Qiyue Sun, Wenjun Hu, Fangyi Zhao, Pengfei Yang, Qinan Mao, Heyi Yang, Meijiao Liu, Jiasong Zhong
Near-infrared (NIR) persistent luminescent (PersL) materials hold significant promising applications in fields such as bioimaging and information storage. However, existing high-performance Cr3+-doped NIR PersL materials generally suffer from relatively short emission wavelengths and narrow spectral bandwidths. Herein, we report an optimized Cr3+-doped Na2CaSn2Ge3O12 (NCSGO:Cr3+) phosphor that exhibits long-wavelength broadband NIR PersL, with a PersL peak wavelength of 815 nm, a PersL bandwidth of 124 nm, and a PersL duration exceeding 80 h. Notably, the undoped NCSGO host exhibits self-activated NIR PersL, while Cr3+ doping not only further redshifts the emission peak and broadens the emission band but also significantly enhances PersL brightness, duration, and excitation flexibility. A systematic investigation into the electron charging processes and trap distributions elucidates the underlying PersL mechanisms in both the NCSGO host and the Cr3+-activated systems. Leveraging the superior PersL property of NCSGO:Cr3+, the practical potential in night-time information reading, information encryption, and deep-tissue penetration imaging has been demonstrated, showcasing its versatility for advanced optical applications. This work presents a strategy for Cr3+ doping to tailor efficient long-wavelength broadband NIR PersL and underscores its multifaceted potential in cutting-edge photonic technologies.