发光
声子
镧系元素
材料科学
联轴节(管道)
密度泛函理论
铀
从头算
凝聚态物理
化学物理
分析化学(期刊)
光电子学
化学
计算化学
物理
离子
冶金
有机化学
作者
Dong‐Hui Chen,Nina Vankova,Gautam Jha,Xiaojuan Yu,Yuemin Wang,Ling Lin,Frank Kirschhöfer,Raphael Greifenstein,Engelbert Redel,Thomas Heine,Christof Wöll
标识
DOI:10.1002/anie.202318559
摘要
Electron-phonon interactions, crucial in condensed matter, are rarely seen in Metal-Organic Frameworks (MOFs). Detecting these interactions typically involves analyzing luminescence in lanthanide- or actinide-based compounds. Prior studies on Ln- and Ac-based MOFs at high temperatures revealed additional peaks, but these were too faint for thorough analysis. In our research, we fabricated a high-quality, crystalline uranium-based MOF (KIT-U-1) thin film using a layer-by-layer method. Under UV light, this film showed two distinct "hot bands," indicating a strong electron-phonon interaction. At 77 K, these bands were absent, but at 300 K, a new emission band appeared with half the intensity of the main luminescence. Surprisingly, a second hot band emerged above 320 K, deviating from previous findings in rare-earth compounds. We conducted a detailed ab-initio analysis employing time-dependent density functional theory to understand this unusual behaviour and to identify the lattice vibration responsible for the strong electron-phonon coupling. The KIT-U-1 film's hot-band emission was then utilized to create a highly sensitive, single-compound optical thermometer. This underscores the potential of high-quality MOF thin films in exploiting the unique luminescence of lanthanides and actinides for advanced applications.
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