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1.
The reaction of [60]fullerene with Me3SiCH2MgCl in 1,2-Cl2C6H4/THF (1/1) under dry air afforded a bis-alkyl adduct, C60(CH2SiMe3)2 (1), in 54% yield. Treatment of 1 with Me3SiCH2MgCl in THF under argon then afforded a trialkyl[60]fullerene, C60(CH2SiMe3)3H (2), in 37% yield. Further treatment of 2 with KOtBu gave a potassium salt, [K(thf)n][C60(CH2SiMe3)3] (3), which was then converted to a Cs-symmetric Rh(I) complex, Rh[η5-C60(CH2SiMe3)3](1,5-cyclooctadiene) (4), in 91% yield.  相似文献   

2.
Reaction of platinum(II) salts with 5-ferrocenylpyrimidine (FcPM) afforded cis-[Pt(NH3)2(FcPM)2](PF6)2 (1), trans-[Pt(NH3)2(FcPM)2](PF6)2 (2), cis-[PtCl2(FcPM)2] (3), and cis-[PtCl2(DMSO)(FcPM)] (4): their spectroscopic and electrochemical properties were investigated. Complexes 1 and 2 were structurally characterized by X-ray crystallography.  相似文献   

3.
Starting from the heterotopic multidentate ligand 1,2-phenylenebis(thio)diacetic acid (1), cis-rac-[PdCl2{1,2-(HOOCCH2S)2C6H42S,S′}] (2), cis-rac-[Rh{1,2-(HOOCCH2S)2C6H42S,S′}(cod)]BF4 (3) and cis-rac-[Ni{1,2-(OOCCH2S)2C6H44O,OS,S′}{cis-(C3H4N2)}2] (4) were prepared and characterised by X-ray diffraction and conventional spectroscopic techniques. Compounds 1-4 show extensive hydrogen-bonded networks (XH?O, X = O, N) in the solid state.  相似文献   

4.
Second-order rate constants, k2, for the substitution of the ferrocene-containing β-diketonato ligands FcCOCHCOR with R=CF3 (ferrocenoyltrifluroacetonato, fctfa, pKa 6.56), CCl3 (ferrocenoyltrichloroacetonato, fctca, 7.13), CH3 (ferrocenoylacatonato, fca, 10.01), Ph (anion of benzoylferrocenoylmethane, bfcm, 10.41) and Fc (anion of diferrocenoylmethane, dfcm, 13.1) (Ph=phenyl, Fc=ferrocenyl, values in brackets are the pKa values of the free β-diketones) from the complexes [Rh(cod)(FcCOCHCOR)] with 1,10-phenanthroline (phen, cod=1,5-cyclooctadiene) at 25 °C were found to be 560 (R=CF3), 1370 (CCl3), 30 (Ph), 18 (CH3) and 7.0 dm3 mol−1 s−1 (Fc), respectively. The temperature dependence of each reaction was determined and the large negative values obtained for activation, ΔS#<−100 J K−1 mol−1 for all but R=CCl3S#CCl3=−81 J K−1 mol−1), suggests an associative substitution mechanism. The rate law of the reaction was found to be R={ks+k2[phen]}[Rh(cod)(FcCOCHCOR)]. Since the solvent-associated rate constant ks≈0 for all R except Ph (ks,RPh=0.06 s−1) the solvent, methanol, plays a limited role in the reaction. Results are interpreted to imply that the rate-determining step during substitution is breaking of an RhO bond and not the formation of an RhN bond. The role of β-diketone pKa and group electronegativity, χ, of each R group on the rate of substitution are also discussed.  相似文献   

5.
The complex RhCl(P-N)(THP) (1) is synthesized under argon from RhCl(cod)(THP) and P-N, and is structurally characterized; P-N = P,N-chelated o-diphenylphosphino-N,N-dimethylaniline, THP = tris(hydroxymethyl)phosphine, and cod = 1,5-cyclo-octadiene. The corresponding synthesis in air yields RhCl[(O)P-N][THP(O)] (2), containing O-bonded phosphine oxide ligands.  相似文献   

6.
Treatment of the five-coordinate chlorodimethylsilyl complex, Os(SiMe2Cl)Cl(CO)(PPh3)2 with hydroxide readily produces Os(SiMe2OH)Cl(CO)(PPh3)2 (1). Complex 1 is deprotonated by tBuLi giving the silanolate complex, Os(SiMe2OLi)Cl(CO)(PPh3)2 (2), which reacts further with Me3SiCl or Me3SnCl to give Os(SiMe2OSiMe3)Cl(CO)(PPh3)2 (3) or Os(SiMe2OSnMe3)Cl(CO)(PPh3)2 (4), respectively. The structures of 3 and 4 have been determined by X-ray crystallography. Reaction between OsH(κ2-S2CNMe2)(CO)(PPh3)2 and HSiMe2Cl gives Os(SiMe2Cl)(κ2-S2CNMe2)(CO)(PPh3)2 (5). This six-coordinate chlorodimethylsilyl complex, is unreactive towards hydroxide at room temperature and at 60 °C forms Os[Si(OH)3](κ2-S2CNMe2)(CO)(PPh3)2 (7). Complex 5 is, however, smoothly converted to the hydroxy derivative, Os(SiMe2OH)(κ2-S2CNMe2)(CO)(PPh3)2 (6) upon chromatography on silica gel. Complex 6 is deprotonated by tBuLi giving the intermediate silanolate complex, Os(SiMe2OLi)(κ2-S2CNMe2)(CO)(PPh3)2, which reacts further with Me3SiCl to give Os(SiMe2OSiMe3)(κ2-S2CNMe2) (CO)(PPh3)2 (8). Crystal structure determinations for 5, 6, 7, and 8 have been obtained and structural comparisons of these related compounds are made.  相似文献   

7.
A series of cationic palladium complexes [(4-Mebti)PdL]+ with 4-Mebti = anion of bis(4-methylthiazolylimino)isoindoline and L = neutral ligand with group 16 donor atom has been prepared from the chlorido derivative [(4-Mebti)PdCl] and NaBArF (BArF = tetrakis(3,5-bis(trifluoromethyl)phenyl)boranate) in the presence of the respective donor ligand. Crystallographic and spectroscopic analyses were achieved for species with L = SMe2, SeMe2, dmf, acetamide, diphenylurea, and formiate. The latter two complexes represent products from hydrolyses of phenyl isocyanate and dmf, respectively, which occur during the ligand exchange reactions. Several other O-donor ligands like thf, acetone, Me2O, water, and others are not bound to the palladium ion, and the dinuclear μ-chlorido derivative [{(4-Mebti)Pd}2Cl]+ is isolated in these cases instead. The crystallographic analyses prove the expected presence of distorted, pseudo-planar palladium chelates, and the degree of distortion correlates well with the chemical shifts observed for the proton nuclei of the terminal methyl groups in the 1H NMR experiment.  相似文献   

8.
Treatment of the Rh(III) complex [Tp∗Rh(SPh)2(MeCN)] (1) with a series of late transition metal complexes resulted in the formations of thiolate-bridged di- and trinuclear complexes, which include the Rh(III)-Rh(I) complexes, [Tp∗RhCl(μ-SPh)2Rh(cod)] (2) and [Tp∗RhCl(μ-SPh)2Rh(PPh3)2], the Rh(III)-Pd(II) complexes, [Tp∗RhCl(μ-SPh)2Pd(η3-C3H5)] (4), [{Tp∗Rh(MeCN)}(μ-SPh)2PdCl2] (5), and [{Tp∗RhCl(μ-SPh)2}2Pd] (6), and the Rh(III)-Pt(II) complex [{Tp∗RhCl(μ-SPh)2}2Pt] (7). Early-late transition metal complexes containing the Rh(III)-Re(I) and Rh(III)-Mo(0) metal centers, [Tp∗RhCl(μ-SPh)2Re(CO)4] and [{Tp∗Rh(CO)}(μ-SPh)2Mo(CO)4] were also prepared from 1. The X-ray analysis has been carried out to confirm the structures for 2, 4, 5, 6, and 7.  相似文献   

9.
The synthesis of new β-diketonato rhodium(I) complexes of the type [Rh(FcCOCHCOR)(CO)2] and [Rh(FcCOCHCOR)(CO)(PPh3)] with Fc=ferrocenyl and R=Fc, C6H5, CH3 and CF3 are described. 1H, 13C and 31P NMR data showed that for each of the non-symmetric β-diketonato mono-carbonyl rhodium(I) complexes, two isomers exist in solution. The equilibrium constant, Kc, which relates these two isomers in an equilibrium reaction, are concentration independent but temperature and solvent dependent. ΔrG, ΔrH and ΔrS values for this equilibrium have been determined and a linear relationship between solvent polarity on the Dimroth scale and Kc exists. The relationship between RhP bond lengths, d(RhP), and 31P NMR peak positions as well as coupling constants 1J(31P103Rh) has been quantified to allow calculation of approximate d(RhP) values. Variations in d(RhP) for [Rh(RCOCHCOR′)(CO)(PPh3)] complexes have also been related to the group electronegativities (Gordy scale) of the terminal β-diketonato R groups trans to PPh3. A measure of the electron density on the rhodium centre of [Rh(RCOCHCOR′)(CO)(PPh3)] may be expressed in terms of the IR carbonyl stretching wave number, ν(CO), the sum of the group electronegativities of the R and R′ groups, (χR+χR′), or the observed pKa values of the free β-diketones RCOCH2COR. An empirical relationship between ν(CO) and either pKa or (χR+χR′) has also been quantified.  相似文献   

10.
Bis(diphenylphosphino)ethane (dppe) complexes of the type ReOCl(dppe)(O-O), where O-O = catecholate or tetrachlorocatecholate dianion, were prepared by reacting ReOCl3(dppe) with the catechol ligand in the presence of NEt3. X-ray diffraction on the tetrachlorocatecholate compound showed that the molecule adopts a distorted octahedral structure, in which the dppe ligand and the bidentate catecholate lie in the equatorial plane, perpendicular to the ORe-Cl unit. In contrast, for ReOCl(PPh3)2(O-O), the position trans to the ReO bond is occupied by a catecholate oxygen, whereas the two PPh3 ligands are trans to one another in the equatorial plane. The UV-Vis absorption spectrum of ReO(OMe)(dppe)(oxalate) is similar to those of ReO(OR)X2(dppe) compounds, showing two weak bands for the spin-allowed d-d transitions from the filled interaxial d orbital in the xy plane into the inequivalent metal dxz and dyz orbitals, respectively. For the catecholate complexes, the spectra are dominated by charge-transfer transitions from the HOMO π orbital of the catecholate ligand into the dxz and dyz orbitals. Both the singlet-singlet and the singlet-triplet transitions are generally observed. No information could be obtained on the weaker d-d transitions for the catecholate compounds.  相似文献   

11.
A series of new binuclear copper (II) and nickel (II) complexes of the macrocyclic ligands bis(1,4,7-triazacyclononan-1-yl)butane (Lbut) and bis(1,4,7-triazacyclononan-1-yl)-m-xylene (Lmx) have been synthesized: [Cu2LbutBr4] (1), [Cu2Lbut(imidazole)2Br2](ClO4)2 (2), [Cu2Lmx(μ-OH)(imidazole)2](ClO4)3 (3), [Cu2Lbut(imidazole)4](ClO4)4 · H2O (4), [Cu2Lmx(imidazole)4](ClO4)4 (5), [Ni2 Lbut(H2O)6](ClO4)4 · 2H2O (6), [Ni2Lbut(imidazole)6](ClO4)4 · 2H2O (7) and [Ni2Lmx (imidazole)4(H2O)2](ClO4)4 · 3H2O (8). Complexes 1, 2, 7 and 8 have been characterized by single crystal X-ray studies. In each of the complexes, the two tridentate 1,4,7-triazacyclononane rings of the ligand facially coordinate to separate metal centres. The distorted square-pyramidal coordination sphere of the copper (II) centres is completed by bromide anions in the case of 1 and/or monodentate imidazole ligands in complexes 2, 4 and 5. Complex 3 has been formulated as a monohydroxo-bridged complex featuring two terminal imidazole ligands. Complexes 6-8 feature distorted octahedral nickel (II) centres with water and/or monodentate imidazole ligands occupying the remaining coordination sites. Within the crystal structures, the ligands adopt trans conformations, with the two metal binding compartments widely separated, perhaps as a consequence of electrostatic repulsion between the cationic metal centres. The imidazole-bearing complexes may be viewed as simple models for the coordinative interaction of the binuclear complexes of bis (tacn) ligands with protein molecules bearing multiple surface-exposed histidine residues.  相似文献   

12.
Bis[1,2-bis(4-methylphenyl)ethanedione dioximato]nickel(II), [Ni{(C1)2dpg}2] (1), was found to exhibit shift in diffuse reflectance spectra from the corresponding non-methyl species. Characterization by X-ray crystal structural analysis on 1 and bis[1,2-bis(4-n-hexylphenyl)ethanedione dioximato]nickel(II), [Ni{(C6)2dpg}2] (2), revealed the presence of the edge-to-face aromatic interactions caused by the electron-donating effect of the methyl and hexyl groups. The Ni(dpg)2 units of complex 2 stack (staggered by 90°) at alternate intervals of 3.151 Å and 3.253 Å. Thus, the shift in the d-p transition of 2 was found to contain 43% of the effect of the edge-to-face aromatic interaction, together with 57% of the reported fastener effect.  相似文献   

13.
Single crystal X-ray structural characterizations are recorded for an array of adducts of the form {AgX:[dppc][PF6]}n (n = 1 or 2), [dppc][PF6] = 1,1′-bis(diphenylphosphino)cobaltocenium hexafluorophosphate, X = Cl, Br, NO3, NO2, C6H5CO2, CF3CO2. Synthetic procedures for all adducts are reported. All compounds have been fully characterised by elemental analysis and spectroscopic techniques. The structures in the solid state were found to depend on the nature of the counterion, for X = NO3, NO2, the complex being monomeric {[dppc-P,P′]Ag(NO3)2} or {[dppc-P,P′]Ag(NO2)}, for X = Cl, Br, C6H5CO2, CF3CO2, the complex is a dimer.  相似文献   

14.
Oxidative addition of 1-bromo-1H-indene to [Mo(CO)3(NCMe)3] and [W(CO)3(NCEt)3] is a suitable method for preparation of the indenyl compounds [IndMo(CO)3Br] and [IndW(CO)3Br], respectively. These products were fully characterised using spectroscopic methods. Structure of [IndW(CO)3Br] was determined by single crystal X-ray diffraction analysis.  相似文献   

15.
A new potentially tetradentate (N4) Schiff base ligand (L), 1,9,12,20-tetraazatetracyclo[18.2.2.02,7.014,19]tetracosa-2(7),3,5,8,12,14(19),15,17-octaene containing a piperazine moiety is described. Macrocyclic Schiff base complexes, [NiL](ClO4)2 (1) and [CuL](ClO4)2 (2) have been obtained from equimolar amounts of ligand (L) with nickel(II) and copper(II) metal ions. While the equilibrium reaction in the presence of cobalt(II) and zinc(II) metal ions with ligand L in a 1:1 molar ratio yielded the open-chain Schiff base complexes, [CoL′](ClO4)2 (3) and [ZnL′](ClO4)2 (4) containing two terminal primary amino groups. The ligand L′ is 1,4-bis(2-(2-aminoethyliminomethyl)phenyl)piperazine. The crystal structures of (1) and (4) have been also determined by X-ray diffraction. It was shown that the Ni(II) is coordinated to the ligand L by two nitrogen atoms of piperazine group and two nitrogen atoms of the imine groups, in a slightly distorted square-planar geometry. Also single crystal X-ray analysis of (4) confirmed a distorted octahedral arrangement in the vicinity of Zn atom with N6 donor set. The spectroscopic characterization of all complexes is consistent with their crystal structures.  相似文献   

16.
The synthesis and X-ray crystal structures of the following bis(amidinate)-substituted boron halides are reported: 1,3-C6H4[C{N(SiMe3)}2BCl2]2 (3), 1,4-C6H4[C{N(SiMe3)}2BCl2]2 (4), 1,4-C6H4[C{N(SiMe3)}2B(Ph)Cl]2 (5), 1,4-C6H4[C{NCy}2BCl2]2 (6), and 1,4-C6H4[C{NCy}2B(Ph)Cl]2 (7). Compounds 3-5 were prepared by trimethylsilyl chloride elimination, while 6 and 7 were prepared via salt metathesis reactions of the appropriate dilithium bis(amidinates) with BCl3 or PhBCl2. The molecular structures of complexes 3, 5, and 6 were determined by single-crystal X-ray diffraction, along with that of the free bis(amidine) 1a.  相似文献   

17.
The reaction of FcCOCl (Fc = (C5H5)Fe(C5H4)) with benzimidazole or imidazole in 1:1 ratio gives the ferrocenyl derivatives FcCO(benzim) (L1) or FcCO(im) (L2), respectively. Two molecules of L1 or L2 can replace two nitrile ligands in [Mo(η3-C3H5)(CO)2(CH3CN)2Br] or [Mo(η3- C5H5O)(CO)2(CH3CN)2Br] leading to the new trinuclear complexes [Mo(η3-C3H5)(CO)2(L)2Br] (C1 for L = L1; C3 for L = L2) and [Mo(η3-C5H5O)(CO)2(L)2Br] (C2 for L = L1; C4 for L = L2) with L1 and L2 acting as N-monodentade ligands. L1, L2 and C2 were characterized by X-ray diffraction studies. [Mo(η3-C5H5O)(CO)2(L1)2Br] was shown to be a trinuclear species, with the two L1 molecules occupying one equatorial and one axial position in the coordination sphere of Mo(II). Cyclic voltammetric studies were performed for the two ligands L1 and L2, as well as for their molybdenum complexes, and kinetic and thermodynamic data for the corresponding redox processes obtained. In agreement with the nature of the frontier orbitals obtained from DFT calculations, L1 and L2 exhibit one oxidation process at the Fe(II) center, while C1, C3, and C4 display another oxidation wave at lower potentials, associated with the oxidation of Mo(II).  相似文献   

18.
Reaction of [(p-cymene)RuCl2(PPh3)] (1) or [CpMCl2(PPh3)] (Cp = C5Me5) (3a: M = Rh; 4a: M = Ir) with 1-alkynes and PPh3 were carried out in the presence of KPF6, generating the corresponding alkenyl-phosphonio complexes, [(p-cymene)RuCl(PPh3){CHCR(PPh3)}](PF6) (2a: R = Ph; 2b: R = p-tolyl) or [CpMCl(PPh3){CHCPh(PPh3)}](PF6) (5: M = Rh; 6: M = Ir). Similar reactions of complexes [CpRhCl2(L1)] (3a: L1 = PPh3; 3c: L1 = P(OMe)3) with L2 (L2 = PPh3, PMePh2, P(OMe)3) gave [CpRhCl(L1)(L2)](PF6) (7bb: L1 = L2 = PMePh2; 7ca: L1 = P(OMe)3, L2 = PPh3; 7cc: L1 = L2 = P(OMe)3). Alkenyl-phosphonio complex 5 was treated with P(OMe)3 or 2,6-xylyl isocyanide, affording [CpRhCl(L){CHCPh(PPh3)}](PF6) (8a: L = P(OMe)3; 8b: L = 2,6-xylNC). X-ray structural analyses of 2a, 6 and 8a revealed that the phosphonium moiety bonded to the Cβ atom of the alkenyl group are E configuration.  相似文献   

19.
Rhodium(III) complexes of 1,2-naphthoquinone-1-oxime (1-nqo) [Rh(1-nqo)L2Cl2] 1-3 [1, L = 4-methylpyridine (mpy); 2, L = 4-phenylpyridine (ppy); 3, L = 4-acetylpyridine (apy)] were prepared. The structure of complex 1 is analyzed by single crystal X-ray crystallography. All of the complexes were characterized by mass spectrometry, 1H-1H COSY NMR and FT-IR. UV-Vis absorption spectroscopy and cyclic voltammetry were employed to investigate the electronic transition behaviors of the complexes. The complexes displayed irreversible metal-localized two-electron reductions from RhIII to RhI on the cyclic voltammogram. While the low-energy absorptions at λmax of 488-490 nm on the UV-Vis spectra of the complexes were related to metal to 1-nqo ligand charge transfer [MLCT, dπ(Rh) → π∗(1-nqo)] and chloride to 1-nqo ligand charge transfer [LLCT, pπ(Cl) → π∗(1-nqo)] based on the theoretical calculations using time-dependent density functional theory (TD-DFT).  相似文献   

20.
Reactions of [(p-cymene)RuCl2]2 (1a) with dpmp ((Ph2PCH2)2PPh) in the absence or presence of KPF6 afforded the ionic complexes [{(p-cymene)RuCl2}(dpmp-P1,P3;P2){RuCl(p-cymene)}](X) (2a1: X=Cl; 2a2: X=PF6). A (p-cymene)RuCl moiety constructs a 6-membered ring coordinated by two terminal P atoms of the dpmp ligand and another one binds to a central P atom of the ligand. Reactions of [(C6Me6)RuCl2]2 (1b) with an excess of dpmp in the presence of KPF6 gave a 4-membered complex [(C6Me6)RuCl(dpmp-P1,P2)](PF6) (3b), chelated by a terminal and a central P atom and another terminal atom is free. Use of Ag(OTf) instead of KPF6 gave [{(C6Me6)RuCl2(dpmp)Ag} 2](OTf)2 (5b) that the Ag atoms were coordinated by a terminal and a central P atom of each dpmp ligand. Reaction with an equivalent of dpmp in the presence of KPF6 gave [{(C6Me6)RuCl}(dpmp-P1,P2;P3){(C6Me6)RuCl2}](PF6) 4b. Complex has a structure that the (C6Me6)RuCl2 moiety coordinated to the free P atom of 3b. Complex 3b was treated with MCl2(cod) (M=Pd, Pt), [Pd(MesNC)4](PF6)2 (MesNC=2,4,6-Me3C6H2NC) or [Pt2(XylNC)6](PF6)2 (XylNC=2,6-Me2C6H3NC), generating [{(C6Me6)RuCl(dpmp)}2MCl2](PF6)2 (8b: M=Pd; 9b: M=Pt), [{(C6Me6)RuCl(dpmp)}2{Pt(MesNC)2}](PF6)4 (10b) and [{(C6Me6)RuCl(dpmp)}2{Pt2(XylNC)4}](PF6)4 (11b), respectively. Complex 3b reacted readily with [Cp*MCl2]2 (M=Rh, Ir) or AuCl(SC4H8), affording the corresponding hetero-binuclear complexes [{(C6Me6)RuCl}(dpmp-P1,P2;P3)(MCl2Cp*](PF6) (6b: M=Rh; 7b: M=Ir) and [{(C6Me6)RuCl}(dpmp-P1,P2;P3)(AuCl)](PF6) (12b). These complexes have two chiral centers. Some complexes were separated as two diastereomers by successive recrystallization. The structures of 3b, 5b, 6b, 8b and 12b were confirmed by X-ray analyses.  相似文献   

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