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1.
The new sodium bis(2-pyridylthio)acetate ligand, Na[(pyS)2CHCO2], has been prepared in ethanol solution using 2-mercaptopyridine, dibromoacetic acid and NaOH. New mono- and di-organotin(IV) derivatives containing the anionic bis(2-pyridylthio)acetate have been synthesized from reaction between SnRnCl4−n (R = Me, Ph and nBu, n = 1-2) acceptors and Na[(pyS)2CHCO2]. Mono-nuclear complexes of the type {[(pyS)2CHCO2]RnSnCl4−n−1} have been obtained and characterized by elemental analyses, FT-IR, ESI-MS, multinuclear (1H and 119Sn) NMR spectral data and X-ray crystallography. ESI-MS spectra of methanol solution of the complexes show the existence of hydrolysed species. Attempts to crystallize the dimethyltin(IV) derivative (3), from acetonitrile solution yield the dimeric dicarboxylatotetramethyldistannoxane (8), which was characterized by single crystal diffraction analysis.  相似文献   

2.
New di- and triorganotin(IV) derivatives of tyrosinylphenylalanine (H2Tyr-Phe) with general formulae R2Sn(Tyr-Phe) where R = Me,n-Bu, n-Oct and Ph, and R3Sn(HTyr-Phe) where R = Me and Ph have been synthesized. The bonding and coordination behaviour in these derivatives are discussed on the basis of FT-IR, multinuclear 1H, 13C and 119Sn NMR and 119Sn Mössbauer spectroscopic studies. These investigations suggest that dipeptide in R2Sn(Tyr-Phe) acts as dianionic tridentate coordinating through −C(O)O, -NH2 and (-CO)Npeptide groups while in case of R3Sn(HTyr-Phe) the ligand acts as monoanionic bidentate coordinating through -C(O)O and -NH2, and the polyhedron around tin in R2Sn(Tyr-Phe) and R3Sn(HTyr-Phe) is a distorted trigonal-bipyramidal. It is further confirmed by the single crystal X-ray structure of Me2Sn(Tyr-Phe) · MeOH which shows two methyl groups and peptide nitrogen (Npeptide) in the equatorial positions, while the two axial positions are occupied by the carboxylic oxygen (Ocarboxyl) and the amino nitrogen (Namino) atom from the same ligand molecule. One methanol molecule is also present in the asymmetric unit.  相似文献   

3.
Some organotin(IV) triazolates of general formula RnSn(L)4 − n (where R = Me, n-Bu and Ph for n = 2; R = Me, n-Pr and n-Bu for n = 3 and HL = 3-amino-5-mercapto-1,2,4-triazole) have been synthesized by the reaction of R2SnCl2/R3SnCl with NaL in 1:2/1:1 molar ratio. Whereas, Oct2SnL2 has been synthesized azeotropically by the reaction of Oct2SnO and HL in 1:2 molar ratio. As good single crystals were not obtained, a large number of experimental techniques, viz. UV/Vis, IR, far-IR, multinuclear (1H, 13C and 119Sn) NMR and 119Sn Mössbauer spectroscopic studies, were used to accomplish a definitive characterization and determination of their most probable structures. In these compounds triazole acts as a monoanionic bidentate ligand, coordinating through Sexo and N(4). The IR and 119Sn Mössbauer spectroscopic studies allow us to deduce a highly distorted cis-trigonal-bipyramidal structure for R3SnL and a distorted skew trapezoidal-bipyramidal structure for R2SnL2, in the solid state. However, 1H, 13C and 119Sn NMR spectral studies revealed that weak bonding between tin and N(4) is further weakened in the solution leading to pseudo-tetrahedral/tetrahedral structure.  相似文献   

4.
Reactions of bis(pyridin-2-yl)ketone with tin tetrahalides, SnX4 (X = Cl or Br), or organotin trichlorides, RSnCl3 (R = Ph, Bu or CH2CH2CO2Me), in ROH (R = Me or Et) readily produces RObis(pyridin-2-yl)methanolato)tin complexes, [5: RO(py)2C(OSnX3)] (5: R,X = Me,Cl; Et,Cl; Et,Br) or [6: MeO(py)2C(OSnCl2R)] (R = Ph, Bu, CH2CH2CO2Me). In addition, halide exchange reaction between SnI4 and (5: R,X = Me,Cl) occurred to give (5: R,X = Me,I). The crystal structures of six tin(IV) derivatives indicated, in all cases, a monoanionic tridentate ligand, [RO(py)2C(O)-N,O,N], arranged in a fac manner about a distorted octahedral tin atom. The Sn–O and Sn–N bonds lengths do not show much variation amongst the six complexes despite the differences in the other ligands at tin.  相似文献   

5.
Five-, six-, and seven-coordinate volatile butyltin(IV) heterobimetallic derivatives, respectively of the types, [BuSn{(μ-OPri)2Al(OPri)2}Cl2] (1), [BuSn{(μ-OPri)2Al(OPri)2}2Cl] (2), and BuSn{(μ-OPri)2M(OPri)x − 2}3 (3:M = Al (x = 4); 4:M = Ga (x = 4); 5:M = Nb (x = 6)) have been synthesized by the reactions of BuSnCl3 with potassium tetraisopropoxoaluminate in 1:1, 1:2, and 1:3 molar ratios. Replacement reactions of chloride in (1) and (2) with appropriate alkoxometallate (tetraisopropoxoaluminate, tetraisopropoxogallate, or hexaisopropoxoniobate) ligands result in the formation of novel BuSn(IV) heterotri- and tetra-metallic derivatives. All of these derivatives have been characterized by elemental analyses, molecular weight measurements, and spectroscopic (IR, 1H, 27Al, and 119Sn NMR) studies. Based on these studies, plausible structures for the new derivatives involving bidentate ligation of the alkoxometallate ligands have been suggested.  相似文献   

6.
New organotin(IV) derivatives containing the anionic ligand bis(3,5-dimethylpyrazolyl)dithioacetate [L2CS2]? have been synthesized by reaction of SnR n X4? n (R?=?Me, Ph, n Bu or Cy; n?=?1–3) acceptors and Li[L2CS2]. Mononuclear complexes of the type [L2CS2]R n SnCl4? n ?1} have been obtained and fully characterized by elemental analyses and FT-IR in the solid state, and by NMR (1H and 119Sn) spectroscopy, conductivity measurements and electrospray ionization mass spectrometry (ESI-MS) in solution. ESI-MS spectra of methanol solutions of diorganotin derivatives, recorded with fragmentor potentials of 0, 50, 100 and 150?V, show the occurrence at 150?V of peaks attributable to the loss of the CS2 group from the ligands and the formation of stable tetraorganodistannoxane species.  相似文献   

7.
Novel heteroscorpionate-containing tin and organotin(IV) complexes, [SnRnX3 − n(L)], R = Me, Bun, Ph, or cy; X = Cl, Br or I, n = 0, 1, 2 or 3; L = bis(pyrazol-1-yl)acetate (bpza) or bis(3,5-dimethylpyrazol-1-yl)acetate (bdmpza), have been synthesized and characterized by spectral (IR, 1H, 13C and 119Sn NMR, 119mSn Mössbauer) and analytical data. In [SnI3(bdmpza)], the ligand is fac-N,N′,O-tridentate, the three iodine atoms thus also fac about the six-coordinate tin(IV) atom. Neutral bpzaH reacts with BunSnCl3, PhSnCl3 and SnCl4 in Et2O in the absence of base, yielding 1:1 adducts [XSnCl3(bpzaH)] (X = R or Cl).  相似文献   

8.
The modification of bis(pyrazol-1-yl)methane by sulfur or selenium on the methine carbon has been successfully carried out by the reaction of the bis(pyrazol-1-yl)methide anion, prepared in situ by the reaction of bis(pyrazol-1-yl)methane with n-BuLi, with elemental sulfur or selenium. These bis(pyrazol-1-yl)methylthiolate or selenolate anions reacted with Ph2SnCl2 to form new organotin derivatives CH(3,5-Me2Pz)2ESnPh2Cl (Pz = pyrazol-1-yl, E = S (1) or Se (2)), which have been characterized by NMR, IR and elemental analysis. The molecular structure of 2 determined by X-ray structure analysis indicates that bis(3,5-dimethylpyrazol-1-yl)methylselenolate is a bidentate monoanionic κ2-[N,Se] chelating ligand. The treatment of CH(3,5-Me2Pz)2ESnPh2Cl with W(CO)5THF resulted in the decomposition of ligands to yield pyrazole derivative of (3,5-Me2PzH)W(CO)5, while direct treatment of bis(pyrazol-1-yl)methylthiolate or selenolate anions with M(CO)5THF (M = Mo or W) formed their tricarbonyl metal anions . Succedent reaction of these carbonyl metal anions with Ph2SnCl2 or Ph3SnCl yielded heterobimetalic compounds CH(Pz)2EM(CO)3SnPhnCl3−n (n = 2 or 3), which have also been characterized by 1H NMR, IR and elemental analysis. The structure of CH(3,4,5-Me3Pz)2SW(CO)3SnPh3 (8) has been confirmed by X-ray single crystal diffraction, showing that bis(3,4,5-trimethylpyrazol-1-yl)methylthiolate acts as a tridentate, monoanionic κ3-[N,S,N] chelating ligand.  相似文献   

9.
The new sodium bis(1-methyl-1H-imidazol-2-ylthio)acetate, Na[(S-tim)2CHCO2], has been prepared in ethanol solution using 2-mercapto-1-methylimidazole, dibromoacetic acid and NaOH. New di- and tri-organotin(IV) derivatives have been synthesized from reaction between SnRnCl4−n (R = Ph, Cy and nBu, n = 2-3) acceptors and Na[(S-tim)2CHCO2]. Complexes of the type {[κ1O-(S-tim)2CHCO2]SnR3} and related decarboxylated species {[κ2N,N-(S-tim)2CH2]SnR2Cl2} have been obtained and characterized by elemental analyses, FT-IR, ESIMS and multinuclear (1H, 13C and 119Sn) NMR spectral data. The adduct {κ1O-[(S-tim)2CHCO2]Sn(H2O)(C4H9)3} was characterized by single crystal X-ray studies. The dichloromethane reaction solution of {κ1O-[(S-tim)2CHCO2]Sn(C6H5)3} was re-crystallized and the decarboxylated species {[(S-tim)2CH2]SnCl(H2O)(C6H5)3} was obtained as a crystalline solid and characterized by X-ray crystallography.  相似文献   

10.
New triorganotin(IV) derivatives of the general formula R3Sn(Umb) (where, R = Me, n-Bu and Ph; Umb = umbelliferone anion) have been synthesized using sodium salt method. Further, the adducts of the general formula R3Sn(Umb) · phen (where R = Me and Ph; phen = 1,10-phenanthroline) have also been synthesized by the interaction of the triorganotin(IV) derivatives of umbelliferone with 1,10-phenanthroline. The bonding and coordination behavior of these derivatives are discussed on the basis of IR, NMR (1H, 13C and 119Sn), and 119Sn Mössbauer spectroscopic studies. These investigations indicate that umbelliferone acts as a monoanionic bidentate ligand in R3Sn(Umb) coordinating through O(7) and O(1) in the solid-state. These polymeric R3Sn(Umb) derivatives (where R = Me and n-Bu) have been proposed to have a trans-trigonal bipyramidal geometry with the three R groups in equatorial positions, while the axial positions are occupied by a phenolic oxygen and the O(1) atom from the adjacent molecule. A pseudotetrahedral geometry has been suggested for Ph3Sn(Umb). A distorted octahedral geometry around tin has been proposed for R3Sn(Umb) · phen, in which umbelliferone anion acts as a monodentate ligand coordinating through phenolic oxygen O(7). The newly synthesized derivatives have been assayed for their anti-inflammatory, cardiovascular and anti-microbial activities. The average LD50 values >1000 mg kg−1 of these derivatives indicate their safety margin. Among all the compounds tested, Ph3Sn(Umb) · phen has been found to show potent anti-inflammatory activity with low mammalian toxicity and mild hypotensive activity.  相似文献   

11.
The Sn(IV) R2SnCl2(γ-pyrone)n [R = Me or Ph; γ-pyrone = 4H-pyran-4-one (PYR) or 2,6-dimethyl-4H-pyran-4-one (DMP); n = 1 or 2] adducts have been synthesized and investigated. The adducts Ph2SnCl2(PYR) (1), Me2SnCl2(PYR)2 (2), Ph2SnCl2(DMP) (3) and Me2SnCl2(PYR)(PNO) (4), (PNO = 4-methylpyridine N-oxide) have been prepared by the addition of the corresponding γ-pyrone to chloroform solution of R2SnCl2. The new compounds have been characterized by elemental analysis and spectroscopic (IR, 1H, 13C NMR and Mössbauer) means. The single-crystal diffraction study of 1 shows the Sn(IV) to be five-coordinate, [Sn-O and Sn-Cl(1), Sn-Cl(2) distances of 2.3190(13) and 2.4312(6), 2.3653(7), respectively], and the Cl-Sn-Cl bond angle to be 91.17°. The reactivity of 2 towards bipy, Ph3PO, QNO (Q = quinoline) resulted in complete displacement of PYR and formation of already known compounds whereas, the PNO displaced only one equivalent of PYR, causing the preparation of the new mixed complex 4, possibly through a SN1 formation mechanism. DFT/B3LYP molecular orbital calculations were carried out for the 1-4 complexes, their precursors, Ph2SnCl2, (5) and Me2SnCl2, (6) and the ligands, PYR, DMP and PNO in an attempt to explain the structures and reactivity of the complexes. Optimized resulting geometries, vibrational frequencies, and the electron-accepting ability of the complexes and the precursors towards nucleophiles are discussed.  相似文献   

12.
The Sn(IV) butyl complexes [BunSnCl3 − n(NCN)] (NCN = [C6H3(CH2NMe2)2-2,6], n = 1 (1), 2 (2), 3 (3)) were prepared. Spectroscopic analysis of 1-3 by 1H and 119Sn NMR gave evidence for the presence of intramolecular N → Sn interactions in solution. The molecular structure of 1, as determined by a single-crystal X-ray diffraction study, revealed that it contained a six-coordinate Sn(IV) center with intramolecular N → Sn coordination of both ortho-amine substituents. Addition of SnCl4 to 1 resulted in the isolation of the HCl adduct [BuSnCl3(NCN+H)] (6). Reactions of 2 and 3 with SnCl4 each resulted in the HCl salt [SnCl4(NCN+H)] (8) and the corresponding butyltin chloride, Bu2SnCl2 and Bu3SnCl, respectively. The formation of HCl adducts 6 and 8 was ascribed to transfer of the NCN ligand to SnCl4 and the presence of HCl (from partial hydrolysis of the product or SnCl4 during the work up procedure). The molecular structures of 6 and 8 have been determined through single-crystal X-ray diffraction and revealed the presence of a [BuSnCl3(aryl)] or [SnCl4(aryl)] stannate anion, respectively, with in each case one coordinated ortho-amine function and one protonated amine moiety involved in N-H?Cl-Sn hydrogen bonding in both compounds (2.14 Å for 6 and 2.18 Å for 8).  相似文献   

13.
A hyphenated ion-pair (tetrabutylammonium chloride—TBACl) reversed phase (C18) HPLC-ICP-MS method (High Performance Liquid Chromatography Inductively Coupled Plasma Mass Spectroscopy) for anionic Rh(III) aqua chlorido-complexes present in an HCl matrix has been developed. Under optimum chromatographic conditions it was possible to separate and quantify cationic Rh(III) complexes (eluted as a single band), [RhCl3(H2O)3], cis-[RhCl4(H2O)2], trans-[RhCl4(H2O)2] and [RhCln(H2O)6−n]3−n (n = 5, 6) species. The [RhCln(H2O)6−n]3−n (n = 5, 6) complex anions eluted as a single band due to the relatively fast aquation of [RhCl6]3− in a 0.1 mol L−1 TBACl ionic strength mobile phase matrix. Moreover, the calculated t1/2 of 1.3 min for [RhCl6]3− aquation at 0.1 mol kg−1 HCl ionic strength is significantly lower than the reported t1/2 of 6.3 min at 4.0 mol kg−1 HClO4 ionic strength. Ionic strength or the activity of water in this context is a key parameter that determines whether [RhCln(H2O)6−n]3−n (n = 5, 6) species can be chromatographically separated. In addition, aquation/anation rate constants were determined for [RhCln(H2O)6−n]3−n (n = 3-6) complexes at low ionic strength (0.1 mol kg−1 HCl) by means of spectrophotometry and independently with the developed ion-pair HPLC-ICP-MS technique for species assignment validation. The Rh(III) samples that was equilibrated in differing HCl concentrations for 2.8 years at 298 K was analyzed with the ion-pair HPLC method. This analysis yielded a partial Rh(III) aqua chlorido-complex species distribution diagram as a function of HCl concentration. For the first time the distribution of the cis- and trans-[RhCl4(H2O)2] stereoisomers have been obtained. Furthermore, it was found that relatively large amounts of ‘highly’ aquated [RhCln(H2O)6−n]3−n (n = 0-4) species persist in up to 2.8 mol L−1 HCl and in 1.0 mol L−1 HCl the abundance of the [RhCl5(H2O)]2− species is only 8-10% of the total, far from the 70-80% as previously proposed. A 95% abundance of the [RhCl6]3− complex anion occurs only when the HCl concentration is above 6 mol L−1. The detection limit for a Rh(III) species eluted from the column is below 0.147 mg L−1.  相似文献   

14.
N-n-Propyl-2-pyridylmethanimine, 1, N-n-octyl-2-pyridylmethanimine, 2, N-n-lauryl-2-pyridylmethanimine, 3, and N-n-octadecyl-2-pyridylmethanimine, 4 have been used in conjunction with copper(II) bromide and azo initiators for the reverse atom transfer radical polymerisation of a range of methacrylates. AIBN to CuIIBr2 ratios of 0.5:1, 0.75:1 and 1:1 give PMMA with Mn 11 500 g mol−1 (PDi = 1.24) (at 22% conversion), 12 500 g mol−1 (PDi = 1.06) (at 83% conversion) and 10 900 g mol−1 (PDi = 1.11) (at 84% conversion), respectively. A CuIIBr2 complex is demonstrated to be needed at the start of the reaction for good control over molecular weight and polydispersity as reactions using Cu(I)Br as catalyst yielded PMMA of Mn 31 000 g mol−1 (PDi = 2.90), reactions with no copper yield PMMA of Mn 33 000 g mol−1 (PDi = 2.95). The RATRP of styrene was carried out using CuIIBr2 as catalyst. AIBN to CuIIBr2 ratio of 0.5:1, 0.75:1 and 1:1 gave PS with Mn = 12 400 g mol−1 (PDi = 1.27) at low conversion, Mn = 15 500 g mol−1 (PDi = 1.11) and 12 400 g mol−1 (PDi = 1.38), respectively at ∼85% conversion. A series of block copolymers of MMA with BMA, BzMA and DMEAMA (15 600 g mol−1 (PDi = 1.18), 13 300 g mol−1 (PDi = 1.14) 15 300 g mol−1 (PDi) = 1.16), using a PMMA macroinitiator were prepared. Emulsion polymerisation of MMA using [initiator]:[Cu(II)Br2] ratio = 0.5:1 with Brij surfactant gave a linear increase of Mn with respect to conversion, final Mn = 112 800 g mol−1 (PDi = 1.42). Further reactions were carried out with [initiator]:[Cu(II)Br2] ratio = 0.75:1 and 1:1. Both giving PMMA with Mn ∼ 32 000 g mol−1 (PDi ∼ 2.4). These reactions exhibit no control, this is because the azo initiator is present in excess and all of the monomer is consumed by a free radical polymerisation as opposed to a controlled reaction. Particle size analysis (DLS) showed the particle size between 160 and170 nm in all cases.  相似文献   

15.
The thermo-sensitive swelling behaviour of hydrogels based on 2-(2-methoxyethoxy)ethyl methacrylate (MEO2MA) and synthesized by free radical polymerization has been investigated. The homopolymer hydrogel presents a low critical solution temperature (LCST) close to room temperature, which can be modulated by copolymerization with longer oligo(ethylene glycol) side chain methacrylates (OEGxMA). Then, three series of copolymeric hydrogels synthesized with MEO2MA and several low ratios of OEGxMA with Mn = 475 g mol−1 (OEG8MA), Mn = 1100 g mol−1 (OEG23MA) and Mn = 2080 g mol−1 (OEG45MA) were studied. In addition to conventional tetra(ethylene glycol) dimethacrylate (TEGDMA) crosslinker, the use of biodegradable oligo(caprolactone) dimethacrylate (OCLDMA) was also tested. The hydrophilic/hydrophobic balance, function of the short and the long OEG side chains, establishes a swelling behaviour depending on monomer composition, side chain length and temperature. The swelling at equilibrium increases with increasing the amount of OEGxMA in the copolymer and, at the same time, the collapsing moves progressively to higher temperature. The temperature dependent volumetric response of some of these hydrogels can be compare with the most extended thermo-sensitive hydrogel, which is based on poly(N-isopropylacrylamide) (P(N-iPAAm)). Therefore, they are potential candidates to replace it in applications where biocompatibility is required.  相似文献   

16.
The structure of bis(dimethylammonium) pentachloroantimonate(III), [(CH3)2NH2]2[SbCl5], BDP, was studied at 15 K and ambient pressure by single-crystal X-ray diffraction as well as at ambient temperature and high pressures up to 4.87(5) GPa by Raman spectroscopy. BDP crystallizes in the orthorhombic Pnma space group with a=8.4069(4), b=11.7973(7), c=14.8496(7) Å, and Z=4; R1=0.0381, wR2=0.0764. The structure consists of distorted [SbCl6]3− octahedra forming zig-zag [{SbCl5}n]2n chains that are cross-linked by dimethylammonium [(CH3)2NH2]+ cations. The organic and inorganic substructures are bound together by the N-H…Cl hydrogen bonds. The distortions of [SbCl6]3− units increase, partly due to the influence of the hydrogen bonds which became stronger, with decreasing temperature. The preliminary room temperature, high-pressure X-ray diffraction experiments suggest that BDP undergoes a first-order phase transition below ca. 0.44(5) GPa that destroys single-crystal samples. The transition is accompanied by changes in the intensities and positions of the Raman lines below 400 cm−1.  相似文献   

17.
The tetradendate macrocyclic ligands, [H2L-1 = 5,12-dioxa-7,14-dimethyl-1,4,8,11-tetraazacyclotetradeca-1,8-diene] and [H2L-2 = 6,14-dioxa-8,16-dimethyl-1,5,9,13-tetraazacyclohexadeca-1,9-diene] have been prepared by the condensation reaction of 1,2-diaminoethane and 1,3-diaminopropane, respectively, with ethyl acetoacetate in methanol at room temperature. The diorganotin(IV) complexes of general formula [R2Sn(L-1)/R2Sn(L-2)] (R = Me, n-Bu and Ph) have been synthesized by template condensation reaction of 1,2-diaminoethane or 1,3-diaminopropane and ethyl acetoacetate with R2SnCl2 (R = Me or Ph) or n-Bu2SnO in 2:2:1 molar ratio at ambient temperature (35 ± 2 °C) in methanol. The solid-state characterization of resulting complexes have been carried out by elemental analysis, IR, recently developed DART-mass, solid-state 13C NMR, 119mSn Mössbauer spectroscopic studies. These studies suggest that in all of the studied complexes, the macrocyclic ligands act as tetradentate coordinating through four nitrogen atoms giving a skew-trapezoidal bipyramidal environment around tin center. Since, the studied diorganotin(IV) macrocyclic complexes are insoluble in common organic solvents, hence good crystals could not be grown for single crystal X-ray crystallographic studies. Thermal studies of all of the studied complexes have also been carried out in the temperature range 0-1000 °C using TG, DTG and DTA techniques. The end product of pyrolysis is SnO2 confirmed by XRD analysis.  相似文献   

18.
Stable polyfluorinated bis- and tris-(alkoxy)methyl cations were prepared by the reaction of the corresponding difluoroformals (RfO)2CF2 (Rf = -CH2CF3, -CH(CF3)2, -CH2CF2Cl) with an excess of SbF5. Although the cation (CF3CH2O)2CF+ (1a) is stable at ambient temperature, the chlorinated analog (ClCF2CH2O)2CF+ (3a) can be generated only at low temperature in SO2ClF solvent and rapidly decomposes at ambient temperature. Although the salt [(CF3)2CHO]2CF+SbnF5n+1 (2a) is slightly more stable than the salt of cation 3a, at ambient temperature it undergoes rapid disproportionation with formation of equal amounts of [(CF3)2CHO]3C+SbnF5n+1 (2b) and CF3OCH(CF3)2 (2c). Stable solid salt 2b (n = 2) was isolated and fully characterized by 1H, 19F and 13C NMR spectroscopy and its structure was confirmed by single crystal X-ray diffraction.  相似文献   

19.
Reduction by NaBH4 of the imine functions of (5,7,7,13-tetramethyl-13-nitro-1,4,8,11-tetraazacyclotetradec-4-ene)-nickel(II) and -copper(II), and of their 13-ethyl-5,7,7-trimethyl-homologues, yield the nitro-substituted cyclic tetraamine cations (5,5,7,13-tetramethyl-13-nitro-1,4,8,11-tetraazacyclotetradecane)-nickel(II) and -copper(II), [M(neh)]2+, and (13-ethyl-5,5,7-trimethyl-homologues, [M(nph)]2+, respectively. The nickel(II) cations form square–planar, singlet ground, state salts with poorly coordinating anions and octahedral, triplet ground state, compounds with additional ligands, trans-β-[Ni(neh)A2], A = Cl, NCS and trans-β-[Ni(neh)A2](ClO4)2, X = NH3, MeCN, all with nitrogen configuration III, 1R,4R,8S,11S = β. With oxalate the chain-polymeric compound catena-trans-β-[Ni(neh)(μ-C2O4)]n · 3n(H2O) is formed. Folded macrocycle compounds cis-α-[Ni(neh)(C5H7O2)]ClO4 and cis-α-[{Ni(neh)}2(C2O4)](ClO4)2 are formed with the chelates acetylacetonate and oxalate, with configuration 1R,4R,8R,11R = α. These react with HClO4 to form metastable α-[Ni(neh)](ClO4)2 with retention of configuration. The copper(II) cations form crimson salts with poorly coordinating anions and compounds of the type β-[Cu(neh)A]ClO4 of varying shades of blue with coordinating anions. Structures of singlet ground state square–planar nickel(II) compounds β-[Ni(neh)](ClO4)2 · H2O, β-[Ni(neh)](ClO4)2, β-[Ni(neh)]2[ZnCl3(OH2)]2[ZnCl4] · H2O and α-[Ni(neh)](ClO4)2, the triplet ground state chain-polymeric compound catena-trans-β-[Ni(neh)(μ-C2O4)]n · 3n(H2O) and of square–pyramidal β-[Cu(nph)Cl]ClO4 are reported.  相似文献   

20.
Six new chiral triorganotin(IV) complexes, {(R3Sn)2[C3H6(COO)2]}n (R = Me: 1; Bu: 2), {(R3Sn)2[C4H8(COO)2]}n (R = Me: 3; Bu: 4), and {(R3Sn)2[C2H4O(COO)2]}n (R = Me: 5; Bu: 6) have been prepared by treatment of (R)-(+)-methylsuccinic acid, (S)-(+)-methylglutaric acid and l-(−)-malic acid, with the corresponding R3SnCl (R = Me, Bu) and sodium ethoxide in methanol. All the complexes were characterized by elemental analysis, FT-IR, NMR (1H, 13C, 119Sn) spectroscopy and TGA. Except for 3, all of the complexes were also characterized by X-ray crystallography. The structural analyses reveal that complexes 1 and 5 have 2D network structures in which (R)-(+)-methylsuccinic acid and l-(−)-malic acid act as tetradentate ligands coordinated to trimethyltin(IV) ions. Complexes 2 and 4 have 3D metal-organic framework structures in which the deprotoned acids serve as tetradentate ligands. Complex 6 adopts a 1D zigzag chain structure and forms a 2D supramolecular framework through intermolecular C-H?O interactions. In addition, the antitumor activities of complexes 1-6 have been studied. We also have measured the specific rotation of the chiral dicarboxylic acids and the organotin derivatives.  相似文献   

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