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1.
The vanadium(V) complexes K[VO2(SeO4)(H2O)] and K[VO2(SeO4)(H2O)2] · H2O were synthesized using original procedures; their physicochemical properties were studied, and the crystal structure was determined on the basis of X-ray diffraction and neutron diffraction data. The structure of K[VO2(SeO4)(H2O)2] · H2O is composed of VO6 octahedra connected to form infinite chains by bridging SeO4 tetrahedra. Each VO6 tetrahedron has short terminal V-O bonds forming the bent dioxovanadium group VO2+ The unit cell parameters of K[VO2(SeO4)(H2O)2] · H2O are a = 6.4045(1) ?, b = 9.9721(2) ?, c = 6.6104(1) ?, β = 107.183(1)°, V = 403.34 ?3, Z = 2, monoclinic system, space group P21. The complex K[VO2(SeO4)(H2O)] forms a two-dimensional layered structure composed of highly distorted VO6 octahedra having two short terminal V-O bonds and SeO4 groups coordinated simultaneously by three vanadium atoms. This compound crystallizes in the monoclinic system (space group P21/c): a = 7.3783(1) ?, b = 10.5550(2) ?, c = 10.3460(2) ?, β = 131.625(1)°, V = 602.894(5) ?3, Z= 4. The vibrational spectra of the studied compounds are fully consistent with their structural features.  相似文献   

2.
The aroylhydrazone Schiff base ligands (E)-N’-(2-hydroxybenzylidene)benzohydrazide = H2L1, (E)-N’-(2-hydroxy-3-methoxybenzylidene)benzohydrazide = H2L2 and = (E)-N’-(5-bromo-2-hydroxybenzylidene)benzohydrazide = H2L3 gave the vanadium(V)oxo-aroylhydrazone complexes [VVOL1(OCH3)(OHCH3] (1), [VVOL2(OCH3)(OHCH3]·CH3OH (2) and [VVOL3(OCH3)(OHCH3] (3) on reaction with vanadium(IV) oxide acetylacetonate. The complexes were characterized by spectroscopic methods in the solid state (IR) and in solution (UV–Vis, 1H NMR). Single crystal X-ray analysis was performed with 3. In methanol solution six-coordinated VVOL3(OCH3)(OHCH3) was formed. VIV was oxidized to Vv by aerial oxygen in the synthesis. In the VO5N coordination sphere the alcohol oxygen lies trans to the oxo oxygen. The general V–O bond length order is oxo < methoxylato < phenoxidic < enolato < alcoholic. The complexes are mononuclear, but intermolecular O–H?N hydrogen bonding affords a zigzag chain. DFT calculations on complex 3 reproduced the geometric parameters, IR and UV–Vis spectroscopic data well in a reasonable range.  相似文献   

3.
The electronic tongue (ET) multisensor system has been employed for the detection of metal-oxygen cluster anions (polyoxometalates) containing vanadium (IV/V) atoms. Sensitivity of a variety of potentiometric chemical sensors with plasticized polyvinyl chloride and chalcogenide glass membranes was evaluated with respect to vanadyl/vanadate ions, decavanadate and a series of Keggin-type polyoxometalates (POM) such as α-[SiW11VIVO40]6−, α-[SiW11VVO40]5−, α-[BW11VIVO40]7−, α-[BW11VVO40]6−, α-[PW11VIVO40]5− and α-[PW12−nVnVO40](3+n)− (n = 1, 2, 3). Sensor's responses to vanadium complexes were evaluated in the pH range of 2.4-6.5 and a set of sensors appropriate for detecting a variety of vanadium species was selected. Such sensor array was able to distinguish different vanadium complexes allowing their simultaneous quantification in binary (V(IV)/V(V)) mixtures. The vanillyl alcohol oxidation with α-[SiW11VVO40]5− was monitored using ET to evaluate the capacity of proposed analytic system to detect simultaneously V(IV)/V(V) in POM under dynamic equilibrium. ET was demonstrated to be a promising tool for the discrimination and quantification of vanadium-containing POMs at different oxidation states. In particular, such a system could represent a significant interest for the mechanistic studies of redox reactions with POMs.  相似文献   

4.
The reaction of [VO(OPr)3] (Pr is n-propyl) with hexamethyldisylthiane Me3SiSSiMe3 in the presence of β-diketones (acetylacetone (HAcac), hexafluoroacetylacetone (Hfac), and dipivaloylmethane (Dpm)), is studied. In all cases, vanadium(IV) and vanadium(III) β-diketonate complexes of different types are formed. New crystalline modification [V(Acac)3] is obtained in the reaction with HAcac. The mixedligand vanadium(III) complex of the composition [V2(Hfac)2(μ-OPr)]2 is formed with Hfac. In the presence of Dpm, the known vanadium(IV) complex [V2O2(Dpm)2(μ-OPr)2] is obtained in which two vanadyl groups VO2+ are linked by two bridging propoxy groups. The structures of all products are determined by X-ray diffraction analysis.  相似文献   

5.
Synthesis and Structures of Vanadium(III) and Vanadium(IV) Silanolates The syntheses of the new and partially known vanadium(III)-silanolate complexes [{V(OSiMet2Bu)3}2(THF)] ( 1 ), [Li(THF)2V(OSiMet2Bu)4] ( 2 ), [V(OSiMet2Bu)(lut)] ( 3 ), V(OSiPh3)3(THF)3 ( 4 ), [Li(THF)4][V(OSiPh3)4](THF)2 ( 5 ), [Li(DME)VMes(OSiMet2Bu)3] ( 7 ), [Li(THF)4][VMes · (OSiPh3)3] ( 8 ), [Li(THF)4][VMes3(OSiMet2Bu)] ( 9 ), and Na[VMes3(OSiPh3)](THF)4 ( 10 ) as well as the vanadium(IV) compounds [V(OSiPh3)4] ( 6 ), [VMes3(OSiMet2Bu)] ( 11 ) and [VMes3(OSiPh3)] ( 12 ) are reported. In most cases the vanadium atom displays a coordination number of four. The dimeric structure of 1 with coordination numbers of four and five, respectively, has been deduced from molecular mass measurements, mass spectrometry and its magnetic properties. The crystal structures of compounds 2 , 4 , 5 , 9 and 11 were resolved. Complex 2 resembles a bridged contact ion pair in which both metal centres are in a tetrahedral coordination environment. In 4 the ligands are arranged trigonal bipyramidally with the THF molecules in the axial positions. Complexes 5 and 9 crystallize in separated ion paires with the vanadium in a tetrahedral coordination sphere. The crystal structure of 11 is analogous to that of 9 but with consequences due to the higher oxidation state. Oxidation of the vanadates(III), e. g. 5 , 9 and 10 , yields the corresponding vanadium(IV) compounds 6 , 11 and 12 .  相似文献   

6.
Reaction of 2,2′-bipyridine (2,2′-bipy) or 1,10-phenantroline (phen) with [Mn(Piv)2(EtOH)]n led to the formation of binuclear complexes [Mn2(Piv)4L2] (L = 2,2′-bipy (1), phen (2); Piv is the anion of pivalic acid). Oxidation of 1 or 2 by air oxygen resulted in the formation of tetranuclear MnII/III complexes [Mn4O2(Piv)6L2] (L = 2,2′-bipy (3), phen (4)). The hexanuclear complex [Mn6(OH)2(Piv)10(pym)4] (5) was formed in the reaction of [Mn(Piv)2(EtOH)]n with pyrimidine (pym), while oxidation of 5 produced the coordination polymer [Mn6O2(Piv)10(pym)2]n (6). Use of pyrazine (pz) instead of pyrimidine led to the 2D-coordination polymer [Mn4(OH)(Piv)72-pz)2]n (7). Interaction of [Mn(Piv)2(EtOH)]n with FeCl3 resulted in the formation of the hexanuclear complex [MnII4FeIII2O2(Piv)10(MeCN)2(HPiv)2] (8). The reactions of [MnFe2O(OAc)6(H2O)3] with 4,4′-bipyridine (4,4′-bipy) or trans-1,2-(4-pyridyl)ethylene (bpe) led to the formation of 1D-polymers [MnFe2O(OAc)6L2]n·2nDMF, where L = 4,4′-bipy (9·2DMF), bpe (10·2DMF) and [MnFe2O(OAc)6(bpe)(DMF)]n·3.5nDMF (11·3.5DMF). All complexes were characterized by single-crystal X-ray diffraction. Desolvation of 11·3.5DMF led to a collapse of the porous crystal lattice that was confirmed by PXRD and N2 sorption measurements, while alcohol adsorption led to porous structure restoration. Weak antiferromagnetic exchange was found in the case of binuclear MnII complexes (JMn-Mn = −1.03 cm−1 for 1 and 2). According to magnetic data analysis (JMn-Mn = −(2.69 ÷ 0.42) cm−1) and DFT calculations (JMn-Mn = −(6.9 ÷ 0.9) cm−1) weak antiferromagnetic coupling between MnII ions also occurred in the tetranuclear {Mn4(OH)(Piv)7} unit of the 2D polymer 7. In contrast, strong antiferromagnetic coupling was found in oxo-bridged trinuclear fragment {MnFe2O(OAc)6} in 11·3.5DMF (JFe-Fe = −57.8 cm−1, JFe-Mn = −20.12 cm−1).  相似文献   

7.
The self-assembly of 2,6-diformyl-4-methylphenol (DFMP) and 1-amino-2-propanol (AP)/2-amino-1,3-propanediol (APD) in the presence of copper(II) ions results in the formation of six new supramolecular architectures containing two versatile double Schiff base ligands (H3L and H5L1) with one-, two-, or three-dimensional structures involving diverse nuclearities: tetranuclear [Cu4(HL2−)2(N3)4]·4CH3OH·56H2O (1) and [Cu4(L3−)2(OH)2(H2O)2] (2), dinuclear [Cu2(H3L12−)(N3)(H2O)(NO3)] (3), polynuclear {[Cu2(H3L12−)(H2O)(BF4)(N3)]·H2O}n (4), heptanuclear [Cu7(H3L12−)2(O)2(C6H5CO2)6]·6CH3OH·44H2O (5), and decanuclear [Cu10(H3L12−)4(O)2(OH)2(C6H5CO2)4] (C6H5CO2)2·20H2O (6). X-ray studies have revealed that the basic building block in 1, 3, and 4 is comprised of two copper centers bridged through one μ-phenolate oxygen atom from HL2− or H3L12−, and one μ-1,1-azido (N3) ion and in 2, 5, and 6 by μ-phenoxide oxygen of L3− or H3L12− and μ-O2− or μ3-O2− ions. H-bonding involving coordinated/uncoordinated hydroxy groups of the ligands generates fascinating supramolecular architectures with 1D-single chains (1 and 6), 2D-sheets (3), and 3D-structures (4). In 5, benzoate ions display four different coordination modes, which, in our opinion, is unprecedented and constitutes a new discovery. In 1, 3, and 5, Cu(II) ions in [Cu2] units are antiferromagnetically coupled, with J ranging from −177 to −278 cm−1.  相似文献   

8.
Dicaesium divanadium trioxide phosphate hydrogenphosphate, Cs2V2O3(PO4)(HPO4), (I), and dicaesium tris[oxidovanadate(IV)] hydrogenphosphate dihydrate, Cs2[(VO)3(HPO4)4(H2O)]·H2O, (II), crystallize in the monoclinic system with all atoms in general positions. The structures of the two compounds are built up from VO6 octahedra and PO4 tetrahedra. In (I), infinite chains of corner‐sharing VO6 octahedra are connected to V2O10 dimers by phosphate and hydrogenphosphate groups, while in (II) three vanadium octahedra share vertices leading to V3O15(H2O) trimers separated by hydrogenphosphate groups. Both structures show three‐dimensional frameworks with tunnels in which Cs+ cations are located.  相似文献   

9.
《Polyhedron》1999,18(21):2781-2785
The compounds (NH4)6[Mo6V2O24(C2O4)2]·6H2O (I) and (NH4)4[H2Mo2V2O12(C2O4)2]·2H2O (II) have been prepared from molybdenum(VI) oxide and ammonium vanadate in aqueous solution through the addition of ammonium oxalate, and their structures determined by X-ray structure analysis. Whereas the molybdovanadate anion [Mo6V2O24(C2O4)2]6− found in (I) consists of six MoO6 and two VO6 edge-sharing octahedra of the γ-[Mo8O26]4− type structure, the tetranuclear anion [H2Mo2V2O12(C2O4)2]4− of (II) adopts the structure with a M4O16 core. Both complexes contain bidentate oxalato ligands bonded to the vanadium ions. In both crystal structures the molybdovanadate anions are mutually hydrogen bonded by ammonium ions and water molecules.  相似文献   

10.
The reactivity of the [MoV2O4]2+ dinuclear unit with the [O3P(C(CH3)(OH))PO3]4? etidronate ligand has been investigated. Three complexes have been isolated and characterized by IR spectroscopy, elemental analysis and single crystal X-Ray diffraction studies. Structural determination of the tetranuclear compound (CN3H6)6[(MoV2O4)2(O3P(C(CH3)O)PO3)2]·12H2O (1) revealed that the hydroxo group of the etidronate ligand can be deprotonated in presence of MoV even in acidic media. It follows that its coordination mode thus differs from that of the methylenediphosphonate ligand [O3P(CH2)PO3]4?, which reactivity with MoV has been previously widely studied. In contrast, no such deprotonation of the hydroxo group is observed in the (NH4)18[(MoV2O4)6(OH)6(O3P(C(CH3)(OH))PO3)6]·35H2O complex 2. This species contains a dodecanuclear core analogous to the one previously found in the [(MoV2O4)6(OH)6(O3PCH2PO3)6]18? methylenediphosphonato polyanion. In 2, six interconnected {(MoV2O4)(O3P(C(CH3)(OH))PO3)} units form a cyclohexane-like ring in a chair conformation. In the (CN3H6)18Na3[(MoV2O4)7(O3P(C(CH3)(OH))PO3)7(CH3COO)7]·5CH3COONa 52H2O compound 3, seven {(MoV2O4)(O3P(C(CH3)(OH))PO3)(CH3COO)} units are connected, forming an almost planar tetradecanuclear wheel. This compound represents the largest homometallic MoV polyoxometalate cyclic system reported to date. Finally, 31P NMR studies revealed that only complex 1 is stable in aqueous solution.  相似文献   

11.
Two new neutral Keggin-polyoxometalate derivatives: [{Co(2,2′-bipy)2(H2O)}2]–[PMoVI7MoV5O40(VIVO)2] (1) and [{Ni(phen)2(H2O)}2](H3O) [PMoVI10MoV2O40] · 4H2O (2) have been synthesized under hydrothermal conditions and characterized by i.r., t.g. analysis, x.p.s. spectra and single-crystal X-ray diffraction. In the case of (1), the polyoxoanion cluster [PMo12O40]8− is capped by two vanadium atoms via four bridging oxo groups on two opposite {Mo4O4} pits of the Keggin polyoxoanion. Two {Co (2,2′-bipy)2(H2O)} fragments are supported on the two vanadium atoms through two terminal oxygen atoms from two vanadium atoms. In (2), two {Ni(phen)2(H2O)}2+ moieties are linked to the molybdophosphate cluster [PMo12O40] core to form a neutral bimetallic cluster. Furthermore, through the linkages of ππ stacking interactions and hydrogen bond contacts, extended three-dimensional supramolecular networks in the solid of (1) and (2) were formed.  相似文献   

12.
The hydrothermal synthesis, single crystal structure, and some physical properties of Ba2(VO2)(PO4)(HPO4)·H2O, a new barium vanadium(V) phosphate hydrate, are reported. This phase is built up from one-dimensional chains of unusual VO5trigonal bipyramids and (H)PO4tetrahedra, fused together via V–O–P linkages. These anionic chains propagate along the polar [010] direction. 11-Coordinate barium cations and water molecules occupy the interchain regions and link the chains together. Structural data for this phase and other known barium vanadium phosphates are briefly compared. Crystal data: Ba2(VO2)(PO4)(HPO4)·H2O,Mr=566.57, monoclinic, space groupP21(No. 4),a=5.0772(5) Å,b=8.724(2) Å,c=10.806(1) Å,β=90.795(8)°,V=478.6(1) Å3,Z=2,R=2.65%,Rw=2.89% [147 parameters, 1893 observed reflections withI>3σ(I)].  相似文献   

13.
Spectroscopic study of polycrystalline TiO2 doped with vanadium   总被引:2,自引:0,他引:2  
The structure of coordination sites (V4+ ions) and their spatial distribution in the polycrystalline titanium dioxide (rutile) lattice were studied by ESR. It was found that at low degrees of doping, at [V4+] < 0.5 at.%, the vanadium ions are isotropically distributed in the rutile lattice. At [V4+] > 0.5 at.% a new microphase with the mixed composition {TiO2—VO2} is formed. The mixed microphase has a noticeably narrower band gap than the initial TiO2. Comparison of the photocurrent spectra and the plots of the integral photocurrent vs. vanadium content with the structural data obtained using ESR spectroscopy showed that the formation of the {TiO2—VO2} microphases deteriorates the photoelectrochemical properties of the modified photoelectrodes. Synthetic procedures interfering the formation of such microphases in the doped rutile are discussed.  相似文献   

14.
The reactions of transition metal macrocyclic complexes [ML](ClO4)2 (L?=?5,5,7,12,12,14-hexamethyl-1,4,8,11-tetraazacyclotetradecane, M?=?Ni, Cu) with NH4VO3 under hydrothermal conditions gave two coordination polymers, namely [NiL]2[V6O17] and [CuL]2[V6O17]. Single-crystal X-ray diffraction analyses indicated that the central Ni(II)/Cu(II) atom displays a distorted six-coordinate octahedral coordination geometry by coordination with four nitrogen atoms of L, and two oxygen atoms of [VO4] tetrahedrons. Compounds [NiL]2[V6O17] and [CuL]2[V6O17] show three-dimensional structures, which are constructed through the connections of dodecanuclear [V12O32]4? rings with [NiL]2+ in [NiL]2[V6O17], and [V8O22] n 4n? chains with [CuL]2+ in [CuL]2[V6O17], respectively, generating one-dimensional channels.  相似文献   

15.
Hydrolysis of MII 2MV 2(acac)2(OMe)12, MII=Co or Ni and MV=Nb or Ta, in dry toluene, subsequent evaporation of the solvent, and heating to 500°C, provides access to a catalytically active oxide. The thermogravimetry (TG) analyses of the thermal behaviour of the hydrolysed alkoxides show three distinct steps. The first weight loss occurs at 120°C, the second at 390°C, and the third at 480°C. The weight is constant at 67% of original weight from 480 to 900°C. The powder X-ray patterns of the Co-Ta hydrolysed alkoxide show that powder heated to 500°C is amorphous but powder heated to 900°C revealed the presence of an equimolar mixture of CoIITa2O6 and Co4 IITa2O9. Gelation and further transformation on thermal treatment were found to occur in the same way for Co2Ta2(acac)2(OMe)12, Ni2Ta2(acac)2(OMe)12, and Co2Nb2(acac)2(OMe)12.Interaction of Co2Ta2(acac)2(OMe)12 solution with NaY 12 Å zeolite was found to be an exothermic reaction providing access to a nanocomposite compound. The latter has been investigated with the aid of EXAFS spectroscopy. The interaction with NaY 12 Å zeolite was found to occur in the same way for Co2Nb2(acac)2(OMe)12.  相似文献   

16.
Two novel lanthanum(III) silicate tellurites, namely, La4(Si5.2Ge2.8O18)(TeO3)4 and La2(Si6O13)(TeO3)2, have been synthesized by the solid state reactions and their structures determined by single crystal X-ray diffraction. The structure of La4(Si5.2Ge2.8O18)(TeO3)4 features a three-dimensional (3D) network composed of the [(Ge2.82Si5.18)O18]4− tetrahedral layers and the [La4(TeO3)4]4+ layers that alternate along the b-axis. The germanate-silicate layer consists of corner-sharing XO4 (X=Si/Ge) tetrahedra, forming four- and six-member rings. The structure of La2(Si6O13)(TeO3)2 is a 3D network composed of the [Si6O13]2− double layers and the [La2(TeO3)2]2+ layers that alternate along the a-axis. The [Si6O13]2− double layer is built by corner-sharing silicate tetrahedra, forming four-, five- and eight-member rings. The TeO32− anions in both compounds are only involved in the coordination with La3+ ions to form a lanthanum(III) tellurite layer. La4(Si5.2Ge2.8O18)(TeO3)4 is a wide band-gap semiconductor.  相似文献   

17.
To survey the noninnocence of bis(arylimino) acenaphthene (BIAN) ligands (L) in complexes with early metals, the homoleptic vanadium complex, [V(L)3] ( 1 ), and its monocation, [V(L)3]PF6 ( 2 ), were synthesized. These complexes were found to have a very rich electronic behavior, whereby 1 displays strong electronic delocalization and 2 can be observed in unprecedented valence tautomeric forms. The oxidation states of the metal and ligand components in these complexes were assigned by using spectroscopic, crystallographic, and magnetic analyses. Complex 1 was identified as [VIV(Lred)(L.)2] (Lred=N,N′‐bis(3,5‐dimethylphenylamido)acenaphthylene; L.=N,N′‐bis(3,5‐dimethylphenylimino)acenaphthenesemiquinonate). Complex 2 was determined to be [VV(Lred)(L.)2]+ at T<150 K and [VIV(L.)3]+ at T>150 K. Cyclic voltammetry experiments reveal six quasi‐reversible processes, thus indicating the potential of this metal–ligand combination in catalysis or materials applications.  相似文献   

18.
Two new organic–inorganic hybrid cobalt-molybdovanadates [Co(phen)3]H2[H2V2Mo6O26] · 7H2O (1) and [Co(2,2′-bipy)3][Na(H2O)7][VMo12O40] (2) have been hydrothermally synthesized and structurally characterized by elemental analyses, IR, UV, XPS spectroscopy, thermogravimetric (TG) analyses, and X-ray single crystal diffraction. The molecular structure of 1 consists of a [V2Mo6(OH)2O24]4? polyoxoanion, a [Co(phen)3]2+, two H+ and seven lattice water molecules. The structure of [V2Mo6(OH)2O24]4? consists of six MoO6 octahedra and two VO4 tetrahedra; six MoO6 octahedra are linked by edge-sharing oxygens forming a {Mo6} ring, and two VO4 tetrahedra cap opposite sides of the {Mo6} ring. The molecular structural unit of 2 is constructed from a typical Keggin-type [VMo12O40]3? polyoxoanion and a [Co(2,2′-bipy)3]2+ cation and a Na+ countercation; Co2+ is coordinated by six nitrogens from three 2,2′-bipyridines forming a distorted octahedron.  相似文献   

19.
The first organically templated vanadium tellurites, [H2en][(VO2)(TeO3)]2·H2O (1, en=ethylenediamine) and [H2pip][(VO2)(TeO3)]2 (2, pip=piperazine) have been synthesized by hydrothermal reactions and structurally characterized. Both compounds feature a [(VO2)(TeO3)] anionic layer containing V2Te2 four-member rings and V4Te4 eight member rings. The vanadium (V) atom is five coordinated by three tellurite oxygens and two terminal oxygen atoms in a distorted trigonal bipyramidal geometry. The interconnection of the VO5 polyhedra by bridging tellurite groups leads to a 2D corrugated anionic inorganic layer. The doubly protonated template cations and the lattice water molecules in 1 are located at the interlayer space and are involved in hydrogen bonding. The doubly protonated template cation in 2 is not involved in hydrogen bonding with the anionic inorganic layer.  相似文献   

20.
The electrochemical transfer behaviour of vanadium-containing heteropolytungstate anions [PW12−xVxO40](3+x)− (x = 1−4) across the water | nitrobenzene interface has been investigated by cyclic voltammetry and chronopotentiometry with cyclic linear current scanning. The transfer of PW11V1O4−40, HPW10V2O4−40, H2PW10V2O3−40, H3PW9V3O3−40 and H4PW8V4O3−40 across the water | nitrobenzene interface can be observed within the potential window. The effects were observed of pH in the water phase on the transfer behaviour and the formation of vanadium-containing heteropolytungstate anions in solution. Heteropolytungstate anions become more stable due to their involving the vanadium atom. The degree of protonation and the dissociation constant of the trivalent vanadium-containing heteropolytungstate anion of protonation increase with increasing vanadium content. The transfer processes are diffusion-controlled. The standard transfer potential, the standard Gibbs energy and the dissociation constant for vanadium-containing heteropolytungstate anions have been obtained and the transfer mechanisms are discussed.  相似文献   

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