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1.
The possibility of reactions between trans-[OsO2Cl2L2] (L = PPh3, AsPh3, SbPh3) osmium(VI) complexes and glacial acetic acid to give osmium(IV) compounds of general formula [Os2(-O)(-O2CCH3)2Cl4(L)2] was studied.  相似文献   

2.
Summary The bisacetonitrile complexes [MI2(CO)3(NCMe)2] react with an equimolar amount of L in CH2Cl2 at room temperature to give [MI2(CO)3(NCMe)L] which when mixedin situ with an equimolar amount of [NBu 4 n ]X affords the anionic seven-coordinate compounds [NBu 4 n ][MI2X(CO)3L][M=Mo or W,X=I, L=PPh3 (for M=W only), AsPh3 or SbPh3 (for M=Mo only); M=Mo and W, X=Br3 or Br2I, L=PPh3, AsPh3 or SbPh3]. These reactions are likely to occurvia the stepwise dissociative displacement of two acetonitrile ligands. Low-temperature (–70° C, CD2Cl2)13C n.m.r. spectra (CO resonances) are reported for several of the complexes in order to infer the likely stereochemistry of these compounds.  相似文献   

3.
Summary The complexes [MI2(CO)3(NCMe)2] (M=Mo or W) react with one molar equivalent of L in CH2Cl2 at room temperature initially to afford the mononuclear sevencoordinate complexes [MI2(CO)3(NCMe)L] which have been isolated for L-PPh3, AsPh3, SbPh3, PPh2Cy or P(OPh3)3. Many of these complexes dimerise to give the iodide bridged compounds [{M(–I)I(CO)3L}2]via displacement of acetonitrile. When L=PPhCy2, PCy3, PEt3 or P(OMe)3 only the dimeric complexes have been isolated. The ease of dimerisation of the mononuclear complexes [MI2(CO)3(NCMe)L] is discussed in terms of the electronic and steric effects of the ligands, L. Low temperature13C n.m.r. spectroscopy of the mononuclear [Wl2(CO)3(NCMe)(EPh3)](E=P or As) complexes are interpreted as suggesting the likely stereochemistry of these seven-coordinate complexes.  相似文献   

4.
《Polyhedron》1999,18(8-9):1141-1145
Exchange reactions of trans-[PdXPh(SbPh3)2] (1) (X=Cl or Br) with ligands L in refluxing dichloromethane give the palladium phenyl complexes [PdXPhL2] (X=Cl, L=PPh3, AsPh3, L2=2,2′-bipyridine (bipy), 4,4′-dimethyl-2,2′-bipyridine (dmbipy), 1,10-phenanthroline (phen); X=Br, L=PPh3, L2=bipy). Treatment of the complexes with bis(diphenylphosphino)methane (dppm) in refluxing dichloromethane gives [PdXPh(dppm]2. These complexes have been characterised by microanalysis, IR and 1H NMR spectroscopic data together with single crystal X-ray determinations of the phenyl palladium complexes, trans-[PdClPh(PPh3)2], [PdClPh(bipy)], [PdClPh(dppm)]2, and [PdBrPh(dppm)]2.  相似文献   

5.
Summary The seven-coordinate complexes [MI2(CO)3(NCMe)2] (M=Mo or W) react either in acetone or methanol with one equivalent of L (L=PPh3, AsPh3 or SbPh3) to give [MI2(CO)3(NCMe)L], which when reactedin situ with one equivalent of L {L=SC(NH2)2, SC(NMe2)2 or SC(NH2)Me} affords good yields of the new mixed complexes [MI2(CO)3LL]via successive displacement of acetonitrile ligands.  相似文献   

6.
Ru(PPh3)3Cl2 reacts with N(1)-alkyl-2-(arylazo)imidazoles, p-RC6H4N=NC3H2N2X, [RaaiX, R = H(a), Me(b), Cl(c); X = Me(1), Et(2), Bz(3)] under refluxing conditions in EtOH to give [Ru(RaaiX)2(PPh3)2](ClO4)2 · H2O complexes (4–6). RaaiX is a bidentate chelator (N, N) with N(imidazole), N and N(azo), N donor centres. Three isomers are present in the mixture in which the pairs of PPh3, N and N occupy cis–cis–trans, cis–trans–cis and cis–cis–cis, positions respectively. The isomers were identified by 1H-n.m.r. spectra. Four signals are observed in the aliphatic zone for N(1)-X; two are of equal intensity at higher and the other two signals at lower in the ratio 1:0.3:0.2 suggesting the presence of cis–cis–cis, cis–trans–cis and cis–cis–trans-geometry. The complexes display the allowed t 2(Ru) *(RaaiX) transition. Cyclic voltammetry indicates two consecutive RuIII/II couples along with azo reductions.  相似文献   

7.
The synthesis, characterization and reactivity of trans-[Ru(NH3)4(L)NO](PF6)3(L = benzoimidazole or 1-methylimidazole in trans position to NO) are presented. 1H-n.m.r. spectroscopy data indicate that the benzoimidazole and 1-methylimidazole ligands are coordinated to RuII through carbon and nitrogen, respectively. The nitrosyl stretching frequencies [(NO) > 1900 cm–1] suggest that the coordinated nitrosyl has substantial NO+ character. The complexes undergo a single-electron reduction (E 0–0.245 versus NHE), which involves the coordinated nitrosyl. Dissociation of NO in the reduced species is facilitated by the 1-methylimidazole ligand, which is not observed for the benzoimidazole species. The complex with 1-methylimidazole does not suffer hydroxide attack on the NO+, at least at pH values lower than 11.  相似文献   

8.
The reduction of the tetrachloroaurate (III) anion by L (L = PPh3, AsPh3, SbPh3) is quantitative in non-aqueous solution. The products are the gold(I)-complexes AuClL (L = AsPh3, SbPh3) and Au(PPh3)+2 together with the corresponding oxidation product LCl2. Kinetic studies show that the reactions are first order in AuCl?1 and L. In addition a path independent of PPh3 was found in dichloromethane. These data are interpreted in terms of mechanisms which involve reduction of AuCl?4 to AuCl?2 followed by equilibrium formation of AuClL for L = AsPh3 and SbPh3. For PPh3, the data are consistent with a chloride replacement by PPh3 to give AuCl3 PPh3, which is followed by a rapid reduction by a second mole of PPh3. Equilibrium formation constants are reported for several Au(I) complexes.  相似文献   

9.
The reaction of the mixed-metal carbonyl cluster anion [H2Ru3Ir(CO)12] with PPh3, PMe3, P(OPh)3, AsPh3 or SbPh3 leads to the mono-substituted derivatives [H2Ru3Ir(CO)11L] (L=PPh3 1, L=PMe3 2, L=P(OPh)3 3, L=AsPh3 4, L=SbPh3 5). Protonation of the anions 15 gives the neutral trihydrido derivatives H3Ru3Ir(CO)11L (L=PPh3 6, L=PMe3 7, L=P(OPh)3 8, L=AsPh3 9, L=SbPh3 10). All new tetranuclear clusters invariably show a tetrahedral arrangement of the Ru3Ir skeleton, as predicted for 60 e systems. The ligand L is coordinated to one of the ruthenium atoms, except in the case of L=PMe3 where two substitution isomers are observed. While the anionic isomers [H2Ru3Ir(CO)11(PMe3)] (2) could not be separated, the corresponding neutral isomers H3Ru3Ir(CO)11(PMe3) (7) could be resolved by thin-layer chromatography. In isomer 7a, the phosphine ligand is coordinated to one of the ruthenium atoms, whereas in isomer 7b the PMe3 ligand is bonded to the iridium atom. The molecular structures of 17b8 and 9 were confirmed by a single-crystal X-ray structure analysis.  相似文献   

10.
Summary Trans-[RhCl(CO)L2] (L = PPh3, AsPh3 or PCy3) react with AgBF4 in CH2Cl2 to give the novel species [Rh-(CO)L2]+ [BF4].nCH2Cl2 (n = 1/2 or 1 1/2) (1–3), which we believe to be stabilised by weak solvent interaction. The corresponding stibine compound cannot be isolated by the same process, instead [Rh(CO)2(SbPh3)3]+ [BF4] (7) is formed when the reaction is carried out in the presence of CO. When reactions designed to prepare [Rh(CO)L2]+ [BF4] are performed in the presence of CO, or [Rh(CO)L2]+ [BF4] complexes are reacted with CO, [Rh(CO)2L2]+ [BF4] (L = PPh3, AsPh3 or PCy3) (4–6) are formed. If Me2CO is used as solvent in the preparation of [Rh(CO)L2]+ [BF4] (L = PPh3 or AsPh3), then the products are the four-coordinate [Rh(CO)L2-(Me2CO)]+ [BF4] (8,9) species. The complexes have been characterised by i.r., 31P and 1H n.m.r. spectroscopy and elemental analyses.  相似文献   

11.
Summary Addition reactions of [MNCl4] (M = Os or Ru) with ligands L or L to give [MNCl4 · L] or [(MNCl4)2L]2– (L = pyridine, pyridine-N-oxide,iso-quinoline or DMSO; L = hexamethylenetetramine, pyrazine or dioxan) are described. With NCO, [OsNCl5] gives [OsN(NCO)5]2– but NCS gives a thionitrosyl complex, [Os(NS)(NCS)5]2–. Reactions of OsNCl3(AsPh3)2 with pyridine, 1,10-phenanthroline and tertiary phosphites and phosphinites have been studied, as have reactions of triphenylphosphine with OsOCl4 andtrans- [MO2Cl4]2– (M = Os or Ru). The nitrido-iodo complexes [OsNI4] and OsNI3, (SbPh3)2 are also reported.  相似文献   

12.
Summary A kinetic study of the regioselective homogeneous hydrogenation of quinoline (Q) to 1,2,3,4-tetrahydroquinoline (THQ) was carried out using the cationic complex [RuH(CO)(NCMe)2(PPh3)2]BF4 (1) as the precatalyst. The experimentally determined rate law wasr = {k 2 K 1/(1+K 1[H2])}[Ru0][H2]2, which becomesr = {k 2 K 1[Ru0]–[H2]2 at low hydrogen concentrations (k 2 K 1 = 28.5M –2 s–1 at 398 K). The corresponding activation parameters were found to be H = 42 + 6 kJ mol–1, S = – 115 ± 2JK–1mol–1 and G = 92 ± 8 kJ mol–1. Complex(1) was found to react with Q in CHCl3 under reflux to yield [RuH(CO)(NCMe)(N-Q)(PPh3)2]BF4 (2) which was also isolated from the hydrogenation runs. These experimental findings, together with the results ofab initio self-consistent-field molecular orbital calculations on the free organic molecules involved, are consistent with a mechanism involving a rapid and reversible partial hydrogenation of(2) to yield the corresponding dihydroquinoline (DHQ) species [RuH(CO)(NCMe)(DHQ)(PPh3)2]BF4 (4), followed by a rate-determining second hydrogenation of DHQ to yield [RuH(CO)(NCMe)(THQ)(PPh3)2]BF4 (3).  相似文献   

13.
Summary The reduction of nickel(II) halides with NaBH4 in the presence of different ligands, L=PPh3, AsPh3, SbPh3, has been studied. With a molar ratio L/Ni=3, new complexes NiX(SbPh3)3, X=Cl, Br, I, were obtained. With a molar ratio L/Ni=2, dimeric species [NiXL2]2, X=Cl, Br, I; L=PPh3, AsPh3, SbPh3, were isolated. They are unstable and decompose easily in the solid and rapidly in solution, so that pure samples were only identified for X=Cl, L=PPh3, AsPh3, SbPh3; X=Br, L=PPh3 and X=I, L=PPh3. With a molar ratio L/Ni=1, complexes [NiXL]n (probably polymeric) were obtained. They are very unstable and pure samples could only be isolated when X=Cl, L=PPh3. Impure substances containing variable amounts of decomposition products were obtained in all the remaining cases. The chemical and structural behaviour of these complexes is discussed.  相似文献   

14.
The work reports the unexpected reaction of diphenyldibromo antimonates (III) with PtCl2 and cis‐[PtCl2(PPh3)2]. The reaction gives triphenylstibine containing PtII complexes viz. cis‐[PtBr2(SbPh3)2] ( 1 ), trans‐[[PtBr(Ph)(SbPh3)2] ( 2 ), [NMe4][PtBr3(SbPh3)] ( 3 ), and cis‐[PtBr2(PPh3)(SbPh3)] ( 4 ). All the complexes were characterised by elemental analyses, IR, Raman, 195Pt NMR, FAB mass spectroscopy and X‐ray crystallography. A plausible mechanism via the phenyl migration is proposed for the formation of these complexes. The average Pt–Br distance in 1 is 2.456(2) Å, in 2 2.496 Å(trans to Ph) while in 3 it is 2.476 Å (trans to Sb) implying a comparable trans influence of Ph3Sb and Ph3P.  相似文献   

15.
Reaction of [(η-C7H7)Mo(CO)3][PF6] with certain Group V donor ligands afforded monosubstituted complexes [(η-C7H7)Mo(CO)2L][PF6] (L = P(OPh)3, PPh3, PPh2Me, PPhMe2, AsPh3, SbPh3). These were reduced by NaBH4 to the corresponding cycloheptatriene complexes (1-6-η-C7H8)Mo(CO)2L. In addition, the preparation of alkylcycloheptatriene complexes (1-6-η-C7H7R)Mo(CO)2L (R = Me, L = P(OPh)3, PPh3, PPh2Me; R = t-Bu, L = PPh3) is described. Spectroscopic properties, including 13C NMR, are reported.  相似文献   

16.
《Polyhedron》2000,19(28)
The reactions of ReO(OEt)Cl2L2, L=py, PPh3 or ReOCl3(Me2S)(OPPh3), with spirohydrophosphorane HP(OCMe2CMe2O)2 – abbreviated here as HPO – in toluene yield ReOCl2(PO)L complexes, L=py (1), PPh3 (2) and OPPh3 (3), respectively. The encountered bidentate phosphite pinacolato (OCMe2CMe2O)POCMe2CMe2O ligand (PO) is afforded by means of a spirophosphorane ring-opening reaction. All the pink–violet compounds 13 were characterised by NMR, IR and UV–Vis spectroscopies. The structure of trans-ReOCl2(PO)PPh3 (2) was determined crystallographically. The rhenium atom adopts distorted octahedral geometry with a trans multiply bonded terminal oxo ligand (Re–Ot=1.698(2) Å) trans to pinacolate oxygen (Re–O=1.880(2) Å). Two phosphorus atoms as well as two chlorides are mutually in a trans arrangement.  相似文献   

17.
Cai  Ya  Ma  Mei-Hua  Zheng  He-Gen  Xin  Xin-Quan  Usman  Anwar  Fun  Hoong-Kun  Song  Ying-Lin 《Transition Metal Chemistry》2003,28(2):137-141
A new cluster compound WCu3OS3(PPh3)3{S2P(OPr i 2)2}, prepared by reacting (NH4)2WOS3 with PPh3 and [CuS2P(OPr i 2)2], was characterized by elemental analysis, i.r. spectroscopy and X-ray crystallography. The structure consists of a tetra-nuclear distorted tetragonal core with one W atom coordinated by one O atom, three 3-S and three Cu atoms. Anisotropic refinement for all nonhydrogen atoms yielded the value R = 0.0718. Investigation of third-order optical nonlinearity using the Z-scan technique shows that the cluster compound exhibits good nonlinear properties with 2 values of 1.23 × 10–10 m w–1 and n 2 values of –9.3 × 10–18 m2 w–1 respectively.  相似文献   

18.
The kinetics of acid-catalyzed hydrolysis of the [Co(en)(L)2(O2CO)]+ ion (L = imidazole, 1-methylimidazole, 2-methylimidazole) follows the rate law –d[complex]/dt = {k 1 K[H+]/(1 + K[H+])}[complex] (15–30 or 25–40 °C, [H+] = 0.1–1.0 M and I = 1.0 M (NaClO4)). The reaction course consists of a rapid pre-equilibrium protonation, followed by a rate determining chelate ring opening process and subsequent fast release of the one-end bound carbonato ligand. Kinetic parameters, k 1 and K, at 25 °C are 5.5 × 10–2 s–1, 0.44 M–1 (ImH), 5.1 × 10–2 s–1, 0.54 M–1 (1-Meim) and 3.8 × 10–3 s–1, 0.74 M–1 (2-MeimH) respectively, and activation parameters for k 1 are H1 = 43.7 ± 8.9 kJ mol–1, S1 = –123 ± 30 J mol–1 deg–1 (ImH), H1 = 43.1 ± 0.3 kJ mol–1, S1 = –125 ± 1 J mol–1 deg–1 (1-Meim) and H1 = 64.2 ± 4.3 kJ mol–1, S1 = –77 ± 14 J mol–1 deg–1 (2-MeimH). The results are compared with those for similar cobalt(III) complexes.  相似文献   

19.
P(OMe3)3 reacts with RuCl3 · 3H2O to produce the complex trans-[Ru{P(OMe)3}4Cl2] from which the complexes trans-[Ru{P(OMe)3}4S2]2+ and cis-[Ru{P(OMe)3}2S4]2+ (S = Solvent) can be prepared by solvation in neutral and acidic solution, respectively. The aquation takes place with a specific rate of 1.0 × 10–2 min–1 (pH = 3.0) and 5.4 × 10–3 min–1 (pH 7.0) The trans-[Ru{P(OMe)3}4Cl2] complex has been characterized by elemental analysis; electronic spectra [max = 408 nm] ( = 1.7 × 102 M–1 cm–1), max = 250 nm ( = 3.5 × 103 M–1 cm–1) and a shoulder at = 280 nm ( 8.3 × 102 M–1 cm–1)]; cyclic voltametry ( = 0.75 V versus s.c.e.); HPLC (t R = 5.7 min); and 31P-n.m.r. ( = 131 p.p.m.). In acidic solutions the 31P-n.m.r. variations point to a reaction intermediate, characterized as the complex ion trans-[Ru{P(OMe)3}4S2]2+ ( = 136 p.p.m.) followed by the formation of the proposed product, cis-[Ru{P(OMe)3}2S4]2+ ( = 145 p.p.m.). For this same complex, at pH = 7.0, the results show the formation of the trans-[Ru{P(OMe)3}4S2]2+ ( = 136 p.p.m.). The HPLC results for the trans-[Ru{P(OMe)3}4Cl2] complex show that the different species are present at different pH values. In acidic media a less polar species (t R = 4.3 min) compared with the starting material (t R = 5.7 min) was formed. At neutral pH (t R = 4.6 min) the species generated were not modified, however they exhibited different properties from the species obtained at a lower pH.  相似文献   

20.
Reactions of 2-(arylazo)aniline, HL-NH2 [H represents the dissociable protons upon complexation and HL-NH2 is p-RC6H4NNC6H4-NH2; R = H for HL1-NH2; CH3 for HL2-NH2 and Cl for HL3-NH2] with Ru(H)(CO)(PPh3)3Cl and Ru(CO)3(PPh3)2 afforded products of compositions [(HL-NH)Ru(CO)Cl(PPh3)2] and [(L-NH)Ru(PPh3)2(CO)], respectively. All the complexes were characterized unequivocally. The X-ray structures of the complexes 4c and 5c have been determined. The cyclic volatammograms exhibited one reversible oxidative response in the range of 0.56–0.16 V versus SCE for [(L-NH)Ru(PPh3)2(CO)] and a quasi reversible oxidative response within 0.56–0.70 V versus SCE for [(HL-NH)Ru(CO)Cl(PPh3)2]. The conversion of ketones to corresponding alcohols has been studied in presence of newly synthesized ruthenium complexes.  相似文献   

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