Synthesis and Fluorescence Properties of Rare Earth Complexes with a New Diamide Ligand
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Synthesis and Fluorescence Properties of Rare Earth Complexes with a New Diamide Ligand
Chinese Journal of LuminescenceVol. 30, Issue 4, Pages: 457-462(2009)
作者机构:
中国科学院兰州化学物理研究所 固体润滑国家重点实验室, 甘肃 兰州 730000
作者简介:
基金信息:
DOI:
CLC:O482.31
Received:25 September 2008,
Revised:02 January 1900,
Published Online:30 August 2009,
Published:30 August 2009
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CUI Hai-xia, CHEN Jian-min, ZHOU Hui-di. Synthesis and Fluorescence Properties of Rare Earth Complexes with a New Diamide Ligand[J]. Chinese journal of luminescence, 2009, 30(4): 457-462.
DOI:
CUI Hai-xia, CHEN Jian-min, ZHOU Hui-di. Synthesis and Fluorescence Properties of Rare Earth Complexes with a New Diamide Ligand[J]. Chinese journal of luminescence, 2009, 30(4): 457-462.DOI:
Synthesis and Fluorescence Properties of Rare Earth Complexes with a New Diamide Ligand
The study of the rare earth complexes has been an active research area
which may be attributed to the specific spectroscopic and magnetic properties of rare earth ions and the abundance of rare earth elements in our country. Amide-type ligands which are flexible in structure and have 'terminal-group effects'
will shield the encapsulated rare earth ion from interaction with the surroundings effectively
and thus achieve strong luminescent properties. Aiming at good fluorescent rare earth complexes
a new diamide ligand 1
4-bis benzene (L) and its Sm(Ⅲ)
Eu(Ⅲ) and Tb(Ⅲ) complexes were synthesized for the first time. The analytical data indicated that the three rare earth complexes conform to a 1 : 1 metal-to-ligand stoichiometries
Ln
(NO
3
)
3
·L. The IR spectra show that the three complexes have similar IR spectra
of which the characteristic bands have similar shifts
suggesting that they have a similar coordination structure. The fluorescence properties of the ligand and its rare earth complexes were investigated in detail on Hitachi F-4500 spectrophotometer. The results indicated that the Sm
Eu and Tb complexes exhibit the characteristic emissions of Sm
3+
Eu
3+
and Tb
3+
respectively. The fluorescence of the ligand and Sm
Eu complex is weak and the Eu
3+
is not in a centro-symmetric coordination site. The Tb complex shows strong fluorescence
which could demonstrate the ligand L is a good organic chelator for Tb
3+
.
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references
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