Interplay of defect levels and rare earth emission centers in multimode luminescent phosphors.

Zhou, Xinquan; Ning, Lixin; Qiao, Jianwei; Zhao, Yifei; Xiong, Puxian; Xia, Zhiguo · Nat Commun · 2022

basic_science · Level V

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Abstract

Multimode luminescence generally involves tunable photon emissions in response to various excitation or stimuli channels, which demonstrates high coding capacity and confidentiality abilities for anti-counterfeiting and encryption technologies. Integrating multimode luminescence into a single stable material is a promising strategy but remains a challenge. Here, we realize distinct long persistent luminescence, short-lived down/upconversion emissions in NaGdTi<sub>2</sub>O<sub>6</sub>:Pr<sup>3+</sup>, Er<sup>3+</sup> phosphor by emloying interplay of defect levels and rare earth emission centers. The materials show intense colorful luminescence statically and dynamically, which responds to a wide spectrum ranging from X-ray to sunlight, thermal disturbance, and mechanical force, further allowing the emission colors manipulable in space and time dimensions. Experimental and theoretical approaches reveal that the Pr<sup>3+</sup> ↔ Pr<sup>4+</sup> valence change, oxygen vacancies and anti-site Ti<sub>Gd</sub> defects in this disordered structure contributes to the multimode luminescence. We present a facile and nondestructive demo whose emission color and fade intensity can be controlled via external manipulation, indicating promise in high-capacity information encryption applications.