共查询到20条相似文献,搜索用时 15 毫秒
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Hui‐Bo Zhou Wen Dong Mao Liang Dai‐Zheng Liao Zong‐Hui Jiang Shi‐Ping Yan Peng Cheng 《无机化学与普通化学杂志》2004,630(4):498-500
A three‐dimensional cyano‐bridged copper(II) complex, [Cu(dien)Ag(CN)2]2[Ag2(CN)3][Ag(CN)2] ( 1 ) (dien = diethylenetriamine), has been prepared and characterized by X‐ray crystallography. Complex 1 crystallized in the monoclinic space group P21/n with a = 6.988(2), b = 17.615(6), c = 12.564(4) Å, β = 90.790(5)°. The crystal consists of cis‐[Cu(dien)]2+ units bridged by [Ag(CN)2]— to form a zig‐zag chain. The Ag atoms of the free and bridging [Ag(CN)2]— link together to form additional infinite zig‐zag chains with short Ag···Ag distances. The presence of Ag···Ag interactions effectively increases the dimensionality from a 1‐D chain to a 3‐D coordination polymer. 相似文献
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F. Muriel R. de la Vega F. Snchez R. Jimnez R. Prado‐Gotor F. Prez P. Prez‐Tejeda 《国际化学动力学杂志》2005,37(2):81-89
The kinetics of electron transfer reactions between [Fe(CN)6]4? and [Co(NH3)5pz]3+ and between [Ru(NH3)5pz]2+ and [Co(C2O4)3]3? was studied in concentrated salt solutions (Na2SO4, LiNO3, and Ca(NO3)2). An analysis of the experimental kinetic data, kobs, permits us to obtain the true (unimolecular) electron transfer rate constants corresponding to the true electron transfer process (precursor complex → successor complex), ket. The variations of both, kobs and ket, with salt concentrations are opposite for these reactions. These opposite tendencies can be rationalized by using the Marcus–Hush treatment for electron transfer reactions. The conclusion is that the negative salt effect found for the first reaction ([Fe(CN)6]4? + [Co(NH3)5pz]3+) is due to the increase of the reaction and reorganization free energies when the concentration of salt increases. In the case of the second reaction ([Ru(NH3)5pz]2+ + [Co(C2O4)3]3?), the positive salt effect observed is caused by the fact that the driving force becomes more favorable when the concentration of salt increases. Thus, it is shown that for anion/cation electron transfer reactions the kinetic salt effect depends on the charge sign of the oxidant (and the reductant). © 2004 Wiley Periodicals, Inc. Int J Chem Kinet 37: 81–89, 2005 相似文献
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Kevin Blsing Jrg Harloff Axel Schulz Alrik Stoffers Philip Stoer Alexander Villinger 《Angewandte Chemie (International ed. in English)》2020,59(26):10508-10513
Although pure hydrogen cyanide can spontaneously polymerize or even explode, when initiated by small amounts of bases (e.g. CN?), the reaction of liquid HCN with [WCC]CN (WCC=weakly coordinating cation=Ph4P, Ph3PNPPh3=PNP) was investigated. Depending on the cation, it was possible to extract salts containing the formal dihydrogen tricyanide [CN(HCN)2]? and trihydrogen tetracyanide ions [CN(HCN)3]? from liquid HCN when a fast crystallization was carried out at low temperatures. X‐ray structure elucidation revealed hydrogen‐bridged linear [CN(HCN)2]? and Y‐shaped [CN(HCN)3]? molecular ions in the crystal. Both anions can be considered members of highly labile cyanide‐HCN solvates of the type [CN(HCN)n]? (n=1, 2, 3 …) as well as formal polypseudohalide ions. 相似文献
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The infrared spectrum of [ONC(CN)2]? is described and an assignment is given. In order to facilitate this assignment, 15N is used. Complexes, formed by this anion, are also investigated by means of IR spectroscopy. The shift of the bands of the anion are reported and a discussion concerning the bonding relations of the complexes is given. Some remarkable isotopic effects are mentioned. 相似文献
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Anionie Nickel Pseudohalide Complexes of the Types [Ni{N(CN)2}3]? and [Ni{N(CN)2}2(NCS)2]2? The preparation of a new type of anionic pseudohalide complexes of nickel [Ni{N(CN)2}3]? and of mixed thiocyanate-dicyanamide complexes [Ni{N(CN)2}2(NCS)2]2? is reported. The structures of the complexes are discussed on the basis of IR- and magnetic measurements. The new compounds are representing polymer octahedral complexes with a bridging function of the dicyanamide ligands. 相似文献
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Donna M. Smith Thomas E. Albrecht-Schmitt James A. Ibers 《Angewandte Chemie (International ed. in English)》1998,37(8):1089-1091
An unusual route to the maleonitrilediselenolate (mns) ligand has been discovered with the isolation of compounds that contain this ligand bound to silver (structure shown on the right) or antimony. The formation of the [As(Se)3(CH2CN)]2− anion along with possible pathways to the mns ligands is discussed. 相似文献
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Johannes Landmann Jan A. P. Sprenger Michael Hailmann Vera Bernhardt‐Pitchougina Helge Willner Nikolai Ignat'ev Eduard Bernhardt Maik Finze 《Angewandte Chemie (International ed. in English)》2015,54(38):11259-11264
Diborane(6) dianions with substituents that are bonded to boron via carbon are very reactive and therefore only a few examples are known. Diborane(6) derivatives are the simplest catenated boron compounds with an electron‐precise B–B σ‐bond that are of fundamental interest and of relevance for material applications. The homoleptic hexacyanodiborane(6) dianion [B2(CN)6]2− that is chemically very robust is reported. The dianion is air‐stable and resistant against boiling water and anhydrous hydrogen fluoride. Its salts are thermally highly stable, for example, decomposition of (H3O)2[B2(CN)6] starts at 200 °C. The [B2(CN)6]2− dianion is readily accessible starting from 1) B(CN)32− and an oxidant, 2) [BF(CN)3]− and a reductant, or 3) by the reaction of B(CN)32− with [BHal(CN)3]− (Hal=F, Br). The latter reaction was found to proceed via a triply negatively charged transition state according to an SN2 mechanism. 相似文献
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Juraj Kuchr Juraj ernk 《Acta Crystallographica. Section C, Structural Chemistry》2009,65(7):m246-m249
The title compound, catena‐poly[[bis[(triazacyclononane‐κ3N,N′,N′′)copper(II)]‐di‐μ‐cyanido‐κ4N:C‐palladate(II)‐di‐μ‐cyanido‐κ4C:N] dibromide bis[[(triazacyclononane‐κ3N,N′,N′′)copper(II)]‐μ‐cyanido‐κ2N:C‐[dicyanidopalladate(II)]‐μ‐cyanido‐κ2C:N] monohydrate], {[Cu2Pd(CN)4(C6H15N3)2]Br2·[Cu2Pd2(CN)8(C6H15N3)2]·H2O}n, (I), was isolated from an aqueous solution containing tacn·3HBr (tacn is 1,4,7‐triazacyclononane), Cu2+ and tetracyanidopalladate(2−) anions. The crystal structure of (I) is essentially ionic and built up of 2,2‐electroneutral chains, viz. [Cu(tacn)(NC)–Pd(CN)2–(CN)–], positively charged 2,4‐ribbons exhibiting the composition {[Cu(tacn)(NC)2–Pd(CN)2–Cu(tacn)]2n+}n, bromide anions and one disordered water molecule of crystallization. The O atom of the water molecule occupies two unique crystallographic positions, one on a centre of symmetry, which is half occupied, and the other in a general position with one‐quarter occupancy. One of the tacn ligands also exhibits disorder. The formation of two different types of one‐dimensional structural motif within the same structure is a unique feature of this compound. 相似文献
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[catena‐Bis(1,2‐diaminoethane)nickel(II)‐µ‐dicyanoargentate]‐dicyanoargentate, [Ni(en)2Ag2(CN)4], was synthesized and its chain‐like crystal structure was determined by X‐ray crystal analysis. Copyright © 2005 John Wiley & Sons, Ltd. 相似文献
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Introduction So far, considerable attention has been paid to mag-netic interaction between two different metal ions.1-3 As a potential bridging ligand, thiocyanate can coordinate to a harder metal center with N atom and softer ones with S atom at the same time, resulting in the formation of small ferromagnetic coupling.2 On the other hand, the Fe(III) atom is a good candidate as a hard acid and Ag(I) is a good candidate as a soft acid, so that the Fe(III) centers could be expected to conn… 相似文献
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The crystal structures of two square tetracyanocomplexes were determined. [Ni(dien)2][Ni(CN)4]·2H2O (NDNCH) and [Ni‐(dien)2][Pd(CN)4] (NDPC) (dien = diethylene triamine) exhibit ionic structures consisting of mer‐[Ni(dien)2]2+ cations and [Ni(CN)4]2‐ or [Pd(CN)4]2‐ anions, respectively. Moreover, the structure of NDNCH is completed by two water molecules of crystallisation. In both compounds hydrogen bonds contribute to the stabilisation of the structure. NDNCH dehydrates on air quickly yielding anhydrous [Ni(dien)2][Ni(CN)4] (NDNC). Its thermal decomposition proceeds in a complicated process followed by aerial oxidation of metallic nickel to NiO. 相似文献
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