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1.
The hydroxo complex [NBu4]2[Ni2(C6F5)4(μ-OH)2] reacts with ammonium O,O-dialkyldithiophosphates, O-alkyl-p-methoxyphenyldithiophosphonate acids and ammonium O-alkylferrocenyldithiophosphonates in dichloromethane under mild conditions to give, respectively, [NBu4][Ni(C6F5)2{S(S)P(OR)2}] (R=Me (1), Et (2), iPr (3)) and [NBu4][Ni(C6F5)2{S(S)P(OR)Ar}] (Ar=p-MeOC6H4, R=Me (4), Et (5), iPr (6); Ar=ferrocenyl; R=Me (7), Et (8), iPr (9)). The monothiophosphonate nickel complexes [NBu4][Ni(C6F5)2{S(S)P(OR)(ferrocenyl)}] (R=Et (10), iPr (11)) are obtained by reaction of the hydroxo complex with O-alkylferrocenyldithiophosphonate acids. Analytical (C, H, N, S), conductivity, and spectroscopic (IR, 1H, 19F and 31P NMR, and FAB-MS) data were used for structural assignments. A single-crystal X-ray diffraction study of [NBu4][Ni(C6F5)2{S(S)P(OMe)(p-MeOC6H4)}] (4) and [NBu4][Ni(C6F5)2{S(O)P(OEt)(ferrocenyl)}] (10) shows that in both cases the coordination around the nickel atom es essentially square planar with NiC2S2 and NiC2SO central cores, respectively.  相似文献   

2.
Trityl borate salts [4-RPyCPh3][B(C6F5)4] (R = H 1, tBu 2, Et 3, NMe24) and [R3PCPh3][B(C6F5)4] (R = Me 5, nBu 6, Ph[1] 7, p-MeC6H48) are readily prepared via equimolar reaction of the appropriate pyridine or phosphine and trityl borate [CPh3][B(C6F5)4]. The analogous reactions of PiPr3 affords the product [(p-iPr3P-C6H4)Ph2CH][B(C6F5)4] (9) while the corresponding reactions of Cy3P and tBu3P gave the cyclohexadienyl derivatives [(p-R3PC6H5)CPh2][B(C6F5)4] (R = Cy 10, tBu 11). X-ray structures of 5 and 9 are reported.  相似文献   

3.
Metallo-organic complexes of titanium such as [Ti(bzac)2(OiPr)2] (1) and [Ti(bzac)2en(OiPr)2] (2) were synthesised using 1-phenyl-1,3-butanedione (bzac) and the Schiff’s base ligand N,N′-ethylene-bis(1-phenyl-1,3-butanediimine) [(bzac)2en]. A novel ligand 1-phenyl-3-N-(2-hydroxy-2-methylethylimino)-1-butanone (bzac1a2pol, 3) synthesised by condensing benzoylacetone (bzac) with 1-amino-2-propanol (1a2pol) was used in the synthesis of the complex bis(1-phenyl-3-N-(2-hydroxy-2-methylethylimino)-1-butanoato)titanium (IV), [Ti(bzac1a2pol)2, 4]. These complexes were synthesised by replacing the isopropoxy group (OiPr) of titanium tetra-isopropoxide, Ti(OiPr)4 by the appropriate ligands. Complexes 1, 2 and 4 were characterised for their volatility/thermal stability using TG/DTA and complex 4 was found to be volatile giving a residue of ∼5.0% (TG) at 377 °C and ∼3.0% (reduced pressure, 1 mbar) at 285 °C. Ligand 3 and its Ti complex 4 were characterised by 1H NMR, 13C NMR, elemental analysis, mass spectrometry and single crystal XRD. A value of 164.2 ± 5.2 kJ mol−1 for the standard enthalpy of sublimation () was evaluated for 4 from its vapour pressure.  相似文献   

4.
The Indox ligands, [{(S)-(iPr)Indox}n]H (1) [n=2 (a), 3 (b)] and [{(H)Indox}n=3]H (2), in which an indenyl group and an oxazoline ring are connected by an ethylene or propylene spacer, have been prepared. Reaction of [Ir(coe)2Cl]2 or [RhCl(C2H4)2]2 with the potassium salt of 1 afforded η5-[{(S)-(iPr)Indox}n]Ir(coe)2 (3) or η5-[{(S)-(iPr)Indox}n]Rh(C2H4)2 (6) as a 1:1 mixture of two diastereomers. The oxazoline ring in 3 and 6 did not coordinate to the metal center. When the complexes 3 or 6 reacted with iodine in diethyl ether, oxidative addition proceeded and the oxazoline ring coordinated to the metal center to give diiodoiridium(III) or rhodium(III) complexes, η51-[{(S)-(iPr)Indox}n]M(I)2 [M=Ir (4), Rh (7)]. The corresponding diiodoiridium(III) complex bearing the Indox ligand 2, η51-[{(H)Indox}n=2]Ir(I)2 (5), was also prepared by a similar method. Reaction of 4 or 7 with PPh3 in THF afforded diiodo-phosphine complexes, η5-[{(S)-(iPr)Indox}n]M(PPh3)(I)2 [M=Ir (8), Rh (9)] as a 1:1 mixture of two diastereomers in which the oxazoline ring dissociated from the metal center. The related reaction of 8 or 9 with more than 2 equiv. of AgOTf afforded the cationic complexes, [η51-[{(S)-(iPr)Indox}n]M(PPh3)(OTf)]OTf [M=Ir (10), Rh (11)], having a stereogenic center at the metal center as a mixture of only two diastereomers. From 1H and 31P NMR analyses, each diastereomer of 8 or 9 afforded only a single isomer of 10 or 11. The corresponding iridium(III) complex bearing the Indox ligand 2, [η51-[{(H)Indox}n=3]Ir(PPh3)(OTf)]OTf (12) was also prepared. The coordinated triflate ligand of 12 was slowly replaced by water in CDCl3 to afford the dicationic aquo complex, (S*pl,R*Ir)-[η51-[{(H)Indox}n=3]Ir(PPh3)(H2O)](OTf)2 (13). The monocationic complex, [η51-[{(S)-(iPr)Indox}n=2]Ir(PPh3)(I)]OTf (14a), having metal-centered chirality, was observed as a mixture of only two diastereomers in the reaction of 10a (a mixture of two diastereomers) with 1 equiv. of AgOTf. These observations indicated that the ligand exchange reaction of 8 or 9 with AgOTf contained the following three steps: (i) abstraction of one of the two prochiral iododes by AgOTf, (ii) recoordination of the oxazoline ring, and (iii) exchange of the remaining iodide for the triflate by AgOTf. The stereochemistry around the metal center was determined at the second step. All complexes have been characterized by usual spectroscopic methods as well as elemental analyses, and 4 and 13 have been characterized by X-ray analyses.  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.
The modification of zirconium or hafnium alkoxides with diethanolamine, H2dea, leads to the formation of unique nona-coordinated M{μ-η3-NH(C2H4O)2}3 cores. The mechanism is used to develop a self-assembly approach to the first thermodynamically stable zirconium-titanium and hafnium-titanium precursors, Zr{μ-η3-NH(C2H4O)2}3[Ti(OiPr)3]2 (1) and Hf{μ-η3-NH(C2H4O)2}3[Ti(OiPr)3]2 (2). Mass spectrometric characterization of these compounds demonstrates their volatility. In addition to the solution stability of these compounds the volatility makes them attractive single source precursors for MOCVD and ALD applications. These precursors are also interesting candidates for application in sol-gel synthesis of microporous materials as the stability of the core prevents self-assembly of ligands on the outer surface of the primary particles formed during the hydrolysis. A n-propoxide analog of 1 can be prepared from zirconium n-propoxide but does not yield any crystalline material. It is demonstrated that 1 can be prepared from [Zr(OnPr)(OiPr)3(iPrOH)]2, however, with a lower yield compared to the use of zirconium isopropoxide. The single crystals obtained from systems containing zirconium isopropoxide, titanium isopropoxide and triethanolamine H3tea turned out to be Ti2(OiPr)2({μ-η4-NH(C2H4O)3}2)2 (4). Theoretical calculations indicate that the octacoordinate M{μ-η4-N(C2H4O)3}2 core, anticipated in reaction with H3tea, will have metal-nitrogen bonds that are too long for its stabilization. This explains why the formation of 4 is thermodynamically favored over the formation of heterometallic species.  相似文献   

7.
Treatment of [Ti(OiPr)4] with the sulfonyl-imine systems Tos2NH ([(p-Me-C6H4SO2)2NH]) and Tf2NH ([(CF3SO2)2NH]) results in the formation of the new Lewis acidic titanium sulfonyl-imide complexes [Ti(OiPr)2(O,O′-Tos2N)2] (1) and [Ti(OiPr)2(HOiPr)2(O-Tf2N)2] (2), respectively. The molecular structures of the complexes have been determined by single crystal X-ray diffraction. The reaction of [Ti(OiPr)3(OAr)] (Ar = 2,6-di-tert-butyl-4-methyl phenyl) with Tf2NH results in the formation of the dimeric complex [Ti(OiPr)3(O,O′-Tf2N)]2 (3), which has also been structurally characterised. The ability of the complexes to catalyst the Friedel-Crafts acylation of anisole has also been assessed.  相似文献   

8.
The reaction of the racemic and resolved tetrahydrosalen derivative LH2 (LH2 = N,N’-bis(3,5-dichloro-2-hydroxybenzyl)-trans-1,2-diaminocyclohexane) with the resolved titanium(IV) sec-butoxides Ti(OR-2Bu)4 or Ti(OS-2Bu)4 yielded a series of four compounds, LTi(O2Bu)2 (1-4), which have been characterized by IR, elemental analysis, 1H and 13C NMR and X-ray crystallography. X-ray crystallography revealed the co-crystallization of two pseudo-C2-symmetric products from racemic LH2, whereas a perfect chiral induction of the ligand to the metal occurred when resolved (R,R)-LH2 was used, resulting in a Δ fac-fac wrapping mode of the tetradentate ligand about the titanium center. Ab initio electronic structure calculations (DFT) are in agreement that the lowest energy isomer is that which is experimentally observed. Catalysis screenings show that Ti(OS-2Bu)4, in conjunction with (R,R)-LH2, forms a matched pair that catalyzes the addition of dimethyl zinc to benzaldehyde with higher enantioselectivity than that observed for resolved (R,R)-LH2 with Ti(OR-2Bu)4 or achiral Ti(OiPr)4. Increasing the temperature of the system results in slightly increased enantiomeric excess.  相似文献   

9.
The aqueous reaction of TiCl4 with citric acid at pH ∼ 4 (KOH), led to the surprising isolation of a species assembly K3[Ti(C6H6O7)2(C6H5O7)] · K4[Ti(C6H5O7)2(C6H6O7)] · 10H2O (1). The same system at pH ∼ 3 (neocuproine), led to the crystalline material (C14H13N2)2[Ti(C6H6O7)3] · 5H2O (2), while at pH 5.0 (NaOH), afforded Na3[Ti(C6H6O7)2(C6H5O7)] · 9H2O (3). Analytical, spectroscopic and structural characterization of 1, 2 and 3 revealed their distinct nature exemplified by mononuclear complexes bearing variably deprotonated citrates bound to Ti(IV). Solid-state 13C MAS NMR spectroscopy in concert with solution 13C and 1H NMR on 3 provided ample evidence for the existence of bound citrates of distinct coordination mode to the metal ion. Cyclic voltammetry defined the electrochemical signature of complex 2, thereby projecting the physicochemical profile of the species formulated by the aforementioned properties. Comparison of cyclic voltammetric data on available discrete Ti(IV)-citrate species depicts the electrochemical profile and an E1/2 value trend of the species in that binary system’s aqueous speciation, further substantiating the redox behavior of mononuclear Ti(IV)-citrate species in a pH-sensitive fashion. Collectively, the well-defined discrete species in 1-3 reflect and corroborate a synthetically challenging yet complex pH-specific picture of the aqueous Ti(IV) chemistry with the physiological citric acid, and shed light on the pH-dependent speciation in the binary Ti(IV)-citrate system.  相似文献   

10.
Reactions of Zr(OiPr)4(PriOH) with di- and trichloroacetic acid in 1:1 molar ratio in toluene gave the products Zr2(μ-OiPr)2(μ-OOCCHCl2)(OiPr)4(OOCCHCl2)(HOiPr) (1) and Zr2(μ-OiPr)2(μOOCCCl3)(OiPr)4(OOCCCl3)(HOiPr) (2), respectively, in quantitative yields. The molecular geometry of both (1) and (2) is constituted by a slightly distorted edge-shared bioctahedron and both have almost similar bond dimensions. Addition of dichloroacetic acid in 1:2 molar ratio to Zr(OiPr)4(HOiPr) in toluene although yielded the bis-substituted crude product Zr(OiPr)2(OOCCHCl2)2(HOiPr) (3) but its solution in toluene left for crystallization formed a tri-nuclear oxo product Zr33-O)(μ-OiPr)2(μ-OOCCHCl2)3(η-OOCCHCl2)2(OiPr)3 (3a). The three zirconium atoms in the structure of (3) are forming an isosceles triangle with a triply bridged oxo moiety at its center.  相似文献   

11.
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   

12.
The synthesis of a series of rhodium and iridium complexes bearing bulky cyclopentadienyl or hydro(trispyrazolyl)borate ligands is described. The rhodium cyclopentadienyl and hydrotris(pyrazolyl)borate diene compounds, [(η5-C5Me4But)Rh(η4-2,3-MeRC4H4] (R = H, 1; Me, 2) and TpMsRh(η4-2,3-MeRC4H4) (R = H, 3; Me, 4; TpMs is hydrotris(3-mesitylpyrazol-1-yl)borate), respectively, have been prepared from the corresponding Rh(I) diene precursors and Zn(C5Me4But)2 (for 1 and 2), or TlTpMs (for 3 and 4), as effective C5Me4But or TpMs transfer reagents. In contrast with these results, attempts to obtain a bis(ethylene) derivative of the TptolIr(I) unit (Tptol stands for hydrotris(3-p-tolylpyrazol-1-yl)borate) have provided instead the Ir(III) complex [(κ4-N,N′,N″,C-Tptol)-Ir(C2H5)(C2H4)] (5), whose formation requires C-H bond activation of a molecule of ethylene and of one of the Tptolp-tolyl substituents. In refluxing toluene 5 experiences metalation of a second p-tolyl substituent to give [(κ5-N,N′,N″,C,C′-Tptol)-Ir(C2H4)] (6), which features unusual κ5-Tptol coordination. The latter compound reacts with carbon monoxide to yield the corresponding carbonyl, 7.  相似文献   

13.
The coordination chemistry and reactivity of zinc(II) complexes supported by monoanionic hydrotris(pyrazolyl)borate ligands substituted by 3,3,3-mesityl groups (TpMs) and 3,3,5-mesityl groups (TpMs∗) have been investigated. Salt metathesis of ZnCl2, ZnEt2, and Zn(OAc)2 with Tl[TpMs] or Tl[TpMs∗] cleanly afforded the corresponding compounds TpMsZnCl (1), TpMsZnEt (2), TpMs∗ZnEt (3), and TpMsZnOAc (5). Compound 3 slowly disproportionates in benzene solution to afford the bis(ligand) complex (κ2-TpMs∗)2Zn (4). Acetate complex 5 as well as TpMsZnOCOPh (6) and [TpMs∗ZnOAc]2 (7) were alternatively prepared by acidolysis of the parent ethyl complexes (2, 3) with the corresponding carboxylic acid. No reaction was observed between 2 and 3 and alcohols (ROH; R = Et, iPr, Bn), while salt metathesis reactions of ZnEt(OR) with Tl[TpMs] led to 2 instead of the desired zinc-alkoxide complex. Compounds 1-7 were characterized by elemental analysis, 1H and 13C NMR spectroscopy, as well as by X-ray diffraction studies for 1, 2, 4, 5 and 7. The former compounds adopt a monomeric structure in the solid state while [TpMs∗ZnOAc]2 (7) exists as an anti-syn bridged acetate dimer. Complex 4 is four-coordinated, featuring a rare bidentate coordination mode of the TpMs∗ ligands. The results are rationalized in terms of the variable steric constraint around the zinc atom provided by the TpMs and TpMs∗ ligands.  相似文献   

14.
In view of the wide applicability and versatility of titanium based Lewis acids in selective organic synthesis including asymmetric synthesis, we have synthesized a family of mono and polyatomic titanium derivatives. The polymetallic complexes prepared are bridged by pyridimine, quinone and triazine based ligands. The synthesis of [{Ti(O-i-Pr)3(Oddbf)}2] (1), [Ti(O-i-Pr)2(Oddbf)2] (2), [{Ti(O-i-Pr)2(Oddbf)(OMent)}2] (3) (ddbfO = 2,3-dihydro-2,2-dimethyl-benzofuranoxo; MentO = (1R,2S,5R)-(−)-menthoxo), [{Ti(O-i-Pr)3(OMenpy)}2] (4), [Ti(O-i-Pr)2(OMenpy)2] (5) (MenpyO = (1S,2S,5R)-(−)-menthoxo-pyridine); [{(Ti(OR)3)2L}n] (RO = isopropoxo, (1R,2S,5R)-(−)-menthoxo) (6-11) and [{(Ti(O-i-Pr)3)3L}n] (12) was accomplished from a Lewis acid such as Ti(O-i-Pr)4, [{Ti(O-i-Pr)3(OMent)}2] or [Ti(OMent)4] and chelating ligands (ddbfOH = 2,3-dihydro-2,2-dimethyl-benzofuranol; MenpyOH = (1R,2S,5R)-(−)-5-methyl-2-isopropyl-1-(2′-pyridinyl)cyclohexan-1-ol; LH2 = 4,6-dihydroxy-2,5-diphenyl-pyrimidine, 2,4-dihydroxy-5,6-dimethyl-pyrimidine, 5,8-dihydroxy-1,4-napthoquinone, 2,5-dihydroxy-1,4-benzoquinone and LH3 = cyanuric acid) that provide a rigid framework for the metal centre. The molecular structure of 5 has been determined by single crystal X-ray diffraction studies.  相似文献   

15.
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   

16.
A series of diorganotin (IV) complexes of the types of R2SnCl(SSCC3H3N2) (R = CH31, nBu 2, C6H53 and C6H5CH24), R2Sn(SSCC3H3N2)2 (R = CH35, nBu 6, C6H57 and C6H5CH28) and R2Sn(SSCC3H2N2) (R = CH39, nBu 10, C6H511 and C6H5CH212) have been obtained by reactions of 4(5)-imidazoledithiocarboxylic acid with diorganotin (IV) dichlorides in the presence of sodium ethoxide. All complexes are characterized by elemental, IR, 1H, 13C and 119Sn NMR spectra analyses. Also, the complexes 1, 7 and 9 are characterized by X-ray crystallography diffraction analyses, which reveal that the complex 1 is monomeric structure with five-coordinate tin (IV) atom, the complex 7 is monomeric structure with six-coordinate tin (IV) atom and the complex 9 is one-dimensional chain with five-coordinate tin (IV) atom.  相似文献   

17.
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   

18.
Addition of KTpPh2 to a solution of NiX2 (X = Cl, Br, NO3, OAc and acac) or NiBr(NO)(PPh3)2 in THF yields the structurally characterized series [NiCl(HpzPh2)TpPh2] (1) and [NiXTpPh2] (X = Br 2, NO 3, NO34, OAc 5 and acac 6) including the first example of a tris(pyrazolyl)borate nickel nitrosyl complex. IR spectroscopy confirms that all the TpPh2 ligands are κ3 coordinated and that the NO ligand in 3 is linearly bound. Electronic spectra are consistent with four- or five-coordinate species in solution. NMR spectroscopic studies indicate that the complexes are paramagnetic, with the exception of 3. This is confirmed by magnetic susceptibility studies, which suggest that complexes 1, 2 and 4-6 are paramagnetic with two unpaired electrons. X-ray crystallographic studies of 5 reveal a distorted trigonal bipyramidal nickel centre with a symmetrically coordinated acetate ligand.  相似文献   

19.
The reactivity of hybrid scorpionate/cyclopentadienyl ligand-containing trichloride zirconium complexes [ZrCl3(bpzcp)] (1) [bpzcp = 2,2-bis(3,5-dimethylpyrazol-1-yl)-1,1-diphenylethylcyclopentadienyl] and [ZrCl3(bpztcp)] (2) [bpztcp = 2,2-bis(3,5-dimethylpyrazol-1-yl)-1-tert-butylethylcyclopentadienyl] toward several lithium alkoxides has been carried out. Thus, alkoxide-containing complexes [ZrCl2(OR)(bpzcp)] (R = Me, 3; Et, 4; iPr, 5; (R)-2-Bu, 6), [ZrCl2(OR)(bpztcp)] (R = Me, 7; Et, 8; iPr, 9; (R)-2-Bu, 10) and [Zr(OR)3(bpztcp)] (R = Et, 11; iPr, 12) were prepared by deprotonation of the appropriate alcohol group with BunLi followed by reaction with 1 or 2. In addition, the imido-complex [Ti(NtBu)Cl(bpztcp)(py)] (13) were also prepared. The structures of these complexes have been proposed on basis of spectroscopic and DFT methods.  相似文献   

20.
[M(P3C2tBu2)(CO)3I] (M = Mo, 1, W, 2) have been synthesised and reacted with PCl5 for oxidation study purposes. Compounds Ti(P3C2tBu2)(Ind)Cl2], 3, and [Zr(P3C2tBu2)(Cp)Cl2], 4, were detected spectroscopically, but showed to be too unstable to be isolated. A Ti(IV) complex, [Ti(P3C2tBu2)Cl3], 5, has been formed from the reaction of [TiCl4] with the base-free ligand K(P3C2tBu2), while the Ti(III) species, [Ti(P3C2tBu2) Cl2(THF)], 6, was prepared from [TiCl3(THF)3]. Compounds 5 and 6 were studied as ethylene catalyst precursors after activation with MAO. In the studied conditions, complex 5 is the most active one with an activity of 2.2 × 105 g(molTi [E] h)−1, one order of magnitude higher than compound 6. The produced polymer is linear polyethylene.  相似文献   

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