镧系元素-蒽配合物的光化学和光物理性质:实验和理论方法

IF 8.5 Q1 CHEMISTRY, MULTIDISCIPLINARY
Liangliang Wu, Xin-Da Huang, Weijia Li, Xiaoyan Cao, Wei-Hai Fang, Li-Min Zheng*, Michael Dolg* and Xuebo Chen*, 
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引用次数: 0

摘要

本研究采用多学科方法研究了 Ln(depma)(hmpa)2(NO3)3(Ln = La、Ce、Nd、Sm、Eu、Tb、Ho、Er 和 Yb)复合物 1-Ln 的结构、光物理和光化学特性,包括合成、基于光化学加成的晶体工程、光谱分析技术和量子化学 ab initio 计算。根据 Ln3+ 离子的不同,等结构 1-Ln 复合物在 350-400 纳米波长的激发下表现出截然不同的行为。一些 1-Ln 复合物(Ln = La、Ce、Sm、Tb、Yb)会在 533 纳米附近发出由成对蒽分子产生的宽而强的波段,而其他复合物(Ln = Nd、Eu、Ho、Er)则不会。1-Eu 完全不发光,而 1-Nd、1-Ho 和 1-Er 则表现出基于 Ln3+ 的发光。在 365 纳米紫外线(UV)照射下,1-Ln(Ln = La、Ce、Sm、Tb、Yb)通过光化学诱导的蒽分子[4 + 4]环加成反应而二聚化,而 1-Ln(Ln = Nd、Eu、Ho、Er)仍然是单体。我们根据 Ln3+ 离子与成对或二聚化蒽单元之间在能量共振交叉区域的能级匹配,以及内部转换驱动和系统间交叉驱动的能量转移,提出了三种模型,用以解释 Ln3+ 离子调控的 1-Ln 复合物的光物理和光化学。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Lanthanide-Dependent Photochemical and Photophysical Properties of Lanthanide–Anthracene Complexes: Experimental and Theoretical Approaches

Lanthanide-Dependent Photochemical and Photophysical Properties of Lanthanide–Anthracene Complexes: Experimental and Theoretical Approaches

The structural, photophysical, and photochemical properties of Ln(depma)(hmpa)2(NO3)3 (Ln = La, Ce, Nd, Sm, Eu, Tb, Ho, Er, and Yb) complexes 1-Ln were investigated with a multidisciplinary approach involving synthesis, photocycloaddition-based crystal engineering, spectroscopic analytical techniques and quantum chemical ab initio calculations. Depending on the Ln3+ ion the isostructural 1-Ln complexes exhibit quite different behavior upon excitation at 350–400 nm. Some 1-Ln complexes (Ln = La, Ce, Sm, Tb, Yb) emit a broad and strong band near 533 nm arising from paired anthracene moieties, whereas others (Ln = Nd, Eu, Ho, Er) do not. 1-Eu is not emissive at all, whereas 1-Nd, 1-Ho, and 1-Er exhibit a Ln3+ based luminescence. Upon irradiation with 365 nm ultraviolet (UV) light 1-Ln (Ln = La, Ce, Sm, Tb, Yb) dimerize by means of a photochemically induced [4 + 4] cycloaddition of the anthracene moieties, whereas 1-Ln (Ln = Nd, Eu, Ho, Er) remain monomers. We propose three models, based on the matching of the energy levels between the Ln3+ ion and the paired or dimerized anthracene units in the energy-resonance crossing region, as well as on internal conversion-driven and intersystem crossing-driven energy transfer, which explain the Ln3+ ion regulated photophysics and photochemistry of the 1-Ln complexes.

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CiteScore
9.10
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