Se4+-Doped Indium-Based Perovskites via NaCl-Driven Structural Transformation for Dynamic Luminescence Modulation in Multimodal Anti-counterfeiting and Encryption
Ying Zhao, Shaolong Liu, Huanyu Chen, Bo Li, Shuwen Xue, Xiaotao Zu, Sean Li, Yangfang Li, Xia XiangAbstract
The growing risks of counterfeiting and information security breaches have spurred the demand for high-security stimuli-responsive optical materials. However, many reported materials exhibit discontinuous luminescence switching or require harsh external stimuli. Herein, we report a facile luminescence modulation strategy for indium-based perovskites by employing Se4+ as an efficient luminescent modulator, which enables continuous color evolution via a mild NaCl-triggered 0D-to-3D phase transition. During this phase transition, the Se4+-doped Cs2InCl5·H2O converts to the Cs2NaInCl6 phase, accompanied by emission color evolution from orange-red to green. This optical evolution stems from the altered local coordination environment of Se4+ dopants, which modulates the formation and emission energy of self-trapped excitons (STEs). For practical applications, the as-prepared functional ink is fabricated into patterned films via screen printing to realize dynamic anti-counterfeiting with tunable emission colors and response kinetics by adjusting NaCl concentration and temperature. Furthermore, a multi-level optical encryption design enables three-stage information readout through sequential stimuli. This work establishes a mild, phase-transition-driven luminescence evolution approach for indium-based perovskites, providing a versatile platform with continuous dynamic color evolution for advanced anti-counterfeiting and information encryption.