Enhancing Luminescence Efficiency of Solvated Europium(III) via Electronic–Vibrational Decoupling: An Unconventional Aggregation-Induced Emission System

发光 材料科学 量子产额 光致发光 分子内力 离子 化学物理 纳米技术 光化学 光电子学 化学 物理 光学 荧光 有机化学
作者
Yifan Wang,Jinjin Wang,Siwei Zhang,Ningning Tang,Xinwen Ou,Jinhui Jiang,Fulong Ma,Parvej Alam,Zijie Qiu,Wenjin Wang,Zheng Zhao,Jacky W. Y. Lam,Ben Zhong Tang
出处
期刊:ACS Nano [American Chemical Society]
卷期号:19 (27): 25042-25051 被引量:9
标识
DOI:10.1021/acsnano.5c04432
摘要

Europium(III) (Eu3+) ions are renowned for their exceptional photophysical properties, making them invaluable in applications such as energy-efficient lighting, display technologies, and advanced laser systems. However, transitioning Eu3+ from solid-state matrices to solution-based environments typically results in a significant decline in luminescence efficiency due to strong vibrational coupling and dynamic coordination interactions with solvents. These issues have hindered the broader application of rare earth ions in solution-based technologies such as biological imaging probes and optical sensors. Herein, we report an innovative electronic-vibrational decoupling (EVD) strategy aimed at minimizing nonradiative decay pathways in rare earth ions. Through systematic modulation of the solvent environment─including replacing water with N,N-dimethylformamide (DMF), tuning temperature, and employing deuterated solvents─we demonstrate that the photoluminescence quantum yield (ΦPLQY) of Eu3+ solutions can be enhanced dramatically from around 2% in H2O to over 80% in deuterated DMF. The suppression of nonradiative decay pathways is corroborated by significant increases in emission intensity, prolonged luminescence lifetimes, and marked shifts in the I616/I591 intensity ratio, an established indicator of coordination symmetry. Furthermore, our study reveals that the unconventional aggregation-induced emission (AIE) phenomenon in Eu3+ solvents is governed by EVD rather than by restrictions of the intramolecular motion (RIM) mechanism found in organic systems. This work highlights the interplay between solvent vibrations and rare earth photophysics, establishing a robust framework for developing high-performance, solution-based rare earth luminescent materials.
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