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1.
The crystal structures of two copper(II) complexes of 4-fluorophenoxyacetic acid (4-FPAH) have been determined by X-ray diffraction. [Cu(4-FPA)2(H2O)2]·2(4-FPAH)·2H2O (1) is triclinic, space group P1 with Z = 1 in a cell of dimensions a = 14.808(2), b = 9.832(2), c = 6.847(2) Å, α = 87.77(2), β = 98.41(2), γ = 112.33(2)° and was refined to a residual of 0.038 for 1697 ‘observed’ reflections. The coordination sphere in this complex is tetragonally distorted octahedral comprising two waters [CuO, 1.940(3) Å], two unidentate carboxylate oxygens [CuO, 1.942(2) Å] and two ether oxygens [CuO, 2.471(2) Å]. Two adducted [4-FPAH] acid molecules are linked to the un-coordinated oxygens of the acid ligands by hydrogen bonds [2.547(4) Å]. [Cu2(4-FPA)4(2-aminopyrimidine)2] (2) is triclinic, space group P1 with Z = 1 in a cell of dimensions a = 12.688(2), b = 11.422(2), c = 7.951(1) Å, α = 78.74(1), β = 107.51(1), γ = 75.78(1)°, and was refined to a residual of 0.042 for 2683 ‘observed’ reflections. (2) is a centrosymmetric tetracarboxylate bridged dimer with four similar CuO (equatorial) distances [1.967–1.987 Å; 1.977(3) Å mean] and the axial position occupied by the hetero nitrogen of the 2-aminopyrimidine ligand [CuN, 2.176(3) Å]. The Cu---Cu separation is 2.710(1) Å. Crystal data are also presented which confirm the isostructurality of complex (2) with [Cu2(phenoxyacetate)4(2-aminopyrimidine)2], the CoII, MgII and MnII4-fluorophenoxyacetate complexes with their phenoxyacetic and 4-chlorophenoxyacetic acid analogues, and of CdII4-fluorophenoxyacetate with CdII and ZnII phenoxyacetates.  相似文献   

2.
《Inorganica chimica acta》1988,141(1):145-149
This contribution reports the synthesis and characterization of the organothorium alkylthiolate complex [(CH3)5C5]2Th(SCH2CH2CH3)2. This compound crystallizes in the monoclinic space group C2/c (#15) with four molecules in a cell of dimensions a=19.066(2), b=11.603(1), c=16.379(2) Å, and β=130.08(1)°. Least-squares refinement led to a value for the conventional R index (on Fo) of 0.040 for 132 variables and 2030 observations having Fo2⩾3σ(Fo2). The molecular structure consists of an unexceptional ‘bent sandwich’ [(CH3)5C5]2Th fragment coordinated to two n-propylthiolate ligands. The ThS bond distance is 2.718(3) Å; the SC(α) distance, 1.78(2) Å; the ThSC(α) angle, 108.3(5)°; and the SThS′ angle, 102.5(2)°. Contrasts are drawn with the structures of analogous actinide alkoxides  相似文献   

3.
A 1:1 complex of mercuric chloride with D-peniccillamine has been isolated and characterised as 2[(μ3-Cl){HgSC(CH3)2CH(NH3)COO}3]·3(μ2-Cl)·2(H3O)·(H2O·Cl)3. The compound crystallises in cubic space group P4132, with a = 18.679(5) Å and Z = 4. The structure, refined to RF = 0.086 for 443 observed Mo-Kα diffractometer data, features a triply bridging chloride ion linking three equivalent [HgSC(CH3)2CH(NH3)COO]+ units [Hg-Cl = 2.37(1) Å, Hg-Cl-Hg′ = 98.5(9)°]. The carboxylate groups of a pair of adjacent penicillamine ligands are strongly linked via a symmetrical O?H?O hydrogen bond of length 2.24(8) Å, and neighboring pyramidal trinuclear [μ3-Cl){HgSC(CH3)2CH(NH3)-COO}3]2+ moieties are further connected by symmetrical chloride bridges [Hg-Cl = 3.06(2) Å; HgClHg′' = 79.6(7)°] to form a three-dimensional network. The voids in the lattice are filled by hydronium ions and novel planar cyclic hydrogen-bonded (H2O·Cl?)3 rings of edge O-H?Cl = 2.46(4) Å.  相似文献   

4.
The preparation is reported of [(NH3)3Pt(9- MeA)] X2 (9-MeA = 9-methyladenine) with XCl (1a) and XClO4 (1b) and of trans-[(OH)2Pt(NH3)3- (9-MeA)]X2 with XCl (2a) and XClO4 (2b), and the crystal structure of 1b. [(NH3)3Pt(C6H7N5)](ClO4)2 crystallizes in space group P21/n with a = 20.810(7) Å, b = 7.697(3) Å, c = 10.567(4) Å, β = 91.57(6)°, Z = 4. The structure was refined to R = 0.054, Rw = 0.063. In all four compounds Pt coordination is through N7 of 9-MeA, as is evident from 3J coupling between H8 of the adenine ring and 195Pt. Pt(II) and Pt(IV) complexes can be differentiated on the basis of different 3J values, larger for Pt(II) than for Pt(IV) by a factor of 1.57 (av). In Me2SO-d6, hydrogen bonding occurs between Cl? and C(8)H of 9-MeA as weil as between Cl? and the NH3 groups in the case of the Pt(II) complex 1a. Protonation of the 9-MeA ligands was followed using 1H NMR spectroscopy and pKa values for the N1 protonated 9-MeA ligands were determined in D2O. They are 1.9 for 1a and 1.8 for 2a, which compares with 4.5 for the non-platinated 9-MeA. Possible consequences for hydrogen bonding with the complementary bases thymine or uracil are discussed briefly. Protonation of the OH groups in the Pt(IV) complexes has been shown not to occur above pH 1.  相似文献   

5.
In a further examination of the multiply bonded NbS group, the structure of NbS(S2CNEt2)3 has been determined. The compound crystallizes in triclinic space group P1 with a = 9.870(1), b = 15.743(2), c = 16.804(3) Å, α = 101.69(1)°, β = 93.51(1)°, γ = 91.12(1)°, and Z = 4. With use of 6709 unique data (FO2 > 3σ(FO2)) the structure was refined to R(Rw) = 3.1(3.5%). The crystal contains two inequivalent molecules with distorted pentagonal bipyramidal coordination in which a sulfide atom occupies an axial position. The molecules are differentiated by ethyl group orientations and significantly different NbS bond lengths of 2.122(1) and 2.168(1) Å. Full structural details are reported. The results fall within the ca. 2.09–2.20 Å interval established with other molecules and emphasize the variability in bond length of the NbS group. Stretching frequencies and bond lengths show a rough inverse dependence. For square pyramidal [NbSCl4]1?, with a relatively high NbS bond order, vNbS = 552 cm?1 is associated with a bond length of 2.085(5) Å and an overlap population of 0.64.  相似文献   

6.
The preparation and molecular and crystal structure of the complex [(ethylenediamine)bis(7,9,-dimethylhypoxanthine)platinum(II)] hexafluorophosphate, [Pt(C2H8N2)(C7H8N4O)2] (PF6)2, are reported. The complex crystallizes in the monoclinic system, space group C2/c, with a = 12.334(2)Å, b = 10.256(2)Å, c = 22.339(3)Å, β = 101.31(1)°, V = 2771.0Å3, Z = 4, Dmeasd = 2.087(3) g cm?3, Dcalc = 2.094 g cm?3. Intensities for 3992 symmetry-averaged reflections were collected in the θ-2o scan mode on an automated diffractometer employing graphite-monochromatized MoKα radiation. The structure was solved by standard heavy-atom Patterson and Fourier methods. Full matrix least-squares refinement led to a final R value of 0.051. Both the ethylenediamine chelate and the PF6? anion are disordered. The primary coordination sphere about the Pt(II) center is approximately square planar with the bidentate ethylenediamine ligand and the N(1) atoms [Pt(II) ? N(1) = 2.020(5)Å] of two 7,9-dimethylhypoxanthine bases (related by a crystallographic twofold axis of symmetry) occupying the four coordination sites. The exocyclic O(6) carbonyl oxygen atoms of the two 7,9-dimethylhypoxanthine ligands participate in intracomplex hydrogen bonding with the amino groups of the ethylenediamine chelate [N(ethylenediamine) ? O(6) = 2.89( )Å]. The observed Pt ? O(6) intramolecular distances of 3.074(6)Å are similar to those found in other Pt(II) N(1)-bound 6-oxopurine complexes and in several Pt(II) N(3)-bound cytosine systems.  相似文献   

7.
The reaction of AgX (X=ClO4, NO3 or SO3CH3) acceptors with excesses of tris(pyrazol-1-yl)methane ligands L (L=CH(pz)3, CH(4-Mepz)3, CH(3,5-Me2pz)3, CH(3,4,5-Me3pz)3 or CH(3-Mepz)2(5-Mepz)) yields 1:1 [AgX(L)], 2:1 [Ag(L)2]X or 3:2 [(AgX)2(L)3] complexes. The ligand to metal ratio in all complexes is dependent on the number and disposition of the Me substituents on the azole ring of the neutral ligand and on the nature of the Ag(I) acceptor. All complexes have been characterized in the solid state as well as in solution (medium- and far-IR, 1H and 13C NMR and conductivity determinations) and the solid-state structures of [Ag(NO3){(pz)3CH}](∞/∞) and [Ag{(3,5-Me2pz)3CH}2]NO3 determined by single crystal X-ray studies.  相似文献   

8.
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   

9.
The crystal structure of the dimeric Ag maleonitriledithiolate complex, Ag2[S2C2(CN)2] [P(C6- H5)3]4 (1), has been performed. Complex 1 crystallizes in the space group P21/c with a = 12.2898(77), b = 23.8325(91), c = 23.1790(118) Å, β = 101.315(43)° and Z = 4. Refinement using 3253 reflections with Fo2>3σ(Fo2) yielded R = 0.0662, Rw= 0.0669. The most interesting aspect of the structure is the strong bridging interaction of the chelating maleonitriledithiolate ligand with the second Ag center, where a Ag-S distance of 2.478 Å is observed. The residual bonding capability of the sulfur atoms in the chelating anion [Ag(S2C2(CN)2)(PPh3)2] for [Ag(PPh3)2]+ is demonstrated.  相似文献   

10.
Reaction of cis-(NH3)2Pt(1-MeU)2 (1-MeU = 1- methyluracil anion, C5H5N2O2) with ZnSO4·7H2O leads to the formation of a dinuclear complex of composition [(NH3)2Pt(C5H5N2O2)2Zn(H2O)3]SO4· 2H2O. The compound crystallizes in space group P21/c with a = 10.534(1), b = 17.933(2), c = 11.490(1) Å, β=94.61(1)°, Z=4. The structure was refined to R=0.043 and Rw=0.061. In this compound, Pt is coordinated through N3 to the 1-MeU ligand, while Zn is bound through the two O4 oxygens and completes its distorted square-pyramidal coordination sphere by three aqua ligands. The positions of the two metals relative to their basal donor atoms and the shortness of the PtZn separation (2.760(1) Å) suggest a bonding interaction between the two metals. Using 1H NMR spectroscopy, a formation constant of ca. 114 1 mol?1 for the Pt, Zn complex has been estimated.  相似文献   

11.
《Inorganica chimica acta》1987,128(2):161-167
The complexes (Bu4N)[TcO(O2C6H4)2] (1) and Na[TcO(OCH2CH2O)2] (2) have been prepared by reacting TcOCl4- with respective diols in methanol. Compound 2 was identified by its elemental analysis and field desorption mass spectrum. Crystals of compound 1 are monoclinic, C2/c, with cell dimensions a = 10.393(3), b = 13.835(3), c = 20.643(5) Å, β = 101.74(3)° and four formula units in the unit cell. The crystal structure was determined by standard methods and refined to R1 = 0.0694, R2 = 0.0613, on the basis of 2887 independent reflections. The data were collected with use of Mo Kα radiation and a Syntex P21 diffractometer. The anion of 1 is square pyramidal with a short TcO(oxo) bond (1.648(5) Å). TcO distances to the diolate groups are longer (1.956(3), 1.958(3) Å). The technetium atom lies 0.7014(4) Å out of the plane of the four diolate oxygen atoms. Compound 2 is hydrolytically unstable in pure water, but can be stabilized by the addition of a several-fold molar excess of ethylene glycol. Compound 1 decomposes minimally in pure water after 24 h. These complexes are shown to be good structural models for 99mTc-radiopharmaceuticals containing purely oxygen-donor ligands. Comparison of the physical properties of the structurally characterized members of the series of complexes with core structures TcOSxO(4-x) (x = O, 2, 4) shows a shift to low energy in the frequency of the terminal oxygen-technetium band in the IR correlated with increasing softness of the basal plane donor atom set.  相似文献   

12.
《Inorganica chimica acta》1988,147(2):265-274
Trifunctional dialkyl [1,2-bis(diethylcarbamoyl)- ethyl] phosphonates, (RO)2P(O)CH[C(O)N(C2H5)2]- [CH2C(O)N(C2H5)2] R  CH3, C2H5, i-C3H7, n-C6H13 were prepared from the respective sodium salts, Na[(RO)2P(O)CHC(O)N(C2H5)2] and N,N- diethylchloroacetamide, and they were characterized by elemental analysis, mass, infrared and NMR spectroscopy. The molecular structure of (i-C3H7O)2- P(O)CH[C(O)N(C2H5)2][CH2C(O)N(C2H5)2] was determined by single crystal X-ray diffraction analysis and found to crystallize in the monoclinic space group P21/c with a=15.589(6), b=9.783(4), c= 16.283(7) Å, β = 110.90(3)°, Z = 4 and V= 2320(2) Å3. The structure was solved by direct methods and blocked least-squares refinement converged with Rf = 5.7% and RwF= 4.4% on 2266 unique data with F>4σ(F). Important bond distances include PO 1.459(3) Å, CHCO 1.228(3) Å and CHCH2CO 1.223(3) Å. The coordination chemistry of the ligand with several lanthanides was examined, and the structure of the complex Gd(NO3)3{[(i-C3H7O)2P(O)CH[C(O)N(C2H5)2][CH2C(O)N(C2H5)2]}2·H2O was determined. The complex crystallized in the monoclinic space group P21/n with a = 13.524(5), b = 22.033(4), c = 19.604(4) Å β = 106.22(2)°, Z = 4 and V= 5609(3) Å3. The structure was solved by heavy atom techniques and blocked least-squares refinement converged with RF = 5.9% and RwF = 4.1% on 5275 reflections with F > 4σ(F). Both trifunctional ligands were found to bond to Gd(III) through only the phosphoryl oxygen atoms. The remainder of the Gd coordination sphere was composed of three bidentate nitrate oxygen atoms and an oxygen bonded water molecule. Several important bond distances include GdO(phosphoryl)av = 2.343(5) Å, GdO(nitrate)av = 2.475(7) Å, GdO(water) = 2.354(5) Å, PO(phosphoryl)av = 1.467(6) Å, CHCOav = 1.242(10) Å and CHCH2COav = 1.209(11) Å.  相似文献   

13.
《Inorganica chimica acta》2006,359(5):1351-1356
Energy-transfer rate-constants from photo-excited [Ru(N–N)3]2+ (N–N = 2,2′-bipyridine (bpy), 4,4′-dimethyl-2,2′-bipyridine (4dmb), 5,5′-dimethyl-2,2′-bipyridine (5dmb)) to [Cr(O–O)3]3− (O–O2− = ox2− ((COO)2), mal2− (CH2(COO)2)) and [Cr(CN)6]3− in encounter complexes were evaluated in aqueous solutions containing alkali metal ion. The rate constant depends on the molecular size of the ruthenium(II) complex: 1.8 × 108 s−1 for [Ru(bpy)3]2+ (molecular radius, r = 5.8 Å), 1.4 × 108 s−1 for [Ru(5dmb)3]2+ (r = 6.1 Å) and 0.96 × 108 s−1 for [Ru(4dmb)3]2+ (r = 6.7 Å) in the system of [Ru(N–N)3]2+–[Cr(ox)3]3− in aqueous solution. However, the rate constant is much more sensitive to the chromate(III) complex than to ruthenium(II) complex; 1.8 × 108 s−1 and 0.43 × 108 s−1 for [Cr(ox)3]3− (r = 4.0 Å) and [Cr(mal)3]3− (r = 4.2 Å) in the [Ru(bpy)3]2+–[Cr(O–O)3]3− systems, respectively. We conclude that the congeniality between the donor’s and acceptor’s ligands in encounter complex plays an important role in energy transfer in aqueous solution.  相似文献   

14.
Although reactions of samarium(III) chloride, SmCl3 · 6H2O, with potassium hydrotris(1-pyrazolyl)borate K[BH(pz)3] (pz = 1-pyrazolyl) in a molar ratio of (1/1) in THF afford [SmCl{BH(pz)3}2(Hpz)], similar reactions with K[B(pz)4] gave rise to separation of anhydrous H[B(pz)4]. The homoleptic eight-coordinate complex [Sm{B(pz)4}3] obtained from SmCl3 · 6H2O and threefold moles of K[B(pz)4] was allowed to react with twofold moles of K[BH(pz)3] to give a mixture of three major species [Sm{B(pz)4}n{BH(pz)3}(3 − n)] (n = 2, 1, 0), whereas similar reactions of [Sm{BH(pz)3}3] with K[B(pz)4] did not proceed at all. The acetylacetonato (acac) complex [Sm{B(pz)4}2(acac)], derived from the triflate “Sm{B(pz)4}2(OTf)”, was treated with twofold moles of K[BH(pz)3] and showed its quantitative conversion to [Sm{BH(pz)3}2(acac)]. However, analogous reaction of [Sm{BH(pz)3}2(acac)] with K[B(pz)4] did not proceed. Accordingly, samarium(III) ion was determined to prefer coordination of BH(pz)3 ligand to that of B(pz)4, indicating less σ-donating electronic character of the latter. The complexes [Sm{B(pz)4}2(L-L)] (L-L = β-ketoenolato) in toluene-d8 exhibited 1H NMR spectroscopic equivalence of all four pyrazolyl groups at high temperatures, and are regarded as a new class of B(pz)4 complexes, showing fast intramolecular exchange of their coordinated and uncoordinated pyrazolyl groups. Four compounds were crystallographically characterized.  相似文献   

15.
The complexes LMoVIO2X [L?=?hydrotris(3,5-dimethylpyrazol-1-yl)borate; X?=?Cl, Br, NCS, OPh, SPh, SCH2Ph] are converted to air-stable complexes LMoVO(OSiMe3)X by one-electron coupled electron-electrophile transfer (CEET) reactions involving cobaltocene and the electrophilic reagent Me3SiCl. These complexes may also be obtained from LMoVO(OH)X by reaction with Me3SiCl in the presence of base. LMoVO(OSiMe3)(SCH2Ph) crystallises in space group P21/n, with a?=?8.526 (1) Å, b?=?23.141 (3) Å, c?=?16.499 (2) Å, β?=?103.75 (12)° and Z?=?4. The complex exhibits a distorted octahedral structure with a facially tridentate L ligand and mutually cis oxo [Mo=O?=?1.675 (4) Å], silyloxo [Mo–O?=?1.932 (4) Å] and thiolato [Mo–S?=?2.398 (2) Å] ligands. The detailed redox properties of LMoVO(OR)X (R?=?SiMe3, alkyl, aryl) differ from those of LMoVO(OH)X. Centres [MoVO(OR)] are candidates for the stable "inhibited" forms of certain molybdenum enzymes formed under conditions which apparently disfavour the catalytically active [MoVO(OH)] centres. In the coordinating solvent pyridine (py), both LMoVIO2(SPh) and LMoVO(OSiMe3)(SPh) are reduced in one-electron steps to stable LMoIVO(py)(SPh). LMoIVO(py)(SR) complexes are also obtained from LMoVIO2(SR) (R?=?Ph, CH2Ph, CHMe2) via a two-electron oxygen atom transfer reaction with tertiary phosphines in pyridine. Consequently, the Mo(IV) product is accessible via a concerted two-electron step or via two one-electron steps.  相似文献   

16.
《Inorganica chimica acta》1986,117(2):103-109
The hybrid, bidentate, diarylphosphino-alkoxide ligand PPh2CH2C(CF3)2O, L1, gives the Pd2+ bis- complex Pd(L1)2, from which the chloride-bridged dinuclear complex [(L1)Pd(μ-Cl)2Pd(L1)] is made by reaction with PdCl2(PhCN)2. Cleavage of the dinuclear complex with monodentate ligands L2 then gives Pd(L1)Cl(L2) (L2 =PPh3, PPh2Me, PPhMe2, PMe3, SMe2, or pyridine); NMR data show that PR3 is cis to the phosphine site in L1 in these complexes, but SMe2 or pyridine are probably trans.A complete crystal and molecular structural determination has been made for cis-Pd(L1)Cl(PPh2Me). Crystals are monoclinic, space group P21/c, a = 10.821(1), b = 14.600(1), c = 18.674(2) Å, β = 101.25(1)°, V = 2893 Å3, Z = 4. Least-squares refinement on F of 361 variables using 3977 observations converged at a conventional agreement factor R = 0.025. The complex is square-planar, with the two phosphines cis; the 5-membered chelate ring is in a dissymmetric envelope conformation. The PdP bonds differ in length, with that to the unidentate phosphine, 2.259(1) Å, being significantly longer than that to the phosphine on the chelating ligand, 2.231(1) Å.  相似文献   

17.
The crystal and molecular structures of Th(oda)2(H2O)4·6H2O (1) and Na2[Th(oda)3]·2NaNO3 (2) (oda = oxydiacetate) have been determined from three-dimensional X-ray diffraction data and refined by least squares to R = 0.049 and Rw = 0.049 for 2265 independent reflections for (1) and to R = 0.024 and Rw = 0.023 for 2196 independent reflections for (2).Crystal parameters are as follows: (1), tetragonal, space group P41212, a = 10.335(2), c = 20.709(5) Å and Z = 4; (2), monoclinic, space group C2/c, a = 17.096(5), b = 9.451(2), c = 16.245(4) Å, β = 107.8(1) and Z = 4.In both compounds the thorium atom lies on a crystallographic two-fold axis. The co-ordination number for thorium in (1) is 10 (bicapped square antiprism geometry), the compound is monomeric, the two oda ligands are tridentate to the metal, and four water molecules complete the coordination sphere; in thorium (2) the coordination number is 9 (tricapped trigonal prism geometry) with three oda ligands tridentate to the metal, the [Th(oda)3]2? and NO3? anions are held together through the sodium ions which are coordinated both to the oda carboxylic oxygens and to the nitrate oxygens.The ThO coordination distances are: in (1) 2.411(8), 2.414(9) for the carboxylic oxygens, 2.479(10) and 2.486(8) for water molecules and 2.697(9) for the etheric oxygen and in (2) 2.384(3), 2.402(4) and 2.402(4) for the carboxylic oxygens, 2.559(5) and 2.562(4) Å for the etheric oxygens.  相似文献   

18.
《Inorganica chimica acta》1988,153(4):247-254
Methylmercury(II) complexes of 7-methylguanine (7mguaH) have been isolated from aqueous solution in the pH range 1-12 and structurally characterized. 1:1 complexes [(7mgua)HgCH3]·2H2O and [(7mguaH)HgCH3][NO3]· H2O with respectively N1 - and N9-coordination (X-ray analyses) were obtained from solutions in the respective pH ranges 9–12 and 1–4. A 2:1 complex [(7mgua)(HgCH3)2][NO3] with N1,N9-coordination (X-ray) may be prepared in the intermediate pH range 4–7. Two 3:1 complexes were isolated: [(7mgua)(HgCH3)3][NO3]2 from strongly acid solution (pH = 1–3), and [(7mguaH−1)(HgCH3)3][NO3] in the pH range 7–9. Whereas an X-ray analysis establishes N1,N3,N9-coordination for the former species in the solid state, the 1H NMR data suggest N2,N3,N9-coordination for the former and N2,N2,N9-coordination for the latter species in d6-DMSO solution.  相似文献   

19.
The preparation and characterization of dichloro- (hydrotris(1-pyrazolyl)borato)pyridinechromium(III), CrCl2(HB(PYZ)3)Py, (Py = pyridine and HB(PYZ)3-1 is the hydrotris(1-pyrazolyl)borato anion) is described. The structure of the compound was determined by single crystal X-ray diffraction. Crystals were monoclinic, P21/c, a = 11.603(2), b = 9.845(1), c = 16.095(2) Å, β = 96.04(1)° with four formula units in the unit cell. Intensities were measured on a Nicolet P3 diffractometer with use of Mokα radiation. The structure was solved by standard methods and refined to R1 = 0.0601, R2 = 0.0397 based on 3142 independent reflections. Bond lengths and angles are normal. The pyridine molecule is oriented such that the plane bisects the angle between the two cis pyrazole rings. The synthesis and preparation of the related Cr(III) species CrCl2(HB(PYZ)3)pyrazole, Ph4As[CrCl3HB(PYZ)3] and [Cr(HB(PYZ)3)2]PF6 are described and the evaluation of the CrCl2(HB(PYZ)3)L (L = pyridine or pyrazole) species for genotoxicity is discussed.  相似文献   

20.
《Inorganica chimica acta》1988,149(2):177-185
CpRuCl(PPh3)2 reacted with excess R-DAB in refluxing toluene to give CpRuCl(R-DAB(4e)) (1a: R = i-Pr; 1b: R = t-Bu; 1c: R = neo-Pent; 1d: R =p-Tol). 1H NMR and 13C NMR spectroscopic data indicated that in these complexes the R-DAB ligand is bonded in a chelating 4e coordination mode.Reaction of 1a and 1b with one equivalent of [Co(CO)4] afforded CpRuCo(CO)3(R-DAB(6e)) (2a: R = i-Pr; 2b: R = t-Bu). The structure of 2b was determined by a single crystal X-ray structure determination. Crystals of 2b are monoclinic, space group P21/n, with four molecules in a unit cell of dimensions: a = 16.812(4), b = 12.233(3), c = 9.938(3) Å and β = 105.47(3)°. The structure was solved via the heavy atom method and refined to R = 0.060 and Rw = 0.065 for the 3706 observed reflections. The molecule contains a RuCo bond of 2.660(3) Å and a cyclopentadienyl group that is η5-coordinated to ruthenium [RuC(cyclopentadienyl) = 2.208(3) Å (mean)]. Two carbonyls are terminally coordinated to cobalt (CoC(1) = 1.746(7) and CoC(2) = 1.715(6) Å) while the third is slightly asymmetrically bridging the RuCo bond (RuC(3) = 2.025(6) and CoC(3) = 1.912(6) Å). The RuC(3)O(3) and CoC(3)O(3) angles are 138.4(5)° and 136.5(5)°, respectively. The t-Bu-DAB ligand is in the bridging 6e coordination mode: σ-N coordinated to Ru (RuN(2) = 2.125(4) Å), μ2-N′ bridging the RuCo bond and η2-CN coordinated to Co (RuN(1) = 2.113(5), CoN(1) = 1.941(4) and CoC(4) = 2.084(5) Å). The η2-CN′ bonded imine group has a bond length of 1.394(7) Å indicating substantial π-backbonding from Co into the anti-bonding orbital of this CN bond.1H NMR spectroscopy indicated that 2a and 2b are fluxional on the NMR time scale. The fluxionality of 6e bonded R-DAB ligands is rarely observed and may be explained by the reversible interchange of the σ-N and η2-CN′ coordinated imine parts of the R-DAB ligand.  相似文献   

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