首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到20条相似文献,搜索用时 31 毫秒
1.
Contributions to the Chemistry of Transition Metal Alkyl Compounds. XL. About Lithium Alkenylmanganates(II) MnCl2 reacts with vinyl, 2,2-dimethylvinyl, allyl, and methallyl lithium giving rise to alkenyl manganates(II). In a pure state the compounds Li2[Mn(CH?CH2)4] · 1.5 diox, Li2[Mn(CH?C(CH3)2)4] · 1.5 diox, Li2[Mn(CH2? CH?CH2)4] · 2.5 diox and Li3[Mn(CH2? C(CH3)?CH2)5] · 2 diox were isolated. The compounds were characterized by elementary analysis, EPR and IR spectra, magnetic moments, and reactions with iodine.  相似文献   

2.
The Crystal Structures of (NH4)2[ReCl6], [ReCl2(CH3CN)4]2[ReCl6] · 2CH3CN and [ReCl4(18)(Crown-6)] Brown single crystals of (NH4)2[ReCl6] are formed by the reaction of NH4Cl with ReCl5 in a suspension of diethylether. [ReCl2(CH3CN)4]2[ReCl6] · 2CH3CN crystallizes as brown crystal plates from a solution of ReCl5 in acetonitrile. Lustrous green single crystals of [ReCl4(18-crown-6)] are obtained by the reaction of 18-crown-6 with ReCl5 in a dichloromethane suspension. All rhenium compounds are characterized by IR spectroscopy and by crystal structure determinations. (NH4)2[ReCl6]: Space group Fm3 m, Z = 4, 75 observed unique reflections, R = 0.01. Lattice constant at ?70°C: a = 989.0(1) pm. The compound crystallizes in the (NH4)2[PtCl6] type, the Re? Cl distance is 235.5(1) pm. [ReCl2(CH3CN)4]2[ReCl6] · 2CH3CN: Space group P1, Z = 1, 2459 observed unique reflections, R = 0.12. Lattice dimensions at ?60°C: a = 859.0(1), b = 974.2(7), c = 1287.3(7) pm, α = 102.69(5)°, b? = 105.24(7)°, γ = 102.25(8)°. The structure consists of two symmetry-independent [ReCl2(CH3CN)4]+ ions with trans chlorine atoms, [ReCl6]2? ions, and included acetonitrile molecules. In the cations the Re? Cl bond lengths are 233 pm in average, in the anion they are 235 pm in average. [ReCl4(18-crown-6)]: Space group P21/n, Z = 4, 3 633 observed unique reflections, R = 0.06. Lattice dimensions at ?70°C: a = 1040.2(4), b = 1794.7(5), c = 1090.0(5) pm, b? = 108.91(4)°. The compound forms a molecular structure, in which the rhenium atom is octahedrally coordinated by the four chlorine atoms and by two oxygen atoms of the crown ether molecule.  相似文献   

3.
Contributions to the Chemistry of Transition Metall Alkyl Compounds. XLIV. Formation of Tetraorganylzirconates(II) Zirconiumtetraorganyls are reduced by n-butyl lithium with formation of dilithium tetraorganyl zirconates(II). Li2[Zr(CH2C6H5)4] and Li2[Zr(CH3)4] were isolated in a definite form as extremely air sensitive compounds, from which a polymer structure can be assumed. The compounds were characterized by elementary analysis, hydrolyses products, reactions with iodine, magnetic moments, and the ESR spectra.  相似文献   

4.
Crystal Structure of Tetraphenylphosphonium Monothiocyanatohydro-closo-Decaborate, [P(C6H5)4]2[2-(SCN)B10H9] · CH3CN The X-ray structure determination of [P(C6H5)4]2[2-(SCN)B10H9] · CH3CN (monoclinic, space group P21/n, a = 10.6040(10), b = 13.8880(9), c = 33.888(3) Å, β = 94.095(8)°, Z = 4) reveals the S coordination of the SCN substituent with a B? S distance of 1.913(6) Å and a B? S? C angle of 105.3(3)°. The SCN group is nearly linear (178.2(7)°).  相似文献   

5.
Synthesis and Crystal Structure of the Zirkonocene Alkynyl Alkenyl Complex (Z)? Cp2Zr(C?CPh){C(Ph) = C(H)P(SiMe3)2} The reaction of ( Z )? Cp2Zr(C(Ph) = C(H)P(SiMe3)2}(Cl) with lithium phenylacetylide yields the zirconocene alkynyl alkenyl complex ( Z )? Cp2Zr(C?CPh){C(Ph) = C(H)P(SiMe3)2} ( 1 ). 1 was characterised spectroscopically (IR, NMR, MS) and by X-ray structure determination. The complex crystallises triclinic in the space group P1 with a = 10.561(10), b = 11.226(12), c = 14.274(13) Å, α = 70.87(7), β = 77.70(7), γ = 77.85(7)°. In 1 , there are two different Zr? C bond distances (Zr? C(=C) 2.415(6), Zr? C(?C) 2.309(6) Å). A Zr? P interaction (Zr? P 2.774(3) Å) is observed in the solid state.  相似文献   

6.
The title complex, [Zr(CH3)(C5H5)2][CH3B(C6F5)3], crystallizes as an ion pair linked through an unsymmetrical methyl bridge. The bridging Zr—Me distance [2.556 (2) Å] is significantly longer than the terminal Zr—Me distance [2.251 (3) Å], while the Zr—C—B angle approaches linearity [169.1 (2)°].  相似文献   

7.
Crystal Structure and Vibrational Spectrum of (H2NPPh3)2[SnCl6]·2CH3CN Single crystals of (H2NPPh3)2[SnCl6]·2CH3CN ( 1 ) were obtained by oxidative addition of tin(II) chloride with N‐chloro‐triphenylphosphanimine in acetonitrile in the presence of water. 1 is characterized by IR and Raman spectroscopy as well as by a single crystal structure determination: Space group , Z = 2, lattice dimensions at 193 K: a = 1029.6(1), b = 1441.0(2), c = 1446.1(2) pm, α = 90.91(1)°, β = 92.21(1)°, γ = 92.98(1)°, R1 = 0.0332. 1 forms an ionic structure with two different site positions of the [SnCl6]2? ions. One of them is surrounded by four N‐hydrogen atoms of four (H2NPPh3)+ ions, four CH3CN molecules form N–H···N≡C–CH3 contacts with the other four N‐hydrogen atoms of the cations. Thus, 1 can be written as [(H2NPPh3)4(CH3CN)4(SnCl6)]2+[SnCl6]2?.  相似文献   

8.
Polysulfonyl Amines. XL. Preparation of Silver(I) Disulfonylamide Acetonitrile Complexes. Characterization of Tetraacetonitrilesilver(I) bis(dimesylamido)argentate(I) and (1,1,3,3-Tetraoxo-1,3,2-benzodithiazolido)acetonitrilesilver(I) by X-Ray Diffractometry and Thermal Analysis The following silver(I) disulfonylamides were prepared for the first time or by improved procedures: AgN(SO2CH3)2 ( 2a ); AgN(SO2C6H4-4-X)2 with X = F ( 2b ), Cl ( 2c ), Br ( 2d ), CH3 ( 2e ); silver(I) 1,2-benzenedisulfonimide AgN(SO2)2C6H4 ( 2f ). With acetonitrile, the salts 2a to 2e form (1/2) complexes AgN(SO2R)· 2 CH3CN ( 4a to 4e ), whereas 2f gives the (1/1) complex AgN(SO2)2C6H · CH3CN ( 4f ). The crystallographic data (at - 95°C) for the title compounds 4a and 4f are: 4a , space group C2/c, a = 1 967.6(4), b = 562.2(1), c = 2 353.0(5) pm, β = 102.21(2)°, V = 2.5440 nm3, Z = 4, Dx = 1.891 Mg m?3; 4f , space group P21/m, a = 741.5(3), b = 980.4(4), c = 756.6(3) pm, β = 99.28(2)°, V = 0.5428 nm3, Z = 2, Dx = 2.246 Mg m?3. 4a forms an ionic crystal [Ag(NCCH3)4][Ag{N(SO2CH3)2}2]? with a tetrahedrally coordinated silver atom (lying on a twofold axis) in the cation (225.3/225.7 pm for the two independent Ag? N distances, N? Ag? N 106.2—114.5°) and a linear-dicoordinated silver atom in the centrosymmetric anion (Ag? N 213.9 pm, two intraionic secondary Ag…O contacts 303.4 pm). 4f consists of uncharged molecules [C6H4(SO2)2N1AgN2CCH3] with crystallographic mirror symmetry (Ag? N1 218.8, Ag? N2 216.1 pm, N1? Ag? N2 174.3°), associated into strands by intermolecular secondary silver-oxygen contacts (Ag…O 273.8 pm, O…Ag…O 175.6, N? Ag…O 91.9/88.2°). The thermochemical behaviour of 4f was investigated using thermogravimetry, differential scanning calorimetry (DSC), time- and temperature-resolved X-ray diffractometry (TXRD), and solution calorimetry. The desolvation process occurs in the temperature range from 60 to 200°C and appears to be complex, although no crystalline intermediate could be detected. The desolvation enthalpy at 298 K was found to be + 26.8(4) kJ mol?1. 4a is desolvated in two steps at - 15 to 60°C and 60 to 95°C (DSC), suggesting the formation of AgN(SO2CH3) · CH3CN as an intermediate.  相似文献   

9.
Contributions to the Chemistry of Organo-Transition Metal Compounds. 47. Reactions of Hexachlorocerates(IV) with Organolithium Compounds Pyridinium hexachlorocerate(IV) reacts with lithium organyls RLi RLi (R = 1-Nor, (CH3)2NCH2CH2CH2, n-C4H9) in the molar ratio 1:2 with formation of Li2[CeCl6] · 2 NC5H5. A further mol RLi effects a reduction to Li3[CeCl6] · 2 NC5H5. With an excess of RLi amidocerium(III) complexes of the typ Li4 are formed. Li2[CeCl6] is formed also at reactions of quartery ammonium salts, e. g. [C6H5CH2N(C2H5)3]2[CeCl6], with RLi (R = 1-Nor, Me22NCH2CH2CH2) followed by an reduction to Li3[CeCl6]. An excess of the lithium organyl effects the formation Li4[RCeCl6] complexes. The yielded compounds were characterized by elementary analysis, the hydrolysis and deuterolysis products, magnetic moments, and IR-spectra.  相似文献   

10.
The optically active quaternary ammonium salt (S)-(?)-α-[(C6H5)CH(CH3)N(CH3)3I] reacts with AlR3 to afford optically active organoaluminum based inclusion compounds, liquid clathrates, of the formula (S)-(?)-α-[(C6H5)CH(CH3)N(CH3)3][Al2R6I] (R=CH3, C2H5). Specific rotation ([α] 25 D ) for the Al(CH3)3 compound was determined to be ?13.19° while that for the Al(C2H5)3 analog was determined to be ?14.30°. There are 13.8 toluene molecules per anionic moiety for the trimethylaluminum based liquid clathrate while there are 15.0 toluene molecules per anion for the corresponding triethylaluminum inclusion compound.  相似文献   

11.
Contributions to the Chemistry of Transition Metal Alkyl Compounds. XXXVI. About the Existence of 3(N, N-Dimethylamino)propyl Compounds of 3d-Metals and Zirconium 3(N, N-dimethylamino)propyl lithium reacts with 3d-metal halides in a different manner. In crystalline state the compounds RTiCl3, R3Cr, R4Zr, and the complexes LiVR3Cl · 0.7 O(C2H5)2 and Li2CoR4 (R = (CH3)2NCH2CH2CH2) were isolated. The formation of the unstable R4Ti and R2Ni derivatives could be proved. Iron and nickel halides are reduced to the metals by dimethylaminopropyl lithium, even at a temperature of ?60°C.  相似文献   

12.
LiTiCl3 is obtained as one example within an ample solid solution, Li24–2nTinCl24 (?4?n?10), by synpropotionation of TiCl3 and Ti in the presence of LiCl (2:1:3 molar ratio) in sealed tantalum tubes at 750°C. It crystallizes with the inverse spinel-type structure according to (Li0.67)[4](Li0.67Ti1.33)[4]Cl4 with, at 25°C, a = 1048.62(4) pm, space group Fd3m. Thermal expansion is linear with α = 4.85 × 10?5K?1 up to about 300°C and thereafter, when the migration of Li+ from tetrahedral to octahedral interstices becomes increasingly important, it exhibits a relative decrease resulting, finally, in the phase transition to a NaCl-type structure that is observed for the first time at about 575°C.  相似文献   

13.
Zr(OPri)4·PriOH reacts with N-phenylsalicylideneimine in anhydrous benzene in 1 : 2 molar ratio to afford [Zr{O(C6H4)CH=NPh}2{OPri}2] (1). Further reactions of 1 with various glycols yield heteroleptic complexes of the type [Zr{O(C6H4)CH=NPh}2{O–G–O}] [where–G–= (CH2)2 (2), (CH2CHCH3) (3), (CH3CHCHCH3) (4), (CH2CHC2H5) (5), (CH2)3 (6), (CH2CH2CHCH3) (7), and (CH2)6 (8)]. All new derivatives have been characterized by elemental analyses, FTIR and NMR (1H and 13C{1H}) studies. FAB mass spectra of 1 and 7 revealed the monomeric nature of these complexes. Complete hydrolyses and low temperature transformations of 1 and 7 using Sol-Gel technique formed tetragonal phase of ZrO2 at 700°C, whereas transformation of tetragonal to monoclinic phase occurred at 900°C. SEM observations of these samples indicate formation of agglomerates of nanocrystalline zirconia (Scherer analysis).  相似文献   

14.
Reactions of Uranium Pentabromide. Crystal Structures of PPh4[UBr6], PPh4[UBr6] · 2CCl4, (PPh4)2[UBr6] · 4CH3CN, and (PPh4)2[UO2Br4] · 2CH2Cl2 PPh4[UBr6] and PPh4[UBr6] · 2CCl4 were obtained from UBr5 · CH3CN and tetraphenylphosphonium bromide in dichloromethane, the latter being precipitated by CCl4. Their crystal structures were determined by X-ray diffraction. PPh4[UBr6]: 2101 observed reflexions, R = 0.090, space group C2/c, Z = 4, a = 2315.5, b = 695.0, c = 1805.2 pm, β = 96.38°. PPh4[UBr6] · 2CCl4: 2973 reflexions, R = 0.074, space group P21/c, Z = 4, a = 1111.5, b = 2114.2, c = 1718.7 pm, β = 95.42°. Hydrogen sulfide reduces uranium pentabromide to uranium tetrabromide. Upon evaporation, bromide is evolved from solutions of UBr5 with 1 or more then 3 mol equivalents of acetonitrile in dichlormethane yielding UBr4 · CH3CN and UBr4 · 3CH3CN, respectively. These react with PPh4Br in acetonitrile affording (PPh4)2[UBr6] · 4CH3CN, the crystal structure of which was determined: 2663 reflexions, R = 0.050, space group P21/c, Z = 2, a = 981.8, b = 2010.1, c = 1549.3 pm, β = 98.79°. By reduction of uranium pentabromide with tetraethylammonium hydrogen sulfide in dichloromethane (NEt4)2[U2Br10] was obtained; (PPh4)2[U2Br10] formed from UBr4 and PPh4Br in CH2Cl2. Both compounds are extremely sensitive towards moisture and oxygen. The crystal structure of the oxydation product of the latter compound, (PPh4)2[U02Br4]· 2 CH2Cl2, was determined: 2163 reflexions, R = 0.083, space group C2/c, Z = 4, a = 2006.3, b = 1320.6, c = 2042,5 pm, β = 98.78°. Mean values for the UBr bond lengths in the octahedral anions are 266.2 pm for UBr6-, 276.7 pm for UBr62? and 282.5 pm for UO2Br42?  相似文献   

15.
Crystal and Molecular Structure of Tetramethyl(dimethylthiophosphinato)stiborane (CH3)4SbOP (S) (CH3)2 (CH3)4SbOP(S)(CH3)2 crystallizes in the triclinic space-group P1 with a = 7.125, b = 9.297, c = 18.861 Å, α = 77.44°, ß = 83.86°, γ = 79.91° and four formula units per cell. Stibonium is distorted trigonal-bipyramidal and phosphorous distorted tetrahedral surrounded. The mean values of bondlengths are: Sb? Ceq = 2.108, Sb? Cax = 2.147, Sb? O = 2.641, P? C = 1.819, P? O = 1.514, and P? S = 1.987 Å.  相似文献   

16.
Crystal and Molecular Structure of fac-Trichloro-tris(dimethyl sulfoxide)bismuth(III) BiCl3(DMSO)3 Crystals of the known, although structurally not characterized title compound were fortuitously obtained from a reaction mixture containing (CH3)3SiN(SO2CH3)2, BiCl3, DMSO, CH2Cl2 and CH3NO2. Crystallographic data (at ?130°C): triclinic, space group P1 1, a = 816.1(5), b = 885.1(6), c = 1 360.6(8) pm, α = 77.58(3), β = 77.39(3), γ = 64.42(3)°, U = 0.8569 nm3, Z = 2. The DMSO ligands are bound through oxygen to the Bi atom. Important bond distances and angles in the resulting fac-octahedral complex are as follows: Bi? Cl 258.9, 261.0, 263.0, Bi? O 242.6, 245.7, 246.1 pm; Cl? Bi? O (trans) 170.3, 170.6, 176.9, Cl? Bi? Cl 94.6, 94.7, 96.0, O? Bi? O 81.7, 85.4, 87.9, Cl? Bi? O (cis) in the range 87.2–92.6, Bi? O? S 123.4, 126.1, 129.6°.  相似文献   

17.
The reaction of (η5-C5H5)W(CO)2(NO), 6W, with P(CH3)3 proceeds rapidly at 25°C to give (η5-C5H5)W(CO)(NO)[P(CH3)3], 7W. The rate of formation of 7W was found to be 4.48 × 10?2M?1 [6W] [P(CH3)3] at 25.0°c in THF. In neat P(CH3)3 at ?23°C, 6W is converted to (η1-C5H5)W(CO)2(NO)[P(CH3)3]2, 8W. In dilute solution, 8W decomposes to initially give a 2:1 mixture of 6W and 7W. The mixture is then converted to 7W. The reaction of (η5-C5H5)Mo(CO)(NO), 6Mo, with P(CH3)3 is 6.1 times faster than that of the tungsten analog.  相似文献   

18.
Das P(SiMe2)3P     
P(SiMe2)3P Li3P (produced from the elements) forms with Me2SiCl2 at 20°C in toluene the bicyclic compound P(SiMe2)3P 4 beside small amounts of ClMe2Si? P(SiMe2)2P? SiMe2Cl and traces of P4(SiMe2)6 7. 4 can be transformed into 7 by thermal treatment. With the formation of 4 the existence of a bicyclic silylphosphane is confirmed which has already been mentioned in connection with P(SiEt2)3P [1], but could not be proven until now.  相似文献   

19.
Synthesis and Structure of the Platinum(0) Compounds [(dipb)Pt]2(COD) and (dipb)3Pt2 and of the Cluster Hg6[Pt(dipb)]4 (dipb = (i-Pr)2P(CH2)4P(i-Pr)2) The reduction of (dipb)PtCl2 with Na/Hg yields (dipb)Pt as an intermediate which reacts with the amalgam to form the cluster Hg6[Pt(dipb)]4 ( 3 ) or decomposes to (dipb)3Pt2 ( 2 ) and Pt. In the presence of COD [(dipb)Pt]2(COD) ( 1 ) is obtained. 1 crystallizes monoclinicly in the space group P21/c with a = 1596.1(4), b = 996.5(2), c = 1550.4(3) pm, β = 113.65(2)°, Z = 2. In the dinuclear complex two (dipb)Pt units are bridged by a 1,2-η2-5,6-η2 bonded COD ligand. Whereby the C = C double bonds are lengthened to 145 pm. 2 forms triclinic crystals with the space group P1 and a = 1002.0(2), b = 1635.9(3), c = 868.2(2) pm, α = 94.70(2)°, β = 94.45(2)°, σ = 87.95(1)°, Z = 1. In 2 two (dipb)Pt moieties are connected by a μ-dipb ligand in a centrosymmetrical arrangement. 3 is monoclinic with the space group C2/c and a = 1273.8(3), b = 4869.2(6), c = 1660.2(3) pm, β = 95.16(2)°, Z = 4. The clusters Hg6[Pt(dipb)]4 have the symmetry C2. Central unit is a Hg6 octahedron of which four faces are occupied by Pt(dipb) groups. The bonding in the cluster is discussed on the basis of eight Pt? Hg two center bonds of 267.6 pm and two Pt? Hg? Pt three center bonds with Pt? Hg = 288.0 pm.  相似文献   

20.
Zirconium Diazabutadiene Complexes of the Type Zr(DAD)3 1,4-Diazabutadienes (DAD), RN?CPh? CPh?NR 1 (R = C6H5 a , CH3C6H4 b , CH3OC6H4 c ), react with ZrCl4 · 2 THF with formation of complexes of the type ZrCl4 · DAD 2 . At interaction with lithium diazadienides Li2DAD deep coloured complexes of the composition Zr(DAD)3 3 are formed. The new compounds were characterized by elemental analysis, i.r., 1H- and 13C-n.m.r. spectra.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号