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1.
A one pot reaction of Li2{1, 4‐(Me3Si)2C8H6}, LnCl3, and K{CH(PPh2NSiMe3)2} leads to the 1, 4‐bis(trimethylsilyl)cyclooctatetraene bis(phosphinimino)methanide complexes of yttrium and erbium, [{CH(PPh2NSiMe3)2}Ln(η8‐{1, 4‐(Me3Si)2C8H6})] (Ln = Y, Er). Both complexes have been characterized by single crystal X‐ray diffraction. The solid state structures show that the two bulky ligands cause a steric crowding around the lanthanide atom. As a result of this steric crowding both ligands are asymmetrically attached to the lanthanide atom.  相似文献   

2.
The reactions of [η5‐Cp2ZrCl2] (Cp = η5‐C5H5) with [K(THF)n][N(PPh2)2] (n = 1.25—1.5) and K[CH(PPh2NSiMe3)2] are reported. The first reaction led to the monoamido complex [η5‐Cp2Zr(Cl)N(PPh2)2] in which the {(Ph2P)2N} ligand — via a phosphorous and the nitrogen atom — is coordinated to the zirconium atom in a chelating (η2) fashion. Reaction of the potassium methanide compound, K{CH(PPh2NSiMe3)2} with zirconocene dichloride yield the carbene‐like mono cyclopentadienyl complex [η5‐CpZr(Cl){C(PPh2NSiMe3)2}]. The complex is formed by a salt metathesis and concomitant a cyclopentadiene extrusion.  相似文献   

3.
The insertion of N,N′-dicyclohexylcarbodiimide at one of the Y-N bonds of the [(Me3Si)2N]3Y complex in toluene at 70 °C afforded the monoguanidinate diamide derivative { (Me3Si)2NC(N-cyclo-Hex)2}Y[N(SiMe)3]2 (1) (cyclo-Hex is cyclohexyl) in 72% yield. The reaction of equimolar amounts of sodium N,N′-dicyclohexyl-N″-bis(trimethylsilyl)guanidinate, which was prepared in situ from {(Me3Si)2N}Na and N,N′-dicyclohexylcarbodiimide, and YbI2(THF)2 in THF gave the [{(Me3Si)2NC(N-cyclo-Hex)2}YbI(THF)2]2 complex (2). An attempt to use this procedure for the synthesis of the yttrium compound { (Me3Si)2NC(NSiMe3)2}2YCl containing the sterically more hindered guanidinate ligand unexpectedly led to the formation of the diamide chloride complex [{(Me3Si)2N}2Y(THF)(µ-Cl)]2 (3). The structures of complexes 1–3 were established by X-ray diffraction. Compound 1 is mononuclear. Complexes 2 and 3 are dinuclear and contain two µ2-bridging halide ligands.  相似文献   

4.
Rare‐earth‐metal borohydrides are known to be efficient catalysts for the polymerization of apolar and polar monomers. The bis‐borohydrides [{CH(PPh2NSiMe3)2}La(BH4)2(THF)] and [{CH(PPh2NSiMe3)2}Ln(BH4)2] (Ln=Y, Lu) have been synthesized by two different synthetic routes. The lanthanum and the lutetium complexes were prepared from [Ln(BH4)3(THF)3] and K{CH(PPh2NSiMe3)2}, whereas the yttrium analogue was obtained from in situ prepared [{CH(PPh2NSiMe3)2}YCl2]2 and NaBH4. All new compounds were characterized by standard analytical/spectroscopic techniques, and the solid‐state structures were established by single‐crystal X‐ray diffraction. The ring‐opening polymerization (ROP) of ε‐caprolactone initiated by [{CH(PPh2NSiMe3)2}La(BH4)2(THF)] and [{CH(PPh2NSiMe3)2}Ln(BH4)2] (Ln=Y, Lu) was studied. At 0 °C the molar mass distributions determined were the narrowest values (M?w/M?n=1.06–1.11) ever obtained for the ROP of ε‐caprolactone initiated by rare‐earth‐metal borohydride species. DFT investigations of the reaction mechanism indicate that this type of complex reacts in an unprecedented manner with the first B? H activation being achieved within two steps. This particularity has been attributed to the metallic fragment based on the natural bond order analysis.  相似文献   

5.
An unprecedentate samarium complex of the molecular composition [{κ3‐{(Ph2CH)N=CH}2C4H2N)}{κ3‐{(Ph2CHN=CH)(Ph2CHNCH)C4H2N}Sm}2] ( 2 ), which was isolated by the reaction of a potassium salt of 2,5‐bis{N‐(diphenylmethyl)‐iminomethyl}pyrrolyl ligand [K(THF)2{(Ph2CH)N=CH}2C4H2N)] ( 1 ) with anhydrous samarium diiodide in THF at 60 °C through the in situ reduction of imine bond is presented. The homoleptic samarium complex [[κ3‐{(Ph2CH)–N=CH}2C4H2N)]3Sm] ( 3 ) can also be obtained from the reaction of compound 1 with anhydrous samarium triiodide (SmI3) in THF at 60 °C. The molecular structures of complexes 2 and 3 were established by single‐crystal X‐ray diffraction analysis. The molecular structure of complex 2 reveals the formation of a C–C bond in the 2,5‐bis{N‐(diphenylmethyl)iminomethyl}pyrrole ligand moiety (Ph2Py). However, complex 3 is a homoleptic samarium complex of three bis‐iminopyrrolyl ligands. In complex 2 , the samarium ion adopts an octahedral arrangement, whereas in complex 3 , a distorted three face‐centered trigonal prismatic mode of nine coordination is observed around the metal ion.  相似文献   

6.
The reaction of bisgermavinylidene [(Me3SiN?PPh2)2C?Ge→Ge?C(PPh2?NSiMe3)2] ( 1 ) with AdNCO (Ad = Adamantyl) afforded the [2 + 2] cycloadditon product [(Me3SiN?PPh2)2CGeC(O) NAd] ( 2 ). Similar reaction of 1 with Ph3SiOH in tetrahydrofuran (THF) yielded the base‐stabilized germanium(II) triphenylsiloxide [H2C(PPh2?NSiMe3)2Ge(OSiPh3)2] ( 3 ). The results suggested that reactive germavinylidene may exist in solution and is capable of forming addition reaction products. The X‐ray structures of 2 and 3 were determined. Copyright © 2007 John Wiley & Sons, Ltd.  相似文献   

7.
Three new chloro-functionalized lanthanide(III) bis(disiloxanediolate) complexes, [{(Ph2SiO)2O}2{Li(DME)}2]Nd(DME)Cl (3), [{(Ph2SiO)2O}2{Li(THF)2}2]HoCl·2THF (4), and [{(Ph2SiO)2O}2{Li(THF)2}2]ErCl·2THF (5) have been prepared by the treatment of anhydrous lanthanide trichlorides, LnCl3 (Ln = Nd, Ho, Er), with two equivalents of in situ prepared (Ph2SiOLi)2O (2). In a similar manner, the treatment of PrCl3 with 2 equivalents of (Ph2SiOLi)2O (2) in the presence of LiN(SiMe3)2 afforded the silylamide-functionalized derivative [{(Ph2SiO)2O}2{Li(THF)2}2]Pr[N(SiMe3)2] (6). All new compounds have been structurally characterized by X-ray diffraction analyses. Compounds 4 and 5 represent a new intermediate structural type of lanthanide bis(disiloxanediolates) between the “inorganic metallocenes” (Pr, Nd, Sm) and the “metallacrowns” (Sc, Y).  相似文献   

8.
The reaction of CH2(PPh2NSiMe3)2 with n‐butyllithium or potassium hydride in THF leads, after the recrystallization from toluene or n‐heptane/diglyme, to the corresponding alkali derivatives [Li(THF)][CH(PPh2NSiMe3)2] ( 1 ), K[CH(PPh2NSiMe3)2] ( 2 ), and [K(digylme)][CH(PPh2NSiMe3)2] ( 3 ). Upon coordination to the metal center the ligand forms a six membered metallacycle in which both phosphinimine nitrogen atoms bind to the metal atom.  相似文献   

9.
Synthesis and Reactivity of the Diphenylphosphanyltrimethylsilylamine Ph2PN(H)SiMe3 The trimethylsilyliminotriphenylphosphoran Ph3P=NSiMe3 ( 1 ) reacts with sodium in THF under cleavage of one P–Cphenyl bond leading to the PIII‐species [(THF)3Na(Ph2PNSiMe3)] ( 2 ). Reaction with NH4Br or hydrolysis with water gives the diphenylphosphanyltrimethylsilylamine Ph2PN(H)SiMe3 ( 3 ) and in low yields the oxidized byproduct [(THF)Na(OOPPh2)]n ( 4 ) that can be synthesised directly in high yields in the reaction of Ph2POOH and NaH in THF. 3 was reacted with an equimolar amount of Zn{N(SiMe3)2}2 to give [(Me3Si)2NZnPh2PNSiMe3]2 ( 5 ). 3 reacts with caesium under phosphorus‐phosphorus bond formation in a reductive substituent coupling reaction to give [(THF)Cs2{Ph(NSiMe3)P}2]n ( 6 ) where phosphorus(III) is reduced to phosphorus(II). Phosphorus‐phosphorus bond formation to give (Ph2PNSiMe3)2 ( 7 ) where the phosphorus(III) centres are oxidized to PIV is observed in the reaction of 3 with n‐BuLi and bismuthtrichloride.  相似文献   

10.
The lithium salts of anionic N-heterocyclic thiones and selones [{(WCA-IDipp)E}Li(toluene)] ( 1 : E=S; 2 : E=Se; WCA=B(C6F5)3, IDipp=1,3-bis(2,6-diisopropylphenyl)imidazolin-2-ylidene), which contain a weakly coordinating anionic (WCA) borate moiety in the imidazole backbone were reacted with Me3SiCl, to furnish the silylated adducts (WCA-IDipp)ESiMe3 ( 3 : E=S; 4 : E=Se). The reaction of the latter with [(η5-C5Me5)MCl2]2 (M=Rh, Ir) afforded the rhodium(III) and iridium(III) half-sandwich complexes [{(WCA-IDipp)E}MCl(η5-C5Me5)] ( 5 – 8 ). The direct reaction of the lithium salts 1 and 2 with a half or a full equivalent of [M(COD)Cl]2 (M=Rh, Ir) afforded the monometallic complexes [{(WCA-IDipp)E}M(COD)] ( 9 – 12 ) or the bimetallic complexes [μ2-{(WCA-IDipp)E}M2(COD)2(μ2-Cl)] ( 13 – 16 ), respectively. The bonding situation in these complexes has been investigated by means of density functional theory (DFT) calculations, revealing thiolate or selenolate ligand character with negligible metal-chalcogen π-interaction.  相似文献   

11.
The mononuclear cationic complexes [(η6-C6H6)RuCl(L)]+ (1), [(η6-p-iPrC6H4Me)RuCl(L)]+ (2), [(η5-C5H5)Ru(PPh3)(L)]+ (3), [(η5-C5Me5)Ru(PPh3)(L)]+ (4), [(η5-C5Me5)RhCl(L)]+ (5), [(η5-C5Me5)IrCl(L)]+ (6) as well as the dinuclear dicationic complexes [{(η6-C6H6)RuCl}2(L)]2+ (7), [{(η6-p-iPrC6H4Me)RuCl}2(L)]2+ (8), [{(η5-C5H5)Ru(PPh3)}2(L)]2+ (9), [{(η5-C5Me5)Ru(PPh3)}2(L)]2+ (10), [{(η5-C5Me5)RhCl}2(L)]2+ (11) and [{(η5-C5Me5)IrCl}2(L)]2+ (12) have been synthesized from 4,4′-bis(2-pyridyl-4-thiazole) (L) and the corresponding complexes [(η6-C6H6)Ru(μ-Cl)Cl]2, [(η6-p-iPrC6H4Me)Ru(μ-Cl)Cl]2, [(η5-C5H5)Ru(PPh3)2Cl)], [(η5-C5Me5)Ru(PPh3)2Cl], [(η5-C5Me5)Rh(μ-Cl)Cl]2 and [(η5-C5Me5)Ir(μ-Cl)Cl]2, respectively. All complexes were isolated as hexafluorophosphate salts and characterized by IR, NMR, mass spectrometry and UV-vis spectroscopy. The X-ray crystal structure analyses of [3]PF6, [5]PF6, [8](PF6)2 and [12](PF6)2 reveal a typical piano-stool geometry around the metal centers with a five-membered metallo-cycle in which 4,4′-bis(2-pyridyl-4-thiazole) acts as a N,N′-chelating ligand.  相似文献   

12.
The heterotrimetallic complex 1,1′-[Fc(SeRuCp(PPh3)2)2] is accessible by the reaction of 1,1′-[Fc(SeLi)2·2THF] (Fc = Fe(η5-C5H4)2, THF = Tetrahydrofuran) with two equivalents of CpRu(PPh3)2Cl in high yield. Complex 1,1′-[Fc(SeLi)2·2THF] can be prepared by treatment of 1,1′-[Fc(SeSiMe3)2] with two equivalents of n-BuLi in THF solution. 1,1′-[Fc(SeRuCp(PPh3)2)2] is converted to 1,1′-[Fc(SeRuCpCO(PPh3))2] under CO atmosphere in THF solution. The complexes 1,1′-[Fc(SeRuCp(PP))2] [PP = Ph2P(CH2)PPh2 (dppm), Ph2P(CH2)2PPh2 (dppe), Ph2P(CH=CH)2PPh2 (dppee), Ph2P(CH2)3PPh2 (dppp)] are obtained in a one-pot reaction of CpRu(PPh3)2Cl and 1,1′-[Fc(SeLi)2·2THF] with the chelating bisphosphine ligand.  相似文献   

13.
On the Chemistry of the Titanium(III) Complex [{(Me3Si)2N}2TiCH2SiMe2NSiMe3]. Insertion Reactions into the Ti–C Bond and Redox Reactions [Na(12-crown-4)2][{(Me3Si)2N}2TiCH2SiMe2NSiMe3] ( 1 ) reacts with CO and the isonitrile CNCy (Cy = Cyclohexyl) under insertion into the Ti–C bond. After rearrangement planar five-membered titana(III)-heterocycles TiOCSiN and TiNCSiN with exocyclic C=CH2 groups are formed. On the other hand, the insertion of CNBut leads to the primary insertion product [Na(12-crown-4)2][{(Me3Si)2N}2TiC(NBut)CCH2SiMe2NSiMe3] ( 4 ) forming a new Ti(III)–C-bond. With NOBF4 the anion of 1 can be oxydized to form the molecular complex [{(Me3Si)2N}2TiCH2SiMe2NSiMe3] ( 5 ), while with phenylacetylene redox disproportionation occurs, in the course of which the mixed ligand complex [Na(12-crown-4)2][{(Me3Si)2N}2Ti(NSiMe3)(CH2SiMe2C≡C–Ph)] ( 6 ) can be isolated. 6 and the insertion products [Na(12-crown-4)2][{(Me3Si)2N}2TiOC(CH2)SiMe2NSiMe3] ( 2 ) and [Na(12-crown-4)2][{(Me3Si)2N}2TiNCyC(CH2)SiMe2NSiMe3] ( 3 ) are characterized by crystal structure determinations.  相似文献   

14.
Lithium derivatives of substituted cyclopentadiene ligands reacted with CrCl3(THF)3 in THF solution to afford homodinuclear complexes of the type [{(η5-RCp)CrCl(μ-Cl) }2] [R=SiMe3 (1), CH2C(Me)CH2 (2)]. Complex 1 reacts with pyrazole (C3H4N2) to yield the mononuclear half-sandwich complex [(η5-Me3SiCp)CrCl2(pyrazole)] (3). The similar complex [Cp*CrCl2(pyrazole)] (4) was synthesised by reaction of [{Cp*CrCl(μ-Cl)}2] with pyrazole. Complex 2 reacts with bidentate ligands to give binuclear complexes of the type [{(η5-CH2C(Me)CH2Cp)CrCl2 }2(μ-L-L)] [L-L=Ph2PCH2CH2PPh2 (5), trans-Ph2P(O)CHCHP(O)Ph2 (6)]. All complexes were structurally characterised by X-ray diffraction. After reaction with methylaluminoxane these complexes are active in the polymerization of ethylene. At 25 °C and 4 bar of ethylene, complex 3 yields polyethylene with a bimodal molecular weight distribution centred at 155,000 and 2000 g/mol. Complex 4 shows similar activity, yielding only the low molecular weight fraction. On the other hand, the binuclear complexes 5 and 6 under the same conditions were three times more active than mononuclear complexes. The melting point of the polymers indicates the formation of linear polyethylene.  相似文献   

15.
[NEt4]2[Re(CO)3Br3] and [NEt4]2[Tc(CO)3Cl3] react with trimethylsilyltriphenylphosphoraneimine, Me3SiNPPh3, under exchange of the bromo ligands and the formation of cationic [M(CO)3(HNPPh3)3]+ complexes (M = Re, Tc). The required protons are abstracted from the solvent CH2Cl2. The steric bulk of the organic ligands causes a marked distortion of the established coordination polyhedra from an idealized octahedron with bond angles between neighbouring donor atoms between 81.81(8)° and 96.66(8)°. The reaction of [NEt4]2[Re(CO)3Br3] with Me3SiNP(Ph2)CH2PPh2 in CH2Cl2 yields the neutral complex [Re(CO)3Br{HNP(Ph2)CH2PPh2)], which contains a neutral, chelate‐bonded (diphenylphosphinomethyl)diphenylphosphoraneimine ligand. A similar reaction with the bifunctional phosphoraneimine Me3SiNP(Ph2)CH2(Ph2)PNSiMe3 gives only small amounts of a binuclear rhenium(I) complex of the composition [{Re(CO)3Br2}2(HNP(Ph2)CH2(Ph2)PNH)]2‐, whereas the major amount of the bis‐phosphoraneimine undergoes an intramolecular rearrangement to yield [H2NP(Ph2)NP(Ph2)CH3]Br. An X‐ray structure analysis shows a widespread delocalization of electron density over the central part of the cation.  相似文献   

16.
The mononuclear complexes [(η5-C5Me5)IrCl(L1)] (1), [(η5-C5Me5)RhCl(L1)] (2), [(η6-p-PriC6H4Me)RuCl(L1)] (3) and [(η6-C6Me6)RuCl(L1)] (4) have been synthesised from pyrazine-2-carboxylic acid (HL1) and the corresponding complexes [{(η5-C5Me5)IrCl2}2], [{(η5-C5Me5)RhCl2}2], [{(η6-p-PriC6H4Me)RuCl2}2], and [{(η6-C6Me6)RuCl2}2], respectively. The related dinuclear complexes [{(η5-C5Me5)IrCl}2(μ-L2)] (5), [{(η5-C5Me5)RhCl}2(μ-L2)] (6), [{(η6-p-PriC6H4Me)RuCl}2(μ-L2)] (7) and [{(η6-C6Me6)RuCl}2(μ-L2)] (8) have been obtained in a similar manner from pyrazine-2,5-dicarboxylic acid (H2L2). Compounds isomeric to the latter series, [{(η5-C5Me5)IrCl}2(μ-L3)] (9), [{(η5-C5Me5)RhCl}2(μ-L3)] (10), [{(p-PriC6H4Me)RuCl}2(μ-L3)] (11) and [{(η6-C6Me6)RuCl}2(μ-L3)] (12), have been prepared by using pyrazine-2,3-dicarboxylic acid (H2L3) instead of H2L2. The molecular structures of 2 and 3, determined by X-ray diffraction analysis, show the pyrazine-2-carboxylato moiety to act as an N,O-chelating ligand, while the structure analyses of 5-7, confirm that the pyrazine-2,5-dicarboxylato unit bridges two metal centres. The electrochemical behaviour of selected representatives has been studied by voltammetric techniques.  相似文献   

17.
The reaction of decamethylytterbocene [(η5‐C5Me5)2Yb(THF)2] with SO2 at low temperature gave two new compounds, namely, the YbIII dithionite/sulfinate complex [{(η5‐C5Me5)2Yb(μ3,1κ2O1,3,2κ3O2,2′,4‐S2O4)}2{(η5‐C5Me5)Yb(μ,1κO,2κO′‐C5Me5SO2)}2] ( 1 ) and the YbIII dithionite complex [{(η5‐C5Me5)2Yb}2(μ,1κ2O1,3,2κ2O2,4‐S2O4)] ( 2 ). After extraction of 1 , the mixture was heated to give the dinuclear tetrasulfinate complex [{(η5‐C5Me5)Yb}2(μ,κO,κO’‐C5Me5SO2)4] ( 3 a ). In contrast, from the reaction of [(η5‐C5Me5)2Eu(THF)2] with SO2 only the tetrasulfinate complex [{(η5‐C5Me5)Eu}2(μ,κO,κO’‐C5Me5SO2)4] ( 3 b ) was isolated. Two major reaction pathways were observed: 1) reductive coupling of two SO2 molecules to form the dithionite anion S2O42?; and 2) nucleophilic attack of one metallocene C5Me5 ligand on the sulfur atom of SO2. The compounds presented are the first dithionite and sulfinate complexes of the f‐elements.  相似文献   

18.
A study of the coordination chemistry of different bis(diphenylphosphino)methanide ligands [Ph2PC(X)PPh2] (X=H, SiMe3) with Group 4 metallocenes is presented. The paramagnetic complexes [Cp2Ti{κ2P,P‐Ph2PC(X)PPh2}] (X=H ( 3 a ), X=SiMe3 ( 3 b )) have been prepared by the reactions of [(Cp2TiCl)2] with [Li{C(X)PPh2}2(thf)3]. Complex 3 b could also be synthesized by reaction of the known titanocene alkyne complex [Cp2Ti(η2‐Me3SiC2SiMe3)] with Ph2PC(H)(SiMe3)PPh2 ( 2 b ). The heterometallacyclic complex [Cp2Zr(H){κ2P,P‐Ph2PC(H)PPh2}] ( 4 aH ) has been prepared by reaction of the Schwartz reagent with [Li{C(H)PPh2}2(thf)3]. Reactions of [Cp2HfCl2] with [Li{C(X)PPh2}2(thf)3] gave the highly strained corresponding metallacycles [Cp2M(Cl){κ2P,P‐Ph2PC(X)PPh2}] ( 5 aCl and 5 bCl ) in very good yields. Complexes 3 a , 4 aH , and 5 aCl have been characterized by X‐ray crystallography. Complex 3 a has also been characterized by EPR spectroscopy. The structure and bonding of the complexes has been investigated by DFT analysis. Reactions of complexes 4 aH , 5 aCl , and 5 bCl did not give the corresponding more unsaturated heterometallacyclobuta‐2,3‐dienes.  相似文献   

19.
The reaction of the complex [{(η6-C6Me6)Ru(μ-Cl)Cl}2] 1 with sodium azide ligand gave two new dimers of the composition [{(η6-C6Me6)Ru(μ-N3)(N3)}2] 2 and [{(η6-C6Me6)Ru(μ-N3)Cl}2] 3, depending upon the reaction conditions. Complex 3 with excess of sodium azide in ethanol yielded complex 2. These complexes undergo substitution reactions with monodentate ligands to yield monomeric complexes of the type [(η6-C6Me6)Ru(X)(N3)(L)] {X = N3, Cl, L = PPh3 (4a, 9a); PMe2Ph (4b, 9b); AsPh3 (4c, 9c); X = N3, L = pyrazole (Hpz) (5a); 3-methylpyrazole (3-Hmpz) (5b) and 3,5-dimethyl-pyrazole (3,5-Hdmpz) (5c)}. Complexes 2 and 3 also react with bidentate ligands to give bridging complexes of the type [{(η6-C6Me6)Ru(N3)(X)]2(μ-L)} {X = N3, Cl, L = 1,2-bis(diphenylphosphino)methane (dppm) (6, 10); 1,2-bis(diphenylphosphino)ethane (dppe) (7, 11); 1,2-bis(diphenylphosphino)propane (dppp) (8, 12); X = Cl, L = 4,4-bipyridine (4,4′-bipy) (13)}. These complexes were characterized by FT-IR and FT-NMR spectroscopy as well as by analytical data.The molecular structures of the representative complexes [{(η6-C6Me6)Ru(μ-N3)(N3)}2] 2, [{(η6-C6Me6)Ru(μ-N3)Cl}2] 3,[(η6-C6Me6)Ru(N3)2(PPh3)] 4a and [{(η6-C6Me6)Ru(N3)2}2 (μ-dppm)] 6 were established by single crystal X-ray diffraction studies.  相似文献   

20.
[(COT)Ti(μ-Cl)(THF)]2 (1) reacts with K[HBpz3] or K[HB(3,5-Me2pz)3] to give the new monocyclooctatetraenyl half-sandwich complexes (COT)Ti[HBpz3] (2) and (COT)Ti[HB(3,5-Me2pz)3] (3) respectively, as dark green, air-sensitive solids (COT  η8-cyclooctatetraenyl(2-)). The molecular structure of 2 has been determined by an X-ray diffraction study. The monomeric organotitanium(III) complexes (COT)Ti[PhC(NSiMe3) 2](THF) (4), (COT)Ti[MeOC6H4C(NSiMe3)2](THF) (5) and (COT)Ti[Ph2P (NSiMe3)2] (6) have been prepared by treatment of [(COT)Ti(μ-Cl)(THF)]2 (1) with the corresponding heteroallylic ligands.  相似文献   

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