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1.
Preparation of Acetatolead(1V) and Acetatotin(1V) Manganese Pentacarbonyls by Acidolysis of (C6H5)4?n M[Mn(CO)5]n (M ? Sn, Pb; n = 1, 2) with Acetic Acid By acidolysis of (C6H5)4?nM[Mn(CO)5]n (M ? Sn, Pb; n = 1, 2) with acetic acid no M? Mn bonds are broken, but M? C bonds. In this reaction (CH3COO)2M[Mn(CO)5]2 is formed from (C6H5)2M[Mn(CO)5]2, and (CH3COO)3SnMn(CO)5 and (CH3COO)2C6H5PbMn(CO)5 from (C6H5)3MMn-(CO)5. (CH3COO)2C6H5SnMn(CO)5 is prepared from Cl2C6H5SnMn(CO)5 and AgCH3COO. According to IR spectroscopic data the acetato ligands of the diacetato complexes are bidentate, while in (CH3COO)3SnMn(CO)5 bi- and monodentate carboxylate groups are present. For the central atoms Sn and Pb octahedral coordination is proposed.  相似文献   

2.
The anionic [MeSeFe(CO)4] and [MeSeCr(CO)5] complexes were synthesized by reaction of [PPN][HFe(CO)4] and [PPN][HCr(CO)5] with MeSeSeMe respectively via nucleophilic cleavage of the Se-Se bond. The ease of cleavage of the Se-Se bond follows the nucleophilic strength of metal-hydride complexes. Methylation of [RSeCr(CO)5?] by the soft alkylating agent MeI resulted in the formation of neutral (MeSeMe)Cr(CO)5 in THF at 0°C. In contrast, the [ICr(CO)5?] was isolated at ambient temperature. Reaction of [MeSeFe(CO)4?] or [MeSeCr(CO)5?] with HBF4 yielded (CO)3Fc(μ-SeMe)2Fe(CO)3 dimer and anionic [(CO )5Cr (μ-SeMe)Cr(CO)5?] respectively, and no neutral (HSeMe)Fe(CO)4 and (HSeMe)Cr(CO)5 were detected spectrally (IR) even at low temperature. Reaction of NOBF4 or [Ph3C][BF4] and [MeSeCr(CO)5?] resulted in the neutral monodentate (MeSeSeMe)Cr(CO)5 complex. Addition of 1 equiv CpFe(CO)2I to 2 equiv [MeSeCr(CO)5?] gave CpFe(CO)2(SeMe) and the anionic [(CO)5Cr(μ-SeMe)Cr(CO)5?] in THF at ambient temperature.  相似文献   

3.
The new hexaalkylborazine chromium tricarbonyls (n-Pr)3B3N3Me3Cr(CO)3 (V), Me3B3N3(n-Pr)3Cr(CO)3 (VI), (i-Pr)3B3N3Me3Cr(CO)3 (VII) and Me3B3N3(i-Pr)3Cr(CO)3 (VIII) have been prepared from fac-Cr(CO)3(MeCN)3 and the corresponding borazine in dioxane or without solvent. They are much more labile than the isomeric complex Et3B3N3Et3Cr(CO)3 (IV) which can be readily obtained from Et3B3N3Me3Cr(CO)3 and Et3B3N3Et3 by ring ligand exchange. The NMR., IR., UV. and Mass spectroscopic data of the complexes IV–VIII will be briefly discussed. The preparation of the borazine derivatives (n-Pr)3B3N3Me3 (IX) and Me3B3N3(n-Pr)3 (X) is also reported.  相似文献   

4.
Magnesium acetate solvates, Mg(OAc)2 · nL, and their hydrates were prepared by crystallization of Mg(OAc)2 · 4H2O or Mg(OAc)2 from different solvents (L = MeOH, EtOH, HOAc). Anhydrous Mg(OAc)2 was obtained by thermal dehydration of the tetrahydrate at 150 °C. X‐ray single crystal diffraction mostly with the use of synchrotron radiation allowed the structure determination of Mg(OAc)2(H2O)3(EtOH) ( I ), Mg(OAc)2(HOAc)2(H2O)2 ( II ), Mg3(OAc)6(MeOH)6 ( III ), Mg3(OAc)6(HOAc)2(H2O)2 · 2HOAc ( IV ), Mg(OAc)2(HOAc) · 1.8(HOAc) ( V ), Mg(OAc)2 · H2O ( VI ), [Mg3(OAc)6(EtOH)2] · 2EtOH ( VII ), and Mg(OAc)2 ( VIII ). Structural data were discussed in terms of the number of neutral O‐donor ligands per magnesium atom, coordination environment of magnesium atoms, structural functions of acetate groups, and hydrogen bonding systems.  相似文献   

5.
The thermally stable solids Re2(CO)8[μ-InRe(CO)5]2 and Re4(CO)123-InRe(CO)5]4 could be obtained by treatment of In with Re2(CO)10 in a bomb tube. A mechanism of the formation of the latter cluster from the first one is proposed. Compared with Re2(CO)8[μ-InRe(CO)5]2, Re4(CO)123_InRe(CO)5]4 shows in polar solvents an unusual high stability, which can be explained by the higher coordination number of In with rhenium carbonyl ligands. Re4(CO)12-[μ3-InRe(CO)5]4 dissolves monomerically in acetone, where as Re2(CO)8[μ-InRe(CO)5]2 dissociates yielding Re(CO)5? anions. Single-crystal X-ray analyses of Re4(CO)123-InRe(CO)5]4 establish the metal skeleton. The central molecular fragment Re4(CO)12 contains a tetrahedral arrangement of four bonded Re atoms [ReRe 302.8 (5) pm]. The triangles of this fragment are capped with a μ3-InRe(CO)5 group each [InRe(terminal) 273.5 (7) pm; InRe (polyhedral) 281.8 (7) pm]. The bridging type of In atoms with the Re4 tetrahedron and the metal skeleton was realized for the first time. By treating Re4(CO)123-InRe(CO)5]4 with Br2 the existence of Re(CO)5 ligands could be proved by isolating BrRe(CO)5.  相似文献   

6.
Step acid dissociation reactions of benzodiamyloxyl (X) and thiadiazole (Y) porphyrazine (H2PA) derivatives H2PA(X)4, H2PA(X)3(Y), H2PA(X)2(Y)2, H2PA(X)(Y)3, and H2PA(Y)4 were studied theoretically (MP3) and experimentally (spectropotentiometrically) in the H2L-(K[2.2.2])OH-DMSO system for the series H2P (porphin), H2P(μs-Pr)4, H2P(μs-Ph)4, H(N-Me)P(μs-Ph)4, H2TBP (tetrabenzoporphin), H2TBP(μs-Ph)4, H2PA (porphyrazine), H2PA(β-Ph)4, H2PC (phthalocyanine), and H2PC(t-Bt)4. The linear correlation pK a1 298 = 0.32622ΔH°a1(g) ? 94.62 (R = 0.998) was observed for H2PA and its symmetrical derivatives H2PA(β-Ph)4, H2PC, H2PC(t-Bt)4, H2PC(X)4, and H2PC(Y)4. Deviations of the proportionality factors in the pK a1 298 = bH°a1(g) + A dependences from the theoretical value (2.303RT)?1 were explained by medium effects. Substituent effects on pK a1 298 were divided into internal δ(R i)int and external δ(R i)ext (solvation) contributions. The compensation dependences δ(R i)ext = ?0.10911δ(R i)int + 0.13 and δ(R i)ext = ?0.52969δ(R i)int (correlation coefficients 0.998) were observed for simple (H2PA, H2TBP, H2P(μs-Ph)4, and H2P(μs-Pr)4) and complex (H(N-Me)P(Ph)4, H2TBP(μs-Ph)4, H2PA(β-Ph)4,H2PA(Y)4, H2PC, H2PC(t-Bt)4, and H2PC(X)4) porphin derivatives, respectively.  相似文献   

7.
Investigations on Lithiation and Substitution of HP[Si(t-Bu)2]2PH HP[Si(t-Bu)2]2PH 1 is monolithiated by reaction with LiPH2 · DME or LiBu in toluene. The crystalline compound HP[Si(t-Bu)2]2PLi · 2 DME 2 can be isolated in DME. Reaction of 2 with Me2SiCl2 leads to HP[Si(t-Bu)2]2P? SiMe2Cl 4 , ClMe2Si? P[Si(t-Bu)2]2P? SiMe2Cl 5 , HP[Si(t-Bu)2]2P? SiMe2? P[Si(t-Bu)2] 2PH 6 . Isomerization by Li/H migration between 4 and 2 leads to the formation of 5 . Reaction of Li(t-Bu) with 1 or 2 yields LiP[Si(t-Bu)2]2PLi 3 by further lithiation. 3 could not be obtained purely, only in a mixture with 2 . These compounds favourably generate with t-BuPCl2 in hexane Cl(t-Bu)P? P[Si(t-Bu)2]2P? P(t-Bu)Cl 9 , in THF HP[Si(t-Bu)2]2P? P(t-Bu)? P[Si(t-Bu)2]2 PH 12 (main product), 9 , H(t-Bu)P? P[Si(t-Bu)2]2P? P(t-Bu)Cl 10 , H(t-Bu)P? P[Si(t-Bu)2]2P? P(t-Bu)H 11 as well as HP[Si(t-Bu)2]2P? P(t-Bu)H 13 and HP[Si(t-Bu)2]2P? P(t-Bu)2 14 .  相似文献   

8.
Reaction of [Ru2(μ-CO)(CO)4{μ-(RO)2PN(Et)(OR)2}2] (R = Me or Pri) with the protonic acids HCl, HBr, HNO3, H2BO2F, CF3COOH, PhSH/HPF6, and H2CO3/HPF6 produces [Ru2A(CO)5 {μ-(RO)2PN(Et)(OR)2}2]+ and/or [Ru2(μ-A)(CO)4{μ-(RO)2PN(Et)(OR)2}2]+ (A = Cl, Br, ON(O)O, OB(F)OH, OC(CF3)O, SPh, and OC(OH)O) via [Ru2H(CO)5{μ-(RO)2PN(Et)(OR)2}2]+ as intermediate; the structure of [Ru2{μ-OB(F)OH}(CO)4{-(PriO)2PN(Et)P(OPri)2}]+ has been established X-ray crystallographically.  相似文献   

9.
Reactions of Silylphosphines with Sulphur We report about reactions of Me2P? SiMe3 2 , MeP(SiMe3)2 3 , (Me3Si)3P 4 , P2(SiMe3)4 5 , and (Me3Si)3P7 1 with elemental sulphur. Without using a solvent 2 reacts very vigorously. The reactions with 3 and 4 show less reactivity which is even more reduced with 5 and 1 . With equivalent amounts of sulphur the reactions with 2 , 3 , 4 lead to compounds with highest content of sulphur. These compounds are Me3SiS? P(S)Me2 9 from 2 , (Me3SiS)2P(S)Me 13 from 3 and (Me3SiS)3P(S) 16 from 4 . Besides, the by-products (Me3Si)2S 8 , P2Me4 7 , and Me2P(S)? P(S)Me2 11 can be obtained. The reactions of silylphosphines in a pentane solution run much slower so that the formation of intermediates can be observed. Reaction with 2 yields Me3SiS? PMe2 6 and Me2P(S)PMe2 10 , which lead to the final products in a further reaction with sulphur. From 3 (Me3SiS)(Me3Si)PMe 14 and (Me3SiS)2PMe 12 can be obtained which react with sulphur to (Me3SiS)2P(S)Me 13. 4 leads to the intermediates (Me3SiS)(Me3Si)2P 18 , (Me3SiS)2(Me3Si)P 17 , (Me3SiS)3P 15 yielding (Me3SiS)3P(S) 16 with excess sulphur. Depending on the molar ratio (P2SiMe3)4 5 reacts to (Me3Si)2P? P(SSiMe3)(Sime3), (Me3SiS)(Me3Si)P? P(SSiMe3). (Diastereoisomer ratio 10:1), (Me3SiS)2P? P(SiMe3)2 and (Me3SiS)2P? P(SSiMe3)(Sime3). With the molar ratio 1:4 the reaction yields (Me3SiS)2P? P(SSiMe3)2 (main product), (Me3SiS)3P(S) and (Me3SiS)3P. All silylated silylphosphines tend to decompose under formation of (Me3Si)2S. (Me3Si)3P7 reacts with sulphur at 20°C (15 h) under decomposition of the P7-cage and formation of (Me3SiS)3P(S). The products of the reaction of 5 with sulphur in hexane solution (molar ratio more than 1:3) undergo readily further reactions at 60°C under cleavage of P? P bonds and splitting off (Me3Si)2S, leading to (Me3SiS)3P(S) and cage molecules like P4S3, P4S7, and P4S10 and P? S-polymers. (Me3SiS)3P(S) isi thermally unstable and decomposes to P4S10 and (Me3Si)2S. Sulphur-containing silylphosphines like (Me3SiS)P(S)Me2 react with HBr at ?78°C under formation of Me3SiBr (quantitative cleavage of the Si? S bond) and Me2P(S)SH, which reacts with HBr to produce H2S and Me2P(S)Br.  相似文献   

10.
The reactions of Pt(PPH3)4 and Pt(C2H4)(PPh3)2 with CH2ClI have been investigated. The product of the reaction of Pt(PPh3)4 with CH2ClI is the cationic ylide complex cis-[Pt(CH2PPh3)Cl(PPh3)2][I], whereas the reaction of Pt(C2H4)-(PPh3)2 gives the oxidative addition product Pt(CH2Cl)I(PPh3)2. Reaction of cis- or trans-Pt(CH2Cl)I(PPh3)2] with PPh3 gives the complex cis-[Pt(CH2PPh3)-Cl(PPh3)2][I]. The structures of the complexes cis-[Pt(CH2PPh3X(PPh3)2][I] (where X = Cl or I) have been determined by X-ray crystallography. Both complexes crystalize in the monoclinic space group P21/n. For X = Cl a 1388.6(7), b 2026.7(10), c 1823.9(9) pm, β 96.51(2)° and R converged to 0.075 for 3542 observed reflections; structural parameters Pt-Cl 240(1), Pt-C(3) 212(2), Pt-P(2) (trans to Cl) 235(1) and Pt-P(1) (trans to CH2PPh3) 233(1) pm; Cl-Pt-C(3) 86.9(5), C(3)-Pt-P(2) 91.8(5), P(2)-Pt-P(1) 97.0(2) and P(1)-Pt-Cl 85.1(2)°. For X = I, a 1379.4(7), b 2044.4(10), c 1840.0(9) pm, β 96.09(2)° and R converged to 0.071 for 4333 observed reflections; structural parameters Pt-I 266(1), Pt-C(3) 212(2), Pt-P(2) (trans to I) 226(1) and Pt-P(1) (trans to CH2PPh3 233(1) pm; I-Pt-C(3) 87.2(5), C(3)-Pt-P(2) 91.5(5), P(2)-Pt-P(1) 96.5(2) and P(1)-Pt-I 85.6(1)°. Some other complexes of the type cis-[Pt(CH2PPh3)X(PPh3)2]Y are also described.  相似文献   

11.
The reaction of tris(trimethylsilyl)methylboron dihalides (Me3Si)3CBX2 (X = Cl, F) with the lithium phosphides LiPHtBu and LiPHmes leads to the phosphinoboranes (Me3Si)3CBX‐(PHR), (Me3Si)3CB(PHR)2 or the 1,3,2,4‐diphosphadiboretanes [(Me3Si)3CB(PR)]2, depending on the ratio of the reagents, the reaction temperature and concentration. High dilution and low temperatures are required for the synthesis of (Me3Si)3CB(Hal)PHR ( 1–3 ) in order to prevent the formation of (Me3Si)3CB(PHR)2 ( 4 and 5 ). The latter compounds are best prepared in a two step phosphination from (Me3Si)3CBHal2 and LiPHR. At higher temperatures the four‐membered 1,3,2,4‐diphosphadiboretanes [(Me3Si)3CB(PR)]2 6 and 7 are the most stable compounds. On the other hand, compounds of type (Me3Si)3CB(Hal)PR2, 8 and 9 , are thermally more stable than the monophosphinoboranes 1 – 3 . Phosphinoboranes of type (Me3Si)3CB(PR2)2 (R = tBu, mes) could not be prepared. NMR and mass spectral data are in accord with the monomeric nature of compounds 1 to 9 .  相似文献   

12.
The rhodium(I) complexes (Ph3P)2Rh[Me2NC(S)NC(S)NMe2], (Ph3P)2Rh[SC(S)NMe2] and (Ph3P)2Rh[PhNC(S)NMe2] react with O2 to give 1/1 dioxygen adducts. In solution, trans-(Ph3P)2Rh(O2)[Me2NC(S)NC(S)NMe2], cis- and trans-(Ph3P)2Rh(O2)[SC(S)NMe2] and cis- and trans-(Ph3P)2Rh(O2)[PhNC(S)NMe2] are observed. For (Ph3P)2Rh(O2)[PhNC(S)NMe2], there is a solvent effect on the initial cistrans ratio and the rate of O=PPh3 formation. In C6H6, O=PPh3 formation from (Ph3P)2Rh(O2)[PhNC(S)NMe2] is inhibited by additional PPh3.The reaction of (Ph3P)2Rh[Ph2PC(S)NPh] with O2 in the presence of additional PPh3 gives O=PPh3 and cis-(Ph3P)2Rh(O2)[Ph2P(O)C(S)NPh] as the only products. The same complex also can be prepared from (Ph3P)2Rh[Ph2P(O)C(S)NPh] and O2.Only (Ph3P)2Rh[PhNC(S)NMe2] reacts with H2 at room temperature to give (Ph3P)2RhH2[PhNC(S)NMe2], which is a catalyst for cyclohexene hydrogenation.  相似文献   

13.
Four complexes containing the [UO2(oda)2]2− anion (oda is oxydiacetate) are reported, namely dipyridinium dioxidobis(oxydiacetato)uranate(VI), (C5H6N)2[U(C4H4O5)2O2], (I), bis(2‐methylpyridinium) dioxidobis(oxydiacetato)uranate(VI), (C8H8N)2[U(C4H4O5)2O2], (II), bis(3‐methylpyridinium) dioxidobis(oxydiacetato)uranate(VI), (C8H8N)2[U(C4H4O5)2O2], (III), and bis(4‐methylpyridinium) dioxidobis(oxydiacetato)uranate(VI), (C8H8N)2[U(C4H4O5)2O2], (IV). The anions are achiral and are located on a mirror plane in (I) and on inversion centres in (II)–(IV). The four complexes are assembled into three‐dimensional structures via N—H...O and C—H...O interactions. Compounds (III) and (IV) are isomorphous; the [UO2(oda)2]2− anions form a porous matrix which is nearly identical in the two structures, and the cations are located in channels formed in this matrix. Compounds (I) and (II) are very different from (III) and (IV): (I) forms a layered structure, while (II) forms ribbons.  相似文献   

14.
The aza-allyl complex (ketene imine)Fe2(CO)6 (3a) reacts with phosphanes PR3 to give substitution products of the type (ketene imine)Fe2(CO)5PR3 (4a,b). In addition, the phosphane PMe3 yields a ferrole complex (5). Phosphites react with complex 3a to form mono- and di-substitution products (ketene imine)- Fe2(CO)5P(OR)3 (4c,d) and (ketene imine)Fe2(CO)4(P(OR)3)2 (6). Diphosphanes yield substituted complexes of type (ketene imine)Fe2(CO)4(μ-Ph2P PPh2) (7). The structures of (ketene imine)Fe2(CO)5PMe3 (4a), the ferrole complex 5, and (ketene imine)Fe2(CO)4(ν-Ph2PCH2CH2PPh2) (7b) were determined by X-ray analysis.  相似文献   

15.
Inhaltsübersicht. Edukte von Typ M(CO)6 (M = Cr, Mo,W), N,N'-Bis(diphenylphosphino)-2,6-diaminopyridin (PNP) und Trimethylaminoxid setzen sich bei Raumtemperatur nicht zu dem bekannten Verbindungstyp mer-M(CO)3PNP, sondern zu Verbindungen der beiden Typen M(CO)4(PNP=O) mit zweizähnig koordinierten Liganden PNP=O und M(CO)5(NMe3) um. Die zu Vergleichszwecken untersuchte Oxidation eines koordinierten PNP-Liganden von mer-Mo(CO)3(PNP) in Tetramethylbenzollösung ergibt mit Luftsauerstoff bei 180°C eine Reaktion unter Spaltung der P–N-Bindung zur cubanartigen Verbindung Mo43-O)4(μ-Ph2PO2)4O4 (Ausbeute 48%). In einem Glaseinschlußrohr reagiert der ambidente N,N-Bis(diphenyIphosphino)-2-nminopyridin-Ligand (NPP) mit den Hexacarbonylen M(CO)6 in Toluollösung bei 140°C zu Verbindungen des Typs M(CO)4(NPP) mit zweizähniger Verknüpfung des NPP-Liganden. Hierbei bilden die beiden P-Donoratome am Aminstickstoffatom einen MP2N-Chelatvierring an Stelle des ebenfalls möglichen P, Npy-Chelatfünfrings. Der analoge Chelatvierring entsteht gleichfalls bei einer Ligandensubstitutions-reaktion zwischen Verbindungen des Zweikernkomplextyps MM′(CO)8(μ-PPh2)2 (M = M′ = W; M = Mo, M′ = W) bzw. \V(CO)4(μ-PPh2)2IrH(CO)(PPh3) und NPP. Er bildet sich außerdem bei der Thermolyse von Mo(CO)4(NPP) zu Mo2(CO)6(μ-PPh2)2(NPP). Die Identifizierung erfolgt im Falle der Verbindungen Mo(CO)4(PNP=O), Mo43-O)4(μ-Ph2PO2)4O4′ Mo2(CO)6(μ-PPh2)2(NPP) und W(CO)4(μ-PPh2)2IrH(CO)(NPP) durch Einkristall-Röntgenstrukturanalysen. Alle isolierten Produkte werden durch spektroskopische Messungen insbesondere 31P-NMR-Daten charakterisiert. Characterization of Properties of the Rigid Tridentate Chelate Ligand N,N′-Bis(diphenylphosphino)-2,6-diaminopyridine and N,N-Bis(diphenylphosphino)-2-aminopyridine with Transition Metals of the Chromium Group Hexacarbonyls M(CO)6 (M = Cr, Mo, W), N,N′-Bis(diphenylphosphino)-2,6-diaminopyridine (PNP) and trimethylamine oxide gave products of two types M(CO)4(PNP=O) having a bidentate ligand PNP=O and M(CO)5(NMe3) instead of the desired mer-M(CO)3PNP. For the purpose of a comparison, aerial oxidation of mer-Mo(CO)3PNP in tetramethyl benzene solution at 180°C was examined which resulted a P–N bond rupture under formation of the cubane-like product Mo43-O)4(μ-Ph2PO2C4O4){yield 48%). In sealed glass tubes the ambidentate ligand N,N-bis(diphenylphosphino)-2-aminopyridine (NPP) was reacted with the hexacarbonyls M(CO)6 in toluene solution at 140°C to products of the type M(CO)4NPP with NPP as bidentate ligand. Under this reaction conditions the four-membered chelate ring of the type MP2N was formed with the two P donor atoms attached to the amine N atom instead of the possible competitive five-membered chelate ring formation with a P and pyridyl nitrogen. The analogous four-membered chelate ring was formed in ligand substitution reactions between the substance NPP and each of the dinuclear coordination compounds MM′(CO)8(μ-PPh2)2 (M = M′ = W, M = Mo, M′ = W) including W(CO)4(μ-PPh2)2IrH(CO)(PPh3); Mo2(CO)6(μ-PPh2)2(NPP) was obtained via thermolysis of Mo(CO)4(PNP=O). The given structural identification of the compounds Mo(CO)4(PNP=O), Mo43-O)4(μ-Ph2PO2)4O4, Mo2(CO)6 (μ-PPh2)2(NPP) and W(CO)4(μ-PPh2)2IrH(CO) (NPP) was done by single-crystal X-ray analysis. All seperated products have been characterized by means of spectroscopic measurements especially 31P n.m.r. data.  相似文献   

16.
《中国化学会会志》2017,64(4):404-411
The bridged tetracopper(I) complex [{Cu2(μ‐dppm)2}2(μ‐(1,3‐O2CC6H4 (CO2 )2)](BF4 )2 ( 2 (BF4 )2) was prepared. This complex and the neutral dipyridyl compounds (NN ; NN = 4,4′‐bipyridine (bpy), 1,2‐bis(4‐pyridyl)ethane (bpa), 4,4′‐trimethylenedipyridine (tmp)) can form dynamic equilibria in CH2Cl2 . From the equilibrium mixtures containing 2 (BF4 )2 and NN with 2 (BF4 )2/NN = 1:1, different supramolecular compounds were obtained as single crystals, and their structure were determined by X‐ray crystallography. The flexibility of NN is found to be important in determining the outcome of the reactions with a rigid bpy, leading to the formation of the coordination polymer [{Cu2(μ‐dppm)2}2(μ‐1,3‐C6H4 (CO2 )2)(μ‐bpy)] n (BF4 )2n ( 3 (BF4 )2n ), whereas with flexible bpa and tmp direct the formation of the metalacages [{Cu2(μ‐dppm)2}2(μ‐1,3‐C6H4 (CO2 )2)(μ‐NN )](BF4 )2 (NN = bpa, 4 (BF4 )2; tmp, 5 (BF4 )2), respectively, as supported by density functional theory (DFT ) calculation results.  相似文献   

17.
Chemistry of Polyfunctional Molecules. 97. Contributions to the Coordination Chemistry of Lithium-bis(diphenylphosphino)amide, Bis(diphenylphosphino)amine, and Tris(diphenyl-phosphino)amine (Ph2P)2NLi ( 1 ) forms with AuCl(PPh3) the already known complex [Au(Ph2P)2N]2 ( 2 ), which now has been proved by mass spectroscopy to possess the postulated dimeric structure. 2 gives with HCl, HClO4, and HBF4 the new compounds [ClAu(Ph2P)2NH]2 ( 3a ) and [Au(Ph2P)2NH…?X]2 [X = ClO4 ( 3b ), BF4 ( 3c )]. In analogy the neutral complex Fe(C5H5)(CO)(Ph2P)2N ( 5 ) os obtained from FeCl(C5H5)(CO)2 and 1. 5 reacts with HCl to [Fe(C5H5)(CO)(Ph2P)2NH…?Cl] ( 6a ). The last one can also be prepared by direct reaction of FeCl(C5H5)(CO)2 with (Ph2P)2NH ( 4 ). In the same way FeBr(C5H5)(CO)2 reacts with 4 yielding [Fe(C5H5)(CO)(Ph2P)2NH…?Br] ( 6b ), which leads under metathesis with NH4PF6 to [Fe(C5H5)(CO)(Ph2P)2NH]PF6 ( 6c ). With PdCl2(NCPh)2 the ligand 1 forms Pd[(Ph2P)2N]2 ( 7 ), which also can be synthesized in another way, but is now for the first time characterized in a spectroscopically detailed manner. Cr(CO)4(Ph2P)2NPPh2 reacts with AuCl(CO) to Cr(CO)4(Ph2P)2NPPh2AuCl ( 8 ). This compound gives with Cr(CO)4(Ph2P)2NLi the trimetallic complex (OC)4Cr(Ph2P)2NPPh2AuN(PPh2)2Cr(CO)4 ( 9 ). (Ph2P)3N ( 10 ) yields with AuCl(CO) in the molar ratio of 1:3 the compound [ClAuPh2P]3N ( 11 ).  相似文献   

18.
Reaction of the N-(2-pyridyl)carbonylaniline ligand (L) with Cu(NO3)2, Cu(ClO4)2, Zn(ClO4)2, Ni(NO3)2 and PdCl2 gives complexes with stoichiometry [Cu(L)2(H2O)2](NO3)2, [Cu(L)2(H2O)2](ClO4)2, [Zn(L)2(H2O)2] (ClO4)2, [Ni(L)2(H2O)Cl](NO3) and PdLCl2. The new complexes were characterized by elemental analyses and infrared spectra. The crystal structures of [Cu(L)2(H2O)2](NO3)2, [Cu(L)2(H2O)2](ClO4)2, and [Zn(L)2(H2O)2](ClO4)2 were determined by X-ray crystallography. The cation complexes [M(L)2(H2O)2] contain copper(II) and zinc(II) with distorted octahedral geometry with two N-(2-pyridyl)carbonylaniline (L) ligands occupying the equatorial sites. The hexa-coordinated metal atoms are bonded to two pyridinic nitrogens, two carbonyl oxygens and two water molecules occupying the axial sites. Both the coordinated water molecules and uncoordinated amide NH groups of the N-(2-pyridyl)carbonylaniline (L) ligands are involved in hydrogen bonding, resulting in infinite hydrogen-bonded chains running in one and two-dimensions.  相似文献   

19.
宋礼成  张文雄  胡青眉 《中国化学》2002,20(11):1421-1429
IntroductionTherehasbeenrecentresearchinterestincrystalen gineeringandthedesignofsupramoleculararchitectures .1Byselectingthechemicalstructureofligandsandtheco ordinationgeometryoftransitionmetalions ,theorganic/inorganichybridmaterialsmayyieldaseriesofn…  相似文献   

20.
Three structurally different metallasiloxanes were formed from reactions between in situ generated suspensions of Ph2Si(OH)2/BuLi (1∶2) in tetrahydrofuran (THF) with, metal dichlorides MgCl2·2THF, CrCl2, or CoCl2 followed by toluene/Py (Py=pyridine) work-up. The X-ray structures are reported for: [Mg{O(Ph2SiO)2}2]-μ-(LiPy)-μ-{(LiPy)3(OH)(Cl)] (1) incorporating two six-membered magnesiasiloxane rings and an MgLi3O3Cl cubane fragment, [{O(Ph2SiO)2}Co{O(Ph2SiO)3}-μ-(LiPy2)2] (2) with both six-and eight-membered cobaltasiloxane rings and [Cr{O(Ph2SiO)2}2-μ-(LiPy2)2] (3) with two six-membered chromiasiloxane rings. Structure assembly in these cases is apparently dictated by the metal dichloride. The compound [{O(Ph2SiO)2}Mg{O(Ph2SiO)3}-μ-(CoClPy)2]·Py (4) is formed from [{O(Ph2SiO)2}Mg{O(Ph2SiO)3}-μ-(LiPy2)2] and CoCl2 (1∶2).  相似文献   

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