Kai Jia, Yuewen Mu, Fangjun Huo, Jingying Zhou, Caixia Yin
The preparation of broadband near-infrared phosphors has emerged as a frontier research area, presenting significant scientific importance alongside considerable technical challenges. Cr 3+ -doped garnet-type near-infrared phosphors have garnered widespread attention due to their ability to be excited by inexpensive blue chips. However, existing phosphors suffer from drawbacks such as narrow full width at half-maximum and short emission wavelengths. This study employs a high-temperature solid-state method to synthesize a garnet-type phosphor, La 3 In 2 Ga 3 O 12:Cr 3+ . XRD patterns confirm that the sample exhibits a garnet structure with the space group Ia 3 ¯ d. Excited at 490 nm, this phosphor exhibits strong emission within the 700–1000 nm range, with an emission peak at 826 nm and full width at half-maximum of 149 nm. This study employed a fluxing agent strategy to enhance crystallinity, thereby improving the phosphor in luminescence and ultimately identifying H 3 BO 3 as the optimal fluxing agent. Monitoring the luminescence intensity at various temperatures revealed that at 423 K, the intensity remained at 50% of the initial value, yielding an activation energy of 0.340 eV. Finally, by fabricating the phosphor with a blue 485 nm LED chip into a near-infrared LED device, a luminous efficiency of 9.72%@20 mA was achieved, with an output power reaching 978 mW@320 mA. This device demonstrates promising applications in night vision security screening, information recognition, and biological imaging.