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1.
[Ga6R8]2– (R = SiPh2Me): A Metalloid Cluster Compound with an Unexpected Ga6‐Frame The reaction of a metastable solution of GaBr with a solution of LiSiPh2Me in a toluene/THF mixture results in orange coloured crystals of [Ga6(SiPh2Me)8]2– · 2 [Li(THF)4]+ ( 1 ). The unexpected structure of the planar Ga6 frame (C2h) could also be realized with the help of DFT calculation. DFT calculations furthermore show that 1 is energetically favoured against an octahedral Ga6R62– species and R2. In contrast calculations for the similar Al and B species show that in these cases the octahedral entities are favoured. These results demonstrate that even for similar compounds of B, Al, and Ga Wade rules are too general and that they cannot predict the correct structure. Moreover the atomic arrangement within 1 shows that a structure is preferred which is also present in allotropic β‐Ga and that therefore clusters of this type should be called metalloid or more general elementoid.  相似文献   

2.
[PtIn6][GaO4]2 – The First Oxide Containing [PtIn6] Octahedra. Preparation, Characterisation, and Rietveld Refinement – With a Remark to the Solid Solution Series [PtIn6][GaO4]2‐x[InO4]x (0 < x ≤ 1) The novel oxides [PtIn6][GaO4]2–x[InO4]x (0 < x ≤ 1) are formed by heating intimate mixtures of Pt, In, In2O3, and Ga2O3 in the corresponding stoichiometric ratio in corundum crucibles under an atmosphere of argon (1220 K, 70 h). The compounds are black, stable in air at room temperature, reveal a semiconducting behaviour, and decompose only in oxidizing acids. X‐ray powder diffraction patterns can be indexed by assuming a face centered cubic unit cell with lattice parameters ranging from a = 1001.3(1) pm (x = 0) to a = 1009.3(1) pm (x = 1). According to a Rietveld refinement [PtIn6][GaO4]2 crystallizes isotypic to the mineral Pentlandite (Fm3m, Z = 4, R(profile) = 6.11%, R(intensity) = 3.95%). The characteristic building units are isolated [PtIn6]10+ octahedra which are linked via [GaO4]5– tetrahedra to a three dimensional framework. Starting from [PtIn6][GaO4]2 the substitution of Ga3+ ions by larger In3+ ions leads to the formation of a solid solution series according to the general formula [PtIn6][GaO4]2–x[InO4]x and becomes apparent in an increase of the lattice parameter.  相似文献   

3.
Chemistry of Gallium. 20. Synthesis and Structures of Novel Triphenylsilyl and Triphenylgermyl Substituted Gallanes and Oligogallanes – [Ga3(GePh3)6], the First Linear Trigallane From the raction of sonochemically prepared “GaI” with LiEPh3 (E = Si, Ge) the compounds [Li(THF)2][GaI(EPh3)3] (E = Si: 22 , E = Ge: 24 ), [Li(THF)4][GaI(SiPh3)3] ( 23 ), [Li(THF)4][Ga2(SiPh3)5] ( 21 ) and [Li(THF)4][Ga3(GePh3)6] ( 25 ) as well as polymeric Li(THF)I ( 20 ) were obtained and structurally characterized. 21 is a monoanionic digallane, exhibiting a trigonal planar and a tetrahedrally coordinated gallium centre. 25 has a linear Ga3 core, where the terminal gallium atoms bear three GePh3‐groups, each. The central Ga atom is only 2‐coordinated. Thus, 25 may be a valuable hint to the formation of larger gallium clusters with “naked” gallium atoms. Derivatives of 21 and 25 have been studied by DFT methods.  相似文献   

4.
Cs10Tl6TtO4 (Tt = Si, Ge) and Cs10Tl6SnO3 were synthesized by the reaction of appropriate starting materials at 623–673 K, followed by fast cooling or quenching to room temperature, in arc‐welded tantalum ampoules. According to single‐crystal X‐ray analyses, the compounds crystallize in new structure types (Cs10Tl6TtO4 (Tt = Si, Ge), P21/c and Cs10Tl6SnO3, Pnma), consisting of [Tl6]6– clusters, which can be characterized as distorted octahedra compressed along one of the fourfold axes of an originally unperturbed octahedron, and [SiO4]4–, [GeO4]4– or [SnO3]4– anions. The oxotetrelate thallides can be regarded as “double salts”, which consist of Cs6Tl6 on one side and respective oxosilicates, ‐germanates and ‐stannates on the other, showing almost not any direct interaction between the two anionic moieties, as might be expressed e.g. by the formula [Cs6Tl6][Cs4SiO4]. In contrast to the silicon and germanium compounds, where the oxidation state of the tetrel atom is unambiguously 4+, for the threefold coordinated tin atom in Cs10Tl6SnO3 an oxidation state of 2+ has to be assumed. Thus, the latter reveal further evidence that the so called “hypoelectronic” [Tl6]6– cluster does not require additional electrons and is intrinsically stable. The distortion of [Tl6]6– can be understood in terms of the Jahn–Teller theorem. According to magnetic measurements all title compounds are diamagnetic.  相似文献   

5.
Preparation, Properties, and Molecular Structures of Dimethylmetal Alkoxides and Amides of Aluminium and Gallium Dimethylaluminium‐ ( 1 ) and Dimethylgallium‐o‐methoxyphenyl‐1‐ethoxide ( 2 ) were obtained by reaction of Me3Al and Me3Ga respectively with o‐Methoxyphenyl‐1‐ethanol in n‐pentane. Dimethylaluminium‐ ( 3 ) and dimethylgallium‐o‐methoxyphenyl‐2‐ethylamide ( 4 ) were prepared by treatment of Me2AlCl and Me2GaCl respectively with Lithium‐o‐methoxyphenyl‐2‐ethylamide. Trimethylgallium‐o‐methoxyphenylmethylamine‐Adduct ( 5 ) was isolated using reaction of Me3Ga with the corresponding amine. The compounds were characterised by 1H‐, 13C‐, and 27Al n.m.r. spectroscopy. The molecular structures of 2 and 5 were determined by X‐ray diffraction. Compounds 1 – 4 form brigded dimeric molecules. The bond distances of the central Ga2O2 ring in 2 correspond to those of compounds of similar structure.  相似文献   

6.
During the Formation of Metalloid Gallium Clusters Phosphoniumbetaines lead to a Ga12 Network with unusual Bonding Properties The reaction of a 3:1 mixture of a phosphanid and a phosphorus ylide with a metastable solution of GaBr leads to a neutral, metalloid Ga12‐cluster compound. This for the frist time observed metalloid cluster with positivly polarized phosphonium ligandes and a negativly polarized Ga12‐core will be disussed by quantum chemical calculations with regard to the amount of the charge transfer.  相似文献   

7.
1,4‐Di(isopropyl)‐1,4‐diazabutadiene as a Reagent for the Trapping of Monomeric Fragments of the Tetragalliumcluster Ga4[C(SiMe3)3]4 – Formation of an Unsaturated GaN2C2 Heterocycle and an Oxidation Product Containing a Ga‐O‐O‐Ga Group The tetrahedral tetragallium cluster Ga4[C(SiMe3)3]4 ( 1 ) dissociates upon dissolution to yield the monomeric fragments Ga‐R [R = C(SiMe3)3]. These monomers could be trapped now by the treatment of their solutions with 1,4‐di(isopropyl)‐1,4‐diazabutadiene. The product of the cycloaddition reaction ( 2 ) possesses a five‐membered GaN2C2 heterocycle with a coordinatively unsaturated gallium atom and an endocyclic C=C double bond. 2 is rather sensitive towards oxidation by traces of air. The contact with oxygen yielded a digallium peroxide [(C2N2iPr2)RGa‐O‐O‐GaR(C2N2iPr2)] ( 3 ) which was isolated in a very low yield only and which has a gallium atom attached to each oxygen atom of the inner peroxo group. Both chelating ligands of 3 possess an unpaired electron.  相似文献   

8.
A near trigonal antiprism with metal–metal distances in the nanometer regime is formed by the six metal ions in the crystalline, homochiral [Ga6(L2)6] (see structure). This metal–ligand “cylinder” is based on a threefold symmetric, β-diketone ligand, and represents a new geometry for metal–ligand clusters.  相似文献   

9.
Syntheses and Thermal Properties of Cluster Molecules, formed from Groups 11‐13‐16 Elements In the presence of PPh3, CuX (X = Cl, CH3COO) or AgOC(O)C6H5 and GaCl3 react in THF with S(SiMe3)2 or Se(SiMe3)2 to yield [Cu6Ga8Cl4S13(PPh3)6] ( 1 ), [Cu6Ga8Cl4Se13(PPh3)6] ( 2 ), [Ag6Ga8Cl4S13(PPh3)6] ( 4 ) and [Ag6Ga8Cl4Se13(PPh3)6] ( 5 ). The use of PnPr2Ph instead of PPh3 and subsequent layering with n‐hexane leads to the formation of the cluster [Cu6Ga8Cl4Se13(PnPr2Ph)12] ( 3a , 3b ). Reaction of CuCl, GaCl3 and PnPr3 with Se(SiMe3)2 in THF results in the crystallisation of the ionic cluster (HPnPr3)2[Cu2Ga4Cl4Se6(PnPr3)4] ( 6 ). The structures of 1 — 6 were determined by X‐ray single crystal structure analysis. Thermogravimetric measurements of the cluster molecules and powder diffraction patterns of the remaining powders reveal the potential use of them as single source precursor compounds for the synthesis of the related ternary solid state materials.  相似文献   

10.
Five new copper chalcogenide cluster molecules, [Cu4(S–C6H4–Br)4(PPh3)4] ( 1 ), [Cu22Se6(S–C6H4–Br)10(PPh3)8] ( 2 ), [Cu28Se6(S–C6H4–Br)16(PPh3)8] ( 3 ), [Cu47Se10(S–C6H4–Br)21(OAc)6(PPh3)8] ( 4 ) and [Cu8(S–C6H4–Br)6(S2C–NMe2)2(PPh3)4] ( 5 ) have been synthesized and characterized by single‐crystal X‐ray structure analysis. Compounds 1 – 4 were prepared from the reaction of CuOAc, p‐Br–C6H4–SSiMe3 and Se(SiMe3)2 in the presence of PPh3. In a further reaction of 1 with iPrMgCl and (Me2N–CS2)2 cluster 5 was crystallized.  相似文献   

11.
Diorganomorpholinometalates of Gallium and Indium – Monomer‐Dimer‐Equilibrium in Solution The reaction of Li[N(CH2CH2)2O] (LiMorpholinate; Li(Morph)) with Me2GaCl and Me2InCl gives by salt‐elimination the diorganoamidometalates Me2M(Morph) ( M = Ga: 1 ; M = In: 2 ), respectively. 1 and 2 were characterized by NMR and vibrational spectroscopy as well as by X‐ray structure determinations. According to this, centrosymmetrical dimers are present in the solid state while a monomer‐dimer equilibrium was assumed for the THF‐solution. Cryoscopic molecular weight determinations confirmed our assumptions.  相似文献   

12.
13.
14.
Copper Chalcogenide Cluster Compounds with Nitro‐functionalized Ligand Shell Three new copper chalcogenide cluster molecules, [Cu4(SC6H4NO2)4(PPh3)4] ( 1 ), [Cu4(SC6H4NO2)2(OAc)2(PPh3)4] ( 2 ), and [Cu22Se6(SC6H4NO2)10(PPh3)8] ( 3 ), have been synthesized and characterized by single crystal X‐ray structure analysis. 1 and 2 were prepared from the reactions of Cu(OAc) and HSC6H4NO2 in the presence of PPh3 and have a similar “chair” structure in which two copper atoms are trigonally coordinated and two are tetrahedrally coordinated. The nitro groups of the ligands are not coordinated to any metal atom, but are located on the surface of the organic shell of the cluster molecules. In a further reaction between 2 and Se(SiMe3)2, cluster 3 was crystallized. Crystals of 3 include approximately 16.5 molecules THF per formula unit. This synthesis demonstrates the use of these “small” copper chalcogenide clusters as precursor compounds for the synthesis of bigger species. Non‐functionalized compounds similar to 1 and 2 are typically very pale or even colourless crystals. This is in contrast to the clusters presented in this work, which formed intensively orange or red crystals, due to the presence of the nitro groups. To investigate the influence of these nitro groups on the optical properties in more detail we have carried out UV‐VIS spectroscopic measurements.  相似文献   

15.
The Hexagallane [Ga6{SiMe(SiMe3)2}6] and the closo‐Hexagallanate [Ga6{Si(CMe3)3}4 (CH2C6H5)2]2— — the Transition to an Unusual precloso‐Cluster The closo hexagallanate [Ga6R4(CH2Ph)2]2— (R = SitBu3) as well as the hexagallane Ga6R6 (R = SiMe(SiMe3)2) with only six cluster electron pairs were isolated from reactions of “GaI” with the corresponding silanides. The structure of the latter is derived from an octahedron by a Jahn‐Teller‐distortion and is different from the capped trigonal bipyramidal one expected by the Wade‐Mingos rules. Both compounds were characterized by X‐ray crystallography. The bonding is discussed with simplified Ga6H6 and Ga6H62— models via DFT methods.  相似文献   

16.
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18.
Heterocubane Cluster Compounds (NEt4){Y=M[(μ3‐S)Re(CO)3]33‐E)} (M = W or Mo, Y = O or S, E = S or Se): Structures, Spectroscopy, and Electrochemistry Thiometallates [MS4]2– (M = Mo, W) or [WOS3]2– react with Re(CO)5(O3SCF3) and Li2E (E = S or Se) to yield the following compounds which were structurally characterized: (NEt4){S=W[(μ3‐S)Re(CO)3]33‐S)}(NEt4) ( 1 ), (NEt4){O/S=W[(μ3‐S)Re(CO)3](μ3‐S)}(NEt4) ( 1 / 2 ), (mixed crystals), (NEt4){S=W[(μ3‐S)Re(CO)3]33‐Se)}(NEt4) ( 3 ) and (NEt4){S=Mo[(μ3‐S)Re(CO)3]33‐S)}(NEt4) ( 4 ). The heterocubane anions 1 – 4 contain electron‐rich centers such as rhenium(I) or sulfide whereas molybdenum(VI) or tungsten(VI) act as acceptor sites. Accordingly, the absorption spectra show long‐wavelength metal‐to‐ligand charge transfer transitions, and cyclic voltammetry reveals a quasi‐reversible reduction of the clusters. Although both six‐coordinate rhenium(I) and four‐coordinate metal(VI) centers are present in the clusters there is no evidence for significant metal‐to‐metal charge transfer interaction.  相似文献   

19.
Systematic studies on selenoborates containing a B12 cluster entity and alkali metal cations led to the new crystalline phase Na6[B18Se17] which consists of a icosahedral B12 cluster completely saturated with trigonal‐planar BSe3 units and sodium counter‐ions. Neighbouring cluster entities are connected in one direction via exocyclic selenium atoms forming the infinite chain anion ([B18Se16Se2/2]6–). The new chalcogenoborate was prepared in a solid state reaction from sodium selenide, amorphous boron and selenium in evacuated carbon coated silica tubes at a temperature of 850 °C. Na6[B18Se17] crystallizes in the monoclinic space group C2/c (no. 15) with a = 18.005(4) Å, b = 16.549(3) Å, c = 11.245(2) Å, β = 91.35(3)° and Z = 4.  相似文献   

20.
New Syntheses and Crystal Structures of Bis(fluorophenyl) Mercury, Hg(Rf)2 (Rf = C6F5, 2, 3, 4, 6‐F4C6H, 2, 3, 5, 6‐F4C6H, 2, 4, 6‐F3C6H2, 2, 6‐F2C6H3) Bis(fluorophenyl) mercury compounds, Hg(Rf)2 (Rf = C6F5, C6HF4, C6H2F3, C6H3F2), are prepared in good yields by the reactions of HgF2 with Me3SiRf. The crystal structures of Hg(2, 3, 4, 6‐F4C6H)2 (monoclinic, P21/n), Hg(2, 3, 5, 6‐F4C6H)2 (monoclinic, C2/m), Hg(2, 4, 6‐F3C6H2)2 (monoclinic, P21/c) and Hg(2, 6‐F2C6H3)2 (triclinic, P1) are described.  相似文献   

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