Prasad K A K Durga, Sharma Aachal A, Pradhan Payal P, Rakshita M, Haranath D
Luminescent Materials and Devices (LMD) Group, Energy Materials and Devices Laboratory, Department of Physics, National Institute of Technology Warangal Hanumakonda 506004 Telangana India
RSC Adv. 2025 Jul 11;15(30):24367-24380. doi: 10.1039/d5ra03468j. eCollection 2025 Jul 10.
The development of versatile luminescent materials with afterglow properties is one of the ways to meet the increasing demands for energy saving. Attempts were being made to develop even self-activated afterglow phosphors by introducing defects in the host lattice, but the number of such phosphors known is limited. Herein, a self-activated rare-earth-free blue-emitting boron carbon oxynitride (BCNO) afterglow phosphor is developed by the sol-gel auto-combustion method at low temperatures (∼700 °C). The formation of BCNO phosphor and its crystal structure are confirmed by XRD and supported by FTIR and XPS analysis. The developed BCNO phosphor features rod-like morphology with high-intensity luminescence properties. Optical and luminescence studies provide insight into the visible light-induced afterglow property of this phosphor. Time-resolved photoluminescence studies showcase that the phosphor has an afterglow duration of around 30 minutes with optimal intensity. Thermoluminescence studies revealed the trap depth of the defects responsible for the afterglow properties and provided an insight into the afterglow mechanism of the phosphor. The BCNO phosphor, when applied over the white-based paint on a vitrified tile, can easily be seen in extremely dark conditions. The visible light-induced afterglow property of the BCNO phosphor has rendered it a prominent material in low-light environments.
开发具有余辉特性的多功能发光材料是满足日益增长的节能需求的途径之一。人们试图通过在主体晶格中引入缺陷来开发甚至是自激活的余辉磷光体,但已知的此类磷光体数量有限。在此,通过低温(约700°C)的溶胶-凝胶自燃烧法开发了一种自激活的无稀土蓝色发光氮氧化硼碳(BCNO)余辉磷光体。通过XRD确认了BCNO磷光体的形成及其晶体结构,并得到了FTIR和XPS分析的支持。所开发的BCNO磷光体具有棒状形态和高强度发光特性。光学和发光研究深入了解了这种磷光体的可见光诱导余辉特性。时间分辨光致发光研究表明,该磷光体具有约30分钟的余辉持续时间,强度最佳。热释光研究揭示了负责余辉特性的缺陷的陷阱深度,并深入了解了磷光体的余辉机制。当将BCNO磷光体应用于玻化砖上的白色涂料时,在极暗的条件下很容易看到。BCNO磷光体的可见光诱导余辉特性使其成为低光环境中的一种突出材料。