Trace Impurity Matters: Origin and Modulation of Near-Infrared Luminescence in Stannates
作者:Litian Lin, Qiaoling Chen, Qian Zhang, Jin He, Haiyong Ni, Ji‐Hu Su, Chang‐Kui Duan · 发表于:Chemistry of Materials · 年份:2024 · DOI:10.1021/acs.chemmater.4c01348 · 被引用次数:11 · 研究领域:Electronic and Structural Properties of Oxides、Luminescence Properties of Advanced Materials、Advanced Condensed Matter Physics
High-efficiency near-infrared (NIR) emitting materials play a crucial role in biomedicine, agriculture, spectroscopy, etc ., and the stannates emerge due to their broadband and millisecond-lifetime NIR luminescence. However, their origin has confused the community for 20 years. In this work, we combine first-principles calculations with experiments to explicitly unveil that the unique NIR emission originates from the electronic transitions of trace impurities rather than the previously proposed Sn 2+ -related self-trapping excitons (STEs) transition in the Sn 4+ -based compounds, such as AE SnO 3 ( AE = Ba, Sr, and Ca) perovskites, Ca 2 RE Sn 2 M 3 O 12 ( RE = Lu, Y, and Gd; M = Al; RE = La; and M = Ga) and Na 2 CaSn 2 Ge 3 O 12 garnets, Mg 2 SnO 4 inverse spinel, and La 2 Sn 2 O 7 pyrochlore. First-principles calculations provide detailed insights, ruling out the contribution of Sn-related activators to the NIR emission due to their high formation energy and strong electron–phonon coupling but confirming the contribution of Fe 3+ or Cr 3+ centers by analyses of site occupancies and 3d–3d optical transitions, which effectively explain the experimental emissions and their shift trends in various hosts, as well as the characteristics of luminescence decays. Furthermore, Fe 3+ -activated BaSnO 3 perovskite exhibits decent NIR radioluminescence (∼905 nm) and thus demonstrates it has potential as a new type of NIR scintillator. The fresh physical picture in our work thoroughly res...