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1.
Novel η1-vinyl complexes of the type Cp(CO)(L)FeC(OMe)C(R)R′ (R = R′ = H, Me; R = H, R′ = Me; L = Me3P, Ph3P) are obtainied via methylation of the acyl complexes Cp(CO)(L)FeC(O)R (R = Me, Et, i-Pr) with MeOSO2F and subsequent deprotonation of the resulting carbene complexes [Cp(CO)(L)FeC(OMe)R]SO3F with the phosphorus ylide Me3PCH2. The same procedure can be applied for the synthesis of the pentamethylcyclopentadienyl derivative C5Me5(CO)(Me3P)FeC(OMe)CH2, while treatment of the hydroxy or siloxy carbene complexes [Cp(CO)(L)FeC(OR)Me]X (R = H, Me3Si; X = SO3CF3) with Me3CH2 results in the transfer of the oxygen bound electrophile to the ylidic carbon. Some remarkable spectroscopic properties of the new complexes are reported.  相似文献   

2.
Reaction of the ferriochlorosilanes R5C5(CO)2FeSiR′3-nCln (1a–1f) with sodium azide in tetrahydrofuran yields the ferrio- (mono-, bis-, and tris-azido)silanes R5C5(CO)2FeSiR′3-n(N3)n (R = H, Me; R′ = Me, H; n = 1–3) (2a–2f). CCl4 converts Cp(CO)2FeSiMe(H)N3 (2a) into the ferrioazido(chloro)silane Cp(CO)2-FeSiMe(Cl)N3 (3). Treatment of 2d, 2f with Me3P results in the formation of the ferriosilyl-iminophosphoranes Cp(CO)2FeSi(N3)(R)NPMe3 (R = Me, N3), (4a, 4b) by N2 elimination.  相似文献   

3.
The reaction of Cp (CO)2FeSiCl(NMe2 (2) with LiNMe2 yields the ferriotris(dimethylamino)silane Cp(CO)2FeSi(NMe2)3 (3) in minor quantities. High yield of 3 is obtained by treatment of Cp(CO)2FeSiBr3 (5) with Me2NH. Irradiation of 3 in the presence of Me3P gives Cp(Me3P)2FeSi(NMe2)3 (7), which reacts with MeI to give the iron iodide Cp(Me3P)2FeI (8). A plausible mechanism for the conversion of 7 to 8 is formulated involving the intermediate formation of a cationic complex with trivalent silicon.  相似文献   

4.
The reaction of the phosphonium metallates Me4P[C5R5(CO)(Me3P)MC(O)=CHC(O)R′] (M = W, R = H, R′ = Et (1a); M = Mo, R = Me, R′ = Me (1b)) with the silylating reagent Me3SiOSO2CF3 yields the neutral complexes C5R5(CO)(Me3P)MC(OSiMe3)=CHC(O)R (2a, 2b) bearing a chelating O(2), C(4)-trimethylsiloxybutenone ligand. The structure of the new compounds is established by the IR, 1H and 31P NMR spectra.  相似文献   

5.
The anion of [Li(THF)4][Re2(CO)8(Ph2PCHPPh2)] (1) is formed cleanly by treatment of Re2(CO)8(Ph2PCH2PPh2) with LiAlH4 in tetrahydrofuran (54% yield). Anion 1 is remarkably stable toward all organic electrophiles examined. Whereas protons are added and removed reversibly, 1 is stable to treatment with MeI, Me3SiCl, Me3SiCH2Cl or Ph2PCl, even under forcing conditions. This behavior sharply contrasts the high reactivity of other mononuclear (Ph2PCHPPh2)MLx complexes.  相似文献   

6.
The β-trimethylphosphonio(α-trimethylsiloxy)vinylchromium complex Cp(CO)(NO)CrC(OSiMe3)=CHPMe3 (2) can be isolated from a concentrated solution of Cp(CO)2(NO)Cr (1) and Me3P=CHSiMe3 in benzene. 2 is obtained in better yield via O-silylation of the tetramethylphosphonium chromium acylate Me4P[Cp(CO)(NO)CrC(O)CH=PMe3] (3) with Me3SiOSO2CF3. 2 decomposes readily by treatment with benzene to 1 and Me3P=CHSiMe3, which forms the ylide complex Cp(CO)(NO)CrCH(SiMe3)PMe3 (4) on photolysis. Degradation of 2 can be accelerated extraordinarily by traces of Me3P=CH2. With Me3P= CH2 (2 mol) controlled conversion of 2 to 3 and Me3P=CHSiMe3 occurs. MeX (X = I, SO3F) cleaves 2 to 1 and the phosphonium salt [Me3PCH(SiMe3)]X (5a,5b).  相似文献   

7.
《Comptes Rendus Chimie》2003,6(2):209-222
The synthesis of the iron allenylidene complexes [(η5-C5Me5)(η2-dppe)Fe(=C=C=C(Ph)Ph)][X] (5a, X = PF6, 95%; 5b, X = BPh4, 91%; dppe = 1,2-bis(diphenylphosphino)ethane) was achieved by reacting the complex (η5-C5Me5)(η2-dppe)FeCl (10) with 1 equiv of 1,1-diphenyl-prop-2-yn-1-ol in methanol in the presence of KPF6 or NaBPh4. Surprisingly, when the reaction was carried out in the presence of the tetraphenylborate anion, the final product contained both 5b and the hydroxyvinylidene [(η5-C5Me5)(η2-dppe)Fe(=C=C(H)C(OH)(Ph)2)][BPh4] (14b) in the 1:1 ratio. Further treatment of the mixture with Amberlyst 15 in methanol provided the allenylidene 5b as a pure sample. The allenylidene complexes [(η5-C5Me5)(η2-dppe)Fe(=C=C=C(Me)Ph)][PF6] (6) and [(η5-C5Me5)(η2-dppe)Fe(=C=C=C(Me)Et)][PF6] (7) were prepared according to the same procedure and they were isolated as purple powders in 90% yield. The X-ray crystal structures were determined for the vinylidene complexes [(η5-C5Me5)(η2-dppe)Fe(=C=CH2)][PF6] (3) and [(η5-C5Me5)(η2-dppe)Fe(=C=C(Ph)H)][PF6] (4), and the allenylidene derivative 5a. In the homogeneous series of complexes [(η5-C5Me5)(η2-dppe)Fe(=(C)n(R)R’)][PF6], (n = 1, R = H, R′ = Me, X = PF6, 1; n =1, R = H, R’ = OMe, X = PF6, 2a; n = 1, R = H, R’ = OMe, X = CF3OSO2, 2b; n = 2, R = R′ = H, X = PF6, 3; n = 2, R = H, R′ = Ph, X = PF6, 4; n = 3, R = R′ = Ph, X = PF6, 5a; n = 3, R = R′ = Ph, X = BPh4, 5b; n = 3, R = Me, R′ = Ph, X = PF6, 6; n = 3, R = Me, R′ = Et, X = PF6, 7; n = 3, R = Me, R′ = OMe, X = BPh4, 8), an empiric relationship between the Mössbauer parameters, δ and QS, was found. This observation would indicate that the positive charge on the iron nucleus decreases with the Fe=C bond order. Moreover, in this series of iron cumulenylidene derivatives, comparison of the variation of the metal–carbon bond distances determined by X-ray analyses with the Mössbauer QS values allows the observation of a linear correlation (R = 0.99). To cite this article: G. Argouarch et al., C. R. Chimie 6 (2003).  相似文献   

8.
Interaction of the chiral organometallic Lewis bases Cp(CO)(Me3P)Fe—EMe2 (E = As, Sb, Bi) (1a–1c) with the norbornadiene metal complex (C7H8)Mo(CO)4 yields the first examples of trinuclear complexes [Cp(CO)(Me3P)Fe—EMe2]2Mo(CO)4 (2a–2c), bearing two chiral metal atoms separated by a E—Mo—E-linkage. 2a–2c are generated as a mixture of two diastereomers (RS/SR, RR/SS), which gives rise to a resonance doubling in their 1H and 31P NMR spectra. This phenomenon is not observed for the achiral, in part sterically more crowded derivatives [Cp(CO)2Fe—SbMe2]2Mo(CO)4 (4) and [Cp(CO)2(Me3P)Mo—EMe2]2Mo(CO)4 (E = As, Sb (6a, 6b)), which excludes the existence of conformers resulting from restricted rotation about the FeE or MoE bond in the case of 2a–2c.  相似文献   

9.
The insertion of (CF3)2CO into the PH bond of MenH3?nP yields MenH2?nPC(CF3)2OH and MenH1?nP[C(CF3)2OH]2 (n=O, 1), respectively [1]. MeP[C(CF3)2OH]2 rearranges giving the diphosphine [MePOCH(CF3)2]2 and the phosphorane MeP[OCH(CF3)2]4. Me2PH reacts with (CF3)2CO forming several products, e.g. MePF[OCH(CF3)2]2 and Me2PPMe2 [1]. The phosphines tBu(R)PH(R=Me, tBu), however, add (CF3)2CO giving rise to the phosphinites tBu(R)POCH(CF3)2, which furnish stable phosphonium salts upon treating with MeI. (CF3)2CO inserts into the SH bond of RSH to yield RSC(CF3)2OH (R=H,Me,Ph), which were reacted with MeI, too. Reacting SCl2 with LiOCH(CF3)2 gives S[OCH(CF3)2]2 which is oxidised by chlorine to the sulfurane ClS[OCH(CF3)2]3 [2]. The sulfurane is able to transfer (CF3)2CHO groups to phosphorus (III) compounds, e.g. P[OCH(CF3)2]3 and Me3P yielding P[OCH(CF3)2]5 and [Me3POCH(CF3)2]+Cl?. ClS[OCH(CF3)2]3 gives a stable salt upon reaction with SbCl5, like ClP[OCH(CF3)2]4. The mechanisms for these reactions are discussed.  相似文献   

10.
The nature of the protonation reaction of (
o(CO)3 (M = Mo, W; R = Me, Ph, p-MeC6H4) (2) (obtained from (CO)3CpMCH2CCR (1) and Co2(CO)8) to give (CO)3 Cp(CO)2 (3) was further investigated by a crossover experiment. Thus, reaction of an equimolar mixture of 2b (M = W, Cp = η5-C5H5, R = Ph) and 2e (M = W, Cp = η5-C5H4Me; R = p-MeC6H4) with CF3COOH affords only 3b (same M, Cp, and R as 2b) and 3e (same M, Cp, and R as 2e) to show an intramolecular nature of this transformation. Reaction of (CO)3CpWCH2CCPh (1b) with Co4(CO)12 was also examined and found to yield 2b exclusively. Treatment of 1 with Cp2Mo2(CO)4 at 0–5°C provides thermally sensitive compounds, possibly (CO)2Cp
oCp(CO)2 (5), which decompose at room temperature to give Cp2Mo2(CO)6 as the only isolated product.  相似文献   

11.
Me2NNS reacts with [Rh(CO)2Cl]2 to produce the complex cis-Rh(SNNMe2)(CO)2Cl (1). The latter undergoes reversible CO substitution by Me2NNS to give the complex trans-Rh(SNNMe2)2(CO)Cl (2a). Complexes 1 and 2a, in solution lose CO and Me2NSS, respectively, to give the complex trans-(μ-Cl)2[Rh(SNNMe2)(CO)]2 (3). Complex 1 can also be prepared by bubbling CO through a CH2Cl2 solution of Rh(SNNMe2)(diene)Cl (diene = 1,5-cyclooctadiene (4a), norbornadiene (4b)) obtained by a bridge-splitting reaction of Me2NNS with [Rh(diene)Cl]2. 1 and 2a react with EPh3 (E = P, As, Sb) to give the complexes trans-Rh(EPh3)2(CO)Cl. The complexes trans-Rh(E′Ph3)2(CO)X (X = Cl, E′ = As, Sb; X = Br, NCS, E′ = As) undergo reversible E′Ph3 displacement upon treatment with Me2NNS to give the complexes trans-Rh(SNNMe2)2(CO)X (X = Cl (2a), Br (2b), NCS (2c)). Oxidative additions of Br2, I2, or HgCl2 to 2a produce stable adducts, while the reaction of 2a with CH3I gives an inseparable mixture of the adduct Rh(SNNMe2)2(CO)(CH3)ClI and the acetyl derivative Rh(SNNMe2)2(CH3CO)ClI. A mixture of the acetyl derivative (μ-Cl)2[Rh(SNNMe2)(CH3CO)I]2 and the adduct (μ-Cl)2[Rh(SNNMe2)(CO)(CH3)I]2 is obtained by treating 1 with CH3I. The IR spectra of all the compounds are consistent with S-coordination of Me2NNS. Because of the restricted rotation around the NN bond, the 1H NMR spectra of the new compounds exhibit two quadruplets in the range 3.5–4.3δ when 4J(HH) = 0.7–0.5 Hz. When 4J(HH) < 0.5 Hz, the perturbing effect of the quadrupolar relaxation of the 14N nucleus obscures the spin-spin coupling and two broad signals are observed in the range 3.6–4δ.  相似文献   

12.
W(CO)5L complexes (L = R2EER′2, R2EE′R; R, R′ = CH3, CF3; E = P, As; E′ = S, Se, Te) have been prepared by reaction of W(CO)5·THF with L at room temperature or by redistribution reaction of W(CO)5E2Me4 with E2(CF3)4 or E′2Me2 as well as by cleavage of E2(CF3)4 with W(CO)5EMe2H. The new compounds were characterized by analytical and spectroscopic (IR, NMR, MS) methods; by comparison with of the data of free and coordinated ligands the effects of complexation are studied.  相似文献   

13.
Dimethyl(tetramethylcyclopentadienyl)silyl-, -germyl-, and -stannylphosphanes. X-Ray Structures of Chloro(dimethyl)tetramethylcyclopentadienyl-stannane and Tetracarbonyl[1-dimethyl(tetramethylcyclopentadienyl)germyl-3,4-dimethyl-phospholene]iron(0) Me2Cp′SiCl ( 1 ) (Cp′ = C5HMe4) reacts with magnesium and R2PCl (R = Ph, tBu) as well as PCl3 in tetrahydrofurane yielding Me2Cp′SiPPh2 ( 4 ), Me2Cp′SiPtBu2 ( 5 ) and (Me2Cp′Si)3P ( 6 ) respectively. The reaction of Me3SiPPh2 ( 7 ) or Me3SiPC4H4Me2 ( 10 ) with Me2Cp′GeCl ( 2 ) and Me2Cp′SnCl ( 3 ) leads to the formation of Me2Cp′EPPh2 (E = Ge ( 8 ), Sn ( 9 )) and Me2Cp′EPC4H4Me2 (E = Ge ( 11 ), Sn ( 12 )). 11 reacts with Fe(CO)5 with formation of Fe(CO)4[(PC4H4Me2)GeCp′Me2] ( 13 ). 3 crystallizes in the space group P21/n with a = 986,7(1), b = 1247,3(2), c = 1028,2(1) pm, β = 92,71(1)°, Z = 4 and V = 1264,1(2) 10?30 m3. The final refinement resulted in R1 = 0,0249 for 2097 observed reflexions with Fo ≥ 4σ(Fo). 13 crystallizes in the space group P21/n with a = 967,7(3), b = 1298,70(16), c = 1832,7(3) pm, β = 95,810(19)°, Z = 4 and V = 2291,4(8) 10?30 m3 (R1 = 0,0444 for 4043 observed reflexions with Fo ≥ 4σ(Fo). 13 forms a trigonal bipyramide with the phosphane ligand 11 in an axial position.  相似文献   

14.
Transition Metal Silyl Complexes, 44. — Preparation of the Binuclear Silyl Complexes (CO)3(R3Si)Fe(μ-PR′R′′)Pt(PPh3)2 by Oxidative Addition of (CO)3(R′R′′HP)Fe(H)SiR3 to (C2H4)Pt(PPh3)2 The complexes (CO)3(R′R′′HP)Fe(H)SiR3 ( 1 ) [PHR′R′′ = PHPh2, PH2Ph, PH2Cy; SiR3 = SiPh3, SiPh2Me, SiPhMe2, Si(OMe)3] react with Pt(C2H4)(PPh3)2 to give the dinuclear, silyl-substituted complexes (CO)3(R3Si)Fe(μ-PR′R′′)Pt(PPh3)2 ( 2 ) in high yields. Upon reaction of 2 (R = R′ R′′ = Ph) with CO, the PPh3 ligand at Pt being trans to the PPh2 bridge is exchanged, and (CO)3(Ph3Si)Fe(μ-PPh2)Pt(PPh3)CO ( 3 ) is formed. Complex 3 is characterized by an X-ray structure analysis. The rather short Fe — Si distance [233.9(2) pm] and the infrared spectrum of 3 indicate that the Fe — Pt bond is quite polar.  相似文献   

15.
The Reaction Behaviour of Lithiated Aminosilanes RR′Si(H)N(Li)SiMe3 The bis(trimethylsilyl)aminosubstituted silances RR′Si(H)N(SiMe3)2 11 – 16 (R,R′ = Me, Me3SiNH, (Me3Si)2N) are obtained by the reaction of the lithium silylamides RR′Si(H)N(Li)SiMe3 1 – 10 (R,R′ = Me3SiNLi, Me, Me3SiNH, (M3Si)2N) with chlorotrimethylsilane in the polar solvent tetrahydrofurane (THF). In the reaction of the lithium silylamides [(Me3Si)2N]2(Me3SiNLi)SiH 10 with chlorotrimethylsilane in THF the rearranged product 1,1,3-tris[bis(trimethylsilyl)amino]-3-methyl-1,3-disila-butane [(Me3Si)2N]2Si(H)CH2SiMe2N(SiMe3)2 17 is formed. The reaction of the lithium silyamides RR′ Si(H)N(Li)SiMe3 1 – 3 (1: R = R′ = Me; 2: R = Me, R′ = Me3SiNH; 3: R = Me, R′ = Me3SiNLi) with chlorotrimethylsilane in the nonpolar solvent n-hexane gives the cyclodisilazanes [RR′ Si? NSiMe3]2 18 – 22 (R = Me, Me3SiNH, (Me3Si)2N; R′ = Me, Me3SiNH, (Me3Si)2N, N(SiMe3)Si · Me(NHSiMe3)2) and trimethylsilane. The lithium silylamides 4 , 5 , 6 , 9 , 10 (4: R = R′ = Me3SiNH; 5: R = Me3SiNH, R′ = Me3SiNLi; 6: R = R′ = Me3SiNLi; 9: R = (Me3Si)2N, R ′ = Me3SiNLi; 10: R = R′ = (Me3Si)2N) shows with chlorotrimethylsilane in n-hexane no reaction. The crystal structure of 17 and 21 are reported.  相似文献   

16.
The bridging aminocarbyne complexes [Fe2{μ-CN(Me)(R)}(μ-CO)(CO)2(Cp)2][SO3CF3] (R = Me, 1a; Xyl, 1b; 4-C6H4OMe, 1c; Xyl = 2,6-Me2C6 H3) react with acrylonitrile or methyl acrylate, in the presence of Me3NO and NaH, to give the corresponding μ-allylidene complexes [Fe2{μ-η13- Cα(N(Me)(R))Cβ(H)Cγ(H)(R′)}(μ-CO)(CO)(Cp)2] (R = Me, R′ = CN, 3a; R = Xyl, R′ = CN, 3b; R = 4-C6H4OMe, R′ = CN, 3c; R = Me, R′ = CO2Me, 3d; R = 4-C6H4OMe, R′ = CO2Me, 3e). Likewise, 1a reacts with styrene or diethyl maleate, under the same reaction conditions, affording the complexes [Fe2{μ-η13-Cα(NMe2)Cβ(R′)Cγ(H)(R″)}(μ-CO)(CO)(Cp)2] (R′ = H, R″ = C6H5, 3f; R′ = R″ = CO2Et, 3g). The corresponding reactions of [Ru2{μ-CN(Me)(CH2Ph)}(μ-CO)(CO)2(Cp)2][SO3CF3] (1d) with acrylonitrile or methyl acrylate afford the complexes [Ru2{μ-η13-Cα(N(Me)(CH2Ph))Cβ(H)Cγ(H)(R′)}(μ-CO)(CO)(Cp)2] (R′ = CN, 3h; CO2Me, 3i), respectively.The coupling reaction of olefin with the carbyne carbon is regio- and stereospecific, leading to the formation of only one isomer. C-C bond formation occurs selectively between the less substituted alkene carbon and the aminocarbyne, and the Cβ-H, Cγ-H hydrogen atoms are mutually trans.The reactions with acrylonitrile, leading to 3a-c and 3h involve, as intermediate species, the nitrile complexes [M2{μ-CN(Me)(R)}(μ-CO)(CO)(NC-CHCH2)(Cp)2][SO3CF3] (M = Fe, R = Me, 4a; M = Fe, R = Xyl, 4b; M = Fe, R = 4-C6H4OMe, 4c; M = Ru, R = CH2C6H5, 4d).Compounds 3a, 3d and 3f undergo methylation (by CH3SO3CF3) and protonation (by HSO3CF3) at the nitrogen atom, leading to the formation of the cationic complexes [Fe2{μ-η13-Cα(N(Me)3)Cβ(H)Cγ(H)(R)}(μ-CO)(CO)(Cp)2][SO3CF3] (R = CN, 5a; R = CO2Me, 5b; R = C6H5, 5c) and [Fe2{μ-η13-Cα(N(H)(Me)2)Cβ(H)Cγ(H)(R)}(μ-CO)(CO)(Cp)2][SO3CF3] (R = CN, 6a; R = CO2Me, 6b; R = C6H5, 6c), respectively.Complex 3a, adds the fragment [Fe(CO)2(THF)(Cp)]+, through the nitrile functionality of the bridging ligand, leading to the formation of the complex [Fe2{μ-η13-Cα(NMe2)Cβ(H)Cγ(H)(CNFe(CO)2Cp)}(μ-CO)(CO)(Cp)2][SO3CF3] (9).In an analogous reaction, 3a and [Fe2{μ-CN(Me)(R)}(μ-CO)(CO)2(Cp)2][SO3CF3], in the presence of Me3NO, are assembled to give the tetrameric species [Fe2{μ-η13-Cα(NMe2)Cβ(H)Cγ(H)(CN[Fe2{μ- CN(Me)(R)}(μ-CO)(CO)(Cp)2])}(μ-CO)(CO)(Cp)2][SO3CF3] (R = Me, 10a; R = Xyl, 10b; R = 4-C6H4OMe, 10c).The molecular structures of 3a and 3b have been determined by X-ray diffraction studies.  相似文献   

17.
18.
Complexes of the type {Fp′(solvent)}+ PF6?, 3a–3d, (Fp′ = (η -C5Me5)Fe(CO)2, solvent = THF, CH3COCH3, CH3CN, or pyridine) are conveniently prepared by the reaction between Fp′2 and Cp2Fe+ PF6 (Cp = η5-C5H5) in the solvent under ambient conditions. The complexes {Fp′L}+ PF6?, 3e–3g, (L = CO, PPh3, P(OPh)3) are readily prepared from {Fp′THF}+. Fp′H is formed by treatment of 3a with NaBH4. Fp′SC(S)NMe2 can be prepared from 3a or 3e and NaSC(S)NMe2.  相似文献   

19.
The treatment of the hexacarbonylmetal compounds M(CO)6 (M = Cr. Mo, W) with two equivalents Me3PCH2 yields the phosphonium acylmetalphosphorus ylides Me4P[(CO)5MC(O)CHPMe3] 1a–1c. Their reaction with Me3SiOSO2CF3 leads via O-silylation to formation of the neutral “siloxy(ylidecarbene) complexes” (CO)5MC(OSiMe3)CHPMe32a–2c, which are protonated by HX (X = Cl, CF3SO3) to give the thermolabile carbene complexes [(CO)5MC(OSiMe3)H2CPMe3]X, 3a, 3b. 1H, 13C NMR and IR data suggest, that delocalization of the ylidic charge to the carbene carbon generates a metal-coordinated vinyl group in the case of 2a–2c. In addition this fact is proved by the X-ray analysis of 2c, for which a C(ylide)C(carbene) bond distance of 133 pm is found. 2a–2c are obtained as pure E-isomers but can be converted to the Z-isomers 2a′–2c′ upon photolysis.  相似文献   

20.
Oxidative addition of HBF4, CF3SO3H and C4F9SO3H to trans-(Ph3P)2Ir(L)Cl (L = CO, N2) gives the highly reactive irridium(III) complexes (Ph3P)2Ir(L)(Cl)(H)(X) (X = BF4, CF3SO3, C4F9SO3), in which the anion X can be easily substituted by σ- and π-donors. In the dinitrogen complex (Ph3P)2Ir(N2)(Cl)(H)(FBF3) (2a) both the N2 and BF4 ligands are replaced by valinate, diethyldithiocarbamate or tertiary phosphines, respectively. 2a catalyzes the hydrogenation of cyclohexene and the isomerisation of 1,5-cyclooctadiene.  相似文献   

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