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1.
《Polyhedron》1999,18(5):729-733
Equimolar quantities of [Mo (CO) (η2-RC2R′)2Cp] [BF4] (R=R′=Me Ph R=Me R′=Ph) and L L′ or L″ {L L′ or L″= [WI2 (CO){PhP(CH2CH2PPh2)2-PP′} (η2-RC2R′)]} (L R=R′=Me L′ R=R′=Ph L″ R=Me R′=Ph) react in CH2Cl2 at room temperature to give the new bimetallic complexes[Mo (CO) (L L′ or L″–P) (η2-RC2R′)Cp] [BF4] (1–9) via displacement of the alkyne ligand on the molybdenum centre The complexes have been characterised by elemental analysis IR and 1 H NMR spectroscopy and in selected cases by 31 P NMR spectroscopy.  相似文献   

2.
The insertion reaction of CS2 with Mg(NR2)2 (R= Et, iPr), MgR′2 (R′= Et, Ph) and R″MgBr (R″= iPr, Ph) respectively lead solid products, Mg(S2CNR2)2(THF)n ( 1 : R= Et, n=2; 2 : R= iPr, n=1), Mg(S2C′R)2(THF)2 ( 3 : ′R= Et, 4 : ′R= Ph), BrMg(S2C″R) (THF)3 ( 5 : ″R= iPr, 6 : ″R= Ph) in which the inserted carbon disulfides act as terminal chelating ligands. These compounds were characterized with 1H, 13C NMR, IR spectroscopy, mass spectrometry, elemental analyses, and X‐ray crystallography.  相似文献   

3.
《Polyhedron》1999,18(20):2665-2671
The reaction of [PtCl2(dppe)] [dppe=1,2-bis(diphenylphosphino)ethane] with two equivalents of the thioureas NHRC(S)NHR (R=H, Me, Et) in the presence of NH4PF6 led to substitution of both chlorides and formation of the complexes [Pt(dppe){SC(NHR)2}2](PF6)2 (1a, R=H; 1b, R=Me; 1c, R=Et). In contrast, the reaction of [PtCl2(dppe)] with one equivalent of the potentially bidentate thiosemicarbazides NHRC(S)NHNR′2 (R=Me, R′=H; R=Et, R′=H; R=Ph, R′=H; R=Me, R′=Me) in the presence of NH4PF6 led to substitution of only one chloride and formation of the complexes [PtCl(dppe){SC(NHR)NHNR2′-S}](PF6) (2a, R=Me, R′=H; 2b, R=Et, R′=H; 2c, R=Ph, R′=H; 2d, R=Me, R′=Me). An X-ray analysis of complex 2d revealed that an intramolecular N–H⋯Cl hydrogen bond [N(2)⋯Cl(1)=3.29(2) Å] helps to stabilise the monodentate co-ordination mode. The chloride ligand can be abstracted from complex 2d by treatment with TlPF6, and this reaction led to formation of [Pt(dppe){SC(NHMe)NHNMe2-S,N}](PF6)2 3d. Reaction of [PtCl2(dppe)] with unsubstituted thiosemicarbazide NH2C(S)NHNH2 in the presence of NH4PF6 resulted in a mixture of products containing mono- and bidentate co-ordinated ligands, [PtCl(dppe){SC(NH2)NHNH2-S}](PF6) 2e and [Pt(dppe){SC(NH2)NHNH2-S,N}](PF6)2 3e. [PtCl2(dppe)] also reacts with two equivalents of NHMeC(S)NHNMe2 in the presence of NH4PF6 to yield [Pt(dppe){SC(NHMe)NHNMe2-S}2](PF6)2 1d, in which the thiosemicarbazide is acting as an S-donor, directly analogous to the thiourea ligands in complexes 1a–c.  相似文献   

4.
《Polyhedron》1988,7(18):1719-1724
Reaction of [MoX(CO2(NCMe)23-C3H4R)] in CH2Cl2 at room temperature with an equimolar quantity of (R′R″)CNNHCONH2 gave high yields of the bidentate coordinated semicarbazone complexes [MoX(CO)2{(R′R″)CNNHCONH2}(η3-C3H4R)] (X = Cl, Br or I; R = H or Me; R′,R″ = H or Me and Me, Et, nPr or Ph) via displacement of two acetonitrile ligands.  相似文献   

5.
Reactions of the phosphinoacetylenes RR′PCCR″ (R  R′  Ph, R″  H, CF3, Ph, Me, t-Bu; R  R′  C6F5, R″  Ph, Me; R  Ph, R′  Me, R″  Me) with Co2(CO)8 have been studied. Complexes of four types have been characterised: (A)(RR′PC2R″)CO2(CO)6 (R  R′  C6F5, R″  Ph, Me; R  R′  Ph, R″  t-Bu), (B) (RR′PC2R″)2Co4(CO)10 (R  R′  Ph, R″  H, CF3, Ph, Me; R  R′  C6F5, R″  Me; R  Ph, R′  Me, R″  Me), (C) (RR′PC2R″)2Co2(CO)6 (R  R′  Ph, R″  t-Bu), (D) (RR′P(O)C2R″)Co2(CO)6 (R  R′  Ph, R″  t-Bu; R  R′  C6F5, R  Ph). The complexes were characterised by microanalysis, IR, NMR and where possible mass spectra. Substitution reactions of the complexes with tertiary phosphites are described. In complexes of type (A) only the alkyne function is utilised whereas the tetranuclear compounds (B) have structures in which both alkyne and phosphorus moieties are coordinated. Compounds of type (C) are simple disubstituted phosphine complexes of Co2(CO)8 and those of type (D) are μ-alkyne derivatives of acetylenic phosphine oxides. The mechanism of formation of complexes of type (B) is discussed in the light of IR data.  相似文献   

6.
Reaction of [Fe2(CO)9] with a half molar amount of R2PYPR2 (Y = CH2, R = Ph, Me, OMe or OPri; Y = N(Et), R = OPh, OMe or OCH2; Y = N(Me), R = OPri or OEt) leads to the ready formation of a product which on irradiation with ultraviolet light rapidly decarbonylates to the heptacarbonyl derivative [Fe2(μ-CO)(CO)6{μ-R2PYPR2}]. Treatment of the latter with a slight excess of the appropriate ligand results, under photochemical conditions, in the formation of the dinuclear pentacarbonyl complex [Fe2(μ-CO)(C))4{μ-R2PYPR2}2] but under thermal conditions in the formation of the mononuclear species [Fe(CO)3{R2PYPR2}]. Reaction of [Ru3(CO)12] with an equimolar amount of (RO)2PN(R′)P(OR)2 (R′ = Me, R = Pri or Et; R′ = Et, R = Ph or Me) under either thermal or photochemical conditions produces [Ru3(CO)10{μ-(RO)2PN(OR)2}] which reacts further with excess (RO)2PN(R′)P(OR)2 on irradiation with ultraviolet light to afford the dinuclear compound [Ru2(μ-CO)(CO4{μ-(RO)2PN(R′)P(OR)2}2]. The molecular structure of [Ru2(μ-CO)(CO)4{μ-(MeO)2PN(Et)P(OMe)2}2], which has been determined by X-ray crystallography, is described.  相似文献   

7.
Reactions of triorganotin chlorides with potassium salt of O-alkyl trithiophosphate [ROP(S)(SK)2; R = Me, Pri, Ph] in 2:1 molar ratio in anhydrous benzene yield triorganotin O-alkyl trithiophosphate of the type ROP(S) [SSnR′3]2 R = Me, Pri; Ph, R′ = Prn, Bun, Ph] which are found to be monomeric in nature. These complexes are soluble in common organic solvents. Similar reactions of diorganotin chloride with dipotassium salt of S-alkyl trithiophosphate yield diorganotin-S-alkyl trithiophosphate of the type [(RS)P(O)S2]2SnR′2; R = Me, Pri; R′ = Me, Et, Ph, which also are found to be monomeric in nature and are soluble in common organic solvents. The newly synthesized derivatives have been characterized by physicochemical and spectroscopic techniques, IR, NMR (1H, 31P, and 119Sn).  相似文献   

8.
A variety of very bulky amido magnesium iodide complexes, LMgI(solvent)0/1 and [LMg(μ‐I)(solvent)0/1]2 (L=‐N(Ar)(SiR3); Ar=C6H2{C(H)Ph2}2R′‐2,6,4; R=Me, Pri, Ph, or OBut; R′=Pri or Me) have been prepared by three synthetic routes. Structurally characterized examples of these materials include the first unsolvated amido magnesium halide complexes, such as [LMg(μ‐I)]2 (R=Me, R′=Pri). Reductions of several such complexes with KC8 in the absence of coordinating solvents have afforded the first two‐coordinate magnesium(I) dimers, LMg?MgL (R=Me, Pri or Ph; R′=Pri, or Me), in low to good yields. Reductions of two of the precursor complexes in the presence of THF have given the related THF adduct complexes, L(THF)Mg?Mg(THF)L (R=Me; R′=Pri) and LMg?Mg(THF)L (R=Pri; R′=Me) in trace yields. The X‐ray crystal structures of all magnesium(I) complexes were obtained. DFT calculations on the unsolvated examples reveal their Mg?Mg bonds to be covalent and of high s‐character, while Ph???Mg bonding interactions in the compounds were found to be weak at best.  相似文献   

9.
Reaction of the ligand-bridged derivatives [M3(CO)10{μ-(RO)2PN(Et)P(OR)2}] and [M3(CO)8{μ-(RO)2PN(Et)P(OR)2}2] (M = Ru or Os; R = Me or Pri) with halogens leads to the formation of cationic products [M3(μ-X)(CO)10{μ- (RO)2PN(Et)P(OR)2}]+ and [M3(μ-X)(CO)8{μ-(RO)2PN(Et)P(OR)2}2]+ (X = Cl, Br or I) in which the halogen bridges an opened edge of the metal atom framework; the crystal structure of [Ru3(μ-I)(CO)8{μ-(MeO)2PN(Et)P(OMe)2}2]PF6 is reported.  相似文献   

10.
A series of compounds of the formula Fe2(CO)6-x(PR3)x(R′C2R″)2 (x = 0, R′ and R″ = Ph, R′ and R″ = H, R′ = Ph and R″ = H; x = 1, K = Ph or n-Bu, and R′ and R″ = Ph) were studied by 13C NMR to observe their solution properties. The tricarbonylferrole unit was found to be static from ?125 to +95° C, while the π-Fe(CO)3 group appeared to be fluxional over the same temperature range. Definite assignments of the carbonyl carbon and ferrole ring carbon resonances have been made. A low temperature single crystal X-ray study of Fe2(CO)5PPh3(PhC2Ph)2 demonstrated that the phosphine ligand was attached to the ferrole iron contrary to previous belief based on chemical evidence.  相似文献   

11.
Selective Preparation of Twofold Diorganophosphido-bridged Metallatetrahedranes [Re2(MPR3)2(μ-PR2)2(CO)6] with Re2M2 Metal Core (M = Au, Ag) The reaction of the in situ prepared salt Li[Re2(AuPR)(μ-PR2)(CO)7Cl] (R = R′ = Cy ( 1 a ), R = Cy, R′ = Ph ( 1 b ), R = Ph, R′ = Cy ( 1 c ), R = Ph, R′ = Et ( 1 d ), R = Ph, R′ = Ph ( 1 e )) with one equivalent HPR in methanolic solution at room temperature yields the neutral cluster complexes [Re2(AuPR)(μ-PR2)(CO)7(ax-HPR) (R = R′ = R″ = Cy ( 2 a ), Ph ( 2 b ), R = R′ = Cy, R″ = Et ( 2 c ), R = Cy, R′ = R″ = Ph ( 2 d ), R = Cy, R′ = Ph, R″ = Et ( 2 e ), R = R″ = Ph, R′ = Et ( 2 f ), R = Ph, R′ = Cy, R″ = Et (2 g)). Photochemically induced these complexes react in the presence of the organic base DBU in THF solution to give the doubly phosphido bridged anions Li[Re2(AuPR)(μ-PR2)(μ-PR)(CO)6], which were characterized as salts PPh4[Re2(AuPR)(μ-PR2)(μ-PR)(CO)6] (R = R′ = R″ = Ph ( 3 a ), R = R′ = Ph, R″ = Cy ( 3 b ), R = Ph, R′ = Cy, R″ = Et ( 3 c ), R = R″ = Ph, R′ = Et ( 3 d )). These precursor complexes 3 then react with one equivalent of ClMPR (M = Au, Ag) to doubly phosphido bridged metallatetrahedranes [Re2(MPR3)2(μ-PR2)(μ-PR)(CO)6] (M = Au, R = R′ = R″ = Ph ( 4 a ), M = Au, R′ = Et, R = R″ = Ph ( 4 b ), M = Au, R = R′ = Ph, R″ = Cy ( 4 c ), M = Au, R = Cy, R′ = Ph, R″ = Et ( 4 d ), M = Ag, R = R′ = R″ = Ph ( 4 e )). All isolated cluster complexes were characterized and identified by the following analytical methods: NMR- (1H, 31P) and ν(CO) IR-spectroscopy and, additionally, complexes 2 b , 4 a and 4 e by X-ray structure analysis.  相似文献   

12.
A study of the coordination chemistry of different amidato ligands [(R)N?C(Ph)O] (R=Ph, 2,6‐diisopropylphenyl (Dipp)) at Group 4 metallocenes is presented. The heterometallacyclic complexes [Cp2M(Cl){κ2N,O‐(R)N?C(Ph)O}] M=Zr, R=Dipp ( 1 a ), Ph ( 1 b ); M=Hf, R=Ph ( 2 )) were synthesized by reaction of [Cp2MCl2] with the corresponding deprotonated amides. Complex 1 a was also prepared by direct deprotonation of the amide with Schwartz reagent [Cp2Zr(H)Cl]. Salt metathesis reaction of [Cp2Zr(H)Cl] with deprotonated amide [(Dipp)N?C(Ph)O] gave the zirconocene hydrido complex [Cp2M(H){κ2N,O‐(Dipp)N?C(Ph)O}] ( 3 ). Reaction of 1 a with Mg did not result in the desired Zr(III) complex but in formation of Mg complex [(py)3Mg(Cl) {κ2N,O‐(Dipp)N?C(Ph)O}] ( 4 ; py=pyridine). The paramagnetic complexes [Cp′2Ti{κ2N,O‐(R)N?C(Ph)O}] (Cp′=Cp, R=Ph ( 7 a ); Cp′=Cp, R=Dipp ( 7 b ); Cp′=Cp*, R=Ph ( 8 )) were prepared by the reaction of the known titanocene alkyne complexes [Cp2′Ti(η2‐Me3SiC2SiMe3)] (Cp′=Cp ( 5 ), Cp′=Cp* ( 6 )) with the corresponding amides. Complexes 1 a , 2 , 3 , 4 , 7 a , 7 b , and 8 were characterized by X‐ray crystallography. The structure and bonding of complexes 7 a and 8 were also characterized by EPR spectroscopy.  相似文献   

13.
A series of N-[chloro(diorganyl)silyl]anilines RR′Si(NR″Ph)Cl (R, R′ = Me, Ph, CH2=CH, ClCH2, Cl(CH2)3; R″ = H, Me) was prepared via the reaction of diorganyldichlorosilanes with aniline or N-ethylaniline in the presence of triethylamine.  相似文献   

14.
N-methylaminoalkoxides of titanium of the type Ti(OR)4?n(O · CHR′ · CH2 · NR″R?)n where R = Et and Pr1; n = 1–4; and R′ = R″ = H, R? = Me; R′ = H, R″ = R? = Me; R′ = R″ = R? = Me, synthesized by the reactions of titanium alkoxides with aminoalcohols, show interesting variations in their properties like physical state, volatility and molecular complexity. I.r. and p.m.r. spectra of these derivatives have been recorded. A few interchange reactions with methanol and tert-butanol have also been carried out. These aminoalkoxides get cleaved with acetyl chloride and undergo insertion reactions with phenylisocyanate, thus providing the first examples of insertion reactions in such derivatives.  相似文献   

15.
《Polyhedron》2002,21(25-26):2531-2535
The reactivities of [trans-R2MoO(NNPhR′)(o-phen)], R=R′=Me (1); R=Me, R′=Ph (2); R=Ph, R′=Me (3); R=R′=Ph (4), toward (i) neutral 1,1-disubstituted hydrazines, R′PhNNH2 and (ii) 1,1-disubstituted hydrazine hydrochlorides, R′PhNNH2·HCl, R′=Me, Ph, were studied in acetonitrile. In the first case, no condensation reaction of the free oxo group was observed under different experimental conditions. In the second case, using a 1:1 precursor/hydrazine hydrochloride molar ratio, the oxo group was also unreactive, instead one methyl or phenyl group bonded to molybdenum was displaced as methane or benzene and was subsequently substituted by one chloride ligand affording complexes formulated as [trans-RClMoO(NNPhR′)(o-phen)], R=R′=Me (5); R=Me, R′=Ph (6); R=Ph, R′=Me, (7)·MeCN; R=R′=Ph, (8)·MeCN. Finally, when a 1:2 precursor/hydrazine hydrochloride molar ratio was used, both methyl and phenyl groups were substituted affording complexes formulated as [trans-Cl2MoO(NNPhR′)(o-phen)], R′=Me (9), R=Ph (10). The new organometallic compounds were characterised by IR, UV–Vis and 1H NMR spectroscopy while the crystal and molecular structure of 6 was determined by X-ray diffraction analysis.  相似文献   

16.
Reaction of [Ru2(μ-CO)(CO)4{μ-(RO)2PN(Et)(OR)2}2] (R = Me or Pri) with the protonic acids HCl, HBr, HNO3, H2BO2F, CF3COOH, PhSH/HPF6, and H2CO3/HPF6 produces [Ru2A(CO)5 {μ-(RO)2PN(Et)(OR)2}2]+ and/or [Ru2(μ-A)(CO)4{μ-(RO)2PN(Et)(OR)2}2]+ (A = Cl, Br, ON(O)O, OB(F)OH, OC(CF3)O, SPh, and OC(OH)O) via [Ru2H(CO)5{μ-(RO)2PN(Et)(OR)2}2]+ as intermediate; the structure of [Ru2{μ-OB(F)OH}(CO)4{-(PriO)2PN(Et)P(OPri)2}]+ has been established X-ray crystallographically.  相似文献   

17.
《Polyhedron》1987,6(4):783-792
W2(OR)6Ln compounds [R = But n = 0; R = Pri or Np (Np = neopentyl), L = py (py = pyridine) or HNMe2, n = 2] react with alkynes (R′C-CR′) under mild conditions (hexane solutions, room temperature or below) to yield a variety of products depending upon the nature of the alkoxide, the alkyne and the mole ratio of the reactants. The products include alkylidyne complexes Ln(RO)3W CR′ (n = 1 or 0) (Schrock et al., Organometallics 1985, 4, 74), alkyne adducts, W2(OR)6(py)n(μ-C2R′2), alkylidyne-capped tritungsten complexes, W33-CR′)(OR)9, and W2(OR)6(L)(μ-C4R′4) or W2(OR)6(μ-C4R′4) (μ2-C2R′2) compounds. Evidence for equilibria involving alkyne adducts and alkylidyne species is found for certain combinations of R and R′. (1) The alkylidyne complexes (ButO)3 WCMe and (py)2(PriO)3 W CNMe2 react with CO (1 atm 22°C, in hexane) to yield alkyne adducts W2(OBut)6(μ-C2Me2)(CO) and W2[(OPri)6(CO)22-C2(NMe2)2], respectively. (2) The alkylidyne complexes [PriO)2(HNMe2)(R′C)W(μ-OPri)]2 react with alkynes R′CCR′ (> 2 equiv, hexane, 22°C) to give W2(OPri)6(μ-C4R′4)(η2-C2R′2) compound (R′ = Me or Et). (3) The alkyne adducts W2(ONp)6(py)n(μ-C2R′2) (R′ = Et or Ph, n = 1; R′ = Me, n = 2) react with W2(ONp)6(py)2 in a 1:2 mole ratio at 22°C in hexane to yield W33-CR′)(ONp)(9 compounds. In related reactions involving 1,2-bishydrocarbyl-tetraalkoxides, W2(CH2R″)2(OR)4, and alkynes (R′CCR′) (2 equiv), alkyne adducts of formula W2(CH2R″)22-C2R′2)2(OPri)4 and W2(CH3)2(μ-C2R′2)(OBut)4(py), alkylidyne-bridged complexes HW2(μ-CR″)(μ-C4R′4)(OPri)4 and products of WW and CC metathesis have been isolated for various combinations of R, R′ and R″.  相似文献   

18.
Summary Trimethylplatinum(IV)dialkyldithiophosphates of the type [PtMe3{SSP(OR)2}]2 (1), [PtMe3(py){SSP(OR)2}] (2), [PtMe3(NN){SSP(OR)2}] (3) and [PtMe3(NNN)]-[{SSP(OR)2}] (4), have been prepared and characterised by elemental analyses, electrical conductance, molecular weight measurements, i.r. and n.m.r. (1H,13C and31P) spectral data. (1) and (2) are non-electrolytes in acetonitrile while (4) is a 11 electrolyte. Molecular weight measurements show the dimeric nature of (1). The dithio ligand in (1), (2), (3) and (4) behaves in chelating tridentate, chelating bidentate, monodentate and in ionic fashions, respectively.  相似文献   

19.
Reaction of [Ru3(CO)12] with a two molar proportion of (RO)2PN(Et)P(OR)2 (R = Me or Pri) in benzene under reflux affords a number of products including [Ru3(CO)10{μ-(RO)2PN(Et)P(OR)2}], [Ru3(CO)9{μ-(RO)2PN(Et)P(OR)2}{η1-(RO)2PN(Et)P(OR)2}] and, as the major species, the tetranuclear derivative [Ru432-CO)(CO)9{μ-(RO)2PN(Et)P(OR)2}2]. An X-ray diffraction study of [Ru432-CO)(CO)9{μ-(MeO)2PN(Et)P(OMe)2}2] has revealed that the skeletal framework adopts a butterfly structure and that one of the carbonyl groups functions as a triply bridging four-electron donor ligand capping the two wing-tip and one of the hinge ruthenium atoms.  相似文献   

20.
Thirty triorganotin(IV) derivatives of the type R3Sn(R′COCHCOCH2COR″) and [R3Sn]2 (R′COCHCOCHCOR″) (where R = CH3, C2H5, nC3H7, nC4H9 and C6H5 and R′ = R″ = CH3, C6H5 or R′ = C6H5, R″ = CH3) have been synthesised by the interaction of R3SnCl with mono- or disodium salt of 2, 4, 6-heptanetrione, 1-phenyl-1, 3, 5-hexanetrione and 1, 5-diphenyl-1, 3, 5-pentanetrione in 1:1 and 2:1 molar ratios, respectively. The complexes have been examined by their molecular weight, IR, PMR and elemental analyses and their tentative structures assigned. Both “Z” and “E” forms have been identified in the 1:1 complexes in equilibrium with the enol form containing five coordinate tin. The 2:1 derivatives contain one five- and other four coordinated tin(IV) except the phenyl analogue where both the tins are five coordinated.  相似文献   

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