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Published on: December 5, 2025
Zero-Disturbance Sensitization Strategy for Ultra-High-Efficiency Cr3+ Near-Infrared Phosphors
Zixuan Gao1, Miaocui Lu1, Junyu Chen1
1Key Laboratory of Chemistry and Engineering of Forest Products, State Ethnic Affairs Commission, Guangxi Key Laboratory of Chemistry and Engineering of Forest Products, Guangxi Collaborative Innovation Center for Chemistry and Engineering of Forest Products, School of Chemistry and Chemical Engineering, Guangxi Minzu University, Nanning, 530006, Guangxi, China.
Abstract:
High-efficiency near-infrared (NIR) phosphors are essential for NIR phosphor-converted light-emitting diodes (pc-LEDs). Cr3+-activated garnet-type materials have emerged as promising candidates in this regard. In this work, we propose a minimal-disturbance sensitization strategy to enhance the luminescence performance of Cr3+-doped Ca2Gd2Ga2Ge2O12 (CGGGO) NIR phosphors by introducing Tb3+ as an energy-transfer mediator. The co-doping of Tb3+ has been demonstrated to enhance the emission intensity by 28% under 260 nm excitation and 14% under 450 nm excitation. Concurrently, the internal quantum efficiency (IQE) has been shown to improve from 86.5% to 97%. It is important to note that the emission peak position, spectral shape and fluorescence lifetime remain almost unchanged (peak shift < 1 nm, lifetime variation < 3%), thus confirming the weakly perturbing nature of the sensitization. The present study proposes a dual-pathway energy transfer mechanism, and crystal-field analysis confirms the presence of a moderate crystal field around Cr3+ that is favorable for broadband NIR emission. In conclusion, the fabrication of an NIR pc-LED device employing the optimal co-doped phosphor has been demonstrated to yield stable electroluminescence and excellent night-vision imaging performance. This work develops a high-performance Cr3+-activated NIR phosphor and provides a general strategy for designing efficient luminescent materials via minimally invasive co-doping.

