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1.
Ferrocenyl substituted ruthenium metallacyclic compounds, [Ru2(CO)6{μ-η1122-1,4-Fc2C5H2O}] (1) and [Ru2(CO)6{μ-η1122-1,5-Fc2C5H2O}] (2) have been synthesized and structurally characterized. Electrochemical studies for 1 and 2 and the respective quinone derivatives 3 and 4 show weak to no electrochemical coupling at the mixed-valent intermediate state which is dependent on the complex frameworks.  相似文献   

2.
The complexes Cp′Mo(CO)2(η3-C3H5) [Cp′ = η5-C5H5 (1), η5-C5H4Me (2), η5-C5Me5 (3)] have been prepared, structurally characterised by X-ray diffraction (2, 3), and tested as catalyst precursors for the epoxidation of olefins at 55 °C. Complex 1 gave a turnover frequency (TOF) of 310 mol molMo−1 h−1 in the epoxidation of cis-cyclooctene with tert-butylhydroperoxide (TBHP, in decane) as oxidant, and 1,2-epoxycyclooctane was obtained quantitatively within 6 h. A similar result was obtained for complex 2, while the TOF for 3 was about one order of magnitude lower, suggesting a possible activity dependence on the ring substituents. For 1 the use of 1,2-dichloroethane as solvent increased the initial reaction rate to 361 mol molMo−1 h−1, with no decrease in epoxide selectivity. Under these conditions the reaction rates for other olefins increased in the order 1-octene < trans-2-octene < cyclododecene < (R)-(+)-limonene < cis-cyclooctene, and, with the exception of limonene, the corresponding epoxide was the only product. For 1 the selective epoxidation of cis-cyclooctene could also be achieved in aqueous solution, using TBHP or H2O2 as oxidants, which gave epoxide yields of 99% and 27% at 24 h, respectively. The possibility of facilitating catalyst recycling by using ionic liquids as solvents was investigated.  相似文献   

3.
A number of organometallic stilbenes of the general type [Co(η4-C4Ph4)(η5-C5H4CHCHR] are reported where R is C6H4X-4 (X = H, OMe, Br, NO2), 1-naphthyl, 9-anthryl, 1-pyrenyl, (η5-C5H4)Co(η4-C4Ph4), and (η5-C5H4)Fe(η5-C5H4Y) {Y = CHO, CHC(CN)2 and CHCHC5H45)Co(η4-C4Ph4)}. They were prepared by Wittig or Horner-Wadsworth-Emmons reactions which yield both E and Z or only E products respectively. The isomers were separated and all compounds characterised by standard spectroscopic techniques as well as by X-ray diffraction methods in many cases. The electrochemistry of the stilbene analogues in dichloromethane solution is also reported. In most, the (η5-C5H4)Co(η4-C4Ph4) functional group undergoes a reversible one-electron oxidation. For those molecules that also include (η5-C5H4)Fe(η5-C5H4Y), this is preceded by the reversible oxidation of the ferrocenyl group. Spectroscopic and structural data suggests that for most compounds there is little electronic interaction between Co(η4-C4Ph4)(η5-C5H4) and the R end groups which are effectively independent of one another. The only exceptions to this are Z and E-[Co(η4-C4Ph4)(η5-C5H4CHCHC6H4NO2-4], and [Co(η4-C4Ph4)(η5-C5H4CHCHC5H45)Fe{η5-C5H4CHC(CN)2}] where the electronic spectra are respectively consistent with a significant Co(η4-C4Ph4)(η5-C5H4)/NO2 donor/acceptor interaction and a less significant Co(η4-C4Ph4)(η5-C5H4)/C(CN)2 one. However, OTTLE studies show that in the electronic spectra of [Co(η4-C4Ph4)(η5-C5H4CHCHR]+ there are low energy absorption bands (950-1800 nm) which are attributed to R → Co(η4-C4Ph4)(η5-C5H4)+ or, when R is a ferrocenyl-base group, Co(η4-C4Ph4)(η5-C5H4) → (η5-C5H4)Fe(η5-C5H4Y)+ charge transfer transitions. The ferrocenyl compounds undergo cis/trans isomerisation on the OTTLE experiment timescale.  相似文献   

4.
合成了新型配合物{(n-Bu)2Sn[(η5-C5H5)Fe(η5-C5H4)COO]2}2,用元素分析、红外光谱和核磁共振谱( 1H、13C、119Sn)进行了表征,并用X-射线单晶衍射分析法测定其晶体结构。晶体属单斜晶系,空间群P21/c,晶胞参数a=11.753(4)?,b=21.133(7)?,c=23.374(9)?,β=101.62(3)°,V=5687(4)?3Z=4,Dc=1.614Mg·m-3,μ(MoKα)=1.912mm-1F(000)=2800,最终可靠因子R1=0.0827,wR2=0.2085。配合物分子呈中心对称,是具有Sn2O2中心内环的二聚体结构;每个锡原子与5个O原子和2个C原子形成扭曲的五角双锥几何构型,其中5个O原子为赤道配位原子,而C-Sn-C为配合物的轴。  相似文献   

5.
The monoxides [Fe(η5-C5Me4PPh2)(η5-C5Me4P{O}Ph2)] (1) and [Os(η5-C5H4PPh2)(η5-C5H4P{O}Ph2)] (2) have been prepared by treatment of the corresponding diphosphines with CCl4 and methanol.These ligands react with [Pd(PhCN)2Cl2] to give dichloride complexes of different structure.The dimeric complex [{Os(η5-C5H4PPh2)(η5-C5H4P{O}Ph2)}PdCl(μ-Cl)]2 (4) contains the monodentate P-coordinated osmocene ligand with the free P{O}Ph2 group, while the octamethylferrocene ligand gives the chelate k2-P,O complex [{Fe(η5-C5Me4PPh2)(η5-C5Me4P{O}Ph2)}PdCl2] (3).The structures of 3 and 4 have been determined crystallographically.Treatment of 3 and 4 with silver salts in CH2Cl2 or acetonitrile leads to the corresponding dicationic complexes[{M(η5-C5R4PPh2)(η5-C5R4P{O}Ph2)}Pd(MeCN)x]2+ (5, M = Fe, R = Me; 6, M = Os, R = H). Complex 5 decomposes upon isolation, in contrast 6 is rather stable, probably due to Os-Pd bonding. The dichlorides 3 and 4 catalyze catalytic amination of p-bromotoluene with N-(4-tolyl)morpholine with lower activity than (dppf)PdCl2, however they perform comparable to (dppf)PdCl2 activity in coupling of p-bromotoluene with p-methoxyphenyl boronic acid.  相似文献   

6.
(η~5—C~5H~5)~2NdCl·OC_4H_8配合物是带有离子性的共价化合物,易通过氯桥形成二聚物。讨论了配位活化与电子结构的关系及化学键性质。  相似文献   

7.
A new synthetic route is described to generate the 4-centre-5 electron donor ring system (P3C2tBu2BuH), via protonation of the lithium salts [LiFe(η4-P2C2tBu2PBu)(η5-C5R5)] (R = H, Me). The molecular structure of [Fe(η4-P3C2tBu2BuH)(η5-C5R5)] (R = Me) has been determined by a single crystal X-ray study.  相似文献   

8.
The reaction of the iodide complex [(η5-C9H2Me5)RhI2]2 (1) or the acetonitrile complex [(η5-C9H2Me5)Rh(MeCN)3]2+ with Tl[Tl(η-7,8-C2B9H11)] afforded rhodacarborane (η5-C9H2Me5)Rh(7,8-C2B9H11) (2). The cationic triple-decker complex with the bridging boratabenzene ligand [Cp*Fe(μ-η:η-C5H3Me2BMe)Rh(η5-C9H2Me5)]2+ (3) was synthesized by the reaction of the nitromethane solvate [(η5-C9H2Me5)Rh(MeNO2)3]2+ with the sandwich compound Cp*Fe(η-C5H3Me2BMe). The structure of 2 was established by X-ray diffraction. Published in Russian in Izvestiya Akademii Nauk. Seriya Khimicheskaya, No. 8, pp. 1623–1625, August, 2008.  相似文献   

9.
Yukihiro Motoyama 《Tetrahedron》2005,61(43):10216-10226
Atom-transfer radical cyclization (ATRC) and addition (ATRA) catalyzed by a coordinatively unsaturated diruthenium amidinate complex 4, [(η5-C5Me5)Ru(μ2-i-PrNC(Me)Ni-Pr)Ru(η5-C5Me5)]+, are investigated, and their features are compared with those of atom-transfer radical polymerization (ATRP). As an example of ATRC, a cationic diruthenium amidinate 4 is found to exhibit excellent catalytic reactivity for the cyclization of N-allyl α-halogenated acetamides including an alkaloid skeleton at ambient temperature. A catalytic species generated in situ from a halide complex, (η5-C5Me5)Ru(μ2-i-PrNC(Me)Ni-Pr)Ru(η5-C5Me5)(X) [X=Cl, Br] and sodium salts of weakly coordinating anions such as NaPF6 and NaBPh4 also shows high catalytic activity; this actually provides a solution for a problematic instability of 4 as the practical catalyst. The in situ-generated catalyst species 4 is also active towards the intermolecular ATRA of α,α,γ-trichlorinated γ-lactam with alkenes at rt to afford the corresponding α-alkylated γ-lactams in moderate yields. Examination of ATRP of methyl methacrylate (MMA) showed that both the isolated 4 [Y=PF6] and in situ-generated 4 [Y=PF6] are effective for the polymerization of MMA in the presence of 2-bromoisobutylate as the initiator. Use of the isolated catalyst results in controlled polymerization at initial stage of the reaction; in contrast, the polymerization with in situ-generated catalyst produces poly(MMA) with wide molecular weight distribution. The isolated catalyst 4 is powerful for the activation of a C-Br bond of macromolecule initiators; BrCMe2CO2[O(CH2)4]n-n-Bu (Mn=3800; Mw/Mn=1.2) initiated ATRP of MMA even at 25 °C to afford the poly(THF)-poly(MMA) block copolymer of Mn=26,000 and Mw/Mn=1.2 with the aid of 4. The roles of the coordinatively unsaturated ruthenium species for these reactions are discussed.  相似文献   

10.
在我们实验室里采用环戊二烯基羰基铁的钠盐[(η5-C5H5)Fe(CO)2]Na和氯代乙酸酯ClCH2COOR(R=C2H5,C3H7,C4H9,C5H11)直接反应合成了铁羰基化合物(η5-C5H5)Fe(CO)2CH2COOR(Ⅰ).  相似文献   

11.
The aldol condensation reaction between [Co(η4-C4Ph4){η5-C5H4C(O)CH3}] and a range of aromatic aldehydes [RCHO] and [RCHCH-CHO] gives a series of α,β-unsaturated ketones [Co(η4-C4Ph4){η5-C5H4C(O)CHCH-R}] and [Co(η4-C4Ph4){η5-C5H4C(O)CHCH-CHCH-R}] (3). The reaction is promoted by various bases: NaH proved to be the most effective whilst nBuLi gave [Co(η4-C4Ph4){η5-C5H4C(OH)(nBu)CH3}] as the major product. NaOH was ineffective, perhaps indicating that that the methyl protons in [Co(η4-C4Ph4){η5-C5H4C(O)CH3}] are less acidic than those in [Fe(η5-C5H5){η5-C5H4C(O)CH3}]. Compounds 3 were characterised spectroscopically. Their 1H NMR spectra are consistent with a trans configuration about their CC bond, and this was confirmed by X-ray crystallography in five cases, which showed that all have the same basic structure with parallel cyclobutadiene and cyclopentadienyl ligands, but they are not identical. The C5H4C(O)(CHCH)n-R (n = 1 or 2) moieties show little evidence for delocalisation and often deviate from planarity. The UV/Vis spectra of those 3 with smaller aromatic rings (R = C6H5, 4-C6H4NMe2, 2-C4H3S and 1-C10H7) suggest that these are donor-π-acceptor systems, but as the annellation of R increases (R = 9-C14H9, 1-C16H9 and 1-C20H11) the spectra increasingly resemble those of the parent polycyclic aromatic hydrocarbon, RH. Reduction of [Co(η4-C4Ph4){η5-C5H4C(O)CHCH-C10H7-1}] with DIBAL gives a mixture of [Co(η4-C4Ph4){η5-C5H4C(O)CH2CH2-C10H7-1}] and [Co(η4-C4Ph4){η5-C5H4CH(OH)CHCH-C10H7-1}]. A minor product from the preparation of [Co(η4-C4Ph4){η5-C5H4C(O)CH3}] was shown by X-ray crystallography to be the η4-butadiene complex [Co{η4-Ph(H)CC(Ph)-C(Ph)C(H)Ph}{η5-C5H4C(O)CH3}].  相似文献   

12.
The cyclopentadienylchromium carbonyl thiocarbonyls Cp2Cr2(CS)2(CO)n (n = 4, 3, 2, 1) have been studied by density functional theory using the B3LYP and BP86 functionals. The lowest energy Cp2Cr2(CS)2(CO)4 structure can be derived from the experimentally characterized unbridged Cp2Cr2(CO)6 structure by replacing the two terminal carbonyl groups furthest from the Cr-Cr bond with two terminal CS groups. The two lowest energy Cp2Cr2(CS)2(CO)3 structures have a single four-electron donor η2-μ-CS group and a formal Cr-Cr single bond of length ∼3.1 Å. In contrast to the carbonyl analogue Cp2Cr2(CO)5 these Cp2Cr2(CS)2(CO)3 structures are viable with respect to disproportionation into Cp2Cr2(CS)2(CO)4 and Cp2Cr2(CS)2(CO)2 and thus are promising synthetic targets. The lowest energy Cp2Cr2(CS)2(CO)2 structures have all two-electron donor CO and CS groups and short CrCr distances around ∼2.3 Å suggesting the formal triple bonds required to give the chromium atoms the favored 18-electron configurations. These Cp2Cr2(CS)2(CO)2 structures are closely related to the known structure for Cp2Cr2(CO)4. In addition, several doubly bridged structures with four-electron donor η2-μ-CS bridges are found for Cp2Cr2(CS)2(CO)2 at higher energies. The global minimum Cp2Cr2(CS)2(CO) structure is a triply bridged triplet with a CrCr triple bond (2.299 Å by BP86). A higher energy singlet Cp2Cr2(CS)2(CO) structure has a shorter Cr-Cr distance of 2.197 Å (BP86) suggesting the formal quadruple bond required to give each chromium atom the favored 18-electron configuration.  相似文献   

13.
Processes such as S-C and C-H bond activations as well as C-C coupling reactions have taken place in the synthesis of the new compound [Os3(CO)93233-{C5H5FeC5H3CCC(S)C(Fc)CHO}] (Fc = C5H4FeC5H5), which contains an aldehyde oxametallacycle. A reactivity study of it has been carried out. In addition, other new triosmium clusters such as [Os3(CO)932-CCFc)(μ,η1-SCCFc)], [Os3(CO)10(μ,η2-CCFc)(μ,η1-SCCFc)] and [Os3(CO)9(μ-CO)(μ32-FcCCSCCFc)] have been prepared from the reaction of [Os3(CO)10(NCMe)2] and FcCCSCCFc. All the compounds have been characterized by analytical and spectroscopic techniques. The crystal structures of [Os3(CO)932-CCFc)(μ,η1-SCCFc)] and [Os3(CO)93233-{C5H5FeC5H3CCC(S)C(Fc)CHO}] have been determined by X-ray crystallography and some electrochemical studies have also carried out.  相似文献   

14.
With copper(I) iodide as catalyst, σ-alkynyls, compounds (η5-C5H5)Cr(NO)2(CC-C6H5) (5), [(η5-C5H4)-COOCH3]Cr(NO)2(CC-C6H5) (10), and [(η5-C5H4)-COOCH3]W(CO)3(CC-C6H5) (13), were prepared from their corresponding metal chloride 1, 6 and 12. Structures of compound 3, 5 and 12 have been solved by X-ray diffraction studies. In the case of 5, there is an internal mirror plane passing through the phenylethynyl ligand and bisecting the Cp ring. The phenyl group is oriented perpendicularly to the Cp with an eclipsed conformation. The twist angle is 0° and 118.4° for -CC-Ph and two NO ligands, respectively. The orientation is rationalized in terms of orbital overlap between ψ3 of Cp, dπ of Cr atom, and π of alkynyl ligand, and complemented by molecular orbital calculation. The opposite correlation was observed on the chemical shift assignments of C(2)-C(5) on Cp ring in compounds 6 and 12, using HetCOR NMR spectroscopy. The electron density distribution in the cyclopentadienyl ring is discussed on the basis of 13C NMR data and compared with the calculations via density functional B3LYP correlation-exchange method.  相似文献   

15.
The reaction of with p-CH3C6H4S(O)2O(CH2)3C6H5 produces (η5-C5H5)(OC)3Mo(CH2)3C6H5. This is only the second structurally characterized organometallic species in which an aromatic moiety is separated by three or more methylene groups. The alkyl chain adopts a staggered conformation, the Mo-C(1)-C(2)-C(3)-C(4) unit is nearly coplanar, and the alkyl chain eclipses the trans-carbonyl group on Mo. NMR evidence indicates that this conformation is preserved in solution.  相似文献   

16.
The crystal structure of the Os3(μ,η2-O=CC6H5)(η3-C3H5)(CO)9 cluster synthesized by the reaction of the (μ-H)Os3(μ-O=CC6H5)(CO)10 complex with allylamine in chloroform was determined by X-ray analysis. Prolonged storage of the reaction mixture led to N-C bond cleavage in allylamine and η3-addition of the allyl fragment at one of the Os atoms (Os-C 2.246 ?, 2.248 ?, and 2.273 ?). The unit cell parameters of the complex are a = 9.494(1) ?, b = 10.479(1) ?, c = 12.474(2) ?, α = 84.55(1)°, β = 70.08(1)°, γ = 70.72(1)°, V = 1255.8(4), ?3, space group P , Z = 2; C19H10O10Os3; d calc = 2.922 g/cm3, 3085 I hkl > 2σ I of 3611 collected reflections; R = 0.0252. The structure of Os3(μ,η2-O=CC6H5)(η3-C3H5)(CO)9 is molecular. The plane of the Os3 triangle and the OsCOOs plane are connected according to the “butterfly” principle with an angle of 103.4° between them. The Os-Os distances in the cluster core vary from 2.836(1) ? to 2.844(1) ?; the Os-Ccarb distances are 1.88(1)–1.97(1) ?; the distances to the atoms of the bridging ligands are Os-C 2.11(1) ?, Os-O 2.14(1) ?; the O-C bridging bond is 1.24(1) ?. of the Os3(μ,η2-O=CC6H5)(η3-C3H5)(CO)9 triosmium cluster were studied theoretically. The potential curve of the internal rotation of the allyl ligand relative to the Os(1)-C(9) bond was determined. The rotation barrier of the allyl ligand in crystal relative to the Os(1)-C(9) bond is 8.38 kJ/mol, and the rotation of the ligand is not hindered. The effects of the intra-and intermolecular interactions on the conformation state of the cluster complex are considered. Original Russian Text Copyright ? 2008 by V. A. Maksakov, N. V. Pervukhina, N. V. Podberezskaya, M. Yu. Afonin, V. A. Potemkin, and V. P. Kirin __________ Translated from Zhurnal Strukturnoi Khimii, Vol. 49, No. 5, pp. 926–932, September–October, 2008.  相似文献   

17.
Cobaltacarboranes (η1, η3-cyclooctenediyl)Co(Carb) (Carb = η-9-SMe2-7,8-C2B9H10, η-1-tBuHN-1,7,9-C3B8H10) were synthesized by the reaction of the carborane anions [Carb] with the acetonitrile complex [(η1, η3-cyclooctenediyl)Co(MeCN)3]+ generated in situ upon the dissolution of [(η1, η3-cyclooctenediyl)Co(η-1,4-C6H4Me2)]+ in MeCN. The structures of (η13-cyclooctenediyl)Co(η-9-SMe2-7,8-C2B9H10 and [(η22-cyclooctadiene)Co((η-1,2,4,5-C6H2Me4)]BF4 were determined by X-ray diffraction analysis.  相似文献   

18.
19.
[(η5-C5H5)ZrCl3] reacts with [C5H4CH2CH2NMe2]Li yielding the coordination polymer [(C5H5)(C5H4CH2CH2NMe2)ZrCl2]n (1) as a brown solid which is very sensitive to moisture. The reaction of 1 with 1.35 equivalent of HCl (methanolic solution) yields pale yellow green crystals of [(η5-C5H5)(η5-C5H4CH2CH2NHMe2)ZrCl2]2[ZrCl6] (2). Compound 2 was fully characterized on the basis of NMR data and X-ray crystal structure analysis. The formation of this product indicates the elimination of C5H4CH2CH2NMe2 as well as C5H5 ligands from the Zr(IV) metal centre.  相似文献   

20.
鉴于含硅-过渡金属键化合物作为催化剂具有重要的应用价值, 在我们最近发现的化合物(η5,η5-C5H4Me2SiSi-Me2C5H4)Fe2(CO)4 (1)的硅硅键和铁铁键复分解重排反应可以有效地合成含有两个硅铁键的环状化合物[Me2Si-η5-C5H4- Fe(CO)2]2 (2)的基础上, 对该硅铁键环状化合物的三苯基膦取代衍生物[Me2Si-η5-C5H4-Fe(CO)(PPh3)][Me2Si-η5-C5H4Fe(CO)2-n(PPh3)n] (3: n=0, 5: n=1)的合成方法进行了研究. 发现化合物1在三苯基膦存在下的复分解重排反应是合成单三苯基膦取代产物3的最好方法; 而双三苯基膦取代化合物5则可通过光照条件下2与三苯基膦发生羰基取代反应而得到, 产物中含有的顺反异构体可利用制备薄层色谱法分离. 利用X射线衍射法测定了化合物3的分子结构, 考察了三苯基膦配体的存在对分子结构的影响以及三苯基膦与铁形成的配位键的稳定性.  相似文献   

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