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1.
The compound Ph2PN(H)PPh2 (I) reacts under special conditions with M(CO)6 (M  Cr, Mo), Fe(NO)2(CO)2 and Co(NO)(CO)3 to give the new complexes cis-M(CO)2[Ph2PN(H)PPh2]2 (III, IV), [Fe(NO)2(CO)Ph2P]2NH (V), [Fe(NO)2Ph2-PN(H)PPh2]2 (VI) and Co(NO)(CO)2Ph2PN(H)PPh2 (VII). Compound VI can also be prepared reacting V with I. For III and IV proton NMR spectra indicate some interaction between o-protons of the phenyl rings and cis-M(CO)2 groups. VI exists an eight-membered ring complex without a metal-metal bond. On the basis of spectroscopic data VII seems to exist in two conformers.  相似文献   

2.
Diphenylcyclopropenethione and dithienylcyclopropenethione react with (acetonitrile)3Cr(CO)3 under mild conditions with formation of (C3Ph2S)Cr(CO)5 and [C3(C4H3S)2S]Cr(CO)5, respectively. Using (η5-C5H5)(THF)Mn(CO)2 and diphenylcyclopropenethione a different type of complex with the stoichiometry (C3Ph2S)2Mn(C5H5)(CO)2 is obtained. A structure with a ligand containing two S bridges is proposed.  相似文献   

3.
Chemistry of Polyfunctional Molecules. 82. New Rhodium(1) Chelate Complexes with N,N-Bis(diphenylphosphino) alkyl- and -arylamines . [Rh(μ-Cl)(CO)2]2 ( 1 ) reacts with (Ph2P)2NR (2, a: R = C6H5, b: R = p-C6H4CH3) in a molar ratio of 1:2 to give the square plane, ionic complexes [Rh{(PH2P)2NR}2] [cis-Rh(CO)2Cl2] ( 3a, b ). By the reactions of [Rh(μ-Cl)(C8H12)]2(C8H12 = 1.5-Cyclooctadiene) (4) with (Ph2P)2NR ( 2a–d ) (c: R = CH3, d: R = C2H5) in the molar ratios of 1:4 the square plane 1:1 electrolytes [Rh{(Ph2P)2NR}2]Cl ( 5a–d ) are obtained. Upon treatment of 5a–d in dichloromethane with CO the complexes [Rh(CO){(Ph2P)2NR}2]Cl ( 6a–d ) are formed. They are only stable in solution and in CO atmosphere and were identified by infrared spectroscopy. The new complexes have been characterized, as far as possible, by conductometry, IR; FIR, Raman, 31P-NMR, and 1H-NMR spectra.  相似文献   

4.
Preparation and Properties of New Cationic Dienyl-isonitrile-dicarbonyl Complexes of Iron and Ruthenium The hydride abstraction from the η4-diene isonitrile metal dicarbonyls M(η4-dien)(CNR)(CO)2 (M = Fe, Ru; dien = C6H8 cyclohexadiene-1.3; C7H10 cycloheptadiene-1.3; R = Me, Et) with [Ph3C]BF4 lead to the η5-dienyl isonitrile dicarbonyl metal cations [M(η5-dienyl)(CNR)(CO)2]+ [dienyl = cyclohexa-2.4-dien-1-yl (C6H7), cyclohepta-2.4-dien-1-yl (C7H9)]. [Fe(η5? C8H9)(CNMe)(CO)2]+ (C8H9 = bicyclo[5.1.0]octa-3.5-dien-2-yl) is formed by protonation of Fe(η4? C8H8)(CNMe)(CO)2 (C8H8 = COT) under valency isomerization. The two cations [Fe(η5? C7H9)(CNMe)(CO)2]+ and [Fe(η5? C8H9)(CNMe)(CO)2]+ can be deprotonated with NEt3 to the neutral cycloheptatriene respectively COT complexes Fe(η4? C7H8)(CNMe)(CO)2 and Fe(η4? C8H8)(CNMe)(CO)2. The temperature dependent 13C-NMR spectra of [Fe(η5? C7H9)(CNMe)(CO)2]+ and [Ru(η5? C6H7)(CNMe)(CO)2]+ show the fluctional behaviour of these cations in solution. At low temperatures one CO group occupies the apical position of a square pyramid whereas the isonitrile ligand, the other CO group and the dienyl part are in the basal positions. The ΔG values of the CP exchange points out a higher activation energy as in the corresponding η4-diene metal complexes.  相似文献   

5.
Metal Complexes of Biologically Important Ligands. CXVII [1] Addition of the O'Donnell Reagent [Ph2C=NCHCO2Me] to Coordinated, Unsaturated Hydrocarbons of [(C6H7)Fe(CO)3]+, [C7H9Fe(CO)3]+, [(C7H7)M(CO)3]+ (M = Cr, Mo), and [(C2H4)Re(CO)5]+. α-Amino Acids with Organometallic Side Chains The addition of [Ph2C=NCHCO2Me] to [(C6H7)Fe(CO)3]+, [(C7H9)Fe(CO)3]+, [(C7H7)M(CO)3]+ (M = Cr, Mo) and [(C2H4)Re(CO)5]+ gives derivatives of α-amino acids with organometallic side chains. The structure of [(η4-C6H7)CH(N=CPh2)CO2Me]Fe(CO)3 was determined by X-ray diffraction. From the adduct of [Ph2C=NCHCO2Me] and [(C7H7)Mo(CO)3]+ the Schiff base of a new unnatural α-amino acid, Ph2C=NCH(C7H7)CO2Me, was obtained.  相似文献   

6.
A sonochemical procedure has enabled the synthesis of the new species (Fe(C5Ph5)(CO)2(C2H4)]PF6 via [Fe(C5Ph5(CO)2Et]. The reactivity of the new species towards two-electron ligand exchange provides a route to a series of new cationic species [Fe(C5Ph5)(CO)2L]PF6.  相似文献   

7.
Chemistry of Polyfunctional Molecules. 116 Hydrido-, Deuterido-, Thiolato-, and Chlororuthenium(II) Complexes of Bis(diphenylphosphino)amine Bis(diphenylphosphino)amine, [(C6H5)2P]2NH (dppa, 1 ), reacts with [Ru(cod)(cot)] (cod = η-1,5-cyclooctadiene, cot = η-1,3,5-cyclooctatriene) ( 2 ) in a molar ratio of 2 : 1 both in a hydrogen or deuterium atmosphere at room temperature to yield cis-[Ru(H)2(dppa)2] ( 3 ) and cis-[Ru(D)2(dppa)2] ( 3 a ), respectively. The dihydride complex 3 is very sensitive towards halogenated solvents: dissolution of 3 in CHCl3 or CH2Cl2 produces the monohydride compound trans-[RuCl(H)(dppa)2] ( 4 ). Treatment of 3 with a threefold excess of tert-butyl mercaptane, Me3CSH, at room temperature results in the formation of cis-[Ru(H)(SCMe3)(dppa)2] ( 5 ). Trans-[RuCl2(dppa)2] ( 7 ) can be synthesized by the interaction of [RuCl2(PPh3)3] ( 6 ) with one or two equivalents of 1 in CH2Cl2 solution. The NMR spectra of 3, 3 a, 4, 5 and 7 are discussed with respect to molecular stereochemistry and hydrogen-halogen exchange under simultaneous cis-trans rearrangement. In addition to 1H, 2H, 31P{1H}, and 31P NMR, the structures of the different complexes were also derived from 1R, Raman, and mass spectra. The NMR spectra simulation of 3 permits detailed assignments of spin-spin coupling constants. Crystals of cis-[Ru(H)(SCMe3)(dppa)2] ( 5 ) are monoclinic, space group P21/c, with a = 1 179.9(3), b = 2 228.0(4), c = 1 854.8(6) pm, β = 96.23(2)°, Z = 4, and Rw = 0.062. The structural analysis shows that ruthenium is coordinated by two bidentate organophosphine ligands and by one tert-butyl thiolate molecule. The metal bound hydrogen atom was not located. However, in agreement with 1H NMR, its position is trans to a phosphorus nucleus.  相似文献   

8.
The aurophilicity exhibited by AuI complexes depends strongly on the nature of the supporting ligands present and the length of the Au–element (Au—E) bond may be used as a measure of the donor–acceptor properties of the coordinated ligands. A binuclear iron–gold complex, [1,3‐bis(2,6‐diisopropylphenyl)imidazol‐2‐ylidene‐2κC2]dicarbonyl‐1κ2C‐(1η5‐cyclopentadienyl)gold(I)iron(II)(AuFe) benzene trisolvate, [AuFe(C5H5)(C27H36N2)(CO)2]·3C6H6, was prepared by reaction of K[CpFe(CO)2] (Cp is cyclopentadienyl) with (NHC)AuCl [NHC = 1,3‐bis(2,6‐diisopropylphenyl)imidazol‐2‐ylidene]. In addition to the binuclear complex, the asymmetric unit contains three benzene solvent molecules. This is the first example of a two‐coordinated Au atom bonded to an Fe and a C atom of an N‐heterocyclic carbene.  相似文献   

9.
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   

10.
On the Reactivity of Disilylphosphido Complexes of Iron and Ruthenium towards 2,4,6-t-Bu3C6H2AsCl2. Generation and Structures of Arsaphosphenyl Complexes, Diphospha-ariranes, Phosphadiarsiranes, and 1,2-Diphospha-3,4-diarsetanes The reaction of (η5-C5Me5)(CO)2Fe? P(SiMe3)2 ( 1a ) with 2,4,6-t-Bu3C6H2AsCl2 (= Aryl AsCl2) ( 6 ) leads to the formation of the heterocycles [(η5-C5Me5)(CO)2Fe? P]2As-Aryl ( 7a ), (η5-C5Me5)(CO)2Fe? P(As-Aryl)2 ( 8a ), and [(η5-C5Me5)(CO)2Fe? P-As-Aryl]2( 9a ). The instable arsaphosphenyl complex [(η5-C5Me5)(CO)2Fe? P?As-Aryl] can be intercepted as its Cr(CO)5-adduct 13a . Analogously the ring compounds (η5-C5Me5)(CO)2Ru? P]2(As-Aryl)( 7b ) and (η5-C5Me5)(CO)2Ru? P(As-Aryl)2 ( 8b ) are obtained by treatment of (η5-C5Me5)(CO)2Ru? P(SiMe3)2 ( 1b ) with 6 . Here again the primarily generated arsaphosphene has to be stabilized by coordination to Cr(CO)5 which gave E-(η5-C5Me5)(CO)2Ru? P[Cr(CO)5 = As-Aryl ( E-13b ) and its Z-isomer ( Z-13b ). A comparable reaction sequence furnished the phosphaarsenyl complex (η5-C5Me5)(CO)(PPh)3Fe? P[Cr(CO)5] = As-Aryl ( 13c ). The molecular structures of 7a and 9a were elucidated by x-ray diffraction analysis. The most interesting feature of 7a is the AsP2-triangle, in which the As? P(2) bond length (235,0(2) pm) is slightly elongated with respect to the As? P(1) distance (231,6(1) pm). This effect is presumably due to severe steric interactions at the cis-substituted As? P(2) bond. Molecule 9a displays the picture of a bended 1,2-diphospha-3,4-diarsetane (interplanar angle 137.6°) with its substituents in the all trans-orientation. The As? P and P? P separations are normal whereas the As? As bond (249,7(4) pm) is slightly widened with respect to the calculated value for a single bond (ca 244 pm).  相似文献   

11.
Novel Neutral and Cationic Mono‐Aziridine Complexes of the Type [CpMn(CO)2Az], [CpCr(NO)2Az]+, and [(Ph3P)(CO)4ReAz]+ via CO‐, Hydride‐, and Chloride‐Elimination Reactions The monoaziridine complexes 1 — 5 are obtained by three differently induced substitution reactions. The photolytically induced CO substitution reaction of [CpMn(CO)3] with 2, 2‐dimethylaziridine leads to the neutral N‐coordinate aziridine complex [Cp(CO)2Mn{$\overline{N(H)CMe2C}$ H2}] ( 1 ). The protonation of [(Ph3P)(CO)4ReH] with CF3SO3H and consecutive treatment with 2, 2‐dimethylaziridine or 2‐ethylaziridine gives the salt‐like aziridine complexes [(Ph3P)(CO)4Re{$\overline{N(H)CMe2C}$ H2}](CF3SO3) ( 2 ) or [(Ph3P)(CO)4Re{ H2}](CF3SO3) ( 3 ) by hydride elimination reactions. The like‐wise salt‐like complexes [Cp(NO)2Cr{$\overline{N(H)CMe2C}$ H2}](BF4) ( 4 ) and [Cp(NO)2Cr{ H2}](CF3SO3) ( 5 ) are synthesized from [CpCr(NO)2Cl] by chloride elimination with AgX (X = BF4, CF3SO3) in the presence of 2, 2‐dimethylaziridine or 2‐ethylaziridine, respectively. As a result of X‐ray structure analyses, the metal atoms are trigonal pyramidally ( 1, 4, 5 ) or octahedrally ( 2, 3 , cis‐position) configurated; the intact three‐membered rings coordinate through the distorted tetrahedrally configurated N atoms. All compounds 1‐5 are stable with respect to the directed thermal alkene elimination to give the corresponding nitrene complexes; the IR, 1H‐ and 13C{1H}‐NMR, and MS spectra are reported and discussed.  相似文献   

12.
The cluster [O3(CO)10(MeCN)2] reacts with (η-cyclopentadienyl)(η-pyrrolyl)iron [azaferrocene, Fe(C5H5)(C4H4N) under mild conditions to give the oxidative addition product [Os3H{(C4H3N)Fe(C5H5)}(CO)10]. The group (C4H3N)Fe(C5H5) acts as a three-electron donor through the ortho-metallated pyrrolyl ring. An analogous compounds, [Os3H{(C4H3N)Mn(CO)3}(CO)10], is obtained by the reaction of [Os3(CO)10(MeCN)2] with [Mn(η-pyrrolyl)(CO)3].  相似文献   

13.
Coordinatively Unsaturated Diiron Complexes: Synthesis and Crystal Structures of [Fe2(CO)4(μ‐H)(μ‐PtBu2)(μ‐Ph2PCH2PPh2)] and [Fe2(CO)4(μ‐CH2)(μ‐H)(μ‐PtBu2)(μ‐Ph2PCH2PPh2)] [Fe2(μ‐CO)(CO)6(μ‐H)(μ‐PtBu2)] ( 1 ) reacts spontaneously with dppm (dppm = Ph2PCH2PPh2) to give [Fe2(μ‐CO)(CO)4(μ‐H)(μ‐PtBu2)(μ‐dppm)] ( 2 c ). By thermolysis or photolysis, 2 c loses very easily one carbonyl ligand and yields the corresponding electronically and coordinatively unsaturated complex [Fe2(CO)4(μ‐H)(μ‐PtBu2)(μ‐dppm)] ( 3 ). 3 exhibits a Fe–Fe double bond which could be confirmed by the addition of methylene to the corresponding dimetallacyclopropane [Fe2(CO)4(μ‐CH2)(μ‐H)(μ‐PtBu2)(μ‐dppm)] ( 4 ). The reaction of 1 with dppe (Ph2PC2H4PPh2) affords [Fe2(μ‐CO)(CO)4(μ‐H)(μ‐PtBu2)(μ‐dppe)] ( 5 ). In contrast to the thermolysis of 2 c , yielding 3 , the heating of 5 in toluene leads rapidly to complete decomposition. The reaction of 1 with PPh3 yields [Fe2(CO)6(H)(μ‐PtBu2)(PPh3)] ( 6 a ), while with tBu2PH the compound [Fe2(μ‐CO)(CO)5(μ‐H)(μ‐PtBu2)(tBu2PH)] ( 6 b ) is formed. The thermolysis of 6 b affords [Fe2(CO)5(μ‐PtBu2)2] and the degradation products [Fe(CO)3(tBu2PH)2] and [Fe(CO)4(tBu2PH)]. The molecular structures of 3 , 4 and 6 b were determined by X‐ray crystal structure analyses.  相似文献   

14.
A bis(phosphine)borane ambiphilic ligand, [Fe(η5‐C5H4PPh2)(η5‐C5H4PtBu{C6H4(BPh2)‐ortho})] (FcPPB), in which the borane occupies a terminal position, was prepared. Reaction of FcPPB with tris(norbornene)platinum(0) provided [Pt(FcPPB)] ( 1 ) in which the arylborane is η3BCC‐coordinated. Subsequent reaction with CO and CNXyl (Xyl=2,6‐dimethylphenyl) afforded [PtL(FcPPB)] {L=CO ( 2 ) and CNXyl ( 3 )} featuring η2BC‐ and η1B‐arylborane coordination modes, respectively. Reaction of 1 or 2 with H2 yielded [PtH(μ‐H)(FcPPB)] in which the borane is bound to a hydride ligand on platinum. Addition of PhC2H to [Pt(FcPPB)] afforded [Pt(C2Ph)(μ‐H)(FcPPB)] ( 5 ), which rapidly converted to [Pt(FcPPB′)] ( 6 ; FcPPB′=[Fe(η5‐C5H4PPh2)(η5‐C5H4PtBu{C6H4(BPh‐CPh=CHPh‐Z)‐ortho}]) in which the newly formed vinylborane is η3BCC‐coordinated. Unlike arylborane complex 1 , vinylborane complex 6 does not react with CO, CNXyl, H2 or HC2Ph at room temperature.  相似文献   

15.
Iridium(I) and Iridium(III) Complexes with Triisopropylarsane as Ligand The ethene complex trans‐[IrCl(C2H4)(AsiPr3)2] ( 2 ), which was prepared from [IrCl(C2H4)2]2 and AsiPr3, reacted with CO and Ph2CN2 by displacement of ethene to yield the substitution products trans‐[IrCl(L)(AsiPr3)2] ( 3 : L = CO; 4 : L = N2). UV irradiation of 2 in the presence of acetonitrile gave via intramolecular oxidative addition the hydrido(vinyl)iridium(III) compound [IrHCl(CH=CH2)(CH3CN)(AsiPr3)2] ( 5 ). The reaction of 2 with dihydrogen led under argon to the formation of the octahedral complex [IrH2Cl(C2H4)(AsiPr3)2] ( 7 ), whereas from 2 under 1 bar H2 the ethene‐free compound [IrH2Cl(AsiPr3)2] ( 6 ) was generated. Complex 6 reacted with ethene to afford 7 and with pyridine to give [IrH2Cl(py)(AsiPr3)2] ( 8 ). The mixed arsane(phosphane)iridium(I) compound [IrCl(C2H4)(PiPr3)(AsiPr3)] ( 11 ) was prepared either from the dinuclear complex [IrCl(C2H4)(PiPr3)]2 ( 9 ) and AsiPr3 or by ligand exchange from [IrCl(C2H4)(PiPr3)(SbiPr3)] ( 10 ) und triisopropylarsane. The molecular structure of 5 was determined by X‐ray crystallography.  相似文献   

16.
Crystal structures are reported for four (2,2′‐bipyridyl)(ferrocenyl)boronium derivatives, namely (2,2′‐bipyridyl)(ethenyl)(ferrocenyl)boronium hexafluoridophosphate, [Fe(C5H5)(C17H15BN2)]PF6, (Ib), (2,2′‐bipyridyl)(tert‐butylamino)(ferrocenyl)boronium bromide, [Fe(C5H5)(C19H22BN3)]Br, (IIa), (2,2′‐bipyridyl)(ferrocenyl)(4‐methoxyphenylamino)boronium hexafluoridophosphate acetonitrile hemisolvate, [Fe(C5H5)(C22H20BN3O)]PF6·0.5CH3CN, (IIIb), and 1,1′‐bis[(2,2′‐bipyridyl)(cyanomethyl)boronium]ferrocene bis(hexafluoridophosphate), [Fe(C17H14BN3)2](PF6)2, (IVb). The asymmetric unit of (IIIb) contains two independent cations with very similar conformations. The B atom has a distorted tetrahedral coordination in all four structures. The cyclopentadienyl rings of (Ib), (IIa) and (IIIb) are approximately eclipsed, while a bisecting conformation is found for (IVb). The N—H groups of (IIa) and (IIIb) are shielded by the ferrocenyl and tert‐butyl or phenyl groups and are therefore not involved in hydrogen bonding. The B—N(amine) bond lengths are shortened by delocalization of π‐electrons. In the cations with an amine substituent at boron, the B—N(bipyridyl) bonds are 0.035 (3) Å longer than in the cations with a methylene C atom bonded to boron. A similar lengthening of the B—N(bipyridyl) bonds is found in a survey of related cations with an oxy group attached to the B atom.  相似文献   

17.
Alkylation of [Fe(S2C6H4)2(CO)2]2? with S(C2H4Br)2 yields loosing one CO ligand the monocarbonyl complex [Fe(dpttd)CO], where dpttd represents the dianion of the novel pentadentate thioether-thiol ligand dpttd-H2 = 2,3,11,12-dibenzo-1,4,7,10,13-pentathiatridecan. The extremely stable [Fe(dpttd)CO] forms several coordination isomers with different ν(CO) frequencies. Dependent on the reaction conditions, the thermal or photochemical reaction of [Fe(dpttd)CO] with N2H5OH yields [Fe(dpttd)(N2H4)2–3] or [Fe(dpttd)(N2H4)]·THF; the latter can also be obtained from [Fe(dpttd){P(OPh)3}] and N2H4 in THF at 5–10°C. The CO ligand of [Fe(dpttd)CO] can be substituted thermally by PMe3, PEt3, PMePh2 or P(OPh)3 yielding the corresponding phosphine and phosphite complexes, but CO substitution by PPh3 does not take place. Dissolution of [Fe(dpttd)(N2H4)2–3] in dimethyl sulfoxide (DMSO) leads to [Fe(dpptd)(DMSO)], which yields [Fe(dpttd)(DMF)] at 80°C in dimethyl formamide (DMF). [Fe(dpttd)CO] is stable to air in the solid state as well as in solution, however, it decomposes on oxidation by H2O2, I2, Br2 or N-bromosuccinimide loosing CO and with destruction of the sulfur ligand. All complexes are not very soluble or hardly soluble in all common solvents; this is also found for methyl-substituted [Fe(dpttd)CO], which is obtained from [Fe(S2C6Me4)2(CO)2]2? and S(C2H4Br)2. Oxidation or thermal decomposition of the N2H4 complexes yields [Fe(dpttd)]x, from which [Fe(dpttd)CO] regenerates rapidly on treatment with CO.  相似文献   

18.
Metal Sulfur Nitrogen Compounds. 20. Reaction Products of PdCl2 and Pd(CN)2 with S7NH. Preparation and Structure of the Complexes [Ph6P2N][Pd(S3N)(S5)] and X[Pd(S3N)(CN)2] X = [Me4N]+, [Ph4P]+ With PdCl2 and [Ph6P2N]OH S7NH forms the complex salt [Ph6P2N][Pd(S3N)(S5)], which could be isolated in two modifications (α- and β-form). The α-form is triclinic, a = 9.347(4), b = 14.410(8), c = 15.440(11) Å, α = 76.27°(5), β = 77.06°(4), γ = 76.61α(4), Z = 2, space group P1 . The β-form is orthorhombic, a = 9.333(2), b = 17.659(4), c = 23.950(6) Å, Z = 4. The structure of the metal complex is the same in the two modifications. One S3N? and one S52? are coordinate as chelate ligands to Pd. From S7NH, Pd(CN)2, and XOH X = [(CH3)4N]+ and [(C6H5)4P]+ the salts X[Pd(S3N)(CN)2] were formed. The (CH3)4N-salt is isomorphous with the analogous Ni compound described earlier, the (C6H5)4P-salt is triclinic, a = 9.372(4), b = 10.202(5), c = 13.638(6) Å, α = 86.36α(4), β = 85.66°(4), γ = 88.71°(4), Z = 2, space group P1 . One S3N? chelate ligand and two CN? ions are bound to Pd. In all these complexes the coordination of Pd is nearly square planar.  相似文献   

19.
The mixed‐amide phosphinates, rac‐phenyl (N‐methylcyclohexylamido)(p‐tolylamido)phosphinate, C20H27N2O2P, (I), and rac‐phenyl (allylamido)(p‐tolylamido)phosphinate, C16H19N2O2P, (II), were synthesized from the racemic phosphorus–chlorine compound (R,S)‐(Cl)P(O)(OC6H5)(NHC6H4p‐CH3). Furthermore, the phosphorus–chlorine compound ClP(O)(OC6H5)(NH‐cyclo‐C6H11) was synthesized for the first time and used for the synthesis of rac‐phenyl (benzylamido)(cyclohexylamido)phosphinate, C19H25N2O2P, (III). The strategies for the synthesis of racemic mixed‐amide phosphinates are discussed. The P atom in each compound is in a distorted tetrahedral (N1)P(=O)(O)(N2) environment. In (I) and (II), the p‐tolylamido substituent makes a longer P—N bond than those involving the N‐methylcyclohexylamido and allylamido substituents. In (III), the differences between the P—N bond lengths involving the cyclohexylamido and benzylamido substituents are not significant. In all three structures, the phosphoryl O atom takes part with the N—H unit in hydrogen‐bonding interactions, viz. an N—H...O=P hydrogen bond for (I) and (N—H)(N—H)...O=P hydrogen bonds for (II) and (III), building linear arrangements along [001] for (I) and along [010] for (III), and a ladder arrangement along [100] for (II).  相似文献   

20.
[CpR(OC)Mo(μ‐η2:2‐P2)2FeCpR′] as Educt for Heterobimetallic Dinuclear Clusters with P2 and CnRnP4‐n Ligands (n = 1, 2) The cothermolysis of [CpR(OC)Mo(μ‐η2:2‐P2)2FeCpR′] ( 1 ) and tBuC≡P ( 2 ) as well as PhC≡CPh ( 3 ) affords the heterobimetallic triple‐decker like dinuclear clusters [(Cp'''Mo)(Cp*′Fe)(P3CtBu)(P2)] ( 4 ), Cp''' = C5H2tBu3‐1,2,4, Cp*′ = C5Me4Et, and [(Cp*Mo)(Cp*Fe)(P2C2Ph2)(P2)] ( 5 ) with a bridging tri‐ and diphosphabutadiendiyl ligand. 4 and 5 have been characterized additionally by X‐ray crystallography.  相似文献   

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