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1.
A racemic solution of (I) crystallizes as a conglomerate from which a crystal we selected was found to be (+)546-trans-[Co(3,2,3-tet)(NO2)2]Cl·3H2O (I), CoClO7N6C8H28. It crystallizes in the enantiomorphic space groupP2l2l2l, with lattice constantsa=18.501(15) å,b=14.433(2) å, andc=6.441(3) å;V=1720.07 å3 andd(calc. M.W.=414.73,Z=4)=1.601 g cm?3. A total of 2305 data were collected over the range of 4?≤2θ ≤55?; of these, 1724 (independent and withI > 3σ(I)) were used in the structural analysis. Data were corrected for absorption (Μ=11.920 cm?1), and the relative transmission coefficients ranged from 0.8258 to 0.9565. Refinement was carried out for both lattice enantiomorphs, and at this stage theR(F) andR w (F) residuals were, respectively, 0.0381 and 0.0479 for (+ + +) and 0.0448 and 0.0532 for (? ? ?). Thus, the former was selected as correct for our specimen, and the final cycle of refinement with the (+ + +) model converged toR(F) andR w (F) of 0.0315 and 0.0365. A racemic solution of (II) crystallizes as a conglomerate from which a crystal we selected was found to be (?)589-trans-[Co(3,2,3-tet)Cl2]NO3 (II), CoCl2O3N5C8H22. It crystallizes in the enantiomorphic space groujp,P2l with lattice constantsa=6.395(2) å,b=8.886(2) å,c=13.185(2) å, andΒ=99.24(2)?;V=739.59 å3 andd(calc. M.W.=366.14,Z=2)=1.646 g cm ?3. A total of 2912 data were collected over the range of 4?<2θ<64?; of these, 2147 (independent and withI≥3σ(I)) were used in the structural analysis. Data were corrected for absorption (Μ =15.424 cm?1), and the relative transmission coefficients ranged from 0.9632 to 0.9985. Refinement was carried out for both lattice enantiomorphs, and the finalR(F) andR w (F) residuals were, respectively, 0.0326 and 0.0328 for (+ + +) and 0.0347 and 0.0348 for (? ? ?). Thus, the (+ + +) was selected as correct for our specimen. A racemic solution of (III) crystallizes as a conglomerate from which a crystal we selected was found to be (+)589-trans-[Co(3,2,3-tet)(NO2)2]NO3 (III), CoO7N7C8H22. It crystallizes in the enantiomorphic space group,P2l with lattice constantsa=6.295(1) å, b=15.108(3) å,c=8.029(1) å, andΒ=100.28(2)?;V=751.35 å3 andd(calc. M.W.=387.24,Z=2)=1.712 g cm?3. A total of 2393 data were collected over the range of 4?≤2θ≤60?; of these, 1869 (independent and withI≥3σ(I)) were used in the structural analysis. Data were corrected for absorption (Μ=11.859 cm?1), and the relative transmission coefficients ranged from 0.8814 to 0.9976. Refinement was carried out for both lattice enantiomorphs and the finalR(F) andR w (F) residuals were, respectively, 0.0463 and 0.0482 for (+ + +) and 0.0441 and 0.0442 for (? ? ?). Thus, the latter was selected as correct for our specimen, and the final cycle of refinement with the (? ? ?) model converged toR(F) andR w (F) of 0.0436 and 0.0421. For all three compounds, the six-membered rings are chairs; the secondary nitrogens are chiral centers, and the five-membered rings are ordered and conformationally dissymmetric, as expected. Coincidentally, in (I), (II), and (III) the central rings are right-handed helices withδ(+50.0?),δ(+53.3?), andδ(+48.3?), respectively. Thus, the secondary nitrogens of all three cations are (R), rendering the cations chiral. The incidence of conglomerate crystallization intrans coordination compounds is rare, and those known are asymmetrically substituted (see Ref. 4 for the four known cases). Thus, the incidence of such crystallization mode in a new series of [trans- Co(amine ligands)X2]+ cations bearing symmetrical pairs oftrans ligands was an unexpected and welcomed event. In all three cases, the counteranions are bonded to the hydrogens of the terminal -NH2 moieties, thus forming an overall entity which resembles a macrocycle. In fact, parallels between the crystallization behavior of our compounds and that of macrocycles bearing related fragments is discussed. Finally, in the three compounds, homochiral cations are linked into infinite strings by hydrogen bonds between the axial ligands and amino hydrogens on adjacent cations of the string. In turn, strings are stitched together by the counteranions which form bonds with amino hydrogens on cations of adjacent strings.  相似文献   

2.
A room temperature water solution of (I) crystallizes as a racemate, space groupP2 1/n with lattice constantsa=7.737(6),b=10.694(5),c=15.097(6) Å, and=102.83(5)°;V=1218.05 Å3 andd (calc; M.W.=337.24, Z=4) = 1.642 g cm–3. A total of 2381 data were collected over the range 4° 2 < 50°; of these, 1452 (independent and withI 3(I)) were used in the structural analysis. Data were corrected for absorption ( = 15.76 cm–1), and the relative transmission coefficients ranged from 0.8976 to 0.9984. Refinement led to the finalR(F) andR w(F) residuals of 0.0858 and 0.1116. A room temperature water solution of (II) crystallizes as a racemate in space group P21/c with lattice constantsa=6.638(3),b=11.425(8),c=15.147(16) Å, and=93.27(6)°; F=1146.8 Å andd (calc; M.W.=323.2,Z=4) = 1.872 g cm–3. A total of 2200 data were collected over the range 4° 2 < 50°; of these, 1918 (independent and withI 3(I)) were used in the structural analysis. Data were corrected for absorption (=16.94 cm–1), and the relative transmission coefficients ranged from 0.9049 to 0.9967. Refinement led to the finalR(F) andR w(F) residuals of 0.0231 and 0.0279. The chirality symbol for the particular enantiomer of (I) refined here is (), while for (II) the chirality symbol is (), which means that in the latter compound one of the en rings is in a higher energy conformation. We attribute this result to competitive intramolecular hydrogen-bonded interactions between the — NH2 hydrogens of the en ligands and the oxygens of the -NO2 and -SO3 ligands, strengths which are enhanced by coercing a change in sign of the torsional angle of one en ringa motion which permits both oxo ligands to form stronger hydrogen bonds while retaining proper O O contacts. This phenomenon is not observed in (I) since the azide ligand does not compete with -SO3 for such hydrogen-bonded interactions, and nonbonded pair repulsions can be minimized without affecting the ability of — SO3 oxygens to form strong intramolecular hydrogen bonds.  相似文献   

3.
1 INTRODUCTION The mild solvothermal synthesis with the presence of a structure-directing agent is proved to be a versa- tile route for the preparation of chalcogenidometa- lates of the heavier group (14 and 15) elements[1~3]. Templated by the transition metal complex cations, a large number of chalcogenidoantimonates containing transition metal complex ions have been synthesized by solvothermal method, such as Mn2(en)2Sb2S5[4], [Co(en)3]CoSb4S8[5], [M(en)3]Sb2S4 (M = Co, Ni)[6], [N…  相似文献   

4.
Compounds that form in the CoSiF6· 6H2O–NioxH2–A–water–alcohol system, where A is thiourea (Thio) or triphenylphosphine (PPh3) and NioxH2is 1,2-cyclohexanedione dioxime, were synthesized and characterized by X-ray diffraction analysis. Crystal structures of the [Co(NioxH)2(PPh3)2]SiF5and [Co(NioxH)2(Thio)2]2SiF6· 3H2O complexes were established. In octahedral Co(III) complexes, two radicals of 1,2-cyclohexanedione dioxime are bound by a hydrogen bond and are located in the equatorial plane. The intramolecular (– and H bonds) and intermolecular (C–H···F and H bonds) interactions in the crystal are discussed.  相似文献   

5.
The sorption and structural parameters and thermal stability of montmorillonite pillared by Cr(III) polyhydroxocomplexes and heteronuclear Cr(III)–Cu(II) polyhydroxocomplexes were investigated. It was shown that the introduction of intercalating Cr(III) and Cr(III)–Cu(II) agents into the montmorillonite increased the value of the first basal reflection (d 001) up to 1.85 nm in the first case and up to 1.98 nm, in the second. The dependence of the values of d 001and specific surface area on the OH/Cr3+ratio was found, which is retained during the calcination of the samples up to 500–800°C. The sorption ability of the prepared samples with respect to acetone, ethanol, benzene, toluene, and water was investigated.  相似文献   

6.
The viscosity of dilute aqueous solutions of K3[AI(ox)3]·3H2O, K3[Fe(ox)3]·3H2O, K3[Co(ox)3]·3H2O, and K3[Cr(ox)3]·3H2O complexes, as well as K2(ox)·H2O, were measured between 15 and 35°C. Those of CoCl2, 6H2O, FeCl3, A12(SO4)3·18H2O, and CrCl3·6H2O were measured at 25°C. These data were analyzed by the Jones–Dole equation. The ionic B coefficients of the above complex anions were discussed in terms of ion–solvent interactions and the overall change in B associated with complex formation.  相似文献   

7.
The reaction of Cr(CO)3(NH3)3 with diphenylacetylene affords as a main product the complex with Cr(CO)3 moiety bound to a phenyl ring of diphenylacetylene; Cr(CO)36-PhC2Ph) (I). Complex I readily reacts with Co2(CO)8 yielding the mixed metal complex Cr(CO)362-PhC2Ph)Co2(CO)6 (II). The reaction proceeds with retention of the Cr(CO)36-arene) structural unit, the Co2(CO)6 fragment being bound to the triple bond of diphenylacetylene in μ22-mode. The structure of II was determined by single crystal X-ray analysis. The complex crystallizes in space group P21/c with unit cell parameters a 8.666(3) Å, b 18.046(3) Å, c 15.155(6) Å. β 97.57(3)°, V 2349(2) Å3, Z = 4, Dx = 1.70 g/cm3. The structure was solved by direct methods and refined by full-matrix least-squares technique to R and Rw values of 0.032 and 0.034, respectively, for 3655 observed reflections. The data obtained show that two structural units in II, Cr(CO)36-Ph-) and Co2(CO)622-CC), are distorted due to steric repulsion between these metal carbonyl moieties. The Cr(CO)3 fragment is shifted from the centre of the phenyl ring and slightly tilted with respect to the phenyl ring plane. The Co2C2 tetrahedron in the Co2(CO)622-CC) moiety is distorted in such a way that two of the four CoiCj bonds are elongated.  相似文献   

8.
The title compound [Co3(CO)9(μ3-C)C(O)OCH2]2 was synthesized by the reaction of [Cl3CC(O)OCH2]2 with Co2(CO)8 at 40~50 ℃. Crystal data: C24H4O22Co6, Mr=997.88, monoclinic, space group P21/n(#14), a=9.330(2), b=15.197(4), c=11.783(4), β=91.16(2)°, V=1670.4(7) 3, Z=2, Dc=1.984 g/cm3, μ(MoKα)=30.01 cm-1, F(000)=972.00, T=293K, final R=0.045, Rw=0.051 for 1936 observed reflections with I>2σ(I). The structure contains two centrosymmetric dimeric molecules in a unit cell, each of which has two tetrahedral skeletons (CCo3) connected through a C(O)OCH3CH2OC(O) bridge.  相似文献   

9.
《Polyhedron》1999,18(26):3553-3558
[CrX3(thf)3] (X=Cl or Br) reacts with L (L=L1–L3 or Ph2[14]aneP2S2) (L1=Ph2P(CH2)2S(CH2)2S(CH2)2PPh2, L2=Ph2P(CH2)2S(CH2)3S(CH2)2PPh2, L3=Ph2P(CH2)2S(o-C6H4)S(CH2)2PPh2, Ph2[14]aneP2S2=4,8-diphenyl-1,11-dithia-4,8-diphosphacyclotetradecane) and TlPF6 in MeNO2 solution to yield the distorted octahedral complexes [CrX2(L)]PF6 as green coloured solids in high yield. UV/visible spectroscopy suggests that these are cis-dihalo species and they have also been characterised by IR spectroscopy, electrospray mass spectrometry and microanalyses. The Co(III) analogues [CoX2(L)]+ are readily prepared in a two-stage reaction, involving treatment of CoX2·6H2O with L (L=L1–L3) and NH4PF6 in EtOH solution to give a green/brown solid, followed by halogen oxidation of this product in CH2Cl2 solution using X2/CCl4, to give the final products as brown coloured solids. A mixture of PF6 and [CoX4]2− anions are present in the final Co(III) compounds in varying ratios. Crystal structures of [CoCl2(L2)]2[CoCl4]·4H2O and [CoCl2(L3)]PF6·CH2Cl2 confirm tetradentate P2S2 coordination of L in each case, with mutually cis halogens completing the distorted octahedral geometry. In both cases the complex cation adopts the cis-α form in the solid state and this is also consistent with the solution 31P{1H} NMR spectroscopic data. 59Co NMR spectroscopy reveals a very broad single resonance at ≈3200 ppm for these species.  相似文献   

10.
Crystal structures of [Co(MH)2(Thio)2][BF4] · H2O (I) and [Co(DH)2(NH3)2][BF4] (II), where MH is H3C–C(NOH)–C(NO)–H and DH is H3C–C(NOH)–C(NO)–CH3, were determined by X-ray diffraction. The crystals are monoclinic, space group C2/c, unit cell parameters (for I and II, respectively): a = 22.018(2) Å, b = 7.943(1) Å, c = 11.681(1) Å, = 92.68(1)° and a = 21.436(2) Å, b = 6.400(2) Å, c = 12.389(2) Å, = 113.13(1)°. In both cases, the Co(III) coordination polyhedron is a centrosymmetrical trans-octahedron, N4S2 for I and N6 for II. In the crystals of I and II, the complex cations and the outer-sphere [BF4] anions (and the crystal water molecules in I) form elaborate hydrogen bonding system.  相似文献   

11.
《Polyhedron》2001,20(15-16):2033-2036
The complex [(HL)Cu(SCN)Cr(NCS)3(NH3)2]·DMF [H2L=3,3′-trimethylenedinitrilobis(2-butanoneoxime), DMF=N,N′-dimethylformamide] has been synthesized and the structure determined by single-crystal X-ray diffraction. The structure consists of a dinuclear thiocyanato-bridged Cr(III)Cu(II) unit and a DMF molecule as crystal solvate. The chromium ion is six-coordinated with two NH3 molecules in axial positions and four nitrogen atoms, from four NCS, in equatorial positions. One of the NCS bridges the Cr and Cu ions, the S atom of which occupies the apex of the square-pyramidal coordination at Cu with the tetradentate HL ligand in the basal site. Cryomagnetic measurement revealed a weak antiferromagnetic coupling between the heterometal ions with J=−0.63 cm−1 based on the spin Hamiltonian H=−2JS1S2.  相似文献   

12.
Hexaaquachromium(III) trihydrogen isopolyvanadate [Cr(H2O)6]H3[V10O28] · 2H2O (I) was obtained and examined by mass spectrometry, X-ray powder diffraction, thermogravimetry, and IR and NMR spectroscopy. The crystals are monoclinic, space group $P\bar 1$ a = 7.862(3), b = 8.427(5), c = 5.000(2) Å, β = 96.46(4)°, V = 867.0(3) Å3, ρcalcd = 5.83 g/cm3, Z = 1.  相似文献   

13.
《Polyhedron》1999,18(21):2795-2801
Cs2[Cr2(nta)2(μ-OH)2]·4H2O (nta=nitrilotriacetate) crystallises in two different space groups due to a slight variation in pH of the reaction mixtures. The structures of Cs2[Cr2(nta)2(μ-OH)2]·4H2O have been determined from three-dimensional X-ray diffraction data. The complex crystallises in the tetragonal, I41/a (I) and monoclinic, P21/c (II), space groups. The two hydroxo groups bridge the two Cr centres with OH–Cr–OH angles of 81.5(3)° (I) and 82.08(10)° (II), respectively. The tetradentate nta ligand completes the octahedral geometry around the Cr centre. The Cr–OH bonds are 1.942(7) and 1.961(6) Å for (I) and 1.987(2) and 1.991(1) Å for (II). The Cr–N and Cr–O(av) are 2.048(9) and 1.967(8) Å for (I) and 2.061(3) and 1.975(2) Å for (II), respectively.  相似文献   

14.
Binary complex salts, [Co(En)3][Fe(CN)6] · 2H2O and [Co(En)3]4[Fe(CN)6]3 · 15H2O, are synthesized. The properties of the salts and their thermolysis in air, dihydrogen, and argon are studied. Oxides of the central ions of the binary complex salts are found to be the thermolysis products in an oxidative atmosphere. Solid solutions (intermetallic compounds) CoFe are the thermolysis products in the reductive atmosphere, whereas intermetallides containing considerable amounts of C and N and an impurity of Co and Fe oxides are the thermolysis products in an inert atmosphere. Gaseous thermolysis products in dihydrogen and argon are NH3, hydrocarbons, and ethylenediamine.  相似文献   

15.
Chromiumexistsindifferentoxidationstatesingroundwater,industrialwastewater,seawater,andsoilofourenvironment1,2.Chromium(III)isanessentialtraceelementforhumans,requiredforthemaintenanceofnormalglucose,cholesterol,andfattyacidmetabolism.Ontheotherhand,watersolublechromium(VI),intheformCr2O72-orCrO42-,ishighlyirritatingandtoxictohumansandanimals3.Itsacutetoxiceffectsincludeanimmediatecardiovascularshockandlatereffectsonkidney,liver,andblood-formingorgans.Therefore,itisnecessaryforriskassessme…  相似文献   

16.
A reaction of ammonium tetra(isothiocyanato)diamminechromate(III) (ammonium reineckate) with ?-caprolactam in aqueous solution at different pH values gave the novel complexes (NH4)[Cr(NH3)2(NCS)4] · 7Cpl (I), (NH4)[Cr(NH3)2(NCS)4] · 2.5Cpl · 0.5(H2O) (II), and (HCpl2)[Cr(NH3)2(NCS)4] (III), where Cpl is ?-caprolactam (?-C6H11NO). The crystals of complexes I?CIII are triclinic, space group $P\bar 1$ ; I: a = 12.7058(4) ?, b = 13.2544(4) ?, c = 19.4487(7) ?, ?? = 105.2360(10)°, ?? = 106.6410(10)°, ?? = 91.5290(10)°, V = 3009.37(17) ?3, ??calc = 1.245 g/cm3, Z = 2; II: a = 12.3144(5) ?, b = 12.6518(5) ?, c = 23.3300(8) ?, ?? = 75.4580(10)°, ?? = 80.0760(10)°, ?? = 61.0830(10)°, V = 3074.1(2) ?3, ??calc = 1.358 g/cm3, Z = 4; III: a = 6.4701(4) ?, b = 12.5973(9) ?, c = 16.5556(12) ?, ?? = 108.769(2)°, ?? = 98.543(2)°, ?? = 90.345(2)°, V = 1261.36(15) ?3, ??calc = 1.437 g/cm3, Z = 2. The structure refinement for (HCpl2)3[Cr(NCS)6] (IV) was revised. Like complex III, complex IV contains the cation (HCpl2)+ stabilized by a strong hydrogen bond between the O atoms of the ?-caprolactam molecules; the cation was structurally characterized for the first time.  相似文献   

17.
Crystal structures of two new compounds containing trigonal tellurium-bridged cluster fragments [Mo3(3-Te)(2-Te2)3]4+ were investigated. Crystal data for K4.5{[Mo3(3-Te)(2-Te2)3(CN)6]I}I1.5·3H2O: space group , Z = 4, a = 13.280(1), c = 23.800(3) , V = 3635.0(6) 3, d calc = 3.432 g/cm3, R 1 = 0.0335, wR2 = 0.0912 for 1378 I hkl > 2 I from 3545 measured I hkl ; for Cs3{[Mo3(3-Te)(2-Te2)3(CN)6]I}·2H2O: space group P2 1 /n, Z = 2, a= 9.650(2) , b = 22.297(5), c = 27.446(7) , = 94.10(2)°, V = 5890(2) 3, d calc = 4.273 g/cm 3, R 1 = 0.0384, wR 2 = 0.0744 for 957 I hkl > 2 I from 3758 measured I hkl (Enraf-Nonius CAD-4 diffractometer, MoK , graphite monochromator). In both compounds, ionic pairs {[Mo3Te7(CN)6]I}3– with Teax...I distances of 3.358-3.676 are formed. In the potassium salt, the {[Mo3Te7(CN)6]I}3– anion pairs are linked by the additional TeeqI short contacts of 3.460 into two-dimensional corrugated layers perpendicular to the c axis of the unit cell. The structure of the cesium salt is ionic with interstitial H2O molecules and double-layer closest packing of anions.  相似文献   

18.
Treatment of the coordinative unsaturated complexes [M(SRF)3(PMe2Ph)2] (M = Os or Ru; RF = C6F5 or C6F4H-4) with MS2Z (M = Na, S2Z = S2CNEt2; M = K, S2Z = S2COEt) and [Os(SRF)3(PMe2Ph)2] (RF = C6F5 or C6F4H-4) with MS2Z [M = Na; S2Z = S2P(OEt)2] in Me2CO solution, gave the paramagnetic OsIII and RuIII derivatives, [M(SRF)2(S2Z)(PMe2Ph)2]. X-ray crystallography shows that [Os(SC6F5)2(S2CNEt2)(PMe2Ph)2] has an octahedral geometry with trans-fluorothiolates, cis-phosphines and a chelating N,N-diethyldithiocarbamate ligand.  相似文献   

19.
The nucleation and crystallization of poly(ethylene oxide) (PEO) and poly(ε-caprolactone) (PCL) in the PEO/PCL blends have been investigated by means of optical microscopy (OM) and differential scanning calorimetry (DSC). During the isothermal or nonisothermal crystallization process, when the adjacent PEO is in the molten state, PCL nucleation preferentially occurs at the PEO and PCL interface; after the crystallization of the adjacent PEO, much more PCL nuclei form on the surface of the PEO crystal. However, PEO crystallizes normally and no interfacial nucleation occurs in the blend. The concentration fluctuation caused by liquid–liquid phase separation (LLPS) induces the motion of PEO and PCL chains through interdiffusion and possible orientation of chain segments. The oriented PEO chain segments can assist PCL nucleation, and the heterogeneous nucleation ability of PEO increases with the orientation of PEO chains. Oriented PCL chain segments have no heterogeneous nucleation ability on PEO. It is postulated that the interfacial nucleation of PCL in the PEO/PCL blend follows the combination of “fluctuation-assisted crystallization” and “interface-assisted crystallization” mechanisms.
Figure
a Illustration of PEO and PCL segments orientation caused by interdiffusion at the interface with concentration fluctuation and PCL spherulite induced by oriented PEO chains. b Illustration of PCL spherulites induced by the surface of PEO spherulite. PEO-rich and PCL-rich domains form and grow toward the liquid–liquid coexistent compositions during LLPS. The moving PEO and PCL chains could induce some segmental alignment or orientation (relative to adjacent chains) during the reptative interdiffusion. The oriented PEO segments have the heterogeneous nucleation ability on PCL, leading to the PCL nuclei occurs at the interface of the phase domains, illustrated in a. The PEO crystal has more regular chain alignment, so PCL nucleates easier on PEO crystal surface than on oriented PEO melt surface, such as illustrated in b.  相似文献   

20.
[Co(DH)2(Py)2]2SiF6 · 10H2O and [Co(DH)2(Thio)2]2SiF6 · 2H2O · C2H5OH complexes are synthesized and characterized by X-ray diffraction analysis. Two radicals of -glyoxime linked by hydrogen O–H···O bonds lie in the equatorial plane of the octahedral Co(III) complexes. Intramolecular (– and N–H···O) and intermolecular (O–H···F, O–H···O, N–H···F, N–H···O, N–H···S) interactions are discovered in the crystal. The influence of nonvalence interactions on the structures is discussed.  相似文献   

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