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1.
采用水热法合成了5个稀土配合物[Sm2(bdbc)2(phen)4](1)和[Ln(bdbc)(phen)(H2O)][Ln=Eu(2), Gd(3), Tb(4), Dy(5), bdbc=(2-羧基苯氧基)苯-1,2-二羧酸根, phen=1,10-邻菲啰啉]. 配合物1是双核分子, 通过氢键和C—H…π作用进一步构筑成一维超分子结构; 配合物2~5是同构的一维双螺旋结构, 通过氢键和C—H…π作用进一步构筑成三维超分子结构. 配合物1, 2, 4和5呈现了Sm3+, Eu3+, Tb3+和Dy3+离子的特征发射, 分别对应于Sm3+离子的4G5/26HJ/2(J=5, 7, 9)、 Eu3+离子的5D07FJ(J=1—4)、 Tb3+离子的5D47FJ(J=6, 5, 4, 3)和Dy3+离子的4F5/26HJ/2(J=15, 13)跃迁. 对配合物4的荧光性质进行了表征, 结果表明, 配合物4可用作荧光探针以检测阳离子和苯甲醛.  相似文献   

2.
合成了一个新的配合物[Eu(4-MOBA)3(terpy)(H2O)]2 (4-MOBA:4-甲氧基苯甲酸根, terpy:2, 2':6', 2"-三联吡啶)。采用傅里叶变换红外(FTIR)光谱、元素分析和X射线粉末衍射(XRD)技术对标题配合物进行了表征,用X射线单晶衍射仪测定了配合物的晶体结构,在配合物中每个Eu3+离子与一个三联吡啶分子、一个水分子和三个羧酸分子结合,配位数为9,羧酸基团的配位模式包含三种:双齿螯合,桥连双齿,单齿。根据热重-差示扫描量热/傅里叶变换红外(TG-DSC/FTIR)联用技术,研究了配合物的热分解机理。配合物的发射光谱显示出Eu3+离子的特征荧光发射,表明三联吡啶和4-甲氧基苯甲酸在该体系中可作为敏化集团。另外,文中还讨论了配合物对白色念珠菌和大肠杆菌的抑菌活性。  相似文献   

3.
通过2,4-二羟基二苯甲酮(BP)与稀土镧离子配位,合成了2,4-二羟基二苯甲酮镧(LBP)。用元素分析、红外分析、热分析等对配合物进行了表征。同时用刚果红试纸法和高温热老化箱,探讨了配合物以及配合物与硬脂酸锌(ZnSt2)、硬脂酸钙(CaSt2)、季戊四醇(PE)复配对PVC热稳定性能的影响。结果表明:2,4-二羟基二苯甲酮镧的分子式为:La2(C13H8O3)3·5H2O。当配合物单独添加到PVC中时,热稳定性能一般,但当以m(LBP)∶m(ZnSt2)∶m(PE)=2∶1∶2进行复配后,热稳定时间长达81min,并且抗变色效果最好。由热稳定机理研究得出,2,4-二羟基二苯甲酮镧可以与PVC受热分解出的氯化氢反应,生成LaCl3,降低氯化氢对PVC的催化降解,进而增强PVC的热稳定性能。  相似文献   

4.
合成了三种稀土配合物[Ln(5-Cl-2-MOBA)3phen]2(Ln=Nd(1),Eu(2),Ho(3);5-Cl-2-MOBA:5-氯-2-甲氧基苯甲酸根;phen:1,10-邻菲啰啉),通过元素分析、热重-微分热重-差示扫描量热(TG-DTG-DSC)、红外光谱(IR)、紫外光谱(UV)及摩尔电导等技术对标题配合物进行了表征.荧光光谱表明配合物(2)发出铕离子的特征荧光.用热分析/傅里叶变换红外(TG-DSC/FTIR)联用技术,阐明标题配合物的热分解反应机理,并分析了逸出气体的三维(3D)红外光谱.  相似文献   

5.
在酸性介质、含水溶剂中合成了四元混配化合物[Ln(BA)2(NO3)(phen)]2(BA=苯甲酸根;Ln=La,Ce,Pr,Nd,Sm,Eu,Dy,Gd,Tb,Er),用元素分析、IR、DTA-TG等方法对配合物进行了表征.研究了配合物的顺磁性能和荧光性能.镨配合物的单晶衍射结果表明,配合物属三斜晶系,双核,Pr3+的配位数为9,4个BA呈二种配位方式,丰富了四元配合物的结构表现形式.  相似文献   

6.
使用多齿席夫碱配体,通过溶剂热法,设计与合成了3例新的稀土配合物[Ln2(L)2(acac)2(CH3OH)2]·2CH3OH(Ln=Sm(1)、Gd(2)、Ho(3),H2L=吡啶?2?羧酸?(1?甲基?3?氧代丁烯基)?酰肼),并对配合物1~3的结构与磁性质进行了系统的研究。单晶结构测试结果表明配合物1~3为同构,每个中心稀土Ln(Ⅲ)离子为八配位,其配位几何构型为扭曲的四方反棱柱;相邻的中心稀土Ln??离子通过2个μ2?O连接形成了平行四边形的[Ln2O2]核心。磁性测试揭示配合物2具有磁制冷性质,其最大磁熵变(-ΔSmax)为31.9 J·K-1·kg-1(T=2.0 K,ΔH=70 kOe);配合物3表现出了慢磁驰豫行为。  相似文献   

7.
以多齿席夫碱配体H2L(H2L=(E)-N′-(3-乙氧基-2-羟基亚苄基)-3-羟基吡啶甲酰肼)为配体,与Ln(acac)3·2H2O(Ln=Tb、Ho、Er;acac-=乙酰丙酮根)反应,通过溶剂热法,成功得到了3例新的双核稀土配合物[Ln2(acac)2(L)2(C2H5OH)2](Ln=Tb((1)、Ho((2)、Er(3))。单晶X射线衍射分析表明:配合物1~3的结构主要由2个Ln离子、2个乙酰丙酮根(acac-)、2个L2-及2个C2H5OH组成,中心Ln离子通过2个μ2-O原子相互连接,形成一个平行四边形的Ln2O2核心。固体荧光实验测...  相似文献   

8.
制备了以3-((4,6-二甲基-2-嘧啶基)硫代)-丙酸(HL)和菲咯啉(Phen)为配体的2个三元稀土配合物[Eu(L)3(Phen)]2·2H2O(1)和[Tb(L)3(Phen)]2·2H2O(2),并对其结构进行了表征。单晶X射线衍射分析表明它们是同构的。2个稀土离子(Ln)由4个羧酸配体桥接,形成二聚体排列。其余2个羧酸配体和Phen以双齿螯合方式与Ln配位。Ln的配位数为9,具有扭曲的单端方形反棱柱配位多面体构型。固态光致发光测试表明,这2种配合物都显示了金属中心的特征发射带。  相似文献   

9.
利用光诱导电子转移机理和配位驱动组装策略探索室温光磁效应材料的合成. 通过组装稀土硝酸盐与1,10-菲罗啉(phen)获得2种同构双核稀土配合物[Ln2(NO3)6(phen)2](1: Ln=Gd; 2: Ln=Dy). 由于具有电子给体-受体结构特征, 目标产物在光照后发生电子转移, 电子由硝酸根的氧原子转移到phen的氮原子, 进而产生光生自由基并发生肉眼可见的颜色变化. 除光致变色外, 配合物1和2在室温下具有光磁效应. 本研究为构筑室温光致变色和光磁效应杂化材料提供了一种通用方法: 配位组装顺磁金属盐与菲罗啉衍生物.  相似文献   

10.
在乙醇水溶液体系中合成了8种新的稀土吲哚-3-乙酸和吲哚-3-丁酸配合物,其通式为Ln(lA)3·2H2O和Ln(IB)3·2H2O(Ln=La,Nd,Sm,Er;IA=C10H8NO2;IB=C12H12NO2)。用元素分析、电导测定、电子吸收光谱、红外光谱、X光电子能谱和热重-差热分析确定了配合物的组成和成键特性。  相似文献   

11.
Six ternary lanthanide complexes formulated as [Ln(2, 4, 6-TMBA)3(5, 5'-DM-2, 2'-bipy)]2 (Ln = Pr 1, Nd 2, Sm 3, Eu 4, Gd 5, Dy 6; 2, 4, 6-TMBA = 2, 4, 6-trimethylbenzoate; 5, 5'-DM-2, 2'-bipy = 5, 5'-dimethyl-2, 2'-bipyridine) have been synthesized under solvothermal conditions and characterized by single-crystal X-ray diffraction, elemental analysis, thermogravimetric analysis, etc. The results of crystal diffraction analysis show that complexes 1–6 are binuclear units, crystallizing in the triclinic space group. Complexes 1–5 are isostructural, and each of the central metal ions has a coordination number of 9. The asymmetric unit of complexes 1–5 consists of one Ln3+, one 5, 5'-DM-2, 2'-bipy ligand, and three 2, 4, 6-TMBA- moieties with three coordination modes: chelation bidentate, bridging bidentate, and bridging tridentate. The coordination geometry of Ln3+ is distorted monocapped square antiprismatic. The binuclear units of complexes 1–5 form a one-dimensional (1D) supramolecular chain along the c-axis via ππ stacking interactions between the 2, 4, 6-trimethylbenzoic acid rings. The 1D chains are linked to form a supramolecular two-dimensional (2D) sheet in the bc plane via ππ stacking interactions between the pyridine rings. Although the molecular formulae of complex 6 and complexes 1–5 are similar, the coordination environment of the lanthanide ions is different in the two cases. The asymmetric unit of complex 6 contains a Dy3+ ion coordinated by a bidentate 5, 5'-DM-2, 2'-bipy and three 2, 4, 6-TMBA- ligands adopting bidentate and bridging bidentate coordination modes. The Dy3+ metal center has a coordination number of 8, with distorted square antiprismatic molecular geometry. The binuclear molecule of 6 is assembled into a six-nuclear unit by ππ weak staking interactions between two 5, 5'-DM-2, 2'-bipy ligands; then, adjacent six-nuclear units form a 1D chain via offset ππ interactions between 5, 5'-DM-2, 2'-bipy ligands on different adjacent units. The adjacent 1D chains are linked by C―H···O hydrogen bonding interactions to form a 2D supramolecular structure. The thermal stability and thermal decomposition mechanism of all the complexes are investigated by the combination of thermogravimetry and infrared spectroscopy (TG/FTIR) techniques under a simulated air atmosphere in the temperature range of 298–973 K at a heating rate of 10 K·min-1. Thermogravimetric studies show that this series of complexes have excellent thermal stability. During the thermal decomposition of the complex, the neutral ligand is lost first, followed by the acid ligand, and finally, the complex is decomposed into rare earth oxides. The three-dimensional infrared results are consistent with the thermogravimetric results. The photoluminescence spectra of complex 4 show the strong characteristic luminescence of Eu3+. The five typical emission peaks at 581, 591, 621, 651, and 701 nm correspond to the 5D07F0, 5D07F1, 5D07F2, 5D07F3, and 5D07F4 electronic transitions of Eu3+, respectively. The emission at 621 nm is due to the electric dipole transition 5D07F2, while that at 591 nm is assigned to the 5D07F1 the magnetic dipole transition. The lifetime (τ) of complex 4 is calculated as 1.15 ms based on the equation τ = (B1τ12 + B2τ22))/(B1τ1 + B2τ2), and the intrinsic quantum yield is calculated to be 45.1%. Further, the magnetic properties of complex 6 in the temperature range of 2–300 K are studied under an applied magnetic field of 1000 Oe.  相似文献   

12.
通过原位反应合成法成功合成了一种新型水溶性的磁性荧光复合纳米粒子Fe3O4@SiO2@ZrO2:Tb3+,并通过扫描电子显微镜(SEM)、X射线粉末衍射仪(XRD)、红外光谱仪(FT-IR)、磁性测试仪和荧光(PL)光谱对其形貌、尺寸、相组成、磁性和荧光性能进行了表征。 结果表明,核(Fe3O4@SiO2)壳(ZrO2:Tb3+)结构组成的磁性荧光复合纳米粒子具有超顺磁性,其饱和磁化强度达到36 emu/g,并且在494 nm(5D47F6)、549 nm(5D47F5)、587 nm(5D47F4)和625 nm(5D47F3)处具有4个Tb3+特有的荧光发射光谱带峰值。 磁性荧光双功能的复合纳米粒子在生物医学领域具有潜在的应用价值。  相似文献   

13.
CaSiO3:Eu0.08^3+Bi0.002^3+ with a monoclinic perovskite structure was synthesized by using sol-gel method, and its luminescence characteristics were investigated. From the excitation spectrum, it can be seen that the main peaks located at 238,396,415,437 and 359 nm correspond to the charge-transfer band of Eu^3+-O^2- , the absorption transitions of ^7F0.1→^3L6, ^7F0→^5D3, ^7F1→^5D3 of Eu^3+ ions, and ^3P1→^1S0 of Bi^3+ ions, respectively. When the samples were excited with a light of wavelength 359 or 395 nm, it can be seen from the emission spectrum that the electronic dipole transition located at 609 nm corresponding to ^5D0→^7F2 of Eu^3+ ions was stronger than the magnetic dipole transition located at 587 nm corresponding to ^5D0→^7F1 of Eu^3+ ions, which shows that more Eu^3+ ions were located in nonreversion center lattices. The energy transfer from Bi^3+ ions to Eu^3+ ions in the phosphor was also discussed. The results show that Eu^3+ ions could be well sensitized by ^3+ions, and the energy-transfer pattern between Bi^3+ ions and Eu^3+ ions was resonance energy transfer.  相似文献   

14.
A new family of heteropolytungstate complexes (NH4)21[Ln(H2O)5{Ni(H2O)}2As4W40O140xH2O(Ln=Y, Ce, Pr, Nd, Sm, Eu, Gd) were prepared by the reaction of Na27[NaAs4W40O140]·60H2O with NiCl2·6H2O and Ln(NO3)3·xH2O at pH≈4.5. The crystal structures of (NH4)21[Gd(H2O)5{Ni(H2O)}2As4W40O140]·51H2O was determined by X-ray diffraction analysis and element analysis. The compound crystallizes in the monoclinic space group P21/n with a=19.754(3), b=24.298(4), c=39.350(6) Å, β=100.612(3)°, V=18564(5) Å3, Z=2, R1(wR2)=0.0544(0.0691). The central site S1 and two opposite sites S2 of the big cyclic ligand [As4W40O140]28− are occupied by one Ln3+and two Ni2+, respectively, each site supply four Od coordinating to metal ion, another one water molecule and other five water molecules coordinate, respectively, to Ni2+and Ln3+. Polyanion [Ln(H2O)5{Ni(H2O)}2As4W40O140]21− has C2v symmetry. IR and UV–vis spectra of [NaAs4W40O140]27− of the title compounds are discussed.  相似文献   

15.
Absorption spectra of both atomic and molecular species in the air-acetylene flame, which are produced when the aqueous solutions of indium dissolved in HNO3, HF, HCl, HBr and HI were aspirated into the flame, have been investigated in the u.v. region. Numerous atomic absorption lines of indium have been observed in the absorption spectra. Most of these lines were previously listed only as emission lines. Those atomic lines have been ascribed to the electronic transitions from the ground states of 5p 2P1/20 and 5p 2P3/20 to the excited states such as ls 2S1/2, md 2D3/2, nd 2D5/2, 4p2 4P1/2, 4p2 4P3/2 and 4p2 4P5/2, respectively, where 13 l 6 and 14 m,n 5. The molecular absorption bands for InF, InCl and InBr in the airacetylene flame have been also observed near 234 nm, 267 nm and 282 nm, respectively, as the electronic transition of 1Σ+1Π1 Those absorption bands show fine structures due to the molecular vibrations. The spectral parameters for the molecular vibrations have been obtained from the simulations of the observed spectra. The molecular absorption band for InI was not observed because of the decomposition of the molecule in the flame. In addition, the molecular absorption band for InO has been observed near 273 nm and those for NO near 205 and 215 nm.  相似文献   

16.
采用高温固相烧结法成功制备了Ba5-3x/2B4O11xEu3+(x=0.02~0.22)荧光粉,利用XRD和SEM等对荧光粉进行了结构和形貌表征。 在激发波长为393 nm的条件下,发射峰(596、621、657和706 nm)与Eu3+5D0-7FJ(J=1,2,3,4)电子跃迁相对应,其中621 nm最强发射峰由Eu3+离子5D07F2电偶极跃迁造成。 文章还研究了Eu3+掺杂浓度对Ba5-3x/2B4O11xEu3+发光性能的影响,结果表明,荧光粉的发光强度随着Eu3+掺杂量的增加呈现先增大后减小的趋势,Eu3+最佳掺杂量为0.16。  相似文献   

17.
Jorma H  ls    Tarja Turkki 《Thermochimica Acta》1991,190(2):335-343
A comparative TG and DTG study of the preparation and thermal stability of selected rare earth oxycarbonates, (REO)2CO3 (RE = La and Gd), shows that the ease of formation as well as the stability of these compounds decreases strongly with increasing atomic number of the host cation. According to X-ray powder diffraction analyses, the RE oxycarbonates obtained as decomposition products of acetate and carbonate hydrates belong to the tetragonal IA-type. UV- and dye laser-excited luminescence studies of Eu3+-doped (LaO)2CO3 and (GdO)2CO3 reveal the presence of two different sites for the host cation. One of the sites resembles closely that prevailing in the tetragonal RE oxysalts, i.e. oxyhalides, oxysulphates, oxymolybdates and oxynitrates. A crystal field analysis carried out on the 7F1 and 7F2 level schemes according to a C2v site symmetry confirms this hypothesis.  相似文献   

18.
Two nickel (imidazole) complexes, Ni(im)6Cl2·4H2O (1) and Ni(im)6(NO3)2 (2) (im=imidazole) have been synthesized and characterized by elemental analysis, IR, UV, TG and single crystal X-ray diffraction. 1 crystallizes in the triclinic space group P-1 with a=8.800(6) Å, b=9.081(6) Å, c=10.565(7) Å, =75.058(9)°, β=83.143(8)°, γ=61.722(8)°, V=718.3(8) Å3, Z=1 and R1 (wR2)=0.0469 (0.1497). 2 crystallizes in the trigonal space group R-3 with a=12.370(6) Å, b=12.370(6) Å, c=14.782(14) Å, =90.00°, β=90.00°, γ=120.00°, V=1959(2) Å3, Z=3 and R1 (wR2)=0.0358 (0.0955). 1 and 2 exhibit different supramolecular network due to their different counter anions and different hydrogen bonding connection. In compound 1, [Ni(im)6]2+ cation and counter anions Cl alternatively array in an ABAB fashion via N–HCl hydrogen bonding. In compound 2, the plane of each NO32− is almost parallel and each NO32− connect three different [Ni(im)6]2+ cations via N–HO hydrogen bonding.  相似文献   

19.
Organolanthanide chloride complexes [(CH3OCH2CH2C5H4)2Ln(μ-Cl)]2 (Ln = La, Pr, Ho and Y) react with excess NaH in THF at 45°C to give the dimeric hydride complexes [(CH3OCH2CH2C5H4)2Ln(μ-H)]2, which have been characterized by IR, 1H NMR, MS and XPS spectroscopy, elemental analyses and X-ray crystallography. [(CH3OCH2CH2C5H4)2Y(μ-H)]2 crystallizes from THF/n-hexane at −30°C, in the triclinic space group P1 with a = 8.795(2) Å, b = 11.040(1) Å, c = 16.602(2) Å, = 93.73(1)°, β = 91.82(1)°, γ = 94.21(1)°, Dc = 1.393 gcm−3 for Z = 2 dimers. However, crystals of [(CH3OCH2CH2C5H4)2Ho(μ-OH)]2 were obtained by recrystallization of holmium hydride in THF/n-hexane at −30°C, in the orthorhombic space group Pbca with a = 11.217(2) Å, b = 15.865(7) Å, c = 17.608(4) Å, Dc = 1.816 gcm−3 for Z = 4 dimers. In the complexes of yttrium and holmium, each Ln atom of the dimers is coordinated by two substituted cyclopentadienyl ligands, one oxygen atom and two hydrogen atoms (for the Y atom) or two hydroxyl groups (for the Ho atom) to form a distorted trigonal bipyramid if the C(η5)-bonded cyclopentadienyl is regarded as occupying a single polyhedral vertex.  相似文献   

20.
Two types of iron(III) carbodithioate complexes, (i) normal complexes, Fe(R2NCS2)3 with R2N = 4-methyl-, 4-phenyl-, or 2-methyl-piperazyl, piperidyl and thiomorpholyl and (ii) zwitterionic complexes, Fe(R2NCS2H)3X3 with R2N = 4-methyl- or 4-phenyl-piperazyl and X = Cl or Br have been synthesized. The complexes have been characterized by elemental analyses, IR spectral studies, variable-temperature magnetic susceptibility and in three cases by variable-temperature Mössbauer spectral studies. All the complexes exhibit the 2T2 (low spin, S = ) 6 A1 (high spin, S = ) spin equilibrium process. The zwitterionic carbodithioate ligands have a weaker ligand field strength than their normal ligand analogues.  相似文献   

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