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The reactions of the rhenium chalcocyanide cluster salts K4[Re4Q4(CN)12]·6H2O (Q = S or Se) with Cu2+ cations coordinated by the bidentate ligand 2,2′-bipyridyl (bipy) produced two new cluster compounds, [Cu(NH3)(bipy)2]2[Re4S4(CN)12]·bipy·3.25H2O (1) and [{Cu(bipy)2}2Re4Se4(CN)12]·bipy·8.5H2O (2). The structures of these complexes were solved by X-ray diffraction. Compound 1 is ionic. Compound 2 is molecular. In the structures of both compounds, there are staking interactions between the {Cu(bipy)2}2+ cationic moieties and the solvate 2,2′-bipyridyl molecules. Published in Russian in Izvestiya Akademii Nauk. Seriya Khimicheskaya, No. 11, pp. 1875–1878, November, 2006.  相似文献   

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The octahedral cluster anion [Re6Se6Br8]2– was prepared by high-temperature synthesis from elementary substances in the presence of KBr. This cluster anion was isolated and structurally characterized by single-crystal X-ray diffraction analysis as the (PPh4)2[Re6Se6Br8] complex (1). Refluxing of polymeric rhenium selenide bromide Re6Se6Br6 in DMF in the presence of Bu4NBr led to the cleavage of the Re—Br—Re bridges to form the complex (Bu4N)2[Re6Se6Br8]. Comparative analysis of the interatomic distances in the octahedral rhenium(iii) selenide bromide clusters was carried out.  相似文献   

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A cluster complex of the composition [Th(DMSO)8Cl][Re6Se7Cl7] has been obtained by interaction of ThCl4 solution in DMSO with a water solution of K3[Re6Se7Cl7] and KCl. The compound crystallizes in the rhombic space group Pbcm with unit cell parameters a = 12.262(2) Å, b = 19.653(6) Å, c = 23.603(6) Å, V = 5688(2) Å3, Z = 4, d calc = 3.282 g/cm3. The structure is built from centrosymmetric cluster anions [Re6Se7Cl7]3? and complex cations [Th(DMSO)8Cl]3+ possessing mirror-plane symmetry, half of the DMSO ligands being doubly disordered.  相似文献   

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The encapsulation of a nanometer‐sized octahedral anionic rhenium cluster complex with six terminal hydroxo ligands [Re6S8(OH)6]4? in maltose‐decorated poly(propylene amine) dendrimers (POPAM, generation 4 and 5) has been investigated. Ultrafiltration experiments showed that maximal loading capacity of the dendrimers with the cluster complex is achieved after about ten hours in aqueous solution. To study the inclusion phenomena, three different methods have been applied: UV/Vis, time‐resolved laser‐induced fluorescence spectroscopy (TRLFS), and laser‐induced liquid bead ion desorption mass spectrometry (LILBID‐MS). From the results obtained, it could be concluded that: a) the hydrolytic stability of the rhenium cluster complex is significantly enhanced in the presence of dendritic hosts; b) the cluster anions are preferentially bound inside the dendrimers; c) the number of cluster complexes encapsulated in the dendrimers increases with rising dendrimer generation. On average, four to five cluster anions can preferentially be captured in the interior of sugar‐coated dendritic carriers. An asymptotic progression of the release of cluster complexes from the loaded dendrimers was observed under physiologically relevant conditions (isotonic sodium chloride solution: approximately 93 % within 4 days for loaded POPAM‐G4‐maltose; approximately 86 % within 4 days for loaded POPAM‐G5‐maltose). These encapsulation and release properties of maltose‐decorated nanocarriers imply the possibility for the development of the next generation of dendritic nanocarriers with specific targeting of destined tissue for therapeutic treatments.  相似文献   

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Novel Gold Selenium Complexes: Syntheses and Structures of [Au10Se4(dpppe)4]Br2, [Au2Se(dppbe)], [(Au3Se)2(dppbp)3]Cl2, and [Au34Se14(tpep)6(tpepSe)2]Cl6 The reaction of gold phosphine complexes [(AuX)(PR3)] (X= halogen; R = org. group) with Se(SiMe3)2 yield to new chalcogeno bridged gold complexes. Especially within the use of polydentate phosphine ligands cluster complexes like [Au10Se4(dpppe)4]Br2 ( 1 ) (dpppe = 1, 5‐Bis(diphenylphosphino)pentane), [Au2Se(dppbe)] ( 2 ) (1, 4‐Bis(diphenylphosphino)benzene), [(Au3Se)2(dppbp)3]Cl2 ( 3 ) (dppbp = 4, 4′‐Bis‐diphenylphosphino)biphenyl) und [Au34Se14(tpep)6(tpepSe)2]Cl6 ( 4 ) (tpep = 1, 1, 1‐Tris(diphenylphosphinoethyl)phosphine, tpepSe = 1, 1‐Bis(diphenylphosphinoethyl)‐1‐(diphenylselenophosphinoethylphosphine) could be isolated and their structures could be determined by X‐ray diffraction. ( 1: Space group P1 (No. 2), Z = 2, a = 1642.1(11), b = 1713.0(9), c = 2554.0(16) pm, α = 80.41(3)°, β = 76.80(4)°, γ = 80.92(4)°; 2: Space group P21/n (No. 14), Z = 4, a = 947.3(2), b = 1494.9(3), c = 2179.6(7) pm, β = 99.99(3)°; 3: Space group P21/c (No. 14), Z = 8, a = 2939.9(6), b = 3068.4(6), c = 3114.5(6) pm, β = 109.64(3)°; 4: Space group P1 (No. 2), Z = 1, a = 2013.7(4), b = 2420.6(5), c = 2462.5(5) pm, α = 77.20(3), β = 74.92(3), γ = 87.80(3)°).  相似文献   

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Novel structures of H2C?C?CLiX (X ? F, Cl) were determined using HF/STO-3G gradient method. Both of the carbenoids have two equilibrium structures, askew and linear forms, at the level of calculation. In the case X?F, the former is more stable, but in the case X=Cl, the latter is more stable. The frontier MOs are given and analyzed.  相似文献   

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Rhenium Selenidetellurides Re2SexTe5–x: The Structure of Re6Se8Te7 Well-crystallized rhenium selenidetellurides of the Re2Te5-type structure were prepared from the elements in evacuated sealed quartz glas tubes at 1 130 K within 14 d. The orthorhombic lattice parameters of the phases shrink with increasing selenium content from a = 1 304.9(1) ? 1 255.8(2) pm, b = 1 297.5(1) ? 1 260.0(2) pm, and c = 1 425.1(1) ? 1 408.2(1) pm. The phase width ends at composition Re2Se2.7Te2.3. An X-ray structure analysis of a crystal of composition Re6Se8Te7 was performed. Selenium and tellurium atoms differ structurally completely: Whereas the selenium atoms are separated within distorted octahedral [Re6Se8] clusters, the tellurium atoms form homonuclear bonded bicyclic [Te(Te3)2] units. They also link the clusters which are arranged according to the motif of a cubic closest packing.  相似文献   

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The self‐assembly of iron(II) ions with rare octacyanidorhenate(V) metalloligands in a methanolic solution results in the formation of a nanometric pentadecanuclear {FeII9[ReV(CN)8]6(MeOH)24}?10 MeOH ( 1 ) molecule with a six‐capped body‐centered cubic topology. The cluster demonstrates a thermally‐induced spin‐crossover phase transition at T1/2=195 K which occurs selectively for a single FeII ion embedded in the center of a cluster core.  相似文献   

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