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1.
Summary [RuCl(NO)2(dppbp)]BF4 (dppbp=(Ph2PCH2)2–) has been synthesised from [RuCl(NO)2(PPh3)2]BF4 and dppbp and characterised in the solid state by a single crystal x-ray determination. The [RuCl(NO)2(dppbp)]+ cation, has an approximately square-pyramidal co-ordination geometry with the dppbp ligand occupyingtrans-basal sites. The nitrosyl ligand in the apical site is partially bent [Ru–N–O=156.2(7)0] and the nitrosyl ligand in the basal side is essentially linear [Ru–N–O=172.5(6)0]. The1Hn.m.r. spectrum of [RuCl(NO)2(dppbp)]BF4 in solution has provided some insight into the dynamics of the complex in solution.  相似文献   

2.
Summary Carbon monoxide reacts with the cationic dinitrosyls [M(NO)2(PPh3)2]+ (M = Rh, Ir) under ambient conditions to produce CO2, N2O and the tricarbonyl cations, (M(CO)3(PPh3)2]+. The cationic tricarbonyls are reconverted into the dinitrosyl reactants on treatment with NO atca. 80°. The Ru(NO)2(PPh3)2 and Os(NO)2(PPh3)2 complexes react similarly with CO but under more vigorous conditions whereas the corresponding dinitrosyls of cobalt and iron do not undergo this reaction under similar conditions. A pentacoordinate dinitrosyl intermediate [M(NO)2(CO)(PPh3)2]n+ is proposed and a mechanism for the catalytic oxidation of CO by NO is presented. Studies of Pt(N2O2)PPh3)2 establish that a dinitrogcn dioxide intermediate, produced by the coupling of two nitrosyl ligands, is reasonable.  相似文献   

3.
[OsCl(CO)2(CNR)(PPh3)2]+ (R = p-tolyl) reacts with OMe? to give OsCl(CO2Me)(CO)(CNR)(PPh3)2 but reaction with SH? produces the π-bound p-tolylisothiocyanate complex, Os(η2-SCNR)(CO)2(PPh3)2, which can be protonated or methylated at N to yield complexes containing bidentate thiocarboxamido-ligands.  相似文献   

4.
Reaction of OsCl(NO)(PPh3)3 with IC(C2)CO2 Et gives a purple species which, on treatment with HCl, affords OsCl2(N2)[N(OH)CHCO2Et] (PPh3)2. This aldoxime-dinitrogen complex, structurally characterised by X-ray crystallography, is thought to arise from a coupling reaction of the diazoalkane with the nitrosyl ligand in the substrate. Dehydrating agents convert the osmium-bound aldoxime to a nitrile ligand.  相似文献   

5.
(PPh4)2[OsCl3(NO) (SnCl3)2]; Preparation, I.R. Spectrum, and Crystal Structure (P(C6H5)4)2[OsCl3(NO)(SnCl3)2] yields from the reaction of OsCl3(NO) with PPh4-[SnCl3] in dichloro methane forming red crystals. The complex crystallizes monoclinic in the space group C2/c with four formula units per unit cell. The crystal structure was determined by aid of X-ray diffraction data (2261 independent, observed reflexions, R = 4.9%). The cell parameters are a = 1369, b = 1989, c = 2088 pm, β = 99.54°. The structure consists of tetraphenyl phosphonium cations and [OsCl3(NO)(SnCl3)2]2?-anions. In the anion the osmium is coordinated octahedrally by three chlorine atoms (mean bond length r Os? Cl 238 pm), two SnCl3 groups in transposition to each other (r Os? Sn 265 pm) and the N-atom of the covalently bonded nitrosyl ligand (r Os? N 173 pm). The i.r. spectrum of the anion is reported and assigned.  相似文献   

6.
The nickel nitrosyl compound [BseMe]Ni(PPh3)(NO) has been synthesized by the reaction of Ni(PPh3)2(NO)Br with potassium bis(2-seleno-1-methylimidazolyl)hydroborate, [BseMe]K. X-ray diffraction studies demonstrate that (i) the B–H group of the [BseMe] ligand interacts with the nickel center and (ii) the nitrosyl ligand is bent, with Ni–N–O bond angles of 149.1(3)° and 153.1(3)° for the two crystallographically independent molecules. The bent nature of the nitrosyl ligand in [BseMe]Ni(PPh3)(NO) is in marked contrast to the linearity observed for the tris(2-seleno-1-mesitylimidazolyl)hydroborato counterpart [TseMes]NiNO (180.0°). Density functional theory geometry optimization calculations demonstrate that the Ni?H–B interaction is not responsible for causing the nitrosyl ligand to bend, but rather the difference between [TseMes]NiNO and [BseMe]Ni(PPh3)(NO) is due to the [TseMes] ligand allowing the former molecule to adopt a structure with C3 symmetry. In contrast, the steric and electronic asymmetry of [Se2P] donor array of the [BseMe] and PPh3 ligand combination prevents [BseMe]Ni(PPh3)(NO) from having C3 symmetry and the nitrosyl ligand bends to stabilize the occupied M–N σ antibonding orbital.  相似文献   

7.
A high-yield synthesis of trans-RuCl2(CS)(H2O)(PPh3)2 from RuCl2(PPh3)3 and CS2 is described. The coordinated water molecule is labile, and introduction of CNR (R  p-toyl or p-chlorophenyl) leads to yellow trans-RuCl2(CS)(CNR)(PPh3)2, which isomerises thermally to colourless cis-RuCl2(CS)(CNR)(PPh3)2. Reaction of AgClO4 with cis-RuCl2(CS)(CNR)(PPh3)2 gives [RuCl(CS)(CNR)(H2O)(PPh3)2]+, from which [RuCl(CS)(CO)(CNR)(PPh3)2]+ and [RuCl(CS)(CNR)2(PPh3)2]+ are derived. Reaction of trans-RuCl2(CS)(H2O)(PPh3)2 with sodium formate gives Ru(η2-O2CH)Cl(CS)(PPh3)2, which undergoes decarboxylation in the presence of (PPh3) to give RuHCl(CS)(PPh3)3. Ru(η2-O2CH)H(CS)(PPh3)2 and Ru(η2-O2CMe)-H(CS)(PPh3)2 are also described.  相似文献   

8.
Thiocomplexes of Molybdenum. Crystal Structure of a Mixed Single Crystal (PPh3Me)2[Mo2Br6(NO)4]/(PPh3Me)2[Mo2Br6S2(NO)2] The reactions of (PPh4)2MoS4 with MoBr4 and MoBr2(NO)2 resp. lead to the binuclear complexes (PPh4)2[S2MoS2MoBr3(SMe2)] and (PPh4)[S2MoS2MoBr2(NO)2], in which the molybdenum atoms are linked by sulfido bridges. The preparation of (PPh3Me)2S6 and (AsPh4)2S7 from Na2S4 and PPh3MeBr, and AsPh4Cl, respectively, in ethanol solution is described. Disulfido briges are a feature of (AsPh4)2[Mo2Br6(S2)2(SMe2)2], which is obtained from MoBr4(SMe2)2 and (AsPh4)2S7. Mixed single crystals containing 2/3 (PPh3Me)2[Mo2Br6(NO)4] and 1/3 (PPh3Me)2[Mo2Br6S2(NO)2] are formed in the reaction of MoBr2(NO)2 with (PPh3Me)2S6, as shown by X-ray single crystal structure determination. The compound crystallizes monoclinic in the space group C2/c (Internat. Tab. Nr. 15) with four formula units per unit cell (2351 independent observed reflexions, Rw = 0.037). The cell parameters are a = 1603 pm, b = 1549 pm, c = 1863 pm; β = 92.2°. The complexes consist of PPh3Me cations and the dimeric anions [Mo2Br6(NO)4]2? and [Mo2Br6S2(NO)2]2? which occur in the ratio 2:1. In these the molybdenum atoms are connected via MoBr2Mo bridges of slightly different lengths (Mo? Br 265 pm and 267 pm) forming a controsymmetric double octahedron. All molybdenum atoms have two terminal bromo ligands with Mo? Br bond lengths of 258 pm and 260 pm; in the [Mo2Br6(NO)4]2? ion each molybdenum has two covalently bonded nitrosyl groups on cis-position with Mo? N bond lengths of 183 pm. In the [Mo2Br6S2(NO)2]2? ion one of the two nitrosyl groups at each metal atom is substituted by a terminal sulfido ligand with a Mo? S bond length of 240 pm. The i.r. spectra are reported.  相似文献   

9.
Mono- and Binuclear Dinitrosyl Complexes of Molybdenum and Tungsten. Crystal Structures of (PPh3Me)2[WCl4(NO)2], (PPh3Me)2[MoCl3(NO)2]2, and (PPh3Me)2[WCl3(NO)2]2 The complexes (PPh3Me)2[MCl4(NO)2] (M = Mo, W), and (PPh3Me)2[MCl3(NO)2]2, respectively, are prepared by reactions of the polymeric compounds MCl2(NO)2 with triphenylmethylphosphonium chloride in CH2Cl2, forming green crystals. According to the IR spectra the nitrosyl groups are in cis-position in all cases. The tungsten compounds as well as (PPh3Me)2[MoCl3(NO)2]2 were characterized by structure determinations with X-ray methods. (PPh3Me)2[WCl4(NO)2]: space group C2/c, Z = 4. a = 1874, b = 1046, c = 2263 pm, β = 119.99°. Structure determination with 3492 independent reflexions, R = 0.057. The compound consists of PPh3Me ions, and anions [WCl4(NO)2]2? with the nitrosyl groups in cis-position (symmetry C2v). (PPh3Me)2[WCl3(NO)2]2: Space group C2/c, Z = 4. Structure determination with 2947 independent reflexions, R = 0.059. (PPH3Me)2[MoCl3(NO)2]2: Space group P1 , Z = 1. a = 989, b = 1134, c = 1186 pm; α = 63.25°, β = 80.69°, γ = 69.94°. Structure determination with 3326 independent reflexions, R = 0.046. The compounds consist of PPh3Me ions, and centrosymmetric anions [MCl3(NO)2]22?, in which the metal atoms are associated via MCl2M bridges of slightly different lengths. One of the NO groups is in an axial position, the other one in equatorial position (symmetry C2h).  相似文献   

10.
The crystal and molecular structure of [Re(NO)2.09Br1.91(PPh3)2] and DFT studies of [Re(NO)2Br2(PPh3)2] are reported. The linearly bonded nitrosyl ligands adopt cis geometry, and two bulky triphenylphosphine molecules occupy axial positions of a distorted octahedral coordination sphere. The cis-nitrosyl grouping with respect to PPh3 molecules (π-acid ligands) is the result of the electronic influence of the multiply bonded ligand, which forces the metal nonbonding d electrons to lie in the plane perpendicular to the M–NO bond axis.  相似文献   

11.

In line with our investigations of rhenium nitrosyl complexes, we have studied the reaction of [ReCl3(NO)(OPPh3)(PPh3)] with pyridine. The [ReCl2(NO)(py)3] complex obtained in this reaction has been characterised by IR, electronic spectra and magnetochemical measurements; ligand field parameters and the electronic structure have been determined. The crystal and molecular structure of [ReCl2(NO)(py)3] has been solved by the heavy atom method. Crystals of [ReCl2(NO)(py)3] contain distorted octahedral molecules with the pyridine ligands in the mer-arrangement. The nitrosyl group is coordinated linearly to the rhenium atom as NO+.  相似文献   

12.
Perfluorocarboxylic acids (RFCOOH) (RF = CF3,C2F5 and (for Rh) C6F5) react with the species [M(NO)2(PPh3)2] (M = Ru, Os) and [M′(NO)(PPh3)3] (M′ = Rh, Ir) to yield new nitrosyl complexes [Ru(OCORF)3(NO)(PPh3)2], [OsH(OCORF)2(NO)(PPh3)2], [Os(OCORF)(NO)2(PPh3)2][OCORF], [Ir(OCORF)(NO)(PPh3)2][OCORF] and [Rh(OCORF)2(NO)(PPh3)2].  相似文献   

13.
Synthesis, Structures, and EPR-Spectra of the Rhenium(II) Nitrosyl Complexes [Re(NO)Cl2(PPh3)(OPPh3)(OReO3)], [Re(NO)Cl2(OPPh3)2(OReO3)], and [Re(NO)Cl2(OPPh3)3](ReO4) The paramagnetic rhenium(II) nitrosyl complexes [Re(NO)Cl2(PPh3)(OPPh3)(OReO3)], [Re(NO)Cl2(OPPh3)2 · (OReO3)], and [Re(NO)Cl2(OPPh3)3](ReO4) are formed during the reaction of [ReOCl3(PPh3)2] with NO gas in CH2Cl2/EtOH. These and two other ReII complexes with 5 d5 ”︁low-spin”︁”︁-configuration can be observed during the reaction EPR spectroscopically. Crystal structure analysis shows linear coordinated NO ligands (Re–N–O-angles between 171.9 and 177.3°). Three OPPh3 ligands are meridionally coordinated in the final product of the reaction, [Re(NO)Cl2(OPPh3)3][ReO4] (monoclinic, P21/c, a = 13.47(1), b = 17.56(1), c = 24.69(2) Å, β = 95.12(4)°, Z = 4). [Re(NO)Cl2(PPh3)(OPPh3)(OReO3)] (triclinic P 1, a = 10.561(6), b = 11.770(4), c = 18.483(8) Å, α = 77.29(3), β = 73.53(3), γ = 64.70(4)°, Z = 2) and [Re(NO)Cl2 (OPPh3)2(OReO3)] (monoclinic P21/c, a = 10.652(1), b = 31.638(4), c = 11.886(1) Å, β = 115.59(1)°), Z = 4) can be isolated at shorter reaction times besides the complexes [Re(NO)Cl3(Ph3P)2], [Re(NO)Cl3(Ph3P) · (Ph3PO)], and [ReCl4(Ph3P)2].  相似文献   

14.
Reaction of 2-(phenylazo)pyridine (pap) with [Ru(PPh3)3X2] (X = Cl, Br) in dichloromethane solution affords [Ru(PPh3)2(pap)X2]. These diamagnetic complexes exhibit a weakdd transition and two intense MLCT transitions in the visible region. In dichloromethane solution they display a one-electron reduction of pap near − 0.90 V vs SCE and a reversible ruthenium(II)-ruthenium(III) oxidation near 0.70 V vs SCE. The [RuIII(PPh3)2(pap)Cl2]+ complex cation, generated by coulometric oxidation of [Ru(PPh3)2(pap)Cl2], shows two intense LMCT transitions in the visible region. It oxidizes N,N-dimethylaniline and [RuII(bpy)2Cl2] (bpy = 2,2′-bipyridine) to produce N,N,N′,N′-tetramethylbenzidine and [RuIII(bpy)2Cl2]+ respectively. Reaction of [Ru(PPh3)2(pap)X2] with Ag+ in ethanol produces [Ru(PPh3)2(pap)(EtOH)2]2+ which upon further reaction with L (L = pap, bpy, acetylacetonate ion(acac) and oxalate ion (ox2−)) gives complexes of type [Ru(PPh3)2(pap)(L)]n+ (n = 0, 1, 2). All these diamagnetic complexes show a weakdd transition and several intense MLCT transitions in the visible region. The ruthenium(II)-ruthenium(III) oxidation potential decreases in the order (of L): pap > bpy > acac > ox2−. Reductions of the coordinated pap and bpy are also observed.  相似文献   

15.
Mixed-ligand hydride ReH2(NO)L(PPh3)2 complexes [L=P(OEt)3 or PPh(OEt)2] were prepared by allowing the ReH2(NO)(PPh3)3 species to react with an excess of phosphite. Treatment of ReH2(NO)L(PPh3)2 hydrides with an equimolar amount of aryldiazonium cations ArN2+ gives the mono-aryldiazene [ReH(ArNNH)(NO)L(PPh3)2]BPh4 complexes (Ar=C6H5, 4-CH3C6H4), while treatment with an excess of ArN2+ yields bis(aryldiazene) [Re(ArNNH)2(NO)L(PPh3)2](BPh4)2 derivatives. Binuclear [{ReH(NO)L(PPh3)2}2(μ-HNNArArNNH)](BPh4)2 and [{Re(4-CH3C6H4NNH)(NO)L(PPh3)2}2(μ-HNNArArNNH)](BPh4)4 complexes (ArAr=4,4′-C6H4C6H4, 4,4′-C6H4CH2C6H4) were also prepared. The reaction of the triphenylphosphine ReH2(NO)(PPh3)3 complex with aryldiazonium cations was studied and led exclusively to mono-aryldiazene [ReH(ArNNH)(NO)(PPh3)3]BPh4 and [{ReH(NO)(PPh3)3}2(μ-HNNArArNNH)](BPh4)2 derivatives. The complexes were characterised spectroscopically (IR, NMR) using the 15N-labelled derivatives. The aryldiazenido [ReH(C6H5N2){PPh(OEt)2}4]BPh4 complex was prepared by allowing trihydride ReH3[PPh(OEt)2]4 to react with phenyldiazonium tetrafluoroborate. A reaction path involving the aryldiazene [ReH2(C6H5NNH){PPh(OEt)2}4]+ intermediate was also proposed.  相似文献   

16.
Summary The synthesis and characterisation of products obtained by the interaction between [Ir(NO)(MeCN)2(PPh3)2]2+ and 2-aminophenol derivatives are reported. Tetracoordinate d8complexes of the type Ir(NO)(2-ap)(PPh3) and pentacoordinate d complexes6of the type [Ir(2-ap)(PPh3)3]+ where 2-ap=2-aminophenol, 2-amino-4-nitrophenol, 2-amino-5-methylphenol, 2-3-aminonaphthol and 2-amino-4-methylphenol are obtained. The Ir(NO)(PPh3)3 complex is always present as a byproduct. Physical properties, i.r. spectra and conductivity data of the complexes are tabulated. Reaction schemes for the formation of the three complexes are proposed and discussed.  相似文献   

17.
Treatment of a THF solution of trans-[ReCl(N2)(dppe)2] (dppe = Ph2PCH2CH2PPh2) with NO, in the presence of Tl[BF4], forms trans-[Re(NO)2(dppe)2][BF4], a rare formal 20-electron d8-rhenium nitrosyl complex which, by reaction with HX (X = BF4, Cl or HSO4), gives trans-[ReF(NO)(dppe)2][BF4] (2) (the X-ray structure of which is reported) or trans-[ReX(NO)(dppe)2]X (3, X = Cl or HSO4), respectively, as well as nitrous oxide.  相似文献   

18.
Reactions of the ruthenium complexes [RuH(CO)Cl(PPh3)3] and [RuCl2(PPh3)3] with hetero-difunctional S,N-donor ligands 2-mercapto-5-methyl-1,3,5-thiadiazole (HL1), 2-mercapto-4-methyl-5-thiazoleacetic acid (HL2), and 2-mercaptobenzothiazole (HL3) have been investigated. Neutral complexes [RuCl(CO)(PPh3)2(HL1)] (1), [RuCl(CO)(PPh3)2(HL2)] (2), [RuCl(CO)(PPh3)2(HL3)] (3), [Ru(PPh3)2(HL1)2] (4), [RuCl(PPh3)3(HL2)] (5), and [RuCl(PPh3)3(HL3)] (6) imparting κ2-S,N-bonded ligands have been isolated from these reactions. Complexes 1 and 4 reacted with diphenyl-2-pyridylphosphine (PPh2Py) to give neutral κ1-P bonded complexes [RuCl(CO)(κ1-P-PPh2Py)2(HL1)] (7), and [Ru(κ1-P-PPh2Py)2(HL1)2] (8). Complexes 1-8 have been characterized by analytical, spectral (IR, NMR, and electronic absorption) and electrochemical studies. Molecular structures of 1, 2, 4, and 7 have been determined crystallographically. Crystal structure determination revealed coordination of the mercapto-thiadiazole ligands (HL1-HL3) to ruthenium as κ2-N,S-thiolates and presence of rare intermolecular S-S weak bonding interaction in complex 1.  相似文献   

19.
The reaction of equimolar amounts of [Co(CO)3(NO)] and [PPN]CN, PPN+ = (PPh3)2N+, in THF at room temperature resulted in ligand substitution of a carbonyl towards the cyanido ligand presumably affording the complex salt PPN[Co(CO)2(NO)(CN)] as a reactive intermediate species which could not be isolated. Applying the synthetic protocol using the nitrosyl carbonyl in excess, the title reaction afforded unexpectedly the novel complex salt PPN[Co2(μ-CN)(CO)4(NO)2] ( 1 ) in high yield. Because of many disorder phenomena in crystals of 1 the corresponding NBu4+ salt of 1 has been prepared and the molecular structure of the dinuclear metal core in NnBu4[Co2(μ-CN)(CO)4(NO)2] ( 2 ) was determined by X-ray crystal diffraction in a more satisfactory manner. In contrast to the former result, the reaction of [PPN]SCN with [Co(CO)3(NO)] yielded the mononuclear complex salt PPN[Co(CO)2(NO)(SCN-κN)] ( 3 ) in good yield whose molecular structure in the solid was even determined and its composition additionally confirmed by spectroscopic means.  相似文献   

20.
[OS(η2-CS2Me)(CO)2(PPH3)2]+ and [Ir(η2-CS2Me)Cl(CO)(PPh3)2)+ react with NaBH4 giving OsH(CS2Me)(CO)2(PPh3)2 and IrH(CS2Me)Cl(CO)(PPh3)2 respectively; These compounds contain mutually cis hydride and η1-dithiomethylester ligands and upon heating undergo 1,2-elimination of MeSH producing Os(CS)(CO)2(PPh3)2 and IrCl(CS)(PPh3)2.  相似文献   

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