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1.
The title dimanganese complexes react with NO (5% in N2) at room temperature to give as major products the corresponding hexanitrosyl derivatives [Mn2(NO)6(μ-L2)] in moderate yields, and they react rapidly with NO2 to give the corresponding hydride derivatives [Mn2(μ-H)(μ-NO2)(CO)6(μ-L2)], these having a nitrite ligand bridging the dimetal centre through the N and O atoms. The dppm-bridged dihydride also reacts selectively at 273 K with (PPN)NO2 to give first the nitro derivative (PPN)[Mn2(μ-H)(H)(NO2)(CO)6(μ-dppm)], which then transforms into the nitrosyl complex (PPN)[Mn2(μ-CO)(CO)5(NO)(μ-dppm)] at room temperature or above (dppm = Ph2PCH2PPh2; PPN+ = [N(PPh3)2]+). The latter anion reacts with (NH4)PF6 to give the hydride-bridged nitrosyl complex [Mn2(μ-H)(μ-NO)(CO)6(μ-dppm)] and with [AuCl(PPh3)] to give the trinuclear cluster [AuMn2(μ-NO)(CO)6(μ-dppm)(PPh3)] (Mn-Au = ca. 2.68 Å; Mn-Mn = 2.879(2) Å). Both products are derived from the addition of the added electrophile at the intermetallic bond and rearrangement of the nitrosyl ligand into a bridging position. In contrast, methylation of the anion with CF3SO3Me takes place at the nitrosyl ligand to yield the unstable methoxylimide derivative [Mn2(μ-NOMe)(CO)6(μ-dppm)]. Analogous reactions at the nitrosyl ligand take place upon the addition of HBF4·OEt2 to the nitrosyl-bridged hydrides [Mn2(μ-H)(μ-NO)(CO)n(μ-dppm)m] (n = 6, m = 1; n = 4, m = 2) to give the corresponding hydroxylimide derivatives [Mn2(μ-H)(μ-NOH)(CO)n(μ-dppm)m]BF4, which were also thermally unstable and could not be isolated nor fully characterized.  相似文献   

2.
The dimanganese hydride complexes [Mn2(μ-H)2(CO)6(μ-L2)] [L2 = (EtO)2POP(OEt)2 (tedip), Ph2PCH2PPh2 (dppm)] react with primary and secondary silanes H2SiPhR (R = Ph, Me, H) to give the corresponding derivatives [Mn2(μ-H2SiPhR)(CO)6(μ-L2)] having a silane molecule displaying a relatively unusual μ-κ22 coordination mode (averaged values are ca. Mn-H = 1.59 Å, H-Si = 1.69 Å and Mn-Si = 2.381 Å, when R = Ph and L2 = tedip). These complexes display in solution cis and/or trans arrangement of the bridging silane relative to the diphosphorus ligands (and facial and/or meridional arrangements of the corresponding carbonyl ligands), depending on the bridging groups. The novel unsaturated dihydride [Mn2(μ-H)2(CO)6(μ-dmpm)] (dmpm = Me2PCH2PMe2) has been prepared through the reaction of [Mn2(μ-Cl)2(μ-dmpm)(CO)6] and 5 equiv of Li[BH2Me2] in tetrahydrofuran followed by addition of water. The dihydride complexes [Mn2(μ-H)2(CO)6(μ-L2)] (L2 = tedip, dppm, dmpm) react with HSnPh3 to give different mixtures of products strongly dependent on the particular reaction conditions. We have thus been able to isolate and characterize five new types of dimanganese-tin derivatives: [Mn2(μ-SnPh2)2(CO)6(μ-L2)], [Mn2(μ-H)(μ-Ph2SnO(H)SnPh2)(CO)6(μ-L2)] (average values are Mn-Sn = 2.54 Å, Sn-O = 2.11 Å, when L2 = tedip), [Mn2(μ-H)(μ-κ12-HSnPh2)(CO)6(μ-L2)], [Mn2(μ-H)(μ-κ11-O(H)SnPh2)(CO)6(μ-L2)], and [Mn2(μ-H)(SnPh3)(CO)7(μ-L2)] (Mn-Mn = 3.237(1) Å, Mn-Sn = 2.642(1) Å, when L2 = dppm).  相似文献   

3.
Reaction of [Ru3(CO)10(μ-dppm)] (1) with H2S at 66 °C affords high yields of the sulfur-capped dihydride [Ru3(CO)7(μ-H)2(μ-dppm)(μ3-S)] (2), formed by oxidative-addition of both hydrogen-sulfur bonds. Hydrogenation of [Ru3(CO)7(μ-dppm)(μ3-CO)(μ3-S)] (3) at 110 °C also gives 2 in similar yields, while hydrogenation of [Ru3(CO)7(μ-dppm)(μ3-CO)(μ3-Se)] (4) affords [Ru3(CO)7(μ-H)2(μ-dppm)(μ3-Se)] (5) in 85% yield. The molecular structures of 2 and 5 reveal that the diphosphine and one hydride simultaneously bridge the same ruthenium-ruthenium edge with the second hydride spanning one of the non-bridged edges. Both 2 and 5 are fluxional at room temperature being attributed to hydride migration between the non-bridged edges. Addition of HBF4 to 2 affords the cationic trihydride [Ru3(CO)7(μ-H)3(μ-dppm)(μ3-S)][BF4] (6) in which the hydrides are non-fluxional due to the blocking of the free ruthenium-ruthenium edge.  相似文献   

4.
5.
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   

6.
Five new copper(I)/silver(I) complexes containing 2-aminopyridine, [Cu(μ-Cl)(2-Apy)(PPh3)]2(1), [Ag(μ-Cl)(2-Apy)(PPh3)]2(2), [Ag(μ-Br)(2-Apy)PPh3)]2(3), [Ag(μ-ONO2)(2-Apy)(PPh3)]2(4), [Ag(μ-ONO2)(2-Apy)(AsPh3)]2(5) have been synthesised for the first time. Complexes 15 are obtained by the reactions of MX (MX = CuCl for 1; M = Ag for 2–5; X = Cl, Br for 23; X = NO3 for 4–5) with the monodentate ligands EPh3 (E = P for 14; E = As for 5) and 2-Apy in the molar ratio of 1:1:2 in the mixed solvent of CH2Cl2 and MeOH. Complexes 15 are characterised by IR and X-ray diffraction. In 15, chloride, bromide and nitrate ions bridge two metal atoms to form dinuclear complexes containing the parallelogram cores M2X2 (M = Cu, Ag).  相似文献   

7.
The reaction between Ru3(μ-H){μ3-C2CPh2(OH)}(CO)9 and HCCPh, carried out in the presence of HBF4 · Me2O, afforded the cluster complexes Ru3(μ-H)(μ3-CPh2CCCCPh)(CO)9 (5) and Ru33-CPhCHCC(CPh2)CHCPh}(μ-CO)(CO)8 (6), both of which were characterised by single-crystal X-ray studies.  相似文献   

8.
Treatment of the salicylaldimine ligands (L1H, L2H, L3H, L4H and L5H) with palladium(II) acetate in absolute ethanol gave the orthopalladation dinuclear [Pd(L1)(μ-OAc)]2, [Pd(L2)(μ-OAc)]2 and mononuclear [Pd(L3)2] with the tetradentate ligands [N, C, O] or [N, O] moiety. The ligands L1H and L2H are coordinated through the imine nitrogen and aromatic ortho carbon atoms, whereas the ligand L3H coordinated through the imine nitrogen and phenolic oxygens atoms. The Pd(II) complexes have a square-planar structure and were found to be effective catalysts for the hydrogenation of both nitrobenzene and cyclohexene. These metal complexes were also tested as catalysts in Suzuki-Miyaura coupling of aryl bromide in the presence of K2CO3. The catalytic studies showed that the introduction of different groups on the salicyl ring of the molecules effected the catalytic activity towards hydrogenation of nitrobenzene and cyclohexene in DMF at 25 and 45 °C. The Pd(II) complexes easily prepared from cheap materials could be used as versatile and efficient catalysts for different C-C coupling reactions (Suzuki-Miyaura reactions). The structure of ligands and their complexes was characterized by UV-Vis, FT-IR, 1H and 13C NMR, elemental analysis, molar conductivity, as well as by electrochemical techniques.  相似文献   

9.
The compound [Os3(CO)10(μ-Cl)(μ-AuPPh3)] (2) was prepared from the reaction between [Os3(CO)10(NCMe)2] (1) and [AuClPPh3] under mild conditions. The reaction of 2 with 4-mercaptopyridine (4-pyS) ligand yielded compounds [Os3(CO)10(μ-H)(μ-SC5H4N)] (4), formed by isolobal replacement of the fragment [AuPPh3]+ by H+ and [Os3(CO)10(μ-AuPPh3)(μ-SC5H4N)] (5). [Os3(CO)10(μ-H)(μ-SC5H4N)] (4) was also obtained by substitution of two acetonitrile ligands in the activated cluster 1 by 4-pyS, at room temperature in dichloromethane. Compounds 2-5 were characterized spectroscopically and the molecular structures of 4 and 5 in the solid state were obtained by single crystal X-ray diffraction studies.  相似文献   

10.
Allene reacts with the benzothiazolide clusters [Os3(CO)93-NSC7H3R)(μ-H)] (R = H, Me) to afford the bridging allyl complexes [Os3(CO)7(μ-CO)2(μ-NSC7H3R)(μ-η121-CH2CHCH2)] resulting from insertion of allene into the metal-hydride. Both have been crystallographically characterized and differ with respect to the relative arrangement of allyl and benzothiazolide at the triosmium centre.  相似文献   

11.
Reported herein is the synthesis of the previously unknown [Ir(1,5-COD)(μ-H)](4) (where 1,5-COD = 1,5-cyclooctadiene), from commercially available [Ir(1,5-COD)Cl](2) and LiBEt(3)H in the presence of excess 1,5-COD in 78% initial, and 55% recrystallized, yield plus its unequivocal characterization via single-crystal X-ray diffraction (XRD), X-ray absorption fine structure (XAFS) spectroscopy, electrospray/atmospheric pressure chemical ionization mass spectrometry (ESI-MS), and UV-vis, IR, and nuclear magnetic resonance (NMR) spectroscopies. The resultant product parallels--but the successful synthesis is different from, vide infra--that of the known and valuable Rh congener precatalyst and synthon, [Rh(1,5-COD)(μ-H)](4). Extensive characterization reveals that a black crystal of [Ir(1,5-COD)(μ-H)](4) is composed of a distorted tetrahedral, D(2d) symmetry Ir(4) core with two long [2.90728(17) and 2.91138(17) ?] and four short Ir-Ir [2.78680 (12)-2.78798(12) ?] bond distances. One 1,5-COD and two edge-bridging hydrides are bound to each Ir atom; the Ir-H-Ir span the shorter Ir-Ir bond distances. XAFS provides excellent agreement with the XRD-obtained Ir(4)-core structure, results which provide both considerable confidence in the XAFS methodology and set the stage for future XAFS in applications employing this Ir(4)H(4) and related tetranuclear clusters. The [Ir(1,5-COD)(μ-H)](4) complex is of interest for at least five reasons, as detailed in the Conclusions section.  相似文献   

12.
The reaction between [Ru3(CO)10(NCMe)2] and [AuClPPh3] gave compound [Ru3(CO)10(μ-Cl)(μ-AuPPh3)] (1) in quantitative yield under very mild conditions. The reaction of 1 with 4-mercaptopyridine (4-pyS) using ultrasonic reaction conditions gave the heteronuclear compound [Ru3(CO)10(μ-AuPPh3)(μ-SC5H4N)] (2) in moderate yield. There was no spectroscopic evidence that indicates the formation of the hydride isolobal analog in this reaction. The homonuclear cluster [Ru3(CO)8(μ-H)(μ-SC5H4N)(μ-dppe)] (3) was prepared by a selective reaction employing the ruthenium-diphosphine derivative [Ru3(CO)10(μ-dppe)] (dppe = 1,2-bis(diphenylphosphine)ethane) with 4-pyS in THF solution. The isolobal analog to compound 3, compound [Ru3(CO)8(μ-AuPPh3)(μ-SC5H4N)(μ-dppe)] (4) was synthesized by the reaction between compound 2 and dppe in refluxing dichloromethane. Compounds 1-4 were characterized in solution by spectroscopic methods and the molecular structure of compounds 2 and 3 in the solid state was obtained by single crystal X-ray diffraction studies.  相似文献   

13.
Treatment of unsaturated [Os3(CO)83-Ph2PCH2P(Ph)C6H4}(μ-H)] (2) with tBuNC at room temperature gives [Os3(CO)8(CNBut)){μ3-Ph2PCH2P(Ph)C6H4}(μ-H)] (3) which on thermolysis in refluxing toluene furnishes [Os3(CO)7(CNBut){μ3-Ph2PCHP(Ph)C6H4}(μ-H)2] (4). Reaction of the labile complex [Os3(CO)9(μ-dppm)(NCMe)] (5) with tBuNC at room temperature affords the substitution product [Os3(CO)9(μ-dppm)(CNBut)] (6). Thermolysis of 6 in refluxing toluene gives 4. On the other hand, the reaction of unsaturated [Os3(CO)932-C7H3(2-Me)NS}(μ-H)] (7) with tBuNC yields the addition product [Os3(CO)9(CNBut){μ-η2-C7H3(2-Me)NS}(μ-H)] (8) which on decarbonylation in refluxing toluene gives unsaturated [Os3(CO)8(CNBut){μ32-C7H3(2-Me)NS}(μ-H)] (9). Compound 9 reacts with PPh3 at room temperature to give the adduct [Os3(CO)8(PPh3)(CNBut){μ-η2-C7H3(2-Me)NS(μ-H)] (10). Compound 8 exists as two isomers in solution whereas 10 occurs in four isomeric forms. The molecular structures of 3, 6, 8, and 10 have been determined by X-ray diffraction studies.  相似文献   

14.
Reactions of [Fe2(CO)6(μ-pdt)] (1) (pdt = SCH2CH2CH2S) and small bite-angle diphosphines have been studied. A range of products can be formed being dependent upon the nature of the diphosphine and reaction conditions. With bis(diphenylphosphino)methane (dppm), thermolysis in toluene leads to the formation of a mixture of bridge and chelate isomers [Fe2(CO)4(μ-dppm)(μ-pdt)] (2) and [Fe2(CO)42-dppm)(μ-pdt)] (3), respectively. Both have been crystallographically characterised, 3 being a rare example of a chelating dppm ligand in a first row binuclear system. At room temperature in MeCN with added Me3NO · 2H2O, the monodentate complex [Fe2(CO)51-dppm)(μ-pdt)] (4) is initially formed. Warming 4 to 100 °C leads the slow conversion to 2, while oxidation (on alumina) gives [Fe2(CO)51-dppmO)(μ-pdt)] (5). With bis(dicyclohexylphosphino)methane (dcpm), heating in toluene cleanly affords [Fe2(CO)4(μ-dcpm)(μ-pdt)] (6). With Me3NO · 2H2O in MeCN the reaction is not clean as the phosphine is oxidised but monodentate [Fe2(CO)51-dcpm)(μ-pdt)] (7) can be seen spectroscopically. With 1,2-bis(diphenylphosphino)benzene (dppb) and cis-1,2-bis(diphenylphosphino)ethene (dppv) the chelate complexes [Fe2(CO)42-dppb)(μ-pdt)] (8) and [Fe2(CO)42-dppv)(μ-pdt)] (9), respectively are the final products under all conditions, although a small amount of [Fe2(CO)52-dppvO)(μ-pdt)] (10) was also isolated. Protonation of 2 with HBF4 affords a cation with poor stability while with the more basic diiron centre in 6 readily forms the stable bridging-hydride complex [(μ-H)Fe2(CO)4(μ-dcpm)(μ-pdt)][BF4] (11) which has been crystallographically characterised.  相似文献   

15.
The hexaruthenium cluster complexes [Ru63-H)(μ52-L)(μ- CO)(CO)15], HL = 2-mercaptopyridine (1) and 2-mercapto-6-methylpyridine (2), have been prepared by heating [Ru3(CO)12] with 0.5 equiv. of HL in THF at reflux temperature. An X-ray diffraction study on a crystal of complex 2 has determined that its metallic skeleton, a basal-edge-bridged square pyramid, is hold up by a (6-methylpyrid-2-yl)thiolate ligand. This ligand is attached to the four basal ruthenium atoms of the pyramid through the sulfur atom and to the edge-bridging ruthenium atom through the nitrogen atom. Such a coordination mode is unprecedented for (pyrid-2-yl)thiolate ligands.  相似文献   

16.
The title compound has been obtained in considerable yield by reacting Ru3(CO)12 with 2-pentynal-diethyl-acetal [CH3CH2CCC(H)(OEt)2] (PDA) in hydrocarbon solvents. The X-ray analysis shows that the title complex belongs to the well known family of the flyover derivatives. Some X-ray structural studies have been reported, many years ago, on di-iron flyover complexes; in contrast only a few examples of diruthenium derivatives have been structurally characterized.The complex contains ethoxy-groups which could potentially undergo hydrolysis in the presence of tetraethyl-orthosilicate (TEOS) in the presence of catalysts. Reactions of complex Ru2(CO)6[μ-η4-{EtC2C(H)(OEt)2}CO{EtC2C(H)(OEt)2}] with TEOS in the presence of HCl or of NaF (as catalysts) have been attempted. An inorganic-organometallic sol-gel material containing the skeleton of the complex has been obtained and characterized with IR-Raman, XRD on powders and SEM microscopy.  相似文献   

17.
The synthesis and spectroscopic properties of a Na complex with ligand 3-aminopyrazine-2-carboxylic acid were described. The resulting complex was characterized by elemental analysis, IR, UV-Vis, NMR spectroscopy and single crystal X-ray diffraction method. The title compound crystallizes in the triclinic system with space group . The crystalline structure of this compound consists of supramolecular architectures involving strong intramolecular N—H…O in pyrazine molecules and intermolecular O—H…N, O—H…O, and N—H…N hydrogen bonds between substituted pyrazine and water molecules.  相似文献   

18.
RSeCCPh (1a, R = Et; 1b, R = n-Bu; 1c, R = Ph; 1d, R = 2,4,6-Me3C6H2) reacts with equimolar amounts of Fe2(CO)9 (2) to give [(μ-SeR)(μ-σ,π-CCPh)]Fe2(CO)6 (3a, R = Et; 3b, R = n-Bu; 3c, R = Ph; 3d, R = 2,4,6-Me3C6H2).Complexes 3a-3d exist as two isomers, depending on the axial or equatorial position of R at selenium.Addition of P(OiC3H7)3 (4) to 3d affords {(μ-Se-2,4,6-Me3C6H2)[μ-η1-CCPh(P(OiC3H7)3)]}Fe2(CO)6 (5) along with {(μ-Se-2,4,6-Me3C6H2)[μ-η11-PhCC(P(OiC3H7)3)]}Fe2(CO)6 (6).The solid-state structures of 3d, 5 and 6 were determined by single X-ray structure analysis.In mononuclear 3d the Fe(CO)3 fragments are bridged by a μ-Se-2,4,6-Me3C6H2 and a μ-σ,π-CCPh unit, resulting in an over-all butterfly arrangement.Due to steric reasons, the mesityl group is pointing away from the PhCC entity and hence, is located in an equatorial position.Compounds 5 and 6, which co-crystallise in the ratio of 7:93, feature aμ-bridging 2,4,6-Me3C6H2Se unit and either a vinylidenic CCPh(P(OiC3H7)3) (complex 5) or a olefinic PhCC(P(OiC3H7)3) (complex 6) building block of which the latter entity is part of a diiron cyclobutene ring.  相似文献   

19.
Treatment of ruthenium carbonyl, [Ru3(CO)12] with phenylseleno tribromide PhSeBr3 afforded a new triruthenium cluster, [(CO)10Br4Ru3(μ-SePh)2] (1). Its molecular structure was determined by single crystal XRD method (P21/c; a = 10.514(3) Å; b = 10.814(3) Å; c = 19.063(5) Å; β = 105.064(4)°; V = 2093.1(10) Å3) and shown to have two lateral Ru(CO)3Br2 units attached via two PhSe bridges to a Ru(CO)4 center forming a chain-like Ru-Se-Ru-Se-Ru cluster core. This is in contrast with a recently reported reaction of PhTeBr3 with [Ru3(CO)12] which formed a monomeric complex of ruthenium-dicarbonyl-dibromo fragment coordinating two PhTeBr ligands, [(CO)2RuBr2(PhTeBr)2].  相似文献   

20.
The reaction of the methylidyne-bridged cluster HRu3(CO)10(μ-COMe) (1) with the diphosphine ligand 4,5-bis(diphenylphosphino)-4-cyclopenten-1,3-dione (bpcd) and Me3NO furnishes HRu3(CO)8(μ-COMe)(bpcd) (2) and HRu3(CO)8(Ph2PH)[μ-PPh2CCC(O)CH2C(O)] (3) as the major and minor products, respectively. The 1H and 31P NMR data indicate that the bpcd ligand in 2 is chelated to one of the ruthenium atoms that is bridged by the hydride and methylidyne ligands. Thermolysis of 2 is accompanied by P-Ph bond cleavage and elimination of benzene to yield Ru3(CO)73-COMe)[μ-P(Ph)CC(PPh2)C(O)CH2C(O)] (4). Compound 4 consists of a triangular ruthenium core that is face-capped by μ3-COMe methylidyne and μ-P(Ph)CC(PPh2)C(O)CH2C(O) phosphido ligands. The kinetics for the conversion of 2 → 4 have been measured in toluene solvent over the temperature range 320-343 K, and based on the observed activation parameters and the inhibitory effect of added CO on the reaction, a rate-limiting step involving a dissociative loss of CO is supported. Heating 4 in the presence of H2 afforded the phosphinidene-capped cluster H3Ru3(CO)73-PPh)[μ-CC(PPh2)C(O)CH2C(O)] (5). Crystallographic analysis of 5 has confirmed the loss of the methylidyne moiety and the cleavage of the phosphido PhP-C(dione) bond, and the presence of three edge-bridging hydrides is supported by 1H NMR spectroscopy. The reaction of 4 with added PPh3 and PMe3 has been investigated; the uptake of a single phosphine ligand occurs regiospecifically at one of the phosphido-bound ruthenium centers to give Ru3(CO)6L(μ3-COMe)[μ-P(Ph)CC(PPh2)C(O)CH2C(O)] (PPh3, 6; PMe3, 7). Compound 6 contains 48e- and exhibits a structural motif similar to that found in 4. Compound 7 readily adds a second PMe3 ligand to yield the bis-substituted cluster Ru3(CO)6(PMe3)22-COMe)[μ-P(Ph)CC(PPh2)C(O)CH2C(O)] (8). The solid-state structure of 8 confirms the loss of two ruthenium-ruthenium bonds and the conversion of the original face-capping μ3-COMe ligand to a μ2-COMe moiety that tethers two non-bonding ruthenium centers. The two PMe3 ligands in 8 coordinate to the same ruthenium center, and the 9e- P(Ph)CC(PPh2)C(O)CH2C(O) ligand binds all three ruthenium atoms through the phosphine, phosphido, alkene, and carbonyl moieties. Near-UV irradiation of 8 leads to loss of CO and polyhedral contraction of the triruthenium frame to yield the 48e- cluster Ru3(CO)5(PMe3)23-COMe)[μ-P(Ph)CC(PPh2)C(O)CH2C(O)] (9).  相似文献   

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