A tripodal ligand, tris{2 [N (pyridine methanoyl)amino]ethyl}amine(L), and its complexes with rare earth nitrates were synthesized. These new complexes with the general formula of Ln(NO 3) 3·L·6H 2O(w...A tripodal ligand, tris{2 [N (pyridine methanoyl)amino]ethyl}amine(L), and its complexes with rare earth nitrates were synthesized. These new complexes with the general formula of Ln(NO 3) 3·L·6H 2O(where Ln=La, Nd, Eu, Tb, Y) were characterized by elemental analysis, IR spectra, thermal analysis, 1 H NMR spectra, molar conductivity and luminescent spectra. All the complexes are stable in air and their conductances in acetonitrile solution lie in the range of 142~150 S·cm 2·mol -1 , indicating 1∶1 type electrolytes. The IR and 1H NMR spectra of the ligand and its complexes show that all the C=O groups take part in coordination to the metal ions. The thermal behaviour of Eu complex shows that the weight losses at 75~120 ℃ and 120~210 ℃ correspond to the loss of four lattice water molecules and that of two coordinated water molecules, respectively. The luminescent spectra of the complexes of Eu(Ⅲ) and Tb(Ⅲ) were investigated in methanol.展开更多
Eight new complexes with the general formula of RE(Gly)(NO_3)_3(phen)_2·3H_2O (RE=La, Ce, Pr, Nd, Gd, Sm, Er, Y) were synthesized and characterized by elemental analysis, molar conductivity, IR spectra, UV spectr...Eight new complexes with the general formula of RE(Gly)(NO_3)_3(phen)_2·3H_2O (RE=La, Ce, Pr, Nd, Gd, Sm, Er, Y) were synthesized and characterized by elemental analysis, molar conductivity, IR spectra, UV spectra and thermal analysis. All the complexes are stable in air and their conductance values in acetonitrile lie in the range of 204.1~239.4 S·cm2·mol -1, indicating 1∶2 type electrolytes. The IR shows that all the COO of glycine and oxygen atom of NO_3- take part in the coordination to the RE ions. The thermal behavior of La complex shows that the weight losses at 75~120 ℃ and 145~170 ℃ correspond to the loss of two lattice water molecules and one coordinated water molecules, respectively.展开更多
Mixed rare earth nitrates (REi(NO3)3) in the aqueous solution was mixed with tri-n-butyl phosphate (TBP, (n-C4H9O)3PO) dissolved in kerosene for the formation of their corresponding complexes (REi(NO3)3...Mixed rare earth nitrates (REi(NO3)3) in the aqueous solution was mixed with tri-n-butyl phosphate (TBP, (n-C4H9O)3PO) dissolved in kerosene for the formation of their corresponding complexes (REi(NO3)3·ni(n-C4H9O)3PO) at 303 K. The effects of initial concentrations of both TBP and mixed rare earth nitrates on the equilibrium constants of their complex formations were investigated. The complexes were formed almost immediately after mixing. The simultaneous formations reached their chemical equilibria within a few minutes by shaking the mixture at 200 r/min. The chemical equilibrium constants of the complex formations were independent of the initial TBP concentrations. However, they were decreased by reducing the concentration of REi(NO3)3. All equilibrium constants of the simultaneous complex formations were less than 0.7, while the average molar ratio of TBP to REi(NO3)3 of the complexes varied between 1.0 and 1.6. The chemical equilibrium constant for the formation of La(NO3)3·(n-C4H9O)3PO was 0.09, while that of Dy(NO3)3·(n-C4H9O)3PO was 0.68. The ascending sequence of chemical equilibrium constants for the simultaneous formations was La, Ce, Pr, Nd, Eu, Y, Sm, Gd, and Dy.展开更多
文摘A tripodal ligand, tris{2 [N (pyridine methanoyl)amino]ethyl}amine(L), and its complexes with rare earth nitrates were synthesized. These new complexes with the general formula of Ln(NO 3) 3·L·6H 2O(where Ln=La, Nd, Eu, Tb, Y) were characterized by elemental analysis, IR spectra, thermal analysis, 1 H NMR spectra, molar conductivity and luminescent spectra. All the complexes are stable in air and their conductances in acetonitrile solution lie in the range of 142~150 S·cm 2·mol -1 , indicating 1∶1 type electrolytes. The IR and 1H NMR spectra of the ligand and its complexes show that all the C=O groups take part in coordination to the metal ions. The thermal behaviour of Eu complex shows that the weight losses at 75~120 ℃ and 120~210 ℃ correspond to the loss of four lattice water molecules and that of two coordinated water molecules, respectively. The luminescent spectra of the complexes of Eu(Ⅲ) and Tb(Ⅲ) were investigated in methanol.
文摘Eight new complexes with the general formula of RE(Gly)(NO_3)_3(phen)_2·3H_2O (RE=La, Ce, Pr, Nd, Gd, Sm, Er, Y) were synthesized and characterized by elemental analysis, molar conductivity, IR spectra, UV spectra and thermal analysis. All the complexes are stable in air and their conductance values in acetonitrile lie in the range of 204.1~239.4 S·cm2·mol -1, indicating 1∶2 type electrolytes. The IR shows that all the COO of glycine and oxygen atom of NO_3- take part in the coordination to the RE ions. The thermal behavior of La complex shows that the weight losses at 75~120 ℃ and 145~170 ℃ correspond to the loss of two lattice water molecules and one coordinated water molecules, respectively.
文摘Mixed rare earth nitrates (REi(NO3)3) in the aqueous solution was mixed with tri-n-butyl phosphate (TBP, (n-C4H9O)3PO) dissolved in kerosene for the formation of their corresponding complexes (REi(NO3)3·ni(n-C4H9O)3PO) at 303 K. The effects of initial concentrations of both TBP and mixed rare earth nitrates on the equilibrium constants of their complex formations were investigated. The complexes were formed almost immediately after mixing. The simultaneous formations reached their chemical equilibria within a few minutes by shaking the mixture at 200 r/min. The chemical equilibrium constants of the complex formations were independent of the initial TBP concentrations. However, they were decreased by reducing the concentration of REi(NO3)3. All equilibrium constants of the simultaneous complex formations were less than 0.7, while the average molar ratio of TBP to REi(NO3)3 of the complexes varied between 1.0 and 1.6. The chemical equilibrium constant for the formation of La(NO3)3·(n-C4H9O)3PO was 0.09, while that of Dy(NO3)3·(n-C4H9O)3PO was 0.68. The ascending sequence of chemical equilibrium constants for the simultaneous formations was La, Ce, Pr, Nd, Eu, Y, Sm, Gd, and Dy.