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1.
The sandwich complexes bis(η6-naphthalene)molybdenum(0) ( 1 ), bis(η6-1-methylnaphthalene)molybdenum(0) ( 2 ), and bis(η6-1,4-dimethylnaphthalene)molybdenum(0) ( 3 ) are synthesized by cocondensation of Mo-atoms with the naphthalene ligands. Complexes 1–3 are also obtained by reduction of MoCl5 or MoCl4. 2THF with highly activated Mg in the presence of the naphthalene ligands. Mg was activated by sublimation of the metal in a simple rotating solution reactor. Complex 2 exists as a mixture of regio- and stereoisomers. Three regioisomers, 3a–c , are formed in reactions of Mo-atoms with 1,4-dimethylnaphthalene, whereas 3a , the isomer with the Mo-atom coordinated to the unsubstituted rings, is formed selectively via the reductive method. The ligands in 1–3 are highly labile. CO displaces both naphthalene rings in 2 and 3 to give [Mo(CO)6], while PF3, P(OMe)3, and PMe3 displace only one coordinated naphthalene in 1 to yield the [Mo(η6-naphthalene)L3] complexes 4–6 . In toluene, arene exchange is a competitive process in reactions of 1 with PF3. Complexes 5 (L = P(OMe)3) and 6 (L = PMe3) react with HBF4 to give the cationic metal hydride complexes 8 and 9 . The X-ray crystal structures of [Mo(η6-naphthalene) {P(OMe)3}3] ( 5 ) and [Mo(H)(η6-naphthalene) {P(OMe)3}3][BF4] ( 8 ) are reported.  相似文献   

2.
Cationic [Ru(η5-C5H5)(CH3CN)3]+ complex, tris(acetonitrile)(cyclopentadienyl)ruthenium(II), gives rise to a very rich organometallic chemistry. Combined with diimine ligands, and 1,10-phenanthroline in particular, this system efficiently catalyzes diazo decomposition processes to generate metal-carbenes which undergo a series of original transformations in the presence of Lewis basic substrates. Herein, syntheses and characterizations of [CpRu(Phen)(L)] complexes with (large) lipophilic non-coordinating (PF6 and BArF) and coordinating TRISPHAT-N anions are reported. Complex [CpRu(η6-naphthalene)][BArF] ( [1][BArF] ) is readily accessible, in high yield, by direct counterion exchange between [1][PF6] and sodium tetrakis[3,5-bis(trifluoromethyl)phenyl]borate (NaBArF) salts. Ligand exchange of [1][BArF] in acetonitrile generated stable [Ru(η5-C5H5)(CH3CN)3][BArF] ( [2][BArF] ) complex in high yield. Then, the desired [CpRu(Phen)(CH3CN)] ( [3] ) complexes were obtained from either the [1] or [2] complex in the presence of the 1,10-phenanthroline as ligand. For characterization and comparison purposes, the anionic hemilabile ligand TRISPHAT−N (TTN) was introduced on the ruthenium center, from the complex [3][PF6] , to quantitatively generate the desired complex [CpRu(Phen)(TTN)] ( [4] ) by displacement of the remaining acetonitrile ligand and of the PF6 anion. Solid state structures of complexes [1][BArF] , [2][BArF] , [3][BArF] , [3][PF6] and [4] were determined by X-ray diffraction studies and are discussed herein.  相似文献   

3.
Photolysis of (η5-C5H5Fe(CO)(CNMe)2]PF6 in the presence of excess nucleophiles resulted in efficient substitution of the carbonyl ligand, generating the new isocyanide complexes (η5-C5H5Fe(CNMe)2)(L)]PF6 (L = PPh3, AsPh3, SbPh3, pyridine, acetonitrile, and ethylene). Similar reactions of (η5-C5H5Fe(CO)2)(CNMe)PF6 led to sequential replacement of both carbony groups with the exception of L  ethylene. No evidence of photochemical isocyanide substitution was found. The same carbonyl complexes failed to reach with L thermally. In the absence of light, ethylene, pyridine, and acetonitrile complexes were found to disporportionate in the manner [η5-C5H5Fe(CNMe)(L)2]PF6→ [η5C5H5Fe(CNMe)2(L)]PF6 → [η5-C5H5Fe(CNMe)3]PF6 with the first rearrangement occurring much faster than the second. The new isocyanide complexes are characterized by their infrared and NMR (1H, 13C) spectra.  相似文献   

4.
A route to the stable hydrido-diene salts [(diene)RuHL3] PF6, (diene = cycloocta-l,5-diene, hexa-l,3-diene and buta-1,3-diene, L = PMe2 Ph; diene = cycloocta-l,5-diene, L = P(OMe)3, P(OCH2)3 CMe P(OMe)Ph2 and PMePh2) has been found and the structure of [RuH(C4H6)(PMe2Ph)3] PF6 has been determined by X-ray diffraction.  相似文献   

5.
The complexes trans-MCl2(PMe3)4 (M = Ru, Os) react with CO and P(OMe)3 to give the mono- and disubstituted derivatives trans,mer-MCl2(PMe3)3L (L = CO, P(OMe)3) and all-trans-MCl2(PMe3)2[P(OMe)3]2, respectively. On reaction of trans-RuCl2[P(OMe)3]4 with CO and PMe3, the compounds trans,mer-RuCl2[P(OMe)3]3(CO) and trans,cis,cis-RuCl2(PMe3)2[P(OMe)3]2 are synthesized. The reduction of MCl2(PMe3)2[P(OMe)3]2 with Na/Hg in benzene or toluene via {M(PMe3)2[P(OMe)3]2} as an intermediate leads to subsequent intermolecular addition of the arene and to the aryl(hydrido)metal complexes cis,trans,cis-MH(C6H5)(PMe3)2[P(OMe)3]2 (M = Ru, Os) and MH(C6H4CH3)(PMe3)2[P(OMe)3)2 (M = Os). For M = Ru, in the presence of P(OMe)3, the ruthenium(0) compound Ru(PMe3)2(P(OMe)3]3 is formed. The hydrido(phenyl) complexes react with equimolar amounts of Br2 or I2 by elimination of benzene to produce the dihalogenometal compounds cis,trans,cis-MX2(PMe3)2[P(OMe)3]2. The reaction of trans-RuCl2(PMe3)4 with Na/Hg in the presence of PPh3 leads to the ortho-metallated complex fac-RuH(η2-C6H4PPh2)(PMe3)3, which reacts with CH3I, CS2, COS and HCl to give the compounds mer-RuI(η2-C6H4PPh2)(PMe3)3, fac-Ru(SCHS)(η2-C6H4PPh2)(PMe3)3, fac-Ru(S2CO)(CO)(PMe3)3 and RuCl2(PMe3)3, respectively. The paramagnetic 17-electron complexes [MCl2(PMe3)nL4-n]PF6 are obtained on oxidation of MCl2(PMe3)nL4-n with AgPF6. Their UV spectra exhibit a characteristic CT band. [RuCl2(PMe3)4]PF6 and [OsCl2(PMe3)4]PF6 react with CO and P(OMe)3 by reduction to form the corresponding ruthenium(II) and osmium(II) compounds MCl2(PMe3)nL4-n.  相似文献   

6.
A series of ruthenium alkenylacetylide complexes trans-[Ru{C≡CC(=CH2)R}Cl(dppe)2] (R=Ph ( 1 a ), cC4H3S ( 1 b ), 4-MeS-C6H4 ( 1 c ), 3,3-dimethyl-2,3-dihydrobenzo[b]thiophene (DMBT) ( 1 d )) or trans-[Ru{C≡C-cC6H9}Cl(dppe)2] ( 1 e ) were allowed to react with the corresponding propargylic alcohol HC≡CC(Me)R(OH) (R=Ph ( A ), cC4H3S ( B ), 4-MeS-C6H4 ( C ), DMBT ( D ) or HC≡C-cC6H10(OH) ( E ) in the presence of TlBF4 and DBU to presumably give alkenylacetylide/allenylidene intermediates trans-[Ru{C≡CC(=CH2)R}{C=C=C(Me)}(dppe)2]PF6 ([ 2 ]PF6). These complexes were not isolated but deprotonated to give the isolable bis(alkenylacetylide) complexes trans-[Ru{C≡CC(=CH2)R}2(dppe)2] (R=Ph ( 3 a ), cC4H3S ( 3 b ), 4-MeS-C6H4 ( 3 c ), DMBT ( 3 d )) and trans-[Ru{C≡C-cC6H9}2(dppe)2] ( 3 e ). Analogous reactions of trans-[Ru(CH3)2(dmpe)2], featuring the more electron-donating 1,2-bis(dimethylphosphino)ethane (dmpe) ancillary ligands, with the propargylic alcohols A or C and NH4PF6 in methanol allowed isolation of the intermediate mixed alkenylacetylide/allenylidene complexes trans-[Ru{C≡CC(=CH2)R}{C=C=C(Me)}(dmpe)2]PF6 (R=Ph ([ 4 a ]PF6), 4-MeS-C6H4 ([ 4 c ]PF6). Deprotonation of [ 4 a ]PF6 or [ 4 c ]PF6 gave the symmetric bis(alkenylacetylide) complexes trans-[Ru{C≡CC(=CH2)R}2(dmpe)2] (R=Ph ( 5 a ), 4-MeS-C6H4 ( 5 c )), the first of their kind containing the dmpe ancillary ligand sphere. Attempts to isolate bis(allenylidene) complexes [Ru{C=C=C(Me)R}2(PP)2]2+ (PP=dppe, dmpe) from treatment of the bis(alkenylacetylide) species 3 or 5 with HBF4 ⋅ Et2O were ultimately unsuccessful.  相似文献   

7.
Visible light irradiation of cation [(η5-C6H7)Fe(η-C6H6)]+ (1+) in acetonitrile results in substitution of the benzene ligand giving the labile acetonitrile derivative [(η5-C6H7)Fe(MeCN)3]+ (2a+). The stable isonitrile and phosphite complexes [(η5-C6H7)FeL3]+ [L = tBuNC (2b+), P(OMe)3 (2c+), P(OEt)3 (2d+)] were obtained by reaction of 1 with L in MeCN. The structures of 2cPF6, [CpFe(η-C6H6)]PF6 (3PF6), and Cp1Fe(η-C6H6)]PF6 (4PF6) were determined by X-ray diffraction.The redox activity of the cyclohexadienyl complexes 1+, 2b+?2d+ has been investigated by electrochemical techniques and compared with that of the related cyclopentadienyl complexes 3+ and 4+. DFT calculations of the redox potentials and the respective geometrical changes were performed.Variable temperature Mössbauer (ME) spectroscopy has elucidated the relationship between structure and formal oxidation state of the iron atom in these complexes. In the case of 3+ an unexpected pair of crystallographic changes has been observed and interpreted in terms of both a second and first order phase transition. The mean-square-amplitude-of-vibration of the metal atom has been compared between the ME and X-ray data. ME measurements in a magnetic field have shown that in 4+ the quadrupole splitting is positive as it is in ferrocene.  相似文献   

8.
Synthetic routes for complexes of the type π-C5H5Ni[P(OR)3]X have been developed. Nickelocene reacts with tertiary phosphites P(OR)3 in the presence of CX4 to give the complexes for which R = Me, Ph; X = Cl, and R = Ph; X = Br. π-C5H5Ni(CO)I reacts with P(OR)3 to give the complexes for which R = Me, Et, Ph. [π-C5H5Ni(P(OMe)3)2]Cl is also formed in the preparation of π-C5H5Ni[P(OMe)3]Cl from nickelocene; the corresponding [π-C5H5Ni(P(OEt)3)2]I is obtained from π-C5H5Ni[P(OEt)3]I and P(OEt)3. π-C5H5Ni[P(OMe)3]X (X = Cl, I) react with P(OMe)3 to give π-C3H5Ni[P(OMe)3] [P(O)(OMe)2] in quantitative yields, but with P(OEt)3 and P(OPh)3 π-C5H5Ni[P(OEt)3] [P(O)(OMe)2] respectively π-C5H5Ni[P(OPh)3] [P(O)-(OMe)2] are obtained as the main products. The complex (t-C4H9C5H4)Ni[P(OMe)3] [P(O) (OMe)2] can be synthesized by the same route. The course of the reactions of π-C5H5Ni[P(OR)3]X and P(OR′)3 has been investigated in some detail. Intermediate compounds {C5H5Ni[P(OR)3] [P(OR′)3]X} with a π-bonded cyclo- pentadienyl ligand have been detected at low temperatures by 1H- and 13C-NMR.-spectroscopy. They are stable up to about ?10° and react at higher temperatures smoothly to π-C5H5Ni[P(OR)3] [P(O) (OR′)3] and R′X. The structure proposed for the intermediates suggests that the mechanism of formation of the nickel phosphonate complexes is quite similar to that of the Michaelis-Arbuzov reaction.  相似文献   

9.
Reaction of [(η-C7H7)Mo(CO)3][PF6] with certain Group V donor ligands afforded monosubstituted complexes [(η-C7H7)Mo(CO)2L][PF6] (L = P(OPh)3, PPh3, PPh2Me, PPhMe2, AsPh3, SbPh3). These were reduced by NaBH4 to the corresponding cycloheptatriene complexes (1-6-η-C7H8)Mo(CO)2L. In addition, the preparation of alkylcycloheptatriene complexes (1-6-η-C7H7R)Mo(CO)2L (R = Me, L = P(OPh)3, PPh3, PPh2Me; R = t-Bu, L = PPh3) is described. Spectroscopic properties, including 13C NMR, are reported.  相似文献   

10.
Metal Complexes with Anionic Ligands of Main Group IV Elements. XI. Substitution Reactions of Trichlorogermide and Trichlorostannide Ions with Metaltrifluorophosphine Complexes The photochemical reactions of [SnCl3]? in THF with the metal(0)-trifluorophosphine complexes of Ni, Fe, and Mo result in [Ni(PF3)3SnCl3]?, [Fe(PF3)3(SnCl2]?, and [Mo(PF3)5SnCl3]?. [GeCl3]?, in substitution reactions not as reactive as [SnCl3]?, does react under similar conditions with Fe(NO)2(PF3)2 only, to yield [Fe(NO)2(PF3)GeCl3]?. With CpMn(PF3)3 (Cp = h5-C5H5) by the intermediatly formed CpMn(PF3)2THF both substitution derivatives [CpMn(PF3)2ECl3]? (E = Ge, Sn) are found. The metallate(0) complexes are isolated as [As(C6H5))4]+- and [N(C2H5)4]+ -salts; the i.r.- and 19F-n.m.r.-spectra are reported.  相似文献   

11.
The cyclopentadienylcobalt(I) compounds C5H5Co(PMe3)P(OR)3 (R = Me, Et, Pri) and C5H5Co(C2H4)L (L = PMe3, P(OMe)3, CO) are prepared by ligand substitution starting from C5H5Co(PMe3)2 and C5H5Co(C2H4)2. Whereas the reaction of C5H5Co(PMe3)P(OMe)3 with CH2Br2 mainly gives [C5H5CoBr(PMe3)P(OMe)3]Br, the dihalogenocobalt(III) complexes C5H5CoX2(PMe3) (X = Br, I) are obtained from C5H5Co(CO)PMe3 and CH2X2. Treatment of C5H5Co(CO)PMe3 or C5H5Co(C2H4)PMe3 with CH2ClI at low temperatures produces a mixture of C5H5CoCH2Cl(PMe3)I and C5H5CoCl(PMe3)I, which can be separated due to their different solubilities. The same reaction in the presence of ligand L gives the carbenoidcobalt(III) compounds [C5H5CoCH2Cl(PMe3)L]PF6 in nearly quantitative yields. If NEt3 is used as the Lewis base, the ylide complexes [C5H5Co(CH2PMe3)(PMe3)X]PF6 (X = Br, I) are obtained. The PF6 salts of the dications [C5H5Co(CH2PMe3)(PMe3)L]2+ (L = PMe3, P(OMe)3, CNMe) and [C5H5Co(CH2PMe3)(P(OMe)3)2]2+ are prepared either from [C5H5Co(CH2PMe3)(PMe3)X]+ and L, or more directly from C5H5Co(CO)PMe3, CH2X2 and PMe3 or P(OMe)3, respectively. The synthesis of C5H5CoCH2OMe(PMe3)I is also described.  相似文献   

12.
The influence of the potentially chelating imino group of imine‐functionalized Ir and Rh imidazole complexes on the formation of functionalized protic N‐heterocyclic carbene (pNHC) complexes by tautomerization/metallotropism sequences was investigated. Chloride abstraction in [Ir(cod)Cl{C3H3N2(DippN=CMe)‐κN3}] ( 1 a ) (cod=1,5‐cyclooctadiene, Dipp=2,6‐diisopropylphenyl) with TlPF6 gave [Ir(cod){C3H3N2(DippN=CMe)‐κ2(C2,Nimine)}]+[PF6]? ( 3 a +[PF6]?). Plausible mechanisms for the tautomerization of complex 1 a to 3 a +[PF6]? involving C2?H bond activation either in 1 a or in [Ir(cod){C3H3N2(DippN=CMe)‐κN3}2]+[PF6]? ( 6 a +[PF6]?) were postulated. Addition of PR3 to complex 3 a +[PF6]? afforded the eighteen‐valence‐electron complexes [Ir(cod)(PR3){C3H3N2(DippN=CMe)‐κ2(C2,Nimine)}]+[PF6]? ( 7 a +[PF6]? (R=Ph) and 7 b +[PF6]? (R=Me)). In contrast to Ir, chloride abstraction from [Rh(cod)Cl{C3H3N2(DippN=CMe)‐κN3}] ( 1 b ) at room temperature afforded [Rh(cod){C3H3N2(DippN=CMe)‐κN3}2]+[PF6]? ( 6 b +[PF6]?) and [Rh(cod){C3H3N2(DippN=CMe)‐κ2(C2,Nimine)}]+[PF6]? ( 3 b +[PF6]?) (minor); the reaction yielded exclusively the latter product in toluene at 110 °C. Double metallation of the azole ring (at both the C2 and the N3 atom) was also achieved: [Ir2(cod)2Cl{μ‐C3H2N2(DippN=CMe)‐κ2(C2,Nimine),κN3}] ( 10 ) and the heterodinuclear complex [IrRh(cod)2Cl{μ‐C3H2N2(DippN=CMe)‐κ2(C2,Nimine),κN3}] ( 12 ) were fully characterized. The structures of complexes 1 b , 3 b +[PF6]?, 6 a +[PF6]?, 7 a +[PF6]?, [Ir(cod){C3HN2(DippN=CMe)(DippN=CH)(Me)‐κ2(N3,Nimine)}]+[PF6]? ( 9 +[PF6]?), 10? Et2O ? toluene, [Ir2(CO)4Cl{μ‐C3H2N2(DippN=CMe)‐κ2(C2,Nimine),κN3}] ( 11 ), and 12? 2 THF were determined by X‐ray diffraction.  相似文献   

13.
The metal-controlled self-assembly of organometallic molecular cylinders from a series of imidazo[1,5-a]pyridine-based tris-NHC ligands is described in this report. The imidazo[1,5-a]pyridinium salts H3- L (PF6)3 ( L = 4 a – 4 c ) were treated with 1.5 equivalents of Ag2O to yield the trinuclear AgI hexacarbene cages [Ag3( L )2](PF6)3 ( L = 4 a – 4 c ), in which three AgI are sandwiched between the two tricarbene ligands. The silver(I) complexes [Ag3( L )2](PF6)3 underwent a facile transmetalation reaction in the presence of 3 equivalents of [AuCl(tht)] (tht=tetrahydrothiophene) to furnish the trinuclear AuI cylinder-like cages [Au3( L )2](PF6)3 ( L = 4 a – 4 c ) without destruction of the metallosupramolecular structure. The new hexacarbene assemblies feature a large cavity that can easily accommodate a molecule of dimethyl sulfoxide as molecular guest. This is the first study of a unique “host–guest” system containing an organometallic cylinder-like cage derived exclusively from poly-NHC ligands.  相似文献   

14.
Metal Trifluorophosphine Complexes. XXXV. Alkyl-tetrakis(trifluorophosphine)cobalt Complexes. The preparation of the alkyl-tetrakis(trifluorophosphine)cobalt complexes RCo(PF3)4 (R = CH3 C2H5, C7H7) starting from [Co(PF3)4]? is only possible with very strong alkylating agents like oxonium salts, due to the low nucleophilicity of [Co(PF3)4]? anion. The complexes with R = CH3 and C2H5 are unpolar, very volatile, and thermally much more stable than the corresponding carbonyl complexes RCo(CO4). From spectroscopic studies a trigonal-bipyramidal structure is deduced. The electronegativity of the Co(PF3)4 part has been determined by NMR-measurements, which stress the unpolar nature of the carbon-cobalt bond.  相似文献   

15.
Reaction of NaBH4 with [IndCpMo(dppe)](BF4)2 (1) in acetone yields [IndMo(η4-C5H6)(dppe)]BF4 (2) quantitatively. The hydride addition takes place at the external face of the Cp ring. Dissolution of 2 in dichloromethane gives [IndMo(η4-C5H5-exo-CH2Cl)(dppe)]BF4, as confirmed by elemental analysis, IR and 1H NMR spectroscopy. The similar dication [IndCpMo{P(OMe)3}2](BF4)2 (4) reacts with NaBH4, in a solvent dependent manner. In acetonitrile, [IndMo(η4-C5H6){P(OMe)3}2]BF4 (5) is obtained and in acetone a P(OMe)3 ligand is lost resulting in the asymmetric phosphite-hydride, [IndCpMoH{P(OMe)3}]+ (6). The molecular structures of [IndMo(η4-C5H6){P(OMe)3}2]PF6 and [IndCpMoH{P(OMe)3}]PF6 were characterized by single-crystal X-ray diffraction.  相似文献   

16.
New series of half-sandwich ruthenium(II) complexes supported by a group of bidentate pyridylpyrazole and pyridylimidazole ligands [(η6-C6H6)Ru(L2)Cl][PF6] (1), [(η6-C6H6)Ru(HL3)Cl][PF6] (2), [(η6-C6H6)Ru(L4)Cl][PF6] (3), and [(η6-C6H6)Ru(HL5)Cl][PF6] (4) [L2, 2-[3-(4-chlorophenyl)pyrazol-1-ylmethyl]pyridine; HL3, 3-(2-pyridyl)pyrazole; L4, 1-benzyl-[3-(2′-pyridyl)]pyrazole; HL5, 2-(1-imidazol-2-yl)pyridine] are reported. The molecular structures of 1-4 both in the solid state by X-ray crystallography and in solution using 1H NMR spectroscopy have been elucidated. Further, the crystal packing in the complexes is stabilized by C-H?X (X = Cl and π), N-H?Cl, and π-π interactions.  相似文献   

17.
Di-η6-naphthalenechromium(0) (1) reacts at 150°C with benzene to yield (η6-naphthalene)(η6-benzene)chromium(0) (3) in 76% yield. In the presence of THF, 1 undergoes Lewis base catalyzed arene exchange at 80°C. Reactions of 1 with substituted arenes yield the mixed sandwich complexes 4 and 6–10 (arene = 1,4-C6H4Me2, 1,3,5-C6H3Me3, C6Me6, 1,4-C6H4(OMe)2, 1,4-C6H4F2 and 1,4-C10H6Me2). In all but one case (with 1,4-dimethylnaphthalene) exchange of a single naphthalene ligand is observed. In marked contrast to the lability of 1, dimesitylenechromium(0) (5) is inert to arene displacement in benzene up to 240°C. The molecular structure of 3 has been determined by X-ray crystallography. The crystal data are as follows: a 7.784(1), b 13.411(2), c 22.772(5) Å, Z = 8, space group Pbca. The structure was refined to a Rw value of 0.043. The naphthalene ligand in 3 is nearly planar and parallel to the approximately eclipsed benzene ring. Metal atom-ring distances are 1.631(9) and 1.611(4) Å for naphthalene and benzene, respectively. Catalyzed and uncatalyzed naphthalene exchanges in the sandwich complex are compared to the analogous reactions with the Cr(CO)3 complex 2. Naphthalene exchange in 2 in benzene is 103 to 104 times faster than arene exchange in other arenetricarbonylchromium compounds. The mild conditions for Lewis base catalyzed naphthalene exchange make 2 a good precursor of other arenetricarbonylchromium compounds. Examples include the Cr(CO)3 complexes of styrene, benzocyclobutene, 1-ethoxybenzocyclobutene, 1,8-dimethoxy-9,10-dihydroanthracene and 1,4-dimethylnaphthalene.  相似文献   

18.
The two new title complexes, [Cu(N3)(dpyam)2]PF6 (dpyam is di‐2‐pyridylamine, C10H11N3), (I), and [Cu(N3)(dpyam)2]Cl·4H2O, (II), respectively, have been characterized by single‐crystal X‐ray diffraction. Both complexes display a distorted square‐pyramidal geometry. Each Cu atom is coordinated in the basal plane by three dpyam N atoms and one azide N atom in equatorial positions, and by another N atom from the dpyam group in the apical position. In complex (I), the one‐dimensional supra­molecular architecture is assembled via hydrogen‐bonding inter­actions between the amine N atom and terminal azide N atoms and the F atoms of the PF6 anion. For complex (II), hydrogen‐bonding inter­actions between the amine N atom, the Cl anion and water O atoms result in a two‐dimensional lattice.  相似文献   

19.
The mononuclear η5-cyclopentadienyl complexes [(η5-C5H5)Ru(PPh3)2Cl], [(η5-C5H5)Os(PPh3)2Br] and pentamethylcyclopentadienyl complex [(η5-C5Me5)Ru(PPh3)2Cl] react in the presence of 1 eq. of the tetradentate N,N′-chelating ligand 3,5-bis(2-pyridyl)pyrazole (bpp-H) and 1 eq. of NH4PF6 in methanol to afford the mononuclear complexes [(η5-C5H5)Ru(PPh3)(bpp-H)]PF6 ([1]PF6), [(η5-C5H5)Os(PPh3)(bpp-H)]PF6 ([2]PF6) and [(η5-C5Me5)Ru(PPh3)(bpp-H)]PF6 ([3]PF6), respectively. The dinuclear η5-pentamethylcyclopentadienyl complexes [(η5-C5Me5)Rh(μ-Cl)Cl]2 and [(η5-C5Me5)Ir(μ-Cl)Cl]2 as well as the dinuclear η6-arene ruthenium complexes [(η6-C6H6)Ru(μ-Cl)Cl]2 and [(η6-p-iPrC6H4Me)Ru(μ-Cl)Cl]2 react with 2 eq. of bpp-H in the presence of NH4PF6 or NH4BF4 to afford the corresponding mononuclear complexes [(η5-C5Me5)Rh(bpp-H)Cl]PF6 ([4]PF6), [(η5-C5Me5)Ir(bpp-H)Cl]PF6 ([5]PF6), [(η6-C6H6)Ru(bpp-H)Cl]BF4 ([6]BF4) and [(η6-p-iPrC6H4Me)Ru(bpp-H)Cl]BF4 ([7]BF4). However, in the presence of 1 eq. of bpp-H and NH4BF4 the reaction with the same η6-arene ruthenium complexes affords the dinuclear salts [(η6-C6H6)2Ru2(bpp)Cl2]BF4 ([8]BF4) and [(η6-p-iPrC6H4Me)2Ru2(bpp)Cl2]BF4 ([9]BF4), respectively. These compounds have been characterized by IR, NMR and mass spectrometry, as well as by elemental analysis. The molecular structures of [1]PF6, [5]PF6 and [8]BF4 have been established by single crystal X-ray diffraction studies and some representative complexes have been studied by UV–vis spectroscopy.  相似文献   

20.
《Polyhedron》2005,24(3):391-396
The reaction of [(η5-C5Me5)Ru(PPh3)2Cl] (1) with acetonitrile in the presence of excess NH4PF6 leads to the formation of the cationic ruthenium(II) complex [(η5-C5Me5)Ru(PPh3)2(CH3CN)]PF6 (2). The complex (2) reacts with a series of N,N′ donor Schiff base ligands viz. para-substituted N-(pyrid-2-ylmethylene)-phenylamines (ppa) in methanol to yield pentamethylcylopentadienyl ruthenium(II) Schiff base complexes of the formulation [(η5-C5Me5)Ru(PPh3)(C5H4N-2-CHN-C6H4-p-X)]PF6 [3a]PF6–[3f]PF6, where C5Me5 = pentamethylcylopentadienyl, X = H, [3a]PF6, Me, [3b]PF6, OMe, [3c]PF6, NO2, [3d]PF6, Cl, [3e]PF6, COOH, [3f]PF6. The complexes were isolated as their hexafluorophosphate salts. The complexes were fully characterized on the basis of elemental analyses and NMR spectroscopy. The molecular structure of a representative complex, [(η5-C5Me5)Ru(PPh3)(C5H4N-2-CHN-C6H4-p-Cl)]PF6 [3e]PF6, has been established by X-ray crystallography.  相似文献   

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