substitution to afford complex cations [RuH(CO)(PPh3)nL4?n]+ [n = 2, L = P(OMe)3; n = 1, L = P(OR)3; n = 0, L = P(OR)2Ph or P(OR)Ph2] which were isolated and characterised as their tetraphenylborate salts. Synthesis of the cationic complexes [IrHL5][BPh4]2 [L = P(OR)3, R = Me or Et] is also reported. Stereochemical assignments based on NMR data are given, and second order 31P and high field 1H NMR patterns are analysed.  相似文献   

17.
Abstract

α-Hydroxyiminophosphonic acid derivatives are widely known not only as intermediates in the synthesis of the important aminophosphonic acids,1,2 but also as phosphorylating agents,3 potential metalloenzyme inhibitors,4 and as compounds having fungicidal activity.5 In this work the scope of these compounds has been extended considerably by the synthesis of a number of novel dialkyl derivatives. Novel lanthanide (LaIII, PrIII, NdIII, GdIII and DyIII) and transition metal (CoII and NiIII) complexes of dialkyl α-hydroxyiminophosphonates (RO)2P(O)C(R')N(OH) where R = Et. Pri and R′ = Me, Et have been prepared and the NMR shift properties of the PrIII complex (R = Et; R′ = Et) indicate the potential of these compounds as NMR shift reagents for the analysis of geometric isomers.6,7 X-ray crystal structure analysis of [Ni(L1)2C12] (L1: R = Et; R′ = Et) shows a distorted cis octahedral coordination at the nickel atom giving two symmetry related diethyl-(E)-α-hydroxyiminopropanephosphonate ligands and two chlorine donors, and those of [Pr(L2)3Cl3] and [Nd(L2)2(NO3)3(H2O)] (L2: R = Pri; R′ = Et) show nine-coordination geometries with asymmetric bidentate and monodentate L2 bonding respectively. Thus the metal complexes show unusual coordination ambivalence, changing from symmetrically bidentate to asymmetrically bidentate and then to monodentate bonding modes, to accommodate the different steric requirements of the coordinating anions in facilitating neutral complex formation.  相似文献   

18.
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   

19.
Oxidative addition of aryl halides, ArX, to chlorocarbonylbis(triphenylphos-phine)iridium(I) yields iridium(III) aryl complexes, IrCl(X)(Ar)(CO)(PPh3)2. The reactivity of the aryl halide decreases in the order I > Br > C1, and electron-withdrawing substituents in the aryl ring accelerate the reaction. The IrIII compounds may be utilised as arylating agents.  相似文献   

20.
Hydrido complexes [MnH(CO)3L1–3] [L1 = 1,2‐bis‐(diphenylphosphanoxy)‐ethane ( 1 ); L2 = 1,2‐bis‐(diisopropylphosphanoxy)ethane ( 2 ); L3 = 1,3‐bis‐(diphenylphosphanoxy)‐propane ( 3 )] were prepared by treating [MnH(CO)5] with the appropriate bidentate ligand by heating to reflux. Photoirradiation of a toluene solution of complexes 1 and 2 in the presence of PPhn(OR)3–n (n = 0, 1; R = Me, Et) leads to the replacement of a CO ligand by the corresponding monodentate phosphite or phosphonite ligand to give new hydrido compounds of formula [MnH(CO)2(L1–2)(L)] [L = P(OMe)3 ( 1a – 2a ); P(OEt)3 ( 1b – 2b ); PPh(OMe)2 ( 1c – 2c ); PPh(OEt)2 ( 1d – 2d )]. All complexes were characterized by IR, 1H, 13C and 31P NMR spectroscopy. In case of compounds 2 and 3 , suitable crystals for X‐ray diffraction studies were isolated.  相似文献   

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