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1.
过渡金属离子与3-氟邻苯二甲酸(H2Fpht)、1,10-邻菲啰啉(phen)通过水热反应得到了5个配合物:[M(Fpht)(phen)(H2O)3]·H2O(M=Ni 1,Co 2),[Cu(Fpht)(phen)(H2O)]·H2O(3),[M(Fpht)(phen)(H2O)]·H2O(M=Zn 4,Cd 5)。通过X-射线单晶衍射分析、元素分析、红外分析、荧光分析以及差热-热重分析对配合物进行了表征。配合物1和2为单核分子,中心离子Ni(Ⅱ)和Co(Ⅱ)与3-氟邻苯二甲酸根的1个氧原子,1,10-邻菲啰啉的2个氮原子以及3个配位水分子的3个氧原子配位,形成六配位的扭曲八面体构型。配合物3为Z字形一维链状结构。中心Cu(Ⅱ)离子与2个3-氟邻苯二甲酸根的2个氧原子,1个1,10-邻菲啰啉的2个氮原子以及水分子的1个氧原子配位,形成四方锥构型。配合物4和5具有相似的一维螺旋结构,中心Zn(Ⅱ)和Cd(Ⅱ)离子与2个3-氟邻苯二甲酸根的3个氧原子、1,10-邻菲啰啉的2个氮原子以及水分子中的1个氧原子配位,形成扭曲的八面体构型。  相似文献   

2.
过渡金属离子与3-氟邻苯二甲酸(H2Fpht)、1,10-邻菲啰啉(phen)通过水热反应得到了5个配合物:[M(Fpht)(phen)(H2O)3]·H2O(M=Ni 1,Co 2),[Cu(Fpht)(phen)(H2O)]·H2O(3),[M(Fpht)(phen)(H2O)]·H2O(M=Zn 4,Cd 5)。通过X-射线单晶衍射分析、元素分析、红外分析、荧光分析以及差热-热重分析对配合物进行了表征。配合物12为单核分子,中心离子Ni(Ⅱ)和Co(Ⅱ)与3-氟邻苯二甲酸根的1个氧原子,1,10-邻菲啰啉的2个氮原子以及3个配位水分子的3个氧原子配位,形成六配位的扭曲八面体构型。配合物3为Z字形一维链状结构。中心Cu(Ⅱ)离子与2个3-氟邻苯二甲酸根的2个氧原子,1个1,10-邻菲啰啉的2个氮原子以及水分子的1个氧原子配位,形成四方锥构型。配合物45具有相似的一维螺旋结构,中心Zn(Ⅱ)和Cd(Ⅱ)离子与2个3-氟邻苯二甲酸根的3个氧原子、1,10-邻菲啰啉的2个氮原子以及水分子中的1个氧原子配位,形成扭曲的八面体构型。  相似文献   

3.
陈晓彤  董彬  崔孟超  王科志  金林培 《化学学报》2007,65(12):1181-1184
比较研究了以C2O42-为共反应物时5个结构相关的Ru(II)配合物[Ru(bpy)2L1]2+, [Ru(bpy)2L2]2+, [Ru(bpy)2L3]2+, [Ru(phen)2L1]2+和[Ru(phen)2L2]2+(其中bpy=2,2′-联吡啶, phen=1,10-邻菲啰啉, L1=4-羧基苯基咪唑[4,5-f][1,10]邻菲啰啉, L2=3-羧基-4-羟基苯基咪唑[4,5-f][1,10]邻菲啰啉, L3=3,4-二羟基苯基咪唑[4,5-f][1,10]邻菲啰啉)的电致化学发光(ECL)性质. 结果表明, 酚羟基的存在能有效地淬灭Ru(II)配合物[Ru(bpy)2L2]2+, [Ru(bpy)2L3]2+和[Ru(phen)2L2]2+的ECL, 其它Ru(II)配合物的ECL量子效率与[Ru(bpy)3]2+相差不大.  相似文献   

4.
铽、镝-3-噻吩乙酸二元、三元配合物的合成及表征   总被引:1,自引:0,他引:1  
合成了四种新型的铽、镝的二元、三元配合物.通过元素分析、EDTA配位滴定分析表明其通式为RETh3·2H2O,RETh3phen(RE=Dy,Tb;Th=3-噻吩乙酸根;phen=1,10邻菲啰啉);对配合物进行了紫外光谱、红外光谱、荧光光谱、热重分析.结果表明,二元配合物在100℃左右失去结晶水,三元配合物具有较好的稳定性;在TbTh3phen中,3-噻吩乙酸和邻菲啰罗啉能很好地将能量传递给Tb3+离子,Tb3+离子546nm绿色荧光发射峰最强.  相似文献   

5.
溶液法合成了铕、铽与1H-苯并三唑-1-乙酸及1,10-邻菲啰啉的稀土配合物。通过元素分析、稀土配位滴定、摩尔电导、红外光谱、紫外光谱等手段对配合物进行了表征。结果表明,配合物的可能组成为Ln(L)3phen(Ln=Eu(III),Tb(III);HL=1H-苯并三唑-1-乙酸,Hbtaa;phen=1,10-邻菲啰啉)。利用荧光光谱、热分析和电化学方法讨论了配合物性质。荧光光谱表明配合物均有较好的发光性能。  相似文献   

6.
以5-甲基-苯并三唑-1-乙酸和1,10-邻菲啰啉为配体,采用溶液法合成了一种铕配合物。通过元素分析、配位滴定、摩尔电导率、红外光谱和紫外光谱对其进行表征。其组成可能为Eu(L)3phen·3.5H2O(HL=5-甲基-苯并三唑-1-乙酸,5-mbtaa;phen=1,10-邻菲啰啉)。使用热分析和荧光光谱研究了配合物的性质。热分析结果显示:铕配合物具有较好的热稳定性。荧光光谱显示:该配合物发出Eu(Ⅲ)特征荧光,并且5-甲基-苯并三唑-1-乙酸是较好的敏化剂。  相似文献   

7.
采用水热法合成了单核锰配合物[Mn(H2L)(phen)2(H2O)](1, H2L2-=4,5-二羟基苯-1,3-二磺酸根离子,phen=1,10-邻菲罗啉),其结构和性能经X-射线单晶衍射、红外光谱、荧光光谱、元素分析和热重分析表征。研究表明,配合物中锰离子是六配位的,与两个phen配体的四个氮原子配位以及水分子和磺酸基氧原子配位,形成扭曲的八面体配位构型。1的荧光发射峰与配体相比发生了蓝移,最大发射峰位于390 nm。  相似文献   

8.
合成了铜(Ⅱ)的手性单核配合物[Cu(OPSer)(phen)(H2O)]·3H2O(1)(H2OPSer=L-O-磷酸丝氨酸;phen=1,10-邻菲啰啉)。通过元素分析、红外光谱、热重分析和磁性对配合物进行表征,并利用单晶X-射线衍射法测定其结构。铜(Ⅱ)具有变形四方锥的配位环境,分别与1个L-O-磷酸丝氨酸离子的1个氮原子和氧原子、1个1,10-邻菲啰啉分子的2个氮原子以及1个配位水分子的氧原子配位。配合物每个分子单元通过氢键连接成三维超分子结构,分子间存在π-π堆积作用。在1.8~300 K范围内磁性测定表明:配合物1中存在铁磁耦合相互作用,经理论拟合:g=2.07,zJ′=0.044。  相似文献   

9.
用水热法合成了两种新的配合物[Cd2(e,e-trans-chdc)2(bipy)2(H2O)2].H2O(1)和[Mn2(e,a-cis-chdc)2(phen)2(H2O)2].2H2O(2)(chdc=1,2-环己二羧酸,bipy=2,2′-联吡啶和phen=1,10-邻菲咯啉),用X-射线单晶衍射分析确定了配合物的晶体结构。配合物1和2均为双核分子。配合物1中,2个镉髤离子由2个1,2-环己二羧酸根以e,e-trans配位方式桥联,每个镉髤离子与1个2,2′-联吡啶的2个氮原子、2个1,2-环己二羧酸根的4个氧原子及1个水分子中的氧原子配位,形成了单帽变形三棱柱构型。配合物2中,2个锰髤离子由2个1,2-环己二羧酸根以e,a-cis配位方式桥联,每个锰髤离子与1个1,10-邻菲咯啉的2个氮原子、2个1,2-环己二羧酸根的3个氧原子及1个水分子中的氧原子配位,形成了畸变的八面体构型。配合物1和2分子之间都存在π-π堆积和O-H…O、C-H…O弱作用,进而将双核分子连接成三维超分子网络结构。配合物的荧光均来自于配体的荧光。  相似文献   

10.
合成了1,10-菲哆啉-1-氧化物(PhenNO)的稀土配合物RE2(PhenNO)6(Ac)2(ClO4)4·3H2O(RE=Eu,Gd,Tb,Ho,Er,Yb;Ac=乙酸根),经元素分析确定了配合物的组成,探讨了配合物的组成和结构对荧光性质的影响.  相似文献   

11.
Six new coordination complexes, [Cd(η 2-OOCCH=(CH3)CFc)2(bix)]2·(CH3OH)0.5 (1), [Zn(η 2-OOCCH=(CH3)CFc)(η 1-OOCCH=(CH3)CFc)(bix)]2·(H2O)0.5 (2), [Zn(η 2-OOCCH=(CH3)CFc)2(pbbm)]2·(CH3OH)2 (3), {[Mn(η 1-OOCCH=(CH3)CFc)2(bbbm)(H2O)2]·(CH3OH)3}n (4), {[Cd(η 1-OOCCH=(CH3)CFc)2(bbbm)]·(CH3OH)2}n (5), and [Cd(η 2-OOCCH=(CH3)CFc)2(pmbbm)]n (6) {Fc?=?(η 5-C5H4)Fe(η 5-C5H4), bix?=?1,4[bis(imidazol-1-ylmethyl)benzene], pbbm?=?1,1′-[(1,4-propanediyl)bis-1H-benzimidazole], bbbm?=?1,1′-[(1,4-butanediyl)bis-1H-benzimidazole)], pmbbm?=?1,1′-[(1,4-pentanediyl)bis-1H-benzimidazole]}, were prepared and characterized. X-ray crystallographic analysis reveals that 1–3 are dimers bridged by bix and pbbm. Complexes 4–6 are one-dimensional (1-D) structures bridged by bbbm and pmbbm, respectively. Various ππ interactions were discovered in 1–6 that make significant contributions to molecular self-assembly. Solution differential pulse voltammetry of 1–6 indicates that the half-wave potentials of the ferrocenyl moieties in these complexes shift to positive potential compared with that of 3-ferrocenyl-2-crotonic acid.  相似文献   

12.
The intense purple colored bi- and trimetallic complexes {Ti}(CH2SiMe3)[CC(η6-C6H5)Cr(CO)3] (3) ({Ti}=(η5-C5H5)2Ti) and [Ti][CC(η6-C6H5)Cr(CO)3]2 (5) {[Ti]=(η5-C5H4SiMe3)2Ti}, in which next to a Ti(IV) center a Cr(0) atom is present, are accessible by the reaction of Li[CC(η6-C6H5)Cr(CO)3] (2) with {Ti}(CH2SiMe3)Cl (1) or [Ti]Cl2 (4) in a 1:1 or 2:1 molar ratio. The chemical and electrochemical properties of 3, 5, {Ti}(CH2SiMe3)(CCFc) [Fc=(η5-C5H5)Fe(η5-C5H4)] and [Ti][(CC)nMc][(CC)mM′c] [n, m=1, 2; n=m; nm; Mc=(η5-C5H5)Fe(η5-C5H4); M′c=(η5-C5H5)Ru(η5-C5H4); Mc=M′c; Mc≠M′c] will be comparatively discussed.  相似文献   

13.
Treatment of the η1-acetylide complex [(η5-C5H5)(CO)(NO)W---CC---C(CH3)3]Li (4) with 1,2-diiodoethane in THF at −78 °C, followed by the addition of Li---CC---R [R=C(CH3)3, C6H5, Si(CH3)3, 6a6c] or n-C4H9Li and protonation with H2O, afforded the corresponding oxametallacyclopentadienyl complexes (η5-C5H5)W(I)(NO)[η2-O=C(CC---R)CH=CC(CH3)3] (7a7c), 8c and (η5-C5H5)W(I)(NO)[η2-O=C(n-C4H9)CH=CC(CH3)3] (9). The formation of these metallafuran derivatives is rationalized by the electrophilic attack of 1,2-diiodoethane onto the metal center of 4 to form first the neutral complex [(η5-C5H5)(I)(CO)(NO)W---CC---C(CH3)3] (5). Subsequent nucleophilic addition of Li---CC---R 6a6c or n-C4H9Li and a reductive elimination step followed by protonation leads to the products 7a7c and 9. One reaction intermediate could be trapped with CF3SO3CH3 and characterized by a crystal structure analysis. The identity of another intermediate was established by infrared spectroscopic data. The oxametallacyclopentadienyl complex 10 forms in the presence of excess 1,2-diiodoethane through an alternative pathway and crystallizes as a clathrate containing iodine.  相似文献   

14.
(π-Cyclopentenyl)(π-cyclopentadienyl)nickel, (h5-C5H5)Ni(h3-C5H7), is a novel, highly active, unicomponent catalyst for the conversion of ethylene to n-butenes and n-hexenes at 145–150° C. At high conversions of ethylene (70–90%), the dimeric product (80–86% yield) contains a high percentage (90–82%) of 1-butene. Experimental evidence is presented which strongly indicates that the cyclopentadienyl group remains bonded to the nickel during catalysis while the cyclopentenyl group is labile. A possible mode of activation is the reversible elimination of cyclopentadiene from (h5-C5H5)N1(h3-C5H7) to generate π-cyclo pentadienylnickel hydride as a catalytically active intermediate. An improved synthesis of the title compound (70% yield) by direct hydrogenation of nickelocene is also reported.  相似文献   

15.
The syntheses of some substituted cyclooctatetraenecyclopentadienyl-titanium compounds are described, viz: (h8-C8H8)(h5-R)Ti with R = C5H4CH3, C5H4C(CH3)3, C5H4Si(CH3)3, indenyl (= Ind) and fluorenyl (= Flu). The compounds have been prepared by reaction of [(h8-C8H8)TiCl·THF]2 with RNa in ether solution. The paramagnetic compounds are thermally stable to ca. 350°, but they are sensitive to air and water. The IR spectra and dipole moments of the compounds are given. The mass spectra of the complexes (h8-C8H8)(h5-C5H5)Ti, (h8-C8H8)(h5-Ind)Ti and (h8-C8H8)(h5-Flu)Ti indicate weakening of the Tih5R bond-strength in this sequence.  相似文献   

16.
Tricyanmethanide-tris(h5-cyclopentadienyl)uranium (IV): Polymeric Organouranium Systems with an Unusual Coordination of the Uranium (IV)Ion (h5-C5H5)3UCl viz. (h5-C5H4CH3)3UCl react in H2O or THF with K[C(CN)3] to give in good yields the new complexes (h5-C5H5)3U[C(CN)3] and (h5-C5H4CH3)3U[C(CN)3] which turn out surprisingly stable relative to the organometallic starting material. The chemical and spectroscopic properties (IR, NIR/VIS and 1H-NMR spectra) indicate the formation of extended oligomeric structures linked via C(CN)3-bridges involving most probably linear sections: along with a trigonal planar arrangement of the three cyclopentadienyl ring normals.  相似文献   

17.
The synthesis and characterization of novel amidoamine-based metallodendrimers with heterobimetallic end-grafted amidoferrocenyl-palladium-allyl chloride units is described. Dendrimer (Fe((η5-C5H4PPh2)(η5-C5H4))C(O)HNCH2CH2NHC(O)CH2CH2)N[CH2CH2N(CH2CH2C(O)NHCH2CH2NH-C(O)(Fe(η5-C5H4)(η5-C5H4PPh2)))2]2 (9-Fe) and the corresponding metal species (Fe((η5-C5H4PPh2(Pd(η3-C3H5)Cl))(η5-C5H4))C(O)HNCH2CH2NHC(O)CH2CH2)N[CH2CH2N(CH2CH2C(O)NHCH2CH2NHC(O)(Fe(η5-C5H4)(η5-C5H4PPh2(Pd(η3-C3H5)Cl))))2]2 (9-Fe-Pd) were prepared by a consecutive divergent synthesis methodology including addition-amidation cycles, standard peptide coupling, and coordination procedures. For comparative reasons also the monomeric and dimeric molecules (Fe(η5-C5H4PPh2)(η5-C5H4C(O)NHnC3H7)) (5-Fe) and [Fe(η5-C5H4PPh2)(η5-C5H4C(O)NHCH2)]2 (6-Fe) as well as N(CH2CH2C(O)NHCH2CH2NHC(O)(Fe(η5-C5H4)(η5-C5H4PPh2)))3 (7-Fe) and [CH2N(CH2CH2C(O)NHCH2CH2NHC(O)(Fe(η5-C5H4)(η5-C5H4PPh2)))2]2 (8-Fe) were prepared from Fe(η5-C5H4PPh2)(η5-C5H4CO2H) (3). Using [Pd(η3-C3H5)Cl]2 (4) as palladium source heterobimetallic metallodendrimers (Fe(η5-C5H4PPh2(Pd(η3-C3H5)Cl))(η5-C5H4C(O)NHnC3H7)) (5-Fe-Pd), [Fe(η5-C5H4PPh2(Pd(η3-C3H5)Cl))(η5-C5H4C(O)NHCH2)]2 (6-Fe-Pd), N(CH2CH2C(O)NHCH2CH2NHC(O)(Fe(η5-C5H4)(η5-C5H4PPh2(Pd(η3-C3H5)Cl))))3 (7-Fe-Pd) and [CH2N(CH2CH2C(O)NHCH2CH2NHC(O)(Fe(η5-C5H4)(η5-C5H4PPh2(Pd(η3-C3H5)Cl))))2]2 (8-Fe-Pd) were synthesized. Additionally, seleno-phosphines of 5-Fe-Se and 9-Fe-Se, respectively, were prepared by addition of elemental selenium to 5-Fe or 9-Fe to estimate their σ-donor properties.The palladium-containing amidoamine supports are catalytically active in the Heck-Mizoroki cross-coupling of iodobenzene with tert-butyl acrylate. The catalytic data are compared to those obtained for the appropriate mononuclear and dinuclear compounds 5-Fe-Pd and 6-Fe-Pd. This comparison confirms a positive cooperative effect. The mercury drop test showed that (nano)particles were formed during catalysis, following on heterogeneous carbon-carbon cross-coupling.  相似文献   

18.
The new methylidene trinickel cluster complexes, [RCNi35-C5H53] (R  CMe3 or SiMe3) and [Me3SiCNi35-C5H5)2(η5-C5H4CH2SiMe3)] have been isolated in low yield from reactions between nickelocene and the corresponding alkyllithium reagents, RCH2Li. The compounds [RCNi35-C5H5)3] (R  Ph, CMe3 or SiMe3) have also been obtained by treatment of the σ-alkylnickel complexes [(η5-C5H5)Ni(CH2R)(PPh3)] with n-BuLi in the presence of an excess of nickelocene, but under similar conditions [(η5-C5H5)Ni(CH2C1OH7-2)-(PPh3)] (where C1OH7-2  2-naphthyl) failed to give [2-C1OH7CNi35-C5H5)3]. The attempted synthesis of [(η5-C5H5)Ni(CH2CCH)(PPh3)] from [(η5-C5H5)-NiBr(PPh3)] and CHCCH2MgBr gave only [(η5-C5H5)Ni(CCMe)(PPh3)] by an unusual rearrangement reaction.  相似文献   

19.
The heterocycle [(h5-C5H5)NiSP(CH3)2]2 is obtained by treatment of (h5-C5H5)2Ni with (CH3)2HPS in toluene and crystallizes monoclinic in the space group P21/c with Z = 2. The highly reactive three-membered ring (h5-C5H5)NiSP(CH3)2 which is a dissociation product of [(h5-C5H5)NiSP(CH3)2]2, can be trapped with bis(methoxycarbonyl)acetylene to give the PS containing nickelacyclopentadiene (h5-C5H5)NiSP(CH3)2CRCR (R  CO2CH3).  相似文献   

20.
The reaction of (η5-C5H5)W(CO)2(NO), 6W, with P(CH3)3 proceeds rapidly at 25°C to give (η5-C5H5)W(CO)(NO)[P(CH3)3], 7W. The rate of formation of 7W was found to be 4.48 × 10?2M?1 [6W] [P(CH3)3] at 25.0°c in THF. In neat P(CH3)3 at ?23°C, 6W is converted to (η1-C5H5)W(CO)2(NO)[P(CH3)3]2, 8W. In dilute solution, 8W decomposes to initially give a 2:1 mixture of 6W and 7W. The mixture is then converted to 7W. The reaction of (η5-C5H5)Mo(CO)(NO), 6Mo, with P(CH3)3 is 6.1 times faster than that of the tungsten analog.  相似文献   

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