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  • 1
    Publication Date: 2013-09-12
    Description: The reactions of As 2 O 3 , SbCl 3 , and (BiO) 2 CO 3 with oleum (65 % SO 3 ) yielded single crystals of As(S 2 O 7 )(HS 2 O 7 ) [monoclinic, P 2 1 / c , Z = 4, a = 16.549(1), b = 6.6743(5), c = 9.9498(6) Å, β = 102.672(8)°, V = 1072.672(8) Å 3 ], Sb 2 (SO 4 ) 2 (S 2 O 7 ) [monoclinic, P 2 1 / n , Z = 4, a = 9.1586(2), b = 6.9981(2), c = 17.7956(4) Å, β = 100.9690(8)°, V = 1119.73(5) Å 3 ], and Bi 2 (S 2 O 7 ) 3 [triclinic, P , Z = 2, a = 6.5734(1), b = 10.1954(2), c = 11.5121(2) Å, α = 90.996(1)°, β = 96.976(1)°, γ = 94.870(1)°, V = 762.75(2) Å 3 ]. As(S 2 O 7 )(HS 2 O 7 ) shows the arsenic atoms in a trigonal pyramidal coordination of the oxygen atoms of one chelating S 2 O 7 2– and one monodentate HS 2 O 7 – group. The distinct As(S 2 O 7 )(HS 2 O 7 ) molecules are connected with each other by hydrogen bonds to form layers. Sb 2 (SO 4 ) 2 (S 2 O 7 ) shows the Sb 3+ cations in a seesaw-type coordination of oxygen atoms from both anions. In Bi 2 (S 2 O 7 ) 3 the Bi 3+ cations are in a square prismatic oxygen coordination of disulfate units. The antimony and the bismuth compounds exhibit complex three-dimensionally linked structures. The syntheses and the crystal structures, as well as the thermal decomposition of Sb 2 (SO 4 ) 2 (S 2 O 7 ) are presented.
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  • 2
    Publication Date: 2013-09-12
    Description: Silver acetate AgOAc reacts with dry liquid ammonia under the formation of colorless needle-shaped crystals of diammine silver(I) acetate [Ag(NH 3 ) 2 ]OAc ( 1 ). The compound crystallizes in the monoclinic space group P 2 1 / c with a = 8.0205(2), b = 12.4161(3), c = 6.0938(2) Å, β = 107.741(4)°, and V = 577.98(3) Å 3 at 123 K with Z = 4. The crystal structure shows the presence of almost linear [Ag(NH 3 ) 2 ] + cations, which are arranged in a corrugated chain of equidistant silver atoms. The Ag–Ag distance is 3.1089(11) Å, which falls in the range of “argentophilic” interactions. After warming to room temperature and removal of the solvent, compound 1 was found unchanged as evidenced by powder X-ray diffraction, thermogravimetric and mass-spectrometric analysis, as well as IR and Raman spectroscopy.
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  • 3
    Publication Date: 2013-09-12
    Description: A series of chalcogenidoantimonates, namely [Zn(NH 3 ) 6 ](Sb III 4 S 7 ) ( 1 ), [Zn(NH 3 ) 6 ]{Zn(NH 3 ) 3 Sb V S 4 } 2 · NH 3 ( 2 ), [Mn(NH 3 ) 6 ](Sb III Se 2 ) 2 ( 3 ) and [Zn(NH 3 ) 4 ]{Zn(NH 3 )Sb III Se 3 } 2 · 3NH 3 ( 4 ) are synthesized by solvothermal technique in liquid ammonia at 50 °C from elemental zinc or manganese, antimony and sulfur or selenium. 1 (space group P ) and 2 ( P ) crystallize centrosymmetrically, whereas 3 ( Pna 2 1 ) and 4 ( P 2 1 ) represent polar structures. All compounds contain discrete cationic [Zn(NH 3 ) 4 ] 2+ , [Zn(NH 3 ) 6 ] 2+ , and [Mn(NH 3 ) 6 ] 2+ ammine complexes. In the anionic structure parts, corner-connected trigonal-pyramidal SbS 3 and SbSe 3 are the characteristic building units. 1 and 4 contain 2D polymeric anions, in the latter case with Zn 2+ cations incorporated in a selenidoantimonate(III) network. The polymeric anion in the structure of 3 is a helical chain. 2 is a molecular compound and contains dinuclear anions [S 3 Sb–S–Zn(NH 3 ) 3 ] 2– with Sb V . Raman measurements show the Sb–Ch valence vibrations in the expected region between 250–370 cm –1 for 1 and at 212 cm –1 for 4 . According to the reflectance spectrum 4 is a semiconductor with an optical band gap of 2.05(5) eV.
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  • 4
    Publication Date: 2013-09-21
    Description: . Sr 2 CoOsO 6 , a new osmium based ordered semiconductor double perovskite was prepared by solid state synthesis from the respective binary oxides. Room temperature PXRD analysis shows the compound to be tetragonal [ I 4/ m ; a = 5.5503(1) Å and c = 7.9320(1) Å], whereas low temperature synchrotron data refinement has revealed a second monoclinic polymorph [ I 2/ m ; a = 5.4969(2) Å, b = 5.4979(2) Å, c = 8.0090(1) Å and γ = 90.527(1)°] with a fully ordered rocksalt arrangement of cobalt and osmium atoms over the perovskite B -sites. Heat capacity and magnetic measurements indicate that Sr 2 CoOsO 6 shows antiferromagnetic ordering below T N = 108 K followed by a second magnetic transition at T 2 = 65 K. It was shown that the change from the tetragonal to the monoclinic phase occurs at T N .
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  • 5
    Publication Date: 2013-09-21
    Description: . The ternary germanides RE Rh 6 Ge 4 ( RE = Y, La, Pr, Nd, Sm–Lu) were obtained by arc-melting of the elements and subsequent annealing. Single crystals were grown from bismuth fluxes. The samples were studied by X-ray diffraction on powders. The structures of five members were refined from single crystal diffraction data: LiCo 6 P 4 type, P m 2, a = 715.8(1), c = 387.33(8) pm, wR = 0.0238, 332 F 2 values for LaRh 6 Ge 4 , a = 715.0(1), c = 384.96(7) pm, wR = 0.0211, 329 F 2 values for PrRh 6 Ge 4 , a = 714.28(9), c = 382.57(6) pm, wR = 0.0136, 327 F 2 values for SmRh 6 Ge 4 , a = 714.2(1), c = 381.6(1), wR = 0.0270, 327 F 2 values for GdRh 6 Ge 4 , and a = 714.2(2), c = 379.0(1) pm, wR = 0.0273, 324 F 2 values for HoRh 6 Ge 4 with 19 variables per refinement. The RE Rh 6 Ge 4 structures have two crystallographically independent germanium sites in trigonal prismatic coordination, manifesting the close structural relationship with metal-rich phosphides. Together, the rhodium and germanium atoms build up three-dimensional [Rh 6 Ge 4 ] networks, which leave large channels for the rare earth atoms. Each rare earth atom has coordination number 20 with 12 Rh, 6 Ge, and 2 RE neighbors. Temperature dependent magnetic susceptibility measurements indicate Pauli paramagnetic behavior for YRh 6 Ge 4 , LaRh 6 Ge 4 , and LuRh 6 Ge 4 . The compounds RE Rh 6 Ge 4 ( RE = Gd–Yb) are Curie-Weiss paramagnets. Antiferromagnetic ordering was observed at 8.4(5) K (GdRh 6 Ge 4 ), 13.6(5) K (TbRh 6 Ge 4 ), 5.1(5) K (DyRh 6 Ge 4 ), and 8.9(5) K (YbRh 6 Ge 4 ). DyRh 6 Ge 4 and YbRh 6 Ge 4 show metamagnetic transitions at 2.5(5) and 45(2) kOe, respectively.
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  • 6
    Publication Date: 2013-09-21
    Description: Reaction of manganese(II) thiocyanate with 2-chloropyrazine leads always to the formation of a compound of composition Mn(NCS) 2 (2-chloropyrazine) 4 ( 1 - Mn/Cl ) that consists of discrete complexes, in which the manganese cation is coordinated by two terminal thiocyanato anions and four 2-chloropyrazine ligands. In contrast, with 2-methylpyrazine only an aqua complex of composition Mn(NCS) 2 (2-methylpyrazine) 2 (H 2 O) 2 ( 1 - Mn/CH 3 ) is obtained that also consists of discrete octahedrally coordinated complexes. Moreover, a few single crystals of Mn(NCS) 2 (2-chloropyrazine) 4 · Mn(NCS) 2 (2-chloropyrazine) 2 (H 2 O) 2 · 2-chloropyrazine trisolvate ( 2 - Mn/Cl ) and Mn(NCS) 2 (2-methylpyrazine) 2 (H 2 O) 2 · Mn(NCS) 2 (H 2 O) 4 ( 2 - Mn/CH 3 ) were accidently obtained but no larger amounts are available. On heating, 1 - Mn/Cl and 1 - Mn/CH 3 transforms into new compounds of composition Mn(NCS) 2 (L) 2 (L = 2-chloropyrazine) ( 4 - Mn/Cl ) and 2-methylpyrazine ( 3 - Mn/CH 3 ). Surprisingly on further heating 1 - Mn/CH 3 looses additional 2-methylpyrazine ligands and transforms into a new compound of composition Mn(NCS) 2 (2-methylpyrazine) ( 4 - Mn/CH 3 ). Compound 4 - Mn/Cl is isotypic to its cobalt(II) analog and 4 - Mn/CH 3 is isotypic to Cd(NCS) 2 (2-methylpyrazine) reported recently and therefore, both structures were refined by the Rietveld method. The crystal structures of both compounds are strongly related. They consists of dimeric units, in which each two manganese cations are linked by pairs of μ-1,3-bridging thiocyanato anions, which are further connected into layers by single μ-1, 3-bridging anionic ligands. In contrast to 4 - Mn/Cl , in 4 - Mn/CH 3 these layers are further linked into a 3D coordination network by the 2-methylpyrazine ligands. Magnetic measurements reveal that 1 - Mn/Cl , 1 - Mn/CH 3 , and 3 - Mn/CH 3 shows only Curie- or Curie-Weiss paramagnetism, whereas 4 - Mn/Cl and 4 - Mn/CH 3 shows antiferromagnetic ordering at T N = 22.9 K and at 26.5 K. The results of these investigations are compared with those obtained for related compounds.
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  • 7
    Publication Date: 2013-09-21
    Description: . Black platelets of Bi 39.67(7) Ru 2 Br 35.0(2) were crystallized from a melt of Bi, BiBr 3 , and Ru. In the tetragonal crystal structure [ P 4/ mbm , a = 1311.92(6) pm, c = 3018.2(4) pm at 155(5) K], cluster cations [(Bi 8 2+ )Ru 2+ (Bi 8 2+ )] are embedded in a matrix of disordered bromido-bismuthate(III) groups. A thorough analysis of the disorder in the anionic part enabled the unambiguous assignment of the cluster charge. The η 4 -coordination of the two Bi 8 2+ square antiprisms to the Ru II atom in the sandwich complex resembles the bonding of Bi 5 + and Bi 8 2+ in the clusters [(Bi 5 + )Ru + (Bi 4 Br 4 )Ru + (Bi 5 + )] and [(Bi 8 2+ )Ru + (Bi 4 Br 4 )Ru + (Bi 5 + )] as well as of Bi 4 2– in 1 ∞ [(Bi 4 2– )Ru + (Bi 4 Br 4 )Ru + ]. By combining crystal chemical considerations for all mentioned compounds and using quantum chemical calculations, a common bonding scheme for the coordination compounds of bismuth polycations and polyanions was established. The η 4 -coordinating bismuth polycations and polyanions act as six electron donors, comparable to nido -carborane ligands, Zintl anions E 9 4– and E 5 6– ( E = Si to Pb), cyclopentadienyl ligands, or the cyclobutadiene dianion. The electron count for the transition metal is 18 in all finite clusters.
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  • 8
    Publication Date: 2013-09-24
    Description: . Previous attempts to synthesize and isolate (thiobisphenolate) vanadium(V) dioxido complexes had always provided their dimers containing [O=V(μ-O) 2 V=O] 2+ cores, and these also dominate the solution reactivity. Hence, the behavior of their parent monomers, which represent the major species in solution, has remained uncertain. Herein we report the development of a synthetic route that allowed for the successful isolation, spectroscopic investigation, and structural characterization of the monomer PPh 4 [ S LVO 2 ] ( 3 ) [ S L 2– = 2′2-thiobis(2, 4-di- tert -butylphenolate)]. For this purpose PPh 4 [ S LVOCl 2 ] ( 1 ) had to be accessed first in order to convert it to the ethoxido compound PPh 4 [ S LVO(OEt) 2 ] ( 2 ), which is more prone to hydrolysis. Treatment of 2 with stoichiometric amounts of water followed by immediate cooling to –30 °C led to crystals of 3 . After its dissolution NMR spectra were recorded that were identical with those obtained after dissolution of its dimer, thus confirming the monomer/dimer equilibrium postulated previously. The molecular structure of 3 revealed the absence of a V ··· S interaction, which, however, stabilizes its dimer, and thus suggested the employment of a bisphenolate ligand lacking a bridging sulfur atom to obtain an analogue, which does not undergo dimerization in solution. In Et L 2– the sulfur atom is replaced by an ethylmethine unit and indeed the corresponding complex NBu 4 [ Et LVO 2 ] ( 4 ) proved to be stable as a monomer. Investigation of its potential as a catalyst for the oxidative dehydrogenation of 9-fluorenol confirmed a much lower reactivity in comparison to dimeric complexes, which is discussed.
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  • 9
    Publication Date: 2013-09-24
    Description: Two complexes, cis -[MnL 2 (NCS) 2 ] ( 1 ) and cis -[ZnL 2 (NCS) 2 ] ( 2 ) with asymmetrical substituted triazole ligands [L = 3, 4-dimethyl-5-(2-pyridyl)-1, 2, 4-triazole], were synthesized and characterized by elemental analysis, UV/Vis and FT-IR spectroscopy as well as thermogravimetric analyses (TGA), powder XRD, and single-crystal X-ray diffraction. In the complexes, each L molecule adopts a chelating bidentate mode by the nitrogen atoms of pyridyl and triazole. Both complexes have a similar distorted octahedral [ M N 6 ] core ( M = Mn 2+ and Zn 2+ ) with two NCS – ions in the cis position.
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  • 10
    Publication Date: 2013-10-03
    Description: . The multi-shaped amorphous alloy (Ni-B) powders were prepared by complexing reduction route using sodium borohydride (NaBH 4 ) as reductant with assistance of ultrasonic wave. The selected complexants, i.e. water, ammonia, salicylic acid, and ethylene diamine tetraacetic acid (EDTA) possess sequentially escalating complexation ability. The chemical composition and shapes of the product samples obtained under different conditions were characterized by X-ray powder differaction, selected area electron diffraction, and transmission electron microscope. The influence of reaction conditions such as the types of Ni-B, temperatures, NaBH 4 concentrations, and sodium hydroxide (NaOH) content on the hydrogen generation rate of hydrolysis of NaBH 4 solution were investigated in detail. The results show that the as-prepared Ni-B powders all belong to amorphous alloy with variable element contents, and the Ni-B sample prepared from EDTA complexation, possessing the best fineness and dispersity, has the strongest catalytic activity. The mean apparent activation energy of the hydrolysis reaction is 64.90 kJ · mol –1 . The NaBH 4 concentration has little impact on hydrogen generation rate, implying that the catalytic hydrolysis of NaBH 4 solution should be the pseudo zero-order reaction. Keeping the NaOH content at below 5 % could inhibit the hydrolysis of NaBH 4 solution, but the NaOH contents from 10 % to 15 % will significantly promote the hydrolysis rate of NaBH 4 . The hydrolysis reaction mechanisms, especially the effect of NaOH content on the hydrolysis reaction were also analyzed.
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