Gulgas Christopher G, Reineke Theresa M
Department of Chemistry, University of Cincinnati, Cincinnati, Ohio 45221-0172, USA.
Inorg Chem. 2008 Mar 3;47(5):1548-59. doi: 10.1021/ic701916z. Epub 2008 Feb 8.
A series of lanthanide-containing macrocycles, Eu2-Eu5, exhibited unique luminescent responses in the presence of strong hydrogen-bond-accepting anions (F-, CH3COO-, and H2PO4-) in dimethyl sulfoxide. The macrocycles examined herein were designed to include a lanthanide chelate, aromatic spacers that function as antennae, thiourea groups as anion-binding units, and an alkyl or aryl linker between the thioureas that tailors the size and rigidity of the macrocycle. The anion-induced change in the emission intensity (lambda(exc) = 272 nm; lambda(em) = 614 nm) varied across the series of macrocycles and was dependent on the basicity of the anion. The largest luminescence response was observed in Eu(2), whereby the emission increased 77% upon the addition of 8 equiv of fluoride. A change in luminescence was not observed when exciting Eu3+ directly (lambda(exc) = 395 nm) over the course of anion titration experiments with all of the anions studied. These macrocycles contain only slight variations in structure, and insights into the mechanism of the anion interaction have been gained through monitoring of anion titrations via luminescence, absorbance, and luminescence lifetime measurements. In addition, model compounds (2-5) lacking the Eu3+ moiety were synthesized to study the binding pockets of Eu2-Eu5 using absorbance and 1H NMR spectroscopy. These studies indicate that the anions interact with the thiourea moiety of Eu2-Eu5, and the luminescent response is controlled by changes in the morphology of the macrocycle binding pocket.
一系列含镧系元素的大环化合物Eu2-Eu5,在二甲基亚砜中,当存在强氢键受体阴离子(F-、CH3COO-和H2PO4-)时,表现出独特的发光响应。本文研究的大环化合物设计包含镧系螯合物、起天线作用的芳族间隔基、作为阴离子结合单元的硫脲基团,以及硫脲之间的烷基或芳基连接体,该连接体可调整大环的大小和刚性。阴离子诱导的发射强度变化(λ(exc)=272nm;λ(em)=614nm)在一系列大环化合物中各不相同,且取决于阴离子的碱性。在Eu(2)中观察到最大的发光响应,加入8当量氟化物后发射增强77%。在用所有研究的阴离子进行阴离子滴定实验过程中,直接激发Eu3+(λ(exc)=395nm)时未观察到发光变化。这些大环化合物的结构仅有微小差异,通过发光、吸光度和发光寿命测量监测阴离子滴定,已深入了解了阴离子相互作用的机制。此外,合成了不含Eu3+部分的模型化合物(2-5),以使用吸光度和1H NMR光谱研究Eu2-Eu5的结合口袋。这些研究表明,阴离子与Eu2-Eu5的硫脲部分相互作用,发光响应由大环结合口袋形态的变化控制。