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Crystal Growth and Ratiometric Fluorescence Tuning of the Eu-Metal Oxide Framework for Formaldehyde Sensing via Photoinduced Electron Transfer

荧光 光化学 氧化物 甲醛 电子转移 光诱导电子转移 金属 Crystal(编程语言) 化学 金属有机骨架 材料科学 无机化学 物理化学 光学 有机化学 吸附 物理 计算机科学 程序设计语言
作者
Yuming Zhao,Dan Yue,Ye Zhu,Rudie Zhang,Tianru Zhang,Pei-Lin Yin,Bowen Qin,Jinhui Liu,Jingbin Huang,Yu Fu
出处
期刊:Crystal Growth & Design [American Chemical Society]
卷期号:25 (19): 8147-8156
标识
DOI:10.1021/acs.cgd.5c00947
摘要

Combining the potential advantages of metal–organic frameworks (MOFs) with the distinctive luminescent behavior of lanthanide metal ions, a fluorescence probe (Eu-MOF, Eu-BDC-NH2) with dual fluorescence emissions of ligand (λ = 431 nm) and Eu3+ (λ = 617 nm) is synthesized using a straightforward room-temperature crystal growth process. The obtained Eu-BDC-NH2 crystal possesses an abundance of uncoordinated amino groups, which serve as effective active sites for the selective recognition of formaldehyde (FA). Owing to the presence of photoinduced electron transfer (PET) between the amino group and the adjacent ligand, the fluorescence of the ligand in the Eu-BDC-NH2 is turned off. Upon the introduction of FA, the amino group interacts with FA, which inhibits the PET process and simultaneously diminishes the "antenna effect" of sensitizing Eu3+. Consequently, the ligand fluorescence is turned on, and the Eu3+ fluorescence is weakened, enabling the highly sensitive ratiometric fluorescence detection of FA. Compared with the single emission fluorescence spectrum, Eu-BDC-NH2 can achieve internal self-calibration by measuring the ratio of fluorescence intensity of the two wavelengths in the system to overcome signal fluctuations and provide more accurate and reliable information. Furthermore, by integrating smartphones, an intelligent sensing system has been developed to enhance the visualization of FA detection, where the fluorescence color visible to the naked eye shifts from red to blue. Specifically, this work utilizes a straightforward dripping method performed at room temperature, which not only simplifies the experimental synthesis process but also adheres to the principles of green chemistry, thereby offering a novel perspective and methodology for the development of MOF-based fluorescence probes.
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