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1.
Ralf Eßmann Guido Kreiner Anke Niemann Dirk Rechenbach Axel Schmieding Thomas Sichla Uwe Zachwieja Herbert Jacobs 《无机化学与普通化学杂志》1996,622(7):1161-1166
The Structures of some Hexaammine Metal(II) Halides of 3 d Metals: [V(NH3)6]I2, [Cr(NH3)6]I2, [Mn(NH3)6]Cl2, [Fe(NH3)6]Cl2, [Fe(NH3)6]Br2, [Co(NH3)6]Br2 and [Ni(NH3)6]Cl2 Crystals of yellow [V(NH3)6]I2 and green [Cr(NH3)6]I2 were obtained by the reaction of VI2 and CrI2 with liquid ammonia at room temperature. Colourless crystals of [Mn(NH3)6]Cl2 were obtained from Mn and NH4Cl in supercritical ammonia. Colourless transparent crystals of [Fe(NH3)6]Cl2 and [Fe(NH3)6]Br2 were obtained by the reaction of FeCl2 and FeBr2 with supercritical ammonia at 400°C. Under the same conditions orange crystals of [Co(NH3)6]Br2 were obtained from [Co2(NH2)3(NH3)6]Br3. Purple crystals of [Ni(NH3)6]Cl2 were obtained by the reaction of NiCl2 · 6H2O and NH4Cl with aqueous NH3 solution. The structures of the isotypic compounds (Fm3 m, Z = 4) were determined from single crystal diffractometer data (see “Inhaltsübersicht”). All compounds crystallize in the K2[PtCl6] structure type. In these compounds the metal ions have high-spin configuration. The orientation of the dynamically disordered hydrogen atoms of the ammonia ligands is discussed. 相似文献
2.
Derivatives of the Fluorite Type: [Fe(NH3)6][TaF6]2 and [Ni(NH3)6][TaF6]2 Light blue single crystals of [Fe(NH3)6][TaF6]2 and [Ni(NH3)6][TaF6]2 are obtained from 36 : 1 : 6 molar mixtures of (NH4)F, iron/nickel and tantalum powders, respectively, in sealed Monel metal ampoules at 400 °C. They both crystallize isotypic with [Co(NH3)6][PF6]2 (cubic, Fm-3m, Z = 4, a = 1259.0(2)/1260.4(2) pm) in a structure that can be derived from the basic fluorite-type of structure according to [Ca][F]2≡[Fe(NH3)6][TaF6]2, for example. 相似文献
3.
S. Ganguli S. Das M. Bhattacharya 《Journal of Radioanalytical and Nuclear Chemistry》1998,232(1-2):229-231
A simple method to prepare57Fe enriched K4[Fe(CN)6] and K3[Fe(CN)6] is described. The yields of the products are much better than those reported in the literature so far. The enrichment is essential for57Fe Mössbauer investigation in a variety of Prussiate type complexes and other inorganic compounds which are conveniently prepared from K4[Fe(CN)6] and K3[Fe(CN)6]. K4[Fe(CN)6] was obtained by reacting freshly prepared Fe(OH)3 with glacial acetic acid and treating with iron acetate in boiling aqueous solution of KCN. The novel feature of the procedure to obtain K3[Fe(CN)6] is that the oxidation of K4[Fe(CN)6] has been carried out in the solid state by passing chlorine gas over the powdered specimen. K3[Fe(CN)6] was crystallised from alkaline solution of this oxidised powder. The compounds were characterised by Mössbauer spectroscopy. 相似文献
4.
ChemInform is a weekly Abstracting Service, delivering concise information at a glance that was extracted from about 100 leading journals. To access a ChemInform Abstract of an article which was published elsewhere, please select a “Full Text” option. The original article is trackable via the “References” option. 相似文献
5.
Prof. Dr. Enrique J. Baran 《Monatshefte für Chemie / Chemical Monthly》1977,108(6):1295-1299
The infrared spectra of the title compounds are reported and discussed. The influence of the peroxide groups on the bond properties of the other ligands and some characteristics of the metal—peroxide interactions are analyzed. 相似文献
6.
Scanning electrochemical microscopy (SECM) is used to form local deposits of different Prussian blue analogs on macroscopic
surfaces of gold and glassy carbon. Dissolution of Co and Ni sacrificial ultramicroelectrodes (UMEs) generates divalent cations
in the gap between the UME and the macroscopic specimen electrode. Co2+ or Ni2+ precipitate with [Fe(CN)6]4– formed by reduction of [Fe(CN)6]3– at the macroelectrode. By moving the UME while generating Co2+ or Ni2+, lines can be "drawn" with a width of 130 μm. The line width can be adjusted by reagent concentration and translation speed
of the UME. Different pulse programs allow the formation of ring-shaped structures. The deposited hexacyanoferrate microstructures
show catalytic activity for the reduction of Fe3+ which was imaged in the feedback and generation-collection modes of the SECM.
Electronic Publication 相似文献
7.
On the Crystal Structures of the Cyano Complexes [Co(NH3)6][Fe(CN)6], [Co(NH3)6]2[Ni(CN)4]3 · 2 H2O, and [Cu(en)2][Ni(CN)4] Of the three title compounds X‐ray structure determinations were performed with single crystals. [Co(NH3)6][Fe(CN)6] (a = 1098.6(6), c = 1084.6(6) pm, R3, Z = 3) crystallizes with the CsCl‐like [Co(NH3)6][Co(CN)6] type structure. [Co(NH3)6]2[Ni(CN)4]3 · 2 H2O (a = 805.7(5), b = 855.7(5), c = 1205.3(7) pm, α = 86.32(3), β = 100.13(3), γ = 90.54(3)°, P1, Z = 1) exhibits a related cation lattice, the one cavity of which is occupied by one anion and 2 H2O, whereas the other contains two anions parallel to each other with distance Ni…Ni: 423,3 pm. For [Cu(en)2][Ni(CN)4] (a = 650.5(3), b = 729.0(3), c = 796.5(4) pm, α = 106.67(2), β = 91.46(3), γ = 106.96(2)°, P1, Z = 1) the results of a structure determination published earlier have been confirmed. The compound is weakly paramagnetic and obeys the Curie‐Weiss law in the range T < 100 K. The distances within the complex ions of the compounds investigated (Co–N: 195.7 and 196.4 pm, Ni–C: 186.4 and 186.9 pm, resp.) and their hydrogen bridge relations are discussed. 相似文献
8.
Structurally Chemical Investigation of Monoammin Copper (I) Complexes : [CuNH3]2[Pt(CN)6], [CuNH3]2[Pt(CN)4] and Cu3[Co(CN)6] · 2NH3 The preparation and the properties of [CuNH3]2[Pt(CN)6], [CuNH3]2[Pt(CN)4] and Cu3[Co(CN)6] · 2NH3 are described. I.R. and Raman spectra have been recorded and assigned. According to X-ray powder diagrams, [CuNH3]2[Pt(CN)6] crystallizes in the trigonal space group D–P3 ml, a = 7.771, c = 5.988 Å, Z = 1. According to the spectroscopic and crystallographic data, it is concluded that the CuI ion is coordinated with one NH3 group and with the N atoms of the cyanometallate anions. The coordination number of the Cu+ is 4 in [CuNH3]2[Pt(CN)6] and 3 in [CuNH3]2[Pt(CN)4]. In the Cu3[Co(CN)6] · 2 NH3 complex two Cu atoms have the coordination number 2, the third Cu atom 4. 相似文献
9.
A high‐yield, mmolar‐scale synthesis of pure guanidinium nitroprusside, (CN3H6)2[(57)Fe(CN)5NO] (GNP) from iron metal is described. The iron metal contained pieces of 95.3% 57Fe together with normal iron so that an isotope enrichment in 57Fe of 25% was achieved. Single‐crystals of GNP could be grown in cubic shape and dimensions of about 3 × 4 × 4 mm3. The purity of the GNP product and the intermediates K4[(57)Fe(CN)6] · 3 H2O and Na2[(57)Fe(CN)5NO] · 2 H2O was ascertained by 57Fe Mössbauer spectroscopy as well as 13C, 14N and 57Fe NMR spectroscopy. The 57Fe NMR chemical shift for [(57)Fe(CN)5NO]2– in GNP was detected at +2004.0 ppm [vs Fe(CO)5]. 相似文献
10.
Hocking RK Wasinger EC de Groot FM Hodgson KO Hedman B Solomon EI 《Journal of the American Chemical Society》2006,128(32):10442-10451
Distinct spectral features at the Fe L-edge of the two compounds K3[Fe(CN)6] and K4[Fe(CN)6] have been identified and characterized as arising from contributions of the ligand pi orbitals due to metal-to-ligand back-bonding. In addition, the L-edge energy shifts and total intensities allow changes in the ligand field and effective nuclear charge to be determined. It is found that the ligand field term dominates the edge energy shift. The results of the experimental analysis were compared to BP86 DFT calculations. The overall agreement between the calculations and experiment is good; however, a larger difference in the amount of pi back-donation between Fe(II) and Fe(III) is found experimentally. The analysis of L-edge spectral shape, energy shift, and total intensity demonstrates that Fe L-edge X-ray absorption spectroscopy provides a direct probe of metal-to-ligand back-bonding. 相似文献
11.
12.
Two cyano-bridged assemblies, [FeIII(salpn)]2[FeII(CN)5NO] (1) and [FeIII (salpn)]2[NiII(CN)4] (2) [salpn = N, N-1,2-propylenebis(salicylideneiminato)dianion], have been prepared and structurally and magnetically characterized. In each complex, [Fe(CN)5NO]2– or [Ni(CN)4]2– coordinates with four [Fe(salpn)]+ cations using four co-planar CN– ligands, whereas each [Fe(salpn)]+ links two [Fe(CN)5NO]2– or [Ni(CN)4]2– ions in the trans form, which results in a two-dimensional (2D) network consisting of pillow-like octanuclear [—MII—CN—FeIII—NC—]4 units (M = Fe or Ni). In complex (1), the NO group of [Fe(CN)5NO]2– remains monodentate and the bond angle of FeII—N—O is 180.0°. The variable temperature magnetic susceptibilities, measured in the 5–300 K range, show weak intralayer antiferromagnetic interactions in both complexes with the intramolecular iron(III)iron(III) exchange integrals of –0.017 cm–1 for (1) and –0.020 cm–1 for (2), respectively. 相似文献
13.
1 INTRODUCTION During the past decade, a series of organic-inor- ganic hybrid compounds based on metal halide units have been prepared and studied[1]. The combination of organic and inorganic components at the mole- cular level affords us the opportunity to design new hybrid materials and modulate the properties of components[2]. As a result, some interesting proper- ties, such as non-linear optical[3], interesting magne- tic[4], efficient luminescence[2], ideal thermal and mechanical sta… 相似文献
14.
Alevtina N. Gosteva Mayya V. Kulikova Yulya P. Semushina Mariya V. Chudakova Nikita S. Tsvetov Vasilii V. Semushin 《Molecules (Basel, Switzerland)》2021,26(13)
Currently, the processes of obtaining synthetic liquid hydrocarbons and oxygenates are very relevant. Fischer-Tropsch synthesis (FTS) is the most important step in these processes. The products of thermal destruction in argon of the mixture [Co(NH3)6][Fe(CN)6] and Al(OH)3 were used as catalysts for CO hydrogenation. The resulting compositions were studied using powder X-ray diffraction, IR spectroscopy, elemental analysis, SEM micrographs. The specific surface area, pore and particle size distributions were determined. It was determined that the DCS-based catalysts were active in the high-temperature Fischer-Tropsch synthesis. The effect of aluminum in the catalyst composition on the distribution of reaction products was revealed. 相似文献
15.
Synthesis and Crystal Structure of [Cr(NH3)6][Cr(NH3)2F4][BF4]2 The action of ammonium fluoride on a mixture of boron and chromium in a sealed Monel ampoule at 300 °C yields single crystals of [Cr(NH3)6][Cr(NH3)2F4][BF4]2. The crystal structure (tetragonal, P4/mbm, Z = 2, a = 1056.0(1), c = 781.7(1) pm; R1 = 0.0414; wR2 = 0.1087 for 411 reflections with I0 > 2σ(I)) contains [Cr(NH3)6]3+ and [Cr(NH3)2F4]– octahedra and twice as many [BF4]– tetrahedra that are arranged in a quadrupled super‐structure of the CsCl‐type of structure. 相似文献
16.
K3 [Fe(CN)6] and KFe[Fe(CN)6] are classical coordination compounds. However, the mechanism of decomposition reactions has not been well expounded. The gas products of thermal decomposition were examined by gas chroma tography (GC) , and the structure of the solid products by Mossbauer spectroscopy(MS) and X-ray diffraction(XRD). The findings are explained in terms of the theory of coordination chemistry and a decomposition mechanism is proposed in this study. On the basis of various experimental results, the first stage of the decomposition of K3[Fe(CN)6] in He was found to be the evolution of(CN)2 resulting in the reduction of Fe(Ⅲ)12K3 [Fe(CN)6]→9K4[Fe(CN)6] + Fe2 [Fe(CN)6] + 6 ( CN )For KFe [Fe(CN) 6 ], the first stage of decomposition man be represented as6KFe[Fe(CN)6]→3K2Fe[Fe(CN)6] + 2Fe2[Fe(CN)6 + 3(CN)2At higher temperatures, the decomposition of both K3[Fe(CN)6) andKFe[Fe(CN)6] to form KCN and Fe2C was accomplished by the release of(CN)2 and N2. 相似文献
17.
The complexes [Ni(Pn)2]2[Fe(CN)6] · 3H2O (I), [Ni3(Pn)5][Fe(CN)6]2 · 9H2O (II), [Ni5(Pn)9][Fe(CN)6]3 · 9H2O (III), and [Ni(Pn)2]3[Fe(CN)6]2 · 6H2O (IV) (Pn = 1,3-diaminopropane) were obtained. Their thermolysis was studied in oxidative (air), reductive (hydrogen), and inert atmospheres (argon) in a temperature range from 20 to 1000°C. Solid and gaseous products of the thermolysis were identified. In air thermolysis, the carbon of the ligands is eliminated as CO and CO2; the solid residues consist of nickel oxide, iron oxides, and the intermetallide Ni3Fe. In hydrogen thermolysis, the ligands are eliminated partially unchanged and partially hydrogenated to ammonia and hydrocarbons. The solid residue at >550°C consists of bimetallic phases with a small carbon impurity. In argon thermolysis, the ligands are eliminated partially unchanged or as fragments of the Pn molecule. The solid residues produced by calcination contain a mixture of metal and oxide phases and 10 to 20% of the initial carbon content. 相似文献
18.
Journal of Structural Chemistry - Chain coordination polymer [Cu(NH3)2]2[{Cu(NH3)}2{Cu(NH3)(OH)}Re6Se8(CN)6] (1) is obtained by a reaction of Cs2.75K1.25[Re6Se8(CN)4(OH)2]·H2O with CuCN in the... 相似文献
19.