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1.
Preparation of R4?nPb[Mn(CO)4P(C6H5)3]n Compounds (R?CH3, C6H5; n = 1, 2) As the first examples of organolead manganese carbonyls substituted in the manganese carbonyl ligand compounds of the type R4?nPb[Mn(CO)4P(C6H5)3]n (R?CH3, C6H5; n = 1, 2) have been prepared by the alkali salt method from R4?nPbCln and NaMn(CO)4P(C6H5)3. (C6H5)2Sn[Mn(CO)4P(C6H5)3]2 has been gained by the same method and also by thermal ligand exchange. According the IR data the ligand P(C6H5)3 is trans to the tetrahedrally surrounded lead. In solution to compounds are monomeric.  相似文献   

2.
Heteronuclear Metal Atom Clusters of the Types X4?n[SnM(CO)4P(C6H5)3]n and M2(CO)8[μ-Sn(X)M(CO)4P(C6H5)3]2 by Reaction of SnX2 with M2(CO)8[P(C6H5)3]2 (X = Halogene; M = Mn, Re; n = 2, 3) The compounds of the both types X4?n[SnM(CO)4P(C6H5)3]n (n = 3; M = Mn; X = F, Cl, Br, I. n = 2: M = Mn, Re; X = Cl, Br, I) and M2(CO)8[μ-Sn(X)M(CO)4P(C6H5)3]2 (M = Mn; X = Cl, I. M = Re; X = Cl, Br, I) are prepared by reaction of SnX2 with M2(CO)8[P(C6H5)3]2 (M = Mn, Re). Their IR frequencies are assigned. In Re2(CO)8[μ-Sn(Cl)Re(CO)4P(C6H5)3]2 the central molecule fragment contains a planar Re2Sn2 rhombus with a transannular Re? Re bond of 316.0(2) pm. Each of the SnIV atoms is connected with the terminal ligands Cl and Re(CO)4P(C6H5)3. These ligands are in transposition with respect to the Re2Sn2 ring. The mean values for the remaining bond distances (pm) are: Sn? Re = 274.0(3); Sn? Cl = 243(1), Re? C = 176(5), Re? P = 242.4(9), C? O = 123(5). The factors with an influence on the geometrical shape of such M2Sn2 rings (M = transition metal) are discussed.  相似文献   

3.
Direct Synthesis of Orthometallated Ketones of the Type RCO(o-C6H4)Mn(CO)4?nLn (R = Alkyl and Aryl Groups, n = 0, 1, 2, L = Ligand) The starting materials of the type RMn(CO)5?nLn und (C6H5)2 Hg react to the products of the type RCO(o-C6H4)Mn(CO)4?nLn[n = 0, R = Ch3, C2H5, C3H7, C6H5,CH2; R = C6H5, n = 1, L = E(C6H5)3, E = P, As, Sb; R = C6H5, n = 2, L = P(OR′)3, R′ = C6H5, CH3, C2H5, C3H7]. Steps of their complex reaction pathway are proposed. These orthometallated substances have been characterized by means of 1H-n.m.r., i.r. and u.v. spectroscopic measurements. The determination of the molecular structure of the two compounds RCO(o-C6H4)Mn(CO)3L [R = C2H5, L = CO; R = C6H5, L = As(C6H5)3] show that both contain a planar heterocyclic five-membered ring of the type .  相似文献   

4.
The title compound, [Sn(CH3)2(C5H10NO2S2)2], has crystallographic mirror symmetry (C—Sn—C on mirror plane) and the coordination polyhedron around the Sn atom is a tetrahedron [C—Sn—C 139.3 (2)° and S—Sn—S 82.3 (1)°] distorted towards a skew‐trapezoidal bipyramid owing to an intramolecular Sn?S contact [3.0427 (6) Å]. The mol­ecules are linked into a linear chain by intermolecular O—H?O hydrogen bonds [O?O 2.646 (3) Å].  相似文献   

5.
We report the synthesis of [n]manganoarenophanes (n=1, 2) featuring boron, silicon, germanium, and tin as ansa‐bridging elements. Their preparation was achieved by salt‐elimination reactions of the dilithiated precursor [Mn(η5‐C5H4Li)(η6‐C6H5Li)]?pmdta (pmdta=N,N,N′,N′,N′′‐pentamethyldiethylenetriamine) with corresponding element dichlorides. Besides characterization by multinuclear NMR spectroscopy and elemental analysis, the identity of two single‐atom‐bridged derivatives, [Mn(η5‐C5H4)(η6‐C6H5)SntBu2] and [Mn(η5‐C5H4)(η6‐C6H5)SiPh2], could also be determined by X‐ray structural analysis. We investigated for the first time the reactivity of these ansa‐cyclopentadienyl–benzene manganese compounds. The reaction of the distannyl‐bridged complex [Mn(η5‐C5H4)(η6‐C6H5)Sn2tBu4] with elemental sulfur was shown to proceed through the expected oxidative addition of the Sn?Sn bond to give a triatomic ansa‐bridge. The investigation of the ring‐opening polymerization (ROP) capability of [Mn(η5‐C5H4)(η6‐C6H5)SntBu2] with [Pt(PEt3)3] showed that an unexpected, unselective insertion into the Cipso?Sn bonds of [Mn(η5‐C5H4)(η6‐C6H5)SntBu2] had occurred.  相似文献   

6.
Preparation of C6H5M(CO5 (M = Mn, Re) and Ortho-Metallated Ketones with a Manganese or Rhenium Ring Member C6H5Mn(CO)5 and C6H5Re(CO)5 were obtained by a new preparation method by a photochemical reaction between M2(CO)10 (M = Mn, Re) and (C6H5)2Hg. The reaction of C6H5Mn(CO)5 with (CH3)2Hg at different reaction conditions yielded the o-metallated benzophenone or the acetophenone; such known o-metallated derivates were prepared as yet by a reaction between the ketones and CH3Mn(CO)5. The ortho-metallated ketones and or were reaction products between Mn2(CO)10 and R2Hg (R?C6H5 or p-(CH3)2NC6H4). On the contrary Re2(CO)10 and (C6H5)2Hg were capable to form the analogous ortho-metallated benzophenone derivatives only by an addition of benzophenone. A substitution reaction of a CO ligand by P(C6H5)3, a fission of the five-membered heterocyclic ring and a phenylation was carried out for some of such o-metallated ketones. The products were characterized by infrared spectroscopic measurements.  相似文献   

7.
Reaction of HMo(CO)3C5H5 and Sn(C5H5)2 produces the tin hydride HSn[Mo(CO)3C5H5]3 (I). Reaction of I with CCl4, CHCl3, or CH2Cl2 gives ClSn[Mo(CO)3C5H5]3 (II). With hydrogen chloride the hydride I reacts to produce the dichloride Cl2Sn[Mo(CO)3C5H5]2. The first step in this reaction is cleavage of the SnH bond to produce the chloride II. The hydride I reacts with acetic acid to produce the diacetate (CH3COO)2Sn[Mo(CO)3C5H5]2.  相似文献   

8.
Single Crystal X-Ray Analysis of Compounds with Covalent Metal–Metal Bonds. II. Molecular and Crystal Structure of X2Sn[Mn(CO)5]2 (X?Cl, Br) Both X2Sn[Mn(CO)5]2 compounds (X?Cl, Br) crystallize in the monoclinic crystal system with at times different values in the lattice parameters. They belong to the space group C2h5. The structures have been solved using 2 107 symmetrical independent reflection for Cl2Sn[Mn(CO)5]2 and 1 470 reflections for Br2Sn[Mn(CO)5)2] by applying the heavy atom method. The following interatomic distances have been found: Cl2Sn[Mn(CO)5]2, Sn? Mn = 2.635(1) Å, Sn? Cl = 2.385(2) Å, Mn? C = 1.852(8) Å, C? O = 1.128(10) Å; Br2Sn[Mn(CO)5]2, Sn? Mn = 2.642(3) Å, Sn? Br = 2.548(2) Å, Mn? C = 1.851(21) Å, C? O = 1.124(25) Å. In addition, bond angles of X? Sn? X and Mn? Sn? Mn of these compounds have also been estimated in the case of X = Cl: 95.80(7)° and 126.25(4)° and for X?Br: 98.44(8)° and 125.88(9)°. The individual molecules of the X2Sn[Mn(CO)5]2 solids are surrounded by ligands showing distorted tetrahedral configuration at the Sn atom and distorted octahedral configuration at the Mn atom.  相似文献   

9.
The action of trifluoroacetic acid on the series M(CO)6?n(PA3)n (M = Mo, W; A = CH3, OCH3; n = 2, 3, 4) has shown that protonation occurs if n ? 3. For n = 3 the basicity of the ligand PA3 plays a more important role in the stability of [HM(CO)3(PA3)3]+complexes than for n = 4. Infrared and proton NMR give evidence of the stereochemical non-rigidity of the [HM(CO)6?n(PA3)n]+ heptacoordinated cation.  相似文献   

10.
Treatment of transition-metal—ammonia complexes with ketones yields complexes with RR′CNH ligands. Of particular interest is the stabilization of dialkylketimines such as e.g. (CH3)2CNH and C6H10NH in [M(CO)5{NHC(CH3)2}] or [M(CO)5 {NHC6H10}] (M = Cr, Mo, W). The principle of synthesis may be applied to a wide range of different metals and types of complexes, as can be shown by the synthesis of [C5H5Mn(CO)2 {NHC(CH3)2}], [C5H5Fe(CO)2{NHC(CH3)2}]PF6, [M(CO)4L2] (M = Cr, Mo, W; L = (CH3)2CNH, C6H10NH) and [W(CO)3(diphos){NHC(CH3)}2]. Treatment of [Cr(CO)5NH3] with urotropine gives [Cr(CO)5 {N4(CH2)6}] which is also obtained from [Cr(CO)5THF] and urotropine. The methods of preparation, reactions and spectroscopic properties of the complexes are reported.  相似文献   

11.
Bis(triorganometal) 1,2-dithiolates (R3M)2S2R′ [(HS)2R′ = C7H8S2 for toluene-dithiol-3,4 (H2TDT); M = Sn, Pb; R = Ph; or (HS)2R′ = C10H14S2 for 1,2-dimethyl-4,5-bis(mercaptomethyl)benzene (H2DBB); M = Sn, R = CH3, C6H5; M = Pb, R = C6H5], diorganometal 1,2-dithiolates R2MS2R′ [(HS)2R′ = C6H6S2 for 1,2-dimercaptobenzene (H2DMB); M = Pb, R = CH3, C2H5, C6H5; or (HS)2R′ = H2TDT; M = Sn, R = CH3, C6H5; M = Pb, R = C6H5; or (HS)2R′ = H2DBB; M = Sn, R = CH3, C6H5; M = Pb, R = CH3, C2H2, C6H5; or (HS)2R′ = C8H6N2S2 for 2,3-dimercaptoquinoxaline (H2QDT); M = Pb, R = C6H5] and some lead(IV) and lead(II) dithiolates Pb(S2R′)n [(HS)2R′ = H2DMB, n = 2; (HS)2R′ = H2TDT, n = 2; (HS)2R′ = H2DBB, n = 1 or 2] have been prepared. Vibrational, 1H NMR, and Mössbauer spectroscopic data are consistent with pentacoordination of tin in R2SnTDT and with tetracoordination of tin in R2SnS2R′ and (R3Sn)2S2R′ in the solid state. The soluble compounds are monomeric in solution. Coupling constants for the methyltin compounds indicate tetracoordination in solution.  相似文献   

12.
Heterobimetallic Phosphanido-bridged Dinuclear Complexes - Syntheses of cis-rac-[(η-C5H4R)2Zr{μ-PH(2,4,6-iPr3C6H2)}2M(CO)4] (R?Me, M?Cr, Mo; R?H, M?Mo) The zirconocene bisphosphanido complexes [(η-C5H4R)2Zr{PH(2,4,6-iPr3C6H2)}2] (R?Me, H) react with [(NBD)M(CO)4] (NBD?norbornadiene, M?Cr, Mo) to give only one diastereomer of the phosphanido-bridged heterobimetallic dinuclear complexes cis-rac-[(η-C5H4R)2Zr{μ-PH(2,4,6-iPr3C6H2)}2M(CO)4] [R?Me, M?Cr ( 1 ), Mo ( 2 ); R?H, M?Mo ( 3 )]. However, no reaction was observed between [(η-C5H5)2Zr{PH(2,4,6-tBu3 C6H2)}2] and [Pt(PPh3)4]. 1—3 were characterised spectroscopically. For 1—3 , the presence of the racemic isomer was shown by NMR spectroscopy. No reaction was observed at room temperature for 3 and CS2, (NO)BF4, Me3NO or PH(2,4,6-Me3C6H2)2. With Et2AlH or PhC?CH decomposition of 3 was observed.  相似文献   

13.
Metal Complexes with Anionic Ligands of Elements of the Main Group IV. VIII Pentacarbonyltrihalogenostannidometalate(O) Complexes of Chromium, Molybdenum, and Tungsten with Fluorine and Iodine Containing Trihalogenostannido Ligands In methylenechloride [As(C6H5)4][SnF3] readily reacts with the metalhexacarbonyls forming the arsoniumsalts of the pentacarbonyltrifluorostannidometalate(O) complexes, [M(CO)5SnF3]? (M ? Cr, Mo, W). Exclusively by the reaction of the intermediately formed complex Cr(CO)5THF only one pure triiodostannidometalate(O) Complex, [N(C2H5)4][Cr(CO)5SnJ3], could be isolated. The trihalogenostannidometalate(O) complexes [M(CO)5SnClX2]? (X ? F: M ? Cr, Mo, W; X ? J: M ? Cr) could be prepared by SnX2-insertion reactions of the [M(CO)5Cl]? complexes. The bonding properties of the halogenostannide ions are discussed on the bases of the IR spectra of their metalate(O) complexes.  相似文献   

14.
K[HCS2] was prepared by interaction of chloroform with K2S. Rb[HCS2] and Cs[HCS2] were formed by reaction of trimeric dithioformic acid with alcoholates (X-ray data see ?Inhaltsübersicht”?). The dithioformates T1[HCS2], In[HCS2]3, and M[HCS2]2 with M = Pb, Zn, Cd, Hg, and M[HCS2] with M = [(C6H5)4P], [(C6H5)4As], [(C2H5)4N], (C6H5)3Sn have been prepared. The prepared compounds are investigated by different methods.  相似文献   

15.
Esters of the trimeric dithioformic acid [HCS(SR)]3 were prepared by interaction of K[HCS2] with alkyl iodides (R = CH3, C2H5). Orthoesters HC(SR)3 and di-orthoesters of the monomeric dithioformic acid were formed by reaction of formic acid with thioles (RSH mit R = CH3, C2H5, CH2C6H5) or dithioles (HS? (CH2)n? SH with n = 2, 3,4). The prepared compound were characterised by different methods.  相似文献   

16.
Triorganoantimony and Triorganobismuth Disulfonates. Crystal and Molecular Structure of (C6H5)3M(O3SC6H5)2(M = Sb, Bi) Triorganoantimony disulfonates R3Sb(O3SR′)2 [R = CH3 = Me, C6H5 = Ph; R′ = Me, CH2CH2OH, Ph, 4-CH3C6H4. R = Ph; R′ = 2,4-(NO2)2C6H3], Me3Sb(O3SCF3)2 · 2 H2O and triphenylbismuth disulfonates Ph3Bi(O3SR′)2 [R = Me, CF3, CH2CH2OH, Ph, 4-CH3C6H4, 2,4-(NO2)2C6H3] have been prepared by reaction of Me3Sb(OH)2, (Ph3SbO)2, and Ph3BiCO3, respectively, with the appropriate sulfonic acids. From vibrational data an ionic structure is inferred for Me3Sb(O3SCF3)2 · 2 H2O and Me3Sb(O3SCH2CH2OH)2, and a covalent structure for the other compounds with a penta-coordinated central atom with trigonal bipyramidal surrounding (Ph or Me in equatorial, unidentate sulfonate ligands in apical positions). Ph3M(O3SPh)2 (M = Sb, Bi) crystallize monoclinic [space group P21/c; M = Sb/Bi: a = 1 611.5(8)/1 557.4(9), b = 987.5(6)/1 072,5(8), c = 1 859.9(9)/1 696.5(9) pm, β = 105.71(5)/96.62(5)°; Z = 4; d(calc.) 1.556/1.781 Mg · m?3; Vcell = 2 849.2 · 106/2 814.8 · 106 pm3; structure determination from 3 438/3 078 independent reflexions (I ≥ 3σ(I)), R(unweighted) = 0.030/0.029]. M is bonding to three Ph groups in the equational plane [mean distances Sb/Bi? C:210.1(4)/219.1(7) pm] and two sulfonate ligands with O in apical positions [distances Sb? O: 210.6(3), 212.8(2); Bi? O: 227.6(5), 228.0(4) pm]. Weak interaction of M with a second O atom of one sulfonate ligand is inferred from a rather short M? O contact distance [Sb? O: 327.4(4), Bi? O: 312.9(5) pm], and from the distortion of equatorial angles [C? Sb? C: 128.4(2), 119.2(2), 112.2(2); C? Bi? C: 135.9(3), 117.8(3), 106.3(3)°]  相似文献   

17.
Apparently competing cleavage and rearrangement reactions in a series of molecular ions have been studied by ionization and appearance potential methods, and by determination of the electron energy dependence of both normal and metastable daughter ion peak intensities. The processes investigated were (i) [M ? CH3] vs. [M ? CH2O] in anisole; (ii) [M ? OC6H5] vs. [M ? CO] in phenyl ether; (iii) [M ? NO2] vs. [M ? NO] in nitrobenzene; (iv) [M ? C3H7] vs. [M ? C2H4] in butyrophenone: (v) [M ? C3H7] vs. [M ? C3H6] in n-butylbenzene; (vi) [M ? CH2OH] vs. [M ? CH2O] in 2-phenylethanol; (vii) [M ? CH3CO2] vs. [M ? CH2CO] in benzyl acetate; and (viii) [M ? C4H9O] vs. [M ? C4H7] in n-butylbenzoate. The results are interpreted in terms of k vs. E curves with very different frequency factors for the two reaction types. Appearance potentials of metastable ions for the rearrangement reactions have also been measured.  相似文献   

18.
Bis(cyclopentadienyl)methane-bridged Dinuclear Complexes, V[1]. – Heteronuclear Co/Rh-, Co/Ir-, Rh/Ir-, and Ti/Ir Complexes with the Bis(cyclopentadienyl)methane Dianion as Bridging Ligand* The lithium and sodium salts of the [C5H5CH2C5H4]- anion, 1 and 2 , react with [Co(CO)4I], [Rh(CO)2Cl]2, and [Ir(CO)3Cl]n to give predominantly the mononuclear complexes [(C5H5-CH2C5H4)M(CO)2] ( 3, 5, 7 ) together with small amounts of the dinuclear compounds [CH2(C5H4)2][M(CO)2]2 ( 4, 6, 8 ). The 1H- and 13C-NMR spectra of 3, 5 , and 7 prove that the CH2C5H5 substituent is linked to the π-bonded ring in two isomeric forms. Metalation of 5 and 7 with nBuLi affords the lithiated derivatives 9 and 10 from which on reaction with [Co(CO)4I], [Rh(CO)2Cl]2, and [C5H5TiCl3] the heteronuclear complexes [CH2(C5H4)2][M(CO)2][M′(CO)2] ( 11–13 ) and [CH2(C5H4)2]-[Ir(CO)2][C5H5TiCl2] ( 17 ) are obtained. Photolysis of 11 and 12 leads almost quantitatively to the formation of the CO-bridged compounds [CH2(C5H4)2][M(CO)(μ-CO)M′(CO)] ( 14, 15 ). According to an X-ray crystal structure analysis the Co/Rh complex 14 is isostructural to [CH2(C5H4)2][Rh2(CO)2(μ-CO)] ( 16 ).  相似文献   

19.
Perfluoromethyl-Element-Ligands. XVIII. Preparation and Spectroscopic Investigation of M(CO)5L and M(CO)4L2 Complexes [L = MenP(CF3)3?n; n = 0–3; M = Cr, Mo, W] M(CO)5L and cis-M(CO)4L2 complexes, respectively [M = Cr, Mo, W; L = MenP(CF3)3?n; n = 0–3] are prepared reacting M(CO)5 · THF or M(CO)4norbor with L at room temperature. The cis-compounds isomerize above 50°C yielding the trans-complexes; the rate of isomerization increases with increasing number of CF3 groups. Thermal reaction of M(CO)6 (M = Cr, Mo, W) with P(CF3)3 yields M(CO)5P(CF3)3 and trans-M(CO)4[P(CF3)3]2. Introduction of three P(CF3)3 ligands by reaction with M(CO)3(cycloheptatriene) (M = Cr, Mo) proves unsuccessful; besides little M(CO)5P(CF3)3 trans-M(CO)4[P(CF3)3]2 is formed. The new compounds are characterized by analytical and spectroscopic (n.m.r., i.r., MS) methods.  相似文献   

20.
Reactions of reactive cyclopentadienyliron complexes C5H5Fe(CO)2I, [C5H5Fe(CO)2THF]BF4, [C5H5Fe(CO)((CH3)2S)2]BF4 and [C5H5Fe(p-(CH3)2C6H4)]PF6 with P(OR)3 as ligands (R = CH3, C2H5, i-C3H7 and C6H5) lead to the formation of the complex compounds C5H5Fe(CO)2?n(P(OR)3)nI and [C5H5Fe(CO)3?n(P(OR)3)n]X (n = 1, 2 and n = 1–3, X = BF4, PF6). Spectroscopic investigations (IR, 1H, 13C and 31P NMR) indicate an increase of electron density on the central metal with increasing substitution of CO groups by P(OR)3 ligands. The stability of the compounds increase in the same way.  相似文献   

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