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1.
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   

2.
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   

3.
Cyclopentadienyltricarbonyl tungsten selenocarboxylate complexes CpW(CO)3SeCOR (1) (R = C6H5 (a), 3,5-C6H3(NO2)2 (b), 3-C6H4NO2 (c), 4-C6H4NO2 (d), CH3 (e)) and cyclopentadienyltricarbonyl tungsten selenosulfonate complexes CpW(CO)3SeSO2R (2) (R = C6H5 (a), 4-C6H4CH3 (b), 4-C6H4OCH3 (c), 4-C6H4Cl (d), CH3 (e)) have been prepared from the tungsten anion [CpW(CO)3Se] and acid- or sulfonyl chlorides respectively. The new complexes (1 and 2) have been characterized by IR, 1H NMR spectroscopies as well as elemental analysis. The crystal structure of CpW(CO)3SeCO-3-C6H4NO2 (1c) was determined.  相似文献   

4.
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   

5.
The synthesis of acetylene, acyl-thiol and thiol end-capped titanium-copper π-tweezer complexes of the structural type {[Ti](μ-σ,π-CCR)2}CuSC6H4-4-R′ ([Ti] = (η5-C5H4SiMe3)2Ti; 3: R = SiMe3, R′ = CCH; 5a: R = SiMe3, R′ = SC(O)Me; 5b: R = tBu, R′ = SC(O)Me), {[Ti](μ-σ,π-CCSiMe3)2}CuSC6H4-C6H4-4-SH (7) and ({[Ti](μ-σ,π-CCR)2}CuSC6H4)2 (8) is described. Homobimetallic 3, 5a and 5b are accessible via the reaction of {[Ti](μ-σ,π-CCR)2}CuMe (1a: R = SiMe3, 1b: R = tBu) with stoichiometric amounts of Me(O)CS-1-C6H4-4-CCH (2) and C6H4-1,4-(SC(O)Me)2 (4), respectively. Within these reactions the copper-sulfur bond formation is accompanied by the elimination of acetone. If 1a is treated with the dithiol (HS-C6H4)2 (6) in a ratio of 1:1 or 2:1 than dinuclear 7 and tetranuclear 8 are produced upon formation of methane. Both types of reaction allow in a straightforward manner the synthesis of analytically pure samples in high yield. In addition, complex 8 is also formed, when equimolar amounts of 7 are reacted with1a.The solid state structure of 5a is reported. This complex possesses a low-valent CuSC6H4-4-SC(O)Me entity with copper(I) in a planar surrounding. All other geometrical features are in agreement with the expected data relevant for Ti-Cu organometallic π-tweezer complexes.Cyclic voltammetric studies were carried out with 3-8. The results are discussed with respect to intramolecular interactions between the various electrochemically active reaction sites.  相似文献   

6.
The reactivity of the iron selenide complex (μ-Se)[CpFe(CO)2]2 toward chloroformates, ROCOCl, has been studied and the products CpFe(CO)2SeCO2R [R=Me (1), Et (2), iso-Bu (3), Ph (4), 2-C6H4Cl (5), 4-C6H4Cl (6), and 4-C6H4NO2 (7)] have been obtained. The novel complexes, 1-7, have been characterized by elemental analyses, IR and 1H NMR spectroscopy. The solid state structure of CpFe(CO)2SeCO2Et, 2, was determined by an X-ray crystal structure analysis.  相似文献   

7.
The preparation and characterisation of the complexes [Co2(CO)4(PMe3)2][Co2(CO)6](Me3SiC2C2SiMe3) (4), [Co2(CO)4(dppm)][Co2(CO)6](Me3SiC2C2H) (5), [Co2(CO)4(dppa)][Co2(CO)6](Me3SiC2C2SiMe3) (6), [Co2(CO)4(dppm)]2[Co2(CO)6](Me3SiC2CCC2C2SiMe3) (7) and [{SiMe3(Co2(CO)4(dppm))C2}2(HCC)(1,3,5-C6H3)] (8) are described. An electrochemical study of the complexes 5-8 and of the related [Co2(CO)4(dppm)]2(Me3SiC2(CC)2C2SiMe3) (1), [Co2(CO)4(dppa)]2(Me3SiC2C2SiMe3) (2) and [{SiMe3(Co2(CO)4(dppm))C2}(HCC)2(1,3,5-C6H3)] (3) is presented by means of the cyclic and square-wave voltammetry techniques. Crystals of 8 suitable for single-crystal X-ray diffraction were grown and the molecular structure of this compound is discussed.  相似文献   

8.
A series of mononuclear organotin(IV) complexes of the types, R3SnL {R = C4H9 (1), C6H11 (2), CH3 (3) and C6H5 (4)}, R2SnClL {R = C4H9 (5), C2H5 (7) and CH3 (9)} and R2SnL2 {R = C4H9 (6), C2H5 (8) and CH3 (10)}, have been synthesized, where L = 4-(4-methoxyphenyl)piperazine-1-carbodithioate. The ligand-salt and the complexes have been characterized by Raman, FT-IR and multinuclear NMR (1H, 13C and 119Sn) spectroscopy and elemental microanalysis (CHNS). The spectroscopic data substantiate coordination of the ligands to the organotin moieties. The structures of complexes 4 and 6 have been determined by single-crystal X-ray diffraction and illustrate the asymmetric bidentate bonding of the ligand. The packing diagrams indicate O···H and π···H intermolecular interactions in complex 4 and intermolecular S2C···H interactions in complex 6, resulting in layer structures for both complexes. A subsequent antimicrobial study indicates that the compounds are active biologically and may well be the basis for a new class of fungicides.  相似文献   

9.
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   

10.
The 2-methallyl complex [(η5-C9H7)Ru(η3-2-MeC3H4)(PPh3)] (3), prepared from [(η5-C9H7)Ru(PPh3)2Cl] (2) and 2-MeC3H4MgCl, reacts with HX (X = Cl, CF3CO2) in the presence of ethene to give the chiral-at-metal compounds [(η5-C9H7)Ru(C2H4)(PPh3)X] (4, 5) in nearly quantitative yields. Treatment of 2 with AgPF6 and ethene affords [(η5-C9H7)Ru(C2H4)(PPh3)2]PF6 (6), which reacts with acetone to give the substitution product [(η5-C9H7)Ru(OCMe2)(PPh3)2]PF6 (7). The molecular structure of 7 has been determined crystallographically. Whereas treatment of 4 with CH(CO2Et)N2 yields the olefin complex [(η5-C9H7)Ru{η2-(Z)-C2H2(CO2Et)2}(PPh3)Cl] (8), the reactions of 4 and 5 with Ph2CN2, PhCHN2 and (Me3Si)CHN2 lead to the formation of the carbeneruthenium(II) derivatives [(η5-C9H7)Ru(CRR′)(PPh3)Cl] (9-11) and [(η5-C9H7)Ru(CRR′)(PPh3)(κ1-O2CCF3)] (12-14), respectively. Treatment of 9 (R = R′ = Ph), 10 (R = H, R′ = Ph) and 11 (R = H, R′ = SiMe3) with MeLi produces the hydrido(olefin) complexes [(η5-C9H7)RuH(η2-CH2CPh2)(PPh3)] (15), [(η5-C9H7)RuH(η2-CH2CHPh)(PPh3)] (18a,b) and [(η5-C9H7)RuH(η2-CH2CHSiMe3)(PPh3)] (19) via C-C coupling and β-hydride shift. The analogous reactions of 11 with PhLi gives the η3-benzyl compound [(η5-C9H7)Ru{η3-(Me3Si)CHC6H5}(PPh3)] (20). The η3-allyl complex [(η5-C9H7)Ru(η3-1-PhC3H4)(PPh3)] (17) was prepared from 10 and CH2CHMgBr by nucleophilic attack.  相似文献   

11.
N,N′-Dilithiated 1,1′-bis(trimethylsilylamino)ferrocene (2) reacts with boron halide adducts (HBBr2-SMe2; BF3-OEt2 and BBr3-SMe2), boron halides (BCl3, BBr3, BCl2(OPh) and BCl2(Ph)) and 1,1-bis(dimethylamino)dichlorodiborane(4) to give the corresponding 1,3-bis(trimethylsilyl)-1,3,2-diazabora-[3]ferrocenophanes (3)-(8) and the 2,3-bis(dimethylamino)-1,4-bis(trimethylsilyl)-1,4,2,3-diazadibora-[4]ferrocenophane (9). All new complexes were characterised by multinuclear magnetic resonance spectroscopy in solution, and the solid-state molecular structures of the hydride (3), fluoride, chloride (4, 5), and of the phenoxy and phenyl derivatives (7, 8) were determined by X-ray analysis.  相似文献   

12.
The niobium complex [NbCpClCl4] (CpClη5-C5H4(SiCl2Me)) (1) with a functionalized (dichloromethylsilyl)cyclopentadienyl ligand was isolated by the reaction of [NbCl5] with C5H4(SiCl2Me)(SiMe3). Complex 1 was a precursor for the imido silylamido derivative [NbCpNCl2(NtBu)] (CpNη5-C5H4[SiClMe(NHtBu)]) (2) after addition of LiNHtBu, which subsequently gave the dichlorosilyl compound [NbCpClCl2(NtBu)] (3) when reacted with SiCl3Me. Addition of LiNHtBu to complex 2 gave the niobium amido complex [NbCpNCl(NHtBu)(NtBu)] (4), which slowly evolved with exchange of the niobium-amido and the silicon-chloro groups to give the dichloroniobium complex [NbCpNNCl2(NtBu)] (CpNNη5-C5H4[SiMe(NHtBu)2]) (5). Reaction of 2 with excess LiNHtBu gave the silyl-η-amido constrained geometry complexes [Nb{η5-C5H4[SiMe(NHtBu)(-η-NtBu)]}(NHtBu)(NtBu)] (6) and [Nb{η5-C5H4[SiClMe(-η-NtBu)]}(NHtBu)(NtBu)] (7), whereas addition of one equimolecular amount of LiNHtBu to 5 in C6D6 afforded complex [NbCpNNCl(NHtBu)(NtBu)] (8). All of the new complexes were characterized by 1H, 13C and 29Si NMR spectroscopy.  相似文献   

13.
The coordination chemistry of thioether functionalized cyclodiphosphazane ligand, cis-{tBuNP(OCH2CH2SCH3)}2 (1) is described. The reactions of 1 with [Pd (COD)Cl2] in 1:1, 1:2 and 2:1 M ratios afforded cis-[PdCl2{tBuNP(OCH2CH2SCH3)}2] (2), cis-[{PdCl2}2{tBuNP(OCH2CH2SCH3)}2] (3) and trans-[PdCl2{(tBuNP(OCH2CH2SCH3))2}2] (4), respectively. Treatment of 1 with [Pd(PEt3)Cl2]2 or [PdCl(η3-C3H5)]2 in appropriate molar ratios produce the mono- and binuclear complexes [PdCl2(PEt3{tBuNP(OCH2CH2SCH3)}2] (5) and [{PdCl(η3-C3H5)}2{tBuNP(OCH2CH2SCH3)}2] (6) in good yield. The reaction of 1 with [{Ru(p-cymene)Cl2}2] afforded the mononuclear cationic complex, [{(p-cymene)RuCl{tBuNP(OCH2CH2SCH3)}2]Cl (7), whereas the reactions of [Rh(COD)Cl]2, [Pt(COD)Cl2] and [Au(SMe2)Cl] with 1 yielded the corresponding P-coordinated neutral complexes, [RhCl(COD){tBuNP(OCH2CH2SCH3)}2] (8)cis-[PtCl2{tBuNP(OCH2CH2SCH3)}2] (9), respectively. The binuclear palladium(II) complex 3 was found to be an effective catalyst for the Suzuki-Miyaura cross-coupling reactions.  相似文献   

14.
[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   

15.
The paper describes the reactivity of calix[4]arene dialkyl- or -silylethers H2R2calix, R=Me (1), Bz (2), or SiMe3 (3) (p-tert.butyl-calix[4]arene=H4calix), towards the iron(III) complex [FeCl(NSiMe3)2(thf)] 4. Bis(silylation) of H4calix was achieved using a mixture of NEt3 and Me3SiCl as silylating agent, which is probably the most convenient and cheapest way for the preparation of H2(Me3Si)2calix 3. [FeCl(N{SiMe3}2)2(thf)] 4 has been obtained from the reaction of [FeCl3] and commercially available K[N(SiMe3)2] in THF. The reactions of 4 with H2Me2calix and H2Bz2calix afford mononuclear iron(III) chloro compounds [FeCl(R2calix)] 5 (R=Me) and 6 (R=Bz). The usage of calix[4]arene silyl ether 3 leads to a dinuclear complex [Fe2({Me3Si}calix)2] 7, presumably under Me3SiCl cleavage of a mononuclear calixarene iron(III) chloro complex. The calix[4]arene ether stabilized iron(III) chloro complexes are susceptible to nucleophilic substitution reactions, as exemplified by the reaction of 5 with sodium azide yielding an azido complex [Fe(N3)(Me2calix)] 8. The molecular structures of 4, 5, 6, 7, and 8 in the solid state have been determined by X-ray diffraction.  相似文献   

16.
The reaction of 9,10-bis[(cyclopentadienylmethyl)thallium(I)]anthracene (2), obtained from 9,10-bis(cyclopentadienylmethyl)anthracene (1), with the chloro derivatives of rhodium(I) of formula [RhClL2]2 (L=η2-C8H14 or L24-C8H12) leads to the corresponding bimetallic complexes [L2Rh{C5H4CH2(9,10-anthrylene)CH2C5H4}RhL2] 3 (L=η2-C8H14) and 4 (L24-C8H12), in 22.8% and 15.0% yields, respectively. Analogously, by reacting 2 with [IrClL2]2 (L=η2-C8H14 or L24-C8H12), the corresponding bimetallic iridium(I) complexes [L2Ir{C5H4CH2(9,10-anthrylene)CH2C5H4}IrL2] 5 (L=η2-C8H14) and 6 (L24-C8H12) were obtained, in 24.5% and 43.0% yields, respectively. All complexes have been characterised by elemental analysis, mass spectrometry, and 1H NMR. The structure of 4 was elucidated also by single crystal X-ray diffraction: it crystallises in the P21/c space group with a=19.932(11), b=6.4417(4), c=12.377(2) Å; α=90°, β=100.90(4)°, γ=90°. V=1560.5(9) Å3. Z=2, Dcalc=1.606 g cm−1, R1=0.0449 [I>σ(I)], wR2=0.1121. The UV-Vis spectra (280-530 nm) of 3-6 are indicative of the existence of strong electronic interactions among the 9,10-anthrylene chromophore and the two cyclopentadienylML2 moieties. When excited at ca. 370 nm, 1 results to be an efficient light-emitting molecule, while the fluorescence emission of the 9,10-anthrylene chromophore is almost completely quenched in complexes 3-6. The study of the electrochemical behaviour of 3-6 in strictly aprotic conditions allows a satisfactory interpretation of the observed electrode processes and gives information about the location of the redox sites along with the thermodynamic characterisation of the corresponding redox processes. These data show that the occurrence of an intramolecular charge-transfer process between the photo-excited 9,10-anthrylene group and the cyclopentadienylML2 moiety is a possible route for the observed quenching of emission in the compounds 3-6. The one-electron oxidation of compounds 3-6 by thallium(III) trifluoroacetate leads to the formation of the corresponding cation radicals. Three of them, i.e., 3+, 5+ and 6+, give rise to good X-band EPR spectra that were fully interpreted by computer simulation as well as by semi-empirical calculations (PM3 level) of the spin density distribution.  相似文献   

17.
New C-ansa-zirconocene complexes containing methoxythiophenolate and mercaptophenolate ligands have been synthesized and characterized. The reaction of (HSC6H4-n-OMe) (n = 2, 3 or 4) with [Zr{(t-Bu)HC(η5-C5Me4)(η5-C5H4)}Me2] (1) led to the formation of monosubstituted complexes [Zr{(t-Bu)HC(η5-C5Me4)(η5-C5H4)}Me(κ,S-SC6H4-n-OMe)] (= 2 (2); = 3 (3)) and the disubstituted complex [Zr{(t-Bu)HC(η5-C5Me4)(η5-C5H4)}(κ,S-SC6H4-4-OMe)2] (4). The complexes [Zr{(R)HC(η5-C5Me4)(η5-C5H4)}(κ,O-OC6H4-4-SH)2] (R = t-Bu (6); R = CH2CHCH2 (7)) and [Zr(η5-C5H4)2(OC6H4-n-SH)2] (= 3 (9); = 4 (10)) have been synthesized using the corresponding dimethyl zirconocene and mercaptophenol. However, the reaction of [Zr{(t-Bu)HC(η5-C5Me4)(η5-C5H4)}Cl2] (11) with 4-mercaptophenol in the presence of NEt3 led to the formation of the first example of a homoleptic six-coordinate mercaptophenolate complex of zirconium, namely [HNEt3]2[Zr(κ,O-OC6H4-4-SH)6] (12). Complex 12 can be obtained in higher yield by the reaction of ZrCl4 with six equivalents of 4-mercaptophenol and NEt3. The reaction of 12 with [Zr(η5-C5H4)2Cl2] gave the unexpected disubstituted complex [Zr(η5-C5H4)2(OC6H4-4-SH)2] (10). The molecular structures of 4 and 12 have been determined by single-crystal X-ray diffraction studies.  相似文献   

18.
The new ligand di-2-pyrazinylmethanone (di-2-pyrazinyl ketone), (2-C4H3N2)2CO, has been synthesized, and two silver(I) coordination polymers of its hydrated gem-diol (2-C4H3N2)2C(OH)2, namely {Ag[(2-C4H3N2)2C(OH)2](CF3SO3)} (1) and {Ag[(2-C4H3N2)2C(OH)2](CF3CO2)} (2), have been characterized by X-ray crystallography. A (4,4) net was found in compound 1. In the case of 2, the silver(I) atom functions as a rare five-connected node to conjunct the (2-C4H3N2)2C(OH)2 ligands into an extended coordination network which can be viewed as an α-Po topology of the NaCl-type.  相似文献   

19.
A new high-yield synthesis of 2-pyridylferrocene (1) without formation of the 1,1′-disubstituted product has been developed. Also the corresponding ruthenocene and cymantrene derivatives [C5H4(2-C5H4N)]MLn (MLn = Ru(C5H5) (2), Mn(CO)3 (3)) were prepared and fully characterized. Ortho-lithiation of 1 followed by electrophilic halogenation yielded [C5H3X(2-C5H4N)]Fe(C5H5) [X = F (4), Cl (5), Br (6), I (7)], with 4 only being the second reported and first fully characterized fluoroferrocene. The molecular structures of 1, 4 and 6 have been determined by X-ray crystallography.  相似文献   

20.
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   

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