发光
材料科学
光刺激发光
荧光粉
持续发光
离子
光电子学
光释光
电子
电子转移
光化学
化学
热释光
物理
有机化学
量子力学
作者
J.J. Schuyt,G. V. M. Williams,Shen V. Chong
标识
DOI:10.1002/adom.202302553
摘要
Abstract Photostimulated luminescence phosphors are promising candidates for next‐generation optical data storage devices. Herein, optically‐reversible luminescence modulation is demonstrated using UV wavelengths in the fluoroperovskite RbCdF 3 :Mn, where the modulation is mediated by photostimulated luminescence processes. UV‐C stimulation enhances the luminescence from Mn 2+ centers and simultaneously fills electron traps. This charging process occurs via electron transfer from Mn 2+ ions to fluorine vacancies, yielding Mn 3+ ions and F‐centers, and is mediated by conduction band transport. UV‐A stimulation restores the material to the initial state. This discharging process occurs via electron transfer from F‐centers to Mn 3+ ions and is similarly mediated by conduction band transport. Moreover, the discharging process manifests Mn 2+ photostimulated luminescence. The primary trap state has activation energies in the range 1.46 to 1.73 eV and has room temperature lifetimes exceeding 40 000 years. A kinetic model is presented and evaluated that accurately describes the charge transport and luminescence properties of the material. Thus, a material is presented via which ultra‐long term, multi‐level luminescent data storage can be realized, and a model via which precise control over the luminescence modulation and photostimulated luminescence intensities can be achieved.
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