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1.
Metal Complexes of Biological Important Ligands. LXXXII. Triphenylphosphine Molybdenum, Tungsten, Ruthenium, and Iridium Complexes of N-Acyl-α-Aminocarboxylates The reactions of the hydrido complexes RuHCl(CO) · (PPh3)3, RuH2(PPh3)4 and IrH3(PPh3)3 with N-acyl-α-aminocarboxylates give the carboxylate complexes RuCl(O2CCHRNHCOR′)(CO)(PPh3)2 ( 1–3 ), RuH(O2CCHRNHCOR′)(PPh3)3 ( 4–6 ) and IrH2(O2CCH2NHCOPh)(PPh3)3 ( 7 ). The structure of RuCl · (O2CCHNHCOPh)(CO)(PPh3)2 ( 1 ) has been determined by x-ray diffraction. The triphenylphosphine complexes MBr · (O2CCH2NHCOR)(CO)2(PPh3)2 (M = Mo, W) ( 8–12 ) and Mo(O2CCHRNHCOR′)2(CO)2(PPh3)2 ( 13–17 ) are formed from MBr2(CO)2(PPh3)2 (M = Mo, W) with one or two equivalents of N-acyl-a-aminoacidates, respectively.  相似文献   

2.
[WBr2(CO4]n reacts with alkynes to give complexes [WBr2CO(RCCR)2]2 (1) (R = R′ = Me, Et, Ph; R = Me, R′ = Ph), which react with nucleophiles L{L = CNBut, PPh3, or P(OMe)3} to give monoalkyne derivatives (WBr2(CO)(RCCR′)L2](2). An intermediate bis-alkyne adduct [WBr2CO(MeCCMe)2(CNBut)] (3) was isolated in the reaction of [WBr2CO(MeCCMe)2]2 with CNBut illustrating that cleavage of the dimer (1) is the first stage in these reactions.  相似文献   

3.
Alcohols are oxidized by N‐methylmorpholine‐N‐oxide (NMO), ButOOH and H2O2 to the corresponding aldehydes or ketones in the presence of catalyst, [RuH(CO)(PPh3)2(SRaaiNR′)]PF6 ( 2 ) and [RuCl(CO)(PPh3)(SκRaaiNR′)]PF6 ( 3 ) (SRaaiNR′ ( 1 ) = 1‐alkyl‐2‐{(o‐thioalkyl)phenylazo}imidazole, a bidentate N(imidazolyl) (N), N(azo) (N′) chelator and SκRaaiNR′ is a tridentate N(imidazolyl) (N), N(azo) (N′), Sκ‐R is tridentate chelator; R and R′ are Me and Et). The single‐crystal X‐ray structures of [RuH(CO)(PPh3)2(SMeaaiNMe)]PF6 ( 2a ) (SMeaaiNMe = 1‐methyl‐2‐{(o‐thioethyl)phenylazo}imidazole) and [RuH(CO)(PPh3)2(SEtaaiNEt)]PF6 ( 2b ) (SEtaaiNEt = 1‐ethyl‐2‐{(o‐thioethyl)phenylazo}imidazole) show bidentate N,N′ chelation, while in [RuCl(CO)(PPh3)(SκEtaaiNEt)]PF6 ( 3b ) the ligand SκEtaaiNEt serves as tridentate N,N′,S chelator. The cyclic voltammogram shows RuIII/RuII (~1.1 V) and RuIV/RuIII (~1.7 V) couples of the complexes 2 while RuIII/RuII (1.26 V) couple is observed only in 3 along with azo reductions in the potential window +2.0 to ?2.0 V. DFT computation has been used to explain the spectra and redox properties of the complexes. In the oxidation reaction NMO acts as best oxidant and [RuCl(CO)(PPh3)(SκRaaiNR′)](PF6) ( 3 ) is the best catalyst. The formation of high‐valent RuIV=O species as a catalytic intermediate is proposed for the oxidation process. Copyright © 2014 John Wiley & Sons, Ltd.  相似文献   

4.
The reactions of K[HB(pz)3] (pz = pyrazol-1-yl) with the coordinatively unsaturated σ-vinyl complexes [Ru(CRCHR)Cl(CO)(PPh3)2] (R = H, Me, C6H5) proceed with loss of a chloride and a phosphine ligand to provide the compounds [Ru(CRCHR)(CO)(PPh3){HB(pz)3}] in high yield. Similar treatment of the complex [Ru(C6H4Me-4)Cl(CO)(PPh3)2] leads to the related σ-aryl derivative [Ru(C6H4Me-4)(CO)(PPh3){HB(pz)3}] whilst the complex [RuClH(CO)(PPh3)3] treated successively with diphenylbutadiyne and K[HB(pz)3] provides the unusual derivative [Ru{C(CCPh)CHPh}(CO)(PPh3){HB(pz)3}].  相似文献   

5.
Chiral tungsten(IV) aqua-oxo-alkyne complexes, [Tp'W(O)(H2O)(RC identical to CR)][OTf] (R = H (1); R = Me (2)); (Tp' = hydridotris(3,5-dimethylpyrazolyl)borate; OTf = trifluoromethanesulfonate), have been prepared by halide abstraction from iodide precursors. These cationic complexes have been characterized with triflate as the counteranion. The tautomeric dihydroxo isomer has not been observed. The neutral triflate adduct Tp'W(O)(OTf)(HC identical to CH) (3) has also been isolated. Cationic complexes 1 and 2 undergo deprotonation and isomerization when exposed to Al2O3 to give the dioxo-vinyl compounds Tp'W(O)2(CH=CH2) (6) and Tp'W(O)2[C(Me)=C(H)(Me)] (7), reflecting the conversion of the WIV(OH)(RC identical to CR) fragment to WVI(=O)(RC=CHR). The presumed intermediates, neutral oxo-hydroxo compounds Tp'W(O)(OH)(RC identical to CR) (R = H (9); R = Me (10)), can be accessed by deprotonation of 1 or 2 with NaOH. Conversion of 9 to 6 was achieved thermally upon heating at 100 degrees C for 2 days. X-ray structural data have provided solid-state structures of both the cationic aqua complex 2 and the dioxo-vinyl complex 6.  相似文献   

6.
[OsCl(CO)2(CNR)(PPh3)2]+ (R = p-tolyl) reacts with OMe? to give OsCl(CO2Me)(CO)(CNR)(PPh3)2 but reaction with SH? produces the π-bound p-tolylisothiocyanate complex, Os(η2-SCNR)(CO)2(PPh3)2, which can be protonated or methylated at N to yield complexes containing bidentate thiocarboxamido-ligands.  相似文献   

7.
Two procedures for the conversion of coordinated CS2 into CS ligands are described involving the intermediacy of either η2-carbonsulphide-telluride or hydridodithiomethoxycarbonyl complexes. The CS2 ligand in OsCl(NO)(CS2)(PPh3)2 is readily methylated to provide cationic dithiomethoxycarbonyl-containing complexes, which upon reduction with sodium hydrotelluride and sodium tetrahydroborate give OsX(NO)(CS)(PPh3)2 (X = Cl, I) and OsH2 (CS2Me)(NO)(PPh3)2, respectively. The latter reacts with electrophilic reagents (HCl, HI, I2) to give OsX(NO)(CS)(PPh3)2, the halide of which is labile and is easily extracted by silver salts, allowing coordination of neutral ligands and providing the cations [Os(NO)(CS)(PPh3)2L]+ (L = CO, PPh3). OsH2(CS2Me)(NO)(PPh3)2 and OsI(NO)(CS)(PPh3)2 react with an excess of I2 to give the ionic product [OsI2(NO)(CS)(PPh3)2]+I3.  相似文献   

8.
Reaction of Ru(CO)Cl(CHCHR)(PPh3)2 or Ru(CO)Cl(CHCHR)(PPh3)2L (L = py, Me2Hpz) with 1 equivalent of t-butyl isocyanide gives the alkenyl derivatives Ru(CO)Cl(CHCHR)(PPh3)2(t-BuNC). When an excess of isocyanide is used, further reaction results in intramolecular CO insertion to yield η1-acyl complexes [Ru(COCHCHR) (t-BuNC)3(PPh3)2]Cl. Related complexes were obtained from [Ru(CO)(CHCHR)(MeCN)2(PPh3)2]PF6 and an excess of isocyanide.  相似文献   

9.
The reactions of the organometallic 1,4-diazabutadienes, RN=C(R′)C(Me)=NR″ [R = R″ = p-C6H4OMe, R′ = trans-PdCl(PPh3)2 (DAB); R = p-C6H4OMe, R″ = Me, R′ = trans-PdCl(PPh3)2 (DABI; R = R″ = p-C6H4OMe, R′ = Pd(dmtc)-(PPh3), dmtc = dimethyldithiocarbamate (DABII); R = R″ = p-C6H4OMe, R′ = PdCl(diphos), diphos = 1,2-bis(diphenylphosphino)ethane (DABIII)] with [RhCl(COD)]2 (COD = 1,5-cyclooctadiene, Pd/Rh ratio = 12) depend on the nature of the ancillary ligands at the Pd atom in group R′. In the reactions with DAB and DABI transfer of one PPh3 ligand from Pd to Rh occurs yielding [RhCl(COD)(PPh3)] and the new binuclear complexes [Rh(COD) {RN=C(R?)-C(Me)=NR″}], in which the diazabutadiene moiety acts as a chelating bidentate ligand. Exchange of ligands between the two different metallic centers also occurs in the reaction with DABII. In this case, the migration of the bidentate dmtc anion yields [Rh(COD)Pdmtc] and [Rh(COD) {RN=C(R?)C(Me)=NR″}]. In contrast, the reaction with DABIII leads to the ionic product [Rh(COD)- (DABIII)][RhCl2(COD)], with no transfer of ligands. The cationic complex [Rh(COD)(DABIII)]+ can be isolated as the perchlorate salt from the same reaction (Pd/Rh ratio = 1/1) in the presence of an excess of NaClO4. In all the binuclear complexes the coordinated 1,5-cyclooctadiene can be readily displaced by carbon monoxide to give the corresponding dicarbonyl derivatives. The reaction of [RhCl(CO)2]2 with DAB and/or DABI yields trinuclear complexes of the type [RhCl(CO)2]2(DAB), in which the diazabutadiene group acts as a bridging bidentate ligand. Some reactions of the organic diazabutadiene RN=C(Me)C(Me)=NR (R = p-C6H4OMe) are also reported for comparison.  相似文献   

10.
Re(CO)2(NO)(PPh3)2 reacts with aroyl azides RCON3 (R = C6H5, p-CH3C6H4) in benzene to form isocyanate complexes of formula Re(CO)(NO)-(PPh3)2(RCONCO) (I). When the reaction is carried out in protic solvents such as ethanol, carbamoyl derivatives of formula Re(NCO)(NO)(PPh3)2-(CONHCOR) (II) are obtained, which give Re(NCO)(NO)(PPh3)2(CO)(NHCOR) when dissolved in chloroform, a terminal carbonyl ligand being formed from the carbamoyl group.I can be transformed into II by reaction with gaseous HCl, via [Re(CO)-(NO)(PPh3)2 {C(OH)=NCOR}]+Cl- followed by anion exchange with NaN3. II reacts with mineral acids HX (X = Cl, BF4) to give amide derivatives of formula [Re(NCO)(NO)(PPh3)2(CO)(NH2COR)]+ X- which when X = Cl can be easily transformed into Re(NCO)(NO)(PPh3)2(CO)Cl, the amide ligand being removed. Both the protonation reactions of I and II are reversible. IR and 1H NMR data of the new compounds and the mechanisms of formation of I and II are reported and discussed.  相似文献   

11.
Low yields of the ionic carbene complexes [Ir(RCNHMe)Cl(CO)(PPh3)2-(O3SCF3)]O3SCF3]O3SCF3 (R  Ph or PhCH2) have been isolated from the reactions of trans-[IrCl(CO)(PPh3)2] with the nitrilium triflate salts, [RCNMe]O3SCF3. The major products from these, and the similar reactions of the nitrilium salts where R  Me or But, are amorphous, yellow complexes [Ir(RCNHMe)Cl(CO)(PPh3)2O3SCF3.  相似文献   

12.
Reactions between 1-alkynes and RuCl(PPh3)2(η-C5H5) in the presence of NH4PF6 afford the cationic vinylidene complexes [Ru(C:CHR)(PPh3)2(η-C5H5)]PF6; these are readily deprotonated by base to give the η1-alkynyl derivatives Ru(CCR)(PPh3)2(η-C5H5). The latter may be protonated to reform the monosubstituted vinylidene complexes.  相似文献   

13.
Reactions of [RuHCl(CO)(B)(EPh3)2] (B = EPh3 or Py; E = P or As) and chalcones in benzene with equal molar ratio led to the formation of new complexes of the type [RuCl(CO)(EPh3)(B)(L1?4)] (B = PPh3, AsPh3 or Py; E = P or As; L = chalcone). The new complexes have been characterized by analytical and spectroscopic (IR-, electronic, 1H-, 31P-, and 13C-NMR) data. Based on these data, an octahedral structure has been assigned for all the complexes. The chalcones are monobasic bidentate (O,O) donors and coordinate to ruthenium via phenolic and carbonyl oxygen. The new complexes exhibit efficient catalytic activity for the transfer hydrogenation of carbonyl compounds. Antifungal properties of the ligands and their complexes have been examined and compared with standard Bavistin.  相似文献   

14.
The complexes [RuCl(CO)(PPh3)2(HBIm)] and [RuH(CO)(PPh3)2(1,10-phen)]Cl·H2O·(CH3)2O have been prepared and studied by IR and UV–Vis spectroscopy, and X-ray crystallography. The complexes were prepared in the reactions of [RuHCl(CO)(PPh3)3] with 2-(hydroxymethyl)benzimidazole or 1,10-phenanthroline two hydrate in acetone. The electronic spectra of the obtained compounds have been calculated using the TDDFT method. The luminescence properties of these complexes were examined.  相似文献   

15.
Mixed‐ligands hydride complexes [RuHCl(CO)(PPh3)2{P(OR)3}] ( 2 ) (R = Me, Et) were prepared by allowing [RuHCl(CO)(PPh3)3] ( 1 ) to react with an excess of phosphites P(OR)3 in refluxing benzene. Treatment of hydrides 2 first with triflic acid and next with an excess of hydrazine afforded hydrazine complexes [RuCl(CO)(κ1‐NH2NHR1)(PPh3)2{P(OR)3}]BPh4 ( 3 , 4 ) (R1 = H, CH3). Diethylcyanamide derivatives [RuCl(CO)(N≡CNEt2)(PPh3)2{P(OR)3}]BPh4 ( 5 ) were also prepared by reacting 2 first with HOTf and then with N≡CNEt2. The complexes were characterized spectroscopically and by X‐ray crystal structure determination of [RuHCl(CO)(PPh3)2{P(OEt)3}] ( 2b ).  相似文献   

16.
RuHCl(CO)2(PPh3)2 reacts with ethylene under mild conditions (25 psi, 80°C) to yield a propionyl derivative RuCl(C[O]C2H5)(CO)(PPh3)2 which is believed to be coordinatively unsaturated. Unlike the acetyl analogue, RuCl[C[O]C2H5(CO)-(PPh3)2 does not isomerize to RuCl(C2H5)(CO)2(PPh3)2 in solution. Under one atmosphere of carbon monoxide, RuCl(C[O]C2H5(CO)(PPh3)2 exists in equilibrium with two species believed to be RuCl(C[O]C2H5)(CO)2(PPh3)2 and [Ru(C[O]C2H5)(CO)3(PPh3)2]Cl. RuCl(C[O]C2H5)(CO)(PPh3)2 reacts with CO/ AgClO4 to give mer-[Ru(C[O]C2H5)(CO)3(PPh3)2]ClO4, p-tolylisocyanide (RNC) and NaClO4 to give cis-[Ru(C[O]C2H5)(CO)(CNR)2(PPh3)2ClO4, and hydrochloric acid to yield the hydroxycarbene complex, RuCl2(CO)(C[OH]C2H5)(PPh3)2.  相似文献   

17.
The known compounds N-(2,4-dinitrophenyl)-4,4′-bipyridinium (2,4-DNPhQ+), N-phenyl-4,4′-bipyridinium (PhQ+) and N-(4-acetylphenyl)-4,4′-bipyridinium (4-AcPhQ+) have been used to prepare a series of ruthenium complexes of the type [RuCl(CO)(PPh3)2(L)] (where, L = 2,4-DNPhQ+ or PhQ+ or 4-AcPhQ+). The latter complexes reacted with sulphur derivative to give [RuCl(CO)(PPh3)2(L)(L′)] (where, L′ = thio-9-xanthone). These new ruthenium complexes display intense, visible metal-to-ligand charge-transfer (MLCT) absorptions, due to dπ(Ru) → π*(pyridinium) excitations. The MLCT energy decreases as the acceptor strength increases in the order PhQ+ < 4-AcPhQ+ < 2,4-DNPhQ+. The new ruthenium complexes have been characterized by using standard analytical and spectroscopic techniques. Fluorescence and antibacterial activity of the ligands and appropriate complexes has also been carried out.  相似文献   

18.
The complexes of the type [ReH(CO)5–n(PMe3)n] (n = 4, 3) were reacted with aldehydes, CO2, and RC?CCOOMe (R = H, Me) to establish a phosphine-substitutional effect on the reactivity of the Re–H bond. In the series 1–3 , benzaldehyde showed conversion with only 3 to afford a (benzyloxy)carbonyltetrakis(trimethylphosphine)rhenium complex 4 . Pyridine-2-carbaldehyde allowed reaction with all hydrides 1–3 . With 1 and 2 , the same dicarbonyl[(pyridin-2-yl)methoxy-O, N]bis(trimethylphosphine)rhenium 5b was formed with the intermediacy of a [(pyridin-2-yl)methoxy-O]-ligated species and extrusion of CO or PMe3, respectively. The analogous conversion of 3 afforded the carbonyl[(pyridin-2-yl)methoxy-O,N]tris(trimethylphosphine)rhenium ( 1 ) 7b . While 1 did not react with CO2, 2 and 3 yielded under relatively mild conditions the formato-ligated [Re(HCO2)(CO)(L)(PMe3)3] species ( 8 (L = CO) and 9 (L = PMe3)). Methyl propiolate and methyl butynoate were transformed, in the presence of 1 , to [Re{C(CO2Me)?CHR}(CO)3(PMe3)2] systems ( 10a (R = H), and 10b (R = Me)), with prevailing α-metallation and trans-insertion stereochemistry. Similarly, HC≡CCO2Me afforded with 2 and 3 , the α-metallation products [Re{C(CO2Me)?CH2}(CO)(L)(PMe3)3] 11 (L = CO) and 12 (L = PMe3). The methyl butyonate insertion into 2 resulted in formation of a mixture of the (Z)- and (E)-isomers of [Re{C(CO2Me)?CHMe} (CO)2(PMe3)3] ( 13a , b ). In the case of the conversion of 3 with MeC?CCO2Me, a Re–H cis-addition product [Re{(E)-C(CO2Me)?CHMe}(CO)(PMe3)4] ( 14 ) was selectively obtained. Complex 11 was characterized by an X-ray crystal-structure analysis.  相似文献   

19.
A high-yield synthesis of trans-RuCl2(CS)(H2O)(PPh3)2 from RuCl2(PPh3)3 and CS2 is described. The coordinated water molecule is labile, and introduction of CNR (R  p-toyl or p-chlorophenyl) leads to yellow trans-RuCl2(CS)(CNR)(PPh3)2, which isomerises thermally to colourless cis-RuCl2(CS)(CNR)(PPh3)2. Reaction of AgClO4 with cis-RuCl2(CS)(CNR)(PPh3)2 gives [RuCl(CS)(CNR)(H2O)(PPh3)2]+, from which [RuCl(CS)(CO)(CNR)(PPh3)2]+ and [RuCl(CS)(CNR)2(PPh3)2]+ are derived. Reaction of trans-RuCl2(CS)(H2O)(PPh3)2 with sodium formate gives Ru(η2-O2CH)Cl(CS)(PPh3)2, which undergoes decarboxylation in the presence of (PPh3) to give RuHCl(CS)(PPh3)3. Ru(η2-O2CH)H(CS)(PPh3)2 and Ru(η2-O2CMe)-H(CS)(PPh3)2 are also described.  相似文献   

20.
Alkyl and Aryl Complexes of Iridium and Rhodium. XIX. Reaction of Carboxylic Acids with Selected Organo Compounds of Ir(I) and Rh(I): Formation of Arylhydrido, Carboxylatohydrido, and Carboxylato Derivatives cis-Arylhydridoiridium(III) complexes IrH(Ar)(O2CR)(CO)(PPh3)2 (R = Me: Ar = C6H5, 4-MeC6H4; R = Et: Ar = 4-MeC6H4, 2,4-Me2C6H3) could be prepared by oxidative addition of carboxylic acids to aryliridium(I) compounds Ir(Ar)(CO)(PPh3)2. Reaction of aliphatic carboxylic acids with alkyliridium(I) derivatives Ir(Alk)(CO)(PPh3)2 and Ir(Alk)[PhP(CH2CH2CH2PPh2)2] (Alk = CH2CMe3, CH2SiMe3) lead to dicarboxylatoiridium(III) hydrides IrH(O2CR)2(CO)(PPh3)2 (R = Me, Et, i-Pr) and IrH(O2CR)2[PhP(CH2CH2CH2PPh2)2] (R = Me, Et). Ir(4-MeC6H4CO2)(CO)(PPh3)2 was obtained from Ir(CH2SiMe3)(CO)(PPh3)2 and 4-MeC6H4CO2H. Interaction of organorhodium complexes Rh(R′)(CO)(PPh3)2 (R′ = CH2SiMe3, 4-MeC6H4) and Rh(R′)[PhP(CH2CH2CH2PPh2)2] (R′ = CH2CMe3, 4-MeC6H4) with aliphatic and aromatic carboxylic acids yielded carboxylatorhodium(I) compounds Rh(O2CR)(CO)(PPh3)2 (R = Me, t-Bu, 4-MeC6H4) and Rh(O2CR)[PhP(CH2CH2CH2PPh2)2] (R = Me, 4-MeC6H4).  相似文献   

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