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1.
The [Rh(acac)(CO)(L)] (acac = acetylacetonato; L1 = 1,3-bis-(2,6-diisopropylphenyl)imidazolinylidene and L2 = 1,3-bis-(2,4,6-trimethylphenyl)imidazolinylidene) complexes were prepared by the action of the parent carbene on [Rh(acac)(CO)2] in THF. The crystal structure characterisation of [Rh(acac)(CO)(L1)] revealed a slightly distorted square planar geometry with the carbene ligand orientated almost perpendicular to the equatorial plane; an elongated trans Rh-O bond of 2.0806(18) Å reflecting the considerable trans-influence of the carbene ligand. By measuring the CO stretching frequencies in a range of [Rh(acac)(CO)(L)] complexes (L = CO, L1, L2, PPh3, PnBu3, P(O-2,4-tBu2-Ph)3) the following electron donating ability series was established: L1 ∼ L2 ∼ PnBu3 > PPh3 > P(O-2,4-tBu2-Ph)3 > CO; indicating the carbenes investigated in this study to have a similar electronic cis-influence as trialkyl phosphines. Both complexes do not display hydroformylation activity towards 1-hexene in the absence of added phosphine or phosphite ligands under the conditions investigated (P = 60; T = 85 °C). In the presence of a phosphine or phosphite ligand the resulting hydroformylation catalysis was identical to that observed for [Rh(acac)(CO)2] and the corresponding ligand and subsequent high-pressure 31P NMR studies confirmed substitution of the carbene ligand under these conditions.  相似文献   

2.
Three methods of obtaining time-resolved Fourier-Transform infrared (TR-FTIR) absorption spectra of transition metal carbonyl radicals in hexane are reported here. For the first method, CpM(CO)2L and Cp*M(CO)2L (M = Mo, W; L = CO, PR3) radicals have been generated by photodissociation of the corresponding metal-metal bonded dimers. Radicals of formula M(CO)4L (M = Mn, Re; L = CO, PR3, AsPh3, SbPh3) and CpM(CO)n (M = Fe, Mo; n = 2, 3) have been produced via the second method which is halogen abstraction of the transition metal carbonyl halides using CpMo(CO)3 radical. For the third method, fast radical ligand substitution kinetics has been exploited to generate CpMo(CO)2PR3 radicals from CpMo(CO)3 in the presence of free phosphines. An assessment of the three methods with respect to TR-FTIR spectroscopic detection of radicals was also discussed.  相似文献   

3.
Theoretical studies on the known trinuclear cobalt carbonyl derivatives ECo3(CO)9 (E = CH, CF, P, As) predict structures with carbonyl groups bridging each edge of the Co3 triangle in contrast with experiment where structures with all terminal carbonyl groups are found in all cases. However, the energy differences are predicted to be rather small ranging from 4 ± 2 kcal/mol for FCCo3(CO)9 to 10 ± 3 kcal/mol for AsCo3(CO)9. The global minima for the unsaturated ECo3(CO)n (n = 8, 7, 6) derivatives generally have two (for n = 8) or three (for n = 7 and 6) carbonyl groups bridging the edges of the Co3 triangle. However, structures with all terminal carbonyl groups are also found in all cases as well as higher energy structures in which one of the carbonyl groups bridges all three cobalt atoms. The fluoromethinyl derivatives FCCo3(CO)n (n = 9, 8, 7) are anomalous since their unbridged structures or structures with a carbonyl group bridging all three cobalt atoms are closer in energy to the doubly or triply bridged global minima than is the case for the other ECo3(CO)n derivatives.  相似文献   

4.
The modification of bis(pyrazol-1-yl)methane by sulfur or selenium on the methine carbon has been successfully carried out by the reaction of the bis(pyrazol-1-yl)methide anion, prepared in situ by the reaction of bis(pyrazol-1-yl)methane with n-BuLi, with elemental sulfur or selenium. These bis(pyrazol-1-yl)methylthiolate or selenolate anions reacted with Ph2SnCl2 to form new organotin derivatives CH(3,5-Me2Pz)2ESnPh2Cl (Pz = pyrazol-1-yl, E = S (1) or Se (2)), which have been characterized by NMR, IR and elemental analysis. The molecular structure of 2 determined by X-ray structure analysis indicates that bis(3,5-dimethylpyrazol-1-yl)methylselenolate is a bidentate monoanionic κ2-[N,Se] chelating ligand. The treatment of CH(3,5-Me2Pz)2ESnPh2Cl with W(CO)5THF resulted in the decomposition of ligands to yield pyrazole derivative of (3,5-Me2PzH)W(CO)5, while direct treatment of bis(pyrazol-1-yl)methylthiolate or selenolate anions with M(CO)5THF (M = Mo or W) formed their tricarbonyl metal anions . Succedent reaction of these carbonyl metal anions with Ph2SnCl2 or Ph3SnCl yielded heterobimetalic compounds CH(Pz)2EM(CO)3SnPhnCl3−n (n = 2 or 3), which have also been characterized by 1H NMR, IR and elemental analysis. The structure of CH(3,4,5-Me3Pz)2SW(CO)3SnPh3 (8) has been confirmed by X-ray single crystal diffraction, showing that bis(3,4,5-trimethylpyrazol-1-yl)methylthiolate acts as a tridentate, monoanionic κ3-[N,S,N] chelating ligand.  相似文献   

5.
Pentacarbonylpyrazinetungsten(0), (CO)5W(pyz), is not stable in solution in polar solvents such as acetone or dichloromethane and undergoes conversion to a bimetallic complex, (CO)5W(pyz)W(CO)5 plus free pyrazine. These three species exist at equilibrium. Using the quantitative 1H NMR spectroscopy, the equilibrium constant could be determined to be Keq = (5.9 ± 0.8) × 10−2 at 25 °C. Introducing a second pyrazine ligand into the molecule does not stabilize the complex, as cis-W(CO)4(pyz)2 was found to be less stable than W(CO)5(pyz) and, therefore, could not be isolated. However, introducing trimethylphosphite as a donor ligand into the complex leads to the stabilization of the carbonyl-pyrazine-metal(0) complexes, as shown by the synthesis of cis-W(CO)4[P(OCH3)3](pyz). This complex could be isolated from the reaction of the photogenerated W(CO)4[P(OCH3)3](tetrahydrofuran) with trimethylphosphite upon mixing for 2 h at 10 °C in tetrahydrofuran and characterized by elemental analysis, IR, MS, 1H, 13C, and 31P NMR spectroscopy.  相似文献   

6.
Treatment of Ru3(CO)12 with Ph3PS affords the compounds [Ru33-S)2(CO)9 − n(PPh3)n] (n = 1 (1a), 2 (2a)) and [Ru33-S)(μ3-CO)(CO)7(PPh3)2] (3a) as the major products. Single crystal X-ray diffraction studies of [Ru33-S)2(CO)8(PPh3)] and [Ru33-S)(μ3-CO)(CO)7(PPh3)2] show these two classes of compounds to contain square pyramidal Ru3S2 and trigonal pyramidal Ru3S metal cores, respectively, with the latter being isostructural to the analogous selenide cluster compound. The clusters [Ru33-E)2(CO)9 − n(PPh3)n] (E = S, n = 1; E = Se, n = 2) readily undergo ligand displacement reactions with PPh3 to afford the compounds [Ru33-E)2(CO)6(PPh3)3] (E = S, 5a; E = Se 5b). The mixed chalcogenide cluster, [Ru33-S)(μ3-Se)(CO)7(PPh3)2] (6), was prepared from the reaction of [Ru33-S)(μ3-CO)(CO)7(PPh3)2] and SePPh3. The optical limiting properties of the complexes 1a,b, 2a,b, 5a,b have been measured by the Z-scan technique employing 40 ns pulses at 523 nm; power limiting was observed for all clusters under our experimental conditions.  相似文献   

7.
The photochemical reaction of W(CO)6 with diethylsilane has been used to generate new tungsten-silicon compounds varying in stability. The initially formed η2-silane intermediate complex [W(CO)52-H-SiHEt2)], characterized by two equal-intensity doublets with 2JH-H = 10 Hz at δ = 5.10 (1JSi-H = 217 Hz) and δ = −8.05 (1JW-H = 38 Hz, 1JSi-H = 93 Hz), was detected by the 1H NMR spectroscopy (methylcyclohexane-d14, −10 °C). The η2-silane complex was converted in the dark to give more stable species. One of them was characterized by two equal-intensity proton signals observed as doublets with 2JH-H = 5.2 Hz at δ = −8.25 and −10.39 ppm. The singlet proton resonance at δ = −9.31 flanked by 29Si and 183W satellites (1JSi-H = 43 Hz, 2JSi-H = 34 Hz, 1JW-H = 40 Hz) was assigned to the agostic proton of the W(η2-H-SiEt2) group in the most stable compound isolated from the photochemical reaction products in crystalline form. The molecular structure of the bis{(μ-η2-hydridodiethylsilyl)tetracarbonyltungsten(I)} complex [{W(μ-η2-H-SiEt2)(CO)4}2] was established by single-crystal X-ray diffraction studies. The tungsten hydride observed in the 1H NMR spectrum at δ = −9.31 was located in the structure at a chemically reasonable position between the W and Si atoms of the W-Si bond of the bridging silyl ligand. The reactivity of photochemically generated W-Si compounds towards norbornene, cyclopentene, diphenylacetylene, acetone, and water was studied. As was observed by IR and NMR spectroscopy, the η2-silane ligand in the complex [W(CO)52-H-SiHEt2)] is very easily replaced by an η2-olefin or η2-alkyne ligand.  相似文献   

8.
The modification of bis(pyrazol-1-yl)methanes by organotin halide on the methine carbon atom has been successfully carried out, and their related reactions have also been studied. Bis(3,5-dimethylpyrazol-1-yl)(iododiphenylstannyl)methane [Ph2ISnCH(3,5-Me2Pz)2] can be obtained by the selective cleavage of the Sn-Csp2 bond in bis(3,5-dimethylpyrazol-1-yl)triphenylstannylmethane with I2 in a 1:1 molar ratio, while {di(tert-butyl)chlorostannyl}bis(3,5-dimethylpyrazol-1-yl)methane [(t-Bu)2ClSnCH(3,5-Me2Pz)2] and {di(tert-butyl)chlorostannyl}bis(3,4,5-trimethylpyrazol-1-yl)methane [(t-Bu)2ClSnCH(3,4,5-Me3Pz)2] are easily prepared by the reaction of the bis(3,5-dimethylpyrazol-1-yl)methide or bis(3,4,5-trimethylpyrazol-1-yl)methide anion with di(tert-butyl)tin dichloride. The molecular structure of [(t-Bu)2ClSnCH(3,5-Me2Pz)2] determined by X-ray structure analysis indicates that bis(3,5-dimethylpyrazol-1-yl)methide acts as a bidentate monoanionic κ2-[C,N] chelating ligand. Reaction of these bis(pyrazol-1-yl)methanes functionalized by organotin halide with W(CO)5THF results in the oxidative addition of the relative electrophilic Sn-X (X = Cl or I) bond instead of the Sn-Csp3 bond to the tungsten(0) atom, yielding new metal-metal bonded complexes R2SnCHPz2W(CO)3X (R = Ph or t-Bu, Pz represents substituted pyrazol-1-yl). Furthermore, treatment of the oxidative addition product (t-Bu)2SnCH(3,5-Me2Pz)2W(CO)3Cl with n-BuLi results in known complex CH2(3,5-Me2Pz)2W(CO)4 with the loss of the organotin fragment. In addition, reaction of Ph2ISnCH(3,5-Me2Pz)2 with 2-PySNa (Py = pyridyl) leads to the replacement of iodide by 2-PyS anion to give Ph2(2-PyS)SnCH(3,5-Me2Pz)2, which subsequently reacts with W(CO)5THF to result in the decomposition of this ligand, also yielding the known bis(3,5-dimethylpyrazol-1-yl)methane derivative of CH2(3,5-Me2Pz)2W(CO)4.  相似文献   

9.
The first example of a monodentate complexation of 2-(2′-pyridyl)quinoxaline (pq) to a metal centre through N4 is reported. Photochemical exchange of the THF ligand in W(CO)5THF by pq yields W(CO)5(N4-pq) (1), where the potentially bidentate pq ligand coordinates in an unusual monodentate fashion. Complex 1 is isolated as orange crystals and fully characterized on the basis of NMR, IR, UV-Vis and emission spectroscopy. The structure of 1 was determined by X-ray analysis. W(CO)5(N4-pq) (1) crystallizes in space group P21/n, monoclinic crystal system with α = 7.0237(5) Å, b = 10.4618(8) Å, c = 23.7768(18) Å, Z = 4 and V = 1731.9(2) Å3. Complex 1 exhibits intramolecular CH?N and intermolecular CH?O hydrogen bonds between the CH groups and nitrogen atoms of quinoxaline and CH groups and oxygen atoms of carbonyls, respectively, resulting in a supramolecular architecture in solid state. The preference to N4 as coordination site is discussed in terms of electronic interactions. Solutions of 1 emits dually at 77 K while they are moderately instable at room temperature, as 1 undergoes chelation via a first-order kinetic process to form W(CO)4pq (2). The determined reaction rate of 1 in toluene is 2.3 × 10−5 s−1 (at 298 K) and is compared with literature values for other W(CO)5L (L:diimine) complexes.  相似文献   

10.
Theoretical studies on the cyclopentadienylvanadium carbonyl thiocarbonyls Cp2V2(CS)2(CO)n (n = 5, 4, 3, 2, 1, 0) indicate the energetic preference for structures with four-electron donor bridging CS groups. Thus the lowest energy Cp2V2(CS)2(CO)5 structures have an “end-on” four-electron donor CE (E = O, S) bridge and no vanadium-vanadium bond. The lowest energy Cp2V2(CS)2(CO)4 structure has a four-electron donor bridging η2-μ-CS group and a V-V distance of ∼3.0 Å corresponding to a formal single bond. The lowest energy Cp2V2(CS)2(CO)3 structures also have a single bridging η2-μ-CS group. Both Cp2V2(CS)2(CO)n (n = 4 and 3) are predicted to lie energetically above the disproportionation products Cp2V2(CS)2(CO)n+1 + Cp2V2(CS)2(CO)n−1. This contrasts with the stable carbonyl analog Cp2V2(CO)5, which has been synthesized and characterized structurally by X-ray diffraction. The lowest energy structures for the highly unsaturated Cp2V2(CS)2(CO) and Cp2V2(CS)2 have two four-electron bridging η2-μ-CS groups. The distances corresponding to V-V single bonds, VV double bonds, and VV triple bonds in the Cp2V2(CS)2(CO)n structures (n = 4, 3, 2, 1, 0) are predicted to fall in the ranges 2.98 ± 0.07, 2.77 ± 0.21, and 2.52 ± 0.06 Å, respectively. The thermodynamics of the Cp2V2(CS)2(CO)n system suggest Cp2V2(CS)2(CO)2 as the most promising synthetic objective.  相似文献   

11.
To explore the anion receptor potential of [Co(phen)2(CO)3]+ for the pentafluorobenzoate ion, [Co(phen)2(CO)3](Pfbz)·6H2O (where phen = 1,10-phenanthroline and Pfbz = pentafluorobenzoate) was synthesized by reacting appropriate salts in aqueous medium. A detailed packing analysis has been undertaken to delineate the role of second sphere C-H?F interactions amid other heteroatom interactions. The complex salt has been characterized by elemental analyses, spectroscopic studies (IR, UV/Vis, multinuclear NMR) and solubility product measurement. The complex salt crystallizes in the monoclinic crystal system with space group P21/n having the cell dimensions a = 13.377(3) Å, b = 17.204(3) Å, c = 15.408(3) Å, β = 108.11(3)°, V = 3370.1(12) Å3 and Z = 4. Single crystal X-ray structure determination revealed ionic structure consisting of complex cation, [Co(phen)2(CO)3]+, Pfbz anion and six lattice water molecules. In the crystal lattice, discrete ions [Co(phen)2CO3]+ are forming rectangular voids in which the Pfbz anions are entrapped. Crystal lattice is stabilized by electrostatic forces of attraction and hydrogen bonding interactions, i.e. O-H?O, C-H?O, and C-H?F, involving second sphere coordination besides π?π interactions.  相似文献   

12.
A direct synthetic method of cresols from toluene by hydroxylation with air using CO as a reducing agent was developed. The reaction of toluene with air (15 atm) and CO (5 atm) in the presence of catalytic amounts of H4PMo11VO40·31H2O and Pd/C in aqueous acetic acid at 120 °C for 2 h afforded a mixture of o-, m-, and p-cresols in 9.9% yield at 83% selectivity. Cresols were obtained in 19% yield by recharging air and CO under these conditions. A variety of substituted benzenes were hydroxylated by this method to give the corresponding phenol derivatives in higher selectivity.  相似文献   

13.
Two stereoisomers of cis-[Ru(bpy)(pynp)(CO)Cl]PF6 (bpy = 2,2′-bipyridine, pynp = 2-(2-pyridyl)-1,8-naphthyridine) were selectively prepared. The pyridyl rings of the pynp ligand in [Ru(bpy)(pynp)(CO)Cl]+ are situated trans and cis, respectively, to the CO ligand. The corresponding CH3CN complex ([Ru(bpy)(pynp)(CO)(CH3CN)]2+) was also prepared by replacement reactions of the chlorido ligand in CH3CN. Using these complexes, ligand-centered redox behavior was studied by electrochemical and spectroelectrochemical techniques. The molecular structures of pynp-containing complexes (two stereoisomers of [Ru(bpy)(pynp)(CO)Cl]PF6 and [Ru(pynp)2(CO)Cl]PF6) were determined by X-ray structure analyses.  相似文献   

14.
Aryl M(κ1-Ar)(CO)nP5−n [M = Mn, Re; Ar = C6H5, 4-CH3C6H4; n = 2, 3; P = P(OEt)3, PPh(OEt)2, PPh2OEt] and Re(κ1-C6H5)(CO)3[Ph2PO(CH2)3OPPh2] complexes were prepared by allowing hydrides MH(CO)nP5−n to react first with triflic acid and then with the appropriate aryl lithium (LiAr) compounds. The complexes were characterized spectroscopically (IR and 1H, 31P, 13C NMR) and by the X-ray crystal structure determination of Re(κ1-C6H5)(CO)3[Ph2PO(CH2)3OPPh2] derivative. Protonation reaction of the aryl complexes with HBF4 · Et2O lead to free hydrocarbons Ar-H and the unsaturated [M(CO)nP5−n]+ cations, separated as solids in the case of [Re(CO)3P2]BF4 derivatives.  相似文献   

15.
The reactions of the halogenoalkyl compounds [Cp(CO)3W{(CH2)nX}] (Cp = η5-C5H5; n = 3-5; X = Br, I) and [Cp(CO)2(PPhMe2)Mo{(CH2)3Br}] with the nucleophiles Z = CN and gave compounds of the type [Cp(CO)3W{(CH2)nZ}] for the tungsten compounds, whilst cyclic carbene compounds were obtained from the reactions of the molybdenum compound. The reactions of [Cp(CO)3W{(CH2)nBr}] (n = 3, 4) and [Cp(CO)2(PPhMe2)Mo{(CH2)3Br}] with gave [Cp(CO)3W{(CH2)nONO2}] and [Cp(CO)2(PPhMe2)Mo{(CH2)3ONO2}], respectively. The reaction of [Cp(CO)3W{(CH2)nBr}] with AgNO2 gave [Cp(CO)3W{(CH2)nNO2}]. In the solid state the complex [Cp(CO)3W{(CH2)3NO2}] crystallizes in a distorted square pyramidal geometry. In this molecule the nitropropyl chain deviates from the ideal, all-trans geometry as a result of short, non-hydrogen intermolecular N-O?O-N contacts. The reactions of the heterobimetallic compounds [Cp(CO)3W{(CH2)3}MLy] {MLy = Mo(CO)3Cp, Mo(CO)3Cp and Mo(CO)2(PMe3)Cp; Cp = η5-C5(CH3)5} with PPh3 and CO were found to be totally metalloselective, with the ligand always attacking the metal site predicted by the reactions of the corresponding monometallic analogues above with nucleophiles. Thus the compounds [Cp(CO)3W{(CH2)3}C(O)MLz] {MLz = Mo(CO)2YCp, Mo(CO)2YCp and Mo(CO)Y(PMe3)Cp; Y = PPh3 or CO} were obtained. Similarly, the reaction of [Cp(CO)2Fe{(CH2)3}Mo(CO)2(PMe3)Cp] with CO gave only [Cp(CO)2Fe{(CH2)3C(O)}Mo(CO)2(PMe3)Cp]. Hydrolysis of the bimetallic compound, [Cp(CO)3W(CH2)3C(O)Mo(CO)(PPh3)(PMe3)Cp], gave the carboxypropyl compound [Cp(CO)3W{(CH2)3COOH}]. Thermolysis of the compound [Cp(CO)2Fe(CH2)3Mo(CO)3(PMe3)Cp] gave cyclopropane and propene, indicating that β-elimination and reductive processes had taken place.  相似文献   

16.
The reaction of Os3(CO)12 with an excess of 1-hydroxypyridine-2-thione and Me3NO gives three mononuclear osmium complexes Os(CO)22-SC5H4N(O))2 (1), Os(CO)22-SC5H4N(O))(η2-SC5H4N) (2), and Os(CO)22-SC5H4N)2 (3). The results of single-crystal X-ray analyses reveal that complex 1 contains two O,S-chelate pyridine-2-thione N-oxide (PyOS) ligands, whereas complex 2 contains one O,S-chelate PyOS and one N,S-chelate pyridine-2-thiolate group. The unique structure of 2 provides evidence of the pathway for this transformation. When this reaction was monitored by 1H NMR spectroscopy the triosmium complexes Os3(CO)10(μ-H)(μ-η1-S-C5H4N(O)) (4) and Os3(CO)9(μ-H)(μ-η12-SC5H4N(O)) (5) were identified as intermediates in the formation of the mononuclear final products 1-3. The proposed pathway is further supported by the observation of several dinuclear osmium intermediates by electrospray ionization mass spectrometry. In addition, the reaction of Os3(CO)12 with 1-hydroxypyridine-2-thione in the absence of Me3NO at 90 °C generated mononuclear complex 2 as the major product along with smaller amounts of complexes 1 and 3. These results suggest that the N-oxide facilitates the decarbonylation reaction. Crystal data for 1: monoclinic, space group C2/c, a = 26.9990(5) Å, b = 7.6230(7) Å, c = 14.2980(13) Å, β = 101.620(2)°, V = 2882.4(4) Å3, Z = 8. Crystal data for 2: monoclinic, space group C2/c, a = 5.7884(3) Å, b = 13.9667(7) Å, c = 17.2575(9) Å, β = 96.686(1)°, V = 1385.69(12) Å3, Z = 4.  相似文献   

17.
A new piezoelectric quartz crystal (PQC) sorption detector was developed to monitor carbon monoxide (CO) at sub-ppm level in ambient air. Out of the 28 coating materials studied, the palladium(II) acetamide complex with a 1:10 mole ratio of Pd(II) to acetamide was found to be the best. The detection is based on a non-reversible gas/coating interaction with sensitivity depending on gas flowrate. For 5-15 min exposure at a flowrate of 50 ml/min, the working ranges were found to vary from 0.7 to 40 ppm (total exposure from 8 to 160 μg CO) and detection limits (S/N=2) from 0.7 to 2 ppm CO (total exposure to 8 μg CO). The repeatability at 10 ppm CO was 11.8% (R.S.D. for n=3). The sensor lifetime was found dependent on exposure up to 160 μg CO or not exceeding 1000 Hz accumulative shift of frequency to avoid saturation of active sites at the crystal surface. No interference to CO detection was found for H2, H2S, SO2, NO2, CO2, HCHO, gasoline and water vapors at concentrations much higher than ambient air. Compared to existing CO monitor, the PQC detector developed has advantages of adequate selectivity, high sensitivity, fast response and a much lower detection limit for detecting CO at sub-ppm levels. However, it is limited by the total exposure to a maximum of 160 μg CO that restricts its application to intermittent monitoring of low CO concentration. The present work has demonstrated the advantages of using strong non-reversible interaction to enhance PQC sensitivity, as the total exposure can be adjusted easily by a suitable control of the gas flowrate.  相似文献   

18.
The syntheses and characterisation of the Co(III) complexes [(L)Co(O2CO)]ClO4 (L = a tripodal tetraamine ligand = baep, abap, uns-penp, dppa, trpn) are reported. Geometric isomers are possible for all but the trpn complex, owing to the non-equivalence of the three arms on the tripodal ligand, and both NMR and X-ray crystallography are used to identify the single isomer formed. X-ray crystal structures of the complexes [(L)Co(O2CO)]ClO4 · xH2O (L = baep, x = 0.5; L = abap, x = 0; L = uns-penp, x = 1; L = dppa, x = 0; L = trpn, x = 1) are reported; little variation is observed in the geometry of the carbonate chelate ring while significant lengthening of bonds and expansion of angles involving the cobalt ion occurs as the number of six-membered chelate rings in the complex cations increases. 59Co NMR chemical shift data for the complexes show the expected linear relationship between λmax, the wavelength of the lowest energy dd transition, and γ, the magnetogyric ratio of the 59Co nucleus. An excellent correlation between Δ, the d orbital splitting parameter, and δ(59Co) also exists for these complexes. Rate data for the acid hydrolysis of [(L)Co(O2CO)]+ (L = uns-penp, dppa) in 1.0 M HClO4 differ by two orders of magnitude, and this is attributed to the differing steric accessibility of the endo O atoms in each complex. DFT calculations on the complexes reproduce the isomeric preferences, UV–Vis and 59Co NMR spectroscopic data well, provided that solvent effects are included.  相似文献   

19.
Acetato-bis(pyrazole) complexes [Mo(η3-methallyl)(O2CMe)(CO)2(pzH)2], (methallyl = CH2C(CH3)CH2) and fac-[M(O2CMe)(CO)3(pzH)2], (pzH = pyrazole or 3,5-dimethylpyrazole, dmpzH; M = Mn, Re) are obtained from [Mo(η3-methallyl)Cl(CO)2(NCMe)2] or fac-[MBr(CO)3(NCMe)2] [M = Mn (synthesized in situ), Re], 2 equiv. of pyrazole, and 1 equiv. of sodium acetate for Mo complexes, or silver acetate for Mn or Re complexes. The chlorido-complexes [Mo(η3-methallyl)Cl(CO)2L2] (L = pzH, dmpzH), obtained from the same starting material by substitution of MeCN by pzH or dmpzH, are also described. The crystal structures of the fac-acetato-bis(dimethylpyrazole) complexes present the same pattern of intramolecular hydrogen bonds between the acetate and the dimetylpyrazole ligands, whereas the crystal structures of the fac-acetato-bis(pyrazole) complexes show different hydrogen bonds patterns, with intermolecular interactions. NMR data indicate that these interactions are not maintained in solution.  相似文献   

20.
The alkyl-bridged iron(II) complexes [{Cp(CO)2Fe}2{μ-(CnH2n)}] (n = 6-10, Cp = η5-C5H5) undergo both single and double hydride abstraction when reacted with one equivalent of Ph3CPF6 to give both the monocationic complexes, [{Cp(CO)2Fe}2{μ-(CnH2n−1)}]PF6, and the dicationic complexes, [{Cp(CO)2Fe}2{μ-(CnH2n−2)}](PF6)2. The ratios of monocationic to dicationic complexes decrease with the increase in the value of n. The complexes where n = 4 and 5 undergo only single hydride abstraction under similar conditions. When reacted with two equivalents of Ph3CPF6, the complexes where n = 6-10 undergo double hydride abstraction to give dicationic complexes only. In contrast, the complex where n = 5 gives equal amounts of the monocationic and the dicationic complexes, while the complex where n = 4 only gives the monocationic complex. 1H and 13C NMR data show that in the monocationic complexes one metal is σ-bonded to the carbenium ion moiety while the other is bonded in a η2-fashion forming a chiral metallacylopropane type structure. In the dicationic complexes both metals are bonded in the η2-fashion. The monocationic complexes where n = 4-6, react with methanol to give η1-alkenyl complexes[Cp(CO)2Fe(CH2)nCHCH2] (n = 2-4) as the major products and σ-bonded ether products [{Cp(CO)2Fe}2{μ-(CH2)nCH(OCH3)CH2}] as the minor products. The complex where n = 8 reacted with iso-propanol to give the η1-alkenyl complex [Cp(CO)2Fe(CH2)6CHCH2]. The dicationic complexes where n = 5, 8 and 9 were reacted with NaI to give the respective α, ω-dienes and [Cp(CO)2FeI].  相似文献   

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