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1.
A pentakis benzimidazole based penta-amide ligand diethylenetriamine—N,N,N′,N′,N″-pentakis(2-methyl benzimidazolyl)penta-amide [GBDTPA] has been synthesized and utilized to prepare Mn (II) complexes of general composition [Mn2(GBDTPA)X4], where X is an exogenous anionic ligand (X = Cl, NO3 and Br). The oxidation of alcohols has been investigated using [Mn2(GBDTPA)Cl4] as the catalyst and TBHP as an alternate source of oxygen. The respective aldehydic products have been isolated and characterized by 1H NMR.  相似文献   

2.
The reactions of the divalent species (ArO)2M (Ar=2,4,6-[(CH3)2NCH2]3C6H2; M=Ge, Sn) with either Me3SiN3, elemental S8, Se or transition metal complexes M′(CO)n+1 (M′=Fe, n=4; M′=Cr, W; n=5) (Ph3P)2Pt·C2H4 have resulted in the isolation of either the new stable formal metallanimines (ArO)2M=N–SiMe3, germanethione, -selone (ArO)2Ge=E (E=S, Se) (the expected formations of the stannanethione and -selone were not observed), or the (ArO)2M=M′(CO)n, (ArO)2M=Pt(PPh3)2 complexes, respectively. The direct oxidation of the (ArO)2M species with various oxidizing agents led to the formation of the corresponding metalloxanes [(ArO)2M–O–]2. All of the chalcogenido- and transition metal–metal 14 complexes have been physicochemically and chemically characterized. The reactions of the (ArO)2Ge=E (E=S, Se) compounds with 3,5-di-tert-butyl-1,2-benzoquinone produced, by extrusion of sulfur or selenium, the dioxametalloles corresponding to the formal addition of the divalent species (ArO)2M to the benzoquinone. A substitution reaction of chalcogen (S/Se) has been observed permitting to go from germaneselone to germanethione.  相似文献   

3.
Synthesis and Crystal Structure of [(Ph3PAu)3NPPh3][PF6]2, a Gold(I) Phosphoraneiminato Complex The photolytic reaction of Ph3PAuN3 with Cr(CO)6 in THF yields the phosphoraneiminato complex [(Ph3PAu)3NPPh3]2+ in low yield as well as the cluster cation [(Ph3PAu)8]2+ as the main product. The phosphoraneiminato complex crystallizes from CH2Cl2 with [PF6]? ions as [(Ph3PAu)3NPPh3][PF6]2·CH2Cl2 in the triclinic space group with a = 1200.8(1), b = 1495.6(2), 2053.5(5), α = 86.97(2)°, β = 82.79(1)°, γ = 81.87(2)°, and Z = 2. The phosphoraneiminato ligand bridges through its N atom three Au atoms, which itself are connected to each other by weak aurophilic interactions.  相似文献   

4.
Six polynuclear chlorobismuthates are formed in the reaction between BiCl3 and Ph4PCl by variation of the molar ratio of the educts, the solvents and the crystallisation methods: [Ph4P]3[Bi2Cl9] · 2 CH2Cl2, [Ph4P]3[Bi2Cl9] · CH3COCH3, [Ph4P]2[Bi2Cl8] · 2 CH3COCH3, [Ph4P]4[Bi4Cl16] · 3 CH3CN, [Ph4P]4[Bi6Cl22], and [Ph4P]4[Bi8Cl28]. We report the crystal structure of [Ph4P]3[Bi2Cl9] · 2 CH2Cl2 which crystallises with triclinic symmetry in the S. G. P1 No. 2, with the lattice parameters a = 13.080(3) Å, b = 14.369(3) Å, c = 21.397(4) Å, α = 96.83(1)°, β = 95.96(1)°, γ = 95.94(2)°, V = 3943.9(1) Å3, Z = 2. The anion is formed from two face‐sharing BiCl6‐octahedra. [Ph4P]2[Bi2Cl8] · 2 CH3COCH3 crystallises with monoclinic symmetry in the S. G. P21/n, No. 14, with the lattice parameters a = 14.045(5) Å, b = 12.921(4) Å, c = 17.098(3) Å, β = 111.10(2)°, V = 2894.8(2) Å3, Z = 2. The anion is a bi‐octahedron of two square‐pyramids, joined by a common edge. The octahedral coordination is achieved with two acetone ligands. [Ph4P]4[Bi4Cl16] · 3 CH3CN crystallises in the triclinic S. G., P1, No. 2, with the lattice parameters a = 14.245(9) Å, b = 17.318(6) Å, c = 24.475(8) Å, α = 104.66(3)°, β = 95.93(3)°, γ = 106.90(4)°, V = 5486(4) Å3, Z = 2. Two Bi2Cl8 dimers in syn‐position form the cubic anion. Lattice parameters of [Ph4P]3[Bi2Cl9] · CH3COCH3 are also given. The solvated compounds are desolvated at approximately 100 °C. [Ph4P]3[Bi2Cl9] · 2 CH2Cl2 and [Ph4P]3[Bi2Cl9] · CH3COCH3 show the same sequence of phase transitions after desolvation. All compounds melt into a liquid in which some order is observed and transform on cooling into the glassy state.  相似文献   

5.
The reaction of the heteroleptic Nd(III) iodide, [Nd(L′)(N″)(μ-I)] with the potassium salts of primary aryl amides [KN(H)Ar′] or [KN(H)Ar*] affords heteroleptic, structurally characterised, low-coordinate neodymium amides [Nd(L′)(N″)(N(H)Ar′)] and [Nd(L′)(N″)(N(H)Ar*)] cleanly (L′ = t-BuNCH2CH2[C{NC(SiMe3)CHNt-Bu}], N″ = N(SiMe3)2, Ar′ = 2,6-Dipp2C6H3, Dipp = 2,6-Pri2C6H3, Ar* = 2,6-(2,4,6-Pri3C6H2)2C6H3). The potassium terphenyl primary amide [KN(H)Ar*] is readily prepared and isolated, and structurally characterised. Treatment of these primary amide-containing compounds with alkali metal alkyl salts results in ligand exchange to give alkali metal primary amides and intractable heteroleptic Nd(III) alkyl compounds of the form [Nd(L′)(N″)(R)] (R = CH2SiMe3, Me). Attempted deprotonation of the Nd-bound primary amide in [Nd(L′)(N″)(N(H)Ar*)] with the less nucleophilic phosphazene superbase ButNP{NP(NMe2)3}3 resulted in indiscriminate deprotonations of peripheral ligand CH groups.  相似文献   

6.
A number of palladium(II) complexes with Ph3P and aromatic amines as ligands having the general formula [(Ph3P)Pd(Ph3P)(NH2R)Cl2] {where R = Ph (1), m-ClC6H4 (2), p-ClC6H5 (3)} and [Pd(CH3NHPh)Cl2] (4), have been synthesized and characterized by elemental analysis, IR, 1H and 13C NMR. The X-ray crystal structure of [(Ph3P)Pd(m-ClC6H4NH2)Cl2] · CH2 Cl2 (2) shows a distorted square planar environment around the Pd(II) ion with the P–Pd–N and Cl(1)–Pd–Cl(2) bond angles of 174.88(5)° and 176.77(2)° respectively. The complexes were screened for enzyme inhibition activity against β-glucuronidase and found to be active.  相似文献   

7.
Synthesis and Crystal Structure of the Complexes [(n‐Bu)4N]2[{(THF)Cl4Re≡N}2PdCl2], [Ph4P]2[(THF)Cl4Re≡N‐PdCl(μ‐Cl)]2 and [(n‐Bu)4N]2[Pd3Cl8] The threenuclear complex [(n‐Bu)4N]2[{(THF)Cl4Re≡N}2 PdCl2] ( 1 ) is obtained in THF by the reaction of PdCl2(NCC6H5)2 with [(n‐Bu)4N][ReNCl4] in the molar ration 1:2. It forms orange crystals with the composition 1· THF crystallizing in the monoclinic space group C2/c with a = 2973.3(2); b = 1486.63(7); c = 1662.67(8)pm; β = 120.036(5)° and Z = 4. If the reaction is carried out with PdCl2 instead of PdCl2(NCC6H5)2, orange crystals of hitherto unknown [(n‐Bu)4N]2[Pd3Cl8] ( 3 ) are obtained besides some crystals of 1· THF. 3 crystallizes with the space group P1¯ and a = 1141.50(8), b = 1401.2(1), c = 1665.9(1)pm, α = 67.529(8)°, β = 81.960(9)°, γ = 66.813(8)° and Z = 2. In the centrosymmetric complex anion [{(THF)Cl4Re≡N}2PdCl2]2— a linear PdCl2 moiety is connected in trans arrangement with two complex fragments [(THF)Cl4Re≡N] via asymmetric nitrido bridges Re≡N‐Pd. For Pd(II) thereby results a square‐planar coordination PdCl2N2. The linear nitrido bridges are characterized by distances Re‐N = 163.8(7)pm and Pd‐N = 194.1(7)pm. The crystal structure of 3 contains two symmetry independent, planar complexes [Pd3Cl8]2— with the symmetry 1¯, in which the Pd atoms are connected by slightly asymmetric chloro bridges. By the reaction of equimolar amounts of [Ph4P][ReNCl4] and PdCl2(NCC6H5)2 in THF brown crystals of the heterometallic complex, [Ph4P]2[(THF)Cl4Re≡N‐PdCl(μ‐Cl)]2 ( 2 ) result. 2 crystallizes in the monoclinic space group P21/n with a = 979.55(9); b = 2221.5(1); c = 1523.1(2)pm; β = 100.33(1)° and Z = 2. In the central unit ClPd(μ‐Cl)2PdCl of the centrosymmetric anionic complex [(THF)Cl4Re≡N‐PdCl(μ‐Cl)]22— the coordination of the Pd atoms is completed by two nitrido bridges Re≡N‐Pd to nitrido complex fragments [(THF)Cl4Re≡N] forming a square‐planar arrangement for Pd(II). The distances in the linear nitrido bridges are Re‐N = 163.8(9)pm and Pd‐N = 191.5(9)pm.  相似文献   

8.
The ligands [Ph2P(O)NP(E)Ph2] (E=S I; E=Se II) can readily be complexed to a range of palladium(II) starting materials affording new six-membered Pd–O–P–N–P–E palladacycles. Hence ligand substitution reaction of the chloride complexes [PdCl2(bipy)] (bipy=2,2′-bipyridine), [{Pd(μ-Cl)(L–L)}2] (HL–L=C9H13N or C12H13N), [{Pd(μ-Cl)Cl(PMe2Ph)}2] or [PdCl2(PR3)2] [PR3=PPh3; 2PR3=Ph2PCH2CH2PPh2or cis-Ph2PCH=CHPPh2] with either I (or II) in thf or CH3OH gave [Pd{Ph2P(O)NP(E)Ph2-O,E}(bipy)]PF6, [Pd{Ph2P(O)NP(E)Ph2-O,E}(L–L)], [Pd{Ph2P(O)NP(E)Ph2-O,E}Cl(PMe2Ph)] or [Pd{Ph2P(O)NP(E)Ph2-O,E} (PR3)2]PF6 in good yields. All compounds described have been characterised by a combination of multinuclear NMR [31 P{1 H} and 1 H] and IR spectroscopy and microanalysis. The molecular structures of five complexes containing the selenium ligand II have been determined by single-crystal X-ray crystallography. Three different ring conformations were observed, a pseudo-butterfly, hinge and in the case of all three PR3 complexes, pseudo-boat conformations. Within the Pd–O–P–N–P–Se rings there is evidence for π-electron delocalisation.  相似文献   

9.
By reacting [Pd( )(μ-Cl)]2 with AgClO4 in NCMe, the corresponding cationic complexes [Pd( )(NCMe)2]ClO4 ( = phenylazophenyl-C2,N1; dimethylbenzylamine-C2,N; 8-methylquinoline-C8,N) can be obtained. Solutions containing the cations [Pd( )(S)2]+ are obtained when the reaction is carried out in tetrahydrofuran or acetone (S). The treatment of these solutions with bidentate ligands (L—L) (Ph2PCH2PPh2,Ph2PNHPPh2 or Ph2PCH2PPh2CHC(O)Ph) gives the mononuclear [Pd( )(L3l)]ClO4 complexes, with L3l acting as a chelate ligand. On the other hand [Pd( (μ-Cl)]2 reacts with L3l (Ph2PCH2PPh2, Ph2PNHPPh2) yielding [Pd( )Cl(L3l)] with L3l acting as monodentate. The reactions between [Pd( )(NCMe)2]ClO4 and 2,2′-bipyrimidyl give rise to the formation of the mononuclear [Pd( ) (bipym)]ClO4 or binuclear [Pd2( )2(μ-bipym)](ClO4)2, [( )Pd(μ-bipym)Pd( )](ClO4)2 derivatives. Finally [Pd( )Cldppm] (dppm = Ph2PCH2PPh2) react with NaH producing the neutral complexes [Pd( )(ddppm)] (ddppm = Ph2PCHPPh2) which by reaction with HCl lead again to the starting materials [Pd( )Cl(dppm)].  相似文献   

10.
Nucleophilic substitution of Pd(RaaiR′)Cl2 [RaaiR′=1-alkyl-2-(arylazo)imidazole, p-R—C6H4— N=N—C3H2NN-1-R′; where R= H(a)/Me(b)/Cl(c) and R′ = Et(1)/Bz(2)] with adenine (A) in MeCN–water (1:1) at 298 K, to form [Pd(A)2]Cl2, has been studied spectrophotometrically under pseudo-first-order conditions and the analyses support a nucleophilic association path. The reaction follows the rate law, rate = {a+k [A] 02[Pd(RaaiR′)Cl2]: first-order in Pd(RaaiR′)Cl2 and second-order in A. The rate increases as follows: Pd(RaaiEt)Cl2(1) < Pd(RaaiBz)Cl2(2) and Pd(MeaaiR′)Cl2(b) < Pd(HaaiR′)Cl2(a) < Pd(ClaaiR′)Cl2(c). External addition of Cl (LiCl) suppresses the rate (rate 1/[Cl]). The activation parameters, H0 and S0 of the reactions were calculated from the Eyring plot and support the proposed mechanism.  相似文献   

11.
A Contribution to Rhenium(II)‐, Osmium(II)‐, and Technetium(II)‐Thionitrosyl‐Complexes: Preparation, Structures, and EPR‐Spectra The reaction of [ReVINCl4] and [OsVINCl4] with S2Cl2 leads to the formation of the thionitrosyl complexes [MII(NS)Cl4] (M = Re, Os) which could not be isolated as pure compounds. Addition of pyridine to the reaction mixture results in the formation of the stable compounds trans‐(Ph4P)[OsII(NS)Cl4py], trans‐(Hpy)[OsII(NS)Cl4py], trans‐(Ph4P)[ReII(NS)Cl4py], and cis‐(Ph4P)[ReII(NS)Cl4py]. The crystal structure analyses show for trans‐(Ph4P)[OsII(NS)Cl4py] (monoclinic, P21/n, a = 12.430(3)Å, b = 18.320(4)Å, c = 15.000(3)Å, β = 114.20(3)°, Z = 4), trans‐(Hpy)[OsII(NS)Cl4py] (monoclinic, P21/n, a = 7.689(1)Å, b = 10.202(2)Å, c = 20.485(5)Å, β = 92.878(4)°, Z = 4), trans‐(Ph4P)[ReII(NS)Cl4py] (triclinic, P1¯, a = 9.331(5)Å, b = 12.068(5)Å, c = 15.411(5)Å, α = 105.25(1)°, β = 90.23(1)°, γ = 91.62(1)°, Z = 2), and cis‐(Ph4P)[ReII(NS)Cl4py] (monoclinic, P21/c, a = 10.361(1)Å, b = 16.091(2)Å, c = 17.835(2)Å, β = 90.524(2)°, Z = 4) M‐N‐S angles in the range 168‐175°. This indicates a nearly linear coordination of the NS ligand. The metal atom is octahedrally coordinated in all cases. The rhenium(II) thionitrosyl complexes (5d5 “low‐spin” configuration, S = 1/2) are studied by EPR in the temperature range 295 > T > 130 K. In addition to the detection of the complexes formed during the reaction of [ReVINCl4] with S2Cl2 EPR investigations on diamagnetically diluted powders and single crystals of the system (Ph4P)[ReII/OsII(NS)Cl4py] are reported. The 185, 187Re hyperfine parameters are used to get information about the spin‐density distribution of the unpaired electron in the complexes under study. [TcVINCl4] reacts with S2Cl2 under formation of [TcII(NS)Cl4] which is not stable and decomposes under S8 elimination and rebuilding of [TcVINCl4] as found by EPR monitoring of the reaction.  相似文献   

12.
Synthesis, Crystal Structure and Spectroscopic Characterization of [Au12(PPh)2(P2Ph2)2(dppm)4Cl2]Cl2 The reaction of [(AuCl)2dppm] (dppm = Ph2PCH2PPh2) with P(Ph)(SiMe3)2 in CHCl3 results in the formation of [Au12(PPh)2(P2Ph2)2(dppm)4Cl2]Cl2 ( 1 ), the crystal structure of which was determined by single crystal X‐ray analysis (space group P21/c, a = 1425.3(3) pm, b = 2803.7(6) pm, c = 2255.0(5) pm, β = 95.00(3)°, V = 8977(3)·106 pm3, Z = 2). The dication in 1 consists of two Au6P3 units built by highly distorted Au3P and Au2P2 heterotetrahedra, connected via four bidentate phosphine ligands. Additionally, the compound was characterized by IR‐, UV‐ and NMR spectroscopy. The 31P{1H} NMR spectrum is discussed in detail.  相似文献   

13.
Reaction of TlR2X, TlX3 and [TlX4? with RLi ( R = C6F5 or C6Cl5) leads to derivatives containing anions of the types [TlR4]?, [TlR2R′2]? or [TlR6]3?. Reactions of TlCl3 with [TlR4]? lead to [(μ-Cl)(TlR2Cl)2]? (R = C6F5) or [TlRCl3]? (R = C6Cl5) while addition of X? (X = Br? or SCN?) to Tl(C6Cl5)3 gives [Tl- (C6Cl5)3X]?. All the novel anions were isolated as salts of bulky cations (Me4N, Bu4N, PPN or Ph3BzP).  相似文献   

14.
An unusual for Pd catalysts dehydration of α-alkyl and α, α′-dialkylbenzyl alcohols PhCR′R″OH (R′ = H, Me, Et, Bu; R″ = H, Me) occurs in the presence of the palladium(I) cluster [Pd4(CO)4(OAc)4] (1) in an inert atmosphere to form ethers PhCR′R″-O-CR′ R″ and water. The catalyst is an intermediate of cluster 1 reduction to Pd black, while neither the starting cluster 1, nor Pd black, which is the decomposition product, are active in the catalysis of this reaction.__________Published in Russian in Izvestiya Akademii Nauk. Seriya Khimicheskaya, No. 3, pp. 788–791, March, 2005.  相似文献   

15.
A one step synthesis of ReO2Cl3 is reported. ReO2Cl3 reacts with [(C2H5)4P]+Cl?, forming [(C2H5)4P]+[cis–ReO2Cl4]?, a = 1257.0(2), b = 1026.8(2), c = 1277.9(2) pm, β = 106.659(3)°, P21/n. Also an unstable NO+[ReO2Cl4]? can be obtained from NOCl and ReO2Cl3. With the Lewis acid GaCl3 the zwitter ion [ReO2Cl2]+[GaCl4]? is formed. a = 1184.0(3), b = 829.2(2), c = 1100.8(2) pm, β = 112.98(1)°, P21/c.  相似文献   

16.
Cluster Synthesis by Photolysis of R3PAuN3. VIII. Synthesis and Crystal Structure of [(Ph3PAu)5Mo(CO)4]PF6 · CH2Cl2 and (Ph3PAu)3Co(CO)3 Photolysis of a mixture of Ph2PAuN3 and Mo(CO)6 in THF yields [(Ph3PAu)5Mo(CO)4]+ (1), which can be crystallized from CH2Cl2/diisopropylether as orange 1 · PF6 · CH2Cl2 with the space group P21/c and a = 1681.4(5), b = 2215.6(12), c = 2761.5(9) pm, β = 91.54(3)°, Z = 4. The Au5Mo center of cluster 1 forms a capped trigonal bipyramid with the Mo atom in equatorial position and almost equal Mo? Au distances between 279.9(5) and 284.6(7) pm to all five Au atoms. The Au? Au distances range from 272.2(4) to 301.3(4) pm. The Mo(CO)4 group causes three v(C0) at 1975, 1915 and 1890cm?1. Reaction of Ph3PAuCo(CO)4 with Ph3PAuPF6 affords the known cluster cation [(Ph3PAu)4Co(CO)3]+ in high yield. It can be degraded with C1? to the neutral cluster (Ph3PAu)3Co(CO)3 (2). 2 forms air stable, yellow crystals with the space group P21/n and a = 1359.4(4), b = 2041.0(5), c = 1853.2(6)pm, β = 91.47(1)°, Z = 4. The Au3Co core of 2 has a tetrahedral structure with distances Co? Au between 250.4(1) and 254.0(2) pm and Au? Au between 279.5(1) and 285.1(1) pm. v(C0) are observed at 1963, 1905 and 1891 cm?1. Reaction of 2 with [(Ph3PAu)4Co(CO)3]+ yields the condensed cluster [(Ph3PAu)6AuCo2(CO)6]+.  相似文献   

17.
Reported are multi‐component one‐pot syntheses of chiral complexes [M(LROR′)Cl2] or [M(LRSR′)Cl2] from the mixture of an N‐substituted ethylenediamine, pyridine‐2‐carboxaldehyde, a primary alcohol or thiol and MCl2 utilizing in‐situ formed cyclized Schiff bases where a C?O bond, two stereocenters, and three C?N bonds are formed (M=Zn, Cu, Ni, Cd; R=Et, Ph; R′=Me, Et, nPr, nBu). Tridentate ligands LROR′ and LRSR′ comprise two chiral centers and a hemiaminal ether or hemiaminal thioether moiety on the dipicolylamine skeleton. Syn‐[Zn(LPhOMe)Cl2] precipitates out readily from the reaction mixture as a major product whereas anti‐[Zn(LPhOMe)Cl2] stays in solution as minor product. Both syn‐[Zn(LPhOMe)Cl2] and anti‐[Zn(LPhOMe)Cl2] were characterized using NMR spectroscopy and mass spectrometry. Solid‐state structures revealed that syn‐[Zn(LPhOMe)Cl2] adopted a square pyramidal geometry while anti‐[Zn(LPhOMe)Cl2] possesses a trigonal bipyramidal geometry around the Zn centers. The scope of this method was shown to be wide by varying the components of the dynamic coordination assembly, and the structures of the complexes isolated were confirmed by NMR spectroscopy, mass spectrometry, and X‐ray crystallography. Syn complexes were isolated as major products with ZnII and CuII, and anti complexes were found to be major products with NiII and CdII. Hemiaminals and hemiaminal ethers are known to be unstable and are seldom observed as part of cyclic organic compounds or as coordinated ligands assembled around metals. It is now shown, with the support of experimental results, that linear hemiaminal ethers or thioethers can be assembled without the assistance of Lewis acidic metals in the multi‐component assembly, and a possible pathway of the formation of hemiaminal ethers has been proposed.  相似文献   

18.
The reaction of ctc-[Ru(RaaiR′)2Cl2] (1) [RaaiR′ = 1-alkyl-2-(arylazo)imidazole, p-R-C6H4-N=N-C3H2NN(1)-R′, R = H (a), Me (b), Cl (c), R′ = Me (2), Et (3), Bz (4)] with (NH4)2MoS4 in aqueous MeOH afforded red-violet mixed ligand complexes of the type [(RaaiR′)2Ru(μ-S)2Mo(OH)2] (2–4). In complexes (2–4) the terminal Mo=S bonds of the MoS42− unit become hydroxylated and the molybdenum ion is reduced from the starting MoVI in MoS42− to MoIV in the final product (2–4). The solution electronic spectra exhibit a strong MLCT band at 550–570 nm in DCM. Cyclic voltammograms show a Ru(III)/Ru(II) couple at 1.10–1.4 V, irreversible Mo(IV)/Mo(V) oxidations in the 1.66–1.72 V range, along with four successive reversible ligand reductions in the range −0.45–0.67 V (one electron), −0.82–1.12 V (one electron), and −1.44–1.90 V (simultaneously two electrons).  相似文献   

19.
The complex salt (NBu4n)2 [Cu(bcd)2] and heterobimetallic coordination polymers MM′(bcd)2 [M=2AgI, CdII, HgII or PbII; M′=NiII or CuII; bcd2−=1-benzoyl-1-cyanoethylene-2,2-dithiolate] have been synthesized from the reaction of Na2[M′(bcd)2] generated in situ with NBu4nBr or metal salts MX2 [X=MeCO2, NO3, Cl or SO42−]. The complexes were characterized by elemental analyses, molar conductance, magnetic susceptibility, i.r., n.m.r., electronic and e.s.r. spectra and solid-state conductivity measurements. The MCu(bcd)2 polymers are diamagnetic, suggesting strongly antiferromagnetically coupled CuII ions. The conductivities of the pressed pellets of the compounds are very small and they do not show semiconducting behaviour in the considered temperature range.*Presented at the 10th Symposium on Modern Trends in Inorganic Chemistry (MTIC-X), December 15–17, 2003, Indian Institute of Technology, Mumbai, India.  相似文献   

20.
The addition of BCl3 to the carbene‐transfer reagent NHC→SiCl4 (NHC=1,3‐dimethylimidazolidin‐2‐ylidene) gave the tetra‐ and pentacoordinate trichlorosilicon(IV) cations [(NHC)SiCl3]+ and [(NHC)2SiCl3]+ with tetrachloroborate as counterion. This is in contrast to previous reactions, in which NHC→SiCl4 served as a transfer reagent for the NHC ligand. The addition of BF3 ? OEt2, on the other hand, gave NHC→BF3 as the product of NHC transfer. In addition, the highly Lewis acidic bis(pentafluoroethyl)silane (C2F5)2SiCl2 was treated with NHC→SiCl4. In acetonitrile, the cationic silicon(IV) complexes [(NHC)SiCl3]+ and [(NHC)2SiCl3]+ were detected with [(C2F5)SiCl3]? as counterion. A similar result was already reported for the reaction of NHC→SiCl4 with (C2F5)2SiH2, which gave [(NHC)2SiCl2H][(C2F5)SiCl3]. If the reaction medium was changed to dichloromethane, the products of carbene transfer, NHC→Si(C2F5)2Cl2 and NHC→Si(C2F5)2ClH, respectively, were obtained instead. The formation of the latter species is a result of chloride/hydride metathesis. These compounds may serve as valuable precursors for electron‐poor silylenes. Furthermore, the reactivity of NHC→SiCl4 towards phosphines is discussed. The carbene complex NHC→PCl3 shows similar reactivity to NHC→SiCl4, and may even serve as a carbene‐transfer reagent as well.  相似文献   

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