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1.
On Chalcogenide Halogenides of Rhenium: Synthesis and Crystal Structures of the Triangular Clusters Re3E7X7 (E = S, Se; X = Cl, Br) The compounds Re3E7X7 are obtained from rhenium tetrahalides ReX4, elemental chalcogens and the respective chalcogen halides E2X2 or SeX4 (E = S, Se; X = Cl, Br). Re3S7Cl7, Re3S7Br7 and Re3Se7Br7 are formed in solutions of sulfur or selenium halides or SiBr4 in form of black crystals and crystallize isotypically in the trigonal space group P31c. Re3Se7Cl7 is formed by solid state reaction of ReCl4, Se and SeCl4 or by thermal decomposition of Se4[ReCl6], crystallizing as red, in thin layers transparent crystals in the orthorhombic space group Pbcm. The crystal structures consist of discrete positively charged cluster units and halide ions according to the formula [Re33-E)(μ2-E2)3X6]+X. In the rhenium triangular clusters the Re–Re distances range from 269,0 to 270,4 pm for the sulfur and from 273,3 to 275,3 pm for the selenium containing compounds. The Re3 units are capped by chalcogen atoms, three E2 groups form bridges over the edges of the Re3 triangles. The trigonal and the orthorhombic structure type show differences in the site symmetry of the clusters (C3 vs. Cs) and in the stacking sequence of the molecules, which are packed in the motif of a closest packing of spheres.  相似文献   

2.
Cluster Complexes [M2Rh(μ‐PCy2)(μ‐CO)2(CO)8] with Triangular Core of RhM2 (M = Re, Mn; M2 = MnRe): Synthesis, Structure, Ring Opening Reaction, and Properties as Catalysts for Hydroformylation and Isomerisation of 1‐Hexene The salts PPh4[M2(μ‐H)(μ‐PCy2)(CO)8] and Rh(COD)[ClO4] were in equimolar amounts reacted at –40 to –15 °C in the presence of CO(g) in CH2Cl2/methanol solution under release of PPh4[ClO4] to intermediates. Such species formed in a selective reaction the unifold unsaturated 46 valence electrons title compounds [M2Rh(μ‐PCy2)(μ‐CO)2(CO)8] (M = Re 1 , Mn 2 ; M2 = MnRe 3 ) in yields of > 90%; analogeous the derivatives with the PPh2 bridge could the obtained (M = Re 4 , Mn 5 ). From these clusters the molecular structure of 2 was determined by a single crystal X‐ray analysis. The exchange of the labil CO ligand attached at the rhodium ring atom in 1 – 3 against selected tertiary and secondary phosphanes in solution gave the substitution products [M2RhL(μ‐PCy2)(μ‐CO)2(CO)7] (M = Re: L = PMe3 6 , P(n‐Bu)3 7 , P(n‐C6H4SO3Na)3 8 , HPCy2 9 , HPPh2 10 , HPMen2 11 , M2 = MnRe: L = HPCy2 12 ) nearly quantitative. Such dimanganese rhodium intermediates ligated with secondary phosphanes were converted in a subsequent reaction to the ring‐opened complexes [MnRh(μ‐PCy2)(μ‐H)(CO)5Mn(μ‐PR2)(CO)4] (M = Mn: R = Cy 13 , Ph 14 , Mn 15 ). The molecular structure of 13 , which showed in the time scale of the 31P NMR method a fluxional behaviour, was determined by X‐ray structure analysis. All products obtained were always characterized by means of υ(CO)Ir, 1H and 31P NMR measurements. From the reactants of hydroformylation process, CO(g) 1 – 2 in different solvents afforded at 20 °C under a reversible ring opening reaction the valence‐saturated complexes [MRh(μ‐PCy2)(CO)7M(CO)5] (M = Re 16 , Mn 17 ), whereas the reaction of CO(g) and the ring‐opened 13 to [MnRh(μ‐PCy2)(μ‐H)(CO)6Mn(μ‐PCy2)(CO)4] ( 18 ) was as well reversible. The molecular structures of 17 and 18 were determined by X‐ray analysis. The υ(CO)IR, 1H and 31P NMR measurements in pressure‐resistant reaction vessels at 20 °C ascertained the heterolytic splitting of hydrogen in the reaction of 1 – 2 dissolved in CDCl3 or THF‐d8 under formation of product monoanions [M2Rh(μ‐CO)(μ‐H)(μ‐PCy2)(CO)9] (M = Re, Mn), which also were formed by the reaction of NaBH4 and 1 – 2 . Finally, the substrate 1‐hexene and 1 and 3 gave under the release of the labil CO ligand an η2‐coordination pattern of hexene, which was weekened going from the Re to the Mn neighbor atoms. After the results of the catalytic experiments with 1 and 2 as catalysts, such change in the bonding property revealed an advantageous formation of hydroformylation products for the dirhenium rhodium catalyst 1 and that of isomerisation products of hexene for the dimanganese rhodium catalyst 2 . Par example, 1 generated n‐heptanal/2‐methylhexanal in TOF values of 246 [h–1] (n/iso = 3.4) and the c,t‐hexenes in that of 241 [h–1]. Opposotite to this, 2 achieved such values of 55 [h–1] (n/iso = 3.6) and 473 [h–1]. A triphenylphosphane substitution product of 1 increased the activity of the hydroformylation reaction about 20%, accompanied by an only gradually improved selectivity. The hydrogenation products like alcohols and saturated hydrocarbons known from industrial hydroformylation processes were not observed. The metals manganese and rhenium bound at the rhodium reaction center showed a cooperative effect.  相似文献   

3.
Regioselective Ring Opening Reactions of Unifold Unsaturated Triangular Cluster Complexes [M2Rh(μ‐PR2)(μ‐CO)2(CO)8] (M2 = Re2, Mn2; R = Cy, Ph; M2 = MnRe, R = Ph) with Diphosphanes Equimolar amounts of the triangular title compounds and chelates of the type (Ph2P)2Z (Z = CH2, DPPM ; C=CH2, EPP ) react in thf solution at –40 to –20 °C under release of the labile terminal carbonyl ligand attached to the rhodium atom in good yields (70–90%) to ring‐opened unifold unsaturated complexes [MRh(μ‐PR2)(CO)4M(DPPM bzw. EPP)(μ‐CO)2(CO)3] (DPPM: M2 = Re2, R = Cy 1 , Ph 2 ; Mn2, Cy 5 , Ph 6 ; MnRe, Cy 7 . EPP: M2 = Re2, R = Cy 8 ; Mn2, Cy 10 ). Complexes 1 , 2 and 8 react subsequently under minor uptake of carbon monoxide and formation of the valence saturated complexes [ReRh(μ‐PR2)(CO)4M(DPPM bzw. EPP) (CO)6] (DPPM: R = Cy 3 , Ph 4 . EPP: R = Cy 9 ). Separate experiments ascertained that the regioselective ring opening at the M–M‐edge of the title compounds is limited to reactions with diphosphanes chelates with only one chain member and that the preparation of the unsaturated complexes demands relatively good donor ability of both P atoms. As examples for both types of compounds the molecular structures of 8 and 3 have been determined from single crystal X‐ray structure analysis. Additionally all new compounds are identified by means of ν(CO)IR, 1H‐ and 31P‐NMR data. This includes complexes with a modified chain member in 1 and 5 which, after deprotonation reaction to carbanionic intermediates, could be trapped with [PPh3Au]+ cations as rac‐[MRh(μ‐PR2)(CO)4M((Ph2P)2CHAuPPh3)(μ‐CO)2(CO)3] (M2 = Re 17 , Mn 18 ) and products rac‐[MRh(μ‐PR2)(CO)4M((Ph2P)2CHCH2R)(μ‐CO)2(CO)3] (M2 = Re, R = Ph 19 , n‐Bu 21 , Me 23 ; Mn, Ph 20 , n‐Bu 22 , Me 24 ) which result from Michael‐type addition reactions of 8 or 10 with strong nucleophiles LiR.  相似文献   

4.
Tetranuclear Cluster Complexes of the Type [MM′(AuR3)2(μ‐H)(μ‐PCy2)(μ4‐PCy)(CO)6] (M,M′ = Mn, Re; R = Ph, Cy, Et): Synthesis, Structure, and Topomerisation The dirhenium complex [Re2(μ‐H)(μ‐PCy2)(CO)7(ax‐H2PCy)] ( 1 ) reacts at room temperature in thf solution with each two equivalents of the base DBU and of ClAuPR3 (R = Ph, Cy, Et) in a photochemical reaction process to afford the tetranuclear clusters [Re2(AuPR3)2(μ‐H)(μ‐PCy2)(μ4‐PCy)(CO)6] (R = Ph ( 2 ), Cy ( 3 ), Et ( 4 )) in yields of 35–48%. The homologue [Mn2(μ‐H)(μ‐PCy2)(CO)7(ax‐H2PCy)] ( 5 ) leads under the same reaction conditions to the corresponding products [Mn2(AuPR3)2(μ‐H)(μ‐PCy2)(μ4‐PCy)(CO)6] (R = Ph ( 6 ), Et ( 8 )). Also [MnRe(μ‐H)(μ‐PCy2)(CO)7(ax/eq‐H2PCy)] ( 9 ) reacts under formation of [MnRe(AuPR3)2(μ‐H)(μ‐PCy2)(μ4‐PCy)(CO)6] (R = Ph ( 10 ), Et ( 11 )). All new cluster complexes were identified by means of 1H‐NMR, 31P‐NMR and ν(CO)‐IR spectroscopic measurements. 2 , 4 and 10 have also been characterized by single crystal X‐ray structure analyses with crystal parameters: 2 triclinic, space group P 1, a = 12.256(4) Å, b = 12.326(4) Å, c = 24.200(6) Å, α = 83.77(2)°, β = 78.43(2)°, γ = 68.76(2)°, Z = 2; 4 monoclinic, space group C2/c, a = 12.851(3) Å, b = 18.369(3) Å, c = 40.966(8) Å, β = 94.22(1)°, Z = 8; 10 triclinic, space group P 1, a = 12.083(1) Å, b = 12.185(2) Å, c = 24.017(6) Å, α = 83.49(29)°, β = 78.54(2)°, γ = 69.15(2)°, Z = 2. The trapezoid arrangement of the metal atoms in 2 and 4 show in the solid structure trans‐positioned an open and a closed Re…Au edge. In solution these edges are equivalent and, on the 31P NMR time scale, represent two fluxional Re–Au bonds in the course of a topomerization process. Corresponding dynamic properties were observed for the dimanganese compounds 6 and 8 but not for the related MnRe clusters 10 and 11 . 2 and 4 are the first examples of cluster compounds with a permanent Re–Au bond valence isomerization.  相似文献   

5.
Synthesis of Phosphido Chalcogenido Bridged Dirhenium Complexes of the Type Re2(μ‐PCy2)(μ‐ER)(CO)8 (E = S, Se, Te; R = org. Residue) The reaction of Re2(μ‐Br)(μ‐PCy2)(CO)8 with nucleophiles MER (M = Na, Li; E = S, Se, Te; R = org. residue) gives via substitution of the bromido bridge phosphido chalcogenido bridged dirhenium complexes of the general formula Re2(μ‐PCy2)(μ‐ER)(CO)8. The new compounds were characterized by IR, 1H and 13C NMR spectroscopic data and by elemental analyses. In addition the molecular structures for E = S, Se, Te and R = Ph as well as for E = S and R = H, n‐Bu, 2‐pyridyl have been established by single crystal X‐ray analysis. 13C NMR spectra of Re2(μ‐PCy2)(μ‐EPh)(CO)8 (E = S, Se, Te) prove that the sulfur and selenium compounds are at room temperature dynamic molecules due to inversion of the pyramidal chalcogenido bridge. The tellurium compound, however, is rigid on the time scale of 13C NMR spectroscopy. Eventually the reactivity of the SH function of the novel complex Re2(μ‐PCy2)(μ‐SH)(CO)8 was investigated by reaction with Re2(CO)8(MeCN)2. In toluene at 90 °C the novel spirocyclic complex Re2(μ‐PCy2)(CO)84‐S)Re2(μ‐H)(CO)8 was formed by SH oxidative addition.  相似文献   

6.
Synthesis of Mixed Chalcogenido‐Bridged Dirhenium Complexes of the Type Re2(μ‐ER)(μ‐E′R′)(CO)8 (E, E′ = S, Se, Te; R, R′ = org. Residue) Hydrido sulfido bridged complexes Re2(μ‐H)(μ‐SR)(CO)8 (R = Ph, naph, Cy) react with the base DBU to give the salts [DBUH][Re2(μ‐SR)(CO)8]. Upon addition of electrophiles R′E′Br (E′R = SPh, SePh, TePh) to the in situ prepared salts mixed chalcogenido bridged complexes Re2(μ‐SR)(μ‐E′R′)(CO)8 were formed. The structures of the new compounds Re2(μ‐SCy)(μ‐SePh)(CO)8 and Re2(μ‐Snaph)(μ‐TePh)(CO)8 were determined by single crystal X‐ray analyses. For the preparation of analogous selenido tellurido bridged complexes Re2(μ‐SePh)(μ‐TeR)(CO)8 the novel hydrido selenido bridged complex Re2(μ‐H)(μ‐SePh)(CO)8 was prepared from Re2(CO)8(NCMe)2 and PhSeH. Its structure was determined by single crystal X‐ray analysis. Subsequent deprotonation with DBU gave in situ [DBUH][Re2(μ‐SePh)(CO)8] which upon addition of RTeBr (R = Ph, Bun, But) formed the desired complexes Re2(μ‐SePh)(μ‐TeR)(CO)8. The reaction with ButTeBr also yielded the novel spirocyclic complex (μ4‐Te){Re2(μ‐SePh)(CO)8}2 in low amounts. It was identified by single crystal X‐ray analysis. Re2(μ‐SePh)(μ‐TeBut)(CO)8 is oxidised in chloroform in the presence of air to give the novel complex (μ‐Te–Te‐μ){Re2(μ‐SePh)(CO)8}2. All mixed chalcogenido bridged dirhenium complexes were proved to be dynamic in solution by 13C NMR spectroscopy. The dynamic behaviour is based on the fast and permanent inversion of the sulfido and selenido bridges. The tellurido bridges are rigid on the time scale of 13C NMR spectroscopy.  相似文献   

7.
Activation of Carbon Disulfide on Triruthenium Clusters: Synthesis and X‐Ray Crystal Structure Analysis of [Ru3(CO)4(μ‐PCy2)2(μ‐Ph2PCH2PPh2)(μ3‐S){μ3‐η2‐CSC(S)S}] [Ru3(CO)4(μ‐H)3(μ‐PCy2)3(μ‐dppm)] ( 2 ) (dppm = Ph2PCH2PPh2) reacts with CS2 at room temperature and yields the open 50 valence electron cluster [Ru3(CO)4(μ‐PCy2)2(μ‐dppm)(μ3‐S){μ3‐η2‐CSC(S)S}] ( 3 ) containing the unusual μ3‐η2‐C2S3 mercaptocarbyne ligand. Compound 3 was characterized by single crystal X‐ray structure analysis.  相似文献   

8.
The New Mixed Valent Chalcogenoindates MIn7X9 (M = Rb, Cs; X = S, Se): Structural Chemistry, X‐Ray and HRTEM Investigations Systematic X‐ray and HRTEM investigations on the ternary systems alkali metal (or thallium)–indium–chalcogen proved the existence of mixed valent solids with the simultaneous occurrence of indium species in different states of oxidation. Additionally to the earlier described solids MIn5S7 (M: Na, K, Tl: isotypic to InIn5S7 = In6S7 and TlIn5S7) and KIn5S6 (isotyp to TlIn5S6) in the actual work we present with MIn7X9 (M: Rb, Cs; X: S, Se) a new structure type which also contains indium in the states of oxidation +3 and +2. The formal state of oxidation In2+ corresponds to (In2)4+ ions. A reasonable ionic formulation of these structures is given by: MIn5S7 = M+ 3[In3+] [(In2)4+] 7[S2–] (M = Na, K, Tl), MIn5S6 = M+ [In3+] 2[(In2)4+] 6[S2–] (M = K, Tl), MIn7X9 = M+ 3[In3+] 2[(In2)4+] 9[S2–]. The three structure types show common two dimensional structure elements which contain ethane analogous In2X6 units and cis and trans edge sharing double octahedron chains. The main interest of this work is a crystalchemical discussion taking into account the new compounds MIn7X9 and the results of special HRTEM investigations on MIn7X9. The HRTEM investigations aim on the identification and subsequent preparation of new phases which initially might be visible as nano size crystals or inclusions in the HRTEM only.  相似文献   

9.
Synthesis and Molecular Structure of [{Cp′(μ‐η1 : η5‐C5H3Me)Mo(μ‐AlRH)}2] (Cp′ = C5H4Me, R = iBu, Et) [Cp′2MoH2] reacts with HAlR2 to give [{Cp′(μ‐η1 : η5‐C5H3Me)Mo(μ‐AlRH)}2] (Cp′ = C5H4Me, R = iBu ( 1 ), Et ( 2 )). Crystal structure determinations were carried out on [Cp′2MoH2] and 1 . 1 exhibits a direct Mo–Al bond (2.636(2) Å).  相似文献   

10.
The reaction between Cl2Te(NSO)2, Cl6Te2N2S and Cl2Te(N=S=N)2TeCl2 with MCl3 provided the compounds [(Cl2Te)2N+][MCl4] (M = Ga, Al, Fe). Treating Cl6Te2N2S with M′Cl3 yielded besides [(Cl2Te)2N+][M′Cl4] (M′ = Al, Fe) the sulfur containing compound [ClTeNSNS+][M′Cl4]. The structure for [ClTeNSNS+][FeCl4] was established by an X‐ray structure analysis. With Te(NSO)2 and CF3SCl, via Cl2Te(NSO)2, the known compound Te2NCl5 was formed. Tetrafluoroditelluradiazetidine was obtained from TeF4 and [(CH3)3Si]2NH which on treating with (CH3)3SiCl provided the corresponding chloroderivative. In addition metathetical reaction between Cl2TeNSNS and CF3C(O)OAg yielded [CF3C(O)O]2TeSNSN. Similarly (CH3)2Te(NSO)2–xClx (x = 0,1) and (CH3)2Te(NCO)2 were made from (CH3)2TeCl2 and AgNSO or AgNCO, respectively. Halogination of Cl2Te(N=S=N)2TeCl2 with Cl2 or Br2 yielded Cl6Te2N2S and Cl4Br2Te2N2S. The bromoderivate was also prepared from Cl2Te(NSO)2 and Br2. AgNSO was synthesized by treating CF3C(O)OAg with (CH3)3SiNSO. Two other synthons (CF3Se)2Te and (CF3S)2Se were obtained from CF3SeCl and Na2Te and from Hg(SCF3)2 plus SeCl4, respectively.  相似文献   

11.
Syntheses of Compounds with M–N Bonds (M = Li, Ga, In) The adducts [GaCl3(HNiPr2)] ( 1 ) and [InCl3{HN(CH2Ph)2}2] ( 2 ) can be obtained by the reactions of the corresponding metal(III) halides with the amines. The In amide In(NcHex2)3 ( 3 ) can be formed by treatment of InCl3 with three equivalents of LiNcHex2. Reaction with four equivalents of LiNcHex2 leads to the same product. However, the treatment of InCl3 with four equivalents of LiN(CH2Ph)2 gives the desired metalate [Li(THF)4][In{N(CH2Ph)2}4] ( 4 ). From the corresponding reaction of InCl3 with LiNiPr2 no In‐containing product could be identified. Instead, the aggregate of LiCl with three units of LiNiPr2, [Li4(NiPr2)3(THF)4Cl] ( 5 ), was isolated. 1 – 4 were characterized by NMR, IR and MS techniques as well as by X‐ray structure determinations. According to them, 1 possesses a tetrahedrally coordinated Ga atom, at which two units of 1 are connected by hydrogen bridges to centrosymmetrical dimers. The In atoms in 2 have a trigonal‐bipyramidal coordination sphere; the amine molecules occupy the apical positions. The central metal atom in 3 and the anion of 4 exhibit trigonal‐planar and distorted tetrahedral environments, respectively. The novel structural motif in 5 is the Cl ion, only partly surrounded by Li+ ions in a strongly distorted trigonal‐bipyramidal fashion. The dominating angle amounts to 165.2(2)°.  相似文献   

12.
New Noncentrosymmetric Selenogermanates. I. Crystal Structures and Chemical Bonding of AM 2GeSe4 ( A = Sr, Ba; M = Cu, Ag) Three new quaternary selenogermanates were synthesized by heating the elements at 983–1073 K. Their crystal structures were determined by single crystal X‐ray methods. The dark red semiconductors crystallize in noncentrosymmetric space groups. SrCu2GeSe4 (Ama2, a = 10.807(4) Å, b = 10.735(4) Å, c = 6.541(2) Å, Z = 4) forms a new structure type, whereas BaCu2GeSe4 (P31, a = 6.490(1) Å, c = 16.355(3) Å, Z = 3) and BaAg2GeSe4 (I222, a = 7.058(1) Å, b = 7.263(1) Å, c = 8.253(2) Å, Z = 2) crystallize in structures known from thiostannates. Main structural features are almost regular GeSe4‐, but distorted CuSe4‐ or AgSe4‐tetrahedra sharing corners or edges. Eight selenium atoms coordinate the alkaline earth atoms in the voids of these three dimensional tetrahedral networks. Chemical bonding and the electronic structure are elucidated by self‐consistent band structure calculations and the COHP method. The electron density and the electron localization function ELF of SrCu2GeSe4 reveal a significant stronger covalent character for the Ge–Se bonds compared with the Cu–Se bonds. For this reason the GeSe4 tetrahedra appear as quasi molecular entities, arranged spatially according to the motifs of closest packing. The metal atoms occupy the tetrahedral and octahedral voids of these “tetrahedra packing”. This concept allows to derive the structures of AM2GeSe4‐compounds from simple binary structure types as Li3Bi or Ni2In.  相似文献   

13.
Perfluoromethyl Element Ligands. XLII Binuclear Complexes of the Type Mn2(CO)8E(CF3)2E′R (E = P, As; E′ = S, Se, Te): Synthesis and Structure Complexes of the type Mn2(CO)8E(CF3)2E′R, in which the groups E(CF3)2 and E′R act as bridging ligands, are prepared either by direct reactions of Mn2(CO)10 with (F3C)2EE′R (E = P, As; E′ = S, Se, Te) or by substitution of the iodine bridge in the representatives Mn2(CO)8 E(CF3)2I (E = P, As) with mercury compounds Hg(E′R)2. As a rule the binuclear systems contain four‐membered heterocycles (Mn2EE′). However, the reactions of Mn2(CO)10 with (F3C)2PE′P(CF3)2 (E′ = S, Se) yield five‐membered rings [Mn2P(E′P)]. The compounds have been characterized by spectroscopic (NMR, IR, MS), analytic (C, H) and X‐ray diffraction investigations. The pyramidal Mn2E′R fragment shows dynamic behaviour in solution via inversion between two identical structures.  相似文献   

14.
Homoatomic Clusters E93– with E = Ge, Sn, and Pb: EPR Spectra, Magnetism and Electrochemistry The properties of the compounds [K‐([2.2.2]‐crypt)]3E9 (E = Ge ( 1 ), Sn ( 2 ), Pb ( 3 )), which contain isolated E9 units, have been examined by EPR measurements at room temperature and at 77 K, magnetic susceptibility measurements in the range from 2 K to 300 K and cyclovoltammetric experiments. The EPR signals of powder samples and of single crystals are analyzed using three g tensor components, indicating low symmetric E93– clusters. Magnetic susceptibility data of 2 and 3 follow the expression (χmol = C/(T – θp) + χ0, with θp ≈ 0 and C corresponding to the presence of about 50% paramagnetic E93– species (S = 1/2). In solution, 2 and 3 show irreversible oxidation processes. Current intensities and peak forms indicate that adsorption processes play an important role irrespective of the material of the working electrode (silver, platinum, glassy carbon).  相似文献   

15.
Perfluoromethyl Element Ligands. XLI. [1] Compounds of the Type (F3C)2EE′R with Pseudohalide Character (E = P, As; E′ = S, Se, Te) Perfluoromethyl phosphorus and -arsenic compounds of the type (F3C)2EE′R (E = P, As; E′ = S, Se, Te; R = organic group) are prepared either by dismutation (metathesis) of E2(CF3)4 with (RE′)2 or by reaction of the iodine compounds (F3C)2EI with mercury(II) organosulfanides Hg(SR)2 and characterized by spectroscopic (1H, 19F, 31P-NMR; IR; MS) as well as analytical investigations (C, H).  相似文献   

16.
Stabilization of M+ Ions (M = In, Tl) by Dibenzyldichlorogallate MCl reacts with (PhCH2)2GaCl to give M[(PhCH2)2GaCl2] [M = In ( 1 ), Tl ( 2 )]. 1 and 2 were characterized by NMR, IR and MS techniques. In addition, an X‐ray structure determination of 1 was performed. According to this, 1 consists of four‐membered In2Cl2 rings connected by weak In…Cl contacts (344 pm) along [010] to a coordination polymer. The In+ ion is coordinated by four In–Cl and two In‐aryl interactions.  相似文献   

17.
Synthesis, Structure, and Properties of [nacnac]MX3 Compounds (M = Ge, Sn; X = Cl, Br, I) Reactions of [nacnac]Li [(2,6‐iPr2C6H3)NC(Me)C(H)C(Me)N(2,6‐iPr2C6H3)]Li ( 1 ) with SnX4 (X = Cl, Br, I) and GeCl4 in Et2O resulted in metallacyclic compounds with different structural moieties. In the [nacnac]SnX3 compounds (X = Cl 2 , Br 3 , I 4 ) the tin atom is five coordinated and part of a six‐membered ring. The Sn–N‐bond length of 3 is 2.163(4) Å and 2.176(5) Å of 4 . The five coordinated germanium of the [nacnac]GeCl3 compound 5 shows in addition to the three chlorine atoms further bonds to a carbon and to a nitrogen atom. In contrast to the known compounds with the [nacnac] ligand the afore mentioned reaction creates a carbon–metal‐bond (1.971(3) Å) forming a four‐membered ring. The Ge–N bond length (2.419(2) Å) indicates the formation of a weakly coordinating bond.  相似文献   

18.
The Orientation of the Re2Cl82– Ions in (PPh4)2[Re2Cl8] · 2 L (L = Acetonitrile, Dichloromethane) (PPh4)2[Re2Cl8] · 2 MeCN was obtained in small yields from PPh4Cl and ReCl5 in the presence of Na2S4 or K2S5 in acetontrile. Its crystal structure was determined by X‐ray diffraction. The crystals are nearly isotypic with those of (PPh4)2[Re2Cl8] · 2 CH2Cl2. The PPh4+ ions, the solvent molecules, and the chlorine atoms occupy nearly identical positions in both triclinic structures. Nevertheless, 98% of the Re≡Re groups are differently oriented within the slightly elongated Cl8 cubes surrounding them. The space requirement of the elongated cubes seems to be more important for the orientation than electrostatic forces. The PPh4+ ions form (PPh4+)2 pairs around inversion centers.  相似文献   

19.
The Cluster Salts Bi14Si2MI12 (M = Rh, Ir): [Bi8Si2] and [MBi6I12] Building Groups in CsCl‐like Structure The reaction of bismuth and iridium with iodine in evacuated quartz ampoules at 1320 K yields black, air insensitive crystals of Bi14Si2IrI12. The silicon therein is abstracted from the ampoule material whereby the oxygen is gettered in BiOI. The synthesis of Bi14Si2RhI12 requires the addition of niobium, which gives NbOI2 with the oxygen originating from the SiO2. X‐ray diffraction on single crystals showed that the two isotypic compounds crystallize in the space groups P 4/m c c with a = 1018.3(1), c = 2020.1(4) pm for M = Ir, and a = 1019.0(1), c = 2018.7(4) pm for M = Rh. The crystal structures consist of two types of isolated clusters, which form a CsCl‐like packing. In the [MBi6I12] cuboctahedron the central transition metal atom is octahedrally surrounded by bismuth atoms, and the iodine atoms bridge the edges of the octahedron. The [Bi8Si2] polyhedron is a tetragonal antiprism of bismuth atoms of which square faces are capped by silicon atoms. Based on crystal chemistry and band structure calculations the compounds may be formulated as cluster salts [Bi8Si2]3+[MBi6I12]3–. Measurements of the electrical conductivity showed that Bi14Si2IrI12 is a semiconductor with a band gap of about 0.1 eV. A single unpaired electron out of 1903 electrons per formula causes paramagnetic behaviour that is superposed by strong diamagnetic contributions.  相似文献   

20.
Synthesis, Crystal Structures, and Vibrational Spectra of trans ‐[Pt(N3)4(ECN)2]2–, E = S, Se By oxidative addition to (n‐Bu4N)2[Pt(N3)4] with dirhodane in dichloromethane trans‐(n‐Bu4N)2[Pt(N3)4(SCN)2] and by ligand exchange of trans(n‐Bu4N)2[Pt(N3)4I2] with Pb(SeCN)2 trans‐(n‐Bu4N)2[Pt(N3)4(SeCN)2] are formed. X‐ray structure determinations on single crystals of trans‐(Ph4P)2[Pt(N3)4(SCN)2] (triclinic, space group P 1, a = 10.309(3), b = 11.228(2), c = 11.967(2) Å, α = 87.267(13), β = 75.809(16), γ = 65.312(17)°, Z = 1) and trans‐(Ph4P)2[Pt(N3)4(SeCN)2] (triclinic, space group P 1, a = 9.1620(10), b = 10.8520(10), c = 12.455(2) Å, α = 90.817(10), β = 102.172(10), γ = 92.994(9)°, Z = 1) reveal, that the compounds crystallize isotypically with octahedral centrosymmetric complex anions. The bond lengths are Pt–S = 2.337, Pt–Se = 2.490 and Pt–N = 2.083 (S), 2.053 Å (Se). The approximate linear Azidoligands with Nα–Nβ–Nγ‐angles = 172,1–175,0° are bonded with Pt–Nα–Nβ‐angles = 116,7–120,5°. In the vibrational spectra the platinum chalcogen stretching vibrations of trans‐(n‐Bu4N)2[Pt(N3)4(ECN)2] are observed at 296 (E = S) and in the range of 186–203 cm–1 (Se). The platinum azide stretching modes of the complex salts are in the range of 402–425 cm–1. Based on the molecular parameters of the X‐ray determinations the IR and Raman spectra are assigned by normal coordinate analysis. The valence force constants are fd(PtS) = 1.64, fd(PtSe) = 1.36, fd(PtNα) = 2.33 (S), 2.40 (Se) and fd(NαNβ, NβNγ) = 12.43 (S), 12.40 mdyn/Å (Se).  相似文献   

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