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 31 毫秒
1.
《Inorganica chimica acta》1988,141(2):205-209
The reaction, at 25 °C in methanol, between [Pd(SeCN)4]2− and bis(diphenylphosphino)methane (dpm) has been found to produce cyano(selenocyanato) [diphenyl(diphenylphosphinomethyl) phosphine selenide]palladium(II), [Pd(dpmSe)(CN)(SeCN)], wherein the cyanide group is trans to an Se atom which has been inserted into one PdP bond, and the selenocyanate group is trans to the unchanged diphenylphosphino group. The structure has been confirmed by the results of a single crystal X-ray diffraction study. The structural isomer, [Pd(dpm)- (SeCN)2], of the foregoing complex has also been prepared by the reaction of Pd(C2H3O2)2 with dpm, followed by reaction with KSeCN. Heating the [Pd(dpm)(SeCN)2] isomer converts it into [Pd- (dpmSe)(CN)(SeCN)]. A mechanism is proposed for the isomerization which involves an intramolecular selenium atom insertion.  相似文献   

2.
Addition (1:2) of Tl2CS3 to solutions of perchloratocomplexes of palladium(II) Pd(OClO3)(C6F5)(PR3) leads to neutral binuclear derivatives of the type (PR3)(C6F5)Pd(μ-S2CS)Pd(C6F5)(PR3)2, whilst the reaction of perchloratocomplexes of palladium(II) or platinum(II) with the neutral Pd(η2-CS3)(PR3)2 affords cationic complexes of the type [L2Pd(μ-S2CS)M(C6F5)L2]ClO4 (M = Pd or Pt). Spectral data (IR and 31P, NMR) permit the inequivocal structural characterization of both the neutral and the cationic complexes.  相似文献   

3.
Two dinuclear palladium(II) complexes, [{Pd(en)Cl}2(μ-pz)](NO3)2 and [{Pd(en)Cl}2(μ-pydz)](NO3)2, have been synthesized and characterized by elemental microanalysis and spectroscopic (1H and 13C NMR, IR and UV–vis) techniques (en is ethylenediamine; pz is pyrazine and pydz is pyridazine). The square planar geometry of palladium(II) metal centers in these complexes has been predicted by DFT calculations. The chlorido complexes were converted into the corresponding aqua complexes, [{Pd(en)(H2O)}2(μ-pz)]4+ and [{Pd(en)(H2O)}2(μ-pydz)]4+, and their reactions with N-acetylated l-histidylglycine (Ac–l–His–Gly) and l-methionylglycine (Ac–l–Met–Gly) were studied by 1H NMR spectroscopy. The palladium(II)-aqua complexes and dipeptides were reacted in 1:1 M ratio, and all reactions performed in the pH range 2.0 < pH < 2.5 in D2O solvent and at 37 °C. In the reactions of these complexes with Ac–l–His–Gly and Ac–l–Met–Gly dipeptides, the hydrolysis of the amide bonds involving the carboxylic group of both histidine and methionine amino acids occurs. The catalytic activities of the palladium(II)-aqua complexes were compared with those previously reported in the literature for the analogues platinum(II)-aqua complexes, [{Pt(en)(H2O)}2(μ-pz)]4+ and [{Pt(en)(H2O)}2(μ-pydz)]4+.  相似文献   

4.
Alkynyl Pd(II) azido complexes of the type [Pd(N3)(CCR)L2] (1-3) were obtained by reactions of aqueous NaN3 with [Pd(Cl)(CCR)L2] (R = Ph or C(O)OMe). Treating compounds 1-3 with organic isocyanides (R-NC) afforded novel complexes, trans-[Pd(CCPh)(NCNR)(PMe3)2] (R = 2,6-Me2C6H3 (4) or 2,6-Et2C6H3 (5)) and trans-[Pd(CCR)(CN4-t-Bu)L2] (6: L = PMe3, R = Ph; 7: L = PEt3, R = C(O)OMe; 8: L = PMe3, R = C(O)OMe), which contain either a carbodiimido or a C-coordinated tetrazolato group. Reactions of compounds 1 and 2 with R-NCS (R = 2,6-Me2C6H3 or CH2CH3) and 1,4-phenylene diisothiocyanate (C6H4(NCS)2) smoothly proceeded to give tetrazole-thiolato complexes, trans-[Pd(CCPh)(SCN4-R)L2] (L = PMe3, R = Et (9) or 2,6-Me2C6H3 (10); L = PEt3, R = 2,6-Me2C6H3 (11)), and a phenylene-bridged dinuclear Pd(II) tetrazole-thiolato complex, [(PEt3)2(CCPh)Pd(SCN4-(μ-C6H4)-SCN4)Pd(CCPh)(PEt3)2] (12), respectively. Complexes 9-12 contain the Pd-S bond that is formed by the dipolar cycloaddition of the organic isothiocyanate to the Pd-azido bond. In contrast, the corresponding reactions of compounds 1and 2 with C6F5CN and Me3SiCN (organic nitriles, R-CN) gave an N-coordinated Pd(II)-tetrazolato compound {trans-[Pd(CCPh)(N4C-C6F5)(PMe3)2] (13)} and a mixture of Pd(II)-cyano complexes {trans-[Pd(CCPh)(CN)(PEt3)2] (14) and [Pd(CN)2(PEt3)2] (15)}, respectively. Bis(phosphine) bis(cyano) complexes of Pd and Ni, [M(CN)2L2] (L = PEt3, PMe3; L2 = DEPE), could be obtained independently by the reactions of [M(N3)2L2] with excess Me3SiCN in organic solvents.  相似文献   

5.
《Inorganica chimica acta》2001,312(1-2):40-52
The substitution of chloro ligand in [M(triphos)Cl]Cl complexes [M=Pd (1), Pt (2); triphos=Ph2PC2H4P(Ph)C2H4PPh2] by reaction with 1 equiv. of KX resulted in the formation of the ionic complexes [M(triphos)X]Cl [X=I, M=Pd (3), Pt (4); X=CN, M=Pd (5), Pt (6)]. Methanolic solutions of silver nitrate in excess displace the chloro ligand and counterion of 1 and 2, giving rise to the formation of the crystalline complexes [M(triphos)(ONO2)](NO3) [M=Pd (7), Pt (8)] suitable for X-ray diffraction studies. The complexes show a distorted square-planar environment around the metal, there being three coordination sites occupied by phosphorus atoms from the triphos and the fourth by the oxygen atom from a nitrate acting as monodentate ligand. A second NO3  is acting as counterion with D3h symmetry. The use of a high excess of SnCl2 in the presence of 1 equiv. of PPh3 enabled the formation of complexes [M(triphos)(PPh3)](SnCl3)2 [M=Pd (9), Pt (10)]. These complexes, in addition to [M(triphos)X]X [X=Br, M=Pd (1a), Pt (2a); X=I, M=Pd (1b), Pt (2b)], were synthesised and all Pt(II) complexes characterised by microanalysis. Mass spectrometry, IR spectroscopy, NMR spectroscopy and conductivity measurements were also used for characterisation. The structure and reactivity studies in solution were carried out by 31P{1H} NMR. The trends in chemical shifts δ (P) and 1J(195Pt, 31P) coupling constants were used to establish a sequence in the X ligand exchange reactions. While [Pd(triphos)I]I (1b) undergoes a ring-opening reaction by titration with AuI, the analogous Pt(II) complex (2b) does not react. The formation of new five-coordinate Pd(II) and Pt(II) complexes was observed by titration of 58 with potassium cyanide.  相似文献   

6.
The reactions of RuCl2[P(C6H5)3]3, RuCl2(tmeda)2, and RuCl2(1,5-COD)(tmeda) with polybasic amines such as pyrazole have been studied. From the phosphine complex, a binuclear complex has been isolated in which one pyrazole has been incorporated, while reactions of the latter two with excess pyrazole lead to the replacement of a tmeda ligand by two pyrazoles.  相似文献   

7.
Two series of methylpalladium(II) compounds with mono and bidentate nitrogen-donor ligands, namely [Pd(N-N)2(CH3)][X] (N-N=phen (1a), dm-phen (1b) (dm-phen=4,7-dimethyl-1,10-phenanthroline), tm-phen 1c (tm-phen=3,4,7,8-tetramethyl-1,10-phenanthroline); X=OTf, PF6 −) and [Pd(N-N)(L)(CH3)][OTf] (N-N=phen and L=py (1ad) (py=pyridine), N-N=phen and L=2-Ph-py (1ae) (2-Ph-py=2-phenyl-pyridine), N-N=phen and L=BzQ (1af) (BzQ=7,8-benzoquinoline), N-N=tm-phen and L=BzQ (1cf)), have been synthesised and fully characterised both in solid state and in solution. The crystal structures of [Pd(phen)2(CH3)][PF6] and [Pd(phen)(2-Ph-py)(CH3)][OTf] show a square planar coordination geometry for palladium with the monodentate ligand (one phen molecule plays this role in 1a) bound to the metal with its plane almost perpendicular to the coordination plane. In both structures the PdN bond length trans to the methyl is remarkably affected by its trans influence. The behaviour in solution is characterised for the first series of compounds by a dynamic process which makes the two N-N ligands equivalent, as corroborated by the 15N NMR analysis: only one averaged signal is shown for all of the four nitrogen atoms. No fluxional process is present for the compounds of the second series, and three main crosspeaks are shown in the 15N-1H HMQC spectra. In particular, the signal of the 15N trans to the methyl group has a typical chemical shift, which differs from those of two 15N trans to each other. Both series of complexes are reacted with carbon monoxide and the reaction products are studied by 1H NMR spectroscopy and, when possible, by isolating the acyl derivatives. The products of this reaction are affected by the nature of the second molecule of N-ligand.  相似文献   

8.
Four palladium(II) and platinum(II) saccharinate (sac) complexes with 2-(hydroxymethyl)pyridine (2-hmpy) and 2-(2-hydroxyethyl)pyridine (2-hepy), namely trans-[Pd(2-hmpy)2(sac)2]·H2O (1), trans-[Pt(2-hmpy)2(sac)2]·3H2O (2), trans-[Pd(2-hepy)2(sac)2] (3) and trans-[Pt(2-hepy)2(sac)2] (4), have been synthesized and characterized by elemental analysis, UV–vis, IR and NMR. Single crystal X-ray analysis reveals that the metal(II) ions in each complex are coordinated by two sac and two 2-hmpy or 2-hepy ligands with a trans arrangement. Anticancer effects of 14 were tested against four different cancer cell lines (A549 and PC3 for lung cancer, C6 for glioblastoma, and Hep3B for liver cancer). Cytotoxicity was first screened by the MTT assay and the results were further confirmed by the ATP assay. The mode of cell death was determined by both histological and biochemical methods. Among the metal complexes, complex 2 resulted in relatively stronger anti-growth effect in a dose-dependent manner (3.13–200 μM), compared to the others, by inducing apoptosis.  相似文献   

9.
The interaction of guanine, guanosine or 5-GMP (guanosine 5-monophosphate) with [Pd(en)(H2O)2](NO3)2 and [Pd(dapol)(H2O)2](NO3)2, where en is ethylenediamine and dapol is 2-hydroxy-1,3-propanediamine, were studied by UV-Vis, pH titration and 1H NMR. The pH titration data show that both N1 and N7 can coordinate to [Pd(en)(H2O)2]2+ or [Pd(dapol)(H2O)2]2+. The pKa of N1-H decreased to 3.7 upon coordination in guanosine and 5-GMP complexes, which is significantly lower than that of ∼9.3 in the free ligand. In strongly acidic solution where N1-H is still protonated, only N7 coordinates to the metal ion, but as the pH increases to pH ∼3, 1H NMR shows that both N7-only and N1-only coordinated species exist. At pH 4-5, both N1-only and N1,N7-bridged coordination to Pd(II) complexes are found for guanosine and 5-GMP. The latter form cyclic tetrameric complexes, [Pd(diamine)(μ-N1,N7-Guo]44+ and [Pd(diamine)(μ-N1,N7-5-GMP)]4Hx(4−x)−, (x=2,1, or 0) with either [Pd(en)(H2O)2](NO3)2 or [Pd(dapol)(H2O)2](NO3)2. The pH titration data and 1H NMR data agree well with the exception that the species distribution diagrams show the initial formation of the N1-only and N1,N7-bridged complexes to occur at somewhat higher pH than do the NMR data. This is due to a concentration difference in the two sets of data.  相似文献   

10.
《Inorganica chimica acta》2004,357(8):2331-2338
The di-μ-hydroxo complexes [NBu4]2[{(C6F5)2M(μ-OH)}2] (M=Pd, Pt) react with PhNCS in alcohol ROH solution to yield the N,S-chelating thiocarbamate metal complexes [NBu4][(C6F5)2M{η2-SC(OR)NPh}] (R=Me, Et or Prn). [NBu4]2[{(C6F5)2Pd(μ-OH)}2] also reacts with PhNCS in the presence of dialkylamines R2NH to yield the N,S-chelating thioureate (1−) palladium complexes [NBu4][(C6F5)2Pd{η2-SC(NR2)NPh}] (R=Me or Et). [NBu4][(C6F5)2M{η2-SC(X)NPh}] (M=Pd or Pt; X=OMe or NR2) reacts with [(C6F5)Pd(bpzm)(acetone)]ClO4 to yield the dinuclear complexes [(C6F5)2M{(μ22-{SC(X)NPh}Pd(C6F5)(bpzm)] (M=Pd or Pt, X=OMe or NR2; bpzm=bis(3,5-dimethylpyrazol-1-yl)methane). The single-crystal structures of [NBu4][(C6F5)2Pd{η2-SC(OMe)NPh}] and [(C6F5)2Pd{μ22-SC(NMe2)NPh}Pd(C6F5)(bpzm)] have been established by X-ray diffraction.  相似文献   

11.
Pt(II) and Pd(II) compounds containing the free radical 4-aminoTEMPO (4amTEMPO) were synthesized and characterised by X-ray diffraction methods. The disubstituted complexes cis- and trans-Pt(4amTEMPO)2I2 were studied. The trans isomer was prepared from the isomerisation of the cis analogue. The two Pd(II) compounds trans-Pd(4amTEMPO)2X2 (X = Cl and I) were also characterised by crystallographic methods. A mixed-ligand complex cis-Pt(DMSO)(4amTEMPO)Cl2 was synthesized from the isomerisation of the trans isomer in hot water. Its crystal structure was also determined. In all the complexes, the 4amTEMPO ligand is bonded to the metal through the -NH2 group, since the nitroxide O atom is not a good donor atom for the soft Pt(II) and Pd(II) metals. The conformation of the 4-aminoTEMPO ligand was compared to those of the few reported structures in the literature.  相似文献   

12.
Several pentahalophenylplatinate complexes with Pt-Sn metal-metal bonds have been synthesized by facile insertion of SnCl2 into Pt-Cl bonds of the starting platinum substrates. The complexes have been characterized spectroscopically and, in the case of (NBu4)2[trans-Pt(SnCl3)2(C6F5)2] and (NBu4)2[trans-Pt2(μ-Cl)2(SnCl3)2(C6F5)2], the structures have been analyzed by X-ray diffraction. The reactivity of these derivatives towards neutral ligands has been explored. The electronic spectra of some selected derivatives have also been examined.  相似文献   

13.
The hydroxo complex [NBu4]2[Ni2(C6F5)4(μ-OH)2] reacts with ammonium O,O-dialkyldithiophosphates, O-alkyl-p-methoxyphenyldithiophosphonate acids and ammonium O-alkylferrocenyldithiophosphonates in dichloromethane under mild conditions to give, respectively, [NBu4][Ni(C6F5)2{S(S)P(OR)2}] (R=Me (1), Et (2), iPr (3)) and [NBu4][Ni(C6F5)2{S(S)P(OR)Ar}] (Ar=p-MeOC6H4, R=Me (4), Et (5), iPr (6); Ar=ferrocenyl; R=Me (7), Et (8), iPr (9)). The monothiophosphonate nickel complexes [NBu4][Ni(C6F5)2{S(S)P(OR)(ferrocenyl)}] (R=Et (10), iPr (11)) are obtained by reaction of the hydroxo complex with O-alkylferrocenyldithiophosphonate acids. Analytical (C, H, N, S), conductivity, and spectroscopic (IR, 1H, 19F and 31P NMR, and FAB-MS) data were used for structural assignments. A single-crystal X-ray diffraction study of [NBu4][Ni(C6F5)2{S(S)P(OMe)(p-MeOC6H4)}] (4) and [NBu4][Ni(C6F5)2{S(O)P(OEt)(ferrocenyl)}] (10) shows that in both cases the coordination around the nickel atom es essentially square planar with NiC2S2 and NiC2SO central cores, respectively.  相似文献   

14.
Reaction of benzisothiazolinone (Bit), a well-known biocide, with the Pd(II) and Pt(II) am(m)ine precursors cis-[Pd(en)(H2O)2](NO3)2 and cis-[Pt(NH3)2(H2O)2](NO3)2 yielded cis-Pd(en)(Bit−1H)2 and cis-Pt(NH3)2(Bit−1H)2, respectively. Bit is bound to the metal centres in both cases through the deprotonated isothiazolinone N. The crystal structures of a Bit/BitO co-crystal and cis-Pd(en)(Bit−1H)2·H2O are also described.  相似文献   

15.
A Pt(II) complex containing three 1-methylcytosine ligands (C), [Pt(NH3)C3] (CIO4)2· H2], has been prepared starting with cis-Pt(NH3)2Cl2, and its crystal structure has been determined. The title compound represents a model of a hypothetical interaction of cis.Pt(II) with three biomolecules which proceeds via an intermediate monochloro complex, cis-[Pt(NH3)2CCl]Cl, and loss of ammonia from this compound. [Pt(NH3)C3](ClO4)2·H2O crystallizes in space group P21/c (No. 14) with a = 15.296(3), b = 4.666(3), c = 14.025(2) Å, β = 122.61(1)° and has 4 formula units in the unit cell. Data were collected with use of a Syntex P21 diffractometer and MoKα radiation. The crystal structure was determined by standard methods and refined to R1 = 0.043 and R2 = 0.056 based on 2925 independent reflections. The compound contains the three 1-methylcytosine ligands bound through N(3) with the three ligands almost perpendicular to the Pt coordination plane. The two C ligands trans to each other have identical orientations with respect to the platinum square plane whereas the cytosine trans to NH3 has the opposite orientation. Bond lengths and angles are normal.  相似文献   

16.
The Pd(II) and Pt(II) complexes with triazolopyrimidine C-nucleosides L1 (5,7-dimethyl-3-(2′,3′,5′-tri-O-benzoyl-β-d-ribofuranosyl-s-triazolo)[4,3-a]pyrimidine), L2 (5,7-dimethyl-3-β-d-ribofuranosyl-s-triazolo[4,3-a]pyrimidine) and L3 (5,7-dimethyl[1,5-a]-s-triazolopyrimidine), [Pd(en)(L1)](NO3)2, [Pd(bpy)(L1)](NO3)2, cis-Pd(L3)2Cl2, [Pd2(L3)2Cl4] · H2O, cis-Pd(L2)2Cl2 and [Pt3(L1)2Cl6] were synthesized and characterized by elemental analysis and NMR spectroscopy. The structure of the [Pd2(L3)2Cl4] · H2O complex was established by X-ray crystallography. The two L3 ligands are found in a head to tail orientation, with a Pd?Pd distance of 3.1254(17) Å. L1 coordinates to Pd(II) through N8 and N1 forming polymeric structures. L2 coordinates to Pd(II) through N8 in acidic solutions (0.1 M HCl) forming complexes of cis-geometry. The Pd(II) coordination to L2 does not affect the sugar conformation probably due to the high stability of the C-C glycoside bond.  相似文献   

17.
18.
The reactions of d(+)-biotin with K2MX4, where M = Pd(II) or Pt(II) and X = Cl or Br have been studied in acidic, neutral or alkaline aqueous solutions. Complexes of the type trans-M(Bio)2X2 have been isolated for both metals and characterized with elemental analyses, conductivity measurments, ir spectra, 1Hnmr and 13Cnmr spectra. The complex of the type [Pd(Bio)Cl2]2 has also been isolated from DMF solutions. The results indicate that d(+)-biotin coordinates exclusively through its sulfur atom with these metals in all the complexes in the present study, in the solid state or in solution.  相似文献   

19.
The synthesis and characterization of several complexes of the composition [{M(terpy)}n(L)](ClO4)m (M = Pt, Pd; L = 1-methylimidazole, 1-methyltetrazole, 1-methyltetrazolate; terpy = 2,2′:6′,2″-terpyridine; n = 1, 2; m = 1, 2, 3) is reported and their applicability in terms of a metal-mediated base pair investigated. Reaction of [M(terpy)(H2O)]2+ with 1-methylimidazole leads to [M(terpy)(1-methylimidazole)](ClO4)2 (1: M = Pt; 2: M = Pd). The analogous reaction of [Pt(terpy)(H2O)]2+ with 1-methyltetrazole leads to the organometallic compound [Pt(terpy)(1-methyltetrazolate)]ClO4 (3) in which the aromatic tetrazole proton has been substituted by the platinum moiety. For both platinum(II) and palladium(II), doubly metalated complexes [{M(terpy)}2(1-methyltetrazolate)](ClO4)3 (4: M = Pt; 5: M = Pd) can also be obtained depending on the reaction conditions. In the latter two compounds, the [M(terpy)]2+ moieties are coordinated via C5 and N4. X-ray crystal structures of 1, 2, and 3 are reported. In addition, DFT calculations have been carried out to determine the energy difference between fully planar [Pd(mterpy)(L)]2+ complexes Ip-IVp (mterpy = 4′-methyl-2,2′:6′,2″-terpyridine; L = 1-methylimidazole-N3 (I), 1-methyl-1,2,4-triazole-N4 (II), 1-methyltetrazole-N3 (III), or 3-methylpyridine-N1 (IV)) and the respective geometry-optimized structures Io-IVo. Whereas this energy difference is larger than 70 kJ mol−1 for compounds I, II, and IV, it amounts to only 0.8 kJ mol−1 for the tetrazole-containing complex III, which is stabilized by two intramolecular C-H?N hydrogen bonds. Of all complexes under investigation, only the terpyridine-metal ion-tetrazole system with N3-coordinated tetrazole appears to be suited for an application in terms of a metal-mediated base pair in a metal-modified oligonucleotide.  相似文献   

20.
《Inorganica chimica acta》1988,145(2):289-298
Manganese(II) complexes of long chain phosphines, MnX2(phosphine)(THF) XCl, Br, I; phosphine=P(C12H25)3, P(C14H29)3, P(C16H33)3, PPh(C12H25)2, PPh(C14H29)2, PPh(C16H33)2; THF=tetrahydrofuran have been prepared and characterised. These complexes react reversibly with molecular oxygen both in the solid state and in THF and toluene solution forming 1:1 Mn:O2 adducts. These adducts are monomeric in toluene and THF and molecular weight measurements confirm that the THF ligand remains coordinated in toluene solution leading to the formation of MnX2(phosphine)(THF)(O2) species. All the O2-adducts are highly coloured and binding curves have been constructed and Ko2 values calculated. Based on these Ko2 values the affinity for dioxygen is in the order XCl>Br>I in toluene solution, with Hill coefficient, n, indicating cooperativity (1-1.5). In THF dioxygen binding does not appear to be cooperative.  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