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1.
Reaction of [1-{Me3SiNH}-2-{Me3SiNHCH2}]C6H4 (1) and [1-{tBuMe2SiNH}-2-{tBuMe2SiNHCH2}]C6H4 (2) in tetrahydrofuran with two equivalents of n-butyllithium gave the lithium amides [1-{Me3SiN(Li)}-2-{Me3SiN(Li)CH2}]C6H4(thf)3 (3) and [1-{tBuMe2SiN(Li)}-2-{tBuMe2SiN(Li)CH2}]C6H4(thf)2 (4). The molecular structures of both 3 and 4, which were established by X-ray diffraction studies, differ in the number of thf molecules coordinated to the Li centres. Depending on the size of the amidomethyl-bonded silyl groups two (4) or three thf-coligands (3) were found to bind to the lithium centres rendering them tri- or tetracoordinate, respectively. In the Me3Si-substituted derivative 3 a rare example of a thf molecule as a bridging ligand was found which appears to pertain as such in solution. The reaction of the lithium amides 3 and 4 with two molar equivalents of TlCl in n-pentane gave the thallium(I) amides [1-{Me3SiN(Tl)}-2-{Me3SiN(Tl)CH2}]C6H4 (5) and [1-{tBuMe2SiN(Tl)}-2-{tBuMe2SiN(Tl)CH2}]C6H4 (6) which are stable in hydrocarbon solutions but rapidly decompose in polar solvents.  相似文献   

2.
The reactions of either [RhCl(C8H14)2]2 (2) or [RhCl(C2H4)2]2 (3) with Schiff-bases 1a-d derived from 2-aminopyridine afford, in the presence of four equivalents of PiPr3, the octahedral chloro(hydrido)rhodium(III) complexes [{(C5H4N)NC(C6H4R)}RhHCl(PiPr3)2] (4a-d) in which the metalated Schiff-base behaves as a chelating ligand. Treatment of 4a (RH) with NaI and CF3SO3Tl produce the corresponding derivatives [{(C5H4N)NC(C6H5)}RhHX(PiPr3)2] (5, 6) by salt metathesis. The triflato compound 6 reacts with nBu4NF · xH2O to give [{(C5H4N)NC(C6H5)}RhHF(PiPr3)2] (7). While attempts to eliminate HCl from 4a failed, the reaction of 4a with AgPF6 generates the five-coordinate cationic complex [{(C5H4N)NC(C6H5)}RhH(PiPr3)2]PF6 (8) which adds one equivalent of acetonitrile to give [{(C5H4N)NC(C6H5)}RhH(NCCH3)(PiPr3)2]PF6 (9). Treatment of 4a with either nBu2Mg or LiAlH4 affords the dihydridorhodium(III) compound [{(C5H4N)NC(C6H5)}RhH2(PiPr3)2] (10) being also accessible from 8 and nBu2Mg.  相似文献   

3.
A cyclopentadiene compound having methyl substituents on 1,3-positions, 1,3-Me2-2-CH2(OTHP)-C5H3 (3) is prepared from 2-bromo-3-methyl-2-cyclopenten-1-one ethylene ketal (1) in 48% overall yield. Addition of 2.5 equivalents of indenyllithium to 3 affords a methylene bridged 1,3-dimethylcyclopentadienyl indenyl compound, CH2(1,3-Me2C5H3)(C9H7) (5) in 72% yield. Reaction of dilithium salt of 5 with ZrCl2(NMe2)2 (DME) furnishes an ansa-zirconocene complex [CH2(1,3-Me2C5H2)(C9H6)]Zr(NMe2)2 (6), which is transformed cleanly to the dichloride complex, [CH2(1,3-Me2C5H2)(C9H6)]ZrCl2 (7), by treatment of Me3SiCl. Hydrogenation of 7 over PtO2 gives a tetrahydroindenyl complex [CH2(1,3-Me2C5H2)(C9H10)]ZrCl2 (8). Reaction of the dilithium salt of 5 with Ti(NMe2)2Cl2 does not provide the desired ansa-titanocene complex, but a dinuclear complex [(1,3-Me2C5H2)Ti(NMe2)2Cl]-CH2-[(C9H6)Ti(NMe2)Cl] (9) is obtained. The solid structures of 6 and 9 were determined by X-ray crystallography. The ethylene and ethylene/norbornene (co)polymerizations were studied with 7/MAO and 8/MAO.  相似文献   

4.
Reactions of the electron-deficient triosmium cluster [Os3(CO)932-C9H6N)(μ-H)] (1) with various alkynes are described. Cluster 1 readily reacts with the activated alkyne dimethyl acetylenedicarboxylate (dmad) upon mild heating (65-70 °C) to give the adduct [Os3(CO)9(μ-C9H6N)(μ3-MeO2CCCHCO2Me)] (2). In contrast, a similar reaction of 1 with diphenylacetylene affords previously reported compounds [Os3(CO)10(μ-η2-C9H6N)(μ-H)] (3), [Os3(CO)9(μ-C4Ph4)] (4) and [Os3(CO)83-C(C6H4)C3Ph3}(μ-H)] (5) while with 2-butyne gives only the known compound [Os3(CO)7(μ-C4Me4)(μ3-C2Me2)] (6). The new cluster 2 has been characterized by a combination of spectroscopic data and single crystal X-ray diffraction analysis.  相似文献   

5.
Treatment of 2,6-bis[(dimethylamino)methyl]-4-methylphenol (1) with [Pd(PhCN)2Cl2] in a 1:1 molar ratio gives the mononuclear Pd(II) complex [PdCl2(OC6H2(CH2NMe2)-2-Me-4-(CH2NHMe2)-6)] (2) containing one ligand with an ammonium hydrogen atom, which forms a bifurcated hydrogen bonding to the phenoxy oxygen and the chlorine atoms, as shown by the single crystal X-ray diffraction study. The reaction between the lithium salt of 1 and [Pd(COD)Cl2] gives the mononuclear Pd(II) complex [Pd(OC6H2(CH2NMe2)2-2,6-Me-4)2] (3). The X-ray structure of 3 showed the presence of two ligands coordinated to one palladium metal center in a trans fashion with two dangling dimethylamine groups. The yield of the complex 3 was improved by carrying out the reaction between [Pd(OAc)2] and 1 in acetone. The solid state structures of the complexes 2 and 3 were confirmed by 1H, 13C, HETCOR NMR, IR and elemental analysis methods. The 1H NMR spectra of 2 and 3 showed two different chemical shifts corresponding to the coordinated and uncoordinated amine groups of the ligand. No decoalescence of signals for the chelate ring puckering process was observed in variable-temperature NMR spectra.  相似文献   

6.
Treatment of the ligands 3,5-tBu2-2-(OH)C6H2CHNR [R = 2-(CO2H)C6H4 (1a) and 2-(CO2H)C10H6 (1b)] with trimethylborate, B(OMe)3, in toluene yields, after work-up, the yellow crystalline complexes {[3,5-tBu2-2-(O)C6H2CHNR]B(OMe)} [R = 2-(CO2)C6H4 (2a) and 2-(CO2)C10H6 (2b)], respectively. Further treatment of these complexes with trifluoromethanesulfonic (triflic) acid, CF3SO3H, followed by recrystallisation from tetrahydrofuran (thf) afforded the triflate salts [{3,5-tBu2-2-(O)C6H2CHNR}B(thf)][CF3SO3] [R = 2-(CO2)C6H4 (3a) and 2-(CO2)C10H6 (3b)]. An electroluminescent device was constructed using 2a, which produced orange-green light with broad emission spectra (maximum brightness of 5 cd/m2 being observed at 13 V). Compounds 1a and 2b·2MeCN have been characterised by single crystal X-ray structure determinations.  相似文献   

7.
The bidentate ligand benzylacetylacetone was used to synthesize the Cu(II) complexes 1 and 2 without and with 4,4-bipyridine ligand, respectively. The complexes were characterized by analytical and spectroscopic studies. The mononuclear complex [Cu(C10H9O2)2] (1) has been synthesized by the reaction of copper acetate with the ligand whereas the tetranuclear complex [Cu4(4,4-bpy)4(C10H9O2)4(C2H3O2)4] (2) has been synthesized by the reaction of copper acetate with the ligand followed by the addition of 4,4-bipyridine. The X-ray analysis shows that the complex 1 has square planar geometry and the complex 2 has square pyramidal geometry around the metal centers. The thermogravimetric studies showed that the complexes undergo decomposition in multiple steps.  相似文献   

8.
Treatment of [Ru3(CO)9{P(C4H3S)3}(μ-dppm)] (1) [dppm = bis(diphenylphosphino)methane] with molecular oxygen in benzene at 60 °C affords oxo-capped [Ru3(CO)63-CO){P(C4H3S)3}(μ-dppm)(μ3-O)] (2), while with elemental sulfur and selenium related chalcogenide-capped clusters [Ru3(CO)63-CO){P(C4H3S)3}(μ-dppm)(μ3-E)] (3, E = S; 5, E = Se) and bis(chalcogenide) clusters [Ru3(CO)6{P(C4H3S)3}(μ-dppm)(μ3-E)2] (4, E = S; 6, E = Se) result. Reaction of 1 with H2S in refluxing THF affords the previously reported [(μ-H)2Ru3(CO)7(μ-dppm)(μ3-S)] (7) together with the new sulfido-capped dihydride [(μ-H)2Ru3(CO)6{P(C4H3S)3}(μ-dppm)(μ3-S)] (8). All new compounds have been characterized by spectroscopic data, and 2 and 8 by single-crystal X-ray diffraction analyses. Oxo-capped 2 consists of a triangular ruthenium framework capped on opposite sides by oxo and carbonyl groups, while 8 consists of a ruthenium triangle by a capping sulfido ligand and two inequivalent bridging hydride ligands.  相似文献   

9.
Short-bite aminobis(phosphonite) containing olefinic functionalities, PhN{P(OC6H3(OMe-o)(C3H5-p))2}2 (1) was synthesized by reacting PhN(PCl2)2 with eugenol in the presence of triethylamine. The ligand 1 acts as a bidentate chelating ligand toward metal complexes [M(CO)4(C5H10NH)2] forming [M(CO)42-PhN{P(OC6H3(OMe-o)(C3H5-p))2}2}] (M = Mo, 2; W, 3). The reaction between 1 and [CpFe(CO)2]2 leads to the cleavage of one of the P-N bonds due to the metal assisted hydrolysis to give a mononuclear complex [CpFe(CO){P(O)(OC6H3(OMe-o)(C3H5-p))2}{PhN(H)(P(OC6H3(OMe-o)(C3H5-p))2)}] (4). Treatment of 1 with gold(I) derivative, [AuCl(SMe2)] resulted in the formation of a dinuclear complex, [(AuCl)2{PhN{P(OC6H3(OMe-o)(C3H5-p))2}2}] (5) with a Au···Au distance of 3.118(2) Å indicating the possibility of aurophilic interactions. An equimolar reaction between 1 and [Ru(η6-p-cymene)Cl2]2 afforded a tri-chloro-bridged bimetallic complex [(η6-p-cymene)Ru(μ-Cl)3Ru{PhN(P(OC6H3(OMe-o)(C3H5-p))2)2}Cl] (6). The crystal structures of 1-3 and 5 were established by single crystal X-ray diffraction studies.  相似文献   

10.
A new dinuclear ruthenium(II) catecholato complex [Cp*Ru(κ262-1,2-O2C6H4)RuCp*] (3; Cp* = η5-C5Me5) has been prepared by the reaction of [Cp*RuCl]4 with 2 equiv. of disodium catecholate in THF. Complex 3 has a dinuclear structure, in which one of the Cp*Ru fragments is κ2-bonded to the two oxygen atoms and the other is η6-bonded to the aromatic ring. Similar treatment of [Cp*RuCl]4 with disodium 2,3-naphthalenediolate affords an analogous κ26-bonded dinuclear complex [Cp*Ru(κ262-2,3-O2C10H6)RuCp*] (4) with selective π-complexation at the oxygen-substituted naphthalene ring. The molecular structure of 4 has been determined by X-ray crystallography. The oxygen-bound ruthenium atoms in complexes 3 and 4 are coordinatively unsaturated and readily uptake 1 equiv. of carbon monoxide to give the corresponding carbonyl adducts [Cp*Ru(CO)(κ262-1,2-O2C6H4)RuCp*] (5) and [Cp*Ru(CO)(κ262-2,3-O2C10H6)RuCp*] (6), respectively.  相似文献   

11.
Aryloxide rhodium(I) complexes Rh(OAr)(PPh3)3 (1a: Ar=C6Cl5, 1b: Ar=C6F5, 1c: Ar=C6H4-NO2-4) react with CO in toluene solutions to produce Vaska-type complexes trans-Rh(OAr)(CO)(PPh3)2 (2a: Ar=C6Cl5, 2b: Ar=C6F5, 2c: Ar=C6H4-NO2-4). Carbonylation of a similar complex with PMe3 ligands, Rh(OC6H4-NO2-4)(PMe3)3 (3c), also forms trans-Rh(OC6H4-NO2-4)(CO)(PMe3)2 (4c). Molecular structures of the complexes are determined by X-ray crystallography and NMR spectroscopy. Complex 1a reacts with CO in the absence of solvent to produce a mixture of 2a and complex A, the latter of which shows the IR and 13C{1H} signals due to the carbonyl ligand at different positions from those of 2a. Addition of Et2O to the above mixture turns it into analytically pure 2a. Carbonylation of 1b and 1c under the solvent-free conditions produces complexes B and C as the respective products of the solid-gas reaction. Recrystallization of B and C turns them into 2b and 2c, respectively. Complex 3c also reacts with CO in the solid state to form a mixture of 4c and complex D, although the latter complex is converted slowly into 4c even in the solid state.  相似文献   

12.
The reaction of sodium cyclopentadienide (NaCp) with pentafluoropyridine gives Na[4-(C5F4N)C5H4] (PyFCpNa, 1) contaminated with starting NaCp from which pure 1 could be extracted with Et2O. Hydrolysis of 1 and subsequent crystallization gives pure Diels-Alder dimer 1,4-bis(tetrafluoro-4-pyridyl)tricyclo[5.2.1.02,6]deca-3,8-diene (2). The reactions of 1 with FeCl2, [MnBr(CO)5], CoBr2, [Ni(NH3)6]Cl2, [TiCl4(THF)2] and [CpTiCl3] cleanly affords the corresponding metallocenes [Fe(PyFCp)2] (3), [(PyFCp)Mn(CO)3] (5), [Co(PyFCp)2] (6), [Ni(PyFCp)2] (8), [(PyFCp)2TiCl2] (9) and [(PyFCp)(Cp)TiCl2] (10), respectively. Tetrafluoro-4-pyridyl-substituted ferrocene 3 and [Fe(PyFCp)(Cp)] (4) can be alternatively prepared by the reaction of the respective lithioferrocenes with C5F5N in THF. Air-oxidation of complex 6 affords the corresponding cobaltocenium salt [Co(PyFCp)2]PF6 (7). All prepared compounds were characterized spectroscopically and by elemental analysis. The crystal structures of 3-7 were determined, revealing extensive arene π?π stacking and C-H?F-C contacts. Electrochemical studies supported with the spectroscopic data of the prepared metallocene complexes evidenced strong electron-withdrawing nature of the tetrafluoro-4-pyridyl substituent.  相似文献   

13.
Trityl borate salts [4-RPyCPh3][B(C6F5)4] (R = H 1, tBu 2, Et 3, NMe24) and [R3PCPh3][B(C6F5)4] (R = Me 5, nBu 6, Ph[1] 7, p-MeC6H48) are readily prepared via equimolar reaction of the appropriate pyridine or phosphine and trityl borate [CPh3][B(C6F5)4]. The analogous reactions of PiPr3 affords the product [(p-iPr3P-C6H4)Ph2CH][B(C6F5)4] (9) while the corresponding reactions of Cy3P and tBu3P gave the cyclohexadienyl derivatives [(p-R3PC6H5)CPh2][B(C6F5)4] (R = Cy 10, tBu 11). X-ray structures of 5 and 9 are reported.  相似文献   

14.
A systematic synthesis and X-ray structural analysis have been made for several manganese derivatives with pyridine-2-methanol as a chelating ligand; neutral Mn(C5NH4-2-CH2OH)2(C6F5CO2)2 (1), trans-[Mn(C5H4N-2-CH2-OH)2{C6F4-1,4-(CO2)2}] (2), cis-[Mn(C5H4N-2-CH2-OH)2{C6F4-1,3-(CO2)2}] (3), {Mn(C5H4N-2-CH2-OH)2(4,4-bipyridine)(ClO4)} (4), and Mn(C5H4N-2-CH2-OH)3(ClO4)2(4,4-azopiridine) (pyridine-2-methanol) (5) are our results. 1 and 5 are monomers, while 2-4 are polymers. An oxidation state of the manganese ion in 1, 2, 3, and 5 is 2+, while that of 4 is suggested to be 3+. The magnetic data of 4 down to 2 K are measured. The length of the linker ligand has been suggested to afford a crucial effect on the dimensionality of the product.  相似文献   

15.
Cyclic and square wave voltammetry (−1500 to 1500 mV) of {Mn[μ-(C6H5)2NC4O3]2[H2O]4}n [manganese(II) diphenylaminosquarate] (1) and [Mn(μ-C6H5C4O3)(C6H5C4O3)(H2O)3]n [manganese(II) phenylsquarate] (2) at a gold disk electrode in dimethylsulfoxide (DMSO) and dimethylformamide (DMF), reveal several couples attributable to both ligand and metal-based redox processes. For the manganese(II) phenylsquarate in DMF, the metal-based peaks are more numerous and readily discernible than in DMSO. In either of the solvents, the ligand-based peaks always occur at more positive or more negative potentials than the metal-based ones. In 1 and 2, Mn(II)/Mn(0), Mn(III)/Mn(II), Mn(IV)/Mn(III) and Mn(V)/Mn(IV) couples are observed. However, the manganese redox peaks appear at more negative potentials in 1.  相似文献   

16.
The germanium(II) aryloxide complexes (S)-[Ge{O2C20H10-(SiMe2Ph)2-3,3′}{NH3}] (1) and [Ge(OC6H3Ph2-2,6)2] (2) react with either ButI or MeI to yield the corresponding germanium(IV) compounds (S)-[Ge{O2C20H10-(SiMe2Ph)2-3,3′}{But}{I}] (3), (S)-[Ge{O2C20H10-(SiMe2Ph)2-3,3′}{Me}{I}] (4), [Ge(OC6H3Ph2-2,6)2(But)(I)] (5), and [Ge(OC6H3Ph2-2,6)2(Me)(I)] (6). Compound 6 reacts with 2,6-diphenylphenol to yield [Ge(OC6H3Ph2-2,6)3(Me)] (7), while 3-5 do not. The X-ray crystal structures of 3-5 and 7 were determined, and 3-5 represent the first structurally characterized germanium(IV) species having germanium bound to both oxygen and iodine.  相似文献   

17.
The formate copper(I) complex [(P(C6H2CH2NMe2-2)3)CuO2CH] (3) is accessible by the reaction of equimolar amounts of P(C6H2CH2NMe2-2)3 (1) with [CuO2CH] (2). When 3 is treated with HO2CH (4) or HO2CMe (6), molecules [(P(C6H2CH2NMe2-2)3)CuO2CH · 2HO2CH] (5) and [(P(C6H2CH2NMe2-2)3)CuO2CH · HO2CMe] (7), respectively, are formed.In 3, 5, and 7 the phosphane unit is acting as a tripodal PN2 ligand as it could be shown by 1H NMR spectroscopy. IR studies showed that the formate building block in 3 and in its solvated form in 5 and 7 is σ-bonded by one oxygen atom to Cu(I). The thermal decomposition behavior of 3 is discussed.The solid state structure of 5 is reported. The crystal structure consists of two chemical identical crystallographic independent molecules. In 5 a four-coordinated copper(I) ion is present with the P(C6H4CH2NMe2-2)3 ligand occupying three of the coordination sites, while the 4th site is occupied by the formate anion. One of the two formic acid molecules in 5 is thereby hydrogen-bonded to the CuO2CH entity, while the second HCO2H molecule forms a N?H hydrogen bridge with the non-coordinating ortho-substituent Me2NCH2.  相似文献   

18.
The new pyridine-based NNN tridentate ligand 2,6-C5H3N(CMe2NH2)2 (1) was synthesized by the treatment of 2,6-pyridinedicarbonitrile with an excess of the organocerium reagent in situ generated from CeCl3 and methyllithium in THF. The reaction of 1 with [RuCl2(PPh3)3] in THF at ambient conditions afforded (OC-6-23)-[RuCl{2,6-C5H3N(CMe2NH2)2}(PPh3)2]Cl (2). The corresponding dimethyl sulfoxide complex [RuCl{2,6-C5H3N(CMe2NH2)2}{S(O)Me2}2]Cl (3) was isolated as a mixture of the (OC-6-23) and (OC-6-32) stereoisomers 3a and 3b from the reaction between 1 and (OC-6-22)-[RuCl2{S(O)Me2}3(OSMe2)] in toluene at 80 °C. A prolonged interaction in toluene at reflux temperature gave isomerically pure 3a. The metal trichloride hydrates MCl3 · xH2O (M = Ru, Rh, Ir; x ≅ 2-4) produced mer-[RuCl3{2,6-C5H3N(CMe2NH2)2}] (M = Ru: 4; Rh: 5; Ir: 6), when combined with 1 in refluxing ethanol. The crystal structures of the following compounds were determined: ligand 1 and complexes 2-5 as addition compounds 2 · CH2Cl2, 3a · C7H8, 4 · EtOH and .  相似文献   

19.
The silver(I) salts [AgOR] (3a, R = C9H6N; 3b, R = C6H4-2-CHO, 3c, R = C6H4-2-Cl; 3d, R = C6H4-2-CN; 3e, R = C6H4-2-NO2) are accessible by the stoichiometric reaction of [AgNO3] (1) with HOR (2a, R = C9H6N; 2b, R = C6H4-2-CHO; 2c, R = C6H4-2-Cl; 2d, R = C6H4-2-CN; 2e, R = C6H4-2-NO2) in presence of NEt3. Treatment of 3a-3e with PnBu3 (4), P(OMe)3 (5a) or P(OCH2CF3)3 (5b) in the ratios of 1:1 and 1:2, respectively, produced complexes [LmAgOR] (L = PnBu3, = 1: 6a, R = C9H6N; 6b, R = C6H4-2-CHO; 6c, R = C6H4-2-Cl; 6d, R = C6H4-2-CN; 6e, R = C6H4-2-NO2. = 2: 7a, R = C9H4; 7b, R = C6H4-2-CHO; 7c, R = C6H4-2-Cl; 7d, R = C6H4-2-CN; 7e, R = C6H4-2-NO2. L = P(OMe)3, = 1: 8a, R = C6H4-2-CHO; 8b, R = C6H4-2-NO2. = 2: 9, R = C6H4-2-NO2. L = P(OCH2CF3)3, = 1: 10, R = C6H4-2-NO2). Based on TGA, temperature-programmed and in situ molecular beam mass spectrometry metal-organic 7e was applied as CVD precursor in the deposition of silver onto glass substrates. The resulting silver films were characterized by XRD. The SEM image of a film grown from 7e at 350 °C showed a homogeneous surface with grain sizes of 40 nm. The molecular structures of 8b and 10 in the solid state were determined. They are isostructural and are cubane-like structured. Low-temperature 31P{1H} NMR studies showed that the title complexes are dynamic in solution and exchange at room temperature their ligands.  相似文献   

20.
The crystallization of 2,3-dihydro-thieno[3,4-b][1,4] dioxine-5,7-dicarboxylic acid (H2tddc) with divalent transitional metal (Co, Ni, Zn, Cd) or with tervalent lanthanide metal (Sm) and with mixed ligand 4,4′-bipyridine (4,4′-bipy) or 1,10-phenanthroline (1,10-phen) formed six new complexes: [Co(C8H4O6S) · 3H2O] (1), [Co(C8H4O6)(1,10-phen)(H2O)] · H2O (2), [Ni(C8H4O6S)(4,4′-bipy)(H2O)] · 3H2O (3) [Sm(C8H4O6S)(NO3)(H2O)4] · 2H2O (4), [Zn(C8H4O6S)(H2O)3] (5), and [Cd2(C8H4O6S)2(4,4′-bipy)2] (6). The structures of these six crystals have been characterized by single-crystal X-ray diffraction analyses, which revealed that complexes 1, 4, 5 are all one-dimensional chain structures and they self-assemble into three-dimensional super-molecules via the hydrogen bond interactions and π-π stacking interactions, 2 is also a one-dimensional chain structure but still self-assembles into one-dimensional double-chains, the complex 3 has two-dimensional undulating parallelogram grid structure extended along the bc-plane, the crystal of 6 is a 3D threefold interpenetration topology framework with 46638 nodes. The photoluminescent properties of the H2tddc ligand and the six compounds have been measured in the solid state at room temperature. Free ligand has no luminescence, while its complexes 1, 4, and 6 all exhibit intense photoluminescence which implies that these complexes may be excellent candidates for potential photoactive materials.  相似文献   

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