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Published on: March 19, 2017
Spectrally camouflaged radiative pathway switching in all-inorganic perovskite derivatives for efficient optical
Ziyao Wang1, Yang Li2, Hui Li1
1Engineering Research Center of Ministry of Education for Geological Carbon Storage and Low Carbon Utilization of Resources, Beijing Key Laboratory of Materials Utilization of Nonmetallic Minerals and Solid Wastes, National Laboratory of Mineral Materials, Hebei Key Laboratory of Resource Low-carbon Utilization and New Materials, School of Materials Science and Technology, China University of Geosciences (Beijing), Beijing 100083, China.
None:
The growing demand for high-level information security necessitates advanced photonic materials with programmable, multidimensional optical responses. However, conventional research predominantly optimizes the performance of static, predefined luminescent centers, leaving the dopant-programmed switching of dominant radiative pathways largely unexplored. Herein, we propose and demonstrate a novel strategy of spectrally camouflaged switching of the dominant radiative pathway within CsCdCl3 perovskite microcrystals via a sequential Zr4+/Mn2+ doping protocol. Zr4+ initially acts as a structural modifier to tailor lattice strain and optimize self-trapped excitons (STEs) as an energy donor. The subsequent introduction of Mn2+ drives a highly efficient (with an apparent efficiency >97.6%) energy transfer, covertly shifting the dominant emission pathway from STE recombination to the Mn2+ 4T1→6A1 transition. While both the steady-state and persistent luminescence colors remain unchanged in the orange region, the internal quantum efficiency increases to 99.4%, accompanied by a fundamental reconfiguration of carrier dynamics. Exploiting this hidden photophysical transformation, we construct a dynamic optical information storage platform where the underlying luminescence mechanism itself serves as an invisible, advanced encryption dimension. This transition from conventional property tuning to mechanism programming establishes a robust material design principle for next-generation anti-counterfeiting technologies.
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