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1.
Reaction of silver(I) halides with PPh3 in acetonitrile and then with pyridine-2-thione (pySH) chloroform (1:1:1 molar ratio) has yielded sulfur bridged dimers of general formula, [Ag2X2(μ-S-pySH)2(PPh3)2] (X = Cl, 1, Br, 2). Both these complexes have been characterized using analytical data, NMR spectroscopy and single crystal X-crystallography. The central Ag2S2 cores form parallelograms with unequal Ag–S bond distances (2.5832(8), 2.7208(11) Å) in 1 and (2.6306(4), 2.6950(7) Å) in 2, respectively. The Ag?Ag contacts of compounds 1 and 2 are 3.8425(8) and 3.8211(4) Å, respectively. The angles around Ag (in the range 87.19(2)–121.71(2)° in 1 and 87.81(2)–121.53(2)° in 2) reveal highly distorted tetrahedral geometry. There are inter dimer π–π stacking interactions between pyridyl rings (inter ring distances of 3.498 and 3.510 Å in complexes 1 and 2, respectively). The solution state 31P NMR spectroscopy has shown the existence of both monomers and dimers. The studies reveal relatively weaker intramolecular –NH?Cl hydrogen bonding in case of AgCl vis-à-vis that in CuCl which favored both a monomer and a dimer with AgCl, and only a monomer with CuCl.  相似文献   

2.
Reactions of the benzylidyne-capped tricobalt cluster [Co3Cp33-CPh)2] (1) with various silver salts have been examined. The salts of weakly- or non-coordinating anions (e.g., BF4 and PF6) oxidize 1 in CH2Cl2 to form its cationic radical, 1+. Reactions with salts of strongly coordinating anions (e.g., CF3CO2 and NO3) yield the silver(I) adducts of 1, [Co3Cp33-CPh)2{μ-Ag(X)}] (for X=CF3CO2: 2 and NO3: 3). Even with AgBF4 or AgPF6, the reaction in MeCN produces a silver(I) adduct, [Co3Cp33-CPh)2{μ-Ag(NCMe)}]+ (4+). The Co3Ag skeleton in the structures of 2, 3, and 4+ is similar in each compound. The Co-Co bond bridged by the Ag atom (for 2, Co-Co=2.4785(8) Å, for 3, Co-Co=2.4837(9) Å, and for 4+, Co-Co=2.4578(7) Å) is longer than the average Co-Co bond length in 1 where 〈Co-Co〉av=2.382(8) Å. The other Co-Co bonds in the compounds are slightly shorter than those in 1. The Co2Ag triangle is not coplanar with the Co3 triangle; the dihedral angles between these triangles for 2, 3 and 4+ are 162.7°, 157.7°, and 151.6°, respectively. Dissolution of 4PF6 in CH2Cl2 leads to the formation of 1+ and the deposition of Ag metal. The 1H NMR spectra of 2 and 3 in CD2Cl2 indicate that the AgX group moves over the three Co-Co bonds. The ESR spectra in frozen acetonitrile solutions of 2, 3, and 4PF6 show the existence of a small amount of 1+, but the deposition of Ag metal was not observed.  相似文献   

3.

Abstract  

Reaction of the [Me4N]2[Cd(SPh-4-Me)4] with two equivalents of [M(PPh3)2NO3] afforded the neutral linear trinuclear complexes [Cd(μ-SPh-4-Me)4{M(PPh3)2}2] (M = Cu 1, Ag 2) in which two [M(PPh3)2]+ fragments chelate with the opposite edges of a tetrahedral [Cd(SPh-4-Me)4]2− moiety via the sulfur atoms of the Me-4-PhS species. Treatment of [Sn(SPh)4] with two equivalents of [Ag(PPh3)2NO3] gave the neutral linear trinuclear complex [Sn(μ-SPh)6(AgPPh3)2] (3) that is composed of a central distorted SnS6 octahedron sharing two opposite planes with two slightly distorted AgS3P tetrahedrons. Complexes 2 and 3 are air and optically stable. Their nonlinear optical absorption and refraction were investigated under the same conditions. The nonlinear optical absorption and refraction of complex 2 were determined to be α 2 = 3.11 × 10−11 m/W and n 2 = 4.15 × 10−12 esu, respectively. The nonlinear optical absorption and refraction of complex 3 were determined to be α 2 = 8.36 × 10−11 m/W and n 2 = 1.47 × 10−11 esu, respectively.  相似文献   

4.
A new polymer azido-bridged copper(II) complex [Cu4(En)21,1-N3)41,1,1-N3)21,3-N3)2] n (I) (En = ethylenediamine) has been synthesized and crystallography characterized. Complex I shows one-dimensional coordination polymeric structure based on a tetranuclear cluster unit [Cu4(En)21,1-N3)41,1,1-N3)21,3-N3)2], in which the azido ions display three different bridging modes.  相似文献   

5.
用Co2(CO)8分别与两个杂环配体C(S)NHP(S)(C6H4OCH3)OC(Ph)CH (L1)和C(S)NHC(CH3)2P(S)(Cl)N(Ph) (L2)反应,合成两个新的三核钴羰基硫簇合物Co3(CO)73-S)[μ,η2-CNP(S)(C6H4OCH3)OC(Ph)CH]()和Co3(CO)73-S)[μ,η2-SCNC(CH3)2P(S)(Cl)N(Ph)]()。用元素分析,IR, 1H NMR, 31P NMR及MS谱表征了它们的结构,同时用X射线衍射法测定了它们的晶体分子结构,二者属于三斜晶系,空间群P1,的晶胞参数为:a=0.84768(1)nm,b=1.19049(3)nm,c=1.43639(1)nm,α=86.926(1)°,β=81.601(3)°,γ=88.535(2)°,V=1.4318(5)nm3,Z=2,Dc=1.641g·cm-3,F(000)=716,μ=1.893mm-1,R=0.0602,Rw=0.1515。的晶胞参数为:a=1.2050(2)nm,b=1.2448(2)nm,c=0.8951(2)nm,α=97.49(1)°,β=93.552(4)°,γ=108.432(3)°,V=1.2554(3)nm3,Z=2,Dc=1.841g·cm-3,F(000)=690,μ=2.419mm-1,R=0.0423,Rw=0.1075。的分子骨架Co3S为三角锥构型,S作为面桥基配体,所有CO作为端基配体与三个Co原子成键。中含有CoCoCN四元环组件,中含有CoCoSCN五元环组件。  相似文献   

6.
Pt(P-t-Bu3)2 reacts with the bismuthtrirhenium complex Re3(CO)12(μ-BiPh2)(μ-H)2, 1 at 68 °C to give eight complexes PtRe2(CO)9P(t-Bu3)(μ-H)2, 2, PtRe3(CO)12P(t-Bu3)(μ-Ph)(μ-H)(μ4-Bi), 3, PtRe3(CO)13P(t-Bu3)(μ4-Bi)(μ-H)2, 4, PtRe4(CO)16P(t-Bu3)(μ-H)24-Bi)(μ3-Bi), 5, Pt2Re5(CO)21[P(t-Bu)3]2(μ-H)34-Bi)2, 6, trans-Pt2Re5(CO)22[P(t-Bu)3]2(μ-H)34-Bi)2,trans-7, cis-Pt2Re5(CO)22[P(t-Bu)3]2(μ-H)34-Bi)2, cis-7, (an isomer of trans-7) and Re3(CO)13[PtPBut3]2(μ-H)24-Bi), 8, all in low yields. When 4 was treated with Pt(P-t-Bu3)2 at 68 °C, compounds 2, trans-7, cis-7, and Pt2Re4(CO)18[P(t-Bu)3]2(μ-H)24-Bi)2, 9 were formed. When 8 was treated with CO at 25 °C, compounds 2, trans-7, 9, and PtRe3(CO)9P(t-Bu)33-Bi)(μ4-Bi2), 10 were formed. In all of the products both of the phenyl rings from the bridging BiPh2 ligand of 1 were cleaved from the bismuth atom. Only compound 3 contains a phenyl ligand and that ligand was a bridging ligand across the Pt-Re bond. All of the products, except 10, and the known compound 2, contain spiro, μ4-Bi ligands. The higher nuclearity complexes 5, 6, trans-7, cis-7, and 9 contain two bismuth ligands. Compound 10 contains three bismuth atoms. Two of the bismuth atoms in 10 are part of an octahedrally-shaped Re3PtBi2 cluster. The third bismuth atom is a triply-bridging ligand on the triangular Re3 face of the cluster. When a mixture of 4 and 8 was heated to 68 °C in the presence of CO, the new compound PtRe4(CO)17(P-t-Bu3)(μ-H)24-Bi), 11 was formed. The molecular structures of all of the new complexes were characterized by single-crystal X-ray diffraction analyses.  相似文献   

7.
A reaction of the dimer [Mn(CO)4(SPh)]2 with (PPh3)2Pt(C2Ph2) gave the heterometallic complex (CO)4Mn(μ-SPh)Pt(PPh3)2 (I) and its isomer (CO)3(PPh3)Mn(μ-SPh)Pt(PPh3)(CO) (II). A reaction of complex I with a diphosphine ligand (Dppm) yielded the heterometallic complex (CO)3Mn(μ-SPh)Pt(PPh3)(Dppm) (III). Complexes IIII were characterized by X-ray diffraction. In complex I, the single Mn-Pt bond (2.6946(3) ?) is supplemented with a thiolate bridge with the shortened Pt-S and Mn-S bonds (2.3129(5) and 2.2900(6) ?, respectively). Unlike complex I, in complex II, one phosphine group at the Pt atom is exchanged for one CO group at the Mn atom. The Mn-Pt bond (2.633(1) ?) and the thiolate bridge (Pt-S, 2.332(2) ?; Mn-S, 2.291(2) ?) are retained. In complex III, the Mn-Pt bond (2.623(1) ?) is supplemented with thiolate (Pt-S, 2.341(2) ?; Mn-S, 2.292(2) 0?) and Dppm bridges (Pt-P, 2.240(1)?; Mn-P, 2.245(2) ?). Apparently, the Pt atom in complexes IIII is attached to the formally double bond , as in Pt complexes with olefins.  相似文献   

8.
Reaction of the metalloligand [Pt2(μ-S)2(PPh3)4] with 0.5 mol equivalents of durene-1,4-bis(mercuric acetate) [AcOHgC6Me4HgOAc] in methanol gives the polynuclear complex [{Pt2(μ-S)2(PPh3)4}2(μ-1,4-C6Me4Hg2)]2+, isolated as its and salts. Positive-ion ESI mass spectra indicate that [{Pt2(μ-S)2(PPh3)4}2(μ-1,4-C6Me4Hg2)]2+ undergoes fragmentation by successive loss of PPh3 ligands, while the ESI mass spectrum of the salt showed additional ions [Pt2(μ-S)2(PPh3)4(HgC6Me4HgPh)]+ and [Pt2(μ-S)2(PPh3)4HgPh]+ as a result of phenyl transfer from to Hg. A single-crystal X-ray structure determination on [{Pt2(μ-S)2(PPh3)4}2(μ-1,4-C6Me4Hg2)](BPh4)2 shows that the cation crystallises on a centre of symmetry, with structural features that are comparable to those of the previously characterised complex [Pt2(μ-S)2(PPh3)4HgPh]BPh4.  相似文献   

9.
The structure and dynamic behavior of complex [(η5-C5H4CH3)Cr(CO)2(μ-SBu)Pt(PPh3)2] in solution was studied by multinuclear (1H, 13C, 31P) NMR spectroscopy including a phase-sensitive NOESY experiment. Increasing temperature causes rupture of the Cr-Pt bond in the three-membered ring of the complex and rotation of the S-Pt(PPh3)2 unit around the Cr-S bond line, followed by formation of a new Cr-Pt bond to close the ring. All activation parameters for this dynamic process have been determined.  相似文献   

10.
It was determined by ESR spectroscopy that the UV irradiation of toluene solutions containing Hg[P(O)(OPri)2 and the complex (2-C60)Os(CO)(PPh3)2(CNBut) produces six stable regioisomeric adducts of phosphoryl radicals with complexes, which are not demetallated under UV irradiation and do not dimerize in the absence of UV irradiation. This is caused by the addition of the phosphoryl radicals to the carbon atoms of fullerene localized near the metal-containing moiety. The addition of the phosphoryl radicals to (2-C70)Os(CO)(PPh3)2(CNBut) gives rise to the formation of nine stable regioisomeric radical adducts. A comparison of the composition of regioisomers of the radical adducts of C70 with the phosphoryl radicals, which were formed directly from C70 and from the radical adducts of 2-C70)Os(CO)(PPh3)2(CNBut) by the demetallation of the latter, revealed an orienting effect of the osmium-containing moiety on the addition of the phosphoryl radicals to the fullerene complex.Published in Russian in Izvestiya Akademii Nauk. Seriya Khimicheskaya, No. 9, pp. 1968–1972, September, 2004.  相似文献   

11.
The reaction between AuMe(PPh3) and Ru3(μ-H)33-CBr)(CO)9 (1) affords the novel heptanuclear cluster Au4Ru33-CMe)(Br)(CO)9(PPh3)3 (2), containing an Au/Ru3/Au trigonal pyramidal cluster face-capped by two Au(PPh3) groups and a CMe ligand, together with Au2Ru3(μ-H)(μ3-CMe)(CO)9(PPh3)2 (3), formed by isolobal replacement of two of the three μ-H atoms in 1 by Au(PPh3) groups. The latter co-crystallises with the analogous μ3-CH complex, as also shown spectroscopically.  相似文献   

12.
13.
The reactions of dilithium salt of trans-1,2-bis(trimethylsilylamino)cyclohexane with anhydrous lanthanide trichlorides LnCl3 (Ln = Yb, Nd) in THF afforded the dianionic binuclear tricycles of lanthanide chlorides {Li(THF)3[LnCl(μ2-trans-1,2-(NSiMe3)2C6H10)(μ2-Cl)]}2·2THF (Ln=Yb 1, Nd 2) in moderate yields. Both of the bridged complexes were characterized by elemental analysis, IR spectroscopy and single-crystal X-ray diffraction. Crystal structural analysis shows that the two complexes are the analogues which have a tricyclic framework built by two bridged lanthanide metals, four nitrogens and four carbons from two diamide ligands. Each lanthanide metal coordinates to three nitrogen atoms and two chlorines to form a distorted trigonal bipyramid and connects with a lithium by a bridging chlorine.  相似文献   

14.
The crystal structure of [(C5Me4Et)3Rh33-Se)2](PF6)2 and [(C5Me4Et)2Rh22-Cl)3]PF6, obtained in the reaction of [(C5Me4Et)Rh(C6H6)](PF6)2 with ZnSe in 4M HCl under hydrothermal conditions, is determined. In agreement with the 18VE rule, the triangular cluster contains single metal-metal bonds (Rh-Rh 2.864(1) ?), whereas they are absent in the binuclear complex (Rh ...Rh 3,216(1) ?). Original Russian Text Copyright ? 2009 by P. A. Abramov, M. N. Sokolov, A. V. Virovets, and V. P. Fedin __________ Translated from Zhurnal Strukturnoi Khimii, Vol. 50, No. 1, pp. 169–172, January–February, 2009.  相似文献   

15.
Oxo/hydoxo zirconium(IV) complex of the general formula [Zr63-O)43-OH)4(OOCCH2tBu)92-OH)3]2 has been isolated, when Zr(OiPr)4 reacted with a 2-fold excess of 3,3-dimethylbutyric acid. Single crystal X-ray diffraction data, collected at 103 and 153 K, showed that the studied compound crystallizes in hexagonal system (P63/m (no. 176)). Structure consists of dimers composed of [Zr63-O)43-OH)4(OOCCH2tBu)9] sub-units, linked by six μ2-OH bridges. Infrared spectroscopic studies proved the presence of hydroxo groups in the structure of studied clusters and formation of different types of oxo/hydroxo bridges. The application of variable temperature infrared spectroscopy and differential scanning calorimetry revealed that the structure of this complex undergoes the phase transitions at 143–183 and 203–293 K. Comparison of spectral and crystallographic data suggests that these phase transitions might be related to changes in the strength of Zr–O bonds of μ2-OH bridges linking complex sub-units, and change in symmetry of the crystal lattice (from hexagonal to trigonal). Analysis of thermogravimetric data showed that decomposition of [Zr63-O)43-OH)4(OOCCH2tBu)92-OH)3]2 proceeds with complete conversion to ZrO2 (monoclinic form) between 603 and 803 K.  相似文献   

16.
The compounds [{VO(O2)2(NH3)}2{μ-Cu(NH3)4}] (1) and [Zn(NH3)4][VO(O2)2(NH3)]2 (2) were prepared and characterized by elemental analysis and infrared spectra. The single crystal X-ray study revealed that the structure of 1 consists of trinuclear complex molecules [(NH3)OV(O2)2{μ-Cu(NH3)4}(O2)2VO(NH3)] with a rare heterobimetalic peroxo bridge: copper(II)–peroxo ligand–vanadium(V). The structure of 2 is composed of tetraamminezinc(II) cations and ammineoxodiperoxovanadate(V) anions. In course of thermal decomposition of 1 performed up to 620 °C, the following intermediate products: [Cu(NH3)2(VO3)2], and subsequently a mixture of V2O5 with monoclinic β-Cu2V2O7, were gradually formed. The final product of decomposition is Cu(VO3)2. The thermal decomposition of 2 is a two-step process. In the first stage, [Zn(NH3)3(VO3)2] as supposed intermediate was formed, which transformed at higher temperatures by release of ammonia molecules to the monoclinic modification of Zn(VO3)2.  相似文献   

17.

Abstract  

Thermolysis of cis-Fe(CO)4(SiCl3)2 results in the formation of the novel compound Fe2(CO)62-SiCl2)3, which was characterized by single crystal X-ray diffraction. Density functional theory calculations were carried out to elucidate possible reaction steps leading to the formation of Fe2(CO)6(SiCl2)3, including CO dissociation and chlorine abstraction by a SiCl3 radical generated from homolytic Fe–Si bond cleavage involving a singlet–triplet intersystem crossing.  相似文献   

18.
Thermal treatment of C9H7SiMe2C9H7 and C9H7Me2SiOSiMe2C9H7 with Ru3(CO)12 in refluxing xylene gave the corresponding diruthenium complexes (E)[(η5-C9H6)Ru(CO)]2(μ-CO)2 [E = Me2Si (1), Me2SiOSiMe2 (2)]. A desilylation product [(η5-C9H7)Ru(CO)]2(μ-CO)2 (3) was also obtained in the latter case. Similar treatment of C9H7Me2SiSiMe2C9H7 with Ru3(CO)12 gave a novel indenyl nonanuclear ruthenium cluster Ru96-C)(CO)143522-C9H7)2 (5) with carbon-centered tricapped trigonal prism geometry, in addition to the diruthenium complex (Me2SiSiMe2)[(η5-C9H6)Ru(CO)]2(μ-CO)2 (4) and the desilylation product 3. Complex 4 can undergo a thermal rearrangement to form the product [(Me2Si)(η5-C9H6)Ru(CO)2]2 (6). The molecular structures of 1, 2, 4, 5, and 6 were determined by X-ray diffraction.  相似文献   

19.
Reaction of P2Ph4 with the diyne-diol complex [{Co2(CO)6}2(μ-η2:μ-η2-HOCH2CCCCCH2OH)] in toluene at 65 °C gives [{Co2(μ-P2Ph4)(CO)4}{Co2(CO)6}(μ-η2:μ-η2-HOCH2CCCCCH2OH)] (1). Thermolysis of 1 at 95 °C leads to [{Co2(CO)5}2(μ-P2Ph4)(μ-η2:μ-η2-HOCH2CCCCCH2OH)](2) and (μ2-PPh2)(μ2-CO)(CO)7] (3). The structures of 1-3 have been established by X-ray crystallography. In 1, a pseudoequatorial P2Ph4 ligand bridges the cobalt-cobalt bond of a Co2(CC)(CO)4 unit. By contrast, in isomeric 2, a pseudoaxial P2Ph4 ligand spans two Co2(CC)(CO)5 units, a new coordination mode for [{Co2(CO)5L}2(μ-η2:μ-η2-diyne)] complexes. Complex 3 arises from dehydration-cyclocarbonylation of the diyne-diol in 1 to give a 2(5H)-furanone, a process that has not been previously reported. Reaction of HOCH2CCCCCH2OH with [Co2(μ-PPh2)2(CO)6] at 80 °C in toluene gave [Co3(μ-PPh2)3(CO)6], [Co2(CO)6(μ-η2-HOCH2CCCCCH2OH)] and [Co2{μ-η4-PPh2C(CCCH2OH)C(CH2OH)CO}(μ-PPh2)(CO)4] (4). The regiochemistry of 4 was confirmed by X-ray crystallography.  相似文献   

20.
The reduction of trans-[Pd(NHC)2Cl2] (NHC = IMes, 1,3-bis(2,4,6-trimethylphenyl)imidazol-2-ylidene; IiPr2 = 1,3-bis-isopropylimidazol-2-ylidene) with potassium graphite under an atmosphere of CO affords the palladium NHC carbonyl clusters [Pd3(μ-CO)3(NHC)3] (NHC = IMes, 1; IiPr2, 3). Treatment of 1 with SO2 at room temperature yields the bridging SO2 complex [Pd3(μ-SO2)3(IMes)3] (4) in quantitative yield. Complexes 1, 3 and 4 have been structurally characterised by X-ray crystallography.  相似文献   

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