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1.
2.
Treatment of the thiosemicarbazones 4-FC6H4C(Me)NN(H)C(S)NHR, (R = Me, a; Ph, b) and 2-ClC6H4C(Me)NN(H)C(S)NHR (R = Ph, c) with lithium tetrachloropalladate(II) in methanol or palladium(II) acetate in acetic acid gave the tetranuclear cyclometallated complex [Pd{4-FC6H3C(Me)NNC(S)NHR}]4 (1a, 1b) and [Pd{2-ClC6H3C(Me)NNC(S)NHPh}]4 (1c). Reaction of these tetramers with the diphosphines dppe, t-dppe, dppp or dppb in a 1:2 molar ratio gave the dinuclear cyclometallated complexes [(Pd{4-FC6H3C(Me)NNC(S)NHR})2(μ-Ph2P(CH2)nPPh2)], (n = 2, 2a, 2b; 3, 4a, 4b; 4, 5a, 5b), [(Pd{4-FC6H3C(Me)NNC(S)NHPh})2(μ-Ph2PCHCHPPh2)], (3a, 3b) and [(Pd{2-ClC6H3C(Me)NNC(S)NHR})2(μ-Ph2P(CH2)nPPh2)], (n = 2, 2c, 2d; 3, 4c, 4d; 4, 5c, 5d), [(Pd{2-ClC6H3C(Me)NNC(S)NHPh})2(μ-PPh2CHCHPPh2)], (3c, 3d). The X-ray crystal structure of the ligand b and the complexes 3c, 4a and 4d were determined. The structures of complexes 4a and 4d show that the different disposition of the chain cyclometallated of the thiosemicarbazones (in the same orientation or in the opposite one) is due to the different H bonds produced.  相似文献   

3.
Reactions of Fc′(CHO)21 (Fc′ = 1,1′-ferrocenediyl) with LiCCR gave substituted propargylic alcohols Fc′{CH(OH)CCR}2 (R = SiMe32, Fc 9). Oxidation (MnO2) of these alcohols afforded the bis(alkynyl ketone)s Fc′{C(O)CCR}2 (R = SiMe33, Fc 10), the former being accompanied by the partially desilylated Fc′{C(O)CCH}-1-{C(O)CCSiMe3}-1′ 4. The reaction between 4 and RuCl(dppe)Cp in the presence of Na[BPh4] gave the cyclic vinylidene complex [Ru{CC[C(O)Fc′C(O)CHCH]}(dppe)Cp]BPh45. The diastereomers were separated by flash chromatography (2) or preparative t.l.c. (9) to give the cis (2a, 9a) and trans (2b, 9b) isomers. Cyclisation of each isomer to the corresponding ferrocenophane was catalysed by pTSA to give Fc′{[CH(CCR)]2O} (R = SiMe36a, 6b; Fc 11a, 11b), of which 6a, 6b could be desilylated to Fc′{[CH(CCH)]2O} 7a, 7b, and further transformed into the bis(η2-alkyne-dicobalt) complexes Fc′{[CH(η2-C2H[Co2(μ-dppm)(CO)4])]2O} 8a, 8b with Co2(μ-dppm)(CO)6. Molecular structures of 3, 5, 6a, 6b, 7a, 7b and 10 were determined by single-crystal XRD methods.  相似文献   

4.
Treatment of the thiosemicarbazones 2-XC6H4C(Me)NN(H)C(S)NHR (R = Me, X = F, a; R = Et, X = F, b; R = Me, X = Cl, c; R = Et, X = Br, d) with potassium tetrachloropalladate(II) in ethanol, lithium tetrachloropalladate(II) in methanol or palladium(II) acetate in acetic acid, as appropriate, gave the tetranuclear cyclometallated complexes [Pd{2-XC6H3C(Me)NNC(S)NHR}]4 (1a-1d). Reaction of 1a-1d with the diphosphines Ph2PCH2PPh2 (dppm), Ph2P(CH2)2PPh2 (dppe), Ph2P(CH2)3PPh2 (dppp) or trans-Ph2PCHCHPPh2 (trans-dpe) in 1:2 molar ratio gave the dinuclear cyclometallated complexes [{Pd[2-XC6H3C(Me)NNC(S)-NHR]}2(μ-diphosphine-P,P)] (2a-5a, 3b, 3d, 4c, 5c). Reaction of 1a, 1b with the short-bite or long-bite diphosphines, dppm or cis-dpe, in a 1:4 molar ratio gave the mononuclear cyclometallated complexes [Pd{2-XC6H3C(Me)NNC(S)NHR}(diphosphine-P)] (6a, 6b, 7a). The molecular structure of ligand a and of complexes 1a, 3d, 5a, 5c, 6a, 6b and 7a have been determined by X-ray diffraction analysis. The structure of complex 7a shows that the long-bite cis-bis(diphenylphosphino)ethene phosphine appears as monodentate with an uncoordinated phosphorus donor atom.  相似文献   

5.
The novel bis(iminophosphorano)methanes CH2[P{NP(S)(OR)2}Ph2]2 (R = Ph (1a), Et (1b)) have been obtained by oxydation of dppm with the corresponding thiophosphorylated azides (RO)2P(S)N3. Deprotonation of 1a,b with KH generates the methanide species KCH[P{NP(S)(OR)2}Ph2]2 (R = Ph (2a), Et (2b)). The ruthenium(II) dimer [{Ru(η6-p-cymene)(μ-Cl)Cl}2] reacts with 2a,b to afford the cationic complexes [Ru(η6-p-cymene)(κ3-C,N,S-CH[P{NP(S)(OR)2}Ph2]2)]+ (R = Ph (3a), Et (3b)), via selective κ3-C,N,S-coordination of the bis(iminophosphorano)methanide anions to ruthenium. The structure of [Ru(η6-p-cymene)(κ3-C,N,S-CH[P{NP(S)(OEt)2}Ph2]2)][PF6] (3b) has been confirmed by single-crystal X-ray crystallography. Deprotonation of complexes 3a,b with NaH leads to the neutral carbene derivatives [Ru(η6-p-cymene)(κ2-C,N-C[P{NP(S)(OR)2}Ph2]2)] (R = Ph (4a), Et (4b)).  相似文献   

6.
Various phosphorus-supported fluorescent probes have been synthesized by the condensation reaction of multi-functional phosphorus hydrazides with various fluorophore-containing carboxaldehydes. Compounds, thus prepared, in this study are (PhO)2P(O)[N(Me)-NCH-R] (1a, 1b), Ph2P(O)[N(Me)-NCH-R] (2b, 2c, 2d), PhP(O)[N(Me)-NCH-R]2 (3b, 3c), P(S)[N(Me)-NCH-R]3 (4b, 4c), P(O)[N(Me)-NCH-R]3 (5a, 5b, 5c), N3P3(O2C12H8)2[N(Me)-NCH-R]2 (6a, 6b, 6c), N3P3(O2C12H8)[N(Me)-NCH-R]4 (7a, 7b, 7c, 7d) and N3P3[N(Me)-NCH-R]6 (8b, 8c), where R=1-pyrenyl (a), 9-anthracenyl (b), 9-phenanthryl (c) and 7-(N,N′-diethylamino)-3-coumarinyl (d). All of these compounds have been characterized by various analytical techniques including 31P{1H} NMR spectroscopy. Compounds 1b, 2b, 3b, 4b, 5b, 5c and 6d have also been characterized by single crystal X-ray analysis. All of these phosphorus-supported compounds exhibit excellent fluorescence properties in aqueous solution at near physiological conditions.  相似文献   

7.
The multifunctional ligands [(Z)-FcCCSC(H)C(H)XR] [X = O, R = Me (2a); X = O, R = Et (2b); X = S, R = Ph (3); X = S, R = C6F5 (5)] and [(Z,Z)-Fc(SR)CC(H)SC(H)C(H)SR] [R = Ph (4), C6F5 (6)] have been prepared through hydroalkoxylation and hydrothiolation processes of the alkyne groups in the compound FcCCSCCH 1. Reactions between compound 3 and the carbonyl metals Co2(CO)8, Os3(CO)10(NCMe)2 and Fe2(CO)9 have allowed the synthesis of the polynuclear compounds [(Z)-{Co2(CO)6}(μ-η2-FcCCSC(H)C(H)SPh)] 9, [(Z)-Os3(CO)9(μ-CO){μ32-FcCCSC(H)C(H)(SPh)}] 10 and [(Z)-{Fe3(CO)9}[μ33-(CCS)-FcCCSC(H)C(H)(SPh)] 11. All the compounds have been characterized by elemental analysis, 1H and 13C{1H} NMR spectroscopy, mass spectrometry and the crystal structure of compounds [(Z)-FcCCSC(H)C(H)OMe] 2a and [{Co2(CO)6}2(μ-η22-FcCCSCCSiMe3)] 7 have been solved by X ray diffraction analysis.  相似文献   

8.
Reactions of {(Ph3P)AuCC}2CC{CCAu(PPh3)}2 (1b), with Co3(μ-CBr)(μ-dppm)n(CO)9−2n (n = 0, 1) result in complete or partial elimination of AuBr(PPh3) to give the complexes {(OC)9Co33-CCC}2CC{CC-μ3-CCo3(CO)9}2 (3), trans-{(OC)7(μ-dppm)Co33-CCC}(HCC)CC{CCAu(PPh3)}{CC-μ3-CCo3(μ-dppm)(CO)7} (4), {(OC)7(μ-dppm)Co33-CCC}2CC(CCH){CC-μ3-CCo3(μ-dppm)(CO)7} (5) and {(OC)7(μ-dppm)Co33-CCC}2CC{CCAu(PPh3)}{CC-μ3-CCo3(μ-dppm)(CO)7} (6), which have been identified by spectroscopic methods and in the cases of 3, 4 and 5, by single-crystal X-ray diffraction methods.  相似文献   

9.
Reactions of Fe2(CO)9 with Cp(CO)2MnCCHPh (1) and Cp(CO)(PPh3)MnCCHPh (3) gave the heterometallic trimethylenemethane complexes η4-{C[Mn(CO)2Cp](CO)CHPh}Fe(CO)3 (2) and η4-{C[Mn(CO)(PPh3)Cp](CO)CHPh}Fe(CO)3 (4), respectively. The formation of the benzylideneketene [PhHCCCO] fragment included in complexes 2 and 4 occurs via intramolecular coupling of the carbonyl and vinylidene ligands. The structures of 3 and 4 were determined by single crystal XRD methods. The influence of the nature of the L ligands at the Mn atom on the structural and spectroscopic characteristics of η4-{C[Mn(CO)(L)Cp](CO)CHPh}Fe(CO)3 (L = CO (2), PPh3 (4)) is considered. According to the VT 1H and 13C NMR spectra, complex 2 reversibly transforms in solution into μ-η11-vinylidene isomer Cp(CO)2MnFe(μ-CCHPh)(CO)4 (2a), whereas complex 4 containing the PPh3 ligand is not able to a similar transformation.  相似文献   

10.
Reaction of phenylfluorocarbene with 2-cyclohexen-1-one affords cyclopropane isomers 2a and 2b via CC addition, as well as the fluoroketone isomers 1a and 1b, apparent rearrangement products of oxiranes 3 formed by carbene addition at CO.  相似文献   

11.
The synthesis of ferrocene-ethynyl phosphine platinum dichloride complexes based on (FcCC)nPh3−nP (1a, n = 1; 1b, n = 2; 1c, n = 3; Fc = ferrocenyl, (η5-C5H5)(η5-C5H4)Fe) is described. Air-oxidation of 1c afforded (FcCC)3PO (6). Treatment of 1a-1c with [(PhCN)2PtCl2] (2) or [(tht)AuCl] (tht = tetrahydrothiophene) (7), respectively, gave the heterometallic transition complexes cis-[((FcCC)nPh3−nP)2PtCl2] (3a, n = 1; 3b, n = 2; 3c, n = 3) or [((FcCC)nPPh3−n)AuCl] (8a, n = 1; 8b, n = 2). Further treatment of these molecules with HCCMc (4a, Mc = Fc; 4b, Mc = Rc = (η5-C5H5)(η5-C5H4)Ru) in the presence of [CuI] produced trans-[((FcCC)Ph2P)2Pt(CCFc)2] (5) (reaction of 3a with 4a) and [(FcCC)nPh3−nPAuCCMc] (n = 1: 9a, Mc = Fc; 9b, Mc = Rc; n = 2: 11a, Mc = Fc; 11b, Mc = Rc) (reaction of 4a, 4b with 8a, 8b), respectively.The structures of 3a, 5, 6, 8, 9a, and 9b in the solid state were established by single-crystal X-ray structure analysis. The main characteristic features of these molecules are the linear phosphorus-gold-acetylide arrangements, the tetra-coordination at phosphorus and the square-planar surrounding at platinum.The electrochemical and spectro-electrochemical behavior of complexes 5, 8a, 9a, 9b and [(Ph3P)AuCCFc] was investigated in the UV/Vis/NIR. Near IR bands that are likely associated with charge transfer from the ((FcCC)Ph2P)2Pt or the ((FcCC)nPh3−nP)Au (n = 0, 1) moieties appear upon oxidation of the σ-bonded ferrocene-ethynyl groups. These bands undergo a (stepwise) blue shift as ferrocene-ethynyl substituents on the phosphine coligands are oxidized.  相似文献   

12.
The diruthenium μ-allenyl complex [Ru2(CO)(NCMe)(μ-CO){μ-η12-C(H)CC(Me)(Ph)}(Cp)2][BF4], 3b, reacts with halide anions to yield the neutral derivatives [Ru2(CO)2(X){μ-η12-C(H)CC(Me)(Ph)}(Cp)2] [X = Cl, 4b; X = Br, 4c; X = I, 4d]. Complex 4b undergoes isomerization to the unprecedented bridging vinyl-chlorocarbene species [Ru2(CO)(μ-CO){μ-η13- C(Cl)C(H)C(Me)(Ph)}(Cp)2], 10, upon filtration of a CH2Cl2 solution through an alumina column.Complex 3b reacts with an excess of NaBH4 to give five products: the allene complex [Ru2(CO)2{μ-η22- CH2CC(Me)(Ph)}(Cp)2], 5; the hydride species trans-[Ru2(CO)2(μ-H){μ-η12-CHCC(Me)(Ph)}(Cp)2], 6, and cis-[Ru2(CO)2(μ-H){μ-η12-CHCC(Me)(Ph)}(Cp)2], 8; the vinyl-alkylidene [Ru2(CO)(μ-CO){μ-η13- C(H)C(H)C(Me)(Ph)}(Cp)2], 9; and the cluster [Ru3(CO)3(μ-H)3(Cp)3], 7.Studies on the thermal stabilities of 5, 6, 8 and 9 have suggested a plausible mechanism for the formation of these complexes and for the synthesis of 10.  相似文献   

13.
Treatment of the metal carbonylate anions [CpMo(CO)2(L)] (Cp = η-C5H5; L = PPh2Me, PPh2Et) with the electrophilic alkynes methyl propiolate or DMAD (RCCCO2Me, where R = H or CO2Me, respectively) followed by protonation affords the η3-acryloyl (1-oxoallyl) complexes [CpMo(η3-COCRCHCO2Me)(CO)(L)] (3a-d) as the major products, together with the isomeric vinyl complexes trans-[CpMo(CRCHCO2Me)(CO)2(L)] (4a-d). On the basis of the regioselectivity of the reaction, it is proposed that nucleophilic attack of the carbonylate anion occurs at the alkyne carbon bearing R; migration of the anionic vinyl ligand to a CO followed by protonation gives 3, whereas protonation without insertion gives 4. The X-ray structures of the acryloyl complex [CpMo(η3-COCHCHCO2Me)(CO)(PPh2Me)] (3b) and its vinyl isomer [CpMo(σ-CHCHCO2Me)(CO)2(PPh2Me)] (4b) have been determined.  相似文献   

14.
Substituent effects on the energies of electronic transitions (ETs) between the triplet excited and ground states of gem-diphenyltrimethylenemethane biradicals (32a) were explored by using thermoluminescence (TL) spectroscopy and density functional theory (DFT) including time-dependent (TD) DFT. Linear free energy (Hammett) analyses of TL energies of a variety of para-substituted aryl derivatives of 32* gave reasonable correlations with the substituent constant, σ. The slope of Hammett plots of the data are nearly identical to one obtained from a similar analysis of the photoluminescence (PL) energies of the structurally-related 1,1-diarylethyl radicals (3*). The results suggest that TL of 32* and PL of 3* derive from a common diarylmethyl radical fluorophore. This interpretation is also supported by the DFT and TDDFT calculated electronic structures and ET energies of 32 and 3. Thermodynamic and kinetic analyses of the charge recombination (CR) process between 2+ and 1, which generates 32*, revealed that substituents not only alter the TL energies but also the TL intensities of 32*. The observations made in this effort demonstrate that 32* as well as 32 and 2+ have greatly twisted molecular geometries and highly localized electronic structures.  相似文献   

15.
The condensation of (butyl)thiocarbene tungsten complex [(OC)5WC(SEt)Bu] (1a) with an α,β-unsaturated secondary acid amide R2CHCHC(O)NHR14 in the presence of POCl3/Et3N gives cyclopentadienimines 12, whereas the isostructural alkoxycarbene complex [(OC)5WC(OEt)Bu] (1c) under similar conditions affords a (N-enamino)ethoxycarbene compound 9. Furthermore, condensation of the (methyl)thiocarbene tungsten complex [(OC)5WC(SEt)Me] (1b) with an amide 4 yields cyclopentenimines 19 and allenylidene complexes 20, whereas the corresponding ethoxycarbene complex [(OC)5WC(OEt)CH3] (1d) forms 4-NH-amino-1-tungsta-1,3,5-hexatrienes 16 under similar conditions.  相似文献   

16.
Reactions between 1,2-dichlorohexafluorocyclopentene and Ru(CCH)(dppe)Cp∗ or Ru(CCCCLi)(dppe)Cp∗ have given Ru(CC-c-C5F6Cl-2)(dppe)Cp∗ 4 and Ru(CCCC-c-C5F6Cl-2)(dppe)Cp∗ 7, respectively. Ready hydrolysis of 4 to the ketone Ru{CC[c-C5F4Cl(O)]}(dppe)Cp∗ 5 occurs, which can be converted to Ru{CC(c-C5F4Cl[C(CN)2])}(dppe)Cp∗ 6 by treatment with CH2(CN)2/basic alumina. Spectroscopic, electrochemical and XRD structural studies for 4-7 are reported: for 6, these suggest that the cyanated fluorocarbon ligand is a very powerful electron-withdrawing group.  相似文献   

17.
The Pd(0)/Cu(I)-catalysed reactions between Co33-CBr) (CO)9 and W(CCCCH)(CO)3Cp gives the C5 complex {Cp(OC)3W}CCCCC{Co3(CO)9} (2). Similarly, Co33-CBr)(μ-dppm)(CO)7 and W(CCCCH)(CO)3Cp or Ru(CCCCH)(dppe)Cp* give {Cp(OC)3W}CCCCC{Co3(μ-dppm)(CO)7} and {Cp*(dppe)Ru}CCCCC{Co3(μ-dppmn)(CO)7} (5). An attempt to prepare a C3 analogue from Ru(CCH)(PPh3)2Cp and Co33-CBr)(CO)9 gave instead the acyl derivative {Cp(Ph3P)2Ru}CCC(O)C{Co3(CO)8(PPh3)} (7). The X-ray structures of 2, 5 and 7 are reported: the C5 chains in 2 and 5 have an essentially unperturbed -CC-CC-C formulation.  相似文献   

18.
The synthesis of the new complexes Cp*(dppe)FeCC2,5-C4H2SR (Cp* = 1,2,3,4,5-pentamethylcyclopentadienyl; dppe = 1,2-bis(diphenylphosphino)ethane; 2a, R = CCH; 2b, R = CCSi(CH3)3; 2c, R = CCSi(CH(CH3)2)3; 3a, R = CC2,5-C4H2SCCH; 3c, R = CC2,5-C4H2SCCSi(CH(CH3)2)3) is described. The 13C NMR and FTIR spectroscopic data indicate that the π-back donation from the metal to the carbon rich ligand increases with the size of the organic π-electron systems. The new complexes were also analyzed by CV and the chemical oxidation of 2a and 3c was carried out using 1 equiv of [Cp2Fe][PF6]. The corresponding complexes 2a[PF6] and 3c[PF6] are thermally stable, but 2a[PF6] was too reactive to be isolated as a pure compound. The spectroscopic data revealed that the coordination of large organic π-electron systems to the iron nucleus produces only a weak increase of the carbon character of the SOMO for these new organoiron(III) derivatives.  相似文献   

19.
The syntheses of several diynylgold(I) phosphine complexes, including Au(CCCCH){P(tol)3} (1), Au(CCCCSiMe3)(PR3) (R = Ph 2-Ph, tol 2-tol), Au(CCCCFc)(PPh3) (3), {(tol)3P}Au(CC)nAu{P(tol)3} [n = 2 (4), 3 (6), 4 (7)], {(Ph3P)Au}CCCC{Au[P(tol)3]} (5), [ppn][Au{CCCCAu[P(tol)3]}2] (8), [Au2(μ-I)(μ-dppm)2][Au(CCCCSiMe3)2] (9), Hg{CCCCAu(PR3)}2 (R = Ph 10-Ph, tol 10-tol) and {(triphos)Cu}CCCC{Au[P(tol)3]} (11) are described. Of these, the X-ray molecular structures of 1, 2-tol, 3, 4 and 9 have been determined.  相似文献   

20.
Heterocyclic carbene complexes are accessible from π-donor-substituted allenylidene complexes, [(CO)5CrCCC(NMe2)Ph] (1) and [(CO)5CrCCC(O-endo-Bornyl)OEt] (4), and various dinucleophiles by 1,2,3-diheterocyclization. The reaction of 1 with 1,2-dimethylhydrazine gives the 1,2-dimethylpyrazolylidene complex (2) in high yield in addition to small amounts of the α,β-unsaturated carbene complex [(CO)5CrC(NMe2)-C(H)C(NMe2)Ph] (3). The analogous reaction of 4 with 1,2-dimethylhydrazine affords the 1,2-dimethylpyrazolylidene complex (5) and, via displacement of the Cγ-bound ethoxy substituent, the hydrazinoallenylidene complex [(CO)5CrCCC(O-endo-Bornyl){NMe-N(H)Me}] (6). Treatment of 6 with catalytic amounts of acids induces cyclization to 5. On addition of 1,1-dimethylhydrazine to 1 the zwitterionic pyrazolium-5-ylidene complex (7) is formed. The reaction of 1 with 1,2-diaminocyclohexane affords a octahydro-benzo[1,4]diazepinylidene complex (10) and, via intermolecular substitution, a binuclear bisallenylidene complex (11). Thiazepinylidene complexes (12-14), containing 7-membered N/S-heterocyclic carbene ligands, are formed highly selectively in the reaction of 1 with 2-aminoethanethiol or related cysteine derivatives by a substitution/cyclization sequence. The analogous reaction of 1 with homocysteine methylester yields a thiazocanylidene complex (15). All new heterocyclic carbene ligands are strong donors exhibiting σ-donor/π-acceptor ratios similar to those of the known imidazolylidene complexes. On photolysis of 2 and 12 in the presence of triphenylphosphine, the corresponding cis-carbene tetracarbonyl triphenylphosphine complexes (16 and 17) are formed. The solid state structure of complexes 2, 7, 14, 15, and 16 is established by X-ray structural analysis.  相似文献   

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