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1.
A novel long chain diphosphine ligand with a pyridine-diamino bridge, 2,6-bis(N-benzyl-N-diphenylphosphinomethylamino)pyridine (PNP1), was prepared conveniently using the Mannich reaction of HPPh2 with paraformaldehyde and 2,6-bis(N-benzylamino)pyridine in high yield. Reactions of the ligand with metal complexes, M(COD)Cl2 (M = Pd, Pt), M(CH3CN)4ClO4 (M = Cu, Ag) and M(CO)6 (M = Mo, W) afforded the corresponding 10-numbered monometallic macrocyclic complexes with an uncoordinated pyridyl bridge. The monometallic chelate PdCl2(PNP1) continued to react with Ag+ or Cu+ giving the μ-Cl bridged bicyclic metallic complex (μ-Cl)2[PdCl(PNP1)]2. The diphenylphosphine group coordinated with metal ion in cis-form in all the 10-numbered macrocyclic metal complexes. Ligand PNP1 and another known analogous 2,6-bis(N-diphenylphosphinoamino)pyridine (PNP2) reacted with Au(SMe2)Cl giving the corresponding bimetallic Au2Cl2(PNP1) and Au2Cl2(PNP2), respectively. The latter bimetallic complexes continued to react with Ag+ and diphosphine ligand to give the corresponding bimetallic macrocyclic complexes Au2(ligand)2(ClO4)2. All the complexes were characterized and the structures of some complexes were confirmed by X-ray single crystallography determination.  相似文献   

2.
Reaction of NiI2 with the PCP-ligand {1-Et-2,6-(CH2PiPr2)2-C6H3} (1) results in selective activation of the strong sp2-sp3 aryl-ethyl bond to afford the aryl-nickel complex [Ni{2,6-(CH2PiPr2)2-C6H3}I] (2), whereas reaction of NiI2 with {1,3,5-(CH3)3-2,6-(CH2PiPr2)2-C6H} (4) leads to the formation of the benzylic complex [Ni{1-CH2-2,6-(CH2PiPr2)2-3,5-(CH3)2-C6H}I] (5) by selective C-H bond activation. Thermolysis of 5 results in formation of [Ni{2,6-(CH2PiPr2)2-3,5-(CH3)2-C6H}I] (6) by activation of the sp2-sp3 C-C bond. The identity of the new 16-electron complexes 2 and 6 was confirmed by reaction of NiI2 with {1,3-(CH2PiPr2)2-C6H4} (3) and {1,3-(CH3)2-4,6-(CH2PiPr2)2-C6H2} (7), respectively, lacking the aryl-alkyl groups between the “phosphines arms” (alkyl=ethyl, methyl). Complexes 2 and 5 have been fully characterized by X-ray analysis. Nickel-based activation of an unstrained C-O single bond was observed as well. Reaction of the aryl-methoxy bisphosphine {1-OMe-2,6-(CH2PiPr2)2-C6H3} (8) with NiI2 results in the formation of the phenoxy complex [Ni{1-O-2,6-(CH2PiPr2)2-C6H3}I] (9) by selective sp3-sp3 C-O bond activation.  相似文献   

3.
The reactions of [Pt2(μ-S)2(PPh3)4] with α,ω-dibromoalkanes Br(CH2)nBr (n = 4, 5, 6, 8, 12) gave mono-alkylated [Pt2(μ-S){μ-S(CH2)nBr}(PPh3)4]+ and/or di-alkylated [Pt2(μ-S(CH2)nS}(PPh3)4]2+ products, depending on the alkyl chain length and the reaction conditions. With longer chains (n = 8, 12), intramolecular di-alkylation does not proceed in refluxing methanol, with the mono-alkylated products [Pt2(μ-S){μ-S(CH2)nBr}(PPh3)4]+ being the dominant products when excess alkylating agent is used. The bridged complex [{Pt2(μ-S)2(PPh3)4}2{μ-(CH2)12}]2+ was accessible from the reaction of [Pt2(μ-S)2(PPh3)4] with 0.5 mol equivalents of Br(CH2)12Br. [Pt2(μ-S){μ-S(CH2)4Br}(PPh3)4]+ can be cleanly isolated as its BPh4 salt, but undergoes facile intramolecular di-alkylation at −18 °C, giving the known species [Pt2(μ-S(CH2)4S}(PPh3)4]2+. The reaction of I(CH2)6I with [Pt2(μ-S)2(PPh3)4] similarly gives [Pt2(μ-S){μ-S(CH2)6I}(PPh3)4]+, which is fairly stable towards intramolecular di-alkylation once isolated. These reactions provide a facile route to ω-haloalkylthiolate complexes which are poorly defined in the literature. X-ray crystal structures of [Pt2(μ-S){μ-S(CH2)5Br}(PPh3)4]BPh4 and [Pt2(μ-S(CH2)5S}(PPh3)4](BPh4)2 are reported, together with a study of these complexes by electrospray ionisation mass spectrometry. All complexes fragment by dissociation of PPh3 ligands, and the bromoalkylthiolate complexes show additional fragment ions [Pt2(μ-S){μ-S(CH2)n−2CHCH2}(PPh3)m]+ (m = 2 or 3; m ≠ 4), most significant for n = 4, formed by elimination of HBr.  相似文献   

4.
5.
The platinum(0) complex [Pt(PPh3)4] reacts with brominated propargylic amides and esters in benzene by oxidative addition to give trans-[Br(PPh3)2Pt-CC-C(O)R] complexes whereas no reaction occurs when halogenated solvents (CH2Cl2, CHCl3) are used. The cis-ligands PPh3 can be replaced by P(iPr)3 and the bromide by trifluoroacetate. O-Alkylation of those trans-[X(PR′3)2Pt-CC-C(O)R] complexes (X = Br, CF3COO; R′ = Ph, iPr) derived from propargylic amides with MeOTf or [Me3O]BF4 in CH2Cl2 gives the first cationic monoallenylidene complexes of platinum, trans-[X(PR′3)2PtCCC(OMe)NR2]+Y (Y = OTf, BF4). In contrast, trans-[Br(PPh3)2Pt-CC-C(O)OMenthyl] derived from a propargylic ester does not react with MeOTf in CH2Cl2. However, in acetonitrile instead of O-methylation the substitution of acetonitrile for the bromide ligand to yield the cationic acetonitrile alkynyl platinum complex trans-[MeCN(PPh3)2Pt-CC-C(O)OMenthyl]+OTf is observed. The related palladium complexes trans-[X(PR′3)2Pd-CC-C(O)OR] (X = Br, CF3COO; R′ = Ph, iPr, R = menthyl, Et) react with MeOTf or [Et3O]BF4 analogously affording trans-[MeCN(PR′3)2Pd-CC-C(O)OR]+Y (Y = OTf, BF4).  相似文献   

6.
The molybdenum and tungsten dinitrogen-organonitrile complexes trans-[M(N2)(NCR)(dppe)2] (2, M=Mo; 4, M=W; R=Ph, C6H4Me-p, C6H4OMe-p, Me; dppe=Ph2PCH2CH2PPh2) underwent double protonation at the nitrile carbon atom with loss of N2 and a change in oxidation state to +4 on treatment with hydrochloric acid to afford the cationic imido complexes trans-[MCl(NCH2R)(dppe)2]+. The solid-state structure of trans-[WCl(NCH2CH3)(dppe)2][PF6]·CH2Cl2 was determined by single-crystal X-ray analysis. Protonation of complexes 2 by fluoroboric acid or hydrobromic acid also formed the similar imido complexes trans-[MoX(NCH2R)(dppe)2]+ (X=F, Br). In contrast, the dinitrogen complex trans-[Mo(N2)2(dppe)2] reacted with two equiv. of benzoylacetonitrile, a nitrile with acidic CH hydrogen atoms, to give the nitrido complex trans-[Mo(N)(NKCCHCOPh)(dppe)2] (12), which was accompanied by evolution of dinitrogen and the formation of 1-phenyl-2-propen-1-one in high yields. For complex 12, the zwitterionic structure, where the anionic enolate ligand PhC(O+)=CHCN coordinates to the cationic Mo(IV) center through its nitrogen atom, was confirmed by spectroscopic measurements and single-crystal X-ray analysis. A unique intermolecular aromatic C---HO hydrogen bonding was observed in that crystal structure. Complex 12 is considered to be formed via the cleavage of the CN triple bond of benzoylacetonitrile on the metal. A reaction mechanism is proposed, which includes the double protonation of the nitrile carbon atom of the ligating benzoylacetonitrile on a low-valent molybdenum center.  相似文献   

7.
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   

8.
The reaction of the racemic chiral methyl complex (η5-C5H5)Re(NO)(PPh3)(CH3) (1) with CF3SO3H and then NH2CH2C6H5 gives [(η5-C5H5)Re(NO)(PPh3)(NH2CH2C6H5)]+ ([4a-H]+; 73%), and deprotonation with t-BuOK affords the amido complex (η5-C5H5)Re(NO)(PPh3)(NHCH2C6H5) (76%). Reactions of 1 with Ph3C+ X and then primary or secondary amines give [(η5-C5H5)Re(NO)(PPh3)(CH2NHRR′)]+ X ([6-H]+ X; R/R′/X = a, H/NH2CH2C6H5/BF4; a′, H/NH2CH2C6H5/PF6; b, H/NH2CH2(CH2)2CH3/PF6; c, H/(S)-NH2CH(CH3)C6H5/BF4); d, CH2CH3/CH2CH3/PF6; e, CH2(CH2)2CH3/CH2(CH2)2CH3/PF6; f, CH2C6H5/CH2C6H5/PF6; g, -CH2(CH2)2CH2-/PF6; h, -CH2(CH2)3CH2-/PF6; i, CH3/CH2CH2OH/PF6 (62-99%). Deprotonations with t-BuOK afford the amines (η5-C5H5)Re(NO)(PPh3)(CH2NRR′) (6a-i; 99-40%), which are more stable and isolated in analytically pure form when R ≠ H. Enantiopure 1 is used to prepare (RReSC)-[6c-H]+, (RReSC)-6c, (S)-[6g-H]+, and (S)-6g. The crystal structures of [4a-H]+, a previously prepared NH2CH2Si(CH3)3 analog, [6a′,d,f,h-H]+, (RReSC)-6c, and 6f are determined and analyzed in detail, particularly with respect to cation/anion hydrogen bonding and conformation. In contrast to analogous rhenium containing phosphines, 6a-i show poor activities in reactions that are catalyzed by organic amines.  相似文献   

9.
The electronic structure and spectroscopic properties of [Au3(μ-C(OEt) = NC6H4CH3)3]n-(C6F6)m and [Au3(μ-C2,N3-bzim)3]n-(Ag+)m were studied at the B3LYP, PBE and TPSS levels. The interaction between the [Au3] cluster and L (C6F6, Ag+) was analyzed. Grimme’s dispersion correction is used for those functionals. Weak π-interactions (Au-C6F6) were found to be the main contribution short-range stability in the models; while in the models with Ag+, an ionic interaction is obtained. The absorption spectra of these models at the PBE level agree with the experimental spectra.  相似文献   

10.
Halide abstraction from the 18 electron Ru(II) complex RuCl(CO)2[2,6-(CH2PtBu2)2C6H3] (2) with AgPF6 results in the exclusive formation of the cationic complex {Ru(CO)2[2,6-(CH2PtBu2)2C6H3]}+PF6 (3). The molecular structures of 2 and 3 were determined by complete single-crystal diffraction studies. X-ray crystallographic analysis of 3 reveals that the “open” coordination site is occupied by an agostic interaction between the metal center and an sp3 C-H bond of a tert-butyl substituent. DFT gas phase calculations (B97-1/SDD) show the necessity of two sterically demanding tert-butyl substituents on one P donor atom for the agostic interaction to occur. The reaction of 3 with H2 results in the quantitative conversion to {Ru(H)(CO)2[2,6-(CH2PtBu2)2C6H4]}+PF6 (4) where the aromatic Cipso-H bond is η2-coordinated to the metal center. Treatment of the agostic complex 4 with Et3N results in the formation of the neutral complex Ru(H)(CO)2[2,6-(CH2PtBu2)2C6H3] (5). The mechanistic details of 3 + H2 → 4 were investigated by DFT calculations at the B97-1/SDB-cc-pVDZ//B97-1/SDD level of theory.  相似文献   

11.
Photoirradiation with a 150 W medium-pressure Hg lamp for 17 h in acetontrile as the solvent replaces the benzene ligand in the cationic complexes [(η6-C6H6)Ru(CH3CN)2(L)]2+ and [(η6-C6H6)Ru(CH3CN)(L2)]2+ (L=CH3CN, PPh3, L2=dppe, bipy) with acetonitrile. These replacements are equally clean to those reported before for analogous CpRu+ complexes. Crystal structures of the products obtained are included.  相似文献   

12.
Complexes cis,trans-Fe(CO)2(PMe3)2RR′ (R = CH3, R′ = Ph (2); R = CH3, R′ = CHCH2 (3); R = CHCH2, R′ = Ph (4); R = R′ = CHCH2 (5); R = R′ = CH3 (6)) were prepared by reaction of cis,trans-Fe(CO)2(PMe3)2RCl (1) with organolithium reagents LiR′. All complexes were characterized in solution by IR and 1H, 31P and, in a few cases, 13C NMR mono- and bi-dimensional spectroscopies. Complexes 5 and 6 were structurally characterized by X-ray diffractometric methods. In solution complexes 2, 3 and 4 undergo slowly coupling of the σ-hydrocarbyl substituents leading to Fe(CO)3(PMe3)2 and other decomposition products. Complex 6 was very stable in solution in the absence of nucleophiles and in the solid state. Complex 5 transformed through intramolecular coupling of the vinyl groups into Fe(CO)(PMe3)24-butadiene) (7), which was characterized in solution by IR and NMR spectroscopies.  相似文献   

13.
New hetero-functionalized macrocyclic complexes [CuL2](ClO4)2 (I) and [CuL3](ClO4)2 (II) bearing one N-CH2CONH2 or one N-CH2C(NH)NH(CH2)2CH3 pendant arm as well as one N-CH2CN group have been prepared by the selective reaction of water or n-propylamine with one of the two N-CH2CN groups in [CuL1](ClO4)2 (L1 = 2,13-bis(cyanomethyl)-5,16-dimethyl-2,6,13,17-tetraazatricyclo[16.4.0.1.1807.12]docosane). The complex [CuL4](ClO4)2 (III) bearing both N-CH2CONH2 and N-CH2C(NH)NH(CH2)2CH3 pendant arms can be prepared by either the reaction of I with n-propylamine or the hydrolysis of II. The N-CH2CONH2 and/or N-CH2C(NH)NH(CH2)2CH3 groups of I, II, and III are coordinated to the metal ion. The crystal structure of II shows that the complex has distorted square-pyramidal coordination polyhedron with a considerably strong apical Cu-N (N-CH2C(NH)NH(CH2)2CH3) bond (2.101(6) Å). The addition of HClO4 (?0.01 M) to an acetonitrile (or DMSO) solution of II or III produces [Cu(HL3)](ClO4)3 (IIa) or [Cu(HL4)](ClO4)3 (IIIa), showing that the N-CH2C(NH)NH(CH2)2CH3 pendant arm of each complex is readily protonated in the non-aqueous solvent; the resulting N-CH2C()NH(CH2)2CH3 group of IIa or IIIa is not involved in coordination. However, the N-CH2C(NH)NH(CH2)2CH3 group of II is not protonated even in ?1.0 M HClO4 aqueous solution. In the case of III, most of the complex exists as the protonated form [Cu(HL4)]3+ in ?0.1 M HClO4 aqueous solutions.  相似文献   

14.
Electrospray (ESI) mass spectra analysis of acetonitrile solutions of a series of neutral chloro dimers, pincer type, and monomeric palladacycles has enabled the detection of several of their derived ionic species. The monometallic cationic complexes Pd[κ1-C1-N1-S-C(CH3S-2-C6H4)C(Cl)CH2N(CH3)2]+ (1a) and [Pd[κ1-C1-N1-S-C(CH3S-2-C6H4)C(Cl)CH2N(CH3)2](CH3CN)]+ (1b) and the bimetallic cationic complex [κ1-C1-N1-S-C(CH3S-2-C6H4)C(Cl)CH2N(CH3)2]Pd-Cl-Pd[κ1-C1-N1-S-C(CH3S-2-C6H4)C(Cl)CH2N(CH3)2]+ (1c) were detected from an acetonitrile solution of the pincer palladacycles Pd[κ1-C1-N1-S-C(CH3S-2-C6H4)C(Cl)CH2N(CH3)2](Cl) 1. For the dimeric compounds {Pd[κ1-C1-N-C(Y-2-C6H4)C(Cl)CH2N(CH3)2](μ-Cl)}2 (2, Y=H and 3, CF3), highly electronically unsaturated palladacycles [Pd[κ1-C1-N-C(Y-2-C6H4)C(Cl)CH2N(CH3)2]+ (2d, 3d) and their mono and di-acetonitrile adducts, namely, [Pd[κ1-C1-N-C(Y-2-C6H4)C(Cl)CH2N(CH3)2](CH3CN)]+ (2e, 3e) and [Pd[κ1-C1-N-C(Y-2-C6H4)C(Cl)CH2N(CH3)2](CH3CN)2]+ (2f and 3f) were detected together with the bimetallic complex [Pd[κ1-C1-N-C(Y-2-C6H4)C(Cl)CH2N(CH3)2]-Cl-Pd[κ1-C1-N-C(Y-2-C6H4)C(Cl)CH2N](CH3)2]+ (2a, 3a) and its acetonitrile adducts [κ1-C1-N-C(Y-2-C6H4)C(Cl)CH2N(CH3)2](CH3CN)Pd-Cl-Pd[ κ1-C1-N-C(Y-2-C6H4)C(Cl)CH2N(CH3)2]+ (2b, 3b) and [κ1-C1-N-C(Y-2-C6H4)C(Cl)CH2N(CH3)2](CH3CN)Pd-Cl-Pd[κ1-C, κ1-N-C(Y-2-C6H4)C(Cl)CH2N(CH3)2(CH3CN)]+ (2c, 3c). The dimeric palladacycle {Pd[κ1-C1-N-C(CH3O-2-C6H4)C(Cl)CH2N(CH3)2](μ-Cl)}2 (4) is unique as it behaves as a pincer type compound with the OCH3 substituent acting as an intramolecular coordinating group which prevents acetonitrile full coordination, thus forming the cationic complexes [(C6H4(o-CH3O)CC(Cl)CH2N(CH3)2OCN)Pd]+ (4b), [(C6H4(o-CH3O)CC(Cl)CH2N(CH3)2- κOCN)Pd(CH3CN)]+ (4c) and [(C6H4 (o-MeO)CC(Cl)CH2N(CH3)2O, κCN)Pd-Cl-Pd(C6H4(o-CH3O)CC(Cl)CH2N(CH3)2OCN)]+ (4a). ESI-MS spectra analysis of acetonitrile solutions of the monomeric palladacycles Pd[κ1-C1-N-C(Y-2-C6H4)C(Cl)CH2N(CH3)2](Cl)(Py) (5, Y=H and 6, Y=CF3) allows the detection of some of the same species observed in the spectra of the dimeric palladacycles, i.e., monometallic cationic 2d-3d, 2e-3e and {Pd[κ1-C1-N-C(Y-2-C6H4)C(Cl)CH2N(CH3)2](Py)}+ (5a, 6a) and {Pd[κ1-C1-N-C(Y-2-C6H4)C(Cl)CH2N(CH3)2](CH3CN)(Py)}+ (5b, 6b) and the bimetallic 2a, 3a, 2b, 3b, 2c and 3c. In all cationic complexes detected by ESI-MS, the cyclometallated moiety was intact indicating the high stability of the four or six electron anionic chelate ligands. The anionic (chloride) or neutral (pyridine) ligands are, however, easily replaced by the acetonitrile solvent.  相似文献   

15.
Rhodium(III) and iridium(III) octahedral complexes of general formula [MCl3{R2PCH2C(But)NNC(But)CH2PR2}] (M = Rh, Ir; R = Ph, c-C6H11, Pri, But; not all the combinations) were prepared either from the corresponding diphosphinoazines and RhCl3 · 3H2O or by the oxidation of previously reported bridging complexes [{MCl(1,2-η:5,6-η-CHCHCH2CH2CHCHCH2CH2)}2{μ-R2PCH2C(But)NNC(But)CH2PR2}] with chlorine-containing solvents. Depending on the steric properties of the ligands, complexes with facial or meridional configuration were obtained. Crystal and molecular structures of three facial and two meridional complexes were determined by X-ray diffraction. Hemilability of ligand in the complex fac-[RhCl3{(C6H11)2PCH2C(But)NNC(But)CH2P(C6H11)2}] consisting in reversible decoordination of the phosphine donor group in the six-membered ring was observed as the first step of isomerization between fac and mer isomers.  相似文献   

16.
Iron(III) porphinate complexes of phenolate that have NH?O hydrogen bonds on the coordinating oxygen, [FeIII(OEP){O-2,6-(RCONH)2C6H3}] (R = CF3 (1), CH3 (3)) and [FeIII(OEP)(O-2-RCONHC6H4)] (R = CF3 (2), CH3 (4)) (OEP = 2,3,7,8,12,13,17,18-octaethyl-21H, 23H-porphinato), were synthesized and characterized as models of heme catalase. The presence of NH?O hydrogen bonds was established by their crystal structures and IR shifts of the amide NH band. The crystal structure of 1 shows an extremely elongated Fe-O bond, 1.926(3) Å, compared to 1.887(2) Å in 2 or 1.848(4) Å in [FeIII(OEP)(OPh)]. The NH?O hydrogen bond decreases an electron donation from oxygen to iron, resulting in a long Fe-O bond and a positive redox potential.  相似文献   

17.
In a study of the isolobal analogy between the proton H+ and the ligand-backed gold(I) cations [(R3P)Au]+, the reaction of the mixture of 2-pyridone/2-hydroxy-pyridine tautomers with [(Ph3P)Au]BF4 has been investigated. It affords the 1:1 complex with the gold atom N-bonded to the 2-hydroxy-pyridine tautomer: {(Ph3P)Au[NC5H4-(OH-2)]}+BF4 −, which is related to known salts with the 2-hydroxy-pyridinium cation such as [HNC5H4(OH-2)]+Cl. The structure was derived from analytical and spectroscopic data and from a comparison with the salt [(Ph3P)Au(pyr)]BF4, prepared and investigated structurally as a reference compound. An analogue was also prepared with 2-dimethylamino-ethanol as a substrate, which also affords the N-bonded complex [(Ph3P)Au([Me2NCH2CH2OH)]+BF4 −, the structure of which has been determined. The OH group is not attached to the gold atom but engaged in hydrogen bonding with the counterion. By contrast, in the complex [(Ph3P)Au(Me2NCH2CH2NMe2)]+BF4 − synthesized similarly with tmeda and crystallized as the dichloromethane solvate, one nitrogen atom is bonded firmly to the metal atom, but the second nitrogen atom is also weakly engaged in coordinative bonding. The compound is fluxional in solution, where a site exchange is observed which is rapid on the NMR time scale. The reaction of two equivalents of [(Ph3P)Au]BF4 with an alkali 2-pyridinolate, prepared from the above tautomeric mixture and sodium metal or a potassium alkoxide, yields the diaurated product {N,O-[(Ph3P)Au]2(NC5H4-O-2)}BF4. In the crystal structure determination of a sesqui-solvate with dichloromethane it has been shown that one gold atom is attached solely to the nitrogen atom and the other solely to the oxygen atom. The dinuclear cations are associated into cyclic dimers through head-to-tail aurophilic bonding. From the geometrical characteristics of the core unit of the cations the ligand can be assigned a 2-pyridinolate form featuring pyridine and phenolate donor sites.  相似文献   

18.
The reactions of mass-selected iron clusters Fen + (n=1-5) with dimethyl carbonate, (CH3O)2CO, are examined by means of Fourier-transform ion-cyclotron-resonance mass spectrometry. For the bare metal cation Fe+, loss of a methyl radical prevails which leads to the iron carbonate species FeOC(O)OCH3 +. For the corresponding Fen + clusters, this type of reaction is not observed anymore. Instead, the clusters show a strong tendency for a formal O-atom abstraction leading to the formation of the corresponding monoxide clusters FenO+ In addition, several bond activations of dimethyl carbonate are observed which markedly differ from the behavior of the mononuclear cation. Nevertheless, a mechanistic analysis implies that the initial steps are the same for bare Fe+ as well as small Fen + clusters.  相似文献   

19.
Experimental mass-spectrometry data on thermochemistry of methide transfer reactions (CH3)3M+ + M'(CH3)4 ? M(CH3)4?+?(CH3)3M'+ (M, M'?=?Si, Ge or Sn) and the formation energy of the [(CH3)3Si-CH3-Si(CH3)3]+ complex are used as benchmarks for DFT methods (B3LYP, BMK, M06L, and ωB97XD). G2 and G3 theory methods are also used for the prediction of thermochemical data. BMK, M06L, and ωB97XD methods give the best fit to experimental data (close to chemical accuracy) as well as to G2 and G3 results, while B3LYP demonstrates poor performance. From the first three methods M06L gives the best overall result. Structures and formation energies of intermediate “mixed” [(CH3)3M-CH3- M′(CH3)3] complexes not observed in experiment are predicted. Their structures, better described as M(CH3)4?[M′(CH3)3]+ complexes, explain their fast decompositions.
Figure
Graphical representation of the molecular structureof the intermediates in the methide transfer reactions: (CH3)3M+ + M'(CH3)4 ? M(CH3)4 + (CH3)3M'+ (M,M'=Si, Ge, Sn)  相似文献   

20.
The reaction of [HRe3(CO)12]2− with an excess of Ph3PAuCl in CH2Cl2 yields [(Ph3PAu)4Re(CO)4]+ as the main product, which crystallizes as [(Ph3PAu)4Re(CO)4]PF6 · CH2Cl2 (1 · CH2Cl2) after the addition of KPF6.The crystal structure determination reveals a trigonal bipyramidal Au4Re cluster with the Re atom in equatorial position.If [(Ph3PAu)4Re(CO)4]+ is reacted with PPh4Cl, a cation [Ph3PAu]+ is eliminated as Ph3PAuCl, and the neutral cluster [(Ph3PAu)3Re(CO)4] (2) is formed.It combines with excess [(Ph3PAu)4Re(CO)4]+ to afford the cluster cation, [(Ph3PAu)6AuRe2(CO)8]+. It crystallizes from CH2Cl2 as[(Ph3PAu)6AuRe2(CO)8]PF6 · 4CH2Cl2 (3 · 4CH2Cl2). In [(Ph3PAu)3Re(CO)4] the metal atoms are arranged in form of a lozenge while in [(Ph3PAu)6AuRe2(CO)8]+ two Au4Re trigonal bipyramids are connected by a common axial Au atom.The treatment of [(Ph3PAu)4Re(CO)4]+ with KOH and Ph3PAuCl in methanol yields the cluster cation [(Ph3PAu)6Re(CO)3]+, which crystallizes with from CH2Cl2 as [(Ph3PAu)6Re(CO)3]PF6 · CH2Cl2 (4 · CH2Cl2). The metal atoms in this cluster form a pentagonal bipyramid with the Re atom in the axial position.  相似文献   

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