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1.
The ability of organoiridium derivatives of catalyzing oligomerization and polymerization of terminal alkynes is markedly influenced by the nature of non-participative ligands coordinated to the metal. The dimeric species [Ir(cod)Cl]2 and [Ir(cod)(OMe)]2 (cod = 1,5-cyclooctadiene) as well as the phosphine complexes HIr(cod)(PR3)2 (PR= PPh3, P(p-MeOC6H4)3, P(o-MeOC6H4)Ph2, PCyPh2) catalyze the polymerization reaction, whereas the diphosphine derivatives HIr(cod)(P-P) (P-P = Ph2P(CH2)nPPh2 (n = 1-4), o-C6H4(PPh2)2) promote the regioselective formation of 1,2,4-trisubstituted benzenes. On the other hand, the iridium complexes with nitrogen chelating ligands Ir(cod)(N-N)X and Ir(hd)(N-N)X (hd = 1,5-hexadiene; N-N = 1,10-phenanthroline and substituted derivatives; X = halogen) catalyze alkynes polymerization. In most cases one catalytic reaction predominates over the other possible routes, so that polymerization often takes place in the absence of oligomerization side reactions, and conversely cyclotrimerization is rarely accompanied by formation of either polyene or dimers.  相似文献   

2.
The photolytic CO-substitution reaction of the organoiron thiocarboxylate complexes CpFe(CO)2SCOR (R=CH3, 2-CH3C6H4, 2-NO2C6H4, 4-NO2C6H4, 3,5-(NO2)2C6H3) with diphosphines (Ph2P(CH2)nPPh2) [n=1 (dppm), n=2 (dppe), n=3 (dpppr), n=4 (dppb), n=5 (dppp), n=6 (dpph)] at room temperature using 1:2 (metal-ligand) molar ratio afforded exclusively the disubstituted complexes CpFe(Ph2P(CH2)nPPh2)SCOR when n=1, 2 and 3 and the monosubstituted analogs CpFe(CO)(Ph2P(CH2)nPPh2)SCOR when n=4, 5 and 6. This reaction was found to be strongly influenced by the backbone length of the diphosphine ligand, the nature of the R group of the thiocarboxylate moiety and the metal-ligand molar ratios. The crystal structure of CpFe(dppm)SCO(3,5-(NO2)2C6H3) was determined.  相似文献   

3.
Reaction of the potassium salts of (EtO)2P(O)CH2C6H4-4-(NHC(S)NHP(S)(OiPr)2) (HLI), (CH2NHC(S)NHP(S)(OiPr)2)2 (H2LII) or cyclam(C(S)NHP(S)(OiPr)2)4 (H4LIII) with [Cu(PPh3)3I] or a mixture of CuI and Ph2P(CH2)1-3PPh2 or Ph2P(C5H4FeC5H4)PPh2 in aqueous EtOH/CH2Cl2 leads to [Cu(PPh3)LI] (1), [Cu2(Ph2PCH2PPh2)2LII] (2), [Cu{Ph2P(CH2)2PPh2}LI] (3), [Cu{Ph2P(CH2)3PPh2}LI] (4), [Cu{Ph2P(C5H4FeC5H4)PPh2}LI] (5), [Cu2(PPh3)2LII] (6), [Cu2(Ph2PCH2PPh2)LII] (7), [Cu2{Ph2P(CH2)2PPh2}2LII] (8), [Cu2{Ph2P(CH2)3PPh2}2LII] (9), [Cu2{Ph2P(C5H4FeC5H4)PPh2}2LII] (10), [Cu8(Ph2PCH2PPh2)8LIIII4] (11), [Cu4{Ph2P(CH2)2PPh2}4LIII] (12), [Cu4{Ph2P(CH2)3PPh2}4LIII] (13) or [Cu4{Ph2P(C5H4FeC5H4)PPh2}4LIII] (14) complexes. The structures of these compounds were investigated by IR, 1H, 31P{1H} NMR spectroscopy; their compositions were examined by microanalysis. The luminescent properties of the complexes 1-14 in the solid state are reported.  相似文献   

4.
The kinetics of the reactions between anhydrous HCl and trans-[MoL(CNPh)(Ph2PCH2CH2PPh2)2] (L=CO, N2 or H2) have been studied in thf at 25.0 °C. When L=CO, the product is [MoH(CO)(CNPh)(Ph2PCH2CH2PPh2)2]+, and when L=H2 or N2 the product is trans-[MoCl(CNHPh)(Ph2PCH2CH2PPh2)2]. Using stopped-flow spectrophotometry reveals that the protonation chemistry of trans-[MoL(CNPh)(Ph2PCH2CH2PPh2)2] is complicated. It is proposed that in all cases protonation occurs initially at the nitrogen atom of the isonitrile ligand to form trans-[MoL(CNHPh)(Ph2PCH2CH2PPh2)2]+. Only when L=N2 is this single protonation sufficient to labilise L to dissociation, and subsequent binding of Cl gives trans-[MoCl(CNHPh)(Ph2PCH2CH2PPh2)2]. At high concentrations of HCl a second protonation occurs which inhibits the substitution. It is proposed that this second proton binds to the dinitrogen ligand. When L=CO or H2, a second protonation is also observed but in these cases the second protonation is proposed to occur at the carbon atom of the aminocarbyne ligand, generating trans-[MoL(CHNHPh)(Ph2PCH2CH2PPh2)2]2+. Addition of the second proton labilises the trans-H2 to dissociation, and subsequent rapid binding of Cl and dissociation of a proton yields the product trans-[MoCl(CNHPh)(Ph2PCH2CH2PPh2)2]. Dissociation of L=CO does not occur from trans-[Mo(CO)(CHNHPh)(Ph2PCH2CH2PPh2)2]2+, but rather migration of the proton from carbon to molybdenum, and dissociation of the other proton produces [MoH(CO)(CNPh)(Ph2PCH2CH2PPh2)2]+.  相似文献   

5.
Reaction of diphosphine complexes [IrCl{(C6F5)2P(CH2)2P(C6F5)2}]2 (I) and [IrCl(dppe)]2 (II) with coordinating solvents (acetonitrile, acetone, DMSO) leads to several square-planar complexes of the type [IrCl(diphosphine)(solvent)] which are stable only in solution ([IrCl{(C6F5)2P(CH2)2P(C6F5)2}(NCCH3)] (III) and [IrCl{(C6F5)2P(CH2)2P(C6F5)2}(acetone)], IV) and/or can be detected only under APCI-MS/MS conditions ([IrCl(dppe)(solvent)]). When III is allowed to react with CO for at least 30 min, the unusual five coordinated trans-dicarbonyl complex [IrCl{(C6F5)2P(CH2)2P(C6F5)2}(CO)2] (Vb) is formed, as characterized by 1H and 31P NMR, FT-IR, TGA and APCI-MS/MS.A new and stable square-planar complex [Ir(OCH3)(cod)(PClPh2)] (IX) was also synthesized. Its APCI-MS/MS spectrum is simple and unique as it shows exclusively the loss of a neutral C3H2 species. Along with the APCI-MS and APCI-MS/MS analyses, whenever it was possible all complexes were also characterized by 1H and 31P NMR spectroscopy.  相似文献   

6.
[Rh2(μ-Cl)2(cod)2] reacts with Ph2PCH2CH2OMe (PC2O), Ph2P(CH2)3NMe2 (PC3N), PBunPh2 or PPh3 to give [Rh(cod)L2]Cl (L = PC2O, PC3N, PBunPh2, PPh3). In the presence of hydrogen, [Rh(cod)L2]Cl is converted to [RhClH2L3]. In contrast, [Rh(cod)(PC2O)2]BPh4 reacts with H2 to give [RhH2(PC2O)2S2]BPh4 (S = solvent). With Ph2PCH2CH2NMe2 (PC2N) or Ph2PCH2CH2SMe (PC2S), [Rh2(μ-Cl)2(cod)2] reacts to form the chelate complexes cis- [Rh(PC2N)2]+ or cis-[Rh(PC2S)2]+, neither of which reacts with hydrogen under ambient conditions. The products of the reactions are characterized in situ by 31P1H NMR spectroscopy.  相似文献   

7.
Schiff base condensation of m-phenylenediamine with two equivalents of o-(diphenylphophino)benzaldehyde products the potentially tetradentate molecule 1,3-(Ph2P(o-C6H4)CHN)2C6H4 (1) in high yield. The reaction of 1 and [Cu(NCMe)4]BF4 affords the dinuclear complex [(1,3-(Ph2P(o-C6H4)CHN)2C6H4)2Cu2](BF4)2 (2) through coordination of the imino-phosphine groups. The structure of 2 has been determined by an X-ray diffraction study.  相似文献   

8.
《Inorganica chimica acta》2004,357(10):2818-2826
[{Rh(cod)Cl}2] (cod=1,5-cyclooctadiene) reacts with o-(diphenylphosphino)benzaldehyde (PPh2(o-C6H4CHO)) (Rh:P=1:1) in the presence of aromatic diamines or 8-aminoquinoline (NN) to give acylhydride [Rh(Cl)(H){PPh2(o-C6H4CO)}(NN)] species. The oxidative addition of PPh2(o-C6H4CHO) in the presence of (NN) and PPh3 gives cationic species [Rh(H){PPh2(o-C6H4CO)} (PPh3)(NN)]+ containing mutually trans phosphorus atoms. When (NN)=8-aminoquinoline, a mixture of two isomers is obtained. These isomers differ in the nitrogen cis to the hydride, amino or quinolinic. By using Rh:PPh2(o-C6H4CHO)=1:2 stoichiometric ratios, oxidative addition of one PPh2(o-C6H4CHO) and P-coordination of another PPh2(o-C6H4CHO) occurs. The aldehyde group undergoes then a condensation reaction with the coordinated amine to afford new PNN terdentate ligands, phosphine-amino-imine when (NN)=diamine or phosphine-diimine when (NN)=8-aminoquinoline. These reactions give selectively the corresponding complexes [Rh(H){PPh2(o-C6H4CO)}(PNN)]+ containing trans phosphorus atoms and the hydride cis to the new imino group. X-ray diffraction studies of the PNN complexes are reported.  相似文献   

9.
《Inorganica chimica acta》2006,359(9):2896-2909
[RuCl3(NO)(P–P)], [P–P = R2P(CH2)nPR2 (n = 1–3) and R2P(CH2)POR2, PR2–CHCH–PR2, R = Ph and (C6H11)2P-(CH2)2-P(C6H11)2] were obtained and characterized by 31P {1H} NMR, IR spectroscopies and cyclic voltammetry. The structures of fac-[RuCl3(NO)(P–P)], P–P = dppm (1), dppe (2), c-dppen (3) and dppp (4), mer-[RuCl3(NO)(dcpe)] (6a) and mer-[RuCl3(NO)(dppmO)] (7) have been determined by X-ray diffraction. Photochemical isomerization of fac- to mer-[RuCl3(NO)(P–P)] was observed under white light in a CH2Cl2 solution and in solid state. The isomerization processes were followed by IR and 31P {1H} spectra. The mer-[RuCl3(15NO)(dppb)] isomer was used for the definition of the phosphorus atoms in the structure of the complex in solution. The electrochemical study shows that the oxidation/reduction processes observed in these complexes are dependent on both the isomer (fac or mer) and the solvent. In CH2Cl2, the NO+ reduction potentials are less negative for the mer-isomers than for the fac ones, while in CH3CN solvent these potentials are, in general, very close for both isomers.  相似文献   

10.
《Inorganica chimica acta》2006,359(5):1549-1558
Reactions of Cp*RhCl2(PPh3) (1) with 1-alkyne and H2O in the presence of KPF6 generated alkenyl ketone complexes [Cp*Rh(CRCHCOCH2R)(PPh3)](PF6) (2) (R = Ph (a), C6H4p-Me (b), C6H4-p-COOMe (c), C6H4-p-NO2 (d)). A similar complex [Cp*Rh(CPhCHCOCH2Ph)(PMePh2)](PF6) (2e) was obtained by use of Cp*RhCl2(PMePh2). It was revealed by X-ray analyses of 2b, 2c and 2e that the complexes 2 consist of the five-membered ring structures bound by the carbon and oxygen atoms of the alkenyl ketone group. Similar reactions of Cp*IrCl2(PPh3) (6) or (C6Me6)RuCl2(PPh3) (7) proceeded with a cleavage of C–C triple bond of 1-alkyne without formation of an alkenyl ketone complex, affording the corresponding carbonyl complexes, [Cp*IrCl(PPh3)(CO)](PF6) (8) or [(C6Me6)RuCl(PPh3)(CO)](PF6) (9). The diphosphine complexes [(Cp*MCl2)2{μ-diphos}] (4: M = Rh, diphos = dppm,; 12a: M = Ir, diphos = dppm; 12b: M = Ir, diphos = dppb) gave a Cl-bridged rhodium complex [{Cp*Rh(μ-Cl)}2{μ-dppm}](PF6)2 (5), mono-carbonyl or dicarbonyl iridium complexes,[(Cp*IrCl2){μ-dppm}{Cp*IrCl(CO)}](PF6)(13a) or [{Cp*IrCl(CO)}2{μ-dppb}](PF6)2 (14b), respectively.  相似文献   

11.
In this paper it is reported the synthesis of the phosphonium salts [Ph2P(CH2)n(Ph)2PCH2COOMe]Br (n = 1 (1), 2 (2)) and [Ph2P(CH2COOMe)(CH2)n(Ph)2PCH2COOMe]Br2 (n = 3 (3)) derived from the reactions of the diphosphines dppm, dppe and dppp with methyl bromoacetate. By reaction of the monophosphonium salt of dppm and dppe with the strong base Na[N(SiMe3)2] the corresponding carbonyl stabilized ylides Ph2P(CH2)n(Ph)2PCHCOOMe (n = 1 (4), 2 (5)) were obtained. The Ph2P(CH2)2(Ph)2PCHCOOMe (5) ylide was reacted with Pd(II) and Pt(II) substrates. From these reactions were isolated exclusively complexes in which the ylide was chelated to the metal through the free phosphine group and the ylidic carbon atom. A further reaction of the Ph2P(CH2)2(Ph)2PCHCOOMe (5) ylide with 1.5 equiv. of Na[N(SiMe3)2] gives the bifunctionalized ketenylidene Ph2P(CH2)2(Ph)2PCCO (6) system. This cumulenic ylide reacts with Pt(II) complexes to form a chelated derivative in which IR and NMR spectra suggest the breaking of the CC bond of the -CCO group.  相似文献   

12.
《Inorganica chimica acta》2006,359(5):1650-1658
A series of nickel(II) and palladium(II) complexes containing one or two pentafluorophenyl ligands and the phosphino-amides o-Ph2PC6H4CONHR [R = iPr (a), Ph (b)] displaying different coordination modes have been synthesised. The chelating ability of these ligands and the influence of both coligands and the metal centre in their potential hemilabile behaviour have been explored. The crystal structure of (b) has been determined and reveals N–H⋯O intermolecular hydrogen bonding. Bis-pentafluorophenyl derivatives [M(C6F5)2(o-Ph2PC6H4CO-NHR)] [M = Ni; R = iPr (1a); R = Ph (1b); M = Pd; R = iPr (2a); R = Ph (2b)] in which (a) and (b) act as rigid P, O-chelating ligands were readily prepared from the labile precursors cis-[M(C6F5)2(PhCN)2]. X-ray structures of (1a), (1b) and (2a) have been established, allowing an interesting comparative structural discussion. Dinuclear [{Pd(C6F5)(tht)(μ-Cl)}2] reacted with (a) and (b) yielding the monopentafluorophenyl complexes [Pd(C6F5)Cl{PPh2(C6H4–CONH–R)}] (R = iPr (3a), Ph (3b)) that showed a P, O-chelating behaviour of the ligands, confirmed by the crystal structure determination of (3a). New cationic palladium(II) complexes in which (a) and (b) behave as P-monodentate ligands have been synthesised by reacting them with [{Pd(C6F5)(tht)(μ-Cl)}2], stoichiometric Ag(O3SCF3) and external chelating reagents such as cod [Pd(C6F5)(cod){PPh2(C6H4-CONH-R)}](O3SCF3)(R = iPr (4a), Ph (4b)) and 2,2-bipy [Pd(C6F5)(bipy){PPh2(C6H4-CONH-R)}](O3SCF3) (R = iPr (5a), Ph (5b)). When chloride abstraction in [{Pd(C6F5)(tht)(μ-Cl)}2] is promoted by means of a dithioanionic salt as dimethyl dithiophospate in the presence of (a) or (b), the corresponding neutral complexes [Pd(C6F5){S(S)P(OMe)2}{PPh2(C6H4-CONH-R)}] (R = iPr (6a), Ph (6b)) were obtained.  相似文献   

13.
The reaction of the iminobiphosphines RNPPh2-PPh2, where R = C6H4(p-CN), C6H4(m-CN), C6H4(o-C6H5), C6F5 or C6H4(o-CF3), with one molecular equivalent of M(cod)Cl2 (M = Pd or Pt) results in a rearrangement of the NPP unit to the more commonly encountered P-N-P unit, forming mono-chelating complexes of general formula M{RN(PPh2)2}Cl2. The related reaction of the same range of iminobiphosphines with Pt(cod)Cl2 (but not Pd(cod)Cl2) in 2:1 ratio affords complexes of general formula [Pt{RN(PPh2)2}2]2Cl. All 15 complexes are isolated in moderate to high yield and they have been fully characterised by spectroscopic methods. Six complexes, viz. [M{C6H4(p-CN)N(PPh2)2}Cl2], [M{C6H4(m-CN)N(PPh2)2}Cl2] and [M{C6H4(o-C6H5)N(PPh2)2}Cl2] (M = Pd and Pt), have been characterised in the solid state by single crystal X-ray diffraction analysis.  相似文献   

14.
Treatment of trans-[IrCl(CO)(PPh3)2] with Ph2PCH2CH2NH2 in refluxing para-xylene gave (OC-6-43)-[Ir(H)(Cl)(Ph2PCH2CH2NH2)2]Cl (1) which interacted with K[BH(s-Bu3)] to produce a mixture of (OC-6-22)-[IrH2(Ph2PCH2CH2NH2)2]Cl (2a) and (OC-6-32)-[Ir(H)(Cl)(Ph2PCH2CH2NH2)2]Cl (2b). The trans-dihydride 2a was isolated in pure form from the reaction between 1 and KOH/i-PrOH. Different from its isoelectronic (P,N)2-coordinated RuII analogues, the cationic chloro hydrido complex 1 does not act as a catalyst for the direct hydrogenation of acetophenone by molecular H2, if activated by strong alkoxide base, but rather catalyzes the transfer hydrogenation of the CO bond with methanol or isopropanol as proton/hydride sources. Dihydrido complex 2a is ascribed the role of the actual catalyst as it supports the transfer hydrogenation reaction even in the absence of base. The crystal structure of the addition compound 1 · 2EtOH has been determined.  相似文献   

15.
The electrochemical behavior of the S,S-bridged adducts of square planar metalladithiolene complexes was investigated by using cyclic voltammetry and electrochemical spectroscopies (visible, near-IR, and ESR). The norbornene-bridged S,S-adduct [Ni(S2C2Ph2)2(C7H8)] (2a; C7H8=norbornene) formed by [Ni(S2C2Ph2)2] (1a) and quadricyclane (Q) was dissociated by an electrochemical reduction, and anion 1a and norbornadiene (NBD) were formed. Q was isomerized to NBD in the overall reaction. The o-xylyl-bridged S,S-adduct [Ni(S2C2Ph2)2(CH2)2(C6H4)] (3a; (CH2)2(C6H4)=o-xylyl) was also dissociated by an electrochemical reduction, and this reaction gave the o-xylyl radical (o-quinodimethane). The reduction of complex 3a in the presence of excess o-xylylene dibromide underwent the catalytic formation of o-quinodimethane. The butylene-bridged S,S-adduct [Ni(S2C2Ph2)2(CH2)4] (4a; (CH2)4=butylene) was stable on an electrochemical reduction. The lifetimes of reduced species of these adducts 2a-4a were influenced by the stability of the eliminated group (stability: NBD > o-xylyl radical (o-quinodimethane) > butylene radical). Therefore, the reduced species are stable in the sequence 4a > 3a > 2a. Although the palladium complex [Pd(S2C2Ph2)2] (1b) was easier to reduce than the nickel complex 1a or the platinum complex [Pt(S2C2Ph2)2] (1c), their S,S-adducts were easier to reduce in the order of Ni adduct > Pd adduct > Pt adduct.  相似文献   

16.
A new high yielding synthesis of the seven-coordinate complexes [MI2(CO)3{Ph2P(CH2)nPPh2}] (M = Mo and W; n = 1–6) is described. The procedure involves reacting the complexes [MI2(CO)3(NCMe)2] in CH2Cl2 with an equimolar amount of the bidentate phosphorus ligand. The low temperature (−70 °C) 13C NMR spectra of the complexes [Wl2(CO)3{Ph2P(CH2)nPPh2}] (n = 3 and 5) indicates that the geometry is capped octahedral with a carbonyl ligand in the unique capping position.  相似文献   

17.
Novel p-tolylimido rhenium(V) complexes trans-[Re(p-NC6H4CH3)X2(quin-2-COO)(PPh3)] and cis-[Re(p-NC6H4CH3)X2(quin-2-COO)(PPh3)]·MeCN have been obtained in the reactions of [Re(p-NC6H4CH3)X3(PPh3)2] (X = Cl, Br) with quinoline-2-carboxylic acid. The compounds were identified by elemental analysis IR, UV-Vis spectroscopy and X-ray crystallography. The electronic structures of trans- and cis-halide isomers of [Re(p-NC6H4CH3)Cl2(quin-2-COO)(PPh3)] have been calculated with the density functional theory (DFT) method. Additional information about binding in the compounds [Re(p-NC6H4CH3)Cl2(quin-2-COO)(PPh3)] with cis- and trans-halide arrangement has been obtained by NBO analysis. The electronic spectra of trans and cis isomers of [Re(p-NC6H4CH3)Cl2(quin-2-COO)(PPh3)] were investigated at the TDDFT level employing B3LYP functional in combination with LANL2DZ.  相似文献   

18.
Electrospray ionisation mass spectrometry (ESI-MS) has been used as an analytical tool in a wide-ranging scoping study of the alkylation and arylation reactions of [Pt2(μ-S)2(PPh3)4]. From these experiments, the factors that influence the formation of different product species - formed by mono- or di-alkylation - are determined. If the alkylating agent is an alkyl chloride or sulfate, monoalkylation followed by dialkylation of the two sulfido groups occurs, dependent on the alkylating power of the reagent used. For example, n-butyl chloride gives solely [Pt2(μ-S)(μ-SBu)(PPh3)4]+ while dimethyl sulfate gives [Pt2(μ-SMe)2(PPh3)4]2+. This species, previously unisolated is stable in the absence of good nucleophiles, but the addition of potassium iodide results in rapid conversion to [Pt2(μ-SMe)2(PPh3)3I]+. This iodo complex is also observed from the reaction of [Pt2(μ-S)2(PPh3)4] with excess MeI, after the initial formation of mono- and di-methylated species. In these reactions, the iodide presumably displaces a phosphine ligand, which is then quaternised by excess alkylating agent. Changing the alkylating agent to a longer chain alkyl iodide or methyl bromide decreases the rate of alkylation of the sulfide in the initially formed [Pt2(μ-S)(μ-SR)(PPh3)4]+. Mixed-thiolate species of the type [Pt2(μ-SMe)(μ-SR)(PPh3)4]2+ are easily generated by reaction of [Pt2(μ-S)(μ-SR)(PPh3)4]+ with excess Me2SO4 and is also dependent on the avoidance of nucleophiles. Reactions towards α,ω-dialkylating agents are surveyed; the chain length is found to have a dramatic effect on the rate of the second intramolecular cyclisation process, illustrated by a competitive reactivity study involving a mixture of Br(CH2)4Br and Br(CH2)5Br; on completion of the reaction the former gives [Pt2{μ-S(CH2)4S}(PPh3)4]2+ while the latter predominantly gives monoalkylated[Pt2(μ-S){μ-S(CH2)5Br}(PPh3)4]+. The reactivity of o- and p-dihaloxylenes has been explored, with the reaction with p-BrCH2C6H4CH2Br giving the bridged species [(PPh3)4Pt2(μ-S)(μ-SCH2C6H4CH2S)(μ-S)Pt2(PPh3)4]2+. Arylation reactions of [Pt2(μ-S)2(PPh3)4] with halobenzenes and 2-bromoheterocyclic compounds (pyridine, thiophene) are also described.  相似文献   

19.
The reaction of Ph2PCH2CH2PPh2 (dppe) with BrCH2C(O)C6H4NO2 (1:1.05 molar ratio) in acetone produces a mixture of the new monophosphonium salt [Ph2PCH2CH2PPh2CH2C(O)C6H4NO2]Br (1) and the diphosphonium salt [NO2C6H4C(O)CH2PPh2CH2CH2PPh2CH2C(O)C6H4NO2]Br2 (2). Compound 2 was insoluble in acetone and thus easily separated from the solution of 1. Further, by reacting both the mono- and diphosphonium salts with the appropriate bases the bidentate phosphorus ylides, [Ph2PCH2CH2PPh2CHC(O)C6H4NO2] (3) and [NO2C6H4C(O)CHPPh2CH2CH2PPh2CHC(O)C6H4NO2] (4) were obtained. The reaction of ligand 3 with mercury(II) halides in dry methanol leads to the formation of the P,P-coordinated monomeric complexes {HgX2(Ph2PCH2CH2PPh2CHC(O)C6H4NO2)2} [X = Cl (5), Br (6), I (7)]. The structure of complex 7 being unequivocally determined by single crystal X-ray diffraction techniques. Characterization of these species was also performed by elemental analysis, IR spectroscopy and 1H, 31P, and 13C NMR techniques. These analyses being consistent with a 2:1 stoichiometry ylide/Hg(II) for compounds 5 through 7. Results obtained from theoretical studies are also consistent with a product in which two ylides are coordinated to the Hg(II) center through their phosphine groups, being this product the most stable among all the possible products.  相似文献   

20.
《Inorganica chimica acta》1988,154(2):183-188
Polymeric complexes of formula [PdCl(TeAr)]n (I) and [Pd(TeAr)2]n (II) are readily obtained by the reaction between Na2[PdCl4] and NaTeAr (ArC6H5, C6H4OCH3−4 and C6H4OCH2CH3−4) in ethanol at room temperature. Chemical and far infrared spectral evidences support alternating chloride and tellurol bridges in I and tellurol bridges in II. While the reaction of I (AtC6H4OCH3−4) with PPh3 in stoichiometric amount results in splitting of chloride bridges and formation of a tellurol bridged dimeric complex [PdCl(TeC6H4OCH3−4)(PPh3)]2 (III), with excess of PPh3, cleavage of both chloride and tellurol bridges leads to the formation of a monomeric compound [PdCl(TeC6H4OCH3−4)(PPh3)2] (IV). Furthermore, the reaction of I (Ar C6H4OCH2CH3−4) with 1,2-bis(diphenyl phosphino)ethane in equimolar ratio also resulted in a monomeric compound [(PdCl(TeC6H4OCH2CH3−4)(diphos)] (V). The complex III (ArC6H4OCH2CH3−4) is also prepared by the reaction between Pd(PPh3)2Cl2 and Ph3SnTeC6H4OCH2CH3−4 in 1:1 molar ratio or between Pd2Cl4(PPh3)2 and Ph3SnTeC6H4OCH2CH3−4 in 1:2 molar ratio in benzene at room temperature. Sodium tetrachloropalladate reacts readily with diarylditellurides in ethanol at 0 °C to form dimeric complexes [PdCl2(ArTeTeAr)]2 (VI). However, at 40 °C or above the same ditellurides form polymeric complexes I with Na2[PdCl4] in ethanol. The complex VI is also obtained by the reaction of Pd(PhCN)2Cl2 with Te2Ar2 in benzene at room temperature. The complexes were characterized by elemental analysis, IR, Raman and 1H NMR spectra and, where possible, by conductivity measurements and molecular weight determinations.  相似文献   

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