首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到20条相似文献,搜索用时 125 毫秒
1.
New silver(I) complexes have been synthesised from the reaction of AgNO3, monodentate PR3 (PR3 = P(o-tolyl)3, P(m-tolyl)3, P(p-tolyl)3, P(p-C6H4F), SeP(C6H5)3) or bidentate tertiary (dppe = bis(diphenylphosphane)ethane, dppf = 1,1′-bis(diphenylphosphane)ferrocene) phosphanes and potassium dihydrobis(3-nitro-1,2,4-triazolyl)borate, K[H2B(tzNO2)2]. These compounds have been characterized by elemental analyses, FT-IR, ESI-MS and multinuclear (1H and 31P) NMR spectral data. The adduct {[H2B(tzNO2)2]Ag[P(m-tolyl)3]2} has been characterized by single crystal X-ray studies. In the former, the H2B(tzNO2)2 acts as a monodentate ligand utilizing the coordinating capability of only one of the additional (exo-) ring nitrogens to complete the coordination array about the silver atom.  相似文献   

2.
New silver(I) derivatives [Ag{HnB(btz)4 − n}(PR3)x] (n = 1 or 2, x ranging from 1 to 3), containing monodentate tertiary phosphines and anionic poly(benzotriazol-1-yl)borates, have been prepared from the reaction of AgNO3 with PR3 (R = Ph, o-tolyl, m-tolyl, p-tolyl, Bns) and K[H2B(btz)2], or K[HB(btz)3] (Hbtz = 1,2,3-benzotriazole). When the reaction between K[H2B(btz)2] and AgNO3 was carried out in the presence of dppe (1,2-bis(diphenylphosphino)ethane), or dppf (1,1′-bis(diphenylphosphino)ferrocene), compounds [Ag{H2B(btz)2}]2(L) (L = dppe or dppf) formed, the diphosphine acting as a bidentate bridging P2-donor. Solid state and solution properties of all complexes have been investigated through analytical and spectroscopic measurements (IR, 1H, 31P NMR), the 1H and 31P NMR spectra being interpreted in terms of equilibria that involve mono- and di-nuclear complexes. Adducts [Ag{HB(btz)3}(PPh3)3] · (1/2H2O) and [Ag{H2B(btz)2}]2 (dppf) have been characterised by single crystal X-ray studies. In the former, the HB(btz)3 is unidentate in an NAgP3 coordination environment; the latter is a dimer, the dppf bridging the two silver atoms, while the H2B(btz)2 ligand, which chelates one silver, bridges to the second also, the array having 2-symmetry.  相似文献   

3.
Adducts of triorganophosphines PR3, and diphosphines R2P(CH2)nPR2 with silver(I) diethyldithiocarbamate Ag(dtc) have been synthesized and characterized both in solution (1H, 31P NMR) and in the solid state (IR, single-crystal X-ray structure analysis). The topology of the structures in the solid state was found to depend on the nature of the P-donor and on the Ag(dtc):P-donor stoichiometric ratio. In the mononuclear [(Ph2MeP)2Ag(dtc)] and [{(:CHPPh2)2}Ag(dtc)], four-coordinate P2AgS2 environments are found, as also in [(dtc)Ag(P′-dppm-P′)2Ag(dtc)] where the two Ag(dtc) moieties are linked by the pair of bidentate, bridging, dppm ligands; by contrast the dppp adduct Ag(dtc):dppp (1:1) is an infinite one-dimensional polymer. In the other complexes [(R3P)Ag(dtc)]2 structurally defined, the silver environment is PAgS3, two of the sulfur atoms drawn from the same dtc, now an unsymmetrical chelate, and one of the sulfur atoms bridged to the second silver atom.  相似文献   

4.
New copper(I) triorganophosphane derivatives [Cu(PR3)n{H2B(btz)2}] and [Cu(PR3)n{HB(btz)3}] (n=1 or 2) have been synthesized from the reaction of CuCl with PR3 (R=phenyl, cyclohexyl, benzyl, o-, m-, or p-tolyl) or PMePh2 and potassium dihydrobis(1,2,3-benzotriazolyl)borate K[H2B(btz)2] or potassium hydrotris(1,2,3-benzotriazolyl)borate K[HB(btz)3]. The complexes obtained have been characterized by elemental analyses and FT-IR in the solid state and by NMR (1H and 31P{1H}) spectroscopy and conductivity measurements in solution. Solution data are consistent with partial dissociation of complexes occurring throughout breaking of the CuP bond. Single crystal structural characterizations were undertaken for two of them. The structurally authenticated arrays are, (a) [Cu(PBn3)2{(btz)BH2(btz)}] with a three coordinate P2Cu(N) coordination sphere and the donor [H2B(btz)2] coordinated throughout only one N3 atom. (b) [Cu(P-m-tolyl3)n{(btz)3BH}] with a four coordinate PCuN3 coordination sphere with the tris(benzotriazolyl)borate acting as tripodal donor throughout all its N2 atoms.  相似文献   

5.
Silver(I) derivatives [Ag(L)(PiBu3)] (L = H2B(tz)2 (dihydrobis(1H-1,2,4-triazol-1-yl)borate), HB(tz)3 (hydrotris(1H-1,2,4-triazol-1-yl)borate), Tp (hydrotris(1H-pyrazol-1-yl)borate), Tp∗ (hydrotris(3,5-dimethyl-1H-pyrazol-1-yl)borate), TpMe (hydrotris(3-methyl-1H-pyrazol-1-yl)borate), TpCF3 (hydrotris(3-trifluoromethyl-1H-pyrazol-1-yl)borate), Tp4Br (hydrotris(4-bromo-1H-pyrazol-1-yl)borate), HB(btz)3 (hydrotris(1H-1,2,4-benzotriazol-1-yl)borate), Tm (hydrotris(3-methy-1-imidazolyl-2-thione)borate), pzTp (tetrakis(1H-pyrazol-1-yl)borate), pz0TpMe (tetrakis(3-methyl-1H-pyrazol-1-yl)borate) have been synthesized from the reaction of [Ag(NO3)(PiBu3)2] with ML (M = Na or K) and characterized both in solution (1H- and 31P{1H} NMR, ESI MS spectroscopy, conductivity) and in the solid state (IR, single crystal X-ray structure analysis). These complexes are air-stable and light-sensitive and non-electrolytes in CH2Cl2 and acetone in which they slowly decompose, even with the strict exclusion of oxygen and light, yielding metallic silver and/or azolate (Az) species of formula [Ag(Az)(PiBu3)x] upon breaking of the bridging B-N(azole) bond. The solid state structures of [Ag(Tp)(PiBu3)], [Ag(TpMe)(PiBu3)], [Ag(TpCF3)(PiBu3)], [Ag{HB(btz)3}(PiBu3)], and [Ag(Tm)(PiBu3)] show that the silver atom adopts a distorted tetrahedral coordination geometry. [Ag(L)(PPh3)] can be easily obtained from the reaction of [Ag(L)(PiBu3)] with excess PPh3, whereas from the reverse reaction of [Ag(L)(PPh3)] with PiBu3a mixture of [Ag(L)(PiBu3)] and [Ag(L)]2 and [Ag(L)(PPh3)] was recovered. 31P{1H} NMR variable temperature NMR studies showed that in the pz0Tpx derivatives the scorpionate ligand acts as a bidentate donor, whereas tridentate coordination is found for all tris(azolyl)borate derivatives, both in solution and in the solid state. ESI MS data suggest the existence in solution of species such as [Ag(PiBu3)2]+ upon dissociation of the L ligand, and also the formation of dimeric species of the form [Ag2(L)(PiBu3)2]+.  相似文献   

6.
Ten novel adducts of the form AgClO4:PR3:L (1:1:1) (R = Ph, cy, o-tolyl; L = 2,2′-bipyridyl (‘bpy’), 2,2′-biquinoline (‘bq’), bis(2-pyridyl)amine (‘dpa’), bis(2-picolyl)amine (‘dpca’)) have been synthesized and characterized by analytical, spectroscopic (IR, far-IR, 1H and 31P NMR) and single crystal X-ray diffraction studies. The solid state molecular structures show that the complexes predominantly take the form [(R3P)AgL]+X, with a trigonal PAgN2 coordination environment, where the approach of the anion or the solvent may perturb the planarity of the silver environment. The ClO4 anion shows uni- or semi-bidentate coordination, except in the complexes AgClO4:PR3:dpca (1:1:1) (R = Ph and o-tolyl), where the anion remains uncoordinated and the dpca donor is a three-coordinate pincer-like ligand.  相似文献   

7.
Rhodium(III) and iridium(III) octahedral complexes of general formula [MCl3{R2PCH2C(But)NNC(But)CH2PR2}] (M = Rh, Ir; R = Ph, c-C6H11, Pri, But; not all the combinations) were prepared either from the corresponding diphosphinoazines and RhCl3 · 3H2O or by the oxidation of previously reported bridging complexes [{MCl(1,2-η:5,6-η-CHCHCH2CH2CHCHCH2CH2)}2{μ-R2PCH2C(But)NNC(But)CH2PR2}] with chlorine-containing solvents. Depending on the steric properties of the ligands, complexes with facial or meridional configuration were obtained. Crystal and molecular structures of three facial and two meridional complexes were determined by X-ray diffraction. Hemilability of ligand in the complex fac-[RhCl3{(C6H11)2PCH2C(But)NNC(But)CH2P(C6H11)2}] consisting in reversible decoordination of the phosphine donor group in the six-membered ring was observed as the first step of isomerization between fac and mer isomers.  相似文献   

8.
1:1 and 2:1 adducts of diphosphine ligands R2P(R′)nPR2 (dppm: R = Ph, R′ = CH2, n = 1; dppe: R = Ph, R′ = CH2, n = 2; dppp: R = Ph, R′ = CH2, n = 3; dppb: R = Ph, R′ = CH2, n = 4; dppf: R = Ph, R′ = ferrocenyl, n = 1) with silver(I) methanesulfonate have been synthesized and characterized both in solution (1H, 31P NMR) and in the solid state (IR, single crystal X-ray structure analysis). The two different stoichiometries have been found to depend on the molar ratio of ligand to metal employed and the nature of the diphosphine ligand. In AgO3SMe:dppp,dppb (1:1)2, in the [Ag(P^P)2Ag] arrays, the silver atoms are also bridged by anion oxygen atoms, in disparate fashion commensurate with the different Ag?Ag distances.  相似文献   

9.
The 2:1 reaction of [Ru(H2O)2(NH3)5]2+ with 1,2,4,5-tetrazine (tz) gives rise to the formation of the dinuclear complex ion [{Ru(NH3)5}2(μ-tz-N1:N4)]4+. Its tetraphenylborate and hexafluoro-phosphate salts have been fully characterized; the X-ray structure of the former has also been determined.  相似文献   

10.
Two four-coordinate nickel complexes, HB(tBuIm)3NiBr and HB(tBuIm)3NiNO, were prepared by reaction of a bulky tris(carbene)borate ligand with NiBr2(PPh3)2 and NiBr(NO)(PPh3)2, respectively, and structurally and spectroscopically characterized. In addition to standard techniques, high-frequency and -field electron paramagnetic resonance (HFEPR) was employed to understand the spin triplet (S = 1) ground state of the bromo complex. HFEPR, combined with electronic absorption spectroscopy allows comparison of this novel complex with other paramagnetic four-coordinate Ni(II) species. The tris(carbene)borate ligand is a stronger σ-donor than corresponding tris(pyrazolyl)borates (traditional “scorpionate” ligands). The tris(carbene)borate ligand may also act as a π-acceptor, in contrast to tris(pyrazolyl)borates, which show relatively little π-bonding interactions. The influence of tris(carbene)borate substituents on the donor strength of the ligand have been elucidated from IR spectroscopic investigations of {NiNO}10 derivatives. HFEPR spectra of HB(tBuIm)3NiBr exhibit hyperfine coupling from Br, which indicates the strong electronic interaction between Ni(II) and this halide ligand, consistent with studies on tris(pyrazolyl)borate Ni(II) complexes.  相似文献   

11.
Depending on experimental conditions and the nature of the phosphite, the reaction of OsH2P4 [P=P(OEt)3 and PPh(OEt)2] with bis(aryldiazonium) salts [N2Ar-ArN2](BF4)2 [Ar-Ar=4,4-C6H4-C6H4, 4,4-(2-CH3)C6H3-C6H3(2-CH3), 4,4-C6H4-CH2-C6H4 and 1,5-C10H6] afford the cis and the trans binuclear [{OsHP4}2(μ-HNNAr-ArNNH)](BPh4)21, 2 aryldiazene derivatives. These complexes 1, 2 further react with the mono(diazonium) (4-CH3C6H4N2)BF4 salt to give the bis(aryldiazene) [{Os(4-CH3C6H4NNH)P4}2(μ-HNNAr-ArNNH)](BPh4)43, 4 derivatives. Binuclear bis(aryldiazenido) [{OsP4}2(μ-N2Ar-ArN2)](BPh4)2 (6) [P=P(OEt)3; Ar-Ar=4,4-C6H4-C6H4, 4,4-C6H4-CH2-C6H4] complexes were prepared by deprotonating with NEt3 the nitrile-diazene [{Os(4-CH3C6H4CN)P4}2(μ-HNNAr-ArNNH)](BPh4)4 (5) derivatives. The aryldiazenido compounds 6 react with HCl to give the new aryldiazene [{OsClP4}2(μ-HNNAr-ArNNH)](BPh4)2 (7) derivatives. The characterisation of the complexes by IR and 1H, 31P, 15N NMR data is also discussed. The reaction of the hydride OsH2(PPh2OEt)4 with mono(diazonium) salts was also studied and led exclusively to the mono(aryldiazene) [OsH(ArN NH)(PPh2OEt)4]BPh4 (8) (Ar=C6H5, 4-CH3C6H4) derivatives. Spectroscopic data (1H, 31P, 15N NMR) on 15N-labelled derivatives suggest the presence of two isomers with the N-bonded and the π-bonded ArNNH ligand, respectively.  相似文献   

12.
Reactions of RuCl2(PR3)3 [PR3 = PPh3 or P(p-tolyl)3 with several monomeric phosphine complexes of rhodium(III), iridium(III) and platinum(IV) have been studied. The reactions with mer-MCl3(P′R3)3 (M = Rh, P′R3 = PEt2Ph, PMe2Ph, PMe2Ph; M = Ir, P′R3 = PBuPh2, PMePh2, PEt2Ph) involves a phosphine ligand transfer between metal atoms to afford novel dark coloured heterobimetallic complexes containing a triple chloro-bridge. The reactions of RuCl2(PR3)3 with PtCl4(P′R3)2 (P′R3 = PEt2Ph, PBu2Ph), however, do not give evidence for the formation of dinuclear complexes containing the (RuCl3Pt) unit, but a reduction of PtIV to PtII occurs with transfer of phosphine ligands between the two metals. The formulation of these complexes has been established by 31P NMR spectroscopy.  相似文献   

13.
Copper(I) complexes have been synthesized from the reaction of CuCl, monodentate tertiary phosphines PR3 (PR3 = P(C6H5)3; P(C6H5)2(4-C6H4COOH); P(C6H5)2(2-C6H4COOH); PTA, 1,3,5-triaza-7-phosphaadamantane; P(CH2OH)3, tris(hydroxymethyl)phosphine) and lithium bis(3,5-dimethylpyrazolyl)dithioacetate, Li[LCS2]. Mono-nuclear complexes of the type [LCS2]Cu[PR3] have been obtained and characterized by elemental analyses, FT-IR, ESI-MS and multinuclear (1H, 13C and 31P) NMR spectral data; in these complexes the ligand behaves as a κ3-N,N,S scorpionate system. One exception to this stoichiometry was observed in the complex [LCS2]Cu[P(CH2OH)3]2, where two phosphine co-ligands are coordinated to the copper(I) centre. The solid-state X-ray crystal structure of [LCS2]Cu[P(C6H5)3] has been determined. The [LCS2]Cu[P(C6H5)3] complex has a pseudo tetrahedral copper site where the bis(3,5-dimethylpyrazolyl)dithioacetate ligand acts as a κ3-N,N,S donor.  相似文献   

14.
New silver(I) acylpyrazolonate derivatives [Ag(Q)], [Ag(Q)(PR3)]2 and [Ag(Q)(PR3)2] (HQ = 1-R1-3-methyl-4-R2(CO)pyrazol-5-one, HQBn = R1 = C6H5, R2 = CH2C6H5; HQCHPh2 = R1 = C6H5, R2 = CH(C6H5)2; HQnPe = R1 = C6H5, R2 = CH2C(CH3)3; HQtBu = R1 = C6H5, R2 = C(CH3)3; HQfMe = R1 = C6H4-p-CF3, R2 = CF3; HQfEt = R1 = C6H5, R2 = CF2CF3; R = Ph or iBu) have been synthesized and characterized in the solid state and solution. The crystal structure of 1-(4-trifluoromethylphenyl)-3-methyl-5-pyrazolone, the precursor of proligand HQfMe and of derivatives [Ag(QnPe)(PPh3)2] and [Ag(QnPe)(PiBu3)]2 have been investigated. [Ag(QnPe)(PPh3)2] is a mononuclear compound with a silver atom in a tetrahedrally distorted AgO2P2 environment, whereas [Ag(QnPe)(PiBu3)]2 is a dinuclear compound with two O2N-exotridentate bridging acylpyrazolonate ligands connecting both silver atoms, their coordination environment being completed by a phosphine ligand.  相似文献   

15.
The reaction of the cyclometalated IrIII dimer [{(ppy)2Ir}2(μ-Cl)2] (ppyH = 2-phenylpyridine) with silver triflate followed by a multidentate ligand [1,4-bis[3-(2-pyridyl)pyrazolylmethyl]benzene (bppb), 1,3,5-tri[3-(2-pyridyl)pyrazolylmethyl]-2,4,6-trimethylbenzene (tppb), 2,4,6-tris(2-pyridyl)-1,3,5-triazine (tptz), 2-chloro-4,6-bis(dipyridin-2-ylamino)-1,3,5-triazine (cddt) or 2,4,6-tris(dipyridin-2-ylamino)-1,3,5-triazine (tdat)] afforded di- or trinuclear compounds: [{Ir(ppy)2}2(μ-bppb)](OTf)2 (1), [{Ir(ppy)2}3(μ-tppb)](OTf)3 (2), [{Ir(ppy)2}2(μ-tptz-OH)](OTf) (3), [{Ir(ppy)2}2(μ-cddt)](OTf)2 (4) and [{Ir(ppy)2}2(μ-tdat)](OTf)2 (5). All of these compounds contain cationic metal cores with corresponding triflate counter anions. The molecular structures of 1-4 reveal that the structural feature of the Ir(ppy)2 center of the starting precursor is conserved in the products. Also, because of the nature of the ligands, there is virtually no electronic communication between the IrIII centers except in 3 where a ring hydroxylation at the triazine carbon atom is effected upon metalation. Compounds 1-5 are robust in solution where they retain their structural integrity. The UV-Vis and emission spectra of 1-5 compounds are very similar to each other with the exception of 3 which seems to possess a different electronic structure. All the compounds are luminescent at room temperature. The emission bands indicate significant contribution from 3LC. Increase in the number of ‘Ir(ppy)2’ units does not have any effect on emission color.  相似文献   

16.
The reaction between [PtII(Ox)2]2− and an appropriate oxidant resulted in the formation of the dimeric unbridged platinum complex [{PtIII(Ox)2 }2]2− where (Ox) is oxalate. This complex was moderately stable under ambient conditions and was studied via a variety of NMR and spectrophotometric techniques. Reaction of the [{PtIII(Ox)2}2]2− complex with [PtII(Ox)2]2− in the presence of H+ lead to the formation of a series of longer platinum oligomers with non-integral oxidation states, culminating in the formation of partially oxidized platinum polymers of general formula [{Pt(Ox)2}n]n. The concentration of H+ was an important factor leading to higher oligomers and the approximate number of protons associated with each oligomer was determined. The analogous [{PtIII(Mal)2}2]2− complex, where (Mal) is the malonate anion, was also synthesized and studied but was shown to be significantly less stable.  相似文献   

17.
Hydrothermal reactions were used in the preparation of a series of bimetallic organic-inorganic hybrid materials of the M(II)/VxOy/organonitrogen ligand class. Compound 1, [{Cu2(bpa)2(C2O4)}2V4O12]·H2O, is molecular, while [{Cu(terpy)}2V6O17] (2), [Cu2(bpyrm)V4O12] (4) and [{Cu(phen)(H2O)2}VOF4(H2O)]·2H2O (5) are two-dimensional, three-dimensional and one-dimensional, respectively (bpa = 2,2′-bipyridylamine; terpy = 2,2′:6,2″-terpyridine; bpyrm = 2,2′-bipyrimidine; phen = 1,10-phenanthroline). In contrast to the 2-D structure of 2, the Ni(II) analogue [{Ni(terpy)}2V4O12]·2H2O (3) is one-dimensional. The {V4O12}4− cluster is a building block of structures 1, 3, and 4 while 2 is constructed from {V6O17}4− rings.  相似文献   

18.
The reactions of mono(cyclopentadienyl)titanium(IV) trichloride and bis(cyclopentadienyl)titanium(IV)/ zirconium(IV) dichloride with a new class of dithiosemicarbazone, derived by condensing piperazine dithiosemicarbazide with benzaldehyde (L1H2), 2-chlorobenzaldehyde (L2H2), 4-nitrobenzaldehyde (L3H2) or salicylaldehyde (L4H4) have been studied and different types of binuclear products, viz. [{CpTiCl2}2L], [{Cp2MCl}2L], ((L=L1, L2 or L3), [{CpTiCI}2L4] and [{Cp2M}2L4] (M=Yi or Zr), have been isolated. Tentative structures are proposed for these complexes based upon elemental analyses, electrical conductance, magnetic moment and spectral (electronic, IR, 1H and 13C NMR) data. Attempts have been made to establish a correlation between antibacterial activity and the structures of the products.  相似文献   

19.
The reaction between [(R-DAB)Rh(PR3)2]+ and molecular hydrogen produces cationic cis-dihydride complexes of Rh(III), of general formula [RhH2(R-DAB)(PR3)2]X. They are stable in air, 1:1 conductors and have been characterized by 1H NMR, 31P NMR, IR and elemental analysis. The tertiary phosphines employed were: PPh3, P(p-C6H4F)3, PMePh2, PEt3, and the R-DAB ligands (RN:CR′CR′:NR)1, Ph-DAB, c-Hex-DAB, NH2-DAB(CH3,CH3), t-but-DAB.The structure of [RhH2(c-Hex-DAB){P(p-C6H4F)3}2]ClO4 has been determined by an X-ray diffraction study. Crystals are orthorhombic, space group Pbnm. Unit cell parameters are: a = 13.032(1), b = 18.166(2), c = 21.449(2) Å, Z = 4, R = 0.081, Rw = 0.082 for 2906 reflections, with I> 3σ(I) the rhodium atom is octahedrally coordinated with the two hydride-hydrogens and c-Hex-DAB in the equatorial plane; the two phosphine ligands are in an axial position bent towards the hydrogens making an angle of 164.9(4)°.  相似文献   

20.
Silver(I) halides react with tri(p-tolyl)phosphine (tptp, C21H21P) in MeOH/MeCN solutions in 1:1 or 1:3 molar ratios to give complexes of formulae {[AgCl(tptp)]4} (1) or [AgX(tptp)3] (X = Cl (2), Br (3), I (4)), respectively. The complexes were characterized by elemental analyses, and FT-IR far-IR, FT-Raman, TG and 1H, 13C, 31P NMR spectroscopic techniques. Crystal structures of complexes 2-4 were determined by X-ray diffraction at room temperature (rt). The crystal structure of 1 and 4 was also determined at 100(1) and 140(2) K (lt), respectively. In complex 1 four μ3-Cl ions are bonded with four Ag(I) ions forming a cubane while the coordination sphere of silver(I) ions is completed by one P atom from a terminal tri(p-tolyl)phosphine ligand. In complexes 2-3 one terminal halogen and three P atoms from phosphine ligands form a tetrahedral arrangement around the metal ion. Complexes 1-4 were tested for in vitro cytostatic activity against sarcoma cancer cells (mesenchymal tissue) from the Wistar rat, polycyclic aromatic hydrocarbons (PAH, benzo[a]pyrene) carcinogenesis and against murine leukemia (L1210) and human T-lymphocyte (Molt4/C8 and CEM) cells. The silver(I) complexes 1-4 show strong activity.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号