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Updated: Feb 5, 2026

Triplet Fusion Upconversion Nanocapsule Synthesis
Published on: September 7, 2022
Dynamic Upconversion Manipulation via Cross-Relaxation Engineering for Optical Encryption
Qi Xiao1,2, Wen Xu1, Xiumei Yin1
1School of Physics and Materials Engineering, Dalian Minzu University, Dalian, P. R. China.
Abstract:
Lanthanide ions (Ln3+) doped upconversion originates from their diverse 4f electron transitions. However, the direct manipulation of excited-state electron populations for dynamic emission modulation remains challenging. In this study, a cross-relaxation control paradigm, enabled by dual-wavelength cooperative excitation, is developed for dynamic upconversion engineering. The Er3+-Ln3+ (Ln3+ = Tm3+, Ho3+, Yb3+) doped NaYS2 platform precisely populates the dual-target energy levels via cross-relaxation pathways under cooperative excitation. This approach enables dynamic green-to-red luminescence switching while amplifying the red emission (∼20-fold) by accelerating the cross-relaxation kinetics; Er3+ acts as the photon harvester, and Ln3+ serves as the cross-relaxation mediator to redirect population fluxes. The experimental and theoretical results demonstrate that this phenomenon originates from the unique properties of the low phonon energy, unique layered structure with a large interionic spacing, and high refractive index of the NaYS2 host. Finally, programmable upconversion logic gate arrays are implemented to develop a dynamic- random-visual encryption system for optical information security. This study establishes a novel paradigm for upconversion manipulation with unprecedented capabilities for advanced information technologies.
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