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1.
The reactions of arenediazomolybdenum(II) complexes such as [(η-C5H5)Mo(N2C6H4CH3-p)I2]2, (η-C5H5)Mo(CO species with neutral and anionic monodentate or chelating ligands have been investigated. The new arenediazo complexes isolated from these reactions include neutral species such as (η-C5H5)Mo(PPh3)(N2C6H4CH3-p)I2 and (η-C5H5)Mo(N2C6H4CH3-p) cations of the type [η-C5H5)Mo(bipy)(N2C6H4CH3-p)I]+ and the anion [(η-C5H5)Mo(N2C6H4CH3-p)I3]?. The structures of the new complexes are discussed.  相似文献   

2.
Mercury(II) chloride in refluxing methanol or acetone cleaves the molybdenum—tin bond of π-methylcyclopentadienylmolybdenum tricarbonyl triphenylstannyl [(η5-C5H4CH3)(CO)3MoSnPh3] to give (η5-C5H4CH3)(CO)3MoHgCl. The same product was also obtained by reaction of [(η5-C5H4CH3)(CO)3Mo]2Hg with HgCl2 in acetone at room temperature. Similar reactions have given bimetallic complexes of the type (η5-C5H4CH3)(CO)3MoHgX (X = Br, I, SCN). The new complexes are air-stable crystalline solids. The structure of the compound (η5-C5H4CH3)(CO)3MoHgCl has been determined. It crystallizes in space group P21/c with Z = 4, a 6.613(2), b 13.647(4), c 13.257(4) Å, β 101.85(3)°, Dc 2.81 g/cm3, F(000) = 896, μ(Mo-Kα) 143.56 cm?1. Final R = 0.055 for 1696 observed reflexions.  相似文献   

3.
The 31P NMR spectra of C6H5XCr(CO)2P(C6H5)3 (X = H, CH3, OCH3, N(CH3)2, COOCH3) (I), p-C6H4X2Cr(CO)2P(C6H5)3 (X = COOCH3)(II) and C6H3X3Cr(CO)2P(C6H5)3 (X = CH3) (III) complexes in neutral and acidic media were investigated. The protonation of complexes I and III in trifluoroacetic acid results in the greater upfield shielding of 31P{1H} signal. In this case the complexes I (X = H, CH3, OCH3) are completely protonated at the metal, complex I (X = COOCH3)is partially protonated, while no protonation occurs in the case of complex II.Temperature-dependence of the 31P{1H} NMR spectra was investigated for complexes I (X = H, OCH3) in a 1/10 mixture of trifluoroacetic acid and toluene and for complexes I (X = COOCH3) and II in trifluoroacetic acid. The degree of protonation was found to increase with decreasing temperature.  相似文献   

4.
Reactions of Ph2P(CH2)n(C5H4)Li, (n = 0, 2), with MCl4 or CpTiCl3 (M = Ti, Zr; Cp = η5-C5H5) form Cl2M[(η5-C5H4)(CH2)nPPh2]2 or Cl2CpTi[(η5-C5H4)-(CH2)2PPh2] in good yields. Chemical reduction with Al, or electrochemical reduction of these complexes, under CO, are described. The titanium(IV) and zirconium(IV) derivatives react with metal carbonyls (Mo(CO)6, Cr(CO)6, Fe(CO)5, Mo(CO)4(C8H12)) under formation of new heterobimetallic complexes. Reduction with Al of Cl2CpTi[(η5-C5H4)(CH2)2PPh2]Mo(CO)5 under CO results in a new heterobimetallic species containing low valent titanium. Both complexes Cl2M[(η5-C5H4)(CH2)2PPh2]2 (M = Ti, Zr) react with [Rh(μ-Cl)(CO)(C2H4)]2 to yield {RhCl(CO)(Cl2M[(η5-C5H4)(CH2)2PPh2]2)}x, which is assumed to be a dimer, in which the titanium or the zirconium compounds act as bridging diphosphine ligands between the rhodium atoms.  相似文献   

5.
The complex (η5-C5H4CH3)Mn(NO)(PPh3)I has been prepared by the reaction of NaI with [(η5-C5H4CH3)Mn(NO)(CO)(PPh3)]+ and also by the reaction of [(η5-C5H4CH3)Mn(NO)(CO)2]+ with NaI followed by PPh3. This iodide compound reacts with NaCN to yield (η5-C5H4CH3)Mn(NO)(PPh3)CN which is ethylated by [(C2H5)3O]BF4 to yield [(η5-C5H4CH3)Mn(NO)(PPh3)(CNC2H5)]+. Both [(η5-C5H4CH3)Mn(NO)(CO)2]+ and [(η5-C5H4CH3)Mn(NO)(PPh3)(CO)]+ react with NaCN to yield [(η5-C5H4CH3)Mn(NO)(CN)2]?. This anion reacts with Ph3SnCl to yield cis-(η5-C5H4CH3)Mn(NO)(CN)2SnPh3 and with [(C2-H5)3O]BF4 to yield [(η5-C5H4CH3)Mn(NO)(CNC2H5)2]+. The reaction of (η5-C5-H4CH3)Mn(NO)(PPh3)I with AgBF4 in acetonitrile yields [(η5-C5H4CH3)Mn-(NO)(PPh3)(NCCH3)]+. The complex (η5-C5H4CH3)Mn(NO)(CO)I, produced in the reaction of [(η5-C5H4CH3)Mn(NO)(CO)2]+ with NaI, is not stable and decomposes to the dimeric complex (η5-C5H4CH3)2Mn2(NO)3I for which a reasonable structure is proposed. Similar dimers can be prepared from the other halide salts. The reaction of (η7-C7H7)Mo(CO)(PPh3)I with NaCN yields (η7-C7-H7)Mo(CO)(PPh3)CN which is ethylated by [(C2H5)3O]BF4 to yield [(η7-C7H7)-Mo(CO)(PPh3)(CNC2H5)]+. The interaction of this molybdenum halide complex with AgBF4 in acetonitrile and pyridine yields [(η7-C7H7)Mo(CO)(PPh3)-(NCCH3)]+ and [(η7-C7H7)Mo(CO)(PPh3)(NC5H5)]+, respectively. Both (η5-C5-H4CH3)Mn(NO)(PPh3)I and (η7-C7H7)Mo(CO)(PPh3)I are oxidized by NOPF6 to the respective 17-electron cations in acetonitrile at ?78°C but revert to the neutral halide complex at room temperature. This result is supported by electrochemical data.  相似文献   

6.
The tweezer molecules pyridine-2,6-[o-CH2XC6H5(CH3)(Cr(CO)3)]2 and 1,10-phenanthroline-2,9-[o-CH2XC6H5(CH3)(Cr(CO)3)]2 (X  NH, OCH2, SCH2) have been synthesized, and their trinuclear dichromium(0)-rhodium(I) derivatives shown to undergo fast thermal and photochemical carbonyl exchanges.  相似文献   

7.
The synthesis of new cyclopenta[l]phenanthrenyl complexes [(η5-C17H10Me)(η3-C3H5)Mo(CO)2] and [(η5-C17H9(COOMe)N(CH2)4)(η3-C3H5)Mo(CO)2] is described. Although these compounds are structural analogues their reactivity is different. Protonation of [(η5-C17H10Me)(η3-C3H5)Mo(CO)2] gives a stable ionic compound [(η5-C17H10Me)Mo(CO)2(NCMe)2][BF4] while its analogue containing both tertiary amino and carboxylic ester groups [(η5-C17H9(COOMe)N(CH2)4)(η3-C3H5)Mo(CO)2] decomposes under the same conditions. [(η5-C17H10Me)Mo(CO)2(NCMe)2][BF4] reacts with cyclopentadiene to give a stable η4-complex [(η4-C5H6)(η5-C17H10Me)Mo(CO)2][BF4] that was successfully oxidized to the Mo(IV) dicationic compound [(η5-C5H5)(η5-C17H10Me)Mo(CO)2][Br][BF4].  相似文献   

8.
The reactions of [Rh(CO)2Cl]2 with α-diimines, RN=CR′-CR′=NR (R = c-Hex, C6H5, p-C6H4OH, p-C6H4CH3, p-C6H4OCH3, R′ = H; R = c-Hex, C6H5, p-C6H4OH, p-C6H4OCH3; R′ = Me) in 2:1 Rh/R-dim ratio gave rise to ionic compounds [(CO)2Rh.R-dim(R′,R′)][Rh(CO)2Cl2] which have been characterized by elemental analyses, electrical conductivity, 1H-NMR and electronic and IR spectroscopy. Some of these complexes must involve some kind of metal-metal interaction. The complex [Rh(CO)2Cl.c-Hex-dim(H,H)] has been obtained by reaction of [Rh(CO)2Cl]2 with the c-Hex-dim(H,H) ligand in 1:1 Rh/R-dim ratio. The reactions between [(CO)2Rh.R-dim(H,H)][Rh(CO)2Cl2](R = c-Hex or p-C6H4OCH3) with the dppe ligand have been studied. The known complex RhCl(CO)(PPh3)2 has been isolated from the reaction of [(CO)2Rh.R-dim(H,H)]-[Rh(CO)2Cl2] (R = c-Hex or p-C6H4OCH3) with PPh3 ligand.  相似文献   

9.
The crystal structure of the molybdenum half sandwich alkali salt [Li(TMEDA)2][Mo(η5-C5H5)(CO)3] shows the occurrence of a separated ion pair in the solid state. Furthermore, the crystal structures of the long known organotin complexes [Mo(η5-C5H5)(SnMe3)(CO)3], [{Mo(η5-C5H5)(CO)3}2SnMe2] and [Mo(η5-C5H5)(SnMeCl2)(CO)3] have been recorded. The chlorination of [Mo(η5-C5H5)(SnMe3)(CO)3] with SnCl4 is presented as an improved synthetic access to [Mo(η5-C5H5)(SnMeCl2)(CO)3]. Finally, the reaction of Li[Mo(η5-C5H5)(CO)3] with tBu2(Cl)Sn–Sn(Cl)tBu2 leads to the novel molybdenum distannane complex [Mo(η5-C5H5){SntBu2-Sn(Cl)tBu2}(CO)3], which is fully characterized by NMR, elemental and X-ray analysis.  相似文献   

10.
The arene complexes, (η6-C6H6)Cr(CO)2(CX) (X = S, Se), react with excess CO gas under pressure in tetrahydrofuran at about 60° C to produce the Cr(CO)5(CX) complexes in high yield. The IR and NMR (13C and 17O) spectra of these complexes are in complete accord with the expected C4v molecular symmetry. Like the analogous W(CO)5(CS) complex, both compounds react with cyclohexylamine to give Cr(CO)5(CNC6H11). However, while W(CO)5(CS) undergoes stereospecific CO substitution with halide ions (Y? to form trans-[W(CO)4(CS)Y]?, the two chromium chalcocarbonyl complexes apparently undergo both CO and CX substitution to afford mixtures of [Cr(CO)5Y]? and trans-[Cr(CO)4(CX)Y]?.  相似文献   

11.
The mass spectra of the tris(dimethylamino)arsine metal carbonyl complexes [(CH3)2N]3-AsM(CO)5 (M = Cr, Mo and W), trans-[(CH3)2N]3AsCr(CO)4As[N(CH3)2]3 and [(CH3)2N]3-AsFe(CO)4 were examined and compared with those of the corresponding tris(dimethylamino)-phosphine complexes. The molecular ions in the mass spectra of the tris(dimethylamino)arsine complexes have a greater tendency to eliminate a (CH3)2N fragment than the molecular ions in the mass spectra of the corresponding tris(dimethylamino)phosphine complexes. The mass spectrum of the tungsten derivative [(CH3)2N]3AsW(CO)5 exhibits not only the usual series of ions [(CH3)2N]3-AsW(CO)n+ and [(CH3)2N]2AsW(CO)n[+ but also the series of ions (CH3)2NAsW(CO)n]+ (n = 5, 4, 3, 2, 1 and 0) and even the nitrogen-free ions [AsW(CO)n]+ (n = 2, 1 and 0). Metastable ion evidence was obtained for arsine (AsH3) elimination from the [(CH3)2N]2AsFeH+ ion in the mass spectrum of [(CH3)2N]3AsFe(CO)4.  相似文献   

12.
The reactivity of the (η5-formylcyclopentadienyl)M(CO)3 anions (M  Mo, W) towards acyl chlorides has been studied. Acetyl chloride reacts with the anions to give two different types of substituted cyclopentadienyl complexes: [M(Cl)(η5-C5H4CH2OC(O)CH3)(CO)3] and [M(η1-CH3CO)(η5-CH3CO)(η5-C5H4CH2OC(O)CH3)(CO)3]. The reaction of the anions with benzoyl chloride only yields the chloro complexes [M(Cl)(η5-C5H4CH2OC(O)C6H5)(CO)3]. The molecular structure of [W(Cl)(η5-C5H4CH2OC(O)CH3)(CO)3] has been determined by X-ray diffraction studies.  相似文献   

13.
Complexes of the organometallic ligand (h5-C5H5)Fe[(h5-C5H3)(1-CH2NMe2)(2-PPh2)] (FcCNP) have been prepared with the carbonyls of chromium, molybdenum, tungsten, iron, and cobalt and with borane. With the Group VIB metals, the ligand forms complexes of the type (FcCNP)M(CO)4 in which the FcCNP ligand is chelating. However, in the case of (FcCNP)Fe(CO)4 and [(FcCNP)2Co(CO)3]BPh4 the ligand is monodentate, the phosphorus acting as the donor atom. Infrared and NMR data were used to establish the mode of coordination in each case. The electrochemistry of the Group VIB metal carbonyl complexes has been investigated, the chromium complex being of particular interest. The cyclic voltammogram of (FcCNP)Cr(CO)4 consists of two, reversible, one electron redox waves at Epeak, anodic + 0.54 V and + 0.96 V (vs. SCE in CH2Cl2), and a third, irreversible wave at Epeak, anodic + 1.47 V. At + 0.54 V the solution color changed from yellow to orange and the v(CO) bands shifted from 2011 w, 1891 s, and 1831 s (cm?1) in the neutral complex to 2080 m, 2000 s, and 1970 s (cm?1) in the singly oxidized species. At + 0.96 V, the color changed further to blue-green, but no additional shift in v(CO) was observed. On the basis of this information, it is concluded that the first redox wave represents the process Cr0 → Cr+ and the second wave Fe2+ → Fe3+. Other aspects of the electrochemistry of the Group VIB metal carbonyl complexes are discussed.  相似文献   

14.
Phosphonium adduct formation via attack of tri-n-butylphosphine on the cations [(C7H7)M(CO)3]+ (M = Cr, Mo, W) obeys the rate law, Rate = k [complex] [PBu3]. The very similar rate constants for the Cr, Mo and W complexes confirm the similar electrophilicities of the tropylium rings in these cations, and also support the view that there is direct addition to the rings. The related complexes [(C6H7)Fe(CO)3]BF4 and [(C6H6)Mn(CO)3]BF4 also form adducts with PBu3, and the quantitative reactivity order [(C6H7)Fe(CO)3]+ > [(C7H7)Cr(CO)3]+ » [(C6H6)Mn(CO)3]+ (160:60:1) has been established.  相似文献   

15.
The complexes [(η5-C5H5)M(CO)nPbPh3] (M = Fe, Cr, Mo, W) have been studied with respect to their thermal and photochemical stability and their reactivity with respect to SO2. The iron complex is the only complex that exhibits the ability to decompose via a 1,2-phenyl migration to the transition metal under thermal conditions, but photochemically the tungsten complex also exhibits this behaviour. All complexes react readily with SO2 to yield the corresponding sulphinatophenyl complexes, LMSO2Ph, in high yield.  相似文献   

16.
Tricarbonyl(fulvene)chromium complexes react with anionic nucleophiles to give functionally substituted cyclopentadienyl derivatives. The nucleophilic attack occurs at the exocyclic carbon atom of the fulvene ligand. Addition of PPh2 to (η6-6,6-dimethylfulvene)Cr(CO)3 (1) yields the novel anion [(η5-C5H4C(CH3)2PPh2)Cr-(CO)3], which can be isolated as a K+, (C2H5)4N+, (C6H5)4P+, or Tl+ derivative (2–5). The potassium salt of the uncoordinated C5H4C(CH3)2PPh2 anion (7) is obtained by treatment of 6,6-dimethylfulvene with KPPh2·2C4H8O2. Similarly, NaC5H5 reacts with 1 to give Na[(η5-C5H4C(CH3)2C5H5)Cr(CO)3] (8). The reactions of (6-dimethylaminofulvene)Cr(CO)3 (15) with nucleophiles are accompanied by elimination of dimethylamine. Addition of Ph3P=CH2 to 15 gives an unstable product, but after reaction of 6-dimethylaminofulvene with Ph3P=CH2, the free ligand C5H4=CHCH=PPh3 (17) can be isolated in moderate yields. Deeply colored anions of the type [(η55-C5H4C(R)=C5H4)Cr2(CO)6] (R = H, N(CH3)2) are synthesized by reaction of 15 or (6-dimethylamino-6-methylthiofulvene)Cr(CO)3 with NaC5H5 and subsequent complexation of the mononuclear intermediate with (CH3CN)3Cr(CO)3. In addition, the synthesis of the new fulvene complexes [C5H4=CH(CH=CH)2N(CH3)Ph]M(CO)3 (23, 24; M = Cr, Mo) is described. The investigation is extended to α-ferrocenylcarbenium ions, which are isoelectronic with (fulvene)Cr(CO)3 complexes. [(η5-C5H5)Fe(C5H4CPh2)]+ BF4 (25) adds tertiary phosphines at the exocyclic carbon atom to give phosphonium salts of the type [(η5-C5H5)Fe(C5H4CPh2PR3)]+BF4. A CO-substititution product of a tricarbonyl (fulvene)chromium complex is obtained for the first time by irradiation of (η6-6,6-diphenylfulvene)Cr(CO)3 in the presence of PPh3. In addition, an improved synthesis of the (CH3CN)3M(CO)3 complexes (M = Cr, Mo, W) is reported.  相似文献   

17.
The oxidation of yellow Cr(CO)5NH2R complexes (NH2R = aniline, m-toluidine, 3,5-xylidine, m-anisidine) with Pbac4 gives deep blue to deep purple coloured compounds, which have been identified as the respective [Cr(CO)5(N-phenyl-1,4-benzochinon-diimine)] complexes. Oxidation of the p-phenylenediamine complex yields [(OC)5CrHNC6H4NHCr(CO)5], which is also deep blue. The binuclear blue complex [{Cr(CO)5}2HNC6H4NC6H5] is obtained by treating Cr(CO)5THF with the free ligand in THF/hexane; it dissociates rapidly in acetone to form [Cr(CO)5HNC6H4NC6H5] and Cr(CO)5. Analogous Mo(CO)5 and W(CO)5 complexes could not be obtained. The oxidation of [W(CO)5(m-anisidine)] by I2 yields [W(CO)4I]2. All the compounds were characterized by spectroscopic methods as well as by elemental analysis.  相似文献   

18.
The salt elimination reaction of the transition carbonyl metal-lates [L(CO)nM](Na/K) (M = Cr, Mo, W, Mn, Re, Fe, Co, Ni; L= CO, n5-C5R5, PR3; n= 1-4; R= alkyl, aryl) with the base-stabilized galliumhalides ClaGaR3 -a(Do) (R = H, alkyl, halide; Do = THF, N(CH3)3, NC7H13) or ClaGa[(CH2)3N-R2](R)2 - a yielded almost quantitatively the transition metal-substituted, gallanes [L(CO)nM]aGaR3 - a(Do) and [L(CO)n-M]aGa[(CH2)3NR2](R)2 - a, respectively. Residual halide functionalities in these complexes were selectively replaced by various other groups. The new compounds were characterized by means of elemental analysis, 1H-, 13C-, 31P-NMR, MS, and lR v(CO) data. The single-crystal X-ray structure analysis of trans-(Ph3P)(CO)3Co-Ga[(CH2) 3N(C2H5)2](R)( 6s : R = Cl, 6t : R= CH3) showed s̀(Co-Ga) lengths of 237.78(4) and 249.5(1) pm, respectively. A short s̀(Fe-Ga) contact of 236.18(3) pm was found for (n5-C5H5)(CO)2Fe-Ga-Cl2[N(CH 3)3] ( 5a ). Low-pressure MOCVD experiments were performed to give thin films of analytically pure CoGa alloy.  相似文献   

19.
Syntheses and Crystal Structures of [( t -Bu4Sb4)Fe(CO)4], [( t -Bu4Sb4)Mo(CO)5], and [( t -Bu3Sb4)Mo(η5-C5Me5)(CO)3] t-Bu4Sb4 reacts with Fe2(CO)9 to form [(t-Bu4Sb4)Fe(CO)4] ( 1 ). [(t-Bu4Sb4)Mo(CO)5] ( 2 ) is formed from (thf)Mo(CO)5 and t-Bu4Sb4. [(t-Bu3Sb4)Mo(η5-C5Me5)(CO)3] ( 3 ) is a product of the reaction of t-Bu4Sb4 with [(η5-C5Me5)Mo(CO)3]2. The crystal structures of 1–3 are reported.  相似文献   

20.
Syntheses, Structure and Reactivity of η3‐1,2‐Diphosphaallyl Complexes and [{(η5‐C5H5)(CO)2W–Co(CO)3}{μ‐AsCH(SiMe3)2}(μ‐CO)] Reaction of ClP=C(SiMe2iPr)2 ( 3 ) with Na[Mo(CO)35‐C5H5)] afforded the phosphavinylidene complex [(η5‐C5H5)(CO)2Mo=P=C(SiMe2iPr)2] ( 4 ) which in situ was converted into the η1‐1,2‐diphosphaallyl complex [η5‐(C5H5)(CO)2Mo{η3tBuPPC(SiMe2iPr)2] ( 6 ) by treatment with the phosphaalkene tBuP=C(NMe2)2. The chloroarsanyl complexes [(η5‐C5H5)(CO)3M–As(Cl)CH(SiMe3)2] [where M = Mo ( 9 ); M = W ( 10 )] resulted from the reaction of Na[M(CO)35‐C5H5)] (M = Mo, W) with Cl2AsCH(SiMe3)2. The tungsten derivative 10 and Na[Co(CO)4] underwent reaction to give the dinuclear μ‐arsinidene complex [(η5‐C5H5)(CO)2W–Co(CO)3{μ‐AsCH(SiMe3)2}(μ‐CO)] ( 11 ). Treatment of [(η5‐C5H5)(CO)2Mo{η3tBuPPC(SiMe3)2}] ( 1 ) with an equimolar amount of ethereal HBF4 gave rise to a 85/15 mixture of the saline complexes [(η5‐C5H5)(CO)2Mo{η2tBu(H)P–P(F)CH(SiMe3)2}]BF4 ( 18 ) and [Cp(CO)2Mo{F2PCH(SiMe3)2}(tBuPH2)]BF4 ( 19 ) by HF‐addition to the PC bond of the η3‐diphosphaallyl ligand and subsequent protonation ( 18 ) and/or scission of the PP bond by the acid ( 19 ). Consistently 19 was the sole product when 1 was allowed to react with an excess of ethereal HBF4. The products 6 , 9 , 10 , 11 , 18 and 19 were characterized by means of spectroscopy (IR, 1H‐, 13C{1H}‐, 31P{1H}‐NMR, MS). Moreover, the molecular structures of 6 , 11 and 18 were determined by X‐ray diffraction analysis.  相似文献   

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