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1.
Tetracloro-o-benzoquinone reacts with (diphenylacetylene)bis(tirphenylphosphine)platinum(0) to give the novel platinum(II) diphenylacetylene complex, Pt(C6Cl4O2)PhCCPh)(PPh3), (I), which reacts with hydrogen halides to give the compelexes cis-PtX2(PhCCPh((PPh3), (X = Cl or Br). Hydrogen chloride also readily removes the tetrachloro-o-benzoquinoneligand from the adducts Ni(C6Cl4O2)(Ph2PCH2CH2PPh2) and M(C6Cl4O2)(PPh3)2, (M = Pd or Pt) but it has no reaction upon Ir(Cl)(C6Cl4O2)(CO)(PPh3)2 at room temperature. The acetylene in (1) is susceptible to nucleophilic attact and reaction with diethylamine gives the vinyl adduct Pt(C6Cl4O2)(CPhCPh)NHEt2)(PPh3). Other reactions of (I) have also been studied. Attemps to prepare other olefin or acetylene complexes of platinum(II) by the action of tetrachlor-o-benzoquinone on the complexes Pt(L)(PPh3)2, (L = PhCCH,(Et)(Me)(HO)CCCC(OH)(Me)(Et), HOCH2OH, CF3CCCF3, CF2CF2, CF2CH2 or trans-PhCHCHPh) are also described.  相似文献   

2.
The (hydroxo) methyl complex Pt(OH)(CH3)(Diphos) [Diphos = Ph2PCH2CH2PPh2] reacts with compounds containing acidic CH bonds (HX) to give unsymmetrical cis-dialkyls of general formula Pt(CH3)X(Diphos) [X = CH2COCH3, CH(COCH3)2, CH2CN or CH2NO2]; both the methyl and the cyclohexenyl complexes Pt(OH)R(Diphos) (R = CH3 or C6H9) insert carbon monoxide to give hydroxycarbonyl complexes PtR(CO2H)(Diphos) which are remarkably stable to decomposition by β-elimination.  相似文献   

3.
Reactions of [Ru{C=C(H)-1,4-C6H4C≡CH}(PPh3)2Cp]BF4 ([ 1 a ]BF4) with hydrohalic acids, HX, results in the formation of [Ru{C≡C-1,4-C6H4-C(X)=CH2}(PPh3)2Cp] [X=Cl ( 2 a-Cl ), Br ( 2 a-Br )], arising from facile Markovnikov addition of halide anions to the putative quinoidal cumulene cation [Ru(=C=C=C6H4=C=CH2)(PPh3)2Cp]+. Similarly, [M{C=C(H)-1,4-C6H4-C≡CH}(LL)Cp ]BF4 [M(LL)Cp’=Ru(PPh3)2Cp ([ 1 a ]BF4); Ru(dppe)Cp* ([ 1 b ]BF4); Fe(dppe)Cp ([ 1 c ]BF4); Fe(dppe)Cp* ([ 1 d ]BF4)] react with H+/H2O to give the acyl-functionalised phenylacetylide complexes [M{C≡C-1,4-C6H4-C(=O)CH3}(LL)Cp’] ( 3 a – d ) after workup. The Markovnikov addition of the nucleophile to the remote alkyne in the cations [ 1 a–d ]+ is difficult to rationalise from the vinylidene form of the precursor and is much more satisfactorily explained from initial isomerisation to the quinoidal cumulene complexes [M(=C=C=C6H4=C=CH2)(LL)Cp’]+ prior to attack at the more exposed, remote quaternary carbon. Thus, whilst representative acetylide complexes [Ru(C≡C-1,4-C6H4-C≡CH)(PPh3)2Cp] ( 4 a ) and [Ru(C≡C-1,4-C6H4-C≡CH)(dppe)Cp*] ( 4 b ) reacted with the relatively small electrophiles [CN]+ and [C7H7]+ at the β-carbon to give the expected vinylidene complexes, the bulky trityl ([CPh3]+) electrophile reacted with [M(C≡C-1,4-C6H4-C≡CH)(LL)Cp’] [M(LL)Cp’=Ru(PPh3)2Cp ( 4 a ); Ru(dppe)Cp* ( 4 b ); Fe(dppe)Cp ( 4 c ); Fe(dppe)Cp* ( 4 d )] at the more exposed remote end of the carbon-rich ligand to give the putative quinoidal cumulene complexes [M{C=C=C6H4=C=C(H)CPh3}(LL)Cp’]+, which were isolated as the water adducts [M{C≡C-1,4-C6H4-C(=O)CH2CPh3}(LL)Cp’] ( 6 a–d ). Evincing the scope of the formation of such extended cumulenes from ethynyl-substituted arylvinylene precursors, the rather reactive half-sandwich (5-ethynyl-2-thienyl)vinylidene complexes [M{C=C(H)-2,5-cC4H2S-C≡CH}(LL)Cp’]BF4 ([ 7 a – d ]BF4 add water readily to give [M{C≡C-2,5-cC4H2S-C(=O)CH3}(LL)Cp’] ( 8 a – d )].  相似文献   

4.
Reactions of Pt(PPh3)4 with the sulfines, XYCSO, (X, Y = aryl, S-aryl, S-alkyl, Cl) yield coordination compounds of the type Pt(PPh3)2(XYCSO). Infrared, 31P and 1H NMR spectra reveal that in all cases the sulfine ligand is coordinated side-on via the CS π-bond (Pt—η2-CS). Reactions of Pt(PPh3)4 with either the E- or Z-isomer of (p-CH3C6H4)(CH3S)CSO yields the corresponding E- or Z-coordination compound, Pt(PPh3)2[E-(p-CH3C6H4)(CH3S)CSO] or Pt(PPh3)2[Z-(p-CH3C6H4)(CH3S)CSO], indicating that the configuration of the sulfine ligand is retained upon coordination to the Pt(PPh3)2 unit. The compounds Pt(PPh3)2(XYCSO), containing reactive CX and/or CY bonds (X, Y = S-aryl, S-alkyl, Cl), undergo a rearrangement in solution to give complexes of the type PtX(PPh3)2(YCSO).  相似文献   

5.
Abstract

The new complexes [CpRu(PPh3)2(RSSR)PF6 R=CH3, iso-Pr, CH2C6H5 and C6H5 have been prepared from the reaction of CpRu(PPh3)2Cl with RSSR in CH3OH in presence of NH4Cl. This result contrasts with the oxidative additions of RSSR to CpFe(dppe)1 dppe=PPh2 (CH2)2PPh2 to give [CpFe(dppe)SR]PF6 (C. Diaz et al., J. Organomet. Chem. 516, 59 (1996)). Huckel calculations on model fragments CpFe(PPh3)2 and CpRu(PPh3)2 suggest that the higher electron density of iron could explain the differences observed in reactivity. Possible biological implications are discussed.  相似文献   

6.
单氢钌配合物与水和2,2,2-三氟乙醇的作用机理   总被引:1,自引:0,他引:1  
利用原位1H和31P NMR对单氢钌配合物TpRu(PPh3)(CH3CN)H [Tp=hydrotris(pyrazolyl)borate]与H2O和酸性HOCH2CF3的反应进行了研究, 结果显示相应的反应产物分别是TpRu(PPh3)(CH3CN)(OH) 和TpRu(PPh3)(CH3CN)(OCH2CF3). 观察到反应过程中Ru-H…HOH和Ru-H…HOCH2CF3分子间的氢键作用. 提出了生成TpRu(PPh3)(CH3CN)(OH)和TpRu(PPh3)(CH3CN)(OCH2CF3)的不同作用机理. 在水存在下, TpRu(PPh3)(CH3CN)H 与H2O反应, 经过中间体TpRu(PPh3)(H2O)H和TpRu(PPh3)(OH)(η2-H2)生成产物TpRu(PPh3)(CH3CN)(OH). 而TpRu(PPh3)(CH3CN)H与酸性HOCH2CF3反应时, 单氢配体被质子化形成中间体[TpRu(PPh3)(CH3CN)- (η2-H2)](OCH2CF3), 进而转变成产物TpRu(PPh3)(CH3CN)(OCH2CF3). TpRu(PPh3)(CH3CN)(OCH2CF3)与H2作用, 经中间体TpRu(PPh3)(HOCH2CF3)H生成TpRu(PPh3)(η2-H2)H.  相似文献   

7.
Treatment of trans-Pt(COCOPh)(Cl)(PPh3)2 (1a) with AgBF4in THF led to the formation of a metastatic complex trans-[Pt(COCOPh)(THF)(PPh3)2](BF4) (2) which readily underwent ligand substitution to give a cationic aqua complex trans-[Pt(COCOPh)(OH2)(PPh3)2](BF4) (5a). Complex 5a has been characterized spectroscopically and crystallographically. Analogous reaction of trans-Pt(COCOOMe)(Cl)(PPh3)2 (1b) with Ag(CF3SO3) in dried CH2C12 was found first to yield a methoxyoxalyl triflato complextrans-Pt(COCOOMe)(OTf)(PPh3)2 (6). Attempts to crystallize the triflato product in CH2-cl2hexane under ambient conditions also afforded an aqua complex of the triflate salt f/wu-[Pt(COCOOMe)(OH2)(PPhj)2](CF3SO3) (5b). Complex 5a in a noncoordinating solvent such as CH2C12 or CHCl3 suffered spontaneous decarbonylation to form first cis-[Pt(COPh)(CO)(PPh3)2l(BF4) (3a) then the thermodynamically stable isomer trans-[Pt(COPh)(CO)(PPh3)2](BF4) (3b). Crystallization of complex 3b under ambient conditions resulted in an aqua benzoyl complex trans-[Pt(COPh)(OH2)(PPh3)2](BF4) (7). The replacement of the H2O ligand in complex 7 by CO was done simply by bubbling CO into the solution of 7. The single crystal structures of 5b and 7 have been determined by X-ray diffraction. The distances of the Pt-O bonds in 5a, 5b, and 7 support that the aqua ligand is a weak donor in such cationic aquaorganoplatinum(lI) complexes, in agreement with their lability to the substitution reactions.  相似文献   

8.
Decarboxylation reactions between the complexes cis–[PtCl2L] (L = 1, n–bis(diphenylphosphino)–ethane (n = 2, dppe), –propane (n = 3, dppp) or –butane (n = 4, dppb)) and thallium(I) pentafluorobenzoate in pyridine give cis–[PtCl(C6F5)L] and cis–[Pt(C6F5)2L] complexes in high yields with short reaction times. X–ray crystal structures of cis–[PtCl(C6F5)(dppe)] · 0.5 C5H5N, cis–[PtCl(C6F5)(dppp)], cis–[PtCl(C6F5)(dppb)] · C3H6O, cis–[Pt(C6F5)2L] (L = dppe, dppp and dppb) and the reactants cis–[PtCl2(dppp)] (as a CH2Cl2 solvate) and cis–[PtCl2(dppb)] show monomeric structures with chelating diphosphine ligands in all cases rather than dimers with bridging diphosphines. 31P NMR data are consistent with these structures in solution.  相似文献   

9.
The isocyanide complexes trans-[ReCl(CNR)(dppe)2] (R  Me, But, C6H4CH3-4, C6H4CH3-2, C6H4Cl-4, C6H4OCH3-4 and C6H3Cl2-2,6; dppe  Ph2PCH2CH2PPh2) have been prepared by isocyanide displacement of dinitrogen from the parent complex trans-[ReCl(N2)(ddpe)2]. Their redox properties have been studied by cyclic voltammetry and are interpreted on the basis of the electronic properties and the geometry of the ligating isocyanides which are believed to be bent in these complexes, appearing to exhibit ligand parameter (PL) values ca. +0.3 V higher than those which would be expected for linear geometry. A very high polarisability (B ? 3.4) is observed for the {ReCl(dppe)2} site.  相似文献   

10.
The compounds [Pt(C2H4)2(PR3)] [PR3 = P-tBu2Me, P(C6H11)3, PPh3] react dimethyldivinylsilane or dimethyldivinyltin to give chelate complexes [Pt{(CH2CH)2MMe2} (PR3)] (M = Si or Sn). allyltrimethyltin reacts with various diethylene (tertiary phosphine)platinum compounds with cleavage of the allyl group to afford complexes [Pt(SnMe3)(η3-C3H5)(PR2)]. The NMR spectra (13C, 1H and 31P) of the new compounds have been recorded, and the data are discussed in terms of the structures proposed.  相似文献   

11.
Reaction of Pt(Ph3P)2C2H4 with p-tolyl isoselenocyanate yields the first known example of a π-bound organic isoselenocyanate ligand in the complex Pt(η2-SeCNC7H7)(Ph3P)2. Reaction of this complex with methyl iodide results in alkylation at the selenium atom rather than at nitrogen, with resultant loss of selenium to yield PtI2(CNC7H7)(Ph3P) as the final product. If the reaction of Pt(Ph3P)2C2H4 with p-tolyl isoselenocyanate is carried out in CH2Cl2 solution, selenium abstraction occurs and the complex Pt(η2-Se2CNC7H7)-(CNC7H7)(Ph3P) is formed which contains both an isonitrile ligand and the as yet unreported diselenocarbonimidato ligand. Alkylation of this ligand failed to yield a diselenocarbamate complex.  相似文献   

12.
The reaction of [CpRuCl(PPh3)2] (Cp=cyclopentadienyl) and [CpRuCl(dppe)] (dppe=Ph2PCH2CH2PPh2) with bis‐ and tris‐phosphine ligands 1,4‐(Ph2PC≡C)2C6H4 ( 1 ) and 1,3,5‐(Ph2PC≡C)3C6H3 ( 2 ), prepared by Ni‐catalysed cross‐coupling reactions between terminal alkynes and diphenylchlorophosphine, has been investigated. Using metal‐directed self‐assembly methodologies, two linear bimetallic complexes, [{CpRuCl(PPh3)}2(μ‐dppab)] ( 3 ) and [{CpRu(dppe)}2(μ‐dppab)](PF6)2 ( 4 ), and the mononuclear complex [CpRuCl(PPh3)(η1‐dppab)] ( 6 ), which contains a “dangling arm” ligand, were prepared (dppab=1,4‐bis[(diphenylphosphino)ethynyl]benzene). Moreover, by using the triphosphine 1,3,5‐tris[(diphenylphosphino)ethynyl]benzene (tppab), the trimetallic [{CpRuCl(PPh3)}33‐tppab)] ( 5 ) species was synthesised, which is the first example of a chiral‐at‐ruthenium complex containing three different stereogenic centres. Besides these open‐chain complexes, the neutral cyclic species [{CpRuCl(μ‐dppab)}2] ( 7 ) was also obtained under different experimental conditions. The coordination chemistry of such systems towards supramolecular assemblies was tested by reaction of the bimetallic precursor 3 with additional equivalents of ligand 2 . Two rigid macrocycles based on cis coordination of dppab to [CpRu(PPh3)] were obtained, that is, the dinuclear complex [{CpRu(PPh3)(μ‐dppab)}2](PF6)2 ( 8 ) and the tetranuclear square [{CpRu(PPh3)(μ‐dppab)}4](PF6)4 ( 9 ). The solid‐state structures of 7 and 8 have been determined by X‐ray diffraction analysis and show a different arrangement of the two parallel dppab ligands. All compounds were characterised by various methods including ESIMS, electrochemistry and by X‐band ESR spectroscopy in the case of the electrogenerated paramagnetic species.  相似文献   

13.
Toxicity, antitumour, platinum distribution, hepatotoxicity and histology data are presented for a series of ferrocenylamines: [(η‐C5H4(CH2)nNH2)FeCp] (n = 0,1) ( 1 , 2 ); [(η‐C5H4CH2NHPh)FeCp] ( 3 ); [(η‐C5H4CH2NMe2)FeCp] ( 4 ); {[η‐C5H4CH(Me)NMe2]FeCp} ( 5 ); [η‐C5H4CH2NMe2)2Fe] ( 6 ); {[1,2η‐C5H3(CHMeNMe2)(PPh2)]FeCp} ( 7 ); {[1,2η‐C5H3(CHMeNMe2)(PPh2)]Fe[η‐C5H4PPh2]} ( 8 ); and their complexes cis‐PtCl2L2 ( 9 ); trans ‐ Pt(L)(dmso)X2 ( 10 ); [σ ‐ (L)Pt(dmso)X] ( 11 , 12 ) {σ‐(L)[Pt(dmso)X]2} ( 13 ); [σ‐(L)PtP(OPh)3Cl] ( 14 ) (L = ferrocenylamine). The toxicity order is 1 – 3 ≫ 4 – 8 for the ferrocenylamines; the lower toxicity of tertiary amines may be due to protonation in vivo. Pt(II) complexes all show increased toxicity over the ligand. Liver, not kidney, damage is the norm from i.p. injection of 1 – 14 and detailed platinum distribution, blood serum and histology studies with 9 and 11 show that the platinum distribution does not correlate with liver dysfunction. Complexes 9 – 14 , but not 1 – 8 , were active against P‐388 mouse leukaemia tumour and cisplatin‐resistant sarcoma, but inactive against L‐1210 mouse leukaemia and B‐16 melanoma. Copyright © 1999 John Wiley & Sons, Ltd.  相似文献   

14.
Eight platinum acetylide complexes have been synthesized and characterized. The catalytic properties of these complexes in curing silicone rubber by hydrosilylation have been tested. Among the complexes tested, trans‐Pt(PPh3)2[―C≡CC(CH3)2OSi(CH3)3] 2 (2), trans‐Pt(PPh3)2[―C≡CC(CH3)2OSi(CH2CH3)3]2 (3), trans‐Pt(PPh3)2[―C≡CC(CH3)2OSiPh(CH3)2]2 (4), trans‐Pt(PPh3)2[―C≡C(C6H10)OSi(CH3)3]2 (6), trans‐Pt(PPh3)2[―C≡C(C6H10)OSi(CH2CH3)3]2 (7), and trans‐Pt(PPh3)2[―C≡C(C6H10)OSiPh(CH3)2]2 (8) exhibited sufficiently long pot‐lives (15 days) at room temperature and short silicone rubber curing times of 10–35 min at 100°C or 1–5 min at 120°C. Copyright © 2012 John Wiley & Sons, Ltd.  相似文献   

15.
The enthalpy of the reaction: Pt(PPh3)2(CH2CH2)(cryst.) + CS2(g) → Pt(PPh3)2(CS2)(cryst.) + CH2CH2(g) has been determined as ΔH = ? 4.40 ± 2.2 kJ mol?1 from solution calorimetry, and the bond dissociation energy D(PtCS2) shown to be slightly greater than D(PtC2H4).  相似文献   

16.
Reactions of π-cyclopentadienylbis(triphenylphosphine)rhodium(I) (I) with alkyl halides, olefins, acetylenes, carbon disulfide and elementary sulfur have been investigated. Methyl iodide gives the oxidative-addition product [πC5H5 Rh(PPh3)2CH3]I but isopropyl iodide produces the alkyl substituted-cyclopentadienyl complex (π-i-C3H7C5H4)Rh(PPh3)I2. Under a nitrogen atmosphere, olefins and acetylenes give compounds of the composition π-C5H5 Rh(PPh3)(L) (L = CH2—CHCN, CH2—CHCO2CH3, CH3O2—CCOO2CH3).In the presence of air, however, complexes of the composition π-C5H5Rh(L)2 (L = CH2—CHCN, CH2—CHCO2CH3, CH2—C(CH3)CN) and π-C5H5Rh(L)3 (L = CH3O2 CC—CCO2 CH3, PhC—CCO2 CH3) are formed. The reaction of carbon disulfide or sulfur with (I) also gives the compounds π-C5H5Rh(PPh3)(L) (L = CS2, CS3, S5).  相似文献   

17.
The complexes[Pt(C2H4)L2] (L = PPh3 or PMePh2) react with 1,4-diphenyl-buta-1,3-diyne to give, successively, mono- and di-platinum compounds [Pt-(PhC4Ph)L2] and [Pt2(PhC4Ph)L4]. Hexa-2,4-diyne and [Pt(C2H4)(PPh3)2] react similarly. In the di-platinum compounds both acetylenic linkages are η2-bonded to platinum atoms, as also occurs in the complex [Pt2{HC2(CH2)2C2H}(PPh3)4] obtained from hexa-1,5-diyne. Reaction of [Pt3(CN-t-Bu)6 with 1,4-diphenylbuta-1,3-diyne and hexa-2,4-diyne affords di-platinum complexes, shown by spectroscopic studies to have structures containing diplatinacyclobutene rings.  相似文献   

18.
Tris(1-pyrazolyl)methane (HCpz3) reacts with Pt(CH3)2(COD) to form Pt(CH3)2(HCpz3), and when this complex is heated in pyridine metallation of the pyrazole ring at C(5) occurs to form Pt(CH3)(HCpz2(pzH_1))(py). A triphenylphosphine derivative, Pt(CH3)(HCpz2(pzH_1))(PPh3)2, when slowly heated to 185°C forms Pt(HCpz2(pzH_1))(C6H4PPh2); this complex has both the nitrogen and phosphorus donor ligands metallated to form six and four-membered rings, respectively.  相似文献   

19.
The preparation, characterisation and single‐crystal XRD molecular structure determinations of four complexes containing –CC–MLn end‐groups, namely Ru{C≡CFc′(I)}(dppe)Cp ( 1 ), the vinylidene [Os(=C=CH2)(PPh3)2Cp]PF6 ( 2 ), trans‐Pt(C≡CC6H4‐4‐C≡CPh){C≡CC6H4‐4‐C2Ph[Co2(μ‐dppm)(CO)4]}(PPh3)2 ( 3 ), and C6H43‐C2[AuRu3(CO)9(PPh3)]}2‐1,4 ( 4 ) are reported. In these compounds a range of –CC– environments is found, extending from the σ‐bonded alkynyl group in 1 to examples where the C2 unit interacts with either a proton (in vinylidene 2 ), by bridging a dicobalt carbonyl moiety (in 3 ) or the AuRu3 cluster in 4 . Changes in geometry are rationalised by considering the various bonding modes.  相似文献   

20.
A series of heterodinuclear complexes with acetylene dithiolate (acdt2?) as the bridging moiety were synthesised by a facile one‐pot procedure that avoided use of the highly elusive acetylene dithiol. Generation of the W–Ru complex [Tp′W(CN)(CO)(C2S2)Ru(η5‐C5H5)(PPh3)] (Tp’=hydrotris(3,5‐dimethylpyrazolyl)borate) and the W–Pd complexes [Tp′W(CN)(CO)(C2S2)Pd(dppe)] and [Tp′W(CO)2(C2S2)Pd(dppe)][PF6] (dppe=1,2‐bis(diphenylphoshino)ethane), which exhibit a [W(η2‐κ2‐C2S2)M] core (M=Ru, Pd), was accomplished by using a transition‐metal‐assisted solvolytical removal of the Me3Si‐ethyl thiol protecting groups. All intermediate species of the reaction have been fully characterised. The highly coloured W–Ru complex [Tp′W(CN)(CO)(C2S2)Ru(η5‐C5H5)(PPh3)] shows reversible redox chemistry, as does the prototype complex [Tp′W(CO)2(C2S2)Ru(η5‐C5H5)(PPh3)][PF6]. Single crystal X‐ray diffraction and IR, EPR and UV/Vis spectroscopic studies in conjunction with DFT calculations prove the high electronic delocalisation of states over the acdt2? linker. Comparative studies revealed a higher donor strength and more pronounced dithiolate character of acdt2? in [Tp′W(CN)(CO)(C2S2)Ru(η5‐C5H5)(PPh3)] relative to [Tp′W(CO)2(C2S2)Ru(η5‐C5H5)(PPh3)]+. In addition, the influence of the overall complex charge on the metric parameters was investigated by single‐crystal X‐ray diffraction studies with the W–Pd complexes [Tp′WL2(C2S2)Pd(dppe)] (L=(CN?)(CO) or (CO)2). The central [W(C2S2)Pd] units exhibit high structural similarity, which indicates the extensive delocalisation of charge over both metals.  相似文献   

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