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1.
以羧酸配体 2,2''-(1,4-亚苯基双(亚苯基))双(硫二基)二苯甲酸(H2L1)和 2,2''-(2,3,5,6-四甲基-1,4-亚苯基)双(亚甲基)双(硫二基)二苯甲酸(H2L2)分别与金属盐反应,通过溶剂热方法合成了 3个配位聚合物:{[Ni(L1)(H2O)4]·2H2O}n (1)、[Zn(L1)(DMA)2]n(2)和[Co(L2)(DMF)2]n (3),其中DMA=N,N-二甲基乙酰胺,DMF=N,N-二甲基甲酰胺。对配合物1~3进行了单晶X射线衍射、元素分析、红外光谱、热重分析、粉末X射线衍射和固体紫外可见光谱测试和表征。单晶X射线衍射表明:3个配合物均为一维锯齿形链状结构,并通过氢键作用形成三维骨架,且配体均表现为反式构象。此外,对配合物2固态荧光性质进行了研究。  相似文献   

2.
利用2,2''-(1,4-亚苯基)二(亚苯基)二(硫基)苯二羧酸(H2L1)和2,2''-(2,3,5,6-四甲基-1,4-亚苯基)二(亚甲基)二(硫基)苯二甲酸(H2L2)2个柔性二羧酸分别与镧系金属盐反应,通过溶剂热方法合成了3个配位聚合物:{[(NH2(CH32][Nd(L12(DMF)]·2DMF}n1)和{[Ln(L21.5(H2O)(DMF)2]·2DMF}n[Ln=Ce(2),Pr(3)]。利用元素分析、红外、粉末X射线衍射、热重分析等对配合物进行了表征。X射线单晶衍射分析表明:3个配合物均为二维的层状结构,并且2个配体在配合物中表现出不同的构象。(L12-在配合物1中表现出顺式和反式2种构象,(L22-在配合物23中仅表现出反式构象。此外,对配合物的热稳定性和荧光性质也进行了研究。  相似文献   

3.
利用2,2''-(1,4-亚苯基)二(亚苯基)二(硫基)苯二羧酸(H2L1)和2,2''-(2,3,5,6-四甲基-1,4-亚苯基)二(亚甲基)二(硫基)苯二甲酸(H2L2)2个柔性二羧酸分别与镧系金属盐反应,通过溶剂热方法合成了3个配位聚合物:{[(NH2(CH3)2][Nd(L1)2(DMF)]·2DMF}n(1)和{[Ln(L2)1.5(H2O)(DMF)2]·2DMF}n[Ln=Ce(2),Pr(3)]。利用元素分析、红外、粉末X射线衍射、热重分析等对配合物进行了表征。X射线单晶衍射分析表明:3个配合物均为二维的层状结构,并且2个配体在配合物中表现出不同的构象。(L1)2-在配合物1中表现出顺式和反式2种构象,(L22)2-在配合物23中仅表现出反式构象。此外,对配合物的热稳定性和荧光性质也进行了研究。  相似文献   

4.
采用溶剂热法,以含氮四羧酸3,5-二(3'',5''-二羧苯)-1H-1,2,4-三唑(H4BDT)为配体,成功合成了4种同构镧系金属有机框架(Ln-MOFs):{[La3(BDT)2(HCOO)(H2O)5]·0.5H2O·3DMF}n(1)、{[Ce3(BDT)2(HCOO)(H2O)5]·3DMF}n(2)、{[Pr3(BDT)2(HCOO)(H2O)5]·3DMF}n(3)和{[Nd3(BDT)2(HCOO)(H2O)5]·3DMF}n(4),并采用单晶X射线衍射、粉末X射线衍射、元素分析、热重、傅里叶换红外光谱、N2吸附实验和荧光光谱对其进行表征。结果表明,这些Ln-MOFs均为单斜C2/m空间群晶体,是双核为无机建筑单元的三维介孔结构。其中2可选择性荧光检测Fe3+离子和盐酸环丙沙星药物分子,检测限分别为4.59和0.77 μmol·L-1。  相似文献   

5.
利用水热反应制备了2个配合物{[Ni (HIPA)(2,5-DPBI)1.5(H2O)]·2.25H2O}n1)和[Ni (HIPA)(2,5-DPBMI)(H2O)]n2)(H2HIPA=5-(羟甲基)间苯二甲酸,2,5-DPBI=1,1''-(2,5-二甲基-1,4-亚苯基)双(1H-咪唑),2,5-DPBMI=1,1''-(2,5-二甲基-1,4-亚苯基)双(4-甲基-1H-咪唑))。结构分析揭示在不同咪唑配体存在下,配合物的Ni(Ⅱ)中心具有不同的配位环境。配合物1具有拓扑符号为(42.66.82)的五连接三维框架,而配合物2则是dia型的四连接网络。粉末X射线衍射证实配合物12在有机溶剂和紫外可见光照射的水中均非常稳定。此外,紫外可见吸收谱、Mott-Schottky和电化学阻抗谱(EIS)测试显示配合物12都是典型的n型半导体材料,具有较低的电荷传输阻抗。在光催化实验中,配合物12对染料亚甲基蓝的降解有催化活性。  相似文献   

6.
采用溶剂热法,以含氮四羧酸3,5-二(3′,5′-二羧苯)-1H-1,2,4-三唑(H4BDT)为配体,成功合成了4种同构镧系金属有机框架(Ln-MOFs):{[La3(BDT)2(HCOO)(H2O)5]·0.5H2O·3DMF}n (1)、{[Ce3(BDT)2(HCOO)(H2O)5]·3DMF}n (2)、{[Pr3(BDT)2(HCOO)(H2O)5]·3DMF}n (3)和{[Nd3(BDT)2(HCOO)(H2O)5]·3DMF}n (4),并采用单晶X射线衍射、粉末X射线衍射、元素分析、热重、红外、N2吸附实验和荧光光谱对其进行表征。结果表明,这些Ln-MOFs均为单斜C2/m空间群晶体,是双核为无机建筑单元的三维介孔结构。其中2可选择性荧光检测Fe3+离子和盐酸环丙沙星药物分子,检测限分别为4.59和0.77 μmol·L-1。  相似文献   

7.
在有机溶剂中,通过卤素取代的salamo型双肟配体H2L1(4,4'',6,6''-tetrachloro-2,2''-(ethylenediyldioxybis(nitrilomethylidyne))diphenol),H2L1(5-nitro-4'',6''-dichloro-2,2''-(ethylenedioxybis(azomethine))diphenol)和四水合乙酸锰(Ⅱ)反应,合成了2个锰(Ⅱ)配合物[Mn(L1)(H2O)2](1)和[Mn(L2)(H2O)2]·0.37H2O(2),并通过元素分析、红外光谱、紫外-可见吸收光谱、单晶X射线衍射、荧光光谱和Hirshfeld表面分析对2个锰(Ⅱ)配合物进行了表征。X射线晶体学结果表明2个配合物中的锰(Ⅱ)原子都是六配位的,其中salamo型配体的N2O2占据平面位置,2个配位水分子占据轴向位置,形成了扭曲的八面体几何构型。由于存在较丰富的氢键相互作用,在配合物12中分别形成了无限的一维和二维超分子结构。  相似文献   

8.
采用溶剂热的方法,将配位模式丰富的多羧酸有机配体5-(2-硝基-4-羧基苯氧基)-间苯二甲酸(H3ncpoi)与Cd2+离子以及不同的辅助配体原位组装而成4个新的配位聚合物晶体:[Cd(Hncpoi)(2,2''-bpy)(H2O)]n1),{[Cd2(Hncpoi)2(bpyp)(H2O)4]·3H2O}n2),{[Cd2(Hncpoi)2(azpy)(H2O)2]·2H2O}n3),{[Cd2(Hncpoi)2(dpe)(H2O)2]·2H2O}n4),其中H3ncpoi为5-(2-硝基-4-羧基苯氧基)-间苯二甲酸,2,2''-bpy为2,2''-联吡啶,bpyp为1,4-二-吡啶基-4-亚甲基-哌嗪,azpy为4,4''-偶氮吡啶,dpe为1,2-二-(4-吡啶基)乙烯。对4个配合物进行了X射线单晶衍射、粉末衍射,元素分析、热重、荧光光谱等表征。X射线单晶结构分析表明,配合物1,2具有一维链状结构,而配合物3,4则具有二维(4,4)格子层状结构,一维链和二维层之间通过分子间作用力连接成三维超分子结构。进一步研究表明,辅助配体的构型、配位方式等对晶体结构具有决定性作用。与此同时,对几个配合物的荧光光谱进行分析,发现不同的辅助配体对配合物的荧光性能有着显著的影响。  相似文献   

9.
合成了2个化合物[CoCo4(salhn)4(N36(CH3OH)2(H2O)2]·4CH3OH·2H2O (1)和[Cu2(salhn)(N32]n2)(H2salhn=N,N''-bis (salicylidene) hydrazine),并用X射线单晶衍射进行结构表征。化合物1是一个五核的[CoCo4]钴簇,而化合物2是一个具有结构单元为[Cu2(salhn)(N32]的一维链结构。2个化合物中叠氮均具有end-on (EO,μ-1,1)的配位模式。化合物12的磁学性质测试表明它们都具有反铁磁行为。  相似文献   

10.
通过溶剂热和水热合成的方法制备了2个Cd(Ⅱ)配位聚合物[Cd2(L)(DMF)1.5(H2O)2]n1)和{[Cd(L)0.5(4,4''-bpy)(H2O)]·2H2O}n2)(H4L=5,5''-(己烷-1,6)-双-(氧基)-二-间苯二甲酸)。结构分析表明配合物1是一个(4,4)-连接的sql拓扑网络,拓扑符号为{44·62}2。配合物2是一个(4,4,4)-连接的三重穿插的bbf网络,拓扑符号为(66)(64·82)。配合物12都呈现出较好的热稳定性和荧光性质。  相似文献   

11.
在溶剂热条件下,以不对称三羧酸5-(6-羧酸-2-萘基)-间苯二羧酸(H3L)为配体合成了2个镉的金属-有机骨架化合物:{[Cd3L2(H2O)3]·6DMF}n(1)和{[Cd3L2(H2O)4]·3DMA}n(2)。通过X射线单晶衍射,粉末衍射,热重和红外光谱进行了结构表征。结构分析表明,12形成3,6-连接的三维结构,其拓扑符号分别为:(45.64.86)(43)2和(612.83)(63)2。此外,还对2个化合物进行了荧光分析。  相似文献   

12.
<!?tlsb=-0.04pt>A new PbII coordination polymer, poly[0.75(aqua)[μ3-4,4′-(1H,1′H-[2,2′-biimidazole]-1,1′-diyl)dibenzoato-κ5O,O′;N;O′′,O′′′]]lead(II)] 1.25-hydrate], {[Pb(C20H12N4O4)(H2O)0.75]·1.25H2O}n or {[Pb(L)(H2O)0.75]·1.25H2O}n ( 1 ) [H2L = 4,4′-(1H,1′H-[2,2′-biimidazole]-1,1′-diyl)dibenzoic acid], was synthesized under solvothermal reaction conditions and characterized using microanalysis, IR spectroscopy and thermogravimetric analysis. Single-crystal structure analysis reveals that a two-dimensional corrugated layer structure is formed in 1 and that neighbouring layers are further extended into a three-dimensional structure by hydrogen-bonding interactions. In addition, a fluorescence sensing experiment towards Cu2+ based on the polymeric PbII complex was carried out.  相似文献   

13.
在溶剂热条件下,以不对称三羧酸5-(6-羧酸-2-萘基)-间苯二羧酸(H3L)为配体合成了2个镉的金属-有机骨架化合物:{[Cd3L2(H2O)3]·6DMF}n(1)和{[Cd3L2(H2O)4]·3DMA}n(2)。通过X射线单晶衍射,粉末衍射,热重和红外光谱进行了结构表征。结构分析表明,1和2形成3,6-连接的三维结构,其拓扑符号分别为:(45.64.86)(432和(612.83)(632。此外,还对2个化合物进行了荧光分析。  相似文献   

14.
5‐[(Imidazol‐1‐yl)methyl]benzene‐1,3‐dicarboxylic acid (H2L) was synthesized and the dimethylformamide‐ and dimethylacetamide‐solvated structures of its adducts with CuII, namely catena‐poly[[copper(II)‐bis[μ‐3‐carboxy‐5‐[(imidazol‐1‐yl)methyl]benzoato]] dimethylformamide disolvate], {[Cu(C12H9N2O4)2]·2C3H7NO}n, (I), and catena‐poly[[copper(II)‐bis[μ‐3‐carboxy‐5‐[(imidazol‐1‐yl)methyl]benzoato]] dimethylacetamide disolvate], {[Cu(C12H9N2O4)2]·2C4H9NO}n, (II), the formation of which are associated with mono‐deprotonation of H2L. The two structures are isomorphous and isometric. They consist of one‐dimensional coordination polymers of the organic ligand with CuII in a 2:1 ratio, [Cu(μ‐HL)2]n, crystallizing as the dimethylformamide (DMF) or dimethylacetamide (DMA) disolvates. The CuII cations are characterized by a coordination number of six, being located on centres of crystallographic inversion. In the polymeric chains, each CuII cation is linked to four neighbouring HL ligands, and the organic ligand is coordinated via Cu—O and Cu—N bonds to two CuII cations. In the corresponding crystal structures of (I) and (II), the coordination chains, aligned parallel to the c axis, are further interlinked by strong hydrogen bonds between the noncoordinated carboxy groups in one array and the coordinated carboxylate groups of neighbouring chains. Molecules of DMF and DMA (disordered) are accommodated at the interface between adjacent polymeric assemblies. This report provides the first structural evidence for the formation of coordination polymers with H2Lvia multiple metal–ligand bonds through both carboxylate and imidazole groups.  相似文献   

15.
By employing the semi‐rigid multidentate carboxylic acid ligand 4,4′,4′′‐{[(2,4,6‐trimethylbenzene‐1,3,5‐triyl)tris(methylene)]tris(oxy)}tribenzoic acid (denoted H3L), a new lanthanum coordination polymer, namely poly[[bis(dimethylformamide)(μ6‐4,4′,4′′‐{[(2,4,6‐trimethylbenzene‐1,3,5‐triyl)tris(methylene)]tris(oxy)}tribenzoato)lanthanum(III)] dimethylformamide tetrasolvate 0.25‐hydrate], {[La(C33H27O9)(C3H7NO)2]·4C3H7NO·0.25H2O}n or {[La(L)(DMF)2]·4(DMF)·0.25(H2O)}n (DMF is dimethylformamide) ( 1 ), was prepared and characterized by single‐crystal X‐ray diffraction, elemental analysis, thermogravimetric analysis, IR spectroscopy and photoluminescence studies. The asymmetric unit contains one LaIII cation, one anionic L3? ligand, two coordinated DMF molecules, four free DMF molecules and one‐quarter of a free water molecule. Compound 1 possesses (3,6)‐connected two‐dimensional kgd topology sheets consisting of secondary building units of La2 clusters and L3? ligands, which further stack into three‐dimensional supramolecular networks through π–π interactions. Compound 1 exhibits a photoluminescence emission at room temperature, with a peak at 410 nm, owing to a ligand‐centred excited state.  相似文献   

16.
The reaction of different macrocyclic metallic tectons and dicarboxylic acid ligand yielded six new coordination polymers, namely, {[(NiL1)(4,4'-Bpdc)] ? DMF ? 2.5H2O} n (I), {[(NiL2)(4,4'-Bpdc)] ? DMF ? 2.5H2O} n (II), [(NiL3)2(4,4'-Bpdc)1.5][(NiL3)(4,4'-Bpdc)] ? ClO4 ? 28H2O (III), {[(NiL4)(4,4'-Bpdc)] ? 4H2O} n (IV), {[(NiL5)(4,4'-Tpdc)] ? 5H2O} n (V), {[(NiL3)(4,4'-Tpdc)]} n (VI) (L1 = 1,4,7,9,12,14-hexaaza-tricyclo[12.2.1.14.7]octadecane, L2 = 1,3,10,12,15,18-hexaazatetracyclo[16.2.1.112.15.04.9]docosane, L3 = 11-methyl-1,4,8,10,13,15-hexaaza-tricyclo[13.3.1.14.8]icosane, L4 = 1,3,10,12,16,19-hexaazate-tracyclo[17.3.1.1.12.16,04.9]tetracosane, L5 = 1,4,8,10,13,15-hexaaza-tricyclo[13.3.1.14.8]icosane, 4,4'-Bpdc = 4,4'-biphenyldicarboxylic acid and 4,4'-Tpdc = 4,4'-terphenyldicarboxylic acid) (CIF files CCDC nos. 1055545–1055550 for I–VI, respectively). Except for the different conformations of the macrocyclic metallic tectons or dicarboxylic acid ligands, complexes I–VI crystallized under the same environment, however, they exhibit diverse packing mode of infinite 1D coordination polymers, showing macrocyle or dicarboxylic acid ligand regulated self-assemble. The solid states UV-Vis for complexes I–VI also have been investigated.  相似文献   

17.
Treatment of [Ru(PPh3)3Cl2] with one equivalent of tridentate Schiff base 2-[(2-dimethylamino-ethylimino)-methyl]-phenol (HL) in the presence of triethylamine afforded a ruthenium(III) complex [RuCl3(κ2-N,N-NH2CH2CH2NMe2)(PPh3)] as a result of decomposition of HL. Interaction of HL and one equivalent of [RuHCl(CO)(PPh3)3], [Ru(CO)2Cl2] or [Ru(tht)4Cl2] (tht = tetrahydrothiophene) under different conditions led to isolation of the corresponding ruthenium(II) complexes [RuCl(κ3-N,N,O-L)(CO)(PPh3)] (2), [RuCl(κ3-N,N,O-L)(CO)2] (3), and a ruthenium(III) complex [RuCl2(κ3-N,N,O-L)(tht)] (4), respectively. Molecular structures of 1·CH2Cl2, 2·CH2Cl2, 3 and 4 have been determined by single-crystal X-ray diffraction.  相似文献   

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