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1.
The acetamidinates {[MeNC(Me)NMe]2Ln}2[μ-η22-MeNC(Me)NMe]2 (Ln = Y (1), Dy (2)) and {[PrnNC(Me)NPrn]2Y}2[μ-η22-PrnNC(Me)NPrn]2 (3) have been prepared by the reactions of amides Ln[N(SiMe3)2]3 with respective N,N′-disubstituted amidines MeNC(Me)NHMe or PrnNC(Me)NHPrn. The reaction of Er[N(SiMe3)2]3 with excess of monosubstituted amidine HNC(Me)NHPri or in a ratio of 1:2 resulted in the formation of compound {Er[NC(Me)NHPri]3}x (4). The same reaction with 1:1 ratio yielded heteroleptic complex {Er[N(SiMe3)2]2[NC(Me)NHPri]}x (5). The complexes 1, 2 and 3 have similar structures and contain four terminal and two μ-η22-N,N-bridging amidinate groups binding the metal atoms. Volatility of 1, 2 and 3 is comparable to that of known monomeric La[PriNC(R)NPri]3. Compound 1 efficiently catalyzes the ring-opening polymerization of rac-lactide to give polylactide with Mn 53 085 and polydispersity 1.84.  相似文献   

2.
Using two different reaction methodologies, two alkali metal-magnesium alkyl bis(amide) complexes were synthesised. First the lithium magnesiate LiMg{μ-N(SiMe3)2}2(tBu) (1) was prepared by combining equimolar quantities of tBuLi and Mg{N(SiMe3)2}2 in hydrocarbon solvent. An X-ray crystallographic study revealed that the asymmetric unit of 1 has a dinuclear arrangement, based on a planar Li-N-Mg-N four-membered ring. As a result of the presence of intermolecular agostic interactions between the Li centre of one asymmetric unit and a methyl group which is resident on the terminal tert-butyl group of another, 1 is polymeric in the solid-state. Second the sodium magnesiate NaMg{μ-N(SiMe3)2}2(tBu) · (OEt2) (2) was prepared by reacting two molar equivalents of Na{N(SiMe3)2} with one molar equivalent of tBuMgCl in hydrocarbon/diethyl ether solution. X-ray crystallographic analysis revealed that the asymmetric unit of 2 consisted of a dinuclear molecular arrangement. As expected it is not polymeric due to the coordination of the Lewis basic ether. Stabilizing intramolecular agostic Na?C bonds are observed (where C is a methyl group resident on a Si atom).  相似文献   

3.
Diamido-supported rare earth metal amides with the general formula {(CH2SiMe2)[(2,6-iPr2C6H3)N]2}LnN(SiMe3)2(THF) [(Ln = Yb(1), Y(2), Dy(3), Sm (4), Nd (5)] were found to be highly efficient catalysts for the guanylation of both aromatic and heterocyclic amines under mild conditions. It is found that these catalysts are compatible with a wide range of substituents such as iPr, Me, and MeO having electron-donating property and substituents such as Cl, Br, and O2N having electron-withdrawing property on the aromatic rings of the aromatic or the heterocyclic amines. The methodology has also the advantages of easy preparation of the catalysts, quick conversion of the substrates to products, mild reaction conditions, and low catalyst loading.  相似文献   

4.
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   

5.
The ansa-titanocene complexes, [Ti{Me2Si(η5-C5Me4)(η5-C5H3R)}Cl2] (R = Me (5), iPr (6), tBu (7), SiMe3 (8)), were obtained from the reaction of Li2{Me2Si(C5Me4)(C5H3R)} (R = Me (1), iPr (2), tBu (3), SiMe3 (4)) with [TiCl4(THF)2], respectively. Compounds 5-8 have been tested as catalysts in the polymerization of ethylene and compared with the ansa-titanocene complexes [Ti{Me2Si(η5-C5H4)2}Cl2] and [Ti{Me2Si(η5-C5Me4)(η5-C5H4)}Cl2]. The resulting polyethylene showed molecular weights of about 200 000 g mol−1 and polydispersity values of approximately 3. In addition, the molecular structure of 6 has been determined by single crystal X-ray diffraction studies.  相似文献   

6.
The reactions of a self-assembled silver(I) coordination polymer, [Ag2{μ-PriN(PPh2)2}(μ-NO3)2]n (1) with various bidentate N-donor ligands such as DABCO, 2,2′-bipyridyl and 1,10-phenanthroline yield 1-D helices or π-π stacked polymers, depending on the chelate vector of the N-donor ligand. The molecular structures of the resultant complexes, [Ag2{μ-PriN(PPh2)2}(DABCO)(NO3)2]n (2), [Ag2{μ-PriN(PPh2)2}(2,2′-bipy)2(NO3)2] (3) and [Ag2{μ-PriN(PPh2)2}(1,10-phen)2](NO3)2 (4) have been confirmed by single-crystal X-ray diffraction. Complex 2 exists as an infinite helical polymer because of the exo-bidentate nature of DABCO. Complex 3 assumes a 2D grid motif as a result of intermolecular π-π stacking among adjacent bipyridine moieties. The phenanthroline complex 4 exhibits strong inter- and intramolecular π-π stacking interactions.  相似文献   

7.
Bo Shen 《Inorganica chimica acta》2008,361(5):1255-1260
Reaction of anhydrous YCl3 with 1 equiv. of arylamido lithium 2,6-iPr2C6H3NSiiPr3Li in THF gave an anionic mono-arylamido-ligated yttrium dichloride complex {[2,6-iPr2C6H3NSiiPr3]YCl2(THF)}2[LiCl(THF)2] (1). Alkylation of 1 with 4 equiv. of LiCH2SiMe3 afforded an anionic arylamido-ligated yttrium tris(alkyl) complex [2,6-iPr2C6H3NSiiPr3]Y(CH2SiMe3)3Li(THF)2 (2). Both complexes were characterized by NMR, elementary analysis, and X-ray structural determination.  相似文献   

8.
Three bulky silanes, [SiH2Mes2] (1), [SiHMeMes2] (2), SiHMes3 (3), two novel amines, [NH(SiHMes2)2] (4), NH2(SiMeMes2) (5), and three novel alkali metal ion complexes, [Na{N(SiHMes2)2}(OEt2)] (6), Li{N(SiHMes2)2} (7), K{N(SiHMes2)2} (8), have been synthesized and characterized by multinuclear NMR and mass spectroscopy. The structures of compounds 1, 4 and 6 have been determined by X-ray crystallography. The spectroscopy and structural results are discussed.  相似文献   

9.
By comparing the nephelauxetic ratios β of a number of molecular PrIII compounds, and the Slater parameters F2 (or Racah parameters E1) of molecular NdIII and selected SmIII compounds, presumably more covalent types of EuIII compounds could be identified. Powdered [Eu{N(SiMe3)2}3] (1), “[Eu{OC(tBu)3}3]” (“3”) and [Eu(η5-C5H5)3(CNC6H11)] (5) were resynthesized following usual procedures. The absorption transitions 7F0 → 5D0 of an oriented single crystal of 1, a glassy frozen solution of 1 dissolved in a mixture of 2-MeTHF/THF (ratio 3:1) ([Eu{N(SiMe3)2}3(THF)], (2)), of “3” dissolved in 2-MeTHF ([Eu{OC(tBu)3}3(MeTHF)], (4)), and of 5 dissolved in a mixture of the inert solvents methylcyclohexane/toluene (ratio 1:1), were measured at room and low temperatures (90 K). The energy differences of this transition for compounds 1, 2, 4 and 5 are larger than those of [Eu(H2O)9]3+ or even gaseous Eu3+, indicating quasi “anti-nephelauxetic” effects. Crystal field calculations, however, reveal that lower Slater parameters F2 (or Racah parameters E1) have to be used than those of [Eu(H2O)9]3+ in order to reproduce the experimental energy differences between 7F0 and 5D0, thus indicating the expected nephelauxetic effects of more covalent EuIII compounds.  相似文献   

10.
《Inorganica chimica acta》2004,357(15):4568-4576
The synthesis of palladacyclic derivatives with the hybrid pyridylphosphine ligands Py(CH2)OPPh2 (a) and PyNHPPh2 (b) in a neutral P,N-chelating coordination mode has been achieved. Treatment of selected chloride-bridged cyclometallated precursors [Pd(CN)(μ-Cl)]2 [CN = 2-pyridinin-phenyl Phpy, I-compounds; 7,8-benzoquinolyl Bzq, II-compounds; phenylazophenyl Azb, III-compounds or 2-(2-oxazolinyl)phenyl Phox, IV-compounds] with a or b in the presence of stoichiometric KPF6 gave the mononuclear derivatives Ia-IVa and Ib-IVb. The crystal structures of compounds [Pd(Azb)(Ph2POCH2Py-P,N)][PF6] (IIIa) and [Pd(Phpy)(Ph2PNHPy-P,N)][PF6] (Ib) have been determined. The new palladacyclopentadiene precursor [Pd{C4COOMe4}(CH3CN)2] (V) has been prepared starting from the polymeric complex [Pd{C4COOMe4}]n. Its usefulness in the preparation of new derivatives has been tested by means of the straightforward reaction with ligands (a) or (b) to give mononuclear compounds [Pd{C4(COOMe)4}(Ph2POCH2Py-P,N)] (Va) and [Pd{C4(COOMe)4}(Ph2PNHPy-P,N)] (Vb). The reactions of hydroxo-bridged precursors [Pd(CN)(μ-OH)]2 or [Pd2{C4(COOMe)4}2 (μ-OH)2][NBu4]2 with PyNHPPh2 afforded mononuclear complexes Ic-Vc in which a less common anionic P,N-binding mode is forced as a result of ligand deprotonation. The new complexes were characterised by partial elemental analyses and spectroscopic methods (IR, FAB, 1H and 31P{1H} NMR).  相似文献   

11.
New scandium and yttrium complexes ScL2(bpzmp)(THF) {L = Cl (1); L = CH2Si(CH3)3 (3)}, YL2(bpzmp) {L = Cl (2); L = OTf (5)} and Y(CH2SiMe3)2(bpzmp)(THF) (4) bearing the heteroscorpionate bpzmp ligand {bpzmp = (3,5-tBu2-2-phenoxo)bis(3,5-Me2-pyrazol-1-yl)methane} have been synthesized and characterized by means of NMR and Mass spectroscopy. The tridentate monoanionic ligand resulted κ3-coordinated to the metal via the oxygen and both the sp2 nitrogen atoms of the heterocycles, producing complexes in CS symmetry.The behavior of 1-4 in ethylene polymerization was investigated after proper activation with different activating agents. Complex 4, in combination with the Brönsted or Lewis acids [PhNMe2H][B(C6F5)4] or [Ph3C][B(C6F5)4], produced linear high molecular weight polyethylene in good yield.  相似文献   

12.
The synthesis of palladacyclopentadiene derivatives with the mixed-donor bidentate ligands o-Ph2PC6H4CHNR (NP) has been achieved. The new complexes of general formula [Pd{C4(COOMe)4}(o-Ph2PC6H4CHNR)] [R=Me (1), Et (2), iPr (3), tBu (4), NHMe (5)] have been prepared by reaction between the precursor [Pd{C4(COOMe)4}]n and the corresponding iminophosphine. The polymer complex [Pd{C4(COOMe)4}]n also reacts with pyridazine (C4H4N2) to give the insoluble dinuclear complex [Pd{C4(COOMe)4}(μ-C4H4N2)]2 (6), which has been successfully employed as precursor in the synthesis of pyridazine-based palladacyclopentadiene complexes. The reaction of 6 with tertiary phosphines yielded complexes containing an N,P-donor setting of formula [Pd{C4(COOMe)4}(C4H4N2)(L)] (L=PPh3 (7), PPh2Me (8), P(p-MeOC6H4)3 (9), P(p-FC6H4)3 (10)). The new complexes were characterized by partial elemental analyses and spectroscopic methods (IR, 1H, 19F and 31P NMR). The molecular structure of complex 3 has been determined by a single-crystal diffraction study, showing that the iminophosphine acts as chelating ligand with coordination around the palladium atom slightly distorted from the square-planar geometry.  相似文献   

13.
The germanium(II) aryloxide complexes (S)-[Ge{O2C20H10-(SiMe2Ph)2-3,3′}{NH3}] (1) and [Ge(OC6H3Ph2-2,6)2] (2) react with either ButI or MeI to yield the corresponding germanium(IV) compounds (S)-[Ge{O2C20H10-(SiMe2Ph)2-3,3′}{But}{I}] (3), (S)-[Ge{O2C20H10-(SiMe2Ph)2-3,3′}{Me}{I}] (4), [Ge(OC6H3Ph2-2,6)2(But)(I)] (5), and [Ge(OC6H3Ph2-2,6)2(Me)(I)] (6). Compound 6 reacts with 2,6-diphenylphenol to yield [Ge(OC6H3Ph2-2,6)3(Me)] (7), while 3-5 do not. The X-ray crystal structures of 3-5 and 7 were determined, and 3-5 represent the first structurally characterized germanium(IV) species having germanium bound to both oxygen and iodine.  相似文献   

14.
The preparation of a series of 1,2-phenylenedioxoborylcyclopentadienyl-metal complexes is described. These are of formula [M{η5-C5H4(BX)}Cl3] [M = Ti and X = CAT (2a), CATt (2b) or CATtt (2c); X = CATtt and M = Zr (4a) or Hf (4b)], [M{η5-C5H4(BX)}2Cl2] [M = Zr, X = CAT (3a) or CATt (3c); or M = Hf, X = CAT (3b) or CATt (3d)], [M{(μ-η5-C5H3BCAT)2 SiMe2}Cl2] [M = Zr (5a) or Hf (5b)], [M{η5-C5H3(BCAT)2}Cl3] [M = Zr (6a) or Hf (6b)], [M{η5-C5H4BCAT}3(THF)] [M = La (7a), Ce (7b) or Yb (7c)], [Sn{η5-C5 H4(BCATt)}Cl](8) and [Fe{η5-C5H4(BCATt)}2] (9). The abbreviations refer to BO2C6H4-1,2 (BCAT) and the 4-But (BCATt) and the (BCATtt) analogues. The compounds 2a-9 have been characterised by microanalysis, multinuclear NMR and mass spectra. The single crystal X-ray structure of the lanthanum compound 7a is presented.  相似文献   

15.
The metathetical reaction of calcium diiodide with KNR2 in the presence of N,N,N′,N′-tetramethylethylendiamine yields the corresponding amido calcium bases [(tmeda)Ca(tmp)2] (1), [(tmeda)Ca{N(SiMe3)2}2] (3), and [(tmeda)Ca(NiPr2)2] (4) regardless of the stoichiometric ratio of the starting compounds. All compounds are highly air and moisture sensitive. Only in the case of NR2 being a tmp group very few crystals of the Hauser base-type dimeric derivative [(tmeda)Ca(tmp)(μ-I)]2 (2) with bridging iodide ions can be isolated. In all these calcium complexes the amides are bound terminally and contain planarily coordinated nitrogen atoms. The calcium complex [(tmeda)Ca(NiPr2)2] (4) is much more reactive than the lighter magnesium congener and therefore, it has to be stored below 0 °C in order to avoid decomposition reactions.  相似文献   

16.
A family of neutral and solvent-free bis(amidinate) rare earth metal amide complexes with a general formula [RC(N-2,6-Me2C6H3)2]2LnN(SiMe3)2 (R = phenyl (Ph), Ln = Y (1), Nd (2); R = cyclohexyl (Cy), Ln = Y (3), Nd (4)) were synthesized in high yields by one-pot salt metathesis reaction of anhydrous LnCl3, amidinate lithium salt [RC(N-2,6-Me2C6H3)2]Li, and NaN(SiMe3)2 in THF at room temperature. Single crystal structural determination of complexes 1, 2 and 4 revealed that the central metal adopts distorted pyramidal geometry. In the presence of 1 equivalent of iPr-OH, all these complexes were active for l-lactide polymerization in toluene at 70 °C to give high molecular weight (Mn > 104) polymers.  相似文献   

17.
The reactions of the N-heterocyclic carbene (NHC) stabilised group 13 trihydride complexes [AlH3(IMeMe)] (1) (IMeMe = 1,3,4,5-tetramethylimidazol-2-ylidene), [AlH3(IiPrMe)] (2) (IiPrMe = 1,3-diisopropyl-4,5-dimethylimidazol-2-ylidene) with three molar equivalents of phenol, and [InH3(IMes)] (3) (IMes = 1,3-bis(2,4,6-trimethylphenyl)imidazole-2-ylidene) with one molar equivalent of 1,1,1,5,5,5-hexafluoropentan-2,4-dione (F6acacH) are presented. These render the imidazolium tetraphenoxyaluminate species; [IMeMe · H][Al(OPh)4] (4) and [IiPrMe · H][Al(OPh)4] (5), and 1,3-bis(2,4,6-trimethylphenyl)imidazolium 1,1,1,5,5,5-hexafluoropentan-2,4-dionate; [IMes · H][CH{C(O)CF3}2] (6), the latter leading to metallohydride decomposition. The molecular structures of 4 and 6 are described.  相似文献   

18.
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   

19.
《Inorganica chimica acta》2004,357(4):1219-1228
The new mononuclear [FeCl2(HOPri)4] (1), polymeric [{Cl3Fe(μ-Cl)Fe(HOPri)4}n] (2) and binuclear [I2Fe(μ-I)2Fe(PriOH)4] (3) iron(II) complexes have been synthesized in high yields in propan-2-ol or toluene/propan-2-ol mixtures at room temperature. Magnetic moment measurements, 57Fe Mössbauer spectroscopy data and the results of semi-empirical quantum mechanical calculations confirmed the high-spin configuration of the iron(II) centres, which were shown to be four- and/or six-coordinate by single crystal X-ray diffraction analyses. Intermolecular hydrogen bonding was observed in the solid state structure of 1, intramolecular interactions in 2, while both intra- and intermolecular association was seen in 3. Long iron-(μ-halide) bonds suggest the possibility of complex dissociation in solution and facile ligand substitution in 2 and 3.  相似文献   

20.
[MgBr2(thf)3] (1) and [FisoMg(thf)Cl]2 (2), (Fiso = [ArNC(H)NAr], ), [2-PyC(SiMe3)2Mg(thf)Cl]2 (3), [2-PyC(SiMe3)2Mg(thf)Br]2 (4), and [(2-PyC(SiMe3)2Mg(thf))2(OEt)Cl] · Et2O (5). (2-Py(SiMe3)2CH = 2-{bis-(trimethylsilyl)methyl}2-pyridine) were isolated as by-products from reactions involving organometallic species and magnesium or diethylmagnesium. All compounds were characterized by single crystal X-ray crystallography. Compounds (1) and (5) have trigonal bipyramidal magnesium centres, while compounds (2)-(4) have square pyramidal structures. Compound (1) is monomeric, while compounds (2)-(5) are dinuclear with magnesium centres bridged by two halides for (2)-(4), and a chloride and an ethoxy ligand in (5).  相似文献   

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